gas/
[binutils.git] / gas / config / tc-ia64.c
blob19b57692fb6a25a993e2f4683d04cc00730e6684
1 /* tc-ia64.c -- Assembler for the HP/Intel IA-64 architecture.
2 Copyright 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005
3 Free Software Foundation, Inc.
4 Contributed by David Mosberger-Tang <davidm@hpl.hp.com>
6 This file is part of GAS, the GNU Assembler.
8 GAS is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2, or (at your option)
11 any later version.
13 GAS is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
18 You should have received a copy of the GNU General Public License
19 along with GAS; see the file COPYING. If not, write to
20 the Free Software Foundation, 51 Franklin Street - Fifth Floor,
21 Boston, MA 02110-1301, USA. */
24 TODO:
26 - optional operands
27 - directives:
28 .eb
29 .estate
30 .lb
31 .popsection
32 .previous
33 .psr
34 .pushsection
35 - labels are wrong if automatic alignment is introduced
36 (e.g., checkout the second real10 definition in test-data.s)
37 - DV-related stuff:
38 <reg>.safe_across_calls and any other DV-related directives I don't
39 have documentation for.
40 verify mod-sched-brs reads/writes are checked/marked (and other
41 notes)
45 #include "as.h"
46 #include "safe-ctype.h"
47 #include "dwarf2dbg.h"
48 #include "subsegs.h"
50 #include "opcode/ia64.h"
52 #include "elf/ia64.h"
54 #ifdef HAVE_LIMITS_H
55 #include <limits.h>
56 #endif
58 #define NELEMS(a) ((int) (sizeof (a)/sizeof ((a)[0])))
60 /* Some systems define MIN in, e.g., param.h. */
61 #undef MIN
62 #define MIN(a,b) ((a) < (b) ? (a) : (b))
64 #define NUM_SLOTS 4
65 #define PREV_SLOT md.slot[(md.curr_slot + NUM_SLOTS - 1) % NUM_SLOTS]
66 #define CURR_SLOT md.slot[md.curr_slot]
68 #define O_pseudo_fixup (O_max + 1)
70 enum special_section
72 /* IA-64 ABI section pseudo-ops. */
73 SPECIAL_SECTION_BSS = 0,
74 SPECIAL_SECTION_SBSS,
75 SPECIAL_SECTION_SDATA,
76 SPECIAL_SECTION_RODATA,
77 SPECIAL_SECTION_COMMENT,
78 SPECIAL_SECTION_UNWIND,
79 SPECIAL_SECTION_UNWIND_INFO,
80 /* HPUX specific section pseudo-ops. */
81 SPECIAL_SECTION_INIT_ARRAY,
82 SPECIAL_SECTION_FINI_ARRAY,
85 enum reloc_func
87 FUNC_DTP_MODULE,
88 FUNC_DTP_RELATIVE,
89 FUNC_FPTR_RELATIVE,
90 FUNC_GP_RELATIVE,
91 FUNC_LT_RELATIVE,
92 FUNC_LT_RELATIVE_X,
93 FUNC_PC_RELATIVE,
94 FUNC_PLT_RELATIVE,
95 FUNC_SEC_RELATIVE,
96 FUNC_SEG_RELATIVE,
97 FUNC_TP_RELATIVE,
98 FUNC_LTV_RELATIVE,
99 FUNC_LT_FPTR_RELATIVE,
100 FUNC_LT_DTP_MODULE,
101 FUNC_LT_DTP_RELATIVE,
102 FUNC_LT_TP_RELATIVE,
103 FUNC_IPLT_RELOC,
106 enum reg_symbol
108 REG_GR = 0,
109 REG_FR = (REG_GR + 128),
110 REG_AR = (REG_FR + 128),
111 REG_CR = (REG_AR + 128),
112 REG_P = (REG_CR + 128),
113 REG_BR = (REG_P + 64),
114 REG_IP = (REG_BR + 8),
115 REG_CFM,
116 REG_PR,
117 REG_PR_ROT,
118 REG_PSR,
119 REG_PSR_L,
120 REG_PSR_UM,
121 /* The following are pseudo-registers for use by gas only. */
122 IND_CPUID,
123 IND_DBR,
124 IND_DTR,
125 IND_ITR,
126 IND_IBR,
127 IND_MEM,
128 IND_MSR,
129 IND_PKR,
130 IND_PMC,
131 IND_PMD,
132 IND_RR,
133 /* The following pseudo-registers are used for unwind directives only: */
134 REG_PSP,
135 REG_PRIUNAT,
136 REG_NUM
139 enum dynreg_type
141 DYNREG_GR = 0, /* dynamic general purpose register */
142 DYNREG_FR, /* dynamic floating point register */
143 DYNREG_PR, /* dynamic predicate register */
144 DYNREG_NUM_TYPES
147 enum operand_match_result
149 OPERAND_MATCH,
150 OPERAND_OUT_OF_RANGE,
151 OPERAND_MISMATCH
154 /* On the ia64, we can't know the address of a text label until the
155 instructions are packed into a bundle. To handle this, we keep
156 track of the list of labels that appear in front of each
157 instruction. */
158 struct label_fix
160 struct label_fix *next;
161 struct symbol *sym;
162 bfd_boolean dw2_mark_labels;
165 /* This is the endianness of the current section. */
166 extern int target_big_endian;
168 /* This is the default endianness. */
169 static int default_big_endian = TARGET_BYTES_BIG_ENDIAN;
171 void (*ia64_number_to_chars) PARAMS ((char *, valueT, int));
173 static void ia64_float_to_chars_bigendian
174 PARAMS ((char *, LITTLENUM_TYPE *, int));
175 static void ia64_float_to_chars_littleendian
176 PARAMS ((char *, LITTLENUM_TYPE *, int));
177 static void (*ia64_float_to_chars)
178 PARAMS ((char *, LITTLENUM_TYPE *, int));
180 static struct hash_control *alias_hash;
181 static struct hash_control *alias_name_hash;
182 static struct hash_control *secalias_hash;
183 static struct hash_control *secalias_name_hash;
185 /* List of chars besides those in app.c:symbol_chars that can start an
186 operand. Used to prevent the scrubber eating vital white-space. */
187 const char ia64_symbol_chars[] = "@?";
189 /* Characters which always start a comment. */
190 const char comment_chars[] = "";
192 /* Characters which start a comment at the beginning of a line. */
193 const char line_comment_chars[] = "#";
195 /* Characters which may be used to separate multiple commands on a
196 single line. */
197 const char line_separator_chars[] = ";{}";
199 /* Characters which are used to indicate an exponent in a floating
200 point number. */
201 const char EXP_CHARS[] = "eE";
203 /* Characters which mean that a number is a floating point constant,
204 as in 0d1.0. */
205 const char FLT_CHARS[] = "rRsSfFdDxXpP";
207 /* ia64-specific option processing: */
209 const char *md_shortopts = "m:N:x::";
211 struct option md_longopts[] =
213 #define OPTION_MCONSTANT_GP (OPTION_MD_BASE + 1)
214 {"mconstant-gp", no_argument, NULL, OPTION_MCONSTANT_GP},
215 #define OPTION_MAUTO_PIC (OPTION_MD_BASE + 2)
216 {"mauto-pic", no_argument, NULL, OPTION_MAUTO_PIC}
219 size_t md_longopts_size = sizeof (md_longopts);
221 static struct
223 struct hash_control *pseudo_hash; /* pseudo opcode hash table */
224 struct hash_control *reg_hash; /* register name hash table */
225 struct hash_control *dynreg_hash; /* dynamic register hash table */
226 struct hash_control *const_hash; /* constant hash table */
227 struct hash_control *entry_hash; /* code entry hint hash table */
229 symbolS *regsym[REG_NUM];
231 /* If X_op is != O_absent, the registername for the instruction's
232 qualifying predicate. If NULL, p0 is assumed for instructions
233 that are predicatable. */
234 expressionS qp;
236 /* Optimize for which CPU. */
237 enum
239 itanium1,
240 itanium2
241 } tune;
243 /* What to do when hint.b is used. */
244 enum
246 hint_b_error,
247 hint_b_warning,
248 hint_b_ok
249 } hint_b;
251 unsigned int
252 manual_bundling : 1,
253 debug_dv: 1,
254 detect_dv: 1,
255 explicit_mode : 1, /* which mode we're in */
256 default_explicit_mode : 1, /* which mode is the default */
257 mode_explicitly_set : 1, /* was the current mode explicitly set? */
258 auto_align : 1,
259 keep_pending_output : 1;
261 /* What to do when something is wrong with unwind directives. */
262 enum
264 unwind_check_warning,
265 unwind_check_error
266 } unwind_check;
268 /* Each bundle consists of up to three instructions. We keep
269 track of four most recent instructions so we can correctly set
270 the end_of_insn_group for the last instruction in a bundle. */
271 int curr_slot;
272 int num_slots_in_use;
273 struct slot
275 unsigned int
276 end_of_insn_group : 1,
277 manual_bundling_on : 1,
278 manual_bundling_off : 1,
279 loc_directive_seen : 1;
280 signed char user_template; /* user-selected template, if any */
281 unsigned char qp_regno; /* qualifying predicate */
282 /* This duplicates a good fraction of "struct fix" but we
283 can't use a "struct fix" instead since we can't call
284 fix_new_exp() until we know the address of the instruction. */
285 int num_fixups;
286 struct insn_fix
288 bfd_reloc_code_real_type code;
289 enum ia64_opnd opnd; /* type of operand in need of fix */
290 unsigned int is_pcrel : 1; /* is operand pc-relative? */
291 expressionS expr; /* the value to be inserted */
293 fixup[2]; /* at most two fixups per insn */
294 struct ia64_opcode *idesc;
295 struct label_fix *label_fixups;
296 struct label_fix *tag_fixups;
297 struct unw_rec_list *unwind_record; /* Unwind directive. */
298 expressionS opnd[6];
299 char *src_file;
300 unsigned int src_line;
301 struct dwarf2_line_info debug_line;
303 slot[NUM_SLOTS];
305 segT last_text_seg;
307 struct dynreg
309 struct dynreg *next; /* next dynamic register */
310 const char *name;
311 unsigned short base; /* the base register number */
312 unsigned short num_regs; /* # of registers in this set */
314 *dynreg[DYNREG_NUM_TYPES], in, loc, out, rot;
316 flagword flags; /* ELF-header flags */
318 struct mem_offset {
319 unsigned hint:1; /* is this hint currently valid? */
320 bfd_vma offset; /* mem.offset offset */
321 bfd_vma base; /* mem.offset base */
322 } mem_offset;
324 int path; /* number of alt. entry points seen */
325 const char **entry_labels; /* labels of all alternate paths in
326 the current DV-checking block. */
327 int maxpaths; /* size currently allocated for
328 entry_labels */
330 int pointer_size; /* size in bytes of a pointer */
331 int pointer_size_shift; /* shift size of a pointer for alignment */
335 /* These are not const, because they are modified to MMI for non-itanium1
336 targets below. */
337 /* MFI bundle of nops. */
338 static unsigned char le_nop[16] =
340 0x0c, 0x00, 0x00, 0x00, 0x01, 0x00, 0x00, 0x00,
341 0x00, 0x02, 0x00, 0x00, 0x00, 0x00, 0x04, 0x00
343 /* MFI bundle of nops with stop-bit. */
344 static unsigned char le_nop_stop[16] =
346 0x0d, 0x00, 0x00, 0x00, 0x01, 0x00, 0x00, 0x00,
347 0x00, 0x02, 0x00, 0x00, 0x00, 0x00, 0x04, 0x00
350 /* application registers: */
352 #define AR_K0 0
353 #define AR_K7 7
354 #define AR_RSC 16
355 #define AR_BSP 17
356 #define AR_BSPSTORE 18
357 #define AR_RNAT 19
358 #define AR_UNAT 36
359 #define AR_FPSR 40
360 #define AR_ITC 44
361 #define AR_PFS 64
362 #define AR_LC 65
364 static const struct
366 const char *name;
367 int regnum;
369 ar[] =
371 {"ar.k0", 0}, {"ar.k1", 1}, {"ar.k2", 2}, {"ar.k3", 3},
372 {"ar.k4", 4}, {"ar.k5", 5}, {"ar.k6", 6}, {"ar.k7", 7},
373 {"ar.rsc", 16}, {"ar.bsp", 17},
374 {"ar.bspstore", 18}, {"ar.rnat", 19},
375 {"ar.fcr", 21}, {"ar.eflag", 24},
376 {"ar.csd", 25}, {"ar.ssd", 26},
377 {"ar.cflg", 27}, {"ar.fsr", 28},
378 {"ar.fir", 29}, {"ar.fdr", 30},
379 {"ar.ccv", 32}, {"ar.unat", 36},
380 {"ar.fpsr", 40}, {"ar.itc", 44},
381 {"ar.pfs", 64}, {"ar.lc", 65},
382 {"ar.ec", 66},
385 #define CR_IPSR 16
386 #define CR_ISR 17
387 #define CR_IIP 19
388 #define CR_IFA 20
389 #define CR_ITIR 21
390 #define CR_IIPA 22
391 #define CR_IFS 23
392 #define CR_IIM 24
393 #define CR_IHA 25
394 #define CR_IVR 65
395 #define CR_TPR 66
396 #define CR_EOI 67
397 #define CR_IRR0 68
398 #define CR_IRR3 71
399 #define CR_LRR0 80
400 #define CR_LRR1 81
402 /* control registers: */
403 static const struct
405 const char *name;
406 int regnum;
408 cr[] =
410 {"cr.dcr", 0},
411 {"cr.itm", 1},
412 {"cr.iva", 2},
413 {"cr.pta", 8},
414 {"cr.gpta", 9},
415 {"cr.ipsr", 16},
416 {"cr.isr", 17},
417 {"cr.iip", 19},
418 {"cr.ifa", 20},
419 {"cr.itir", 21},
420 {"cr.iipa", 22},
421 {"cr.ifs", 23},
422 {"cr.iim", 24},
423 {"cr.iha", 25},
424 {"cr.lid", 64},
425 {"cr.ivr", 65},
426 {"cr.tpr", 66},
427 {"cr.eoi", 67},
428 {"cr.irr0", 68},
429 {"cr.irr1", 69},
430 {"cr.irr2", 70},
431 {"cr.irr3", 71},
432 {"cr.itv", 72},
433 {"cr.pmv", 73},
434 {"cr.cmcv", 74},
435 {"cr.lrr0", 80},
436 {"cr.lrr1", 81}
439 #define PSR_MFL 4
440 #define PSR_IC 13
441 #define PSR_DFL 18
442 #define PSR_CPL 32
444 static const struct const_desc
446 const char *name;
447 valueT value;
449 const_bits[] =
451 /* PSR constant masks: */
453 /* 0: reserved */
454 {"psr.be", ((valueT) 1) << 1},
455 {"psr.up", ((valueT) 1) << 2},
456 {"psr.ac", ((valueT) 1) << 3},
457 {"psr.mfl", ((valueT) 1) << 4},
458 {"psr.mfh", ((valueT) 1) << 5},
459 /* 6-12: reserved */
460 {"psr.ic", ((valueT) 1) << 13},
461 {"psr.i", ((valueT) 1) << 14},
462 {"psr.pk", ((valueT) 1) << 15},
463 /* 16: reserved */
464 {"psr.dt", ((valueT) 1) << 17},
465 {"psr.dfl", ((valueT) 1) << 18},
466 {"psr.dfh", ((valueT) 1) << 19},
467 {"psr.sp", ((valueT) 1) << 20},
468 {"psr.pp", ((valueT) 1) << 21},
469 {"psr.di", ((valueT) 1) << 22},
470 {"psr.si", ((valueT) 1) << 23},
471 {"psr.db", ((valueT) 1) << 24},
472 {"psr.lp", ((valueT) 1) << 25},
473 {"psr.tb", ((valueT) 1) << 26},
474 {"psr.rt", ((valueT) 1) << 27},
475 /* 28-31: reserved */
476 /* 32-33: cpl (current privilege level) */
477 {"psr.is", ((valueT) 1) << 34},
478 {"psr.mc", ((valueT) 1) << 35},
479 {"psr.it", ((valueT) 1) << 36},
480 {"psr.id", ((valueT) 1) << 37},
481 {"psr.da", ((valueT) 1) << 38},
482 {"psr.dd", ((valueT) 1) << 39},
483 {"psr.ss", ((valueT) 1) << 40},
484 /* 41-42: ri (restart instruction) */
485 {"psr.ed", ((valueT) 1) << 43},
486 {"psr.bn", ((valueT) 1) << 44},
489 /* indirect register-sets/memory: */
491 static const struct
493 const char *name;
494 int regnum;
496 indirect_reg[] =
498 { "CPUID", IND_CPUID },
499 { "cpuid", IND_CPUID },
500 { "dbr", IND_DBR },
501 { "dtr", IND_DTR },
502 { "itr", IND_ITR },
503 { "ibr", IND_IBR },
504 { "msr", IND_MSR },
505 { "pkr", IND_PKR },
506 { "pmc", IND_PMC },
507 { "pmd", IND_PMD },
508 { "rr", IND_RR },
511 /* Pseudo functions used to indicate relocation types (these functions
512 start with an at sign (@). */
513 static struct
515 const char *name;
516 enum pseudo_type
518 PSEUDO_FUNC_NONE,
519 PSEUDO_FUNC_RELOC,
520 PSEUDO_FUNC_CONST,
521 PSEUDO_FUNC_REG,
522 PSEUDO_FUNC_FLOAT
524 type;
525 union
527 unsigned long ival;
528 symbolS *sym;
532 pseudo_func[] =
534 /* reloc pseudo functions (these must come first!): */
535 { "dtpmod", PSEUDO_FUNC_RELOC, { 0 } },
536 { "dtprel", PSEUDO_FUNC_RELOC, { 0 } },
537 { "fptr", PSEUDO_FUNC_RELOC, { 0 } },
538 { "gprel", PSEUDO_FUNC_RELOC, { 0 } },
539 { "ltoff", PSEUDO_FUNC_RELOC, { 0 } },
540 { "ltoffx", PSEUDO_FUNC_RELOC, { 0 } },
541 { "pcrel", PSEUDO_FUNC_RELOC, { 0 } },
542 { "pltoff", PSEUDO_FUNC_RELOC, { 0 } },
543 { "secrel", PSEUDO_FUNC_RELOC, { 0 } },
544 { "segrel", PSEUDO_FUNC_RELOC, { 0 } },
545 { "tprel", PSEUDO_FUNC_RELOC, { 0 } },
546 { "ltv", PSEUDO_FUNC_RELOC, { 0 } },
547 { NULL, 0, { 0 } }, /* placeholder for FUNC_LT_FPTR_RELATIVE */
548 { NULL, 0, { 0 } }, /* placeholder for FUNC_LT_DTP_MODULE */
549 { NULL, 0, { 0 } }, /* placeholder for FUNC_LT_DTP_RELATIVE */
550 { NULL, 0, { 0 } }, /* placeholder for FUNC_LT_TP_RELATIVE */
551 { "iplt", PSEUDO_FUNC_RELOC, { 0 } },
553 /* mbtype4 constants: */
554 { "alt", PSEUDO_FUNC_CONST, { 0xa } },
555 { "brcst", PSEUDO_FUNC_CONST, { 0x0 } },
556 { "mix", PSEUDO_FUNC_CONST, { 0x8 } },
557 { "rev", PSEUDO_FUNC_CONST, { 0xb } },
558 { "shuf", PSEUDO_FUNC_CONST, { 0x9 } },
560 /* fclass constants: */
561 { "nat", PSEUDO_FUNC_CONST, { 0x100 } },
562 { "qnan", PSEUDO_FUNC_CONST, { 0x080 } },
563 { "snan", PSEUDO_FUNC_CONST, { 0x040 } },
564 { "pos", PSEUDO_FUNC_CONST, { 0x001 } },
565 { "neg", PSEUDO_FUNC_CONST, { 0x002 } },
566 { "zero", PSEUDO_FUNC_CONST, { 0x004 } },
567 { "unorm", PSEUDO_FUNC_CONST, { 0x008 } },
568 { "norm", PSEUDO_FUNC_CONST, { 0x010 } },
569 { "inf", PSEUDO_FUNC_CONST, { 0x020 } },
571 { "natval", PSEUDO_FUNC_CONST, { 0x100 } }, /* old usage */
573 /* hint constants: */
574 { "pause", PSEUDO_FUNC_CONST, { 0x0 } },
576 /* unwind-related constants: */
577 { "svr4", PSEUDO_FUNC_CONST, { ELFOSABI_NONE } },
578 { "hpux", PSEUDO_FUNC_CONST, { ELFOSABI_HPUX } },
579 { "nt", PSEUDO_FUNC_CONST, { 2 } }, /* conflicts w/ELFOSABI_NETBSD */
580 { "linux", PSEUDO_FUNC_CONST, { ELFOSABI_LINUX } },
581 { "freebsd", PSEUDO_FUNC_CONST, { ELFOSABI_FREEBSD } },
582 { "openvms", PSEUDO_FUNC_CONST, { ELFOSABI_OPENVMS } },
583 { "nsk", PSEUDO_FUNC_CONST, { ELFOSABI_NSK } },
585 /* unwind-related registers: */
586 { "priunat",PSEUDO_FUNC_REG, { REG_PRIUNAT } }
589 /* 41-bit nop opcodes (one per unit): */
590 static const bfd_vma nop[IA64_NUM_UNITS] =
592 0x0000000000LL, /* NIL => break 0 */
593 0x0008000000LL, /* I-unit nop */
594 0x0008000000LL, /* M-unit nop */
595 0x4000000000LL, /* B-unit nop */
596 0x0008000000LL, /* F-unit nop */
597 0x0000000000LL, /* L-"unit" nop immediate */
598 0x0008000000LL, /* X-unit nop */
601 /* Can't be `const' as it's passed to input routines (which have the
602 habit of setting temporary sentinels. */
603 static char special_section_name[][20] =
605 {".bss"}, {".sbss"}, {".sdata"}, {".rodata"}, {".comment"},
606 {".IA_64.unwind"}, {".IA_64.unwind_info"},
607 {".init_array"}, {".fini_array"}
610 /* The best template for a particular sequence of up to three
611 instructions: */
612 #define N IA64_NUM_TYPES
613 static unsigned char best_template[N][N][N];
614 #undef N
616 /* Resource dependencies currently in effect */
617 static struct rsrc {
618 int depind; /* dependency index */
619 const struct ia64_dependency *dependency; /* actual dependency */
620 unsigned specific:1, /* is this a specific bit/regno? */
621 link_to_qp_branch:1; /* will a branch on the same QP clear it?*/
622 int index; /* specific regno/bit within dependency */
623 int note; /* optional qualifying note (0 if none) */
624 #define STATE_NONE 0
625 #define STATE_STOP 1
626 #define STATE_SRLZ 2
627 int insn_srlz; /* current insn serialization state */
628 int data_srlz; /* current data serialization state */
629 int qp_regno; /* qualifying predicate for this usage */
630 char *file; /* what file marked this dependency */
631 unsigned int line; /* what line marked this dependency */
632 struct mem_offset mem_offset; /* optional memory offset hint */
633 enum { CMP_NONE, CMP_OR, CMP_AND } cmp_type; /* OR or AND compare? */
634 int path; /* corresponding code entry index */
635 } *regdeps = NULL;
636 static int regdepslen = 0;
637 static int regdepstotlen = 0;
638 static const char *dv_mode[] = { "RAW", "WAW", "WAR" };
639 static const char *dv_sem[] = { "none", "implied", "impliedf",
640 "data", "instr", "specific", "stop", "other" };
641 static const char *dv_cmp_type[] = { "none", "OR", "AND" };
643 /* Current state of PR mutexation */
644 static struct qpmutex {
645 valueT prmask;
646 int path;
647 } *qp_mutexes = NULL; /* QP mutex bitmasks */
648 static int qp_mutexeslen = 0;
649 static int qp_mutexestotlen = 0;
650 static valueT qp_safe_across_calls = 0;
652 /* Current state of PR implications */
653 static struct qp_imply {
654 unsigned p1:6;
655 unsigned p2:6;
656 unsigned p2_branched:1;
657 int path;
658 } *qp_implies = NULL;
659 static int qp_implieslen = 0;
660 static int qp_impliestotlen = 0;
662 /* Keep track of static GR values so that indirect register usage can
663 sometimes be tracked. */
664 static struct gr {
665 unsigned known:1;
666 int path;
667 valueT value;
668 } gr_values[128] = {
671 #ifdef INT_MAX
672 INT_MAX,
673 #else
674 (((1 << (8 * sizeof(gr_values->path) - 2)) - 1) << 1) + 1,
675 #endif
680 /* Remember the alignment frag. */
681 static fragS *align_frag;
683 /* These are the routines required to output the various types of
684 unwind records. */
686 /* A slot_number is a frag address plus the slot index (0-2). We use the
687 frag address here so that if there is a section switch in the middle of
688 a function, then instructions emitted to a different section are not
689 counted. Since there may be more than one frag for a function, this
690 means we also need to keep track of which frag this address belongs to
691 so we can compute inter-frag distances. This also nicely solves the
692 problem with nops emitted for align directives, which can't easily be
693 counted, but can easily be derived from frag sizes. */
695 typedef struct unw_rec_list {
696 unwind_record r;
697 unsigned long slot_number;
698 fragS *slot_frag;
699 struct unw_rec_list *next;
700 } unw_rec_list;
702 #define SLOT_NUM_NOT_SET (unsigned)-1
704 /* Linked list of saved prologue counts. A very poor
705 implementation of a map from label numbers to prologue counts. */
706 typedef struct label_prologue_count
708 struct label_prologue_count *next;
709 unsigned long label_number;
710 unsigned int prologue_count;
711 } label_prologue_count;
713 typedef struct proc_pending
715 symbolS *sym;
716 struct proc_pending *next;
717 } proc_pending;
719 static struct
721 /* Maintain a list of unwind entries for the current function. */
722 unw_rec_list *list;
723 unw_rec_list *tail;
725 /* Any unwind entires that should be attached to the current slot
726 that an insn is being constructed for. */
727 unw_rec_list *current_entry;
729 /* These are used to create the unwind table entry for this function. */
730 proc_pending proc_pending;
731 symbolS *info; /* pointer to unwind info */
732 symbolS *personality_routine;
733 segT saved_text_seg;
734 subsegT saved_text_subseg;
735 unsigned int force_unwind_entry : 1; /* force generation of unwind entry? */
737 /* TRUE if processing unwind directives in a prologue region. */
738 unsigned int prologue : 1;
739 unsigned int prologue_mask : 4;
740 unsigned int prologue_gr : 7;
741 unsigned int body : 1;
742 unsigned int insn : 1;
743 unsigned int prologue_count; /* number of .prologues seen so far */
744 /* Prologue counts at previous .label_state directives. */
745 struct label_prologue_count * saved_prologue_counts;
747 /* List of split up .save-s. */
748 unw_p_record *pending_saves;
749 } unwind;
751 /* The input value is a negated offset from psp, and specifies an address
752 psp - offset. The encoded value is psp + 16 - (4 * offset). Thus we
753 must add 16 and divide by 4 to get the encoded value. */
755 #define ENCODED_PSP_OFFSET(OFFSET) (((OFFSET) + 16) / 4)
757 typedef void (*vbyte_func) PARAMS ((int, char *, char *));
759 /* Forward declarations: */
760 static void set_section PARAMS ((char *name));
761 static unsigned int set_regstack PARAMS ((unsigned int, unsigned int,
762 unsigned int, unsigned int));
763 static void dot_align (int);
764 static void dot_radix PARAMS ((int));
765 static void dot_special_section PARAMS ((int));
766 static void dot_proc PARAMS ((int));
767 static void dot_fframe PARAMS ((int));
768 static void dot_vframe PARAMS ((int));
769 static void dot_vframesp PARAMS ((int));
770 static void dot_save PARAMS ((int));
771 static void dot_restore PARAMS ((int));
772 static void dot_restorereg PARAMS ((int));
773 static void dot_handlerdata PARAMS ((int));
774 static void dot_unwentry PARAMS ((int));
775 static void dot_altrp PARAMS ((int));
776 static void dot_savemem PARAMS ((int));
777 static void dot_saveg PARAMS ((int));
778 static void dot_savef PARAMS ((int));
779 static void dot_saveb PARAMS ((int));
780 static void dot_savegf PARAMS ((int));
781 static void dot_spill PARAMS ((int));
782 static void dot_spillreg PARAMS ((int));
783 static void dot_spillmem PARAMS ((int));
784 static void dot_label_state PARAMS ((int));
785 static void dot_copy_state PARAMS ((int));
786 static void dot_unwabi PARAMS ((int));
787 static void dot_personality PARAMS ((int));
788 static void dot_body PARAMS ((int));
789 static void dot_prologue PARAMS ((int));
790 static void dot_endp PARAMS ((int));
791 static void dot_template PARAMS ((int));
792 static void dot_regstk PARAMS ((int));
793 static void dot_rot PARAMS ((int));
794 static void dot_byteorder PARAMS ((int));
795 static void dot_psr PARAMS ((int));
796 static void dot_alias PARAMS ((int));
797 static void dot_ln PARAMS ((int));
798 static void cross_section PARAMS ((int ref, void (*cons) PARAMS((int)), int ua));
799 static void dot_xdata PARAMS ((int));
800 static void stmt_float_cons PARAMS ((int));
801 static void stmt_cons_ua PARAMS ((int));
802 static void dot_xfloat_cons PARAMS ((int));
803 static void dot_xstringer PARAMS ((int));
804 static void dot_xdata_ua PARAMS ((int));
805 static void dot_xfloat_cons_ua PARAMS ((int));
806 static void print_prmask PARAMS ((valueT mask));
807 static void dot_pred_rel PARAMS ((int));
808 static void dot_reg_val PARAMS ((int));
809 static void dot_serialize PARAMS ((int));
810 static void dot_dv_mode PARAMS ((int));
811 static void dot_entry PARAMS ((int));
812 static void dot_mem_offset PARAMS ((int));
813 static void add_unwind_entry PARAMS((unw_rec_list *, int));
814 static symbolS *declare_register PARAMS ((const char *name, int regnum));
815 static void declare_register_set PARAMS ((const char *, int, int));
816 static unsigned int operand_width PARAMS ((enum ia64_opnd));
817 static enum operand_match_result operand_match PARAMS ((const struct ia64_opcode *idesc,
818 int index,
819 expressionS *e));
820 static int parse_operand PARAMS ((expressionS *, int));
821 static struct ia64_opcode * parse_operands PARAMS ((struct ia64_opcode *));
822 static void build_insn PARAMS ((struct slot *, bfd_vma *));
823 static void emit_one_bundle PARAMS ((void));
824 static void fix_insn PARAMS ((fixS *, const struct ia64_operand *, valueT));
825 static bfd_reloc_code_real_type ia64_gen_real_reloc_type PARAMS ((struct symbol *sym,
826 bfd_reloc_code_real_type r_type));
827 static void insn_group_break PARAMS ((int, int, int));
828 static void mark_resource PARAMS ((struct ia64_opcode *, const struct ia64_dependency *,
829 struct rsrc *, int depind, int path));
830 static void add_qp_mutex PARAMS((valueT mask));
831 static void add_qp_imply PARAMS((int p1, int p2));
832 static void clear_qp_branch_flag PARAMS((valueT mask));
833 static void clear_qp_mutex PARAMS((valueT mask));
834 static void clear_qp_implies PARAMS((valueT p1_mask, valueT p2_mask));
835 static int has_suffix_p PARAMS((const char *, const char *));
836 static void clear_register_values PARAMS ((void));
837 static void print_dependency PARAMS ((const char *action, int depind));
838 static void instruction_serialization PARAMS ((void));
839 static void data_serialization PARAMS ((void));
840 static void remove_marked_resource PARAMS ((struct rsrc *));
841 static int is_conditional_branch PARAMS ((struct ia64_opcode *));
842 static int is_taken_branch PARAMS ((struct ia64_opcode *));
843 static int is_interruption_or_rfi PARAMS ((struct ia64_opcode *));
844 static int depends_on PARAMS ((int, struct ia64_opcode *));
845 static int specify_resource PARAMS ((const struct ia64_dependency *,
846 struct ia64_opcode *, int, struct rsrc [], int, int));
847 static int check_dv PARAMS((struct ia64_opcode *idesc));
848 static void check_dependencies PARAMS((struct ia64_opcode *));
849 static void mark_resources PARAMS((struct ia64_opcode *));
850 static void update_dependencies PARAMS((struct ia64_opcode *));
851 static void note_register_values PARAMS((struct ia64_opcode *));
852 static int qp_mutex PARAMS ((int, int, int));
853 static int resources_match PARAMS ((struct rsrc *, struct ia64_opcode *, int, int, int));
854 static void output_vbyte_mem PARAMS ((int, char *, char *));
855 static void count_output PARAMS ((int, char *, char *));
856 static void output_R1_format PARAMS ((vbyte_func, unw_record_type, int));
857 static void output_R2_format PARAMS ((vbyte_func, int, int, unsigned long));
858 static void output_R3_format PARAMS ((vbyte_func, unw_record_type, unsigned long));
859 static void output_P1_format PARAMS ((vbyte_func, int));
860 static void output_P2_format PARAMS ((vbyte_func, int, int));
861 static void output_P3_format PARAMS ((vbyte_func, unw_record_type, int));
862 static void output_P4_format PARAMS ((vbyte_func, unsigned char *, unsigned long));
863 static void output_P5_format PARAMS ((vbyte_func, int, unsigned long));
864 static void output_P6_format PARAMS ((vbyte_func, unw_record_type, int));
865 static void output_P7_format PARAMS ((vbyte_func, unw_record_type, unsigned long, unsigned long));
866 static void output_P8_format PARAMS ((vbyte_func, unw_record_type, unsigned long));
867 static void output_P9_format PARAMS ((vbyte_func, int, int));
868 static void output_P10_format PARAMS ((vbyte_func, int, int));
869 static void output_B1_format PARAMS ((vbyte_func, unw_record_type, unsigned long));
870 static void output_B2_format PARAMS ((vbyte_func, unsigned long, unsigned long));
871 static void output_B3_format PARAMS ((vbyte_func, unsigned long, unsigned long));
872 static void output_B4_format PARAMS ((vbyte_func, unw_record_type, unsigned long));
873 static char format_ab_reg PARAMS ((int, int));
874 static void output_X1_format PARAMS ((vbyte_func, unw_record_type, int, int, unsigned long,
875 unsigned long));
876 static void output_X2_format PARAMS ((vbyte_func, int, int, int, int, int, unsigned long));
877 static void output_X3_format PARAMS ((vbyte_func, unw_record_type, int, int, int, unsigned long,
878 unsigned long));
879 static void output_X4_format PARAMS ((vbyte_func, int, int, int, int, int, int, unsigned long));
880 static unw_rec_list *output_endp PARAMS ((void));
881 static unw_rec_list *output_prologue PARAMS ((void));
882 static unw_rec_list *output_prologue_gr PARAMS ((unsigned int, unsigned int));
883 static unw_rec_list *output_body PARAMS ((void));
884 static unw_rec_list *output_mem_stack_f PARAMS ((unsigned int));
885 static unw_rec_list *output_mem_stack_v PARAMS ((void));
886 static unw_rec_list *output_psp_gr PARAMS ((unsigned int));
887 static unw_rec_list *output_psp_sprel PARAMS ((unsigned int));
888 static unw_rec_list *output_rp_when PARAMS ((void));
889 static unw_rec_list *output_rp_gr PARAMS ((unsigned int));
890 static unw_rec_list *output_rp_br PARAMS ((unsigned int));
891 static unw_rec_list *output_rp_psprel PARAMS ((unsigned int));
892 static unw_rec_list *output_rp_sprel PARAMS ((unsigned int));
893 static unw_rec_list *output_pfs_when PARAMS ((void));
894 static unw_rec_list *output_pfs_gr PARAMS ((unsigned int));
895 static unw_rec_list *output_pfs_psprel PARAMS ((unsigned int));
896 static unw_rec_list *output_pfs_sprel PARAMS ((unsigned int));
897 static unw_rec_list *output_preds_when PARAMS ((void));
898 static unw_rec_list *output_preds_gr PARAMS ((unsigned int));
899 static unw_rec_list *output_preds_psprel PARAMS ((unsigned int));
900 static unw_rec_list *output_preds_sprel PARAMS ((unsigned int));
901 static unw_rec_list *output_fr_mem PARAMS ((unsigned int));
902 static unw_rec_list *output_frgr_mem PARAMS ((unsigned int, unsigned int));
903 static unw_rec_list *output_gr_gr PARAMS ((unsigned int, unsigned int));
904 static unw_rec_list *output_gr_mem PARAMS ((unsigned int));
905 static unw_rec_list *output_br_mem PARAMS ((unsigned int));
906 static unw_rec_list *output_br_gr PARAMS ((unsigned int, unsigned int));
907 static unw_rec_list *output_spill_base PARAMS ((unsigned int));
908 static unw_rec_list *output_unat_when PARAMS ((void));
909 static unw_rec_list *output_unat_gr PARAMS ((unsigned int));
910 static unw_rec_list *output_unat_psprel PARAMS ((unsigned int));
911 static unw_rec_list *output_unat_sprel PARAMS ((unsigned int));
912 static unw_rec_list *output_lc_when PARAMS ((void));
913 static unw_rec_list *output_lc_gr PARAMS ((unsigned int));
914 static unw_rec_list *output_lc_psprel PARAMS ((unsigned int));
915 static unw_rec_list *output_lc_sprel PARAMS ((unsigned int));
916 static unw_rec_list *output_fpsr_when PARAMS ((void));
917 static unw_rec_list *output_fpsr_gr PARAMS ((unsigned int));
918 static unw_rec_list *output_fpsr_psprel PARAMS ((unsigned int));
919 static unw_rec_list *output_fpsr_sprel PARAMS ((unsigned int));
920 static unw_rec_list *output_priunat_when_gr PARAMS ((void));
921 static unw_rec_list *output_priunat_when_mem PARAMS ((void));
922 static unw_rec_list *output_priunat_gr PARAMS ((unsigned int));
923 static unw_rec_list *output_priunat_psprel PARAMS ((unsigned int));
924 static unw_rec_list *output_priunat_sprel PARAMS ((unsigned int));
925 static unw_rec_list *output_bsp_when PARAMS ((void));
926 static unw_rec_list *output_bsp_gr PARAMS ((unsigned int));
927 static unw_rec_list *output_bsp_psprel PARAMS ((unsigned int));
928 static unw_rec_list *output_bsp_sprel PARAMS ((unsigned int));
929 static unw_rec_list *output_bspstore_when PARAMS ((void));
930 static unw_rec_list *output_bspstore_gr PARAMS ((unsigned int));
931 static unw_rec_list *output_bspstore_psprel PARAMS ((unsigned int));
932 static unw_rec_list *output_bspstore_sprel PARAMS ((unsigned int));
933 static unw_rec_list *output_rnat_when PARAMS ((void));
934 static unw_rec_list *output_rnat_gr PARAMS ((unsigned int));
935 static unw_rec_list *output_rnat_psprel PARAMS ((unsigned int));
936 static unw_rec_list *output_rnat_sprel PARAMS ((unsigned int));
937 static unw_rec_list *output_unwabi PARAMS ((unsigned long, unsigned long));
938 static unw_rec_list *output_epilogue PARAMS ((unsigned long));
939 static unw_rec_list *output_label_state PARAMS ((unsigned long));
940 static unw_rec_list *output_copy_state PARAMS ((unsigned long));
941 static unw_rec_list *output_spill_psprel PARAMS ((unsigned int, unsigned int, unsigned int,
942 unsigned int));
943 static unw_rec_list *output_spill_sprel PARAMS ((unsigned int, unsigned int, unsigned int,
944 unsigned int));
945 static unw_rec_list *output_spill_reg PARAMS ((unsigned int, unsigned int, unsigned int,
946 unsigned int, unsigned int));
947 static void process_one_record PARAMS ((unw_rec_list *, vbyte_func));
948 static void process_unw_records PARAMS ((unw_rec_list *, vbyte_func));
949 static int calc_record_size PARAMS ((unw_rec_list *));
950 static void set_imask PARAMS ((unw_rec_list *, unsigned long, unsigned long, unsigned int));
951 static unsigned long slot_index PARAMS ((unsigned long, fragS *,
952 unsigned long, fragS *,
953 int));
954 static unw_rec_list *optimize_unw_records PARAMS ((unw_rec_list *));
955 static void fixup_unw_records PARAMS ((unw_rec_list *, int));
956 static int parse_predicate_and_operand PARAMS ((expressionS *, unsigned *, const char *));
957 static void convert_expr_to_ab_reg PARAMS ((const expressionS *, unsigned int *, unsigned int *, const char *, int));
958 static void convert_expr_to_xy_reg PARAMS ((const expressionS *, unsigned int *, unsigned int *, const char *, int));
959 static unsigned int get_saved_prologue_count PARAMS ((unsigned long));
960 static void save_prologue_count PARAMS ((unsigned long, unsigned int));
961 static void free_saved_prologue_counts PARAMS ((void));
963 /* Determine if application register REGNUM resides only in the integer
964 unit (as opposed to the memory unit). */
965 static int
966 ar_is_only_in_integer_unit (int reg)
968 reg -= REG_AR;
969 return reg >= 64 && reg <= 111;
972 /* Determine if application register REGNUM resides only in the memory
973 unit (as opposed to the integer unit). */
974 static int
975 ar_is_only_in_memory_unit (int reg)
977 reg -= REG_AR;
978 return reg >= 0 && reg <= 47;
981 /* Switch to section NAME and create section if necessary. It's
982 rather ugly that we have to manipulate input_line_pointer but I
983 don't see any other way to accomplish the same thing without
984 changing obj-elf.c (which may be the Right Thing, in the end). */
985 static void
986 set_section (name)
987 char *name;
989 char *saved_input_line_pointer;
991 saved_input_line_pointer = input_line_pointer;
992 input_line_pointer = name;
993 obj_elf_section (0);
994 input_line_pointer = saved_input_line_pointer;
997 /* Map 's' to SHF_IA_64_SHORT. */
1000 ia64_elf_section_letter (letter, ptr_msg)
1001 int letter;
1002 char **ptr_msg;
1004 if (letter == 's')
1005 return SHF_IA_64_SHORT;
1006 else if (letter == 'o')
1007 return SHF_LINK_ORDER;
1009 *ptr_msg = _("Bad .section directive: want a,o,s,w,x,M,S,G,T in string");
1010 return -1;
1013 /* Map SHF_IA_64_SHORT to SEC_SMALL_DATA. */
1015 flagword
1016 ia64_elf_section_flags (flags, attr, type)
1017 flagword flags;
1018 int attr, type ATTRIBUTE_UNUSED;
1020 if (attr & SHF_IA_64_SHORT)
1021 flags |= SEC_SMALL_DATA;
1022 return flags;
1026 ia64_elf_section_type (str, len)
1027 const char *str;
1028 size_t len;
1030 #define STREQ(s) ((len == sizeof (s) - 1) && (strncmp (str, s, sizeof (s) - 1) == 0))
1032 if (STREQ (ELF_STRING_ia64_unwind_info))
1033 return SHT_PROGBITS;
1035 if (STREQ (ELF_STRING_ia64_unwind_info_once))
1036 return SHT_PROGBITS;
1038 if (STREQ (ELF_STRING_ia64_unwind))
1039 return SHT_IA_64_UNWIND;
1041 if (STREQ (ELF_STRING_ia64_unwind_once))
1042 return SHT_IA_64_UNWIND;
1044 if (STREQ ("unwind"))
1045 return SHT_IA_64_UNWIND;
1047 return -1;
1048 #undef STREQ
1051 static unsigned int
1052 set_regstack (ins, locs, outs, rots)
1053 unsigned int ins, locs, outs, rots;
1055 /* Size of frame. */
1056 unsigned int sof;
1058 sof = ins + locs + outs;
1059 if (sof > 96)
1061 as_bad ("Size of frame exceeds maximum of 96 registers");
1062 return 0;
1064 if (rots > sof)
1066 as_warn ("Size of rotating registers exceeds frame size");
1067 return 0;
1069 md.in.base = REG_GR + 32;
1070 md.loc.base = md.in.base + ins;
1071 md.out.base = md.loc.base + locs;
1073 md.in.num_regs = ins;
1074 md.loc.num_regs = locs;
1075 md.out.num_regs = outs;
1076 md.rot.num_regs = rots;
1077 return sof;
1080 void
1081 ia64_flush_insns ()
1083 struct label_fix *lfix;
1084 segT saved_seg;
1085 subsegT saved_subseg;
1086 unw_rec_list *ptr;
1087 bfd_boolean mark;
1089 if (!md.last_text_seg)
1090 return;
1092 saved_seg = now_seg;
1093 saved_subseg = now_subseg;
1095 subseg_set (md.last_text_seg, 0);
1097 while (md.num_slots_in_use > 0)
1098 emit_one_bundle (); /* force out queued instructions */
1100 /* In case there are labels following the last instruction, resolve
1101 those now. */
1102 mark = FALSE;
1103 for (lfix = CURR_SLOT.label_fixups; lfix; lfix = lfix->next)
1105 symbol_set_value_now (lfix->sym);
1106 mark |= lfix->dw2_mark_labels;
1108 if (mark)
1110 dwarf2_where (&CURR_SLOT.debug_line);
1111 CURR_SLOT.debug_line.flags |= DWARF2_FLAG_BASIC_BLOCK;
1112 dwarf2_gen_line_info (frag_now_fix (), &CURR_SLOT.debug_line);
1114 CURR_SLOT.label_fixups = 0;
1116 for (lfix = CURR_SLOT.tag_fixups; lfix; lfix = lfix->next)
1117 symbol_set_value_now (lfix->sym);
1118 CURR_SLOT.tag_fixups = 0;
1120 /* In case there are unwind directives following the last instruction,
1121 resolve those now. We only handle prologue, body, and endp directives
1122 here. Give an error for others. */
1123 for (ptr = unwind.current_entry; ptr; ptr = ptr->next)
1125 switch (ptr->r.type)
1127 case prologue:
1128 case prologue_gr:
1129 case body:
1130 case endp:
1131 ptr->slot_number = (unsigned long) frag_more (0);
1132 ptr->slot_frag = frag_now;
1133 break;
1135 /* Allow any record which doesn't have a "t" field (i.e.,
1136 doesn't relate to a particular instruction). */
1137 case unwabi:
1138 case br_gr:
1139 case copy_state:
1140 case fr_mem:
1141 case frgr_mem:
1142 case gr_gr:
1143 case gr_mem:
1144 case label_state:
1145 case rp_br:
1146 case spill_base:
1147 case spill_mask:
1148 /* nothing */
1149 break;
1151 default:
1152 as_bad (_("Unwind directive not followed by an instruction."));
1153 break;
1156 unwind.current_entry = NULL;
1158 subseg_set (saved_seg, saved_subseg);
1160 if (md.qp.X_op == O_register)
1161 as_bad ("qualifying predicate not followed by instruction");
1164 static void
1165 ia64_do_align (int nbytes)
1167 char *saved_input_line_pointer = input_line_pointer;
1169 input_line_pointer = "";
1170 s_align_bytes (nbytes);
1171 input_line_pointer = saved_input_line_pointer;
1174 void
1175 ia64_cons_align (nbytes)
1176 int nbytes;
1178 if (md.auto_align)
1180 char *saved_input_line_pointer = input_line_pointer;
1181 input_line_pointer = "";
1182 s_align_bytes (nbytes);
1183 input_line_pointer = saved_input_line_pointer;
1187 /* Output COUNT bytes to a memory location. */
1188 static char *vbyte_mem_ptr = NULL;
1190 void
1191 output_vbyte_mem (count, ptr, comment)
1192 int count;
1193 char *ptr;
1194 char *comment ATTRIBUTE_UNUSED;
1196 int x;
1197 if (vbyte_mem_ptr == NULL)
1198 abort ();
1200 if (count == 0)
1201 return;
1202 for (x = 0; x < count; x++)
1203 *(vbyte_mem_ptr++) = ptr[x];
1206 /* Count the number of bytes required for records. */
1207 static int vbyte_count = 0;
1208 void
1209 count_output (count, ptr, comment)
1210 int count;
1211 char *ptr ATTRIBUTE_UNUSED;
1212 char *comment ATTRIBUTE_UNUSED;
1214 vbyte_count += count;
1217 static void
1218 output_R1_format (f, rtype, rlen)
1219 vbyte_func f;
1220 unw_record_type rtype;
1221 int rlen;
1223 int r = 0;
1224 char byte;
1225 if (rlen > 0x1f)
1227 output_R3_format (f, rtype, rlen);
1228 return;
1231 if (rtype == body)
1232 r = 1;
1233 else if (rtype != prologue)
1234 as_bad ("record type is not valid");
1236 byte = UNW_R1 | (r << 5) | (rlen & 0x1f);
1237 (*f) (1, &byte, NULL);
1240 static void
1241 output_R2_format (f, mask, grsave, rlen)
1242 vbyte_func f;
1243 int mask, grsave;
1244 unsigned long rlen;
1246 char bytes[20];
1247 int count = 2;
1248 mask = (mask & 0x0f);
1249 grsave = (grsave & 0x7f);
1251 bytes[0] = (UNW_R2 | (mask >> 1));
1252 bytes[1] = (((mask & 0x01) << 7) | grsave);
1253 count += output_leb128 (bytes + 2, rlen, 0);
1254 (*f) (count, bytes, NULL);
1257 static void
1258 output_R3_format (f, rtype, rlen)
1259 vbyte_func f;
1260 unw_record_type rtype;
1261 unsigned long rlen;
1263 int r = 0, count;
1264 char bytes[20];
1265 if (rlen <= 0x1f)
1267 output_R1_format (f, rtype, rlen);
1268 return;
1271 if (rtype == body)
1272 r = 1;
1273 else if (rtype != prologue)
1274 as_bad ("record type is not valid");
1275 bytes[0] = (UNW_R3 | r);
1276 count = output_leb128 (bytes + 1, rlen, 0);
1277 (*f) (count + 1, bytes, NULL);
1280 static void
1281 output_P1_format (f, brmask)
1282 vbyte_func f;
1283 int brmask;
1285 char byte;
1286 byte = UNW_P1 | (brmask & 0x1f);
1287 (*f) (1, &byte, NULL);
1290 static void
1291 output_P2_format (f, brmask, gr)
1292 vbyte_func f;
1293 int brmask;
1294 int gr;
1296 char bytes[2];
1297 brmask = (brmask & 0x1f);
1298 bytes[0] = UNW_P2 | (brmask >> 1);
1299 bytes[1] = (((brmask & 1) << 7) | gr);
1300 (*f) (2, bytes, NULL);
1303 static void
1304 output_P3_format (f, rtype, reg)
1305 vbyte_func f;
1306 unw_record_type rtype;
1307 int reg;
1309 char bytes[2];
1310 int r = 0;
1311 reg = (reg & 0x7f);
1312 switch (rtype)
1314 case psp_gr:
1315 r = 0;
1316 break;
1317 case rp_gr:
1318 r = 1;
1319 break;
1320 case pfs_gr:
1321 r = 2;
1322 break;
1323 case preds_gr:
1324 r = 3;
1325 break;
1326 case unat_gr:
1327 r = 4;
1328 break;
1329 case lc_gr:
1330 r = 5;
1331 break;
1332 case rp_br:
1333 r = 6;
1334 break;
1335 case rnat_gr:
1336 r = 7;
1337 break;
1338 case bsp_gr:
1339 r = 8;
1340 break;
1341 case bspstore_gr:
1342 r = 9;
1343 break;
1344 case fpsr_gr:
1345 r = 10;
1346 break;
1347 case priunat_gr:
1348 r = 11;
1349 break;
1350 default:
1351 as_bad ("Invalid record type for P3 format.");
1353 bytes[0] = (UNW_P3 | (r >> 1));
1354 bytes[1] = (((r & 1) << 7) | reg);
1355 (*f) (2, bytes, NULL);
1358 static void
1359 output_P4_format (f, imask, imask_size)
1360 vbyte_func f;
1361 unsigned char *imask;
1362 unsigned long imask_size;
1364 imask[0] = UNW_P4;
1365 (*f) (imask_size, (char *) imask, NULL);
1368 static void
1369 output_P5_format (f, grmask, frmask)
1370 vbyte_func f;
1371 int grmask;
1372 unsigned long frmask;
1374 char bytes[4];
1375 grmask = (grmask & 0x0f);
1377 bytes[0] = UNW_P5;
1378 bytes[1] = ((grmask << 4) | ((frmask & 0x000f0000) >> 16));
1379 bytes[2] = ((frmask & 0x0000ff00) >> 8);
1380 bytes[3] = (frmask & 0x000000ff);
1381 (*f) (4, bytes, NULL);
1384 static void
1385 output_P6_format (f, rtype, rmask)
1386 vbyte_func f;
1387 unw_record_type rtype;
1388 int rmask;
1390 char byte;
1391 int r = 0;
1393 if (rtype == gr_mem)
1394 r = 1;
1395 else if (rtype != fr_mem)
1396 as_bad ("Invalid record type for format P6");
1397 byte = (UNW_P6 | (r << 4) | (rmask & 0x0f));
1398 (*f) (1, &byte, NULL);
1401 static void
1402 output_P7_format (f, rtype, w1, w2)
1403 vbyte_func f;
1404 unw_record_type rtype;
1405 unsigned long w1;
1406 unsigned long w2;
1408 char bytes[20];
1409 int count = 1;
1410 int r = 0;
1411 count += output_leb128 (bytes + 1, w1, 0);
1412 switch (rtype)
1414 case mem_stack_f:
1415 r = 0;
1416 count += output_leb128 (bytes + count, w2 >> 4, 0);
1417 break;
1418 case mem_stack_v:
1419 r = 1;
1420 break;
1421 case spill_base:
1422 r = 2;
1423 break;
1424 case psp_sprel:
1425 r = 3;
1426 break;
1427 case rp_when:
1428 r = 4;
1429 break;
1430 case rp_psprel:
1431 r = 5;
1432 break;
1433 case pfs_when:
1434 r = 6;
1435 break;
1436 case pfs_psprel:
1437 r = 7;
1438 break;
1439 case preds_when:
1440 r = 8;
1441 break;
1442 case preds_psprel:
1443 r = 9;
1444 break;
1445 case lc_when:
1446 r = 10;
1447 break;
1448 case lc_psprel:
1449 r = 11;
1450 break;
1451 case unat_when:
1452 r = 12;
1453 break;
1454 case unat_psprel:
1455 r = 13;
1456 break;
1457 case fpsr_when:
1458 r = 14;
1459 break;
1460 case fpsr_psprel:
1461 r = 15;
1462 break;
1463 default:
1464 break;
1466 bytes[0] = (UNW_P7 | r);
1467 (*f) (count, bytes, NULL);
1470 static void
1471 output_P8_format (f, rtype, t)
1472 vbyte_func f;
1473 unw_record_type rtype;
1474 unsigned long t;
1476 char bytes[20];
1477 int r = 0;
1478 int count = 2;
1479 bytes[0] = UNW_P8;
1480 switch (rtype)
1482 case rp_sprel:
1483 r = 1;
1484 break;
1485 case pfs_sprel:
1486 r = 2;
1487 break;
1488 case preds_sprel:
1489 r = 3;
1490 break;
1491 case lc_sprel:
1492 r = 4;
1493 break;
1494 case unat_sprel:
1495 r = 5;
1496 break;
1497 case fpsr_sprel:
1498 r = 6;
1499 break;
1500 case bsp_when:
1501 r = 7;
1502 break;
1503 case bsp_psprel:
1504 r = 8;
1505 break;
1506 case bsp_sprel:
1507 r = 9;
1508 break;
1509 case bspstore_when:
1510 r = 10;
1511 break;
1512 case bspstore_psprel:
1513 r = 11;
1514 break;
1515 case bspstore_sprel:
1516 r = 12;
1517 break;
1518 case rnat_when:
1519 r = 13;
1520 break;
1521 case rnat_psprel:
1522 r = 14;
1523 break;
1524 case rnat_sprel:
1525 r = 15;
1526 break;
1527 case priunat_when_gr:
1528 r = 16;
1529 break;
1530 case priunat_psprel:
1531 r = 17;
1532 break;
1533 case priunat_sprel:
1534 r = 18;
1535 break;
1536 case priunat_when_mem:
1537 r = 19;
1538 break;
1539 default:
1540 break;
1542 bytes[1] = r;
1543 count += output_leb128 (bytes + 2, t, 0);
1544 (*f) (count, bytes, NULL);
1547 static void
1548 output_P9_format (f, grmask, gr)
1549 vbyte_func f;
1550 int grmask;
1551 int gr;
1553 char bytes[3];
1554 bytes[0] = UNW_P9;
1555 bytes[1] = (grmask & 0x0f);
1556 bytes[2] = (gr & 0x7f);
1557 (*f) (3, bytes, NULL);
1560 static void
1561 output_P10_format (f, abi, context)
1562 vbyte_func f;
1563 int abi;
1564 int context;
1566 char bytes[3];
1567 bytes[0] = UNW_P10;
1568 bytes[1] = (abi & 0xff);
1569 bytes[2] = (context & 0xff);
1570 (*f) (3, bytes, NULL);
1573 static void
1574 output_B1_format (f, rtype, label)
1575 vbyte_func f;
1576 unw_record_type rtype;
1577 unsigned long label;
1579 char byte;
1580 int r = 0;
1581 if (label > 0x1f)
1583 output_B4_format (f, rtype, label);
1584 return;
1586 if (rtype == copy_state)
1587 r = 1;
1588 else if (rtype != label_state)
1589 as_bad ("Invalid record type for format B1");
1591 byte = (UNW_B1 | (r << 5) | (label & 0x1f));
1592 (*f) (1, &byte, NULL);
1595 static void
1596 output_B2_format (f, ecount, t)
1597 vbyte_func f;
1598 unsigned long ecount;
1599 unsigned long t;
1601 char bytes[20];
1602 int count = 1;
1603 if (ecount > 0x1f)
1605 output_B3_format (f, ecount, t);
1606 return;
1608 bytes[0] = (UNW_B2 | (ecount & 0x1f));
1609 count += output_leb128 (bytes + 1, t, 0);
1610 (*f) (count, bytes, NULL);
1613 static void
1614 output_B3_format (f, ecount, t)
1615 vbyte_func f;
1616 unsigned long ecount;
1617 unsigned long t;
1619 char bytes[20];
1620 int count = 1;
1621 if (ecount <= 0x1f)
1623 output_B2_format (f, ecount, t);
1624 return;
1626 bytes[0] = UNW_B3;
1627 count += output_leb128 (bytes + 1, t, 0);
1628 count += output_leb128 (bytes + count, ecount, 0);
1629 (*f) (count, bytes, NULL);
1632 static void
1633 output_B4_format (f, rtype, label)
1634 vbyte_func f;
1635 unw_record_type rtype;
1636 unsigned long label;
1638 char bytes[20];
1639 int r = 0;
1640 int count = 1;
1641 if (label <= 0x1f)
1643 output_B1_format (f, rtype, label);
1644 return;
1647 if (rtype == copy_state)
1648 r = 1;
1649 else if (rtype != label_state)
1650 as_bad ("Invalid record type for format B1");
1652 bytes[0] = (UNW_B4 | (r << 3));
1653 count += output_leb128 (bytes + 1, label, 0);
1654 (*f) (count, bytes, NULL);
1657 static char
1658 format_ab_reg (ab, reg)
1659 int ab;
1660 int reg;
1662 int ret;
1663 ab = (ab & 3);
1664 reg = (reg & 0x1f);
1665 ret = (ab << 5) | reg;
1666 return ret;
1669 static void
1670 output_X1_format (f, rtype, ab, reg, t, w1)
1671 vbyte_func f;
1672 unw_record_type rtype;
1673 int ab, reg;
1674 unsigned long t;
1675 unsigned long w1;
1677 char bytes[20];
1678 int r = 0;
1679 int count = 2;
1680 bytes[0] = UNW_X1;
1682 if (rtype == spill_sprel)
1683 r = 1;
1684 else if (rtype != spill_psprel)
1685 as_bad ("Invalid record type for format X1");
1686 bytes[1] = ((r << 7) | format_ab_reg (ab, reg));
1687 count += output_leb128 (bytes + 2, t, 0);
1688 count += output_leb128 (bytes + count, w1, 0);
1689 (*f) (count, bytes, NULL);
1692 static void
1693 output_X2_format (f, ab, reg, x, y, treg, t)
1694 vbyte_func f;
1695 int ab, reg;
1696 int x, y, treg;
1697 unsigned long t;
1699 char bytes[20];
1700 int count = 3;
1701 bytes[0] = UNW_X2;
1702 bytes[1] = (((x & 1) << 7) | format_ab_reg (ab, reg));
1703 bytes[2] = (((y & 1) << 7) | (treg & 0x7f));
1704 count += output_leb128 (bytes + 3, t, 0);
1705 (*f) (count, bytes, NULL);
1708 static void
1709 output_X3_format (f, rtype, qp, ab, reg, t, w1)
1710 vbyte_func f;
1711 unw_record_type rtype;
1712 int qp;
1713 int ab, reg;
1714 unsigned long t;
1715 unsigned long w1;
1717 char bytes[20];
1718 int r = 0;
1719 int count = 3;
1720 bytes[0] = UNW_X3;
1722 if (rtype == spill_sprel_p)
1723 r = 1;
1724 else if (rtype != spill_psprel_p)
1725 as_bad ("Invalid record type for format X3");
1726 bytes[1] = ((r << 7) | (qp & 0x3f));
1727 bytes[2] = format_ab_reg (ab, reg);
1728 count += output_leb128 (bytes + 3, t, 0);
1729 count += output_leb128 (bytes + count, w1, 0);
1730 (*f) (count, bytes, NULL);
1733 static void
1734 output_X4_format (f, qp, ab, reg, x, y, treg, t)
1735 vbyte_func f;
1736 int qp;
1737 int ab, reg;
1738 int x, y, treg;
1739 unsigned long t;
1741 char bytes[20];
1742 int count = 4;
1743 bytes[0] = UNW_X4;
1744 bytes[1] = (qp & 0x3f);
1745 bytes[2] = (((x & 1) << 7) | format_ab_reg (ab, reg));
1746 bytes[3] = (((y & 1) << 7) | (treg & 0x7f));
1747 count += output_leb128 (bytes + 4, t, 0);
1748 (*f) (count, bytes, NULL);
1751 /* This function checks whether there are any outstanding .save-s and
1752 discards them if so. */
1754 static void
1755 check_pending_save (void)
1757 if (unwind.pending_saves)
1759 unw_rec_list *cur, *prev;
1761 as_warn ("Previous .save incomplete");
1762 for (cur = unwind.list, prev = NULL; cur; )
1763 if (&cur->r.record.p == unwind.pending_saves)
1765 if (prev)
1766 prev->next = cur->next;
1767 else
1768 unwind.list = cur->next;
1769 if (cur == unwind.tail)
1770 unwind.tail = prev;
1771 if (cur == unwind.current_entry)
1772 unwind.current_entry = cur->next;
1773 /* Don't free the first discarded record, it's being used as
1774 terminator for (currently) br_gr and gr_gr processing, and
1775 also prevents leaving a dangling pointer to it in its
1776 predecessor. */
1777 cur->r.record.p.grmask = 0;
1778 cur->r.record.p.brmask = 0;
1779 cur->r.record.p.frmask = 0;
1780 prev = cur->r.record.p.next;
1781 cur->r.record.p.next = NULL;
1782 cur = prev;
1783 break;
1785 else
1787 prev = cur;
1788 cur = cur->next;
1790 while (cur)
1792 prev = cur;
1793 cur = cur->r.record.p.next;
1794 free (prev);
1796 unwind.pending_saves = NULL;
1800 /* This function allocates a record list structure, and initializes fields. */
1802 static unw_rec_list *
1803 alloc_record (unw_record_type t)
1805 unw_rec_list *ptr;
1806 ptr = xmalloc (sizeof (*ptr));
1807 memset (ptr, 0, sizeof (*ptr));
1808 ptr->slot_number = SLOT_NUM_NOT_SET;
1809 ptr->r.type = t;
1810 return ptr;
1813 /* Dummy unwind record used for calculating the length of the last prologue or
1814 body region. */
1816 static unw_rec_list *
1817 output_endp ()
1819 unw_rec_list *ptr = alloc_record (endp);
1820 return ptr;
1823 static unw_rec_list *
1824 output_prologue ()
1826 unw_rec_list *ptr = alloc_record (prologue);
1827 memset (&ptr->r.record.r.mask, 0, sizeof (ptr->r.record.r.mask));
1828 return ptr;
1831 static unw_rec_list *
1832 output_prologue_gr (saved_mask, reg)
1833 unsigned int saved_mask;
1834 unsigned int reg;
1836 unw_rec_list *ptr = alloc_record (prologue_gr);
1837 memset (&ptr->r.record.r.mask, 0, sizeof (ptr->r.record.r.mask));
1838 ptr->r.record.r.grmask = saved_mask;
1839 ptr->r.record.r.grsave = reg;
1840 return ptr;
1843 static unw_rec_list *
1844 output_body ()
1846 unw_rec_list *ptr = alloc_record (body);
1847 return ptr;
1850 static unw_rec_list *
1851 output_mem_stack_f (size)
1852 unsigned int size;
1854 unw_rec_list *ptr = alloc_record (mem_stack_f);
1855 ptr->r.record.p.size = size;
1856 return ptr;
1859 static unw_rec_list *
1860 output_mem_stack_v ()
1862 unw_rec_list *ptr = alloc_record (mem_stack_v);
1863 return ptr;
1866 static unw_rec_list *
1867 output_psp_gr (gr)
1868 unsigned int gr;
1870 unw_rec_list *ptr = alloc_record (psp_gr);
1871 ptr->r.record.p.r.gr = gr;
1872 return ptr;
1875 static unw_rec_list *
1876 output_psp_sprel (offset)
1877 unsigned int offset;
1879 unw_rec_list *ptr = alloc_record (psp_sprel);
1880 ptr->r.record.p.off.sp = offset / 4;
1881 return ptr;
1884 static unw_rec_list *
1885 output_rp_when ()
1887 unw_rec_list *ptr = alloc_record (rp_when);
1888 return ptr;
1891 static unw_rec_list *
1892 output_rp_gr (gr)
1893 unsigned int gr;
1895 unw_rec_list *ptr = alloc_record (rp_gr);
1896 ptr->r.record.p.r.gr = gr;
1897 return ptr;
1900 static unw_rec_list *
1901 output_rp_br (br)
1902 unsigned int br;
1904 unw_rec_list *ptr = alloc_record (rp_br);
1905 ptr->r.record.p.r.br = br;
1906 return ptr;
1909 static unw_rec_list *
1910 output_rp_psprel (offset)
1911 unsigned int offset;
1913 unw_rec_list *ptr = alloc_record (rp_psprel);
1914 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
1915 return ptr;
1918 static unw_rec_list *
1919 output_rp_sprel (offset)
1920 unsigned int offset;
1922 unw_rec_list *ptr = alloc_record (rp_sprel);
1923 ptr->r.record.p.off.sp = offset / 4;
1924 return ptr;
1927 static unw_rec_list *
1928 output_pfs_when ()
1930 unw_rec_list *ptr = alloc_record (pfs_when);
1931 return ptr;
1934 static unw_rec_list *
1935 output_pfs_gr (gr)
1936 unsigned int gr;
1938 unw_rec_list *ptr = alloc_record (pfs_gr);
1939 ptr->r.record.p.r.gr = gr;
1940 return ptr;
1943 static unw_rec_list *
1944 output_pfs_psprel (offset)
1945 unsigned int offset;
1947 unw_rec_list *ptr = alloc_record (pfs_psprel);
1948 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
1949 return ptr;
1952 static unw_rec_list *
1953 output_pfs_sprel (offset)
1954 unsigned int offset;
1956 unw_rec_list *ptr = alloc_record (pfs_sprel);
1957 ptr->r.record.p.off.sp = offset / 4;
1958 return ptr;
1961 static unw_rec_list *
1962 output_preds_when ()
1964 unw_rec_list *ptr = alloc_record (preds_when);
1965 return ptr;
1968 static unw_rec_list *
1969 output_preds_gr (gr)
1970 unsigned int gr;
1972 unw_rec_list *ptr = alloc_record (preds_gr);
1973 ptr->r.record.p.r.gr = gr;
1974 return ptr;
1977 static unw_rec_list *
1978 output_preds_psprel (offset)
1979 unsigned int offset;
1981 unw_rec_list *ptr = alloc_record (preds_psprel);
1982 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
1983 return ptr;
1986 static unw_rec_list *
1987 output_preds_sprel (offset)
1988 unsigned int offset;
1990 unw_rec_list *ptr = alloc_record (preds_sprel);
1991 ptr->r.record.p.off.sp = offset / 4;
1992 return ptr;
1995 static unw_rec_list *
1996 output_fr_mem (mask)
1997 unsigned int mask;
1999 unw_rec_list *ptr = alloc_record (fr_mem);
2000 unw_rec_list *cur = ptr;
2002 ptr->r.record.p.frmask = mask;
2003 unwind.pending_saves = &ptr->r.record.p;
2004 for (;;)
2006 unw_rec_list *prev = cur;
2008 /* Clear least significant set bit. */
2009 mask &= ~(mask & (~mask + 1));
2010 if (!mask)
2011 return ptr;
2012 cur = alloc_record (fr_mem);
2013 cur->r.record.p.frmask = mask;
2014 /* Retain only least significant bit. */
2015 prev->r.record.p.frmask ^= mask;
2016 prev->r.record.p.next = cur;
2020 static unw_rec_list *
2021 output_frgr_mem (gr_mask, fr_mask)
2022 unsigned int gr_mask;
2023 unsigned int fr_mask;
2025 unw_rec_list *ptr = alloc_record (frgr_mem);
2026 unw_rec_list *cur = ptr;
2028 unwind.pending_saves = &cur->r.record.p;
2029 cur->r.record.p.frmask = fr_mask;
2030 while (fr_mask)
2032 unw_rec_list *prev = cur;
2034 /* Clear least significant set bit. */
2035 fr_mask &= ~(fr_mask & (~fr_mask + 1));
2036 if (!gr_mask && !fr_mask)
2037 return ptr;
2038 cur = alloc_record (frgr_mem);
2039 cur->r.record.p.frmask = fr_mask;
2040 /* Retain only least significant bit. */
2041 prev->r.record.p.frmask ^= fr_mask;
2042 prev->r.record.p.next = cur;
2044 cur->r.record.p.grmask = gr_mask;
2045 for (;;)
2047 unw_rec_list *prev = cur;
2049 /* Clear least significant set bit. */
2050 gr_mask &= ~(gr_mask & (~gr_mask + 1));
2051 if (!gr_mask)
2052 return ptr;
2053 cur = alloc_record (frgr_mem);
2054 cur->r.record.p.grmask = gr_mask;
2055 /* Retain only least significant bit. */
2056 prev->r.record.p.grmask ^= gr_mask;
2057 prev->r.record.p.next = cur;
2061 static unw_rec_list *
2062 output_gr_gr (mask, reg)
2063 unsigned int mask;
2064 unsigned int reg;
2066 unw_rec_list *ptr = alloc_record (gr_gr);
2067 unw_rec_list *cur = ptr;
2069 ptr->r.record.p.grmask = mask;
2070 ptr->r.record.p.r.gr = reg;
2071 unwind.pending_saves = &ptr->r.record.p;
2072 for (;;)
2074 unw_rec_list *prev = cur;
2076 /* Clear least significant set bit. */
2077 mask &= ~(mask & (~mask + 1));
2078 if (!mask)
2079 return ptr;
2080 cur = alloc_record (gr_gr);
2081 cur->r.record.p.grmask = mask;
2082 /* Indicate this record shouldn't be output. */
2083 cur->r.record.p.r.gr = REG_NUM;
2084 /* Retain only least significant bit. */
2085 prev->r.record.p.grmask ^= mask;
2086 prev->r.record.p.next = cur;
2090 static unw_rec_list *
2091 output_gr_mem (mask)
2092 unsigned int mask;
2094 unw_rec_list *ptr = alloc_record (gr_mem);
2095 unw_rec_list *cur = ptr;
2097 ptr->r.record.p.grmask = mask;
2098 unwind.pending_saves = &ptr->r.record.p;
2099 for (;;)
2101 unw_rec_list *prev = cur;
2103 /* Clear least significant set bit. */
2104 mask &= ~(mask & (~mask + 1));
2105 if (!mask)
2106 return ptr;
2107 cur = alloc_record (gr_mem);
2108 cur->r.record.p.grmask = mask;
2109 /* Retain only least significant bit. */
2110 prev->r.record.p.grmask ^= mask;
2111 prev->r.record.p.next = cur;
2115 static unw_rec_list *
2116 output_br_mem (unsigned int mask)
2118 unw_rec_list *ptr = alloc_record (br_mem);
2119 unw_rec_list *cur = ptr;
2121 ptr->r.record.p.brmask = mask;
2122 unwind.pending_saves = &ptr->r.record.p;
2123 for (;;)
2125 unw_rec_list *prev = cur;
2127 /* Clear least significant set bit. */
2128 mask &= ~(mask & (~mask + 1));
2129 if (!mask)
2130 return ptr;
2131 cur = alloc_record (br_mem);
2132 cur->r.record.p.brmask = mask;
2133 /* Retain only least significant bit. */
2134 prev->r.record.p.brmask ^= mask;
2135 prev->r.record.p.next = cur;
2139 static unw_rec_list *
2140 output_br_gr (mask, reg)
2141 unsigned int mask;
2142 unsigned int reg;
2144 unw_rec_list *ptr = alloc_record (br_gr);
2145 unw_rec_list *cur = ptr;
2147 ptr->r.record.p.brmask = mask;
2148 ptr->r.record.p.r.gr = reg;
2149 unwind.pending_saves = &ptr->r.record.p;
2150 for (;;)
2152 unw_rec_list *prev = cur;
2154 /* Clear least significant set bit. */
2155 mask &= ~(mask & (~mask + 1));
2156 if (!mask)
2157 return ptr;
2158 cur = alloc_record (br_gr);
2159 cur->r.record.p.brmask = mask;
2160 /* Indicate this record shouldn't be output. */
2161 cur->r.record.p.r.gr = REG_NUM;
2162 /* Retain only least significant bit. */
2163 prev->r.record.p.brmask ^= mask;
2164 prev->r.record.p.next = cur;
2168 static unw_rec_list *
2169 output_spill_base (offset)
2170 unsigned int offset;
2172 unw_rec_list *ptr = alloc_record (spill_base);
2173 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2174 return ptr;
2177 static unw_rec_list *
2178 output_unat_when ()
2180 unw_rec_list *ptr = alloc_record (unat_when);
2181 return ptr;
2184 static unw_rec_list *
2185 output_unat_gr (gr)
2186 unsigned int gr;
2188 unw_rec_list *ptr = alloc_record (unat_gr);
2189 ptr->r.record.p.r.gr = gr;
2190 return ptr;
2193 static unw_rec_list *
2194 output_unat_psprel (offset)
2195 unsigned int offset;
2197 unw_rec_list *ptr = alloc_record (unat_psprel);
2198 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2199 return ptr;
2202 static unw_rec_list *
2203 output_unat_sprel (offset)
2204 unsigned int offset;
2206 unw_rec_list *ptr = alloc_record (unat_sprel);
2207 ptr->r.record.p.off.sp = offset / 4;
2208 return ptr;
2211 static unw_rec_list *
2212 output_lc_when ()
2214 unw_rec_list *ptr = alloc_record (lc_when);
2215 return ptr;
2218 static unw_rec_list *
2219 output_lc_gr (gr)
2220 unsigned int gr;
2222 unw_rec_list *ptr = alloc_record (lc_gr);
2223 ptr->r.record.p.r.gr = gr;
2224 return ptr;
2227 static unw_rec_list *
2228 output_lc_psprel (offset)
2229 unsigned int offset;
2231 unw_rec_list *ptr = alloc_record (lc_psprel);
2232 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2233 return ptr;
2236 static unw_rec_list *
2237 output_lc_sprel (offset)
2238 unsigned int offset;
2240 unw_rec_list *ptr = alloc_record (lc_sprel);
2241 ptr->r.record.p.off.sp = offset / 4;
2242 return ptr;
2245 static unw_rec_list *
2246 output_fpsr_when ()
2248 unw_rec_list *ptr = alloc_record (fpsr_when);
2249 return ptr;
2252 static unw_rec_list *
2253 output_fpsr_gr (gr)
2254 unsigned int gr;
2256 unw_rec_list *ptr = alloc_record (fpsr_gr);
2257 ptr->r.record.p.r.gr = gr;
2258 return ptr;
2261 static unw_rec_list *
2262 output_fpsr_psprel (offset)
2263 unsigned int offset;
2265 unw_rec_list *ptr = alloc_record (fpsr_psprel);
2266 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2267 return ptr;
2270 static unw_rec_list *
2271 output_fpsr_sprel (offset)
2272 unsigned int offset;
2274 unw_rec_list *ptr = alloc_record (fpsr_sprel);
2275 ptr->r.record.p.off.sp = offset / 4;
2276 return ptr;
2279 static unw_rec_list *
2280 output_priunat_when_gr ()
2282 unw_rec_list *ptr = alloc_record (priunat_when_gr);
2283 return ptr;
2286 static unw_rec_list *
2287 output_priunat_when_mem ()
2289 unw_rec_list *ptr = alloc_record (priunat_when_mem);
2290 return ptr;
2293 static unw_rec_list *
2294 output_priunat_gr (gr)
2295 unsigned int gr;
2297 unw_rec_list *ptr = alloc_record (priunat_gr);
2298 ptr->r.record.p.r.gr = gr;
2299 return ptr;
2302 static unw_rec_list *
2303 output_priunat_psprel (offset)
2304 unsigned int offset;
2306 unw_rec_list *ptr = alloc_record (priunat_psprel);
2307 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2308 return ptr;
2311 static unw_rec_list *
2312 output_priunat_sprel (offset)
2313 unsigned int offset;
2315 unw_rec_list *ptr = alloc_record (priunat_sprel);
2316 ptr->r.record.p.off.sp = offset / 4;
2317 return ptr;
2320 static unw_rec_list *
2321 output_bsp_when ()
2323 unw_rec_list *ptr = alloc_record (bsp_when);
2324 return ptr;
2327 static unw_rec_list *
2328 output_bsp_gr (gr)
2329 unsigned int gr;
2331 unw_rec_list *ptr = alloc_record (bsp_gr);
2332 ptr->r.record.p.r.gr = gr;
2333 return ptr;
2336 static unw_rec_list *
2337 output_bsp_psprel (offset)
2338 unsigned int offset;
2340 unw_rec_list *ptr = alloc_record (bsp_psprel);
2341 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2342 return ptr;
2345 static unw_rec_list *
2346 output_bsp_sprel (offset)
2347 unsigned int offset;
2349 unw_rec_list *ptr = alloc_record (bsp_sprel);
2350 ptr->r.record.p.off.sp = offset / 4;
2351 return ptr;
2354 static unw_rec_list *
2355 output_bspstore_when ()
2357 unw_rec_list *ptr = alloc_record (bspstore_when);
2358 return ptr;
2361 static unw_rec_list *
2362 output_bspstore_gr (gr)
2363 unsigned int gr;
2365 unw_rec_list *ptr = alloc_record (bspstore_gr);
2366 ptr->r.record.p.r.gr = gr;
2367 return ptr;
2370 static unw_rec_list *
2371 output_bspstore_psprel (offset)
2372 unsigned int offset;
2374 unw_rec_list *ptr = alloc_record (bspstore_psprel);
2375 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2376 return ptr;
2379 static unw_rec_list *
2380 output_bspstore_sprel (offset)
2381 unsigned int offset;
2383 unw_rec_list *ptr = alloc_record (bspstore_sprel);
2384 ptr->r.record.p.off.sp = offset / 4;
2385 return ptr;
2388 static unw_rec_list *
2389 output_rnat_when ()
2391 unw_rec_list *ptr = alloc_record (rnat_when);
2392 return ptr;
2395 static unw_rec_list *
2396 output_rnat_gr (gr)
2397 unsigned int gr;
2399 unw_rec_list *ptr = alloc_record (rnat_gr);
2400 ptr->r.record.p.r.gr = gr;
2401 return ptr;
2404 static unw_rec_list *
2405 output_rnat_psprel (offset)
2406 unsigned int offset;
2408 unw_rec_list *ptr = alloc_record (rnat_psprel);
2409 ptr->r.record.p.off.psp = ENCODED_PSP_OFFSET (offset);
2410 return ptr;
2413 static unw_rec_list *
2414 output_rnat_sprel (offset)
2415 unsigned int offset;
2417 unw_rec_list *ptr = alloc_record (rnat_sprel);
2418 ptr->r.record.p.off.sp = offset / 4;
2419 return ptr;
2422 static unw_rec_list *
2423 output_unwabi (abi, context)
2424 unsigned long abi;
2425 unsigned long context;
2427 unw_rec_list *ptr = alloc_record (unwabi);
2428 ptr->r.record.p.abi = abi;
2429 ptr->r.record.p.context = context;
2430 return ptr;
2433 static unw_rec_list *
2434 output_epilogue (unsigned long ecount)
2436 unw_rec_list *ptr = alloc_record (epilogue);
2437 ptr->r.record.b.ecount = ecount;
2438 return ptr;
2441 static unw_rec_list *
2442 output_label_state (unsigned long label)
2444 unw_rec_list *ptr = alloc_record (label_state);
2445 ptr->r.record.b.label = label;
2446 return ptr;
2449 static unw_rec_list *
2450 output_copy_state (unsigned long label)
2452 unw_rec_list *ptr = alloc_record (copy_state);
2453 ptr->r.record.b.label = label;
2454 return ptr;
2457 static unw_rec_list *
2458 output_spill_psprel (ab, reg, offset, predicate)
2459 unsigned int ab;
2460 unsigned int reg;
2461 unsigned int offset;
2462 unsigned int predicate;
2464 unw_rec_list *ptr = alloc_record (predicate ? spill_psprel_p : spill_psprel);
2465 ptr->r.record.x.ab = ab;
2466 ptr->r.record.x.reg = reg;
2467 ptr->r.record.x.where.pspoff = ENCODED_PSP_OFFSET (offset);
2468 ptr->r.record.x.qp = predicate;
2469 return ptr;
2472 static unw_rec_list *
2473 output_spill_sprel (ab, reg, offset, predicate)
2474 unsigned int ab;
2475 unsigned int reg;
2476 unsigned int offset;
2477 unsigned int predicate;
2479 unw_rec_list *ptr = alloc_record (predicate ? spill_sprel_p : spill_sprel);
2480 ptr->r.record.x.ab = ab;
2481 ptr->r.record.x.reg = reg;
2482 ptr->r.record.x.where.spoff = offset / 4;
2483 ptr->r.record.x.qp = predicate;
2484 return ptr;
2487 static unw_rec_list *
2488 output_spill_reg (ab, reg, targ_reg, xy, predicate)
2489 unsigned int ab;
2490 unsigned int reg;
2491 unsigned int targ_reg;
2492 unsigned int xy;
2493 unsigned int predicate;
2495 unw_rec_list *ptr = alloc_record (predicate ? spill_reg_p : spill_reg);
2496 ptr->r.record.x.ab = ab;
2497 ptr->r.record.x.reg = reg;
2498 ptr->r.record.x.where.reg = targ_reg;
2499 ptr->r.record.x.xy = xy;
2500 ptr->r.record.x.qp = predicate;
2501 return ptr;
2504 /* Given a unw_rec_list process the correct format with the
2505 specified function. */
2507 static void
2508 process_one_record (ptr, f)
2509 unw_rec_list *ptr;
2510 vbyte_func f;
2512 unsigned int fr_mask, gr_mask;
2514 switch (ptr->r.type)
2516 /* This is a dummy record that takes up no space in the output. */
2517 case endp:
2518 break;
2520 case gr_mem:
2521 case fr_mem:
2522 case br_mem:
2523 case frgr_mem:
2524 /* These are taken care of by prologue/prologue_gr. */
2525 break;
2527 case prologue_gr:
2528 case prologue:
2529 if (ptr->r.type == prologue_gr)
2530 output_R2_format (f, ptr->r.record.r.grmask,
2531 ptr->r.record.r.grsave, ptr->r.record.r.rlen);
2532 else
2533 output_R1_format (f, ptr->r.type, ptr->r.record.r.rlen);
2535 /* Output descriptor(s) for union of register spills (if any). */
2536 gr_mask = ptr->r.record.r.mask.gr_mem;
2537 fr_mask = ptr->r.record.r.mask.fr_mem;
2538 if (fr_mask)
2540 if ((fr_mask & ~0xfUL) == 0)
2541 output_P6_format (f, fr_mem, fr_mask);
2542 else
2544 output_P5_format (f, gr_mask, fr_mask);
2545 gr_mask = 0;
2548 if (gr_mask)
2549 output_P6_format (f, gr_mem, gr_mask);
2550 if (ptr->r.record.r.mask.br_mem)
2551 output_P1_format (f, ptr->r.record.r.mask.br_mem);
2553 /* output imask descriptor if necessary: */
2554 if (ptr->r.record.r.mask.i)
2555 output_P4_format (f, ptr->r.record.r.mask.i,
2556 ptr->r.record.r.imask_size);
2557 break;
2559 case body:
2560 output_R1_format (f, ptr->r.type, ptr->r.record.r.rlen);
2561 break;
2562 case mem_stack_f:
2563 case mem_stack_v:
2564 output_P7_format (f, ptr->r.type, ptr->r.record.p.t,
2565 ptr->r.record.p.size);
2566 break;
2567 case psp_gr:
2568 case rp_gr:
2569 case pfs_gr:
2570 case preds_gr:
2571 case unat_gr:
2572 case lc_gr:
2573 case fpsr_gr:
2574 case priunat_gr:
2575 case bsp_gr:
2576 case bspstore_gr:
2577 case rnat_gr:
2578 output_P3_format (f, ptr->r.type, ptr->r.record.p.r.gr);
2579 break;
2580 case rp_br:
2581 output_P3_format (f, rp_br, ptr->r.record.p.r.br);
2582 break;
2583 case psp_sprel:
2584 output_P7_format (f, psp_sprel, ptr->r.record.p.off.sp, 0);
2585 break;
2586 case rp_when:
2587 case pfs_when:
2588 case preds_when:
2589 case unat_when:
2590 case lc_when:
2591 case fpsr_when:
2592 output_P7_format (f, ptr->r.type, ptr->r.record.p.t, 0);
2593 break;
2594 case rp_psprel:
2595 case pfs_psprel:
2596 case preds_psprel:
2597 case unat_psprel:
2598 case lc_psprel:
2599 case fpsr_psprel:
2600 case spill_base:
2601 output_P7_format (f, ptr->r.type, ptr->r.record.p.off.psp, 0);
2602 break;
2603 case rp_sprel:
2604 case pfs_sprel:
2605 case preds_sprel:
2606 case unat_sprel:
2607 case lc_sprel:
2608 case fpsr_sprel:
2609 case priunat_sprel:
2610 case bsp_sprel:
2611 case bspstore_sprel:
2612 case rnat_sprel:
2613 output_P8_format (f, ptr->r.type, ptr->r.record.p.off.sp);
2614 break;
2615 case gr_gr:
2616 if (ptr->r.record.p.r.gr < REG_NUM)
2618 const unw_rec_list *cur = ptr;
2620 gr_mask = cur->r.record.p.grmask;
2621 while ((cur = cur->r.record.p.next) != NULL)
2622 gr_mask |= cur->r.record.p.grmask;
2623 output_P9_format (f, gr_mask, ptr->r.record.p.r.gr);
2625 break;
2626 case br_gr:
2627 if (ptr->r.record.p.r.gr < REG_NUM)
2629 const unw_rec_list *cur = ptr;
2631 gr_mask = cur->r.record.p.brmask;
2632 while ((cur = cur->r.record.p.next) != NULL)
2633 gr_mask |= cur->r.record.p.brmask;
2634 output_P2_format (f, gr_mask, ptr->r.record.p.r.gr);
2636 break;
2637 case spill_mask:
2638 as_bad ("spill_mask record unimplemented.");
2639 break;
2640 case priunat_when_gr:
2641 case priunat_when_mem:
2642 case bsp_when:
2643 case bspstore_when:
2644 case rnat_when:
2645 output_P8_format (f, ptr->r.type, ptr->r.record.p.t);
2646 break;
2647 case priunat_psprel:
2648 case bsp_psprel:
2649 case bspstore_psprel:
2650 case rnat_psprel:
2651 output_P8_format (f, ptr->r.type, ptr->r.record.p.off.psp);
2652 break;
2653 case unwabi:
2654 output_P10_format (f, ptr->r.record.p.abi, ptr->r.record.p.context);
2655 break;
2656 case epilogue:
2657 output_B3_format (f, ptr->r.record.b.ecount, ptr->r.record.b.t);
2658 break;
2659 case label_state:
2660 case copy_state:
2661 output_B4_format (f, ptr->r.type, ptr->r.record.b.label);
2662 break;
2663 case spill_psprel:
2664 output_X1_format (f, ptr->r.type, ptr->r.record.x.ab,
2665 ptr->r.record.x.reg, ptr->r.record.x.t,
2666 ptr->r.record.x.where.pspoff);
2667 break;
2668 case spill_sprel:
2669 output_X1_format (f, ptr->r.type, ptr->r.record.x.ab,
2670 ptr->r.record.x.reg, ptr->r.record.x.t,
2671 ptr->r.record.x.where.spoff);
2672 break;
2673 case spill_reg:
2674 output_X2_format (f, ptr->r.record.x.ab, ptr->r.record.x.reg,
2675 ptr->r.record.x.xy >> 1, ptr->r.record.x.xy,
2676 ptr->r.record.x.where.reg, ptr->r.record.x.t);
2677 break;
2678 case spill_psprel_p:
2679 output_X3_format (f, ptr->r.type, ptr->r.record.x.qp,
2680 ptr->r.record.x.ab, ptr->r.record.x.reg,
2681 ptr->r.record.x.t, ptr->r.record.x.where.pspoff);
2682 break;
2683 case spill_sprel_p:
2684 output_X3_format (f, ptr->r.type, ptr->r.record.x.qp,
2685 ptr->r.record.x.ab, ptr->r.record.x.reg,
2686 ptr->r.record.x.t, ptr->r.record.x.where.spoff);
2687 break;
2688 case spill_reg_p:
2689 output_X4_format (f, ptr->r.record.x.qp, ptr->r.record.x.ab,
2690 ptr->r.record.x.reg, ptr->r.record.x.xy >> 1,
2691 ptr->r.record.x.xy, ptr->r.record.x.where.reg,
2692 ptr->r.record.x.t);
2693 break;
2694 default:
2695 as_bad ("record_type_not_valid");
2696 break;
2700 /* Given a unw_rec_list list, process all the records with
2701 the specified function. */
2702 static void
2703 process_unw_records (list, f)
2704 unw_rec_list *list;
2705 vbyte_func f;
2707 unw_rec_list *ptr;
2708 for (ptr = list; ptr; ptr = ptr->next)
2709 process_one_record (ptr, f);
2712 /* Determine the size of a record list in bytes. */
2713 static int
2714 calc_record_size (list)
2715 unw_rec_list *list;
2717 vbyte_count = 0;
2718 process_unw_records (list, count_output);
2719 return vbyte_count;
2722 /* Return the number of bits set in the input value.
2723 Perhaps this has a better place... */
2724 #if __GNUC__ > 3 || (__GNUC__ == 3 && __GNUC_MINOR__ >= 4)
2725 # define popcount __builtin_popcount
2726 #else
2727 static int
2728 popcount (unsigned x)
2730 static const unsigned char popcnt[16] =
2732 0, 1, 1, 2,
2733 1, 2, 2, 3,
2734 1, 2, 2, 3,
2735 2, 3, 3, 4
2738 if (x < NELEMS (popcnt))
2739 return popcnt[x];
2740 return popcnt[x % NELEMS (popcnt)] + popcount (x / NELEMS (popcnt));
2742 #endif
2744 /* Update IMASK bitmask to reflect the fact that one or more registers
2745 of type TYPE are saved starting at instruction with index T. If N
2746 bits are set in REGMASK, it is assumed that instructions T through
2747 T+N-1 save these registers.
2749 TYPE values:
2750 0: no save
2751 1: instruction saves next fp reg
2752 2: instruction saves next general reg
2753 3: instruction saves next branch reg */
2754 static void
2755 set_imask (region, regmask, t, type)
2756 unw_rec_list *region;
2757 unsigned long regmask;
2758 unsigned long t;
2759 unsigned int type;
2761 unsigned char *imask;
2762 unsigned long imask_size;
2763 unsigned int i;
2764 int pos;
2766 imask = region->r.record.r.mask.i;
2767 imask_size = region->r.record.r.imask_size;
2768 if (!imask)
2770 imask_size = (region->r.record.r.rlen * 2 + 7) / 8 + 1;
2771 imask = xmalloc (imask_size);
2772 memset (imask, 0, imask_size);
2774 region->r.record.r.imask_size = imask_size;
2775 region->r.record.r.mask.i = imask;
2778 i = (t / 4) + 1;
2779 pos = 2 * (3 - t % 4);
2780 while (regmask)
2782 if (i >= imask_size)
2784 as_bad ("Ignoring attempt to spill beyond end of region");
2785 return;
2788 imask[i] |= (type & 0x3) << pos;
2790 regmask &= (regmask - 1);
2791 pos -= 2;
2792 if (pos < 0)
2794 pos = 0;
2795 ++i;
2800 /* Return the number of instruction slots from FIRST_ADDR to SLOT_ADDR.
2801 SLOT_FRAG is the frag containing SLOT_ADDR, and FIRST_FRAG is the frag
2802 containing FIRST_ADDR. If BEFORE_RELAX, then we use worst-case estimates
2803 for frag sizes. */
2805 unsigned long
2806 slot_index (slot_addr, slot_frag, first_addr, first_frag, before_relax)
2807 unsigned long slot_addr;
2808 fragS *slot_frag;
2809 unsigned long first_addr;
2810 fragS *first_frag;
2811 int before_relax;
2813 unsigned long index = 0;
2815 /* First time we are called, the initial address and frag are invalid. */
2816 if (first_addr == 0)
2817 return 0;
2819 /* If the two addresses are in different frags, then we need to add in
2820 the remaining size of this frag, and then the entire size of intermediate
2821 frags. */
2822 while (slot_frag != first_frag)
2824 unsigned long start_addr = (unsigned long) &first_frag->fr_literal;
2826 if (! before_relax)
2828 /* We can get the final addresses only during and after
2829 relaxation. */
2830 if (first_frag->fr_next && first_frag->fr_next->fr_address)
2831 index += 3 * ((first_frag->fr_next->fr_address
2832 - first_frag->fr_address
2833 - first_frag->fr_fix) >> 4);
2835 else
2836 /* We don't know what the final addresses will be. We try our
2837 best to estimate. */
2838 switch (first_frag->fr_type)
2840 default:
2841 break;
2843 case rs_space:
2844 as_fatal ("only constant space allocation is supported");
2845 break;
2847 case rs_align:
2848 case rs_align_code:
2849 case rs_align_test:
2850 /* Take alignment into account. Assume the worst case
2851 before relaxation. */
2852 index += 3 * ((1 << first_frag->fr_offset) >> 4);
2853 break;
2855 case rs_org:
2856 if (first_frag->fr_symbol)
2858 as_fatal ("only constant offsets are supported");
2859 break;
2861 case rs_fill:
2862 index += 3 * (first_frag->fr_offset >> 4);
2863 break;
2866 /* Add in the full size of the frag converted to instruction slots. */
2867 index += 3 * (first_frag->fr_fix >> 4);
2868 /* Subtract away the initial part before first_addr. */
2869 index -= (3 * ((first_addr >> 4) - (start_addr >> 4))
2870 + ((first_addr & 0x3) - (start_addr & 0x3)));
2872 /* Move to the beginning of the next frag. */
2873 first_frag = first_frag->fr_next;
2874 first_addr = (unsigned long) &first_frag->fr_literal;
2876 /* This can happen if there is section switching in the middle of a
2877 function, causing the frag chain for the function to be broken. */
2878 if (first_frag == NULL)
2880 /* We get six warnings for one problem, because of the loop in
2881 fixup_unw_records, and because fixup_unw_records is called 3
2882 times: once before creating the variant frag, once to estimate
2883 its size, and once to relax it. This is unreasonable, so we use
2884 a static var to make sure we only emit the warning once. */
2885 static int warned = 0;
2887 if (!warned)
2889 as_warn ("Corrupted unwind info due to unsupported section switching");
2890 warned = 1;
2893 return index;
2897 /* Add in the used part of the last frag. */
2898 index += (3 * ((slot_addr >> 4) - (first_addr >> 4))
2899 + ((slot_addr & 0x3) - (first_addr & 0x3)));
2900 return index;
2903 /* Optimize unwind record directives. */
2905 static unw_rec_list *
2906 optimize_unw_records (list)
2907 unw_rec_list *list;
2909 if (!list)
2910 return NULL;
2912 /* If the only unwind record is ".prologue" or ".prologue" followed
2913 by ".body", then we can optimize the unwind directives away. */
2914 if (list->r.type == prologue
2915 && (list->next->r.type == endp
2916 || (list->next->r.type == body && list->next->next->r.type == endp)))
2917 return NULL;
2919 return list;
2922 /* Given a complete record list, process any records which have
2923 unresolved fields, (ie length counts for a prologue). After
2924 this has been run, all necessary information should be available
2925 within each record to generate an image. */
2927 static void
2928 fixup_unw_records (list, before_relax)
2929 unw_rec_list *list;
2930 int before_relax;
2932 unw_rec_list *ptr, *region = 0;
2933 unsigned long first_addr = 0, rlen = 0, t;
2934 fragS *first_frag = 0;
2936 for (ptr = list; ptr; ptr = ptr->next)
2938 if (ptr->slot_number == SLOT_NUM_NOT_SET)
2939 as_bad (" Insn slot not set in unwind record.");
2940 t = slot_index (ptr->slot_number, ptr->slot_frag,
2941 first_addr, first_frag, before_relax);
2942 switch (ptr->r.type)
2944 case prologue:
2945 case prologue_gr:
2946 case body:
2948 unw_rec_list *last;
2949 int size;
2950 unsigned long last_addr = 0;
2951 fragS *last_frag = NULL;
2953 first_addr = ptr->slot_number;
2954 first_frag = ptr->slot_frag;
2955 /* Find either the next body/prologue start, or the end of
2956 the function, and determine the size of the region. */
2957 for (last = ptr->next; last != NULL; last = last->next)
2958 if (last->r.type == prologue || last->r.type == prologue_gr
2959 || last->r.type == body || last->r.type == endp)
2961 last_addr = last->slot_number;
2962 last_frag = last->slot_frag;
2963 break;
2965 size = slot_index (last_addr, last_frag, first_addr, first_frag,
2966 before_relax);
2967 rlen = ptr->r.record.r.rlen = size;
2968 if (ptr->r.type == body)
2969 /* End of region. */
2970 region = 0;
2971 else
2972 region = ptr;
2973 break;
2975 case epilogue:
2976 if (t < rlen)
2977 ptr->r.record.b.t = rlen - 1 - t;
2978 else
2979 /* This happens when a memory-stack-less procedure uses a
2980 ".restore sp" directive at the end of a region to pop
2981 the frame state. */
2982 ptr->r.record.b.t = 0;
2983 break;
2985 case mem_stack_f:
2986 case mem_stack_v:
2987 case rp_when:
2988 case pfs_when:
2989 case preds_when:
2990 case unat_when:
2991 case lc_when:
2992 case fpsr_when:
2993 case priunat_when_gr:
2994 case priunat_when_mem:
2995 case bsp_when:
2996 case bspstore_when:
2997 case rnat_when:
2998 ptr->r.record.p.t = t;
2999 break;
3001 case spill_reg:
3002 case spill_sprel:
3003 case spill_psprel:
3004 case spill_reg_p:
3005 case spill_sprel_p:
3006 case spill_psprel_p:
3007 ptr->r.record.x.t = t;
3008 break;
3010 case frgr_mem:
3011 if (!region)
3013 as_bad ("frgr_mem record before region record!");
3014 return;
3016 region->r.record.r.mask.fr_mem |= ptr->r.record.p.frmask;
3017 region->r.record.r.mask.gr_mem |= ptr->r.record.p.grmask;
3018 set_imask (region, ptr->r.record.p.frmask, t, 1);
3019 set_imask (region, ptr->r.record.p.grmask, t, 2);
3020 break;
3021 case fr_mem:
3022 if (!region)
3024 as_bad ("fr_mem record before region record!");
3025 return;
3027 region->r.record.r.mask.fr_mem |= ptr->r.record.p.frmask;
3028 set_imask (region, ptr->r.record.p.frmask, t, 1);
3029 break;
3030 case gr_mem:
3031 if (!region)
3033 as_bad ("gr_mem record before region record!");
3034 return;
3036 region->r.record.r.mask.gr_mem |= ptr->r.record.p.grmask;
3037 set_imask (region, ptr->r.record.p.grmask, t, 2);
3038 break;
3039 case br_mem:
3040 if (!region)
3042 as_bad ("br_mem record before region record!");
3043 return;
3045 region->r.record.r.mask.br_mem |= ptr->r.record.p.brmask;
3046 set_imask (region, ptr->r.record.p.brmask, t, 3);
3047 break;
3049 case gr_gr:
3050 if (!region)
3052 as_bad ("gr_gr record before region record!");
3053 return;
3055 set_imask (region, ptr->r.record.p.grmask, t, 2);
3056 break;
3057 case br_gr:
3058 if (!region)
3060 as_bad ("br_gr record before region record!");
3061 return;
3063 set_imask (region, ptr->r.record.p.brmask, t, 3);
3064 break;
3066 default:
3067 break;
3072 /* Estimate the size of a frag before relaxing. We only have one type of frag
3073 to handle here, which is the unwind info frag. */
3076 ia64_estimate_size_before_relax (fragS *frag,
3077 asection *segtype ATTRIBUTE_UNUSED)
3079 unw_rec_list *list;
3080 int len, size, pad;
3082 /* ??? This code is identical to the first part of ia64_convert_frag. */
3083 list = (unw_rec_list *) frag->fr_opcode;
3084 fixup_unw_records (list, 0);
3086 len = calc_record_size (list);
3087 /* pad to pointer-size boundary. */
3088 pad = len % md.pointer_size;
3089 if (pad != 0)
3090 len += md.pointer_size - pad;
3091 /* Add 8 for the header. */
3092 size = len + 8;
3093 /* Add a pointer for the personality offset. */
3094 if (frag->fr_offset)
3095 size += md.pointer_size;
3097 /* fr_var carries the max_chars that we created the fragment with.
3098 We must, of course, have allocated enough memory earlier. */
3099 assert (frag->fr_var >= size);
3101 return frag->fr_fix + size;
3104 /* This function converts a rs_machine_dependent variant frag into a
3105 normal fill frag with the unwind image from the the record list. */
3106 void
3107 ia64_convert_frag (fragS *frag)
3109 unw_rec_list *list;
3110 int len, size, pad;
3111 valueT flag_value;
3113 /* ??? This code is identical to ia64_estimate_size_before_relax. */
3114 list = (unw_rec_list *) frag->fr_opcode;
3115 fixup_unw_records (list, 0);
3117 len = calc_record_size (list);
3118 /* pad to pointer-size boundary. */
3119 pad = len % md.pointer_size;
3120 if (pad != 0)
3121 len += md.pointer_size - pad;
3122 /* Add 8 for the header. */
3123 size = len + 8;
3124 /* Add a pointer for the personality offset. */
3125 if (frag->fr_offset)
3126 size += md.pointer_size;
3128 /* fr_var carries the max_chars that we created the fragment with.
3129 We must, of course, have allocated enough memory earlier. */
3130 assert (frag->fr_var >= size);
3132 /* Initialize the header area. fr_offset is initialized with
3133 unwind.personality_routine. */
3134 if (frag->fr_offset)
3136 if (md.flags & EF_IA_64_ABI64)
3137 flag_value = (bfd_vma) 3 << 32;
3138 else
3139 /* 32-bit unwind info block. */
3140 flag_value = (bfd_vma) 0x1003 << 32;
3142 else
3143 flag_value = 0;
3145 md_number_to_chars (frag->fr_literal,
3146 (((bfd_vma) 1 << 48) /* Version. */
3147 | flag_value /* U & E handler flags. */
3148 | (len / md.pointer_size)), /* Length. */
3151 /* Skip the header. */
3152 vbyte_mem_ptr = frag->fr_literal + 8;
3153 process_unw_records (list, output_vbyte_mem);
3155 /* Fill the padding bytes with zeros. */
3156 if (pad != 0)
3157 md_number_to_chars (frag->fr_literal + len + 8 - md.pointer_size + pad, 0,
3158 md.pointer_size - pad);
3160 frag->fr_fix += size;
3161 frag->fr_type = rs_fill;
3162 frag->fr_var = 0;
3163 frag->fr_offset = 0;
3166 static int
3167 parse_predicate_and_operand (e, qp, po)
3168 expressionS * e;
3169 unsigned * qp;
3170 const char * po;
3172 int sep = parse_operand (e, ',');
3174 *qp = e->X_add_number - REG_P;
3175 if (e->X_op != O_register || *qp > 63)
3177 as_bad ("First operand to .%s must be a predicate", po);
3178 *qp = 0;
3180 else if (*qp == 0)
3181 as_warn ("Pointless use of p0 as first operand to .%s", po);
3182 if (sep == ',')
3183 sep = parse_operand (e, ',');
3184 else
3185 e->X_op = O_absent;
3186 return sep;
3189 static void
3190 convert_expr_to_ab_reg (e, ab, regp, po, n)
3191 const expressionS *e;
3192 unsigned int *ab;
3193 unsigned int *regp;
3194 const char * po;
3195 int n;
3197 unsigned int reg = e->X_add_number;
3199 *ab = *regp = 0; /* Anything valid is good here. */
3201 if (e->X_op != O_register)
3202 reg = REG_GR; /* Anything invalid is good here. */
3204 if (reg >= (REG_GR + 4) && reg <= (REG_GR + 7))
3206 *ab = 0;
3207 *regp = reg - REG_GR;
3209 else if ((reg >= (REG_FR + 2) && reg <= (REG_FR + 5))
3210 || (reg >= (REG_FR + 16) && reg <= (REG_FR + 31)))
3212 *ab = 1;
3213 *regp = reg - REG_FR;
3215 else if (reg >= (REG_BR + 1) && reg <= (REG_BR + 5))
3217 *ab = 2;
3218 *regp = reg - REG_BR;
3220 else
3222 *ab = 3;
3223 switch (reg)
3225 case REG_PR: *regp = 0; break;
3226 case REG_PSP: *regp = 1; break;
3227 case REG_PRIUNAT: *regp = 2; break;
3228 case REG_BR + 0: *regp = 3; break;
3229 case REG_AR + AR_BSP: *regp = 4; break;
3230 case REG_AR + AR_BSPSTORE: *regp = 5; break;
3231 case REG_AR + AR_RNAT: *regp = 6; break;
3232 case REG_AR + AR_UNAT: *regp = 7; break;
3233 case REG_AR + AR_FPSR: *regp = 8; break;
3234 case REG_AR + AR_PFS: *regp = 9; break;
3235 case REG_AR + AR_LC: *regp = 10; break;
3237 default:
3238 as_bad ("Operand %d to .%s must be a preserved register", n, po);
3239 break;
3244 static void
3245 convert_expr_to_xy_reg (e, xy, regp, po, n)
3246 const expressionS *e;
3247 unsigned int *xy;
3248 unsigned int *regp;
3249 const char * po;
3250 int n;
3252 unsigned int reg = e->X_add_number;
3254 *xy = *regp = 0; /* Anything valid is good here. */
3256 if (e->X_op != O_register)
3257 reg = REG_GR; /* Anything invalid is good here. */
3259 if (reg >= (REG_GR + 1) && reg <= (REG_GR + 127))
3261 *xy = 0;
3262 *regp = reg - REG_GR;
3264 else if (reg >= (REG_FR + 2) && reg <= (REG_FR + 127))
3266 *xy = 1;
3267 *regp = reg - REG_FR;
3269 else if (reg >= REG_BR && reg <= (REG_BR + 7))
3271 *xy = 2;
3272 *regp = reg - REG_BR;
3274 else
3275 as_bad ("Operand %d to .%s must be a writable register", n, po);
3278 static void
3279 dot_align (int arg)
3281 /* The current frag is an alignment frag. */
3282 align_frag = frag_now;
3283 s_align_bytes (arg);
3286 static void
3287 dot_radix (dummy)
3288 int dummy ATTRIBUTE_UNUSED;
3290 char *radix;
3291 int ch;
3293 SKIP_WHITESPACE ();
3295 if (is_it_end_of_statement ())
3296 return;
3297 radix = input_line_pointer;
3298 ch = get_symbol_end ();
3299 ia64_canonicalize_symbol_name (radix);
3300 if (strcasecmp (radix, "C"))
3301 as_bad ("Radix `%s' unsupported or invalid", radix);
3302 *input_line_pointer = ch;
3303 demand_empty_rest_of_line ();
3306 /* Helper function for .loc directives. If the assembler is not generating
3307 line number info, then we need to remember which instructions have a .loc
3308 directive, and only call dwarf2_gen_line_info for those instructions. */
3310 static void
3311 dot_loc (int x)
3313 CURR_SLOT.loc_directive_seen = 1;
3314 dwarf2_directive_loc (x);
3317 /* .sbss, .bss etc. are macros that expand into ".section SECNAME". */
3318 static void
3319 dot_special_section (which)
3320 int which;
3322 set_section ((char *) special_section_name[which]);
3325 /* Return -1 for warning and 0 for error. */
3327 static int
3328 unwind_diagnostic (const char * region, const char *directive)
3330 if (md.unwind_check == unwind_check_warning)
3332 as_warn (".%s outside of %s", directive, region);
3333 return -1;
3335 else
3337 as_bad (".%s outside of %s", directive, region);
3338 ignore_rest_of_line ();
3339 return 0;
3343 /* Return 1 if a directive is in a procedure, -1 if a directive isn't in
3344 a procedure but the unwind directive check is set to warning, 0 if
3345 a directive isn't in a procedure and the unwind directive check is set
3346 to error. */
3348 static int
3349 in_procedure (const char *directive)
3351 if (unwind.proc_pending.sym
3352 && (!unwind.saved_text_seg || strcmp (directive, "endp") == 0))
3353 return 1;
3354 return unwind_diagnostic ("procedure", directive);
3357 /* Return 1 if a directive is in a prologue, -1 if a directive isn't in
3358 a prologue but the unwind directive check is set to warning, 0 if
3359 a directive isn't in a prologue and the unwind directive check is set
3360 to error. */
3362 static int
3363 in_prologue (const char *directive)
3365 int in = in_procedure (directive);
3367 if (in > 0 && !unwind.prologue)
3368 in = unwind_diagnostic ("prologue", directive);
3369 check_pending_save ();
3370 return in;
3373 /* Return 1 if a directive is in a body, -1 if a directive isn't in
3374 a body but the unwind directive check is set to warning, 0 if
3375 a directive isn't in a body and the unwind directive check is set
3376 to error. */
3378 static int
3379 in_body (const char *directive)
3381 int in = in_procedure (directive);
3383 if (in > 0 && !unwind.body)
3384 in = unwind_diagnostic ("body region", directive);
3385 return in;
3388 static void
3389 add_unwind_entry (ptr, sep)
3390 unw_rec_list *ptr;
3391 int sep;
3393 if (ptr)
3395 if (unwind.tail)
3396 unwind.tail->next = ptr;
3397 else
3398 unwind.list = ptr;
3399 unwind.tail = ptr;
3401 /* The current entry can in fact be a chain of unwind entries. */
3402 if (unwind.current_entry == NULL)
3403 unwind.current_entry = ptr;
3406 /* The current entry can in fact be a chain of unwind entries. */
3407 if (unwind.current_entry == NULL)
3408 unwind.current_entry = ptr;
3410 if (sep == ',')
3412 /* Parse a tag permitted for the current directive. */
3413 int ch;
3415 SKIP_WHITESPACE ();
3416 ch = get_symbol_end ();
3417 /* FIXME: For now, just issue a warning that this isn't implemented. */
3419 static int warned;
3421 if (!warned)
3423 warned = 1;
3424 as_warn ("Tags on unwind pseudo-ops aren't supported, yet");
3427 *input_line_pointer = ch;
3429 if (sep != NOT_A_CHAR)
3430 demand_empty_rest_of_line ();
3433 static void
3434 dot_fframe (dummy)
3435 int dummy ATTRIBUTE_UNUSED;
3437 expressionS e;
3438 int sep;
3440 if (!in_prologue ("fframe"))
3441 return;
3443 sep = parse_operand (&e, ',');
3445 if (e.X_op != O_constant)
3447 as_bad ("First operand to .fframe must be a constant");
3448 e.X_add_number = 0;
3450 add_unwind_entry (output_mem_stack_f (e.X_add_number), sep);
3453 static void
3454 dot_vframe (dummy)
3455 int dummy ATTRIBUTE_UNUSED;
3457 expressionS e;
3458 unsigned reg;
3459 int sep;
3461 if (!in_prologue ("vframe"))
3462 return;
3464 sep = parse_operand (&e, ',');
3465 reg = e.X_add_number - REG_GR;
3466 if (e.X_op != O_register || reg > 127)
3468 as_bad ("First operand to .vframe must be a general register");
3469 reg = 0;
3471 add_unwind_entry (output_mem_stack_v (), sep);
3472 if (! (unwind.prologue_mask & 2))
3473 add_unwind_entry (output_psp_gr (reg), NOT_A_CHAR);
3474 else if (reg != unwind.prologue_gr
3475 + (unsigned) popcount (unwind.prologue_mask & (-2 << 1)))
3476 as_warn ("Operand of .vframe contradicts .prologue");
3479 static void
3480 dot_vframesp (psp)
3481 int psp;
3483 expressionS e;
3484 int sep;
3486 if (psp)
3487 as_warn (".vframepsp is meaningless, assuming .vframesp was meant");
3489 if (!in_prologue ("vframesp"))
3490 return;
3492 sep = parse_operand (&e, ',');
3493 if (e.X_op != O_constant)
3495 as_bad ("Operand to .vframesp must be a constant (sp-relative offset)");
3496 e.X_add_number = 0;
3498 add_unwind_entry (output_mem_stack_v (), sep);
3499 add_unwind_entry (output_psp_sprel (e.X_add_number), NOT_A_CHAR);
3502 static void
3503 dot_save (dummy)
3504 int dummy ATTRIBUTE_UNUSED;
3506 expressionS e1, e2;
3507 unsigned reg1, reg2;
3508 int sep;
3510 if (!in_prologue ("save"))
3511 return;
3513 sep = parse_operand (&e1, ',');
3514 if (sep == ',')
3515 sep = parse_operand (&e2, ',');
3516 else
3517 e2.X_op = O_absent;
3519 reg1 = e1.X_add_number;
3520 /* Make sure its a valid ar.xxx reg, OR its br0, aka 'rp'. */
3521 if (e1.X_op != O_register)
3523 as_bad ("First operand to .save not a register");
3524 reg1 = REG_PR; /* Anything valid is good here. */
3526 reg2 = e2.X_add_number - REG_GR;
3527 if (e2.X_op != O_register || reg2 > 127)
3529 as_bad ("Second operand to .save not a valid register");
3530 reg2 = 0;
3532 switch (reg1)
3534 case REG_AR + AR_BSP:
3535 add_unwind_entry (output_bsp_when (), sep);
3536 add_unwind_entry (output_bsp_gr (reg2), NOT_A_CHAR);
3537 break;
3538 case REG_AR + AR_BSPSTORE:
3539 add_unwind_entry (output_bspstore_when (), sep);
3540 add_unwind_entry (output_bspstore_gr (reg2), NOT_A_CHAR);
3541 break;
3542 case REG_AR + AR_RNAT:
3543 add_unwind_entry (output_rnat_when (), sep);
3544 add_unwind_entry (output_rnat_gr (reg2), NOT_A_CHAR);
3545 break;
3546 case REG_AR + AR_UNAT:
3547 add_unwind_entry (output_unat_when (), sep);
3548 add_unwind_entry (output_unat_gr (reg2), NOT_A_CHAR);
3549 break;
3550 case REG_AR + AR_FPSR:
3551 add_unwind_entry (output_fpsr_when (), sep);
3552 add_unwind_entry (output_fpsr_gr (reg2), NOT_A_CHAR);
3553 break;
3554 case REG_AR + AR_PFS:
3555 add_unwind_entry (output_pfs_when (), sep);
3556 if (! (unwind.prologue_mask & 4))
3557 add_unwind_entry (output_pfs_gr (reg2), NOT_A_CHAR);
3558 else if (reg2 != unwind.prologue_gr
3559 + (unsigned) popcount (unwind.prologue_mask & (-4 << 1)))
3560 as_warn ("Second operand of .save contradicts .prologue");
3561 break;
3562 case REG_AR + AR_LC:
3563 add_unwind_entry (output_lc_when (), sep);
3564 add_unwind_entry (output_lc_gr (reg2), NOT_A_CHAR);
3565 break;
3566 case REG_BR:
3567 add_unwind_entry (output_rp_when (), sep);
3568 if (! (unwind.prologue_mask & 8))
3569 add_unwind_entry (output_rp_gr (reg2), NOT_A_CHAR);
3570 else if (reg2 != unwind.prologue_gr)
3571 as_warn ("Second operand of .save contradicts .prologue");
3572 break;
3573 case REG_PR:
3574 add_unwind_entry (output_preds_when (), sep);
3575 if (! (unwind.prologue_mask & 1))
3576 add_unwind_entry (output_preds_gr (reg2), NOT_A_CHAR);
3577 else if (reg2 != unwind.prologue_gr
3578 + (unsigned) popcount (unwind.prologue_mask & (-1 << 1)))
3579 as_warn ("Second operand of .save contradicts .prologue");
3580 break;
3581 case REG_PRIUNAT:
3582 add_unwind_entry (output_priunat_when_gr (), sep);
3583 add_unwind_entry (output_priunat_gr (reg2), NOT_A_CHAR);
3584 break;
3585 default:
3586 as_bad ("First operand to .save not a valid register");
3587 add_unwind_entry (NULL, sep);
3588 break;
3592 static void
3593 dot_restore (dummy)
3594 int dummy ATTRIBUTE_UNUSED;
3596 expressionS e1;
3597 unsigned long ecount; /* # of _additional_ regions to pop */
3598 int sep;
3600 if (!in_body ("restore"))
3601 return;
3603 sep = parse_operand (&e1, ',');
3604 if (e1.X_op != O_register || e1.X_add_number != REG_GR + 12)
3605 as_bad ("First operand to .restore must be stack pointer (sp)");
3607 if (sep == ',')
3609 expressionS e2;
3611 sep = parse_operand (&e2, ',');
3612 if (e2.X_op != O_constant || e2.X_add_number < 0)
3614 as_bad ("Second operand to .restore must be a constant >= 0");
3615 e2.X_add_number = 0;
3617 ecount = e2.X_add_number;
3619 else
3620 ecount = unwind.prologue_count - 1;
3622 if (ecount >= unwind.prologue_count)
3624 as_bad ("Epilogue count of %lu exceeds number of nested prologues (%u)",
3625 ecount + 1, unwind.prologue_count);
3626 ecount = 0;
3629 add_unwind_entry (output_epilogue (ecount), sep);
3631 if (ecount < unwind.prologue_count)
3632 unwind.prologue_count -= ecount + 1;
3633 else
3634 unwind.prologue_count = 0;
3637 static void
3638 dot_restorereg (pred)
3639 int pred;
3641 unsigned int qp, ab, reg;
3642 expressionS e;
3643 int sep;
3644 const char * const po = pred ? "restorereg.p" : "restorereg";
3646 if (!in_procedure (po))
3647 return;
3649 if (pred)
3650 sep = parse_predicate_and_operand (&e, &qp, po);
3651 else
3653 sep = parse_operand (&e, ',');
3654 qp = 0;
3656 convert_expr_to_ab_reg (&e, &ab, &reg, po, 1 + pred);
3658 add_unwind_entry (output_spill_reg (ab, reg, 0, 0, qp), sep);
3661 static char *special_linkonce_name[] =
3663 ".gnu.linkonce.ia64unw.", ".gnu.linkonce.ia64unwi."
3666 static void
3667 start_unwind_section (const segT text_seg, int sec_index)
3670 Use a slightly ugly scheme to derive the unwind section names from
3671 the text section name:
3673 text sect. unwind table sect.
3674 name: name: comments:
3675 ---------- ----------------- --------------------------------
3676 .text .IA_64.unwind
3677 .text.foo .IA_64.unwind.text.foo
3678 .foo .IA_64.unwind.foo
3679 .gnu.linkonce.t.foo
3680 .gnu.linkonce.ia64unw.foo
3681 _info .IA_64.unwind_info gas issues error message (ditto)
3682 _infoFOO .IA_64.unwind_infoFOO gas issues error message (ditto)
3684 This mapping is done so that:
3686 (a) An object file with unwind info only in .text will use
3687 unwind section names .IA_64.unwind and .IA_64.unwind_info.
3688 This follows the letter of the ABI and also ensures backwards
3689 compatibility with older toolchains.
3691 (b) An object file with unwind info in multiple text sections
3692 will use separate unwind sections for each text section.
3693 This allows us to properly set the "sh_info" and "sh_link"
3694 fields in SHT_IA_64_UNWIND as required by the ABI and also
3695 lets GNU ld support programs with multiple segments
3696 containing unwind info (as might be the case for certain
3697 embedded applications).
3699 (c) An error is issued if there would be a name clash.
3702 const char *text_name, *sec_text_name;
3703 char *sec_name;
3704 const char *prefix = special_section_name [sec_index];
3705 const char *suffix;
3706 size_t prefix_len, suffix_len, sec_name_len;
3708 sec_text_name = segment_name (text_seg);
3709 text_name = sec_text_name;
3710 if (strncmp (text_name, "_info", 5) == 0)
3712 as_bad ("Illegal section name `%s' (causes unwind section name clash)",
3713 text_name);
3714 ignore_rest_of_line ();
3715 return;
3717 if (strcmp (text_name, ".text") == 0)
3718 text_name = "";
3720 /* Build the unwind section name by appending the (possibly stripped)
3721 text section name to the unwind prefix. */
3722 suffix = text_name;
3723 if (strncmp (text_name, ".gnu.linkonce.t.",
3724 sizeof (".gnu.linkonce.t.") - 1) == 0)
3726 prefix = special_linkonce_name [sec_index - SPECIAL_SECTION_UNWIND];
3727 suffix += sizeof (".gnu.linkonce.t.") - 1;
3730 prefix_len = strlen (prefix);
3731 suffix_len = strlen (suffix);
3732 sec_name_len = prefix_len + suffix_len;
3733 sec_name = alloca (sec_name_len + 1);
3734 memcpy (sec_name, prefix, prefix_len);
3735 memcpy (sec_name + prefix_len, suffix, suffix_len);
3736 sec_name [sec_name_len] = '\0';
3738 /* Handle COMDAT group. */
3739 if ((text_seg->flags & SEC_LINK_ONCE) != 0
3740 && (elf_section_flags (text_seg) & SHF_GROUP) != 0)
3742 char *section;
3743 size_t len, group_name_len;
3744 const char *group_name = elf_group_name (text_seg);
3746 if (group_name == NULL)
3748 as_bad ("Group section `%s' has no group signature",
3749 sec_text_name);
3750 ignore_rest_of_line ();
3751 return;
3753 /* We have to construct a fake section directive. */
3754 group_name_len = strlen (group_name);
3755 len = (sec_name_len
3756 + 16 /* ,"aG",@progbits, */
3757 + group_name_len /* ,group_name */
3758 + 7); /* ,comdat */
3760 section = alloca (len + 1);
3761 memcpy (section, sec_name, sec_name_len);
3762 memcpy (section + sec_name_len, ",\"aG\",@progbits,", 16);
3763 memcpy (section + sec_name_len + 16, group_name, group_name_len);
3764 memcpy (section + len - 7, ",comdat", 7);
3765 section [len] = '\0';
3766 set_section (section);
3768 else
3770 set_section (sec_name);
3771 bfd_set_section_flags (stdoutput, now_seg,
3772 SEC_LOAD | SEC_ALLOC | SEC_READONLY);
3775 elf_linked_to_section (now_seg) = text_seg;
3778 static void
3779 generate_unwind_image (const segT text_seg)
3781 int size, pad;
3782 unw_rec_list *list;
3784 /* Mark the end of the unwind info, so that we can compute the size of the
3785 last unwind region. */
3786 add_unwind_entry (output_endp (), NOT_A_CHAR);
3788 /* Force out pending instructions, to make sure all unwind records have
3789 a valid slot_number field. */
3790 ia64_flush_insns ();
3792 /* Generate the unwind record. */
3793 list = optimize_unw_records (unwind.list);
3794 fixup_unw_records (list, 1);
3795 size = calc_record_size (list);
3797 if (size > 0 || unwind.force_unwind_entry)
3799 unwind.force_unwind_entry = 0;
3800 /* pad to pointer-size boundary. */
3801 pad = size % md.pointer_size;
3802 if (pad != 0)
3803 size += md.pointer_size - pad;
3804 /* Add 8 for the header. */
3805 size += 8;
3806 /* Add a pointer for the personality offset. */
3807 if (unwind.personality_routine)
3808 size += md.pointer_size;
3811 /* If there are unwind records, switch sections, and output the info. */
3812 if (size != 0)
3814 expressionS exp;
3815 bfd_reloc_code_real_type reloc;
3817 start_unwind_section (text_seg, SPECIAL_SECTION_UNWIND_INFO);
3819 /* Make sure the section has 4 byte alignment for ILP32 and
3820 8 byte alignment for LP64. */
3821 frag_align (md.pointer_size_shift, 0, 0);
3822 record_alignment (now_seg, md.pointer_size_shift);
3824 /* Set expression which points to start of unwind descriptor area. */
3825 unwind.info = expr_build_dot ();
3827 frag_var (rs_machine_dependent, size, size, 0, 0,
3828 (offsetT) (long) unwind.personality_routine,
3829 (char *) list);
3831 /* Add the personality address to the image. */
3832 if (unwind.personality_routine != 0)
3834 exp.X_op = O_symbol;
3835 exp.X_add_symbol = unwind.personality_routine;
3836 exp.X_add_number = 0;
3838 if (md.flags & EF_IA_64_BE)
3840 if (md.flags & EF_IA_64_ABI64)
3841 reloc = BFD_RELOC_IA64_LTOFF_FPTR64MSB;
3842 else
3843 reloc = BFD_RELOC_IA64_LTOFF_FPTR32MSB;
3845 else
3847 if (md.flags & EF_IA_64_ABI64)
3848 reloc = BFD_RELOC_IA64_LTOFF_FPTR64LSB;
3849 else
3850 reloc = BFD_RELOC_IA64_LTOFF_FPTR32LSB;
3853 fix_new_exp (frag_now, frag_now_fix () - md.pointer_size,
3854 md.pointer_size, &exp, 0, reloc);
3855 unwind.personality_routine = 0;
3859 free_saved_prologue_counts ();
3860 unwind.list = unwind.tail = unwind.current_entry = NULL;
3863 static void
3864 dot_handlerdata (dummy)
3865 int dummy ATTRIBUTE_UNUSED;
3867 if (!in_procedure ("handlerdata"))
3868 return;
3869 unwind.force_unwind_entry = 1;
3871 /* Remember which segment we're in so we can switch back after .endp */
3872 unwind.saved_text_seg = now_seg;
3873 unwind.saved_text_subseg = now_subseg;
3875 /* Generate unwind info into unwind-info section and then leave that
3876 section as the currently active one so dataXX directives go into
3877 the language specific data area of the unwind info block. */
3878 generate_unwind_image (now_seg);
3879 demand_empty_rest_of_line ();
3882 static void
3883 dot_unwentry (dummy)
3884 int dummy ATTRIBUTE_UNUSED;
3886 if (!in_procedure ("unwentry"))
3887 return;
3888 unwind.force_unwind_entry = 1;
3889 demand_empty_rest_of_line ();
3892 static void
3893 dot_altrp (dummy)
3894 int dummy ATTRIBUTE_UNUSED;
3896 expressionS e;
3897 unsigned reg;
3899 if (!in_prologue ("altrp"))
3900 return;
3902 parse_operand (&e, 0);
3903 reg = e.X_add_number - REG_BR;
3904 if (e.X_op != O_register || reg > 7)
3906 as_bad ("First operand to .altrp not a valid branch register");
3907 reg = 0;
3909 add_unwind_entry (output_rp_br (reg), 0);
3912 static void
3913 dot_savemem (psprel)
3914 int psprel;
3916 expressionS e1, e2;
3917 int sep;
3918 int reg1, val;
3919 const char * const po = psprel ? "savepsp" : "savesp";
3921 if (!in_prologue (po))
3922 return;
3924 sep = parse_operand (&e1, ',');
3925 if (sep == ',')
3926 sep = parse_operand (&e2, ',');
3927 else
3928 e2.X_op = O_absent;
3930 reg1 = e1.X_add_number;
3931 val = e2.X_add_number;
3933 /* Make sure its a valid ar.xxx reg, OR its br0, aka 'rp'. */
3934 if (e1.X_op != O_register)
3936 as_bad ("First operand to .%s not a register", po);
3937 reg1 = REG_PR; /* Anything valid is good here. */
3939 if (e2.X_op != O_constant)
3941 as_bad ("Second operand to .%s not a constant", po);
3942 val = 0;
3945 switch (reg1)
3947 case REG_AR + AR_BSP:
3948 add_unwind_entry (output_bsp_when (), sep);
3949 add_unwind_entry ((psprel
3950 ? output_bsp_psprel
3951 : output_bsp_sprel) (val), NOT_A_CHAR);
3952 break;
3953 case REG_AR + AR_BSPSTORE:
3954 add_unwind_entry (output_bspstore_when (), sep);
3955 add_unwind_entry ((psprel
3956 ? output_bspstore_psprel
3957 : output_bspstore_sprel) (val), NOT_A_CHAR);
3958 break;
3959 case REG_AR + AR_RNAT:
3960 add_unwind_entry (output_rnat_when (), sep);
3961 add_unwind_entry ((psprel
3962 ? output_rnat_psprel
3963 : output_rnat_sprel) (val), NOT_A_CHAR);
3964 break;
3965 case REG_AR + AR_UNAT:
3966 add_unwind_entry (output_unat_when (), sep);
3967 add_unwind_entry ((psprel
3968 ? output_unat_psprel
3969 : output_unat_sprel) (val), NOT_A_CHAR);
3970 break;
3971 case REG_AR + AR_FPSR:
3972 add_unwind_entry (output_fpsr_when (), sep);
3973 add_unwind_entry ((psprel
3974 ? output_fpsr_psprel
3975 : output_fpsr_sprel) (val), NOT_A_CHAR);
3976 break;
3977 case REG_AR + AR_PFS:
3978 add_unwind_entry (output_pfs_when (), sep);
3979 add_unwind_entry ((psprel
3980 ? output_pfs_psprel
3981 : output_pfs_sprel) (val), NOT_A_CHAR);
3982 break;
3983 case REG_AR + AR_LC:
3984 add_unwind_entry (output_lc_when (), sep);
3985 add_unwind_entry ((psprel
3986 ? output_lc_psprel
3987 : output_lc_sprel) (val), NOT_A_CHAR);
3988 break;
3989 case REG_BR:
3990 add_unwind_entry (output_rp_when (), sep);
3991 add_unwind_entry ((psprel
3992 ? output_rp_psprel
3993 : output_rp_sprel) (val), NOT_A_CHAR);
3994 break;
3995 case REG_PR:
3996 add_unwind_entry (output_preds_when (), sep);
3997 add_unwind_entry ((psprel
3998 ? output_preds_psprel
3999 : output_preds_sprel) (val), NOT_A_CHAR);
4000 break;
4001 case REG_PRIUNAT:
4002 add_unwind_entry (output_priunat_when_mem (), sep);
4003 add_unwind_entry ((psprel
4004 ? output_priunat_psprel
4005 : output_priunat_sprel) (val), NOT_A_CHAR);
4006 break;
4007 default:
4008 as_bad ("First operand to .%s not a valid register", po);
4009 add_unwind_entry (NULL, sep);
4010 break;
4014 static void
4015 dot_saveg (dummy)
4016 int dummy ATTRIBUTE_UNUSED;
4018 expressionS e;
4019 unsigned grmask;
4020 int sep;
4022 if (!in_prologue ("save.g"))
4023 return;
4025 sep = parse_operand (&e, ',');
4027 grmask = e.X_add_number;
4028 if (e.X_op != O_constant
4029 || e.X_add_number <= 0
4030 || e.X_add_number > 0xf)
4032 as_bad ("First operand to .save.g must be a positive 4-bit constant");
4033 grmask = 0;
4036 if (sep == ',')
4038 unsigned reg;
4039 int n = popcount (grmask);
4041 parse_operand (&e, 0);
4042 reg = e.X_add_number - REG_GR;
4043 if (e.X_op != O_register || reg > 127)
4045 as_bad ("Second operand to .save.g must be a general register");
4046 reg = 0;
4048 else if (reg > 128U - n)
4050 as_bad ("Second operand to .save.g must be the first of %d general registers", n);
4051 reg = 0;
4053 add_unwind_entry (output_gr_gr (grmask, reg), 0);
4055 else
4056 add_unwind_entry (output_gr_mem (grmask), 0);
4059 static void
4060 dot_savef (dummy)
4061 int dummy ATTRIBUTE_UNUSED;
4063 expressionS e;
4065 if (!in_prologue ("save.f"))
4066 return;
4068 parse_operand (&e, 0);
4070 if (e.X_op != O_constant
4071 || e.X_add_number <= 0
4072 || e.X_add_number > 0xfffff)
4074 as_bad ("Operand to .save.f must be a positive 20-bit constant");
4075 e.X_add_number = 0;
4077 add_unwind_entry (output_fr_mem (e.X_add_number), 0);
4080 static void
4081 dot_saveb (dummy)
4082 int dummy ATTRIBUTE_UNUSED;
4084 expressionS e;
4085 unsigned brmask;
4086 int sep;
4088 if (!in_prologue ("save.b"))
4089 return;
4091 sep = parse_operand (&e, ',');
4093 brmask = e.X_add_number;
4094 if (e.X_op != O_constant
4095 || e.X_add_number <= 0
4096 || e.X_add_number > 0x1f)
4098 as_bad ("First operand to .save.b must be a positive 5-bit constant");
4099 brmask = 0;
4102 if (sep == ',')
4104 unsigned reg;
4105 int n = popcount (brmask);
4107 parse_operand (&e, 0);
4108 reg = e.X_add_number - REG_GR;
4109 if (e.X_op != O_register || reg > 127)
4111 as_bad ("Second operand to .save.b must be a general register");
4112 reg = 0;
4114 else if (reg > 128U - n)
4116 as_bad ("Second operand to .save.b must be the first of %d general registers", n);
4117 reg = 0;
4119 add_unwind_entry (output_br_gr (brmask, reg), 0);
4121 else
4122 add_unwind_entry (output_br_mem (brmask), 0);
4125 static void
4126 dot_savegf (dummy)
4127 int dummy ATTRIBUTE_UNUSED;
4129 expressionS e1, e2;
4131 if (!in_prologue ("save.gf"))
4132 return;
4134 if (parse_operand (&e1, ',') == ',')
4135 parse_operand (&e2, 0);
4136 else
4137 e2.X_op = O_absent;
4139 if (e1.X_op != O_constant
4140 || e1.X_add_number < 0
4141 || e1.X_add_number > 0xf)
4143 as_bad ("First operand to .save.gf must be a non-negative 4-bit constant");
4144 e1.X_op = O_absent;
4145 e1.X_add_number = 0;
4147 if (e2.X_op != O_constant
4148 || e2.X_add_number < 0
4149 || e2.X_add_number > 0xfffff)
4151 as_bad ("Second operand to .save.gf must be a non-negative 20-bit constant");
4152 e2.X_op = O_absent;
4153 e2.X_add_number = 0;
4155 if (e1.X_op == O_constant
4156 && e2.X_op == O_constant
4157 && e1.X_add_number == 0
4158 && e2.X_add_number == 0)
4159 as_bad ("Operands to .save.gf may not be both zero");
4161 add_unwind_entry (output_frgr_mem (e1.X_add_number, e2.X_add_number), 0);
4164 static void
4165 dot_spill (dummy)
4166 int dummy ATTRIBUTE_UNUSED;
4168 expressionS e;
4170 if (!in_prologue ("spill"))
4171 return;
4173 parse_operand (&e, 0);
4175 if (e.X_op != O_constant)
4177 as_bad ("Operand to .spill must be a constant");
4178 e.X_add_number = 0;
4180 add_unwind_entry (output_spill_base (e.X_add_number), 0);
4183 static void
4184 dot_spillreg (pred)
4185 int pred;
4187 int sep;
4188 unsigned int qp, ab, xy, reg, treg;
4189 expressionS e;
4190 const char * const po = pred ? "spillreg.p" : "spillreg";
4192 if (!in_procedure (po))
4193 return;
4195 if (pred)
4196 sep = parse_predicate_and_operand (&e, &qp, po);
4197 else
4199 sep = parse_operand (&e, ',');
4200 qp = 0;
4202 convert_expr_to_ab_reg (&e, &ab, &reg, po, 1 + pred);
4204 if (sep == ',')
4205 sep = parse_operand (&e, ',');
4206 else
4207 e.X_op = O_absent;
4208 convert_expr_to_xy_reg (&e, &xy, &treg, po, 2 + pred);
4210 add_unwind_entry (output_spill_reg (ab, reg, treg, xy, qp), sep);
4213 static void
4214 dot_spillmem (psprel)
4215 int psprel;
4217 expressionS e;
4218 int pred = (psprel < 0), sep;
4219 unsigned int qp, ab, reg;
4220 const char * po;
4222 if (pred)
4224 psprel = ~psprel;
4225 po = psprel ? "spillpsp.p" : "spillsp.p";
4227 else
4228 po = psprel ? "spillpsp" : "spillsp";
4230 if (!in_procedure (po))
4231 return;
4233 if (pred)
4234 sep = parse_predicate_and_operand (&e, &qp, po);
4235 else
4237 sep = parse_operand (&e, ',');
4238 qp = 0;
4240 convert_expr_to_ab_reg (&e, &ab, &reg, po, 1 + pred);
4242 if (sep == ',')
4243 sep = parse_operand (&e, ',');
4244 else
4245 e.X_op = O_absent;
4246 if (e.X_op != O_constant)
4248 as_bad ("Operand %d to .%s must be a constant", 2 + pred, po);
4249 e.X_add_number = 0;
4252 if (psprel)
4253 add_unwind_entry (output_spill_psprel (ab, reg, e.X_add_number, qp), sep);
4254 else
4255 add_unwind_entry (output_spill_sprel (ab, reg, e.X_add_number, qp), sep);
4258 static unsigned int
4259 get_saved_prologue_count (lbl)
4260 unsigned long lbl;
4262 label_prologue_count *lpc = unwind.saved_prologue_counts;
4264 while (lpc != NULL && lpc->label_number != lbl)
4265 lpc = lpc->next;
4267 if (lpc != NULL)
4268 return lpc->prologue_count;
4270 as_bad ("Missing .label_state %ld", lbl);
4271 return 1;
4274 static void
4275 save_prologue_count (lbl, count)
4276 unsigned long lbl;
4277 unsigned int count;
4279 label_prologue_count *lpc = unwind.saved_prologue_counts;
4281 while (lpc != NULL && lpc->label_number != lbl)
4282 lpc = lpc->next;
4284 if (lpc != NULL)
4285 lpc->prologue_count = count;
4286 else
4288 label_prologue_count *new_lpc = xmalloc (sizeof (* new_lpc));
4290 new_lpc->next = unwind.saved_prologue_counts;
4291 new_lpc->label_number = lbl;
4292 new_lpc->prologue_count = count;
4293 unwind.saved_prologue_counts = new_lpc;
4297 static void
4298 free_saved_prologue_counts ()
4300 label_prologue_count *lpc = unwind.saved_prologue_counts;
4301 label_prologue_count *next;
4303 while (lpc != NULL)
4305 next = lpc->next;
4306 free (lpc);
4307 lpc = next;
4310 unwind.saved_prologue_counts = NULL;
4313 static void
4314 dot_label_state (dummy)
4315 int dummy ATTRIBUTE_UNUSED;
4317 expressionS e;
4319 if (!in_body ("label_state"))
4320 return;
4322 parse_operand (&e, 0);
4323 if (e.X_op == O_constant)
4324 save_prologue_count (e.X_add_number, unwind.prologue_count);
4325 else
4327 as_bad ("Operand to .label_state must be a constant");
4328 e.X_add_number = 0;
4330 add_unwind_entry (output_label_state (e.X_add_number), 0);
4333 static void
4334 dot_copy_state (dummy)
4335 int dummy ATTRIBUTE_UNUSED;
4337 expressionS e;
4339 if (!in_body ("copy_state"))
4340 return;
4342 parse_operand (&e, 0);
4343 if (e.X_op == O_constant)
4344 unwind.prologue_count = get_saved_prologue_count (e.X_add_number);
4345 else
4347 as_bad ("Operand to .copy_state must be a constant");
4348 e.X_add_number = 0;
4350 add_unwind_entry (output_copy_state (e.X_add_number), 0);
4353 static void
4354 dot_unwabi (dummy)
4355 int dummy ATTRIBUTE_UNUSED;
4357 expressionS e1, e2;
4358 unsigned char sep;
4360 if (!in_prologue ("unwabi"))
4361 return;
4363 sep = parse_operand (&e1, ',');
4364 if (sep == ',')
4365 parse_operand (&e2, 0);
4366 else
4367 e2.X_op = O_absent;
4369 if (e1.X_op != O_constant)
4371 as_bad ("First operand to .unwabi must be a constant");
4372 e1.X_add_number = 0;
4375 if (e2.X_op != O_constant)
4377 as_bad ("Second operand to .unwabi must be a constant");
4378 e2.X_add_number = 0;
4381 add_unwind_entry (output_unwabi (e1.X_add_number, e2.X_add_number), 0);
4384 static void
4385 dot_personality (dummy)
4386 int dummy ATTRIBUTE_UNUSED;
4388 char *name, *p, c;
4389 if (!in_procedure ("personality"))
4390 return;
4391 SKIP_WHITESPACE ();
4392 name = input_line_pointer;
4393 c = get_symbol_end ();
4394 p = input_line_pointer;
4395 unwind.personality_routine = symbol_find_or_make (name);
4396 unwind.force_unwind_entry = 1;
4397 *p = c;
4398 SKIP_WHITESPACE ();
4399 demand_empty_rest_of_line ();
4402 static void
4403 dot_proc (dummy)
4404 int dummy ATTRIBUTE_UNUSED;
4406 char *name, *p, c;
4407 symbolS *sym;
4408 proc_pending *pending, *last_pending;
4410 if (unwind.proc_pending.sym)
4412 (md.unwind_check == unwind_check_warning
4413 ? as_warn
4414 : as_bad) ("Missing .endp after previous .proc");
4415 while (unwind.proc_pending.next)
4417 pending = unwind.proc_pending.next;
4418 unwind.proc_pending.next = pending->next;
4419 free (pending);
4422 last_pending = NULL;
4424 /* Parse names of main and alternate entry points and mark them as
4425 function symbols: */
4426 while (1)
4428 SKIP_WHITESPACE ();
4429 name = input_line_pointer;
4430 c = get_symbol_end ();
4431 p = input_line_pointer;
4432 if (!*name)
4433 as_bad ("Empty argument of .proc");
4434 else
4436 sym = symbol_find_or_make (name);
4437 if (S_IS_DEFINED (sym))
4438 as_bad ("`%s' was already defined", name);
4439 else if (!last_pending)
4441 unwind.proc_pending.sym = sym;
4442 last_pending = &unwind.proc_pending;
4444 else
4446 pending = xmalloc (sizeof (*pending));
4447 pending->sym = sym;
4448 last_pending = last_pending->next = pending;
4450 symbol_get_bfdsym (sym)->flags |= BSF_FUNCTION;
4452 *p = c;
4453 SKIP_WHITESPACE ();
4454 if (*input_line_pointer != ',')
4455 break;
4456 ++input_line_pointer;
4458 if (!last_pending)
4460 unwind.proc_pending.sym = expr_build_dot ();
4461 last_pending = &unwind.proc_pending;
4463 last_pending->next = NULL;
4464 demand_empty_rest_of_line ();
4465 ia64_do_align (16);
4467 unwind.prologue = 0;
4468 unwind.prologue_count = 0;
4469 unwind.body = 0;
4470 unwind.insn = 0;
4471 unwind.list = unwind.tail = unwind.current_entry = NULL;
4472 unwind.personality_routine = 0;
4475 static void
4476 dot_body (dummy)
4477 int dummy ATTRIBUTE_UNUSED;
4479 if (!in_procedure ("body"))
4480 return;
4481 if (!unwind.prologue && !unwind.body && unwind.insn)
4482 as_warn ("Initial .body should precede any instructions");
4483 check_pending_save ();
4485 unwind.prologue = 0;
4486 unwind.prologue_mask = 0;
4487 unwind.body = 1;
4489 add_unwind_entry (output_body (), 0);
4492 static void
4493 dot_prologue (dummy)
4494 int dummy ATTRIBUTE_UNUSED;
4496 unsigned mask = 0, grsave = 0;
4498 if (!in_procedure ("prologue"))
4499 return;
4500 if (unwind.prologue)
4502 as_bad (".prologue within prologue");
4503 ignore_rest_of_line ();
4504 return;
4506 if (!unwind.body && unwind.insn)
4507 as_warn ("Initial .prologue should precede any instructions");
4509 if (!is_it_end_of_statement ())
4511 expressionS e;
4512 int n, sep = parse_operand (&e, ',');
4514 if (e.X_op != O_constant
4515 || e.X_add_number < 0
4516 || e.X_add_number > 0xf)
4517 as_bad ("First operand to .prologue must be a positive 4-bit constant");
4518 else if (e.X_add_number == 0)
4519 as_warn ("Pointless use of zero first operand to .prologue");
4520 else
4521 mask = e.X_add_number;
4522 n = popcount (mask);
4524 if (sep == ',')
4525 parse_operand (&e, 0);
4526 else
4527 e.X_op = O_absent;
4528 if (e.X_op == O_constant
4529 && e.X_add_number >= 0
4530 && e.X_add_number < 128)
4532 if (md.unwind_check == unwind_check_error)
4533 as_warn ("Using a constant as second operand to .prologue is deprecated");
4534 grsave = e.X_add_number;
4536 else if (e.X_op != O_register
4537 || (grsave = e.X_add_number - REG_GR) > 127)
4539 as_bad ("Second operand to .prologue must be a general register");
4540 grsave = 0;
4542 else if (grsave > 128U - n)
4544 as_bad ("Second operand to .prologue must be the first of %d general registers", n);
4545 grsave = 0;
4550 if (mask)
4551 add_unwind_entry (output_prologue_gr (mask, grsave), 0);
4552 else
4553 add_unwind_entry (output_prologue (), 0);
4555 unwind.prologue = 1;
4556 unwind.prologue_mask = mask;
4557 unwind.prologue_gr = grsave;
4558 unwind.body = 0;
4559 ++unwind.prologue_count;
4562 static void
4563 dot_endp (dummy)
4564 int dummy ATTRIBUTE_UNUSED;
4566 expressionS e;
4567 int bytes_per_address;
4568 long where;
4569 segT saved_seg;
4570 subsegT saved_subseg;
4571 proc_pending *pending;
4572 int unwind_check = md.unwind_check;
4574 md.unwind_check = unwind_check_error;
4575 if (!in_procedure ("endp"))
4576 return;
4577 md.unwind_check = unwind_check;
4579 if (unwind.saved_text_seg)
4581 saved_seg = unwind.saved_text_seg;
4582 saved_subseg = unwind.saved_text_subseg;
4583 unwind.saved_text_seg = NULL;
4585 else
4587 saved_seg = now_seg;
4588 saved_subseg = now_subseg;
4591 insn_group_break (1, 0, 0);
4593 /* If there wasn't a .handlerdata, we haven't generated an image yet. */
4594 if (!unwind.info)
4595 generate_unwind_image (saved_seg);
4597 if (unwind.info || unwind.force_unwind_entry)
4599 symbolS *proc_end;
4601 subseg_set (md.last_text_seg, 0);
4602 proc_end = expr_build_dot ();
4604 start_unwind_section (saved_seg, SPECIAL_SECTION_UNWIND);
4606 /* Make sure that section has 4 byte alignment for ILP32 and
4607 8 byte alignment for LP64. */
4608 record_alignment (now_seg, md.pointer_size_shift);
4610 /* Need space for 3 pointers for procedure start, procedure end,
4611 and unwind info. */
4612 memset (frag_more (3 * md.pointer_size), 0, 3 * md.pointer_size);
4613 where = frag_now_fix () - (3 * md.pointer_size);
4614 bytes_per_address = bfd_arch_bits_per_address (stdoutput) / 8;
4616 /* Issue the values of a) Proc Begin, b) Proc End, c) Unwind Record. */
4617 e.X_op = O_pseudo_fixup;
4618 e.X_op_symbol = pseudo_func[FUNC_SEG_RELATIVE].u.sym;
4619 e.X_add_number = 0;
4620 if (!S_IS_LOCAL (unwind.proc_pending.sym)
4621 && S_IS_DEFINED (unwind.proc_pending.sym))
4622 e.X_add_symbol = symbol_temp_new (S_GET_SEGMENT (unwind.proc_pending.sym),
4623 S_GET_VALUE (unwind.proc_pending.sym),
4624 symbol_get_frag (unwind.proc_pending.sym));
4625 else
4626 e.X_add_symbol = unwind.proc_pending.sym;
4627 ia64_cons_fix_new (frag_now, where, bytes_per_address, &e);
4629 e.X_op = O_pseudo_fixup;
4630 e.X_op_symbol = pseudo_func[FUNC_SEG_RELATIVE].u.sym;
4631 e.X_add_number = 0;
4632 e.X_add_symbol = proc_end;
4633 ia64_cons_fix_new (frag_now, where + bytes_per_address,
4634 bytes_per_address, &e);
4636 if (unwind.info)
4638 e.X_op = O_pseudo_fixup;
4639 e.X_op_symbol = pseudo_func[FUNC_SEG_RELATIVE].u.sym;
4640 e.X_add_number = 0;
4641 e.X_add_symbol = unwind.info;
4642 ia64_cons_fix_new (frag_now, where + (bytes_per_address * 2),
4643 bytes_per_address, &e);
4646 subseg_set (saved_seg, saved_subseg);
4648 /* Set symbol sizes. */
4649 pending = &unwind.proc_pending;
4650 if (S_GET_NAME (pending->sym))
4654 symbolS *sym = pending->sym;
4656 if (!S_IS_DEFINED (sym))
4657 as_bad ("`%s' was not defined within procedure", S_GET_NAME (sym));
4658 else if (S_GET_SIZE (sym) == 0
4659 && symbol_get_obj (sym)->size == NULL)
4661 fragS *frag = symbol_get_frag (sym);
4663 if (frag)
4665 if (frag == frag_now && SEG_NORMAL (now_seg))
4666 S_SET_SIZE (sym, frag_now_fix () - S_GET_VALUE (sym));
4667 else
4669 symbol_get_obj (sym)->size =
4670 (expressionS *) xmalloc (sizeof (expressionS));
4671 symbol_get_obj (sym)->size->X_op = O_subtract;
4672 symbol_get_obj (sym)->size->X_add_symbol
4673 = symbol_new (FAKE_LABEL_NAME, now_seg,
4674 frag_now_fix (), frag_now);
4675 symbol_get_obj (sym)->size->X_op_symbol = sym;
4676 symbol_get_obj (sym)->size->X_add_number = 0;
4680 } while ((pending = pending->next) != NULL);
4683 /* Parse names of main and alternate entry points. */
4684 while (1)
4686 char *name, *p, c;
4688 SKIP_WHITESPACE ();
4689 name = input_line_pointer;
4690 c = get_symbol_end ();
4691 p = input_line_pointer;
4692 if (!*name)
4693 (md.unwind_check == unwind_check_warning
4694 ? as_warn
4695 : as_bad) ("Empty argument of .endp");
4696 else
4698 symbolS *sym = symbol_find (name);
4700 for (pending = &unwind.proc_pending; pending; pending = pending->next)
4702 if (sym == pending->sym)
4704 pending->sym = NULL;
4705 break;
4708 if (!sym || !pending)
4709 as_warn ("`%s' was not specified with previous .proc", name);
4711 *p = c;
4712 SKIP_WHITESPACE ();
4713 if (*input_line_pointer != ',')
4714 break;
4715 ++input_line_pointer;
4717 demand_empty_rest_of_line ();
4719 /* Deliberately only checking for the main entry point here; the
4720 language spec even says all arguments to .endp are ignored. */
4721 if (unwind.proc_pending.sym
4722 && S_GET_NAME (unwind.proc_pending.sym)
4723 && strcmp (S_GET_NAME (unwind.proc_pending.sym), FAKE_LABEL_NAME))
4724 as_warn ("`%s' should be an operand to this .endp",
4725 S_GET_NAME (unwind.proc_pending.sym));
4726 while (unwind.proc_pending.next)
4728 pending = unwind.proc_pending.next;
4729 unwind.proc_pending.next = pending->next;
4730 free (pending);
4732 unwind.proc_pending.sym = unwind.info = NULL;
4735 static void
4736 dot_template (template)
4737 int template;
4739 CURR_SLOT.user_template = template;
4742 static void
4743 dot_regstk (dummy)
4744 int dummy ATTRIBUTE_UNUSED;
4746 int ins, locs, outs, rots;
4748 if (is_it_end_of_statement ())
4749 ins = locs = outs = rots = 0;
4750 else
4752 ins = get_absolute_expression ();
4753 if (*input_line_pointer++ != ',')
4754 goto err;
4755 locs = get_absolute_expression ();
4756 if (*input_line_pointer++ != ',')
4757 goto err;
4758 outs = get_absolute_expression ();
4759 if (*input_line_pointer++ != ',')
4760 goto err;
4761 rots = get_absolute_expression ();
4763 set_regstack (ins, locs, outs, rots);
4764 return;
4766 err:
4767 as_bad ("Comma expected");
4768 ignore_rest_of_line ();
4771 static void
4772 dot_rot (type)
4773 int type;
4775 unsigned num_regs, num_alloced = 0;
4776 struct dynreg **drpp, *dr;
4777 int ch, base_reg = 0;
4778 char *name, *start;
4779 size_t len;
4781 switch (type)
4783 case DYNREG_GR: base_reg = REG_GR + 32; break;
4784 case DYNREG_FR: base_reg = REG_FR + 32; break;
4785 case DYNREG_PR: base_reg = REG_P + 16; break;
4786 default: break;
4789 /* First, remove existing names from hash table. */
4790 for (dr = md.dynreg[type]; dr && dr->num_regs; dr = dr->next)
4792 hash_delete (md.dynreg_hash, dr->name);
4793 /* FIXME: Free dr->name. */
4794 dr->num_regs = 0;
4797 drpp = &md.dynreg[type];
4798 while (1)
4800 start = input_line_pointer;
4801 ch = get_symbol_end ();
4802 len = strlen (ia64_canonicalize_symbol_name (start));
4803 *input_line_pointer = ch;
4805 SKIP_WHITESPACE ();
4806 if (*input_line_pointer != '[')
4808 as_bad ("Expected '['");
4809 goto err;
4811 ++input_line_pointer; /* skip '[' */
4813 num_regs = get_absolute_expression ();
4815 if (*input_line_pointer++ != ']')
4817 as_bad ("Expected ']'");
4818 goto err;
4820 SKIP_WHITESPACE ();
4822 num_alloced += num_regs;
4823 switch (type)
4825 case DYNREG_GR:
4826 if (num_alloced > md.rot.num_regs)
4828 as_bad ("Used more than the declared %d rotating registers",
4829 md.rot.num_regs);
4830 goto err;
4832 break;
4833 case DYNREG_FR:
4834 if (num_alloced > 96)
4836 as_bad ("Used more than the available 96 rotating registers");
4837 goto err;
4839 break;
4840 case DYNREG_PR:
4841 if (num_alloced > 48)
4843 as_bad ("Used more than the available 48 rotating registers");
4844 goto err;
4846 break;
4848 default:
4849 break;
4852 if (!*drpp)
4854 *drpp = obstack_alloc (&notes, sizeof (*dr));
4855 memset (*drpp, 0, sizeof (*dr));
4858 name = obstack_alloc (&notes, len + 1);
4859 memcpy (name, start, len);
4860 name[len] = '\0';
4862 dr = *drpp;
4863 dr->name = name;
4864 dr->num_regs = num_regs;
4865 dr->base = base_reg;
4866 drpp = &dr->next;
4867 base_reg += num_regs;
4869 if (hash_insert (md.dynreg_hash, name, dr))
4871 as_bad ("Attempt to redefine register set `%s'", name);
4872 obstack_free (&notes, name);
4873 goto err;
4876 if (*input_line_pointer != ',')
4877 break;
4878 ++input_line_pointer; /* skip comma */
4879 SKIP_WHITESPACE ();
4881 demand_empty_rest_of_line ();
4882 return;
4884 err:
4885 ignore_rest_of_line ();
4888 static void
4889 dot_byteorder (byteorder)
4890 int byteorder;
4892 segment_info_type *seginfo = seg_info (now_seg);
4894 if (byteorder == -1)
4896 if (seginfo->tc_segment_info_data.endian == 0)
4897 seginfo->tc_segment_info_data.endian = default_big_endian ? 1 : 2;
4898 byteorder = seginfo->tc_segment_info_data.endian == 1;
4900 else
4901 seginfo->tc_segment_info_data.endian = byteorder ? 1 : 2;
4903 if (target_big_endian != byteorder)
4905 target_big_endian = byteorder;
4906 if (target_big_endian)
4908 ia64_number_to_chars = number_to_chars_bigendian;
4909 ia64_float_to_chars = ia64_float_to_chars_bigendian;
4911 else
4913 ia64_number_to_chars = number_to_chars_littleendian;
4914 ia64_float_to_chars = ia64_float_to_chars_littleendian;
4919 static void
4920 dot_psr (dummy)
4921 int dummy ATTRIBUTE_UNUSED;
4923 char *option;
4924 int ch;
4926 while (1)
4928 option = input_line_pointer;
4929 ch = get_symbol_end ();
4930 if (strcmp (option, "lsb") == 0)
4931 md.flags &= ~EF_IA_64_BE;
4932 else if (strcmp (option, "msb") == 0)
4933 md.flags |= EF_IA_64_BE;
4934 else if (strcmp (option, "abi32") == 0)
4935 md.flags &= ~EF_IA_64_ABI64;
4936 else if (strcmp (option, "abi64") == 0)
4937 md.flags |= EF_IA_64_ABI64;
4938 else
4939 as_bad ("Unknown psr option `%s'", option);
4940 *input_line_pointer = ch;
4942 SKIP_WHITESPACE ();
4943 if (*input_line_pointer != ',')
4944 break;
4946 ++input_line_pointer;
4947 SKIP_WHITESPACE ();
4949 demand_empty_rest_of_line ();
4952 static void
4953 dot_ln (dummy)
4954 int dummy ATTRIBUTE_UNUSED;
4956 new_logical_line (0, get_absolute_expression ());
4957 demand_empty_rest_of_line ();
4960 static void
4961 cross_section (ref, cons, ua)
4962 int ref;
4963 void (*cons) PARAMS((int));
4964 int ua;
4966 char *start, *end;
4967 int saved_auto_align;
4968 unsigned int section_count;
4970 SKIP_WHITESPACE ();
4971 start = input_line_pointer;
4972 if (*start == '"')
4974 int len;
4975 char *name;
4977 name = demand_copy_C_string (&len);
4978 obstack_free(&notes, name);
4979 if (!name)
4981 ignore_rest_of_line ();
4982 return;
4985 else
4987 char c = get_symbol_end ();
4989 if (input_line_pointer == start)
4991 as_bad ("Missing section name");
4992 ignore_rest_of_line ();
4993 return;
4995 *input_line_pointer = c;
4997 end = input_line_pointer;
4998 SKIP_WHITESPACE ();
4999 if (*input_line_pointer != ',')
5001 as_bad ("Comma expected after section name");
5002 ignore_rest_of_line ();
5003 return;
5005 *end = '\0';
5006 end = input_line_pointer + 1; /* skip comma */
5007 input_line_pointer = start;
5008 md.keep_pending_output = 1;
5009 section_count = bfd_count_sections(stdoutput);
5010 obj_elf_section (0);
5011 if (section_count != bfd_count_sections(stdoutput))
5012 as_warn ("Creating sections with .xdataN/.xrealN/.xstringZ is deprecated.");
5013 input_line_pointer = end;
5014 saved_auto_align = md.auto_align;
5015 if (ua)
5016 md.auto_align = 0;
5017 (*cons) (ref);
5018 if (ua)
5019 md.auto_align = saved_auto_align;
5020 obj_elf_previous (0);
5021 md.keep_pending_output = 0;
5024 static void
5025 dot_xdata (size)
5026 int size;
5028 cross_section (size, cons, 0);
5031 /* Why doesn't float_cons() call md_cons_align() the way cons() does? */
5033 static void
5034 stmt_float_cons (kind)
5035 int kind;
5037 size_t alignment;
5039 switch (kind)
5041 case 'd':
5042 alignment = 8;
5043 break;
5045 case 'x':
5046 case 'X':
5047 alignment = 16;
5048 break;
5050 case 'f':
5051 default:
5052 alignment = 4;
5053 break;
5055 ia64_do_align (alignment);
5056 float_cons (kind);
5059 static void
5060 stmt_cons_ua (size)
5061 int size;
5063 int saved_auto_align = md.auto_align;
5065 md.auto_align = 0;
5066 cons (size);
5067 md.auto_align = saved_auto_align;
5070 static void
5071 dot_xfloat_cons (kind)
5072 int kind;
5074 cross_section (kind, stmt_float_cons, 0);
5077 static void
5078 dot_xstringer (zero)
5079 int zero;
5081 cross_section (zero, stringer, 0);
5084 static void
5085 dot_xdata_ua (size)
5086 int size;
5088 cross_section (size, cons, 1);
5091 static void
5092 dot_xfloat_cons_ua (kind)
5093 int kind;
5095 cross_section (kind, float_cons, 1);
5098 /* .reg.val <regname>,value */
5100 static void
5101 dot_reg_val (dummy)
5102 int dummy ATTRIBUTE_UNUSED;
5104 expressionS reg;
5106 expression_and_evaluate (&reg);
5107 if (reg.X_op != O_register)
5109 as_bad (_("Register name expected"));
5110 ignore_rest_of_line ();
5112 else if (*input_line_pointer++ != ',')
5114 as_bad (_("Comma expected"));
5115 ignore_rest_of_line ();
5117 else
5119 valueT value = get_absolute_expression ();
5120 int regno = reg.X_add_number;
5121 if (regno <= REG_GR || regno > REG_GR + 127)
5122 as_warn (_("Register value annotation ignored"));
5123 else
5125 gr_values[regno - REG_GR].known = 1;
5126 gr_values[regno - REG_GR].value = value;
5127 gr_values[regno - REG_GR].path = md.path;
5130 demand_empty_rest_of_line ();
5134 .serialize.data
5135 .serialize.instruction
5137 static void
5138 dot_serialize (type)
5139 int type;
5141 insn_group_break (0, 0, 0);
5142 if (type)
5143 instruction_serialization ();
5144 else
5145 data_serialization ();
5146 insn_group_break (0, 0, 0);
5147 demand_empty_rest_of_line ();
5150 /* select dv checking mode
5151 .auto
5152 .explicit
5153 .default
5155 A stop is inserted when changing modes
5158 static void
5159 dot_dv_mode (type)
5160 int type;
5162 if (md.manual_bundling)
5163 as_warn (_("Directive invalid within a bundle"));
5165 if (type == 'E' || type == 'A')
5166 md.mode_explicitly_set = 0;
5167 else
5168 md.mode_explicitly_set = 1;
5170 md.detect_dv = 1;
5171 switch (type)
5173 case 'A':
5174 case 'a':
5175 if (md.explicit_mode)
5176 insn_group_break (1, 0, 0);
5177 md.explicit_mode = 0;
5178 break;
5179 case 'E':
5180 case 'e':
5181 if (!md.explicit_mode)
5182 insn_group_break (1, 0, 0);
5183 md.explicit_mode = 1;
5184 break;
5185 default:
5186 case 'd':
5187 if (md.explicit_mode != md.default_explicit_mode)
5188 insn_group_break (1, 0, 0);
5189 md.explicit_mode = md.default_explicit_mode;
5190 md.mode_explicitly_set = 0;
5191 break;
5195 static void
5196 print_prmask (mask)
5197 valueT mask;
5199 int regno;
5200 char *comma = "";
5201 for (regno = 0; regno < 64; regno++)
5203 if (mask & ((valueT) 1 << regno))
5205 fprintf (stderr, "%s p%d", comma, regno);
5206 comma = ",";
5212 .pred.rel.clear [p1 [,p2 [,...]]] (also .pred.rel "clear" or @clear)
5213 .pred.rel.imply p1, p2 (also .pred.rel "imply" or @imply)
5214 .pred.rel.mutex p1, p2 [,...] (also .pred.rel "mutex" or @mutex)
5215 .pred.safe_across_calls p1 [, p2 [,...]]
5218 static void
5219 dot_pred_rel (type)
5220 int type;
5222 valueT mask = 0;
5223 int count = 0;
5224 int p1 = -1, p2 = -1;
5226 if (type == 0)
5228 if (*input_line_pointer == '"')
5230 int len;
5231 char *form = demand_copy_C_string (&len);
5233 if (strcmp (form, "mutex") == 0)
5234 type = 'm';
5235 else if (strcmp (form, "clear") == 0)
5236 type = 'c';
5237 else if (strcmp (form, "imply") == 0)
5238 type = 'i';
5239 obstack_free (&notes, form);
5241 else if (*input_line_pointer == '@')
5243 char *form = ++input_line_pointer;
5244 char c = get_symbol_end();
5246 if (strcmp (form, "mutex") == 0)
5247 type = 'm';
5248 else if (strcmp (form, "clear") == 0)
5249 type = 'c';
5250 else if (strcmp (form, "imply") == 0)
5251 type = 'i';
5252 *input_line_pointer = c;
5254 else
5256 as_bad (_("Missing predicate relation type"));
5257 ignore_rest_of_line ();
5258 return;
5260 if (type == 0)
5262 as_bad (_("Unrecognized predicate relation type"));
5263 ignore_rest_of_line ();
5264 return;
5266 if (*input_line_pointer == ',')
5267 ++input_line_pointer;
5268 SKIP_WHITESPACE ();
5271 SKIP_WHITESPACE ();
5272 while (1)
5274 valueT bits = 1;
5275 int regno;
5276 expressionS pr, *pr1, *pr2;
5278 expression_and_evaluate (&pr);
5279 if (pr.X_op == O_register
5280 && pr.X_add_number >= REG_P
5281 && pr.X_add_number <= REG_P + 63)
5283 regno = pr.X_add_number - REG_P;
5284 bits <<= regno;
5285 count++;
5286 if (p1 == -1)
5287 p1 = regno;
5288 else if (p2 == -1)
5289 p2 = regno;
5291 else if (type != 'i'
5292 && pr.X_op == O_subtract
5293 && (pr1 = symbol_get_value_expression (pr.X_add_symbol))
5294 && pr1->X_op == O_register
5295 && pr1->X_add_number >= REG_P
5296 && pr1->X_add_number <= REG_P + 63
5297 && (pr2 = symbol_get_value_expression (pr.X_op_symbol))
5298 && pr2->X_op == O_register
5299 && pr2->X_add_number >= REG_P
5300 && pr2->X_add_number <= REG_P + 63)
5302 /* It's a range. */
5303 int stop;
5305 regno = pr1->X_add_number - REG_P;
5306 stop = pr2->X_add_number - REG_P;
5307 if (regno >= stop)
5309 as_bad (_("Bad register range"));
5310 ignore_rest_of_line ();
5311 return;
5313 bits = ((bits << stop) << 1) - (bits << regno);
5314 count += stop - regno + 1;
5316 else
5318 as_bad (_("Predicate register expected"));
5319 ignore_rest_of_line ();
5320 return;
5322 if (mask & bits)
5323 as_warn (_("Duplicate predicate register ignored"));
5324 mask |= bits;
5325 if (*input_line_pointer != ',')
5326 break;
5327 ++input_line_pointer;
5328 SKIP_WHITESPACE ();
5331 switch (type)
5333 case 'c':
5334 if (count == 0)
5335 mask = ~(valueT) 0;
5336 clear_qp_mutex (mask);
5337 clear_qp_implies (mask, (valueT) 0);
5338 break;
5339 case 'i':
5340 if (count != 2 || p1 == -1 || p2 == -1)
5341 as_bad (_("Predicate source and target required"));
5342 else if (p1 == 0 || p2 == 0)
5343 as_bad (_("Use of p0 is not valid in this context"));
5344 else
5345 add_qp_imply (p1, p2);
5346 break;
5347 case 'm':
5348 if (count < 2)
5350 as_bad (_("At least two PR arguments expected"));
5351 break;
5353 else if (mask & 1)
5355 as_bad (_("Use of p0 is not valid in this context"));
5356 break;
5358 add_qp_mutex (mask);
5359 break;
5360 case 's':
5361 /* note that we don't override any existing relations */
5362 if (count == 0)
5364 as_bad (_("At least one PR argument expected"));
5365 break;
5367 if (md.debug_dv)
5369 fprintf (stderr, "Safe across calls: ");
5370 print_prmask (mask);
5371 fprintf (stderr, "\n");
5373 qp_safe_across_calls = mask;
5374 break;
5376 demand_empty_rest_of_line ();
5379 /* .entry label [, label [, ...]]
5380 Hint to DV code that the given labels are to be considered entry points.
5381 Otherwise, only global labels are considered entry points. */
5383 static void
5384 dot_entry (dummy)
5385 int dummy ATTRIBUTE_UNUSED;
5387 const char *err;
5388 char *name;
5389 int c;
5390 symbolS *symbolP;
5394 name = input_line_pointer;
5395 c = get_symbol_end ();
5396 symbolP = symbol_find_or_make (name);
5398 err = hash_insert (md.entry_hash, S_GET_NAME (symbolP), (PTR) symbolP);
5399 if (err)
5400 as_fatal (_("Inserting \"%s\" into entry hint table failed: %s"),
5401 name, err);
5403 *input_line_pointer = c;
5404 SKIP_WHITESPACE ();
5405 c = *input_line_pointer;
5406 if (c == ',')
5408 input_line_pointer++;
5409 SKIP_WHITESPACE ();
5410 if (*input_line_pointer == '\n')
5411 c = '\n';
5414 while (c == ',');
5416 demand_empty_rest_of_line ();
5419 /* .mem.offset offset, base
5420 "base" is used to distinguish between offsets from a different base. */
5422 static void
5423 dot_mem_offset (dummy)
5424 int dummy ATTRIBUTE_UNUSED;
5426 md.mem_offset.hint = 1;
5427 md.mem_offset.offset = get_absolute_expression ();
5428 if (*input_line_pointer != ',')
5430 as_bad (_("Comma expected"));
5431 ignore_rest_of_line ();
5432 return;
5434 ++input_line_pointer;
5435 md.mem_offset.base = get_absolute_expression ();
5436 demand_empty_rest_of_line ();
5439 /* ia64-specific pseudo-ops: */
5440 const pseudo_typeS md_pseudo_table[] =
5442 { "radix", dot_radix, 0 },
5443 { "lcomm", s_lcomm_bytes, 1 },
5444 { "loc", dot_loc, 0 },
5445 { "bss", dot_special_section, SPECIAL_SECTION_BSS },
5446 { "sbss", dot_special_section, SPECIAL_SECTION_SBSS },
5447 { "sdata", dot_special_section, SPECIAL_SECTION_SDATA },
5448 { "rodata", dot_special_section, SPECIAL_SECTION_RODATA },
5449 { "comment", dot_special_section, SPECIAL_SECTION_COMMENT },
5450 { "ia_64.unwind", dot_special_section, SPECIAL_SECTION_UNWIND },
5451 { "ia_64.unwind_info", dot_special_section, SPECIAL_SECTION_UNWIND_INFO },
5452 { "init_array", dot_special_section, SPECIAL_SECTION_INIT_ARRAY },
5453 { "fini_array", dot_special_section, SPECIAL_SECTION_FINI_ARRAY },
5454 { "proc", dot_proc, 0 },
5455 { "body", dot_body, 0 },
5456 { "prologue", dot_prologue, 0 },
5457 { "endp", dot_endp, 0 },
5459 { "fframe", dot_fframe, 0 },
5460 { "vframe", dot_vframe, 0 },
5461 { "vframesp", dot_vframesp, 0 },
5462 { "vframepsp", dot_vframesp, 1 },
5463 { "save", dot_save, 0 },
5464 { "restore", dot_restore, 0 },
5465 { "restorereg", dot_restorereg, 0 },
5466 { "restorereg.p", dot_restorereg, 1 },
5467 { "handlerdata", dot_handlerdata, 0 },
5468 { "unwentry", dot_unwentry, 0 },
5469 { "altrp", dot_altrp, 0 },
5470 { "savesp", dot_savemem, 0 },
5471 { "savepsp", dot_savemem, 1 },
5472 { "save.g", dot_saveg, 0 },
5473 { "save.f", dot_savef, 0 },
5474 { "save.b", dot_saveb, 0 },
5475 { "save.gf", dot_savegf, 0 },
5476 { "spill", dot_spill, 0 },
5477 { "spillreg", dot_spillreg, 0 },
5478 { "spillsp", dot_spillmem, 0 },
5479 { "spillpsp", dot_spillmem, 1 },
5480 { "spillreg.p", dot_spillreg, 1 },
5481 { "spillsp.p", dot_spillmem, ~0 },
5482 { "spillpsp.p", dot_spillmem, ~1 },
5483 { "label_state", dot_label_state, 0 },
5484 { "copy_state", dot_copy_state, 0 },
5485 { "unwabi", dot_unwabi, 0 },
5486 { "personality", dot_personality, 0 },
5487 { "mii", dot_template, 0x0 },
5488 { "mli", dot_template, 0x2 }, /* old format, for compatibility */
5489 { "mlx", dot_template, 0x2 },
5490 { "mmi", dot_template, 0x4 },
5491 { "mfi", dot_template, 0x6 },
5492 { "mmf", dot_template, 0x7 },
5493 { "mib", dot_template, 0x8 },
5494 { "mbb", dot_template, 0x9 },
5495 { "bbb", dot_template, 0xb },
5496 { "mmb", dot_template, 0xc },
5497 { "mfb", dot_template, 0xe },
5498 { "align", dot_align, 0 },
5499 { "regstk", dot_regstk, 0 },
5500 { "rotr", dot_rot, DYNREG_GR },
5501 { "rotf", dot_rot, DYNREG_FR },
5502 { "rotp", dot_rot, DYNREG_PR },
5503 { "lsb", dot_byteorder, 0 },
5504 { "msb", dot_byteorder, 1 },
5505 { "psr", dot_psr, 0 },
5506 { "alias", dot_alias, 0 },
5507 { "secalias", dot_alias, 1 },
5508 { "ln", dot_ln, 0 }, /* source line info (for debugging) */
5510 { "xdata1", dot_xdata, 1 },
5511 { "xdata2", dot_xdata, 2 },
5512 { "xdata4", dot_xdata, 4 },
5513 { "xdata8", dot_xdata, 8 },
5514 { "xdata16", dot_xdata, 16 },
5515 { "xreal4", dot_xfloat_cons, 'f' },
5516 { "xreal8", dot_xfloat_cons, 'd' },
5517 { "xreal10", dot_xfloat_cons, 'x' },
5518 { "xreal16", dot_xfloat_cons, 'X' },
5519 { "xstring", dot_xstringer, 0 },
5520 { "xstringz", dot_xstringer, 1 },
5522 /* unaligned versions: */
5523 { "xdata2.ua", dot_xdata_ua, 2 },
5524 { "xdata4.ua", dot_xdata_ua, 4 },
5525 { "xdata8.ua", dot_xdata_ua, 8 },
5526 { "xdata16.ua", dot_xdata_ua, 16 },
5527 { "xreal4.ua", dot_xfloat_cons_ua, 'f' },
5528 { "xreal8.ua", dot_xfloat_cons_ua, 'd' },
5529 { "xreal10.ua", dot_xfloat_cons_ua, 'x' },
5530 { "xreal16.ua", dot_xfloat_cons_ua, 'X' },
5532 /* annotations/DV checking support */
5533 { "entry", dot_entry, 0 },
5534 { "mem.offset", dot_mem_offset, 0 },
5535 { "pred.rel", dot_pred_rel, 0 },
5536 { "pred.rel.clear", dot_pred_rel, 'c' },
5537 { "pred.rel.imply", dot_pred_rel, 'i' },
5538 { "pred.rel.mutex", dot_pred_rel, 'm' },
5539 { "pred.safe_across_calls", dot_pred_rel, 's' },
5540 { "reg.val", dot_reg_val, 0 },
5541 { "serialize.data", dot_serialize, 0 },
5542 { "serialize.instruction", dot_serialize, 1 },
5543 { "auto", dot_dv_mode, 'a' },
5544 { "explicit", dot_dv_mode, 'e' },
5545 { "default", dot_dv_mode, 'd' },
5547 /* ??? These are needed to make gas/testsuite/gas/elf/ehopt.s work.
5548 IA-64 aligns data allocation pseudo-ops by default, so we have to
5549 tell it that these ones are supposed to be unaligned. Long term,
5550 should rewrite so that only IA-64 specific data allocation pseudo-ops
5551 are aligned by default. */
5552 {"2byte", stmt_cons_ua, 2},
5553 {"4byte", stmt_cons_ua, 4},
5554 {"8byte", stmt_cons_ua, 8},
5556 { NULL, 0, 0 }
5559 static const struct pseudo_opcode
5561 const char *name;
5562 void (*handler) (int);
5563 int arg;
5565 pseudo_opcode[] =
5567 /* these are more like pseudo-ops, but don't start with a dot */
5568 { "data1", cons, 1 },
5569 { "data2", cons, 2 },
5570 { "data4", cons, 4 },
5571 { "data8", cons, 8 },
5572 { "data16", cons, 16 },
5573 { "real4", stmt_float_cons, 'f' },
5574 { "real8", stmt_float_cons, 'd' },
5575 { "real10", stmt_float_cons, 'x' },
5576 { "real16", stmt_float_cons, 'X' },
5577 { "string", stringer, 0 },
5578 { "stringz", stringer, 1 },
5580 /* unaligned versions: */
5581 { "data2.ua", stmt_cons_ua, 2 },
5582 { "data4.ua", stmt_cons_ua, 4 },
5583 { "data8.ua", stmt_cons_ua, 8 },
5584 { "data16.ua", stmt_cons_ua, 16 },
5585 { "real4.ua", float_cons, 'f' },
5586 { "real8.ua", float_cons, 'd' },
5587 { "real10.ua", float_cons, 'x' },
5588 { "real16.ua", float_cons, 'X' },
5591 /* Declare a register by creating a symbol for it and entering it in
5592 the symbol table. */
5594 static symbolS *
5595 declare_register (name, regnum)
5596 const char *name;
5597 int regnum;
5599 const char *err;
5600 symbolS *sym;
5602 sym = symbol_new (name, reg_section, regnum, &zero_address_frag);
5604 err = hash_insert (md.reg_hash, S_GET_NAME (sym), (PTR) sym);
5605 if (err)
5606 as_fatal ("Inserting \"%s\" into register table failed: %s",
5607 name, err);
5609 return sym;
5612 static void
5613 declare_register_set (prefix, num_regs, base_regnum)
5614 const char *prefix;
5615 int num_regs;
5616 int base_regnum;
5618 char name[8];
5619 int i;
5621 for (i = 0; i < num_regs; ++i)
5623 sprintf (name, "%s%u", prefix, i);
5624 declare_register (name, base_regnum + i);
5628 static unsigned int
5629 operand_width (opnd)
5630 enum ia64_opnd opnd;
5632 const struct ia64_operand *odesc = &elf64_ia64_operands[opnd];
5633 unsigned int bits = 0;
5634 int i;
5636 bits = 0;
5637 for (i = 0; i < NELEMS (odesc->field) && odesc->field[i].bits; ++i)
5638 bits += odesc->field[i].bits;
5640 return bits;
5643 static enum operand_match_result
5644 operand_match (idesc, index, e)
5645 const struct ia64_opcode *idesc;
5646 int index;
5647 expressionS *e;
5649 enum ia64_opnd opnd = idesc->operands[index];
5650 int bits, relocatable = 0;
5651 struct insn_fix *fix;
5652 bfd_signed_vma val;
5654 switch (opnd)
5656 /* constants: */
5658 case IA64_OPND_AR_CCV:
5659 if (e->X_op == O_register && e->X_add_number == REG_AR + 32)
5660 return OPERAND_MATCH;
5661 break;
5663 case IA64_OPND_AR_CSD:
5664 if (e->X_op == O_register && e->X_add_number == REG_AR + 25)
5665 return OPERAND_MATCH;
5666 break;
5668 case IA64_OPND_AR_PFS:
5669 if (e->X_op == O_register && e->X_add_number == REG_AR + 64)
5670 return OPERAND_MATCH;
5671 break;
5673 case IA64_OPND_GR0:
5674 if (e->X_op == O_register && e->X_add_number == REG_GR + 0)
5675 return OPERAND_MATCH;
5676 break;
5678 case IA64_OPND_IP:
5679 if (e->X_op == O_register && e->X_add_number == REG_IP)
5680 return OPERAND_MATCH;
5681 break;
5683 case IA64_OPND_PR:
5684 if (e->X_op == O_register && e->X_add_number == REG_PR)
5685 return OPERAND_MATCH;
5686 break;
5688 case IA64_OPND_PR_ROT:
5689 if (e->X_op == O_register && e->X_add_number == REG_PR_ROT)
5690 return OPERAND_MATCH;
5691 break;
5693 case IA64_OPND_PSR:
5694 if (e->X_op == O_register && e->X_add_number == REG_PSR)
5695 return OPERAND_MATCH;
5696 break;
5698 case IA64_OPND_PSR_L:
5699 if (e->X_op == O_register && e->X_add_number == REG_PSR_L)
5700 return OPERAND_MATCH;
5701 break;
5703 case IA64_OPND_PSR_UM:
5704 if (e->X_op == O_register && e->X_add_number == REG_PSR_UM)
5705 return OPERAND_MATCH;
5706 break;
5708 case IA64_OPND_C1:
5709 if (e->X_op == O_constant)
5711 if (e->X_add_number == 1)
5712 return OPERAND_MATCH;
5713 else
5714 return OPERAND_OUT_OF_RANGE;
5716 break;
5718 case IA64_OPND_C8:
5719 if (e->X_op == O_constant)
5721 if (e->X_add_number == 8)
5722 return OPERAND_MATCH;
5723 else
5724 return OPERAND_OUT_OF_RANGE;
5726 break;
5728 case IA64_OPND_C16:
5729 if (e->X_op == O_constant)
5731 if (e->X_add_number == 16)
5732 return OPERAND_MATCH;
5733 else
5734 return OPERAND_OUT_OF_RANGE;
5736 break;
5738 /* register operands: */
5740 case IA64_OPND_AR3:
5741 if (e->X_op == O_register && e->X_add_number >= REG_AR
5742 && e->X_add_number < REG_AR + 128)
5743 return OPERAND_MATCH;
5744 break;
5746 case IA64_OPND_B1:
5747 case IA64_OPND_B2:
5748 if (e->X_op == O_register && e->X_add_number >= REG_BR
5749 && e->X_add_number < REG_BR + 8)
5750 return OPERAND_MATCH;
5751 break;
5753 case IA64_OPND_CR3:
5754 if (e->X_op == O_register && e->X_add_number >= REG_CR
5755 && e->X_add_number < REG_CR + 128)
5756 return OPERAND_MATCH;
5757 break;
5759 case IA64_OPND_F1:
5760 case IA64_OPND_F2:
5761 case IA64_OPND_F3:
5762 case IA64_OPND_F4:
5763 if (e->X_op == O_register && e->X_add_number >= REG_FR
5764 && e->X_add_number < REG_FR + 128)
5765 return OPERAND_MATCH;
5766 break;
5768 case IA64_OPND_P1:
5769 case IA64_OPND_P2:
5770 if (e->X_op == O_register && e->X_add_number >= REG_P
5771 && e->X_add_number < REG_P + 64)
5772 return OPERAND_MATCH;
5773 break;
5775 case IA64_OPND_R1:
5776 case IA64_OPND_R2:
5777 case IA64_OPND_R3:
5778 if (e->X_op == O_register && e->X_add_number >= REG_GR
5779 && e->X_add_number < REG_GR + 128)
5780 return OPERAND_MATCH;
5781 break;
5783 case IA64_OPND_R3_2:
5784 if (e->X_op == O_register && e->X_add_number >= REG_GR)
5786 if (e->X_add_number < REG_GR + 4)
5787 return OPERAND_MATCH;
5788 else if (e->X_add_number < REG_GR + 128)
5789 return OPERAND_OUT_OF_RANGE;
5791 break;
5793 /* indirect operands: */
5794 case IA64_OPND_CPUID_R3:
5795 case IA64_OPND_DBR_R3:
5796 case IA64_OPND_DTR_R3:
5797 case IA64_OPND_ITR_R3:
5798 case IA64_OPND_IBR_R3:
5799 case IA64_OPND_MSR_R3:
5800 case IA64_OPND_PKR_R3:
5801 case IA64_OPND_PMC_R3:
5802 case IA64_OPND_PMD_R3:
5803 case IA64_OPND_RR_R3:
5804 if (e->X_op == O_index && e->X_op_symbol
5805 && (S_GET_VALUE (e->X_op_symbol) - IND_CPUID
5806 == opnd - IA64_OPND_CPUID_R3))
5807 return OPERAND_MATCH;
5808 break;
5810 case IA64_OPND_MR3:
5811 if (e->X_op == O_index && !e->X_op_symbol)
5812 return OPERAND_MATCH;
5813 break;
5815 /* immediate operands: */
5816 case IA64_OPND_CNT2a:
5817 case IA64_OPND_LEN4:
5818 case IA64_OPND_LEN6:
5819 bits = operand_width (idesc->operands[index]);
5820 if (e->X_op == O_constant)
5822 if ((bfd_vma) (e->X_add_number - 1) < ((bfd_vma) 1 << bits))
5823 return OPERAND_MATCH;
5824 else
5825 return OPERAND_OUT_OF_RANGE;
5827 break;
5829 case IA64_OPND_CNT2b:
5830 if (e->X_op == O_constant)
5832 if ((bfd_vma) (e->X_add_number - 1) < 3)
5833 return OPERAND_MATCH;
5834 else
5835 return OPERAND_OUT_OF_RANGE;
5837 break;
5839 case IA64_OPND_CNT2c:
5840 val = e->X_add_number;
5841 if (e->X_op == O_constant)
5843 if ((val == 0 || val == 7 || val == 15 || val == 16))
5844 return OPERAND_MATCH;
5845 else
5846 return OPERAND_OUT_OF_RANGE;
5848 break;
5850 case IA64_OPND_SOR:
5851 /* SOR must be an integer multiple of 8 */
5852 if (e->X_op == O_constant && e->X_add_number & 0x7)
5853 return OPERAND_OUT_OF_RANGE;
5854 case IA64_OPND_SOF:
5855 case IA64_OPND_SOL:
5856 if (e->X_op == O_constant)
5858 if ((bfd_vma) e->X_add_number <= 96)
5859 return OPERAND_MATCH;
5860 else
5861 return OPERAND_OUT_OF_RANGE;
5863 break;
5865 case IA64_OPND_IMMU62:
5866 if (e->X_op == O_constant)
5868 if ((bfd_vma) e->X_add_number < ((bfd_vma) 1 << 62))
5869 return OPERAND_MATCH;
5870 else
5871 return OPERAND_OUT_OF_RANGE;
5873 else
5875 /* FIXME -- need 62-bit relocation type */
5876 as_bad (_("62-bit relocation not yet implemented"));
5878 break;
5880 case IA64_OPND_IMMU64:
5881 if (e->X_op == O_symbol || e->X_op == O_pseudo_fixup
5882 || e->X_op == O_subtract)
5884 fix = CURR_SLOT.fixup + CURR_SLOT.num_fixups;
5885 fix->code = BFD_RELOC_IA64_IMM64;
5886 if (e->X_op != O_subtract)
5888 fix->code = ia64_gen_real_reloc_type (e->X_op_symbol, fix->code);
5889 if (e->X_op == O_pseudo_fixup)
5890 e->X_op = O_symbol;
5893 fix->opnd = idesc->operands[index];
5894 fix->expr = *e;
5895 fix->is_pcrel = 0;
5896 ++CURR_SLOT.num_fixups;
5897 return OPERAND_MATCH;
5899 else if (e->X_op == O_constant)
5900 return OPERAND_MATCH;
5901 break;
5903 case IA64_OPND_CCNT5:
5904 case IA64_OPND_CNT5:
5905 case IA64_OPND_CNT6:
5906 case IA64_OPND_CPOS6a:
5907 case IA64_OPND_CPOS6b:
5908 case IA64_OPND_CPOS6c:
5909 case IA64_OPND_IMMU2:
5910 case IA64_OPND_IMMU7a:
5911 case IA64_OPND_IMMU7b:
5912 case IA64_OPND_IMMU21:
5913 case IA64_OPND_IMMU24:
5914 case IA64_OPND_MBTYPE4:
5915 case IA64_OPND_MHTYPE8:
5916 case IA64_OPND_POS6:
5917 bits = operand_width (idesc->operands[index]);
5918 if (e->X_op == O_constant)
5920 if ((bfd_vma) e->X_add_number < ((bfd_vma) 1 << bits))
5921 return OPERAND_MATCH;
5922 else
5923 return OPERAND_OUT_OF_RANGE;
5925 break;
5927 case IA64_OPND_IMMU9:
5928 bits = operand_width (idesc->operands[index]);
5929 if (e->X_op == O_constant)
5931 if ((bfd_vma) e->X_add_number < ((bfd_vma) 1 << bits))
5933 int lobits = e->X_add_number & 0x3;
5934 if (((bfd_vma) e->X_add_number & 0x3C) != 0 && lobits == 0)
5935 e->X_add_number |= (bfd_vma) 0x3;
5936 return OPERAND_MATCH;
5938 else
5939 return OPERAND_OUT_OF_RANGE;
5941 break;
5943 case IA64_OPND_IMM44:
5944 /* least 16 bits must be zero */
5945 if ((e->X_add_number & 0xffff) != 0)
5946 /* XXX technically, this is wrong: we should not be issuing warning
5947 messages until we're sure this instruction pattern is going to
5948 be used! */
5949 as_warn (_("lower 16 bits of mask ignored"));
5951 if (e->X_op == O_constant)
5953 if (((e->X_add_number >= 0
5954 && (bfd_vma) e->X_add_number < ((bfd_vma) 1 << 44))
5955 || (e->X_add_number < 0
5956 && (bfd_vma) -e->X_add_number <= ((bfd_vma) 1 << 44))))
5958 /* sign-extend */
5959 if (e->X_add_number >= 0
5960 && (e->X_add_number & ((bfd_vma) 1 << 43)) != 0)
5962 e->X_add_number |= ~(((bfd_vma) 1 << 44) - 1);
5964 return OPERAND_MATCH;
5966 else
5967 return OPERAND_OUT_OF_RANGE;
5969 break;
5971 case IA64_OPND_IMM17:
5972 /* bit 0 is a don't care (pr0 is hardwired to 1) */
5973 if (e->X_op == O_constant)
5975 if (((e->X_add_number >= 0
5976 && (bfd_vma) e->X_add_number < ((bfd_vma) 1 << 17))
5977 || (e->X_add_number < 0
5978 && (bfd_vma) -e->X_add_number <= ((bfd_vma) 1 << 17))))
5980 /* sign-extend */
5981 if (e->X_add_number >= 0
5982 && (e->X_add_number & ((bfd_vma) 1 << 16)) != 0)
5984 e->X_add_number |= ~(((bfd_vma) 1 << 17) - 1);
5986 return OPERAND_MATCH;
5988 else
5989 return OPERAND_OUT_OF_RANGE;
5991 break;
5993 case IA64_OPND_IMM14:
5994 case IA64_OPND_IMM22:
5995 relocatable = 1;
5996 case IA64_OPND_IMM1:
5997 case IA64_OPND_IMM8:
5998 case IA64_OPND_IMM8U4:
5999 case IA64_OPND_IMM8M1:
6000 case IA64_OPND_IMM8M1U4:
6001 case IA64_OPND_IMM8M1U8:
6002 case IA64_OPND_IMM9a:
6003 case IA64_OPND_IMM9b:
6004 bits = operand_width (idesc->operands[index]);
6005 if (relocatable && (e->X_op == O_symbol
6006 || e->X_op == O_subtract
6007 || e->X_op == O_pseudo_fixup))
6009 fix = CURR_SLOT.fixup + CURR_SLOT.num_fixups;
6011 if (idesc->operands[index] == IA64_OPND_IMM14)
6012 fix->code = BFD_RELOC_IA64_IMM14;
6013 else
6014 fix->code = BFD_RELOC_IA64_IMM22;
6016 if (e->X_op != O_subtract)
6018 fix->code = ia64_gen_real_reloc_type (e->X_op_symbol, fix->code);
6019 if (e->X_op == O_pseudo_fixup)
6020 e->X_op = O_symbol;
6023 fix->opnd = idesc->operands[index];
6024 fix->expr = *e;
6025 fix->is_pcrel = 0;
6026 ++CURR_SLOT.num_fixups;
6027 return OPERAND_MATCH;
6029 else if (e->X_op != O_constant
6030 && ! (e->X_op == O_big && opnd == IA64_OPND_IMM8M1U8))
6031 return OPERAND_MISMATCH;
6033 if (opnd == IA64_OPND_IMM8M1U4)
6035 /* Zero is not valid for unsigned compares that take an adjusted
6036 constant immediate range. */
6037 if (e->X_add_number == 0)
6038 return OPERAND_OUT_OF_RANGE;
6040 /* Sign-extend 32-bit unsigned numbers, so that the following range
6041 checks will work. */
6042 val = e->X_add_number;
6043 if (((val & (~(bfd_vma) 0 << 32)) == 0)
6044 && ((val & ((bfd_vma) 1 << 31)) != 0))
6045 val = ((val << 32) >> 32);
6047 /* Check for 0x100000000. This is valid because
6048 0x100000000-1 is the same as ((uint32_t) -1). */
6049 if (val == ((bfd_signed_vma) 1 << 32))
6050 return OPERAND_MATCH;
6052 val = val - 1;
6054 else if (opnd == IA64_OPND_IMM8M1U8)
6056 /* Zero is not valid for unsigned compares that take an adjusted
6057 constant immediate range. */
6058 if (e->X_add_number == 0)
6059 return OPERAND_OUT_OF_RANGE;
6061 /* Check for 0x10000000000000000. */
6062 if (e->X_op == O_big)
6064 if (generic_bignum[0] == 0
6065 && generic_bignum[1] == 0
6066 && generic_bignum[2] == 0
6067 && generic_bignum[3] == 0
6068 && generic_bignum[4] == 1)
6069 return OPERAND_MATCH;
6070 else
6071 return OPERAND_OUT_OF_RANGE;
6073 else
6074 val = e->X_add_number - 1;
6076 else if (opnd == IA64_OPND_IMM8M1)
6077 val = e->X_add_number - 1;
6078 else if (opnd == IA64_OPND_IMM8U4)
6080 /* Sign-extend 32-bit unsigned numbers, so that the following range
6081 checks will work. */
6082 val = e->X_add_number;
6083 if (((val & (~(bfd_vma) 0 << 32)) == 0)
6084 && ((val & ((bfd_vma) 1 << 31)) != 0))
6085 val = ((val << 32) >> 32);
6087 else
6088 val = e->X_add_number;
6090 if ((val >= 0 && (bfd_vma) val < ((bfd_vma) 1 << (bits - 1)))
6091 || (val < 0 && (bfd_vma) -val <= ((bfd_vma) 1 << (bits - 1))))
6092 return OPERAND_MATCH;
6093 else
6094 return OPERAND_OUT_OF_RANGE;
6096 case IA64_OPND_INC3:
6097 /* +/- 1, 4, 8, 16 */
6098 val = e->X_add_number;
6099 if (val < 0)
6100 val = -val;
6101 if (e->X_op == O_constant)
6103 if ((val == 1 || val == 4 || val == 8 || val == 16))
6104 return OPERAND_MATCH;
6105 else
6106 return OPERAND_OUT_OF_RANGE;
6108 break;
6110 case IA64_OPND_TGT25:
6111 case IA64_OPND_TGT25b:
6112 case IA64_OPND_TGT25c:
6113 case IA64_OPND_TGT64:
6114 if (e->X_op == O_symbol)
6116 fix = CURR_SLOT.fixup + CURR_SLOT.num_fixups;
6117 if (opnd == IA64_OPND_TGT25)
6118 fix->code = BFD_RELOC_IA64_PCREL21F;
6119 else if (opnd == IA64_OPND_TGT25b)
6120 fix->code = BFD_RELOC_IA64_PCREL21M;
6121 else if (opnd == IA64_OPND_TGT25c)
6122 fix->code = BFD_RELOC_IA64_PCREL21B;
6123 else if (opnd == IA64_OPND_TGT64)
6124 fix->code = BFD_RELOC_IA64_PCREL60B;
6125 else
6126 abort ();
6128 fix->code = ia64_gen_real_reloc_type (e->X_op_symbol, fix->code);
6129 fix->opnd = idesc->operands[index];
6130 fix->expr = *e;
6131 fix->is_pcrel = 1;
6132 ++CURR_SLOT.num_fixups;
6133 return OPERAND_MATCH;
6135 case IA64_OPND_TAG13:
6136 case IA64_OPND_TAG13b:
6137 switch (e->X_op)
6139 case O_constant:
6140 return OPERAND_MATCH;
6142 case O_symbol:
6143 fix = CURR_SLOT.fixup + CURR_SLOT.num_fixups;
6144 /* There are no external relocs for TAG13/TAG13b fields, so we
6145 create a dummy reloc. This will not live past md_apply_fix. */
6146 fix->code = BFD_RELOC_UNUSED;
6147 fix->code = ia64_gen_real_reloc_type (e->X_op_symbol, fix->code);
6148 fix->opnd = idesc->operands[index];
6149 fix->expr = *e;
6150 fix->is_pcrel = 1;
6151 ++CURR_SLOT.num_fixups;
6152 return OPERAND_MATCH;
6154 default:
6155 break;
6157 break;
6159 case IA64_OPND_LDXMOV:
6160 fix = CURR_SLOT.fixup + CURR_SLOT.num_fixups;
6161 fix->code = BFD_RELOC_IA64_LDXMOV;
6162 fix->opnd = idesc->operands[index];
6163 fix->expr = *e;
6164 fix->is_pcrel = 0;
6165 ++CURR_SLOT.num_fixups;
6166 return OPERAND_MATCH;
6168 default:
6169 break;
6171 return OPERAND_MISMATCH;
6174 static int
6175 parse_operand (e, more)
6176 expressionS *e;
6177 int more;
6179 int sep = '\0';
6181 memset (e, 0, sizeof (*e));
6182 e->X_op = O_absent;
6183 SKIP_WHITESPACE ();
6184 expression_and_evaluate (e);
6185 sep = *input_line_pointer;
6186 if (more && (sep == ',' || sep == more))
6187 ++input_line_pointer;
6188 return sep;
6191 /* Returns the next entry in the opcode table that matches the one in
6192 IDESC, and frees the entry in IDESC. If no matching entry is
6193 found, NULL is returned instead. */
6195 static struct ia64_opcode *
6196 get_next_opcode (struct ia64_opcode *idesc)
6198 struct ia64_opcode *next = ia64_find_next_opcode (idesc);
6199 ia64_free_opcode (idesc);
6200 return next;
6203 /* Parse the operands for the opcode and find the opcode variant that
6204 matches the specified operands, or NULL if no match is possible. */
6206 static struct ia64_opcode *
6207 parse_operands (idesc)
6208 struct ia64_opcode *idesc;
6210 int i = 0, highest_unmatched_operand, num_operands = 0, num_outputs = 0;
6211 int error_pos, out_of_range_pos, curr_out_of_range_pos, sep = 0;
6212 int reg1, reg2;
6213 char reg_class;
6214 enum ia64_opnd expected_operand = IA64_OPND_NIL;
6215 enum operand_match_result result;
6216 char mnemonic[129];
6217 char *first_arg = 0, *end, *saved_input_pointer;
6218 unsigned int sof;
6220 assert (strlen (idesc->name) <= 128);
6222 strcpy (mnemonic, idesc->name);
6223 if (idesc->operands[2] == IA64_OPND_SOF
6224 || idesc->operands[1] == IA64_OPND_SOF)
6226 /* To make the common idiom "alloc loc?=ar.pfs,0,1,0,0" work, we
6227 can't parse the first operand until we have parsed the
6228 remaining operands of the "alloc" instruction. */
6229 SKIP_WHITESPACE ();
6230 first_arg = input_line_pointer;
6231 end = strchr (input_line_pointer, '=');
6232 if (!end)
6234 as_bad ("Expected separator `='");
6235 return 0;
6237 input_line_pointer = end + 1;
6238 ++i;
6239 ++num_outputs;
6242 for (; ; ++i)
6244 if (i < NELEMS (CURR_SLOT.opnd))
6246 sep = parse_operand (CURR_SLOT.opnd + i, '=');
6247 if (CURR_SLOT.opnd[i].X_op == O_absent)
6248 break;
6250 else
6252 expressionS dummy;
6254 sep = parse_operand (&dummy, '=');
6255 if (dummy.X_op == O_absent)
6256 break;
6259 ++num_operands;
6261 if (sep != '=' && sep != ',')
6262 break;
6264 if (sep == '=')
6266 if (num_outputs > 0)
6267 as_bad ("Duplicate equal sign (=) in instruction");
6268 else
6269 num_outputs = i + 1;
6272 if (sep != '\0')
6274 as_bad ("Illegal operand separator `%c'", sep);
6275 return 0;
6278 if (idesc->operands[2] == IA64_OPND_SOF
6279 || idesc->operands[1] == IA64_OPND_SOF)
6281 /* Map alloc r1=ar.pfs,i,l,o,r to alloc r1=ar.pfs,(i+l+o),(i+l),r.
6282 Note, however, that due to that mapping operand numbers in error
6283 messages for any of the constant operands will not be correct. */
6284 know (strcmp (idesc->name, "alloc") == 0);
6285 /* The first operand hasn't been parsed/initialized, yet (but
6286 num_operands intentionally doesn't account for that). */
6287 i = num_operands > 4 ? 2 : 1;
6288 #define FORCE_CONST(n) (CURR_SLOT.opnd[n].X_op == O_constant \
6289 ? CURR_SLOT.opnd[n].X_add_number \
6290 : 0)
6291 sof = set_regstack (FORCE_CONST(i),
6292 FORCE_CONST(i + 1),
6293 FORCE_CONST(i + 2),
6294 FORCE_CONST(i + 3));
6295 #undef FORCE_CONST
6297 /* now we can parse the first arg: */
6298 saved_input_pointer = input_line_pointer;
6299 input_line_pointer = first_arg;
6300 sep = parse_operand (CURR_SLOT.opnd + 0, '=');
6301 if (sep != '=')
6302 --num_outputs; /* force error */
6303 input_line_pointer = saved_input_pointer;
6305 CURR_SLOT.opnd[i].X_add_number = sof;
6306 if (CURR_SLOT.opnd[i + 1].X_op == O_constant
6307 && CURR_SLOT.opnd[i + 2].X_op == O_constant)
6308 CURR_SLOT.opnd[i + 1].X_add_number
6309 = sof - CURR_SLOT.opnd[i + 2].X_add_number;
6310 else
6311 CURR_SLOT.opnd[i + 1].X_op = O_illegal;
6312 CURR_SLOT.opnd[i + 2] = CURR_SLOT.opnd[i + 3];
6315 highest_unmatched_operand = -4;
6316 curr_out_of_range_pos = -1;
6317 error_pos = 0;
6318 for (; idesc; idesc = get_next_opcode (idesc))
6320 if (num_outputs != idesc->num_outputs)
6321 continue; /* mismatch in # of outputs */
6322 if (highest_unmatched_operand < 0)
6323 highest_unmatched_operand |= 1;
6324 if (num_operands > NELEMS (idesc->operands)
6325 || (num_operands < NELEMS (idesc->operands)
6326 && idesc->operands[num_operands])
6327 || (num_operands > 0 && !idesc->operands[num_operands - 1]))
6328 continue; /* mismatch in number of arguments */
6329 if (highest_unmatched_operand < 0)
6330 highest_unmatched_operand |= 2;
6332 CURR_SLOT.num_fixups = 0;
6334 /* Try to match all operands. If we see an out-of-range operand,
6335 then continue trying to match the rest of the operands, since if
6336 the rest match, then this idesc will give the best error message. */
6338 out_of_range_pos = -1;
6339 for (i = 0; i < num_operands && idesc->operands[i]; ++i)
6341 result = operand_match (idesc, i, CURR_SLOT.opnd + i);
6342 if (result != OPERAND_MATCH)
6344 if (result != OPERAND_OUT_OF_RANGE)
6345 break;
6346 if (out_of_range_pos < 0)
6347 /* remember position of the first out-of-range operand: */
6348 out_of_range_pos = i;
6352 /* If we did not match all operands, or if at least one operand was
6353 out-of-range, then this idesc does not match. Keep track of which
6354 idesc matched the most operands before failing. If we have two
6355 idescs that failed at the same position, and one had an out-of-range
6356 operand, then prefer the out-of-range operand. Thus if we have
6357 "add r0=0x1000000,r1" we get an error saying the constant is out
6358 of range instead of an error saying that the constant should have been
6359 a register. */
6361 if (i != num_operands || out_of_range_pos >= 0)
6363 if (i > highest_unmatched_operand
6364 || (i == highest_unmatched_operand
6365 && out_of_range_pos > curr_out_of_range_pos))
6367 highest_unmatched_operand = i;
6368 if (out_of_range_pos >= 0)
6370 expected_operand = idesc->operands[out_of_range_pos];
6371 error_pos = out_of_range_pos;
6373 else
6375 expected_operand = idesc->operands[i];
6376 error_pos = i;
6378 curr_out_of_range_pos = out_of_range_pos;
6380 continue;
6383 break;
6385 if (!idesc)
6387 if (expected_operand)
6388 as_bad ("Operand %u of `%s' should be %s",
6389 error_pos + 1, mnemonic,
6390 elf64_ia64_operands[expected_operand].desc);
6391 else if (highest_unmatched_operand < 0 && !(highest_unmatched_operand & 1))
6392 as_bad ("Wrong number of output operands");
6393 else if (highest_unmatched_operand < 0 && !(highest_unmatched_operand & 2))
6394 as_bad ("Wrong number of input operands");
6395 else
6396 as_bad ("Operand mismatch");
6397 return 0;
6400 /* Check that the instruction doesn't use
6401 - r0, f0, or f1 as output operands
6402 - the same predicate twice as output operands
6403 - r0 as address of a base update load or store
6404 - the same GR as output and address of a base update load
6405 - two even- or two odd-numbered FRs as output operands of a floating
6406 point parallel load.
6407 At most two (conflicting) output (or output-like) operands can exist,
6408 (floating point parallel loads have three outputs, but the base register,
6409 if updated, cannot conflict with the actual outputs). */
6410 reg2 = reg1 = -1;
6411 for (i = 0; i < num_operands; ++i)
6413 int regno = 0;
6415 reg_class = 0;
6416 switch (idesc->operands[i])
6418 case IA64_OPND_R1:
6419 case IA64_OPND_R2:
6420 case IA64_OPND_R3:
6421 if (i < num_outputs)
6423 if (CURR_SLOT.opnd[i].X_add_number == REG_GR)
6424 reg_class = 'r';
6425 else if (reg1 < 0)
6426 reg1 = CURR_SLOT.opnd[i].X_add_number;
6427 else if (reg2 < 0)
6428 reg2 = CURR_SLOT.opnd[i].X_add_number;
6430 break;
6431 case IA64_OPND_P1:
6432 case IA64_OPND_P2:
6433 if (i < num_outputs)
6435 if (reg1 < 0)
6436 reg1 = CURR_SLOT.opnd[i].X_add_number;
6437 else if (reg2 < 0)
6438 reg2 = CURR_SLOT.opnd[i].X_add_number;
6440 break;
6441 case IA64_OPND_F1:
6442 case IA64_OPND_F2:
6443 case IA64_OPND_F3:
6444 case IA64_OPND_F4:
6445 if (i < num_outputs)
6447 if (CURR_SLOT.opnd[i].X_add_number >= REG_FR
6448 && CURR_SLOT.opnd[i].X_add_number <= REG_FR + 1)
6450 reg_class = 'f';
6451 regno = CURR_SLOT.opnd[i].X_add_number - REG_FR;
6453 else if (reg1 < 0)
6454 reg1 = CURR_SLOT.opnd[i].X_add_number;
6455 else if (reg2 < 0)
6456 reg2 = CURR_SLOT.opnd[i].X_add_number;
6458 break;
6459 case IA64_OPND_MR3:
6460 if (idesc->flags & IA64_OPCODE_POSTINC)
6462 if (CURR_SLOT.opnd[i].X_add_number == REG_GR)
6463 reg_class = 'm';
6464 else if (reg1 < 0)
6465 reg1 = CURR_SLOT.opnd[i].X_add_number;
6466 else if (reg2 < 0)
6467 reg2 = CURR_SLOT.opnd[i].X_add_number;
6469 break;
6470 default:
6471 break;
6473 switch (reg_class)
6475 case 0:
6476 break;
6477 default:
6478 as_warn ("Invalid use of `%c%d' as output operand", reg_class, regno);
6479 break;
6480 case 'm':
6481 as_warn ("Invalid use of `r%d' as base update address operand", regno);
6482 break;
6485 if (reg1 == reg2)
6487 if (reg1 >= REG_GR && reg1 <= REG_GR + 127)
6489 reg1 -= REG_GR;
6490 reg_class = 'r';
6492 else if (reg1 >= REG_P && reg1 <= REG_P + 63)
6494 reg1 -= REG_P;
6495 reg_class = 'p';
6497 else if (reg1 >= REG_FR && reg1 <= REG_FR + 127)
6499 reg1 -= REG_FR;
6500 reg_class = 'f';
6502 else
6503 reg_class = 0;
6504 if (reg_class)
6505 as_warn ("Invalid duplicate use of `%c%d'", reg_class, reg1);
6507 else if (((reg1 >= REG_FR && reg1 <= REG_FR + 31
6508 && reg2 >= REG_FR && reg2 <= REG_FR + 31)
6509 || (reg1 >= REG_FR + 32 && reg1 <= REG_FR + 127
6510 && reg2 >= REG_FR + 32 && reg2 <= REG_FR + 127))
6511 && ! ((reg1 ^ reg2) & 1))
6512 as_warn ("Invalid simultaneous use of `f%d' and `f%d'",
6513 reg1 - REG_FR, reg2 - REG_FR);
6514 else if ((reg1 >= REG_FR && reg1 <= REG_FR + 31
6515 && reg2 >= REG_FR + 32 && reg2 <= REG_FR + 127)
6516 || (reg1 >= REG_FR + 32 && reg1 <= REG_FR + 127
6517 && reg2 >= REG_FR && reg2 <= REG_FR + 31))
6518 as_warn ("Dangerous simultaneous use of `f%d' and `f%d'",
6519 reg1 - REG_FR, reg2 - REG_FR);
6520 return idesc;
6523 static void
6524 build_insn (slot, insnp)
6525 struct slot *slot;
6526 bfd_vma *insnp;
6528 const struct ia64_operand *odesc, *o2desc;
6529 struct ia64_opcode *idesc = slot->idesc;
6530 bfd_vma insn;
6531 bfd_signed_vma val;
6532 const char *err;
6533 int i;
6535 insn = idesc->opcode | slot->qp_regno;
6537 for (i = 0; i < NELEMS (idesc->operands) && idesc->operands[i]; ++i)
6539 if (slot->opnd[i].X_op == O_register
6540 || slot->opnd[i].X_op == O_constant
6541 || slot->opnd[i].X_op == O_index)
6542 val = slot->opnd[i].X_add_number;
6543 else if (slot->opnd[i].X_op == O_big)
6545 /* This must be the value 0x10000000000000000. */
6546 assert (idesc->operands[i] == IA64_OPND_IMM8M1U8);
6547 val = 0;
6549 else
6550 val = 0;
6552 switch (idesc->operands[i])
6554 case IA64_OPND_IMMU64:
6555 *insnp++ = (val >> 22) & 0x1ffffffffffLL;
6556 insn |= (((val & 0x7f) << 13) | (((val >> 7) & 0x1ff) << 27)
6557 | (((val >> 16) & 0x1f) << 22) | (((val >> 21) & 0x1) << 21)
6558 | (((val >> 63) & 0x1) << 36));
6559 continue;
6561 case IA64_OPND_IMMU62:
6562 val &= 0x3fffffffffffffffULL;
6563 if (val != slot->opnd[i].X_add_number)
6564 as_warn (_("Value truncated to 62 bits"));
6565 *insnp++ = (val >> 21) & 0x1ffffffffffLL;
6566 insn |= (((val & 0xfffff) << 6) | (((val >> 20) & 0x1) << 36));
6567 continue;
6569 case IA64_OPND_TGT64:
6570 val >>= 4;
6571 *insnp++ = ((val >> 20) & 0x7fffffffffLL) << 2;
6572 insn |= ((((val >> 59) & 0x1) << 36)
6573 | (((val >> 0) & 0xfffff) << 13));
6574 continue;
6576 case IA64_OPND_AR3:
6577 val -= REG_AR;
6578 break;
6580 case IA64_OPND_B1:
6581 case IA64_OPND_B2:
6582 val -= REG_BR;
6583 break;
6585 case IA64_OPND_CR3:
6586 val -= REG_CR;
6587 break;
6589 case IA64_OPND_F1:
6590 case IA64_OPND_F2:
6591 case IA64_OPND_F3:
6592 case IA64_OPND_F4:
6593 val -= REG_FR;
6594 break;
6596 case IA64_OPND_P1:
6597 case IA64_OPND_P2:
6598 val -= REG_P;
6599 break;
6601 case IA64_OPND_R1:
6602 case IA64_OPND_R2:
6603 case IA64_OPND_R3:
6604 case IA64_OPND_R3_2:
6605 case IA64_OPND_CPUID_R3:
6606 case IA64_OPND_DBR_R3:
6607 case IA64_OPND_DTR_R3:
6608 case IA64_OPND_ITR_R3:
6609 case IA64_OPND_IBR_R3:
6610 case IA64_OPND_MR3:
6611 case IA64_OPND_MSR_R3:
6612 case IA64_OPND_PKR_R3:
6613 case IA64_OPND_PMC_R3:
6614 case IA64_OPND_PMD_R3:
6615 case IA64_OPND_RR_R3:
6616 val -= REG_GR;
6617 break;
6619 default:
6620 break;
6623 odesc = elf64_ia64_operands + idesc->operands[i];
6624 err = (*odesc->insert) (odesc, val, &insn);
6625 if (err)
6626 as_bad_where (slot->src_file, slot->src_line,
6627 "Bad operand value: %s", err);
6628 if (idesc->flags & IA64_OPCODE_PSEUDO)
6630 if ((idesc->flags & IA64_OPCODE_F2_EQ_F3)
6631 && odesc == elf64_ia64_operands + IA64_OPND_F3)
6633 o2desc = elf64_ia64_operands + IA64_OPND_F2;
6634 (*o2desc->insert) (o2desc, val, &insn);
6636 if ((idesc->flags & IA64_OPCODE_LEN_EQ_64MCNT)
6637 && (odesc == elf64_ia64_operands + IA64_OPND_CPOS6a
6638 || odesc == elf64_ia64_operands + IA64_OPND_POS6))
6640 o2desc = elf64_ia64_operands + IA64_OPND_LEN6;
6641 (*o2desc->insert) (o2desc, 64 - val, &insn);
6645 *insnp = insn;
6648 static void
6649 emit_one_bundle ()
6651 int manual_bundling_off = 0, manual_bundling = 0;
6652 enum ia64_unit required_unit, insn_unit = 0;
6653 enum ia64_insn_type type[3], insn_type;
6654 unsigned int template, orig_template;
6655 bfd_vma insn[3] = { -1, -1, -1 };
6656 struct ia64_opcode *idesc;
6657 int end_of_insn_group = 0, user_template = -1;
6658 int n, i, j, first, curr, last_slot;
6659 bfd_vma t0 = 0, t1 = 0;
6660 struct label_fix *lfix;
6661 bfd_boolean mark_label;
6662 struct insn_fix *ifix;
6663 char mnemonic[16];
6664 fixS *fix;
6665 char *f;
6666 int addr_mod;
6668 first = (md.curr_slot + NUM_SLOTS - md.num_slots_in_use) % NUM_SLOTS;
6669 know (first >= 0 & first < NUM_SLOTS);
6670 n = MIN (3, md.num_slots_in_use);
6672 /* Determine template: user user_template if specified, best match
6673 otherwise: */
6675 if (md.slot[first].user_template >= 0)
6676 user_template = template = md.slot[first].user_template;
6677 else
6679 /* Auto select appropriate template. */
6680 memset (type, 0, sizeof (type));
6681 curr = first;
6682 for (i = 0; i < n; ++i)
6684 if (md.slot[curr].label_fixups && i != 0)
6685 break;
6686 type[i] = md.slot[curr].idesc->type;
6687 curr = (curr + 1) % NUM_SLOTS;
6689 template = best_template[type[0]][type[1]][type[2]];
6692 /* initialize instructions with appropriate nops: */
6693 for (i = 0; i < 3; ++i)
6694 insn[i] = nop[ia64_templ_desc[template].exec_unit[i]];
6696 f = frag_more (16);
6698 /* Check to see if this bundle is at an offset that is a multiple of 16-bytes
6699 from the start of the frag. */
6700 addr_mod = frag_now_fix () & 15;
6701 if (frag_now->has_code && frag_now->insn_addr != addr_mod)
6702 as_bad (_("instruction address is not a multiple of 16"));
6703 frag_now->insn_addr = addr_mod;
6704 frag_now->has_code = 1;
6706 /* now fill in slots with as many insns as possible: */
6707 curr = first;
6708 idesc = md.slot[curr].idesc;
6709 end_of_insn_group = 0;
6710 last_slot = -1;
6711 for (i = 0; i < 3 && md.num_slots_in_use > 0; ++i)
6713 /* If we have unwind records, we may need to update some now. */
6714 unw_rec_list *ptr = md.slot[curr].unwind_record;
6715 unw_rec_list *end_ptr = NULL;
6717 if (ptr)
6719 /* Find the last prologue/body record in the list for the current
6720 insn, and set the slot number for all records up to that point.
6721 This needs to be done now, because prologue/body records refer to
6722 the current point, not the point after the instruction has been
6723 issued. This matters because there may have been nops emitted
6724 meanwhile. Any non-prologue non-body record followed by a
6725 prologue/body record must also refer to the current point. */
6726 unw_rec_list *last_ptr;
6728 for (j = 1; end_ptr == NULL && j < md.num_slots_in_use; ++j)
6729 end_ptr = md.slot[(curr + j) % NUM_SLOTS].unwind_record;
6730 for (last_ptr = NULL; ptr != end_ptr; ptr = ptr->next)
6731 if (ptr->r.type == prologue || ptr->r.type == prologue_gr
6732 || ptr->r.type == body)
6733 last_ptr = ptr;
6734 if (last_ptr)
6736 /* Make last_ptr point one after the last prologue/body
6737 record. */
6738 last_ptr = last_ptr->next;
6739 for (ptr = md.slot[curr].unwind_record; ptr != last_ptr;
6740 ptr = ptr->next)
6742 ptr->slot_number = (unsigned long) f + i;
6743 ptr->slot_frag = frag_now;
6745 /* Remove the initialized records, so that we won't accidentally
6746 update them again if we insert a nop and continue. */
6747 md.slot[curr].unwind_record = last_ptr;
6751 manual_bundling_off = md.slot[curr].manual_bundling_off;
6752 if (md.slot[curr].manual_bundling_on)
6754 if (curr == first)
6755 manual_bundling = 1;
6756 else
6757 break; /* Need to start a new bundle. */
6760 /* If this instruction specifies a template, then it must be the first
6761 instruction of a bundle. */
6762 if (curr != first && md.slot[curr].user_template >= 0)
6763 break;
6765 if (idesc->flags & IA64_OPCODE_SLOT2)
6767 if (manual_bundling && !manual_bundling_off)
6769 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
6770 "`%s' must be last in bundle", idesc->name);
6771 if (i < 2)
6772 manual_bundling = -1; /* Suppress meaningless post-loop errors. */
6774 i = 2;
6776 if (idesc->flags & IA64_OPCODE_LAST)
6778 int required_slot;
6779 unsigned int required_template;
6781 /* If we need a stop bit after an M slot, our only choice is
6782 template 5 (M;;MI). If we need a stop bit after a B
6783 slot, our only choice is to place it at the end of the
6784 bundle, because the only available templates are MIB,
6785 MBB, BBB, MMB, and MFB. We don't handle anything other
6786 than M and B slots because these are the only kind of
6787 instructions that can have the IA64_OPCODE_LAST bit set. */
6788 required_template = template;
6789 switch (idesc->type)
6791 case IA64_TYPE_M:
6792 required_slot = 0;
6793 required_template = 5;
6794 break;
6796 case IA64_TYPE_B:
6797 required_slot = 2;
6798 break;
6800 default:
6801 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
6802 "Internal error: don't know how to force %s to end"
6803 "of instruction group", idesc->name);
6804 required_slot = i;
6805 break;
6807 if (manual_bundling
6808 && (i > required_slot
6809 || (required_slot == 2 && !manual_bundling_off)
6810 || (user_template >= 0
6811 /* Changing from MMI to M;MI is OK. */
6812 && (template ^ required_template) > 1)))
6814 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
6815 "`%s' must be last in instruction group",
6816 idesc->name);
6817 if (i < 2 && required_slot == 2 && !manual_bundling_off)
6818 manual_bundling = -1; /* Suppress meaningless post-loop errors. */
6820 if (required_slot < i)
6821 /* Can't fit this instruction. */
6822 break;
6824 i = required_slot;
6825 if (required_template != template)
6827 /* If we switch the template, we need to reset the NOPs
6828 after slot i. The slot-types of the instructions ahead
6829 of i never change, so we don't need to worry about
6830 changing NOPs in front of this slot. */
6831 for (j = i; j < 3; ++j)
6832 insn[j] = nop[ia64_templ_desc[required_template].exec_unit[j]];
6834 template = required_template;
6836 if (curr != first && md.slot[curr].label_fixups)
6838 if (manual_bundling)
6840 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
6841 "Label must be first in a bundle");
6842 manual_bundling = -1; /* Suppress meaningless post-loop errors. */
6844 /* This insn must go into the first slot of a bundle. */
6845 break;
6848 if (end_of_insn_group && md.num_slots_in_use >= 1)
6850 /* We need an instruction group boundary in the middle of a
6851 bundle. See if we can switch to an other template with
6852 an appropriate boundary. */
6854 orig_template = template;
6855 if (i == 1 && (user_template == 4
6856 || (user_template < 0
6857 && (ia64_templ_desc[template].exec_unit[0]
6858 == IA64_UNIT_M))))
6860 template = 5;
6861 end_of_insn_group = 0;
6863 else if (i == 2 && (user_template == 0
6864 || (user_template < 0
6865 && (ia64_templ_desc[template].exec_unit[1]
6866 == IA64_UNIT_I)))
6867 /* This test makes sure we don't switch the template if
6868 the next instruction is one that needs to be first in
6869 an instruction group. Since all those instructions are
6870 in the M group, there is no way such an instruction can
6871 fit in this bundle even if we switch the template. The
6872 reason we have to check for this is that otherwise we
6873 may end up generating "MI;;I M.." which has the deadly
6874 effect that the second M instruction is no longer the
6875 first in the group! --davidm 99/12/16 */
6876 && (idesc->flags & IA64_OPCODE_FIRST) == 0)
6878 template = 1;
6879 end_of_insn_group = 0;
6881 else if (i == 1
6882 && user_template == 0
6883 && !(idesc->flags & IA64_OPCODE_FIRST))
6884 /* Use the next slot. */
6885 continue;
6886 else if (curr != first)
6887 /* can't fit this insn */
6888 break;
6890 if (template != orig_template)
6891 /* if we switch the template, we need to reset the NOPs
6892 after slot i. The slot-types of the instructions ahead
6893 of i never change, so we don't need to worry about
6894 changing NOPs in front of this slot. */
6895 for (j = i; j < 3; ++j)
6896 insn[j] = nop[ia64_templ_desc[template].exec_unit[j]];
6898 required_unit = ia64_templ_desc[template].exec_unit[i];
6900 /* resolve dynamic opcodes such as "break", "hint", and "nop": */
6901 if (idesc->type == IA64_TYPE_DYN)
6903 enum ia64_opnd opnd1, opnd2;
6905 if ((strcmp (idesc->name, "nop") == 0)
6906 || (strcmp (idesc->name, "break") == 0))
6907 insn_unit = required_unit;
6908 else if (strcmp (idesc->name, "hint") == 0)
6910 insn_unit = required_unit;
6911 if (required_unit == IA64_UNIT_B)
6913 switch (md.hint_b)
6915 case hint_b_ok:
6916 break;
6917 case hint_b_warning:
6918 as_warn ("hint in B unit may be treated as nop");
6919 break;
6920 case hint_b_error:
6921 /* When manual bundling is off and there is no
6922 user template, we choose a different unit so
6923 that hint won't go into the current slot. We
6924 will fill the current bundle with nops and
6925 try to put hint into the next bundle. */
6926 if (!manual_bundling && user_template < 0)
6927 insn_unit = IA64_UNIT_I;
6928 else
6929 as_bad ("hint in B unit can't be used");
6930 break;
6934 else if (strcmp (idesc->name, "chk.s") == 0
6935 || strcmp (idesc->name, "mov") == 0)
6937 insn_unit = IA64_UNIT_M;
6938 if (required_unit == IA64_UNIT_I
6939 || (required_unit == IA64_UNIT_F && template == 6))
6940 insn_unit = IA64_UNIT_I;
6942 else
6943 as_fatal ("emit_one_bundle: unexpected dynamic op");
6945 sprintf (mnemonic, "%s.%c", idesc->name, "?imbfxx"[insn_unit]);
6946 opnd1 = idesc->operands[0];
6947 opnd2 = idesc->operands[1];
6948 ia64_free_opcode (idesc);
6949 idesc = ia64_find_opcode (mnemonic);
6950 /* moves to/from ARs have collisions */
6951 if (opnd1 == IA64_OPND_AR3 || opnd2 == IA64_OPND_AR3)
6953 while (idesc != NULL
6954 && (idesc->operands[0] != opnd1
6955 || idesc->operands[1] != opnd2))
6956 idesc = get_next_opcode (idesc);
6958 md.slot[curr].idesc = idesc;
6960 else
6962 insn_type = idesc->type;
6963 insn_unit = IA64_UNIT_NIL;
6964 switch (insn_type)
6966 case IA64_TYPE_A:
6967 if (required_unit == IA64_UNIT_I || required_unit == IA64_UNIT_M)
6968 insn_unit = required_unit;
6969 break;
6970 case IA64_TYPE_X: insn_unit = IA64_UNIT_L; break;
6971 case IA64_TYPE_I: insn_unit = IA64_UNIT_I; break;
6972 case IA64_TYPE_M: insn_unit = IA64_UNIT_M; break;
6973 case IA64_TYPE_B: insn_unit = IA64_UNIT_B; break;
6974 case IA64_TYPE_F: insn_unit = IA64_UNIT_F; break;
6975 default: break;
6979 if (insn_unit != required_unit)
6980 continue; /* Try next slot. */
6982 /* Now is a good time to fix up the labels for this insn. */
6983 mark_label = FALSE;
6984 for (lfix = md.slot[curr].label_fixups; lfix; lfix = lfix->next)
6986 S_SET_VALUE (lfix->sym, frag_now_fix () - 16);
6987 symbol_set_frag (lfix->sym, frag_now);
6988 mark_label |= lfix->dw2_mark_labels;
6990 for (lfix = md.slot[curr].tag_fixups; lfix; lfix = lfix->next)
6992 S_SET_VALUE (lfix->sym, frag_now_fix () - 16 + i);
6993 symbol_set_frag (lfix->sym, frag_now);
6996 if (debug_type == DEBUG_DWARF2
6997 || md.slot[curr].loc_directive_seen
6998 || mark_label)
7000 bfd_vma addr = frag_now->fr_address + frag_now_fix () - 16 + i;
7002 md.slot[curr].loc_directive_seen = 0;
7003 if (mark_label)
7004 md.slot[curr].debug_line.flags |= DWARF2_FLAG_BASIC_BLOCK;
7006 dwarf2_gen_line_info (addr, &md.slot[curr].debug_line);
7009 build_insn (md.slot + curr, insn + i);
7011 ptr = md.slot[curr].unwind_record;
7012 if (ptr)
7014 /* Set slot numbers for all remaining unwind records belonging to the
7015 current insn. There can not be any prologue/body unwind records
7016 here. */
7017 for (; ptr != end_ptr; ptr = ptr->next)
7019 ptr->slot_number = (unsigned long) f + i;
7020 ptr->slot_frag = frag_now;
7022 md.slot[curr].unwind_record = NULL;
7025 if (required_unit == IA64_UNIT_L)
7027 know (i == 1);
7028 /* skip one slot for long/X-unit instructions */
7029 ++i;
7031 --md.num_slots_in_use;
7032 last_slot = i;
7034 for (j = 0; j < md.slot[curr].num_fixups; ++j)
7036 ifix = md.slot[curr].fixup + j;
7037 fix = fix_new_exp (frag_now, frag_now_fix () - 16 + i, 8,
7038 &ifix->expr, ifix->is_pcrel, ifix->code);
7039 fix->tc_fix_data.opnd = ifix->opnd;
7040 fix->fx_plt = (fix->fx_r_type == BFD_RELOC_IA64_PLTOFF22);
7041 fix->fx_file = md.slot[curr].src_file;
7042 fix->fx_line = md.slot[curr].src_line;
7045 end_of_insn_group = md.slot[curr].end_of_insn_group;
7047 /* clear slot: */
7048 ia64_free_opcode (md.slot[curr].idesc);
7049 memset (md.slot + curr, 0, sizeof (md.slot[curr]));
7050 md.slot[curr].user_template = -1;
7052 if (manual_bundling_off)
7054 manual_bundling = 0;
7055 break;
7057 curr = (curr + 1) % NUM_SLOTS;
7058 idesc = md.slot[curr].idesc;
7060 if (manual_bundling > 0)
7062 if (md.num_slots_in_use > 0)
7064 if (last_slot >= 2)
7065 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
7066 "`%s' does not fit into bundle", idesc->name);
7067 else if (last_slot < 0)
7069 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
7070 "`%s' does not fit into %s template",
7071 idesc->name, ia64_templ_desc[template].name);
7072 /* Drop first insn so we don't livelock. */
7073 --md.num_slots_in_use;
7074 know (curr == first);
7075 ia64_free_opcode (md.slot[curr].idesc);
7076 memset (md.slot + curr, 0, sizeof (md.slot[curr]));
7077 md.slot[curr].user_template = -1;
7079 else
7081 const char *where;
7083 if (template == 2)
7084 where = "X slot";
7085 else if (last_slot == 0)
7086 where = "slots 2 or 3";
7087 else
7088 where = "slot 3";
7089 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
7090 "`%s' can't go in %s of %s template",
7091 idesc->name, where, ia64_templ_desc[template].name);
7094 else
7095 as_bad_where (md.slot[curr].src_file, md.slot[curr].src_line,
7096 "Missing '}' at end of file");
7098 know (md.num_slots_in_use < NUM_SLOTS);
7100 t0 = end_of_insn_group | (template << 1) | (insn[0] << 5) | (insn[1] << 46);
7101 t1 = ((insn[1] >> 18) & 0x7fffff) | (insn[2] << 23);
7103 number_to_chars_littleendian (f + 0, t0, 8);
7104 number_to_chars_littleendian (f + 8, t1, 8);
7108 md_parse_option (c, arg)
7109 int c;
7110 char *arg;
7113 switch (c)
7115 /* Switches from the Intel assembler. */
7116 case 'm':
7117 if (strcmp (arg, "ilp64") == 0
7118 || strcmp (arg, "lp64") == 0
7119 || strcmp (arg, "p64") == 0)
7121 md.flags |= EF_IA_64_ABI64;
7123 else if (strcmp (arg, "ilp32") == 0)
7125 md.flags &= ~EF_IA_64_ABI64;
7127 else if (strcmp (arg, "le") == 0)
7129 md.flags &= ~EF_IA_64_BE;
7130 default_big_endian = 0;
7132 else if (strcmp (arg, "be") == 0)
7134 md.flags |= EF_IA_64_BE;
7135 default_big_endian = 1;
7137 else if (strncmp (arg, "unwind-check=", 13) == 0)
7139 arg += 13;
7140 if (strcmp (arg, "warning") == 0)
7141 md.unwind_check = unwind_check_warning;
7142 else if (strcmp (arg, "error") == 0)
7143 md.unwind_check = unwind_check_error;
7144 else
7145 return 0;
7147 else if (strncmp (arg, "hint.b=", 7) == 0)
7149 arg += 7;
7150 if (strcmp (arg, "ok") == 0)
7151 md.hint_b = hint_b_ok;
7152 else if (strcmp (arg, "warning") == 0)
7153 md.hint_b = hint_b_warning;
7154 else if (strcmp (arg, "error") == 0)
7155 md.hint_b = hint_b_error;
7156 else
7157 return 0;
7159 else if (strncmp (arg, "tune=", 5) == 0)
7161 arg += 5;
7162 if (strcmp (arg, "itanium1") == 0)
7163 md.tune = itanium1;
7164 else if (strcmp (arg, "itanium2") == 0)
7165 md.tune = itanium2;
7166 else
7167 return 0;
7169 else
7170 return 0;
7171 break;
7173 case 'N':
7174 if (strcmp (arg, "so") == 0)
7176 /* Suppress signon message. */
7178 else if (strcmp (arg, "pi") == 0)
7180 /* Reject privileged instructions. FIXME */
7182 else if (strcmp (arg, "us") == 0)
7184 /* Allow union of signed and unsigned range. FIXME */
7186 else if (strcmp (arg, "close_fcalls") == 0)
7188 /* Do not resolve global function calls. */
7190 else
7191 return 0;
7192 break;
7194 case 'C':
7195 /* temp[="prefix"] Insert temporary labels into the object file
7196 symbol table prefixed by "prefix".
7197 Default prefix is ":temp:".
7199 break;
7201 case 'a':
7202 /* indirect=<tgt> Assume unannotated indirect branches behavior
7203 according to <tgt> --
7204 exit: branch out from the current context (default)
7205 labels: all labels in context may be branch targets
7207 if (strncmp (arg, "indirect=", 9) != 0)
7208 return 0;
7209 break;
7211 case 'x':
7212 /* -X conflicts with an ignored option, use -x instead */
7213 md.detect_dv = 1;
7214 if (!arg || strcmp (arg, "explicit") == 0)
7216 /* set default mode to explicit */
7217 md.default_explicit_mode = 1;
7218 break;
7220 else if (strcmp (arg, "auto") == 0)
7222 md.default_explicit_mode = 0;
7224 else if (strcmp (arg, "none") == 0)
7226 md.detect_dv = 0;
7228 else if (strcmp (arg, "debug") == 0)
7230 md.debug_dv = 1;
7232 else if (strcmp (arg, "debugx") == 0)
7234 md.default_explicit_mode = 1;
7235 md.debug_dv = 1;
7237 else if (strcmp (arg, "debugn") == 0)
7239 md.debug_dv = 1;
7240 md.detect_dv = 0;
7242 else
7244 as_bad (_("Unrecognized option '-x%s'"), arg);
7246 break;
7248 case 'S':
7249 /* nops Print nops statistics. */
7250 break;
7252 /* GNU specific switches for gcc. */
7253 case OPTION_MCONSTANT_GP:
7254 md.flags |= EF_IA_64_CONS_GP;
7255 break;
7257 case OPTION_MAUTO_PIC:
7258 md.flags |= EF_IA_64_NOFUNCDESC_CONS_GP;
7259 break;
7261 default:
7262 return 0;
7265 return 1;
7268 void
7269 md_show_usage (stream)
7270 FILE *stream;
7272 fputs (_("\
7273 IA-64 options:\n\
7274 --mconstant-gp mark output file as using the constant-GP model\n\
7275 (sets ELF header flag EF_IA_64_CONS_GP)\n\
7276 --mauto-pic mark output file as using the constant-GP model\n\
7277 without function descriptors (sets ELF header flag\n\
7278 EF_IA_64_NOFUNCDESC_CONS_GP)\n\
7279 -milp32|-milp64|-mlp64|-mp64 select data model (default -mlp64)\n\
7280 -mle | -mbe select little- or big-endian byte order (default -mle)\n\
7281 -mtune=[itanium1|itanium2]\n\
7282 tune for a specific CPU (default -mtune=itanium2)\n\
7283 -munwind-check=[warning|error]\n\
7284 unwind directive check (default -munwind-check=warning)\n\
7285 -mhint.b=[ok|warning|error]\n\
7286 hint.b check (default -mhint.b=error)\n\
7287 -x | -xexplicit turn on dependency violation checking\n\
7288 -xauto automagically remove dependency violations (default)\n\
7289 -xnone turn off dependency violation checking\n\
7290 -xdebug debug dependency violation checker\n\
7291 -xdebugn debug dependency violation checker but turn off\n\
7292 dependency violation checking\n\
7293 -xdebugx debug dependency violation checker and turn on\n\
7294 dependency violation checking\n"),
7295 stream);
7298 void
7299 ia64_after_parse_args ()
7301 if (debug_type == DEBUG_STABS)
7302 as_fatal (_("--gstabs is not supported for ia64"));
7305 /* Return true if TYPE fits in TEMPL at SLOT. */
7307 static int
7308 match (int templ, int type, int slot)
7310 enum ia64_unit unit;
7311 int result;
7313 unit = ia64_templ_desc[templ].exec_unit[slot];
7314 switch (type)
7316 case IA64_TYPE_DYN: result = 1; break; /* for nop and break */
7317 case IA64_TYPE_A:
7318 result = (unit == IA64_UNIT_I || unit == IA64_UNIT_M);
7319 break;
7320 case IA64_TYPE_X: result = (unit == IA64_UNIT_L); break;
7321 case IA64_TYPE_I: result = (unit == IA64_UNIT_I); break;
7322 case IA64_TYPE_M: result = (unit == IA64_UNIT_M); break;
7323 case IA64_TYPE_B: result = (unit == IA64_UNIT_B); break;
7324 case IA64_TYPE_F: result = (unit == IA64_UNIT_F); break;
7325 default: result = 0; break;
7327 return result;
7330 /* For Itanium 1, add a bit of extra goodness if a nop of type F or B would fit
7331 in TEMPL at SLOT. For Itanium 2, add a bit of extra goodness if a nop of
7332 type M or I would fit in TEMPL at SLOT. */
7334 static inline int
7335 extra_goodness (int templ, int slot)
7337 switch (md.tune)
7339 case itanium1:
7340 if (slot == 1 && match (templ, IA64_TYPE_F, slot))
7341 return 2;
7342 else if (slot == 2 && match (templ, IA64_TYPE_B, slot))
7343 return 1;
7344 else
7345 return 0;
7346 break;
7347 case itanium2:
7348 if (match (templ, IA64_TYPE_M, slot)
7349 || match (templ, IA64_TYPE_I, slot))
7350 /* Favor M- and I-unit NOPs. We definitely want to avoid
7351 F-unit and B-unit may cause split-issue or less-than-optimal
7352 branch-prediction. */
7353 return 2;
7354 else
7355 return 0;
7356 break;
7357 default:
7358 abort ();
7359 return 0;
7363 /* This function is called once, at assembler startup time. It sets
7364 up all the tables, etc. that the MD part of the assembler will need
7365 that can be determined before arguments are parsed. */
7366 void
7367 md_begin ()
7369 int i, j, k, t, total, ar_base, cr_base, goodness, best, regnum, ok;
7370 const char *err;
7371 char name[8];
7373 md.auto_align = 1;
7374 md.explicit_mode = md.default_explicit_mode;
7376 bfd_set_section_alignment (stdoutput, text_section, 4);
7378 /* Make sure function pointers get initialized. */
7379 target_big_endian = -1;
7380 dot_byteorder (default_big_endian);
7382 alias_hash = hash_new ();
7383 alias_name_hash = hash_new ();
7384 secalias_hash = hash_new ();
7385 secalias_name_hash = hash_new ();
7387 pseudo_func[FUNC_DTP_MODULE].u.sym =
7388 symbol_new (".<dtpmod>", undefined_section, FUNC_DTP_MODULE,
7389 &zero_address_frag);
7391 pseudo_func[FUNC_DTP_RELATIVE].u.sym =
7392 symbol_new (".<dtprel>", undefined_section, FUNC_DTP_RELATIVE,
7393 &zero_address_frag);
7395 pseudo_func[FUNC_FPTR_RELATIVE].u.sym =
7396 symbol_new (".<fptr>", undefined_section, FUNC_FPTR_RELATIVE,
7397 &zero_address_frag);
7399 pseudo_func[FUNC_GP_RELATIVE].u.sym =
7400 symbol_new (".<gprel>", undefined_section, FUNC_GP_RELATIVE,
7401 &zero_address_frag);
7403 pseudo_func[FUNC_LT_RELATIVE].u.sym =
7404 symbol_new (".<ltoff>", undefined_section, FUNC_LT_RELATIVE,
7405 &zero_address_frag);
7407 pseudo_func[FUNC_LT_RELATIVE_X].u.sym =
7408 symbol_new (".<ltoffx>", undefined_section, FUNC_LT_RELATIVE_X,
7409 &zero_address_frag);
7411 pseudo_func[FUNC_PC_RELATIVE].u.sym =
7412 symbol_new (".<pcrel>", undefined_section, FUNC_PC_RELATIVE,
7413 &zero_address_frag);
7415 pseudo_func[FUNC_PLT_RELATIVE].u.sym =
7416 symbol_new (".<pltoff>", undefined_section, FUNC_PLT_RELATIVE,
7417 &zero_address_frag);
7419 pseudo_func[FUNC_SEC_RELATIVE].u.sym =
7420 symbol_new (".<secrel>", undefined_section, FUNC_SEC_RELATIVE,
7421 &zero_address_frag);
7423 pseudo_func[FUNC_SEG_RELATIVE].u.sym =
7424 symbol_new (".<segrel>", undefined_section, FUNC_SEG_RELATIVE,
7425 &zero_address_frag);
7427 pseudo_func[FUNC_TP_RELATIVE].u.sym =
7428 symbol_new (".<tprel>", undefined_section, FUNC_TP_RELATIVE,
7429 &zero_address_frag);
7431 pseudo_func[FUNC_LTV_RELATIVE].u.sym =
7432 symbol_new (".<ltv>", undefined_section, FUNC_LTV_RELATIVE,
7433 &zero_address_frag);
7435 pseudo_func[FUNC_LT_FPTR_RELATIVE].u.sym =
7436 symbol_new (".<ltoff.fptr>", undefined_section, FUNC_LT_FPTR_RELATIVE,
7437 &zero_address_frag);
7439 pseudo_func[FUNC_LT_DTP_MODULE].u.sym =
7440 symbol_new (".<ltoff.dtpmod>", undefined_section, FUNC_LT_DTP_MODULE,
7441 &zero_address_frag);
7443 pseudo_func[FUNC_LT_DTP_RELATIVE].u.sym =
7444 symbol_new (".<ltoff.dptrel>", undefined_section, FUNC_LT_DTP_RELATIVE,
7445 &zero_address_frag);
7447 pseudo_func[FUNC_LT_TP_RELATIVE].u.sym =
7448 symbol_new (".<ltoff.tprel>", undefined_section, FUNC_LT_TP_RELATIVE,
7449 &zero_address_frag);
7451 pseudo_func[FUNC_IPLT_RELOC].u.sym =
7452 symbol_new (".<iplt>", undefined_section, FUNC_IPLT_RELOC,
7453 &zero_address_frag);
7455 if (md.tune != itanium1)
7457 /* Convert MFI NOPs bundles into MMI NOPs bundles. */
7458 le_nop[0] = 0x8;
7459 le_nop_stop[0] = 0x9;
7462 /* Compute the table of best templates. We compute goodness as a
7463 base 4 value, in which each match counts for 3. Match-failures
7464 result in NOPs and we use extra_goodness() to pick the execution
7465 units that are best suited for issuing the NOP. */
7466 for (i = 0; i < IA64_NUM_TYPES; ++i)
7467 for (j = 0; j < IA64_NUM_TYPES; ++j)
7468 for (k = 0; k < IA64_NUM_TYPES; ++k)
7470 best = 0;
7471 for (t = 0; t < NELEMS (ia64_templ_desc); ++t)
7473 goodness = 0;
7474 if (match (t, i, 0))
7476 if (match (t, j, 1))
7478 if ((t == 2 && j == IA64_TYPE_X) || match (t, k, 2))
7479 goodness = 3 + 3 + 3;
7480 else
7481 goodness = 3 + 3 + extra_goodness (t, 2);
7483 else if (match (t, j, 2))
7484 goodness = 3 + 3 + extra_goodness (t, 1);
7485 else
7487 goodness = 3;
7488 goodness += extra_goodness (t, 1);
7489 goodness += extra_goodness (t, 2);
7492 else if (match (t, i, 1))
7494 if ((t == 2 && i == IA64_TYPE_X) || match (t, j, 2))
7495 goodness = 3 + 3;
7496 else
7497 goodness = 3 + extra_goodness (t, 2);
7499 else if (match (t, i, 2))
7500 goodness = 3 + extra_goodness (t, 1);
7502 if (goodness > best)
7504 best = goodness;
7505 best_template[i][j][k] = t;
7510 #ifdef DEBUG_TEMPLATES
7511 /* For debugging changes to the best_template calculations. We don't care
7512 about combinations with invalid instructions, so start the loops at 1. */
7513 for (i = 0; i < IA64_NUM_TYPES; ++i)
7514 for (j = 0; j < IA64_NUM_TYPES; ++j)
7515 for (k = 0; k < IA64_NUM_TYPES; ++k)
7517 char type_letter[IA64_NUM_TYPES] = { 'n', 'a', 'i', 'm', 'b', 'f',
7518 'x', 'd' };
7519 fprintf (stderr, "%c%c%c %s\n", type_letter[i], type_letter[j],
7520 type_letter[k],
7521 ia64_templ_desc[best_template[i][j][k]].name);
7523 #endif
7525 for (i = 0; i < NUM_SLOTS; ++i)
7526 md.slot[i].user_template = -1;
7528 md.pseudo_hash = hash_new ();
7529 for (i = 0; i < NELEMS (pseudo_opcode); ++i)
7531 err = hash_insert (md.pseudo_hash, pseudo_opcode[i].name,
7532 (void *) (pseudo_opcode + i));
7533 if (err)
7534 as_fatal ("ia64.md_begin: can't hash `%s': %s",
7535 pseudo_opcode[i].name, err);
7538 md.reg_hash = hash_new ();
7539 md.dynreg_hash = hash_new ();
7540 md.const_hash = hash_new ();
7541 md.entry_hash = hash_new ();
7543 /* general registers: */
7545 total = 128;
7546 for (i = 0; i < total; ++i)
7548 sprintf (name, "r%d", i - REG_GR);
7549 md.regsym[i] = declare_register (name, i);
7552 /* floating point registers: */
7553 total += 128;
7554 for (; i < total; ++i)
7556 sprintf (name, "f%d", i - REG_FR);
7557 md.regsym[i] = declare_register (name, i);
7560 /* application registers: */
7561 total += 128;
7562 ar_base = i;
7563 for (; i < total; ++i)
7565 sprintf (name, "ar%d", i - REG_AR);
7566 md.regsym[i] = declare_register (name, i);
7569 /* control registers: */
7570 total += 128;
7571 cr_base = i;
7572 for (; i < total; ++i)
7574 sprintf (name, "cr%d", i - REG_CR);
7575 md.regsym[i] = declare_register (name, i);
7578 /* predicate registers: */
7579 total += 64;
7580 for (; i < total; ++i)
7582 sprintf (name, "p%d", i - REG_P);
7583 md.regsym[i] = declare_register (name, i);
7586 /* branch registers: */
7587 total += 8;
7588 for (; i < total; ++i)
7590 sprintf (name, "b%d", i - REG_BR);
7591 md.regsym[i] = declare_register (name, i);
7594 md.regsym[REG_IP] = declare_register ("ip", REG_IP);
7595 md.regsym[REG_CFM] = declare_register ("cfm", REG_CFM);
7596 md.regsym[REG_PR] = declare_register ("pr", REG_PR);
7597 md.regsym[REG_PR_ROT] = declare_register ("pr.rot", REG_PR_ROT);
7598 md.regsym[REG_PSR] = declare_register ("psr", REG_PSR);
7599 md.regsym[REG_PSR_L] = declare_register ("psr.l", REG_PSR_L);
7600 md.regsym[REG_PSR_UM] = declare_register ("psr.um", REG_PSR_UM);
7602 for (i = 0; i < NELEMS (indirect_reg); ++i)
7604 regnum = indirect_reg[i].regnum;
7605 md.regsym[regnum] = declare_register (indirect_reg[i].name, regnum);
7608 /* define synonyms for application registers: */
7609 for (i = REG_AR; i < REG_AR + NELEMS (ar); ++i)
7610 md.regsym[i] = declare_register (ar[i - REG_AR].name,
7611 REG_AR + ar[i - REG_AR].regnum);
7613 /* define synonyms for control registers: */
7614 for (i = REG_CR; i < REG_CR + NELEMS (cr); ++i)
7615 md.regsym[i] = declare_register (cr[i - REG_CR].name,
7616 REG_CR + cr[i - REG_CR].regnum);
7618 declare_register ("gp", REG_GR + 1);
7619 declare_register ("sp", REG_GR + 12);
7620 declare_register ("rp", REG_BR + 0);
7622 /* pseudo-registers used to specify unwind info: */
7623 declare_register ("psp", REG_PSP);
7625 declare_register_set ("ret", 4, REG_GR + 8);
7626 declare_register_set ("farg", 8, REG_FR + 8);
7627 declare_register_set ("fret", 8, REG_FR + 8);
7629 for (i = 0; i < NELEMS (const_bits); ++i)
7631 err = hash_insert (md.const_hash, const_bits[i].name,
7632 (PTR) (const_bits + i));
7633 if (err)
7634 as_fatal ("Inserting \"%s\" into constant hash table failed: %s",
7635 name, err);
7638 /* Set the architecture and machine depending on defaults and command line
7639 options. */
7640 if (md.flags & EF_IA_64_ABI64)
7641 ok = bfd_set_arch_mach (stdoutput, bfd_arch_ia64, bfd_mach_ia64_elf64);
7642 else
7643 ok = bfd_set_arch_mach (stdoutput, bfd_arch_ia64, bfd_mach_ia64_elf32);
7645 if (! ok)
7646 as_warn (_("Could not set architecture and machine"));
7648 /* Set the pointer size and pointer shift size depending on md.flags */
7650 if (md.flags & EF_IA_64_ABI64)
7652 md.pointer_size = 8; /* pointers are 8 bytes */
7653 md.pointer_size_shift = 3; /* alignment is 8 bytes = 2^2 */
7655 else
7657 md.pointer_size = 4; /* pointers are 4 bytes */
7658 md.pointer_size_shift = 2; /* alignment is 4 bytes = 2^2 */
7661 md.mem_offset.hint = 0;
7662 md.path = 0;
7663 md.maxpaths = 0;
7664 md.entry_labels = NULL;
7667 /* Set the default options in md. Cannot do this in md_begin because
7668 that is called after md_parse_option which is where we set the
7669 options in md based on command line options. */
7671 void
7672 ia64_init (argc, argv)
7673 int argc ATTRIBUTE_UNUSED;
7674 char **argv ATTRIBUTE_UNUSED;
7676 md.flags = MD_FLAGS_DEFAULT;
7677 md.detect_dv = 1;
7678 /* FIXME: We should change it to unwind_check_error someday. */
7679 md.unwind_check = unwind_check_warning;
7680 md.hint_b = hint_b_error;
7681 md.tune = itanium2;
7684 /* Return a string for the target object file format. */
7686 const char *
7687 ia64_target_format ()
7689 if (OUTPUT_FLAVOR == bfd_target_elf_flavour)
7691 if (md.flags & EF_IA_64_BE)
7693 if (md.flags & EF_IA_64_ABI64)
7694 #if defined(TE_AIX50)
7695 return "elf64-ia64-aix-big";
7696 #elif defined(TE_HPUX)
7697 return "elf64-ia64-hpux-big";
7698 #else
7699 return "elf64-ia64-big";
7700 #endif
7701 else
7702 #if defined(TE_AIX50)
7703 return "elf32-ia64-aix-big";
7704 #elif defined(TE_HPUX)
7705 return "elf32-ia64-hpux-big";
7706 #else
7707 return "elf32-ia64-big";
7708 #endif
7710 else
7712 if (md.flags & EF_IA_64_ABI64)
7713 #ifdef TE_AIX50
7714 return "elf64-ia64-aix-little";
7715 #else
7716 return "elf64-ia64-little";
7717 #endif
7718 else
7719 #ifdef TE_AIX50
7720 return "elf32-ia64-aix-little";
7721 #else
7722 return "elf32-ia64-little";
7723 #endif
7726 else
7727 return "unknown-format";
7730 void
7731 ia64_end_of_source ()
7733 /* terminate insn group upon reaching end of file: */
7734 insn_group_break (1, 0, 0);
7736 /* emits slots we haven't written yet: */
7737 ia64_flush_insns ();
7739 bfd_set_private_flags (stdoutput, md.flags);
7741 md.mem_offset.hint = 0;
7744 void
7745 ia64_start_line ()
7747 static int first;
7749 if (!first) {
7750 /* Make sure we don't reference input_line_pointer[-1] when that's
7751 not valid. */
7752 first = 1;
7753 return;
7756 if (md.qp.X_op == O_register)
7757 as_bad ("qualifying predicate not followed by instruction");
7758 md.qp.X_op = O_absent;
7760 if (ignore_input ())
7761 return;
7763 if (input_line_pointer[0] == ';' && input_line_pointer[-1] == ';')
7765 if (md.detect_dv && !md.explicit_mode)
7767 static int warned;
7769 if (!warned)
7771 warned = 1;
7772 as_warn (_("Explicit stops are ignored in auto mode"));
7775 else
7776 insn_group_break (1, 0, 0);
7778 else if (input_line_pointer[-1] == '{')
7780 if (md.manual_bundling)
7781 as_warn ("Found '{' when manual bundling is already turned on");
7782 else
7783 CURR_SLOT.manual_bundling_on = 1;
7784 md.manual_bundling = 1;
7786 /* Bundling is only acceptable in explicit mode
7787 or when in default automatic mode. */
7788 if (md.detect_dv && !md.explicit_mode)
7790 if (!md.mode_explicitly_set
7791 && !md.default_explicit_mode)
7792 dot_dv_mode ('E');
7793 else
7794 as_warn (_("Found '{' after explicit switch to automatic mode"));
7797 else if (input_line_pointer[-1] == '}')
7799 if (!md.manual_bundling)
7800 as_warn ("Found '}' when manual bundling is off");
7801 else
7802 PREV_SLOT.manual_bundling_off = 1;
7803 md.manual_bundling = 0;
7805 /* switch back to automatic mode, if applicable */
7806 if (md.detect_dv
7807 && md.explicit_mode
7808 && !md.mode_explicitly_set
7809 && !md.default_explicit_mode)
7810 dot_dv_mode ('A');
7814 /* This is a hook for ia64_frob_label, so that it can distinguish tags from
7815 labels. */
7816 static int defining_tag = 0;
7819 ia64_unrecognized_line (ch)
7820 int ch;
7822 switch (ch)
7824 case '(':
7825 expression_and_evaluate (&md.qp);
7826 if (*input_line_pointer++ != ')')
7828 as_bad ("Expected ')'");
7829 return 0;
7831 if (md.qp.X_op != O_register)
7833 as_bad ("Qualifying predicate expected");
7834 return 0;
7836 if (md.qp.X_add_number < REG_P || md.qp.X_add_number >= REG_P + 64)
7838 as_bad ("Predicate register expected");
7839 return 0;
7841 return 1;
7843 case '[':
7845 char *s;
7846 char c;
7847 symbolS *tag;
7848 int temp;
7850 if (md.qp.X_op == O_register)
7852 as_bad ("Tag must come before qualifying predicate.");
7853 return 0;
7856 /* This implements just enough of read_a_source_file in read.c to
7857 recognize labels. */
7858 if (is_name_beginner (*input_line_pointer))
7860 s = input_line_pointer;
7861 c = get_symbol_end ();
7863 else if (LOCAL_LABELS_FB
7864 && ISDIGIT (*input_line_pointer))
7866 temp = 0;
7867 while (ISDIGIT (*input_line_pointer))
7868 temp = (temp * 10) + *input_line_pointer++ - '0';
7869 fb_label_instance_inc (temp);
7870 s = fb_label_name (temp, 0);
7871 c = *input_line_pointer;
7873 else
7875 s = NULL;
7876 c = '\0';
7878 if (c != ':')
7880 /* Put ':' back for error messages' sake. */
7881 *input_line_pointer++ = ':';
7882 as_bad ("Expected ':'");
7883 return 0;
7886 defining_tag = 1;
7887 tag = colon (s);
7888 defining_tag = 0;
7889 /* Put ':' back for error messages' sake. */
7890 *input_line_pointer++ = ':';
7891 if (*input_line_pointer++ != ']')
7893 as_bad ("Expected ']'");
7894 return 0;
7896 if (! tag)
7898 as_bad ("Tag name expected");
7899 return 0;
7901 return 1;
7904 default:
7905 break;
7908 /* Not a valid line. */
7909 return 0;
7912 void
7913 ia64_frob_label (sym)
7914 struct symbol *sym;
7916 struct label_fix *fix;
7918 /* Tags need special handling since they are not bundle breaks like
7919 labels. */
7920 if (defining_tag)
7922 fix = obstack_alloc (&notes, sizeof (*fix));
7923 fix->sym = sym;
7924 fix->next = CURR_SLOT.tag_fixups;
7925 fix->dw2_mark_labels = FALSE;
7926 CURR_SLOT.tag_fixups = fix;
7928 return;
7931 if (bfd_get_section_flags (stdoutput, now_seg) & SEC_CODE)
7933 md.last_text_seg = now_seg;
7934 fix = obstack_alloc (&notes, sizeof (*fix));
7935 fix->sym = sym;
7936 fix->next = CURR_SLOT.label_fixups;
7937 fix->dw2_mark_labels = dwarf2_loc_mark_labels;
7938 CURR_SLOT.label_fixups = fix;
7940 /* Keep track of how many code entry points we've seen. */
7941 if (md.path == md.maxpaths)
7943 md.maxpaths += 20;
7944 md.entry_labels = (const char **)
7945 xrealloc ((void *) md.entry_labels,
7946 md.maxpaths * sizeof (char *));
7948 md.entry_labels[md.path++] = S_GET_NAME (sym);
7952 #ifdef TE_HPUX
7953 /* The HP-UX linker will give unresolved symbol errors for symbols
7954 that are declared but unused. This routine removes declared,
7955 unused symbols from an object. */
7957 ia64_frob_symbol (sym)
7958 struct symbol *sym;
7960 if ((S_GET_SEGMENT (sym) == &bfd_und_section && ! symbol_used_p (sym) &&
7961 ELF_ST_VISIBILITY (S_GET_OTHER (sym)) == STV_DEFAULT)
7962 || (S_GET_SEGMENT (sym) == &bfd_abs_section
7963 && ! S_IS_EXTERNAL (sym)))
7964 return 1;
7965 return 0;
7967 #endif
7969 void
7970 ia64_flush_pending_output ()
7972 if (!md.keep_pending_output
7973 && bfd_get_section_flags (stdoutput, now_seg) & SEC_CODE)
7975 /* ??? This causes many unnecessary stop bits to be emitted.
7976 Unfortunately, it isn't clear if it is safe to remove this. */
7977 insn_group_break (1, 0, 0);
7978 ia64_flush_insns ();
7982 /* Do ia64-specific expression optimization. All that's done here is
7983 to transform index expressions that are either due to the indexing
7984 of rotating registers or due to the indexing of indirect register
7985 sets. */
7987 ia64_optimize_expr (l, op, r)
7988 expressionS *l;
7989 operatorT op;
7990 expressionS *r;
7992 unsigned num_regs;
7994 if (op == O_index)
7996 if (l->X_op == O_register && r->X_op == O_constant)
7998 num_regs = (l->X_add_number >> 16);
7999 if ((unsigned) r->X_add_number >= num_regs)
8001 if (!num_regs)
8002 as_bad ("No current frame");
8003 else
8004 as_bad ("Index out of range 0..%u", num_regs - 1);
8005 r->X_add_number = 0;
8007 l->X_add_number = (l->X_add_number & 0xffff) + r->X_add_number;
8008 return 1;
8010 else if (l->X_op == O_register && r->X_op == O_register)
8012 if (l->X_add_number < IND_CPUID || l->X_add_number > IND_RR
8013 || l->X_add_number == IND_MEM)
8015 as_bad ("Indirect register set name expected");
8016 l->X_add_number = IND_CPUID;
8018 l->X_op = O_index;
8019 l->X_op_symbol = md.regsym[l->X_add_number];
8020 l->X_add_number = r->X_add_number;
8021 return 1;
8024 return 0;
8028 ia64_parse_name (name, e, nextcharP)
8029 char *name;
8030 expressionS *e;
8031 char *nextcharP;
8033 struct const_desc *cdesc;
8034 struct dynreg *dr = 0;
8035 unsigned int idx;
8036 struct symbol *sym;
8037 char *end;
8039 if (*name == '@')
8041 enum pseudo_type pseudo_type = PSEUDO_FUNC_NONE;
8043 /* Find what relocation pseudo-function we're dealing with. */
8044 for (idx = 0; idx < NELEMS (pseudo_func); ++idx)
8045 if (pseudo_func[idx].name
8046 && pseudo_func[idx].name[0] == name[1]
8047 && strcmp (pseudo_func[idx].name + 1, name + 2) == 0)
8049 pseudo_type = pseudo_func[idx].type;
8050 break;
8052 switch (pseudo_type)
8054 case PSEUDO_FUNC_RELOC:
8055 end = input_line_pointer;
8056 if (*nextcharP != '(')
8058 as_bad ("Expected '('");
8059 break;
8061 /* Skip '('. */
8062 ++input_line_pointer;
8063 expression (e);
8064 if (*input_line_pointer != ')')
8066 as_bad ("Missing ')'");
8067 goto done;
8069 /* Skip ')'. */
8070 ++input_line_pointer;
8071 if (e->X_op != O_symbol)
8073 if (e->X_op != O_pseudo_fixup)
8075 as_bad ("Not a symbolic expression");
8076 goto done;
8078 if (idx != FUNC_LT_RELATIVE)
8080 as_bad ("Illegal combination of relocation functions");
8081 goto done;
8083 switch (S_GET_VALUE (e->X_op_symbol))
8085 case FUNC_FPTR_RELATIVE:
8086 idx = FUNC_LT_FPTR_RELATIVE; break;
8087 case FUNC_DTP_MODULE:
8088 idx = FUNC_LT_DTP_MODULE; break;
8089 case FUNC_DTP_RELATIVE:
8090 idx = FUNC_LT_DTP_RELATIVE; break;
8091 case FUNC_TP_RELATIVE:
8092 idx = FUNC_LT_TP_RELATIVE; break;
8093 default:
8094 as_bad ("Illegal combination of relocation functions");
8095 goto done;
8098 /* Make sure gas doesn't get rid of local symbols that are used
8099 in relocs. */
8100 e->X_op = O_pseudo_fixup;
8101 e->X_op_symbol = pseudo_func[idx].u.sym;
8102 done:
8103 *nextcharP = *input_line_pointer;
8104 break;
8106 case PSEUDO_FUNC_CONST:
8107 e->X_op = O_constant;
8108 e->X_add_number = pseudo_func[idx].u.ival;
8109 break;
8111 case PSEUDO_FUNC_REG:
8112 e->X_op = O_register;
8113 e->X_add_number = pseudo_func[idx].u.ival;
8114 break;
8116 default:
8117 return 0;
8119 return 1;
8122 /* first see if NAME is a known register name: */
8123 sym = hash_find (md.reg_hash, name);
8124 if (sym)
8126 e->X_op = O_register;
8127 e->X_add_number = S_GET_VALUE (sym);
8128 return 1;
8131 cdesc = hash_find (md.const_hash, name);
8132 if (cdesc)
8134 e->X_op = O_constant;
8135 e->X_add_number = cdesc->value;
8136 return 1;
8139 /* check for inN, locN, or outN: */
8140 idx = 0;
8141 switch (name[0])
8143 case 'i':
8144 if (name[1] == 'n' && ISDIGIT (name[2]))
8146 dr = &md.in;
8147 idx = 2;
8149 break;
8151 case 'l':
8152 if (name[1] == 'o' && name[2] == 'c' && ISDIGIT (name[3]))
8154 dr = &md.loc;
8155 idx = 3;
8157 break;
8159 case 'o':
8160 if (name[1] == 'u' && name[2] == 't' && ISDIGIT (name[3]))
8162 dr = &md.out;
8163 idx = 3;
8165 break;
8167 default:
8168 break;
8171 /* Ignore register numbers with leading zeroes, except zero itself. */
8172 if (dr && (name[idx] != '0' || name[idx + 1] == '\0'))
8174 unsigned long regnum;
8176 /* The name is inN, locN, or outN; parse the register number. */
8177 regnum = strtoul (name + idx, &end, 10);
8178 if (end > name + idx && *end == '\0' && regnum < 96)
8180 if (regnum >= dr->num_regs)
8182 if (!dr->num_regs)
8183 as_bad ("No current frame");
8184 else
8185 as_bad ("Register number out of range 0..%u",
8186 dr->num_regs - 1);
8187 regnum = 0;
8189 e->X_op = O_register;
8190 e->X_add_number = dr->base + regnum;
8191 return 1;
8195 end = alloca (strlen (name) + 1);
8196 strcpy (end, name);
8197 name = ia64_canonicalize_symbol_name (end);
8198 if ((dr = hash_find (md.dynreg_hash, name)))
8200 /* We've got ourselves the name of a rotating register set.
8201 Store the base register number in the low 16 bits of
8202 X_add_number and the size of the register set in the top 16
8203 bits. */
8204 e->X_op = O_register;
8205 e->X_add_number = dr->base | (dr->num_regs << 16);
8206 return 1;
8208 return 0;
8211 /* Remove the '#' suffix that indicates a symbol as opposed to a register. */
8213 char *
8214 ia64_canonicalize_symbol_name (name)
8215 char *name;
8217 size_t len = strlen (name), full = len;
8219 while (len > 0 && name[len - 1] == '#')
8220 --len;
8221 if (len <= 0)
8223 if (full > 0)
8224 as_bad ("Standalone `#' is illegal");
8226 else if (len < full - 1)
8227 as_warn ("Redundant `#' suffix operators");
8228 name[len] = '\0';
8229 return name;
8232 /* Return true if idesc is a conditional branch instruction. This excludes
8233 the modulo scheduled branches, and br.ia. Mod-sched branches are excluded
8234 because they always read/write resources regardless of the value of the
8235 qualifying predicate. br.ia must always use p0, and hence is always
8236 taken. Thus this function returns true for branches which can fall
8237 through, and which use no resources if they do fall through. */
8239 static int
8240 is_conditional_branch (idesc)
8241 struct ia64_opcode *idesc;
8243 /* br is a conditional branch. Everything that starts with br. except
8244 br.ia, br.c{loop,top,exit}, and br.w{top,exit} is a conditional branch.
8245 Everything that starts with brl is a conditional branch. */
8246 return (idesc->name[0] == 'b' && idesc->name[1] == 'r'
8247 && (idesc->name[2] == '\0'
8248 || (idesc->name[2] == '.' && idesc->name[3] != 'i'
8249 && idesc->name[3] != 'c' && idesc->name[3] != 'w')
8250 || idesc->name[2] == 'l'
8251 /* br.cond, br.call, br.clr */
8252 || (idesc->name[2] == '.' && idesc->name[3] == 'c'
8253 && (idesc->name[4] == 'a' || idesc->name[4] == 'o'
8254 || (idesc->name[4] == 'l' && idesc->name[5] == 'r')))));
8257 /* Return whether the given opcode is a taken branch. If there's any doubt,
8258 returns zero. */
8260 static int
8261 is_taken_branch (idesc)
8262 struct ia64_opcode *idesc;
8264 return ((is_conditional_branch (idesc) && CURR_SLOT.qp_regno == 0)
8265 || strncmp (idesc->name, "br.ia", 5) == 0);
8268 /* Return whether the given opcode is an interruption or rfi. If there's any
8269 doubt, returns zero. */
8271 static int
8272 is_interruption_or_rfi (idesc)
8273 struct ia64_opcode *idesc;
8275 if (strcmp (idesc->name, "rfi") == 0)
8276 return 1;
8277 return 0;
8280 /* Returns the index of the given dependency in the opcode's list of chks, or
8281 -1 if there is no dependency. */
8283 static int
8284 depends_on (depind, idesc)
8285 int depind;
8286 struct ia64_opcode *idesc;
8288 int i;
8289 const struct ia64_opcode_dependency *dep = idesc->dependencies;
8290 for (i = 0; i < dep->nchks; i++)
8292 if (depind == DEP (dep->chks[i]))
8293 return i;
8295 return -1;
8298 /* Determine a set of specific resources used for a particular resource
8299 class. Returns the number of specific resources identified For those
8300 cases which are not determinable statically, the resource returned is
8301 marked nonspecific.
8303 Meanings of value in 'NOTE':
8304 1) only read/write when the register number is explicitly encoded in the
8305 insn.
8306 2) only read CFM when accessing a rotating GR, FR, or PR. mov pr only
8307 accesses CFM when qualifying predicate is in the rotating region.
8308 3) general register value is used to specify an indirect register; not
8309 determinable statically.
8310 4) only read the given resource when bits 7:0 of the indirect index
8311 register value does not match the register number of the resource; not
8312 determinable statically.
8313 5) all rules are implementation specific.
8314 6) only when both the index specified by the reader and the index specified
8315 by the writer have the same value in bits 63:61; not determinable
8316 statically.
8317 7) only access the specified resource when the corresponding mask bit is
8319 8) PSR.dfh is only read when these insns reference FR32-127. PSR.dfl is
8320 only read when these insns reference FR2-31
8321 9) PSR.mfl is only written when these insns write FR2-31. PSR.mfh is only
8322 written when these insns write FR32-127
8323 10) The PSR.bn bit is only accessed when one of GR16-31 is specified in the
8324 instruction
8325 11) The target predicates are written independently of PR[qp], but source
8326 registers are only read if PR[qp] is true. Since the state of PR[qp]
8327 cannot statically be determined, all source registers are marked used.
8328 12) This insn only reads the specified predicate register when that
8329 register is the PR[qp].
8330 13) This reference to ld-c only applies to teh GR whose value is loaded
8331 with data returned from memory, not the post-incremented address register.
8332 14) The RSE resource includes the implementation-specific RSE internal
8333 state resources. At least one (and possibly more) of these resources are
8334 read by each instruction listed in IC:rse-readers. At least one (and
8335 possibly more) of these resources are written by each insn listed in
8336 IC:rse-writers.
8337 15+16) Represents reserved instructions, which the assembler does not
8338 generate.
8340 Memory resources (i.e. locations in memory) are *not* marked or tracked by
8341 this code; there are no dependency violations based on memory access.
8344 #define MAX_SPECS 256
8345 #define DV_CHK 1
8346 #define DV_REG 0
8348 static int
8349 specify_resource (dep, idesc, type, specs, note, path)
8350 const struct ia64_dependency *dep;
8351 struct ia64_opcode *idesc;
8352 int type; /* is this a DV chk or a DV reg? */
8353 struct rsrc specs[MAX_SPECS]; /* returned specific resources */
8354 int note; /* resource note for this insn's usage */
8355 int path; /* which execution path to examine */
8357 int count = 0;
8358 int i;
8359 int rsrc_write = 0;
8360 struct rsrc tmpl;
8362 if (dep->mode == IA64_DV_WAW
8363 || (dep->mode == IA64_DV_RAW && type == DV_REG)
8364 || (dep->mode == IA64_DV_WAR && type == DV_CHK))
8365 rsrc_write = 1;
8367 /* template for any resources we identify */
8368 tmpl.dependency = dep;
8369 tmpl.note = note;
8370 tmpl.insn_srlz = tmpl.data_srlz = 0;
8371 tmpl.qp_regno = CURR_SLOT.qp_regno;
8372 tmpl.link_to_qp_branch = 1;
8373 tmpl.mem_offset.hint = 0;
8374 tmpl.mem_offset.offset = 0;
8375 tmpl.mem_offset.base = 0;
8376 tmpl.specific = 1;
8377 tmpl.index = -1;
8378 tmpl.cmp_type = CMP_NONE;
8379 tmpl.depind = 0;
8380 tmpl.file = NULL;
8381 tmpl.line = 0;
8382 tmpl.path = 0;
8384 #define UNHANDLED \
8385 as_warn (_("Unhandled dependency %s for %s (%s), note %d"), \
8386 dep->name, idesc->name, (rsrc_write?"write":"read"), note)
8387 #define KNOWN(REG) (gr_values[REG].known && gr_values[REG].path >= path)
8389 /* we don't need to track these */
8390 if (dep->semantics == IA64_DVS_NONE)
8391 return 0;
8393 switch (dep->specifier)
8395 case IA64_RS_AR_K:
8396 if (note == 1)
8398 if (idesc->operands[!rsrc_write] == IA64_OPND_AR3)
8400 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_AR;
8401 if (regno >= 0 && regno <= 7)
8403 specs[count] = tmpl;
8404 specs[count++].index = regno;
8408 else if (note == 0)
8410 for (i = 0; i < 8; i++)
8412 specs[count] = tmpl;
8413 specs[count++].index = i;
8416 else
8418 UNHANDLED;
8420 break;
8422 case IA64_RS_AR_UNAT:
8423 /* This is a mov =AR or mov AR= instruction. */
8424 if (idesc->operands[!rsrc_write] == IA64_OPND_AR3)
8426 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_AR;
8427 if (regno == AR_UNAT)
8429 specs[count++] = tmpl;
8432 else
8434 /* This is a spill/fill, or other instruction that modifies the
8435 unat register. */
8437 /* Unless we can determine the specific bits used, mark the whole
8438 thing; bits 8:3 of the memory address indicate the bit used in
8439 UNAT. The .mem.offset hint may be used to eliminate a small
8440 subset of conflicts. */
8441 specs[count] = tmpl;
8442 if (md.mem_offset.hint)
8444 if (md.debug_dv)
8445 fprintf (stderr, " Using hint for spill/fill\n");
8446 /* The index isn't actually used, just set it to something
8447 approximating the bit index. */
8448 specs[count].index = (md.mem_offset.offset >> 3) & 0x3F;
8449 specs[count].mem_offset.hint = 1;
8450 specs[count].mem_offset.offset = md.mem_offset.offset;
8451 specs[count++].mem_offset.base = md.mem_offset.base;
8453 else
8455 specs[count++].specific = 0;
8458 break;
8460 case IA64_RS_AR:
8461 if (note == 1)
8463 if (idesc->operands[!rsrc_write] == IA64_OPND_AR3)
8465 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_AR;
8466 if ((regno >= 8 && regno <= 15)
8467 || (regno >= 20 && regno <= 23)
8468 || (regno >= 31 && regno <= 39)
8469 || (regno >= 41 && regno <= 47)
8470 || (regno >= 67 && regno <= 111))
8472 specs[count] = tmpl;
8473 specs[count++].index = regno;
8477 else
8479 UNHANDLED;
8481 break;
8483 case IA64_RS_ARb:
8484 if (note == 1)
8486 if (idesc->operands[!rsrc_write] == IA64_OPND_AR3)
8488 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_AR;
8489 if ((regno >= 48 && regno <= 63)
8490 || (regno >= 112 && regno <= 127))
8492 specs[count] = tmpl;
8493 specs[count++].index = regno;
8497 else if (note == 0)
8499 for (i = 48; i < 64; i++)
8501 specs[count] = tmpl;
8502 specs[count++].index = i;
8504 for (i = 112; i < 128; i++)
8506 specs[count] = tmpl;
8507 specs[count++].index = i;
8510 else
8512 UNHANDLED;
8514 break;
8516 case IA64_RS_BR:
8517 if (note != 1)
8519 UNHANDLED;
8521 else
8523 if (rsrc_write)
8525 for (i = 0; i < idesc->num_outputs; i++)
8526 if (idesc->operands[i] == IA64_OPND_B1
8527 || idesc->operands[i] == IA64_OPND_B2)
8529 specs[count] = tmpl;
8530 specs[count++].index =
8531 CURR_SLOT.opnd[i].X_add_number - REG_BR;
8534 else
8536 for (i = idesc->num_outputs; i < NELEMS (idesc->operands); i++)
8537 if (idesc->operands[i] == IA64_OPND_B1
8538 || idesc->operands[i] == IA64_OPND_B2)
8540 specs[count] = tmpl;
8541 specs[count++].index =
8542 CURR_SLOT.opnd[i].X_add_number - REG_BR;
8546 break;
8548 case IA64_RS_CPUID: /* four or more registers */
8549 if (note == 3)
8551 if (idesc->operands[!rsrc_write] == IA64_OPND_CPUID_R3)
8553 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_GR;
8554 if (regno >= 0 && regno < NELEMS (gr_values)
8555 && KNOWN (regno))
8557 specs[count] = tmpl;
8558 specs[count++].index = gr_values[regno].value & 0xFF;
8560 else
8562 specs[count] = tmpl;
8563 specs[count++].specific = 0;
8567 else
8569 UNHANDLED;
8571 break;
8573 case IA64_RS_DBR: /* four or more registers */
8574 if (note == 3)
8576 if (idesc->operands[!rsrc_write] == IA64_OPND_DBR_R3)
8578 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_GR;
8579 if (regno >= 0 && regno < NELEMS (gr_values)
8580 && KNOWN (regno))
8582 specs[count] = tmpl;
8583 specs[count++].index = gr_values[regno].value & 0xFF;
8585 else
8587 specs[count] = tmpl;
8588 specs[count++].specific = 0;
8592 else if (note == 0 && !rsrc_write)
8594 specs[count] = tmpl;
8595 specs[count++].specific = 0;
8597 else
8599 UNHANDLED;
8601 break;
8603 case IA64_RS_IBR: /* four or more registers */
8604 if (note == 3)
8606 if (idesc->operands[!rsrc_write] == IA64_OPND_IBR_R3)
8608 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_GR;
8609 if (regno >= 0 && regno < NELEMS (gr_values)
8610 && KNOWN (regno))
8612 specs[count] = tmpl;
8613 specs[count++].index = gr_values[regno].value & 0xFF;
8615 else
8617 specs[count] = tmpl;
8618 specs[count++].specific = 0;
8622 else
8624 UNHANDLED;
8626 break;
8628 case IA64_RS_MSR:
8629 if (note == 5)
8631 /* These are implementation specific. Force all references to
8632 conflict with all other references. */
8633 specs[count] = tmpl;
8634 specs[count++].specific = 0;
8636 else
8638 UNHANDLED;
8640 break;
8642 case IA64_RS_PKR: /* 16 or more registers */
8643 if (note == 3 || note == 4)
8645 if (idesc->operands[!rsrc_write] == IA64_OPND_PKR_R3)
8647 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_GR;
8648 if (regno >= 0 && regno < NELEMS (gr_values)
8649 && KNOWN (regno))
8651 if (note == 3)
8653 specs[count] = tmpl;
8654 specs[count++].index = gr_values[regno].value & 0xFF;
8656 else
8657 for (i = 0; i < NELEMS (gr_values); i++)
8659 /* Uses all registers *except* the one in R3. */
8660 if ((unsigned)i != (gr_values[regno].value & 0xFF))
8662 specs[count] = tmpl;
8663 specs[count++].index = i;
8667 else
8669 specs[count] = tmpl;
8670 specs[count++].specific = 0;
8674 else if (note == 0)
8676 /* probe et al. */
8677 specs[count] = tmpl;
8678 specs[count++].specific = 0;
8680 break;
8682 case IA64_RS_PMC: /* four or more registers */
8683 if (note == 3)
8685 if (idesc->operands[!rsrc_write] == IA64_OPND_PMC_R3
8686 || (!rsrc_write && idesc->operands[1] == IA64_OPND_PMD_R3))
8689 int index = ((idesc->operands[1] == IA64_OPND_R3 && !rsrc_write)
8690 ? 1 : !rsrc_write);
8691 int regno = CURR_SLOT.opnd[index].X_add_number - REG_GR;
8692 if (regno >= 0 && regno < NELEMS (gr_values)
8693 && KNOWN (regno))
8695 specs[count] = tmpl;
8696 specs[count++].index = gr_values[regno].value & 0xFF;
8698 else
8700 specs[count] = tmpl;
8701 specs[count++].specific = 0;
8705 else
8707 UNHANDLED;
8709 break;
8711 case IA64_RS_PMD: /* four or more registers */
8712 if (note == 3)
8714 if (idesc->operands[!rsrc_write] == IA64_OPND_PMD_R3)
8716 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_GR;
8717 if (regno >= 0 && regno < NELEMS (gr_values)
8718 && KNOWN (regno))
8720 specs[count] = tmpl;
8721 specs[count++].index = gr_values[regno].value & 0xFF;
8723 else
8725 specs[count] = tmpl;
8726 specs[count++].specific = 0;
8730 else
8732 UNHANDLED;
8734 break;
8736 case IA64_RS_RR: /* eight registers */
8737 if (note == 6)
8739 if (idesc->operands[!rsrc_write] == IA64_OPND_RR_R3)
8741 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_GR;
8742 if (regno >= 0 && regno < NELEMS (gr_values)
8743 && KNOWN (regno))
8745 specs[count] = tmpl;
8746 specs[count++].index = (gr_values[regno].value >> 61) & 0x7;
8748 else
8750 specs[count] = tmpl;
8751 specs[count++].specific = 0;
8755 else if (note == 0 && !rsrc_write)
8757 specs[count] = tmpl;
8758 specs[count++].specific = 0;
8760 else
8762 UNHANDLED;
8764 break;
8766 case IA64_RS_CR_IRR:
8767 if (note == 0)
8769 /* handle mov-from-CR-IVR; it's a read that writes CR[IRR] */
8770 int regno = CURR_SLOT.opnd[1].X_add_number - REG_CR;
8771 if (rsrc_write
8772 && idesc->operands[1] == IA64_OPND_CR3
8773 && regno == CR_IVR)
8775 for (i = 0; i < 4; i++)
8777 specs[count] = tmpl;
8778 specs[count++].index = CR_IRR0 + i;
8782 else if (note == 1)
8784 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_CR;
8785 if (idesc->operands[!rsrc_write] == IA64_OPND_CR3
8786 && regno >= CR_IRR0
8787 && regno <= CR_IRR3)
8789 specs[count] = tmpl;
8790 specs[count++].index = regno;
8793 else
8795 UNHANDLED;
8797 break;
8799 case IA64_RS_CR_LRR:
8800 if (note != 1)
8802 UNHANDLED;
8804 else
8806 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_CR;
8807 if (idesc->operands[!rsrc_write] == IA64_OPND_CR3
8808 && (regno == CR_LRR0 || regno == CR_LRR1))
8810 specs[count] = tmpl;
8811 specs[count++].index = regno;
8814 break;
8816 case IA64_RS_CR:
8817 if (note == 1)
8819 if (idesc->operands[!rsrc_write] == IA64_OPND_CR3)
8821 specs[count] = tmpl;
8822 specs[count++].index =
8823 CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_CR;
8826 else
8828 UNHANDLED;
8830 break;
8832 case IA64_RS_FR:
8833 case IA64_RS_FRb:
8834 if (note != 1)
8836 UNHANDLED;
8838 else if (rsrc_write)
8840 if (dep->specifier == IA64_RS_FRb
8841 && idesc->operands[0] == IA64_OPND_F1)
8843 specs[count] = tmpl;
8844 specs[count++].index = CURR_SLOT.opnd[0].X_add_number - REG_FR;
8847 else
8849 for (i = idesc->num_outputs; i < NELEMS (idesc->operands); i++)
8851 if (idesc->operands[i] == IA64_OPND_F2
8852 || idesc->operands[i] == IA64_OPND_F3
8853 || idesc->operands[i] == IA64_OPND_F4)
8855 specs[count] = tmpl;
8856 specs[count++].index =
8857 CURR_SLOT.opnd[i].X_add_number - REG_FR;
8861 break;
8863 case IA64_RS_GR:
8864 if (note == 13)
8866 /* This reference applies only to the GR whose value is loaded with
8867 data returned from memory. */
8868 specs[count] = tmpl;
8869 specs[count++].index = CURR_SLOT.opnd[0].X_add_number - REG_GR;
8871 else if (note == 1)
8873 if (rsrc_write)
8875 for (i = 0; i < idesc->num_outputs; i++)
8876 if (idesc->operands[i] == IA64_OPND_R1
8877 || idesc->operands[i] == IA64_OPND_R2
8878 || idesc->operands[i] == IA64_OPND_R3)
8880 specs[count] = tmpl;
8881 specs[count++].index =
8882 CURR_SLOT.opnd[i].X_add_number - REG_GR;
8884 if (idesc->flags & IA64_OPCODE_POSTINC)
8885 for (i = 0; i < NELEMS (idesc->operands); i++)
8886 if (idesc->operands[i] == IA64_OPND_MR3)
8888 specs[count] = tmpl;
8889 specs[count++].index =
8890 CURR_SLOT.opnd[i].X_add_number - REG_GR;
8893 else
8895 /* Look for anything that reads a GR. */
8896 for (i = 0; i < NELEMS (idesc->operands); i++)
8898 if (idesc->operands[i] == IA64_OPND_MR3
8899 || idesc->operands[i] == IA64_OPND_CPUID_R3
8900 || idesc->operands[i] == IA64_OPND_DBR_R3
8901 || idesc->operands[i] == IA64_OPND_IBR_R3
8902 || idesc->operands[i] == IA64_OPND_MSR_R3
8903 || idesc->operands[i] == IA64_OPND_PKR_R3
8904 || idesc->operands[i] == IA64_OPND_PMC_R3
8905 || idesc->operands[i] == IA64_OPND_PMD_R3
8906 || idesc->operands[i] == IA64_OPND_RR_R3
8907 || ((i >= idesc->num_outputs)
8908 && (idesc->operands[i] == IA64_OPND_R1
8909 || idesc->operands[i] == IA64_OPND_R2
8910 || idesc->operands[i] == IA64_OPND_R3
8911 /* addl source register. */
8912 || idesc->operands[i] == IA64_OPND_R3_2)))
8914 specs[count] = tmpl;
8915 specs[count++].index =
8916 CURR_SLOT.opnd[i].X_add_number - REG_GR;
8921 else
8923 UNHANDLED;
8925 break;
8927 /* This is the same as IA64_RS_PRr, except that the register range is
8928 from 1 - 15, and there are no rotating register reads/writes here. */
8929 case IA64_RS_PR:
8930 if (note == 0)
8932 for (i = 1; i < 16; i++)
8934 specs[count] = tmpl;
8935 specs[count++].index = i;
8938 else if (note == 7)
8940 valueT mask = 0;
8941 /* Mark only those registers indicated by the mask. */
8942 if (rsrc_write)
8944 mask = CURR_SLOT.opnd[2].X_add_number;
8945 for (i = 1; i < 16; i++)
8946 if (mask & ((valueT) 1 << i))
8948 specs[count] = tmpl;
8949 specs[count++].index = i;
8952 else
8954 UNHANDLED;
8957 else if (note == 11) /* note 11 implies note 1 as well */
8959 if (rsrc_write)
8961 for (i = 0; i < idesc->num_outputs; i++)
8963 if (idesc->operands[i] == IA64_OPND_P1
8964 || idesc->operands[i] == IA64_OPND_P2)
8966 int regno = CURR_SLOT.opnd[i].X_add_number - REG_P;
8967 if (regno >= 1 && regno < 16)
8969 specs[count] = tmpl;
8970 specs[count++].index = regno;
8975 else
8977 UNHANDLED;
8980 else if (note == 12)
8982 if (CURR_SLOT.qp_regno >= 1 && CURR_SLOT.qp_regno < 16)
8984 specs[count] = tmpl;
8985 specs[count++].index = CURR_SLOT.qp_regno;
8988 else if (note == 1)
8990 if (rsrc_write)
8992 int p1 = CURR_SLOT.opnd[0].X_add_number - REG_P;
8993 int p2 = CURR_SLOT.opnd[1].X_add_number - REG_P;
8994 int or_andcm = strstr (idesc->name, "or.andcm") != NULL;
8995 int and_orcm = strstr (idesc->name, "and.orcm") != NULL;
8997 if ((idesc->operands[0] == IA64_OPND_P1
8998 || idesc->operands[0] == IA64_OPND_P2)
8999 && p1 >= 1 && p1 < 16)
9001 specs[count] = tmpl;
9002 specs[count].cmp_type =
9003 (or_andcm ? CMP_OR : (and_orcm ? CMP_AND : CMP_NONE));
9004 specs[count++].index = p1;
9006 if ((idesc->operands[1] == IA64_OPND_P1
9007 || idesc->operands[1] == IA64_OPND_P2)
9008 && p2 >= 1 && p2 < 16)
9010 specs[count] = tmpl;
9011 specs[count].cmp_type =
9012 (or_andcm ? CMP_AND : (and_orcm ? CMP_OR : CMP_NONE));
9013 specs[count++].index = p2;
9016 else
9018 if (CURR_SLOT.qp_regno >= 1 && CURR_SLOT.qp_regno < 16)
9020 specs[count] = tmpl;
9021 specs[count++].index = CURR_SLOT.qp_regno;
9023 if (idesc->operands[1] == IA64_OPND_PR)
9025 for (i = 1; i < 16; i++)
9027 specs[count] = tmpl;
9028 specs[count++].index = i;
9033 else
9035 UNHANDLED;
9037 break;
9039 /* This is the general case for PRs. IA64_RS_PR and IA64_RS_PR63 are
9040 simplified cases of this. */
9041 case IA64_RS_PRr:
9042 if (note == 0)
9044 for (i = 16; i < 63; i++)
9046 specs[count] = tmpl;
9047 specs[count++].index = i;
9050 else if (note == 7)
9052 valueT mask = 0;
9053 /* Mark only those registers indicated by the mask. */
9054 if (rsrc_write
9055 && idesc->operands[0] == IA64_OPND_PR)
9057 mask = CURR_SLOT.opnd[2].X_add_number;
9058 if (mask & ((valueT) 1 << 16))
9059 for (i = 16; i < 63; i++)
9061 specs[count] = tmpl;
9062 specs[count++].index = i;
9065 else if (rsrc_write
9066 && idesc->operands[0] == IA64_OPND_PR_ROT)
9068 for (i = 16; i < 63; i++)
9070 specs[count] = tmpl;
9071 specs[count++].index = i;
9074 else
9076 UNHANDLED;
9079 else if (note == 11) /* note 11 implies note 1 as well */
9081 if (rsrc_write)
9083 for (i = 0; i < idesc->num_outputs; i++)
9085 if (idesc->operands[i] == IA64_OPND_P1
9086 || idesc->operands[i] == IA64_OPND_P2)
9088 int regno = CURR_SLOT.opnd[i].X_add_number - REG_P;
9089 if (regno >= 16 && regno < 63)
9091 specs[count] = tmpl;
9092 specs[count++].index = regno;
9097 else
9099 UNHANDLED;
9102 else if (note == 12)
9104 if (CURR_SLOT.qp_regno >= 16 && CURR_SLOT.qp_regno < 63)
9106 specs[count] = tmpl;
9107 specs[count++].index = CURR_SLOT.qp_regno;
9110 else if (note == 1)
9112 if (rsrc_write)
9114 int p1 = CURR_SLOT.opnd[0].X_add_number - REG_P;
9115 int p2 = CURR_SLOT.opnd[1].X_add_number - REG_P;
9116 int or_andcm = strstr (idesc->name, "or.andcm") != NULL;
9117 int and_orcm = strstr (idesc->name, "and.orcm") != NULL;
9119 if ((idesc->operands[0] == IA64_OPND_P1
9120 || idesc->operands[0] == IA64_OPND_P2)
9121 && p1 >= 16 && p1 < 63)
9123 specs[count] = tmpl;
9124 specs[count].cmp_type =
9125 (or_andcm ? CMP_OR : (and_orcm ? CMP_AND : CMP_NONE));
9126 specs[count++].index = p1;
9128 if ((idesc->operands[1] == IA64_OPND_P1
9129 || idesc->operands[1] == IA64_OPND_P2)
9130 && p2 >= 16 && p2 < 63)
9132 specs[count] = tmpl;
9133 specs[count].cmp_type =
9134 (or_andcm ? CMP_AND : (and_orcm ? CMP_OR : CMP_NONE));
9135 specs[count++].index = p2;
9138 else
9140 if (CURR_SLOT.qp_regno >= 16 && CURR_SLOT.qp_regno < 63)
9142 specs[count] = tmpl;
9143 specs[count++].index = CURR_SLOT.qp_regno;
9145 if (idesc->operands[1] == IA64_OPND_PR)
9147 for (i = 16; i < 63; i++)
9149 specs[count] = tmpl;
9150 specs[count++].index = i;
9155 else
9157 UNHANDLED;
9159 break;
9161 case IA64_RS_PSR:
9162 /* Verify that the instruction is using the PSR bit indicated in
9163 dep->regindex. */
9164 if (note == 0)
9166 if (idesc->operands[!rsrc_write] == IA64_OPND_PSR_UM)
9168 if (dep->regindex < 6)
9170 specs[count++] = tmpl;
9173 else if (idesc->operands[!rsrc_write] == IA64_OPND_PSR)
9175 if (dep->regindex < 32
9176 || dep->regindex == 35
9177 || dep->regindex == 36
9178 || (!rsrc_write && dep->regindex == PSR_CPL))
9180 specs[count++] = tmpl;
9183 else if (idesc->operands[!rsrc_write] == IA64_OPND_PSR_L)
9185 if (dep->regindex < 32
9186 || dep->regindex == 35
9187 || dep->regindex == 36
9188 || (rsrc_write && dep->regindex == PSR_CPL))
9190 specs[count++] = tmpl;
9193 else
9195 /* Several PSR bits have very specific dependencies. */
9196 switch (dep->regindex)
9198 default:
9199 specs[count++] = tmpl;
9200 break;
9201 case PSR_IC:
9202 if (rsrc_write)
9204 specs[count++] = tmpl;
9206 else
9208 /* Only certain CR accesses use PSR.ic */
9209 if (idesc->operands[0] == IA64_OPND_CR3
9210 || idesc->operands[1] == IA64_OPND_CR3)
9212 int index =
9213 ((idesc->operands[0] == IA64_OPND_CR3)
9214 ? 0 : 1);
9215 int regno =
9216 CURR_SLOT.opnd[index].X_add_number - REG_CR;
9218 switch (regno)
9220 default:
9221 break;
9222 case CR_ITIR:
9223 case CR_IFS:
9224 case CR_IIM:
9225 case CR_IIP:
9226 case CR_IPSR:
9227 case CR_ISR:
9228 case CR_IFA:
9229 case CR_IHA:
9230 case CR_IIPA:
9231 specs[count++] = tmpl;
9232 break;
9236 break;
9237 case PSR_CPL:
9238 if (rsrc_write)
9240 specs[count++] = tmpl;
9242 else
9244 /* Only some AR accesses use cpl */
9245 if (idesc->operands[0] == IA64_OPND_AR3
9246 || idesc->operands[1] == IA64_OPND_AR3)
9248 int index =
9249 ((idesc->operands[0] == IA64_OPND_AR3)
9250 ? 0 : 1);
9251 int regno =
9252 CURR_SLOT.opnd[index].X_add_number - REG_AR;
9254 if (regno == AR_ITC
9255 || (index == 0
9256 && (regno == AR_ITC
9257 || regno == AR_RSC
9258 || (regno >= AR_K0
9259 && regno <= AR_K7))))
9261 specs[count++] = tmpl;
9264 else
9266 specs[count++] = tmpl;
9268 break;
9273 else if (note == 7)
9275 valueT mask = 0;
9276 if (idesc->operands[0] == IA64_OPND_IMMU24)
9278 mask = CURR_SLOT.opnd[0].X_add_number;
9280 else
9282 UNHANDLED;
9284 if (mask & ((valueT) 1 << dep->regindex))
9286 specs[count++] = tmpl;
9289 else if (note == 8)
9291 int min = dep->regindex == PSR_DFL ? 2 : 32;
9292 int max = dep->regindex == PSR_DFL ? 31 : 127;
9293 /* dfh is read on FR32-127; dfl is read on FR2-31 */
9294 for (i = 0; i < NELEMS (idesc->operands); i++)
9296 if (idesc->operands[i] == IA64_OPND_F1
9297 || idesc->operands[i] == IA64_OPND_F2
9298 || idesc->operands[i] == IA64_OPND_F3
9299 || idesc->operands[i] == IA64_OPND_F4)
9301 int reg = CURR_SLOT.opnd[i].X_add_number - REG_FR;
9302 if (reg >= min && reg <= max)
9304 specs[count++] = tmpl;
9309 else if (note == 9)
9311 int min = dep->regindex == PSR_MFL ? 2 : 32;
9312 int max = dep->regindex == PSR_MFL ? 31 : 127;
9313 /* mfh is read on writes to FR32-127; mfl is read on writes to
9314 FR2-31 */
9315 for (i = 0; i < idesc->num_outputs; i++)
9317 if (idesc->operands[i] == IA64_OPND_F1)
9319 int reg = CURR_SLOT.opnd[i].X_add_number - REG_FR;
9320 if (reg >= min && reg <= max)
9322 specs[count++] = tmpl;
9327 else if (note == 10)
9329 for (i = 0; i < NELEMS (idesc->operands); i++)
9331 if (idesc->operands[i] == IA64_OPND_R1
9332 || idesc->operands[i] == IA64_OPND_R2
9333 || idesc->operands[i] == IA64_OPND_R3)
9335 int regno = CURR_SLOT.opnd[i].X_add_number - REG_GR;
9336 if (regno >= 16 && regno <= 31)
9338 specs[count++] = tmpl;
9343 else
9345 UNHANDLED;
9347 break;
9349 case IA64_RS_AR_FPSR:
9350 if (idesc->operands[!rsrc_write] == IA64_OPND_AR3)
9352 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_AR;
9353 if (regno == AR_FPSR)
9355 specs[count++] = tmpl;
9358 else
9360 specs[count++] = tmpl;
9362 break;
9364 case IA64_RS_ARX:
9365 /* Handle all AR[REG] resources */
9366 if (note == 0 || note == 1)
9368 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_AR;
9369 if (idesc->operands[!rsrc_write] == IA64_OPND_AR3
9370 && regno == dep->regindex)
9372 specs[count++] = tmpl;
9374 /* other AR[REG] resources may be affected by AR accesses */
9375 else if (idesc->operands[0] == IA64_OPND_AR3)
9377 /* AR[] writes */
9378 regno = CURR_SLOT.opnd[0].X_add_number - REG_AR;
9379 switch (dep->regindex)
9381 default:
9382 break;
9383 case AR_BSP:
9384 case AR_RNAT:
9385 if (regno == AR_BSPSTORE)
9387 specs[count++] = tmpl;
9389 case AR_RSC:
9390 if (!rsrc_write &&
9391 (regno == AR_BSPSTORE
9392 || regno == AR_RNAT))
9394 specs[count++] = tmpl;
9396 break;
9399 else if (idesc->operands[1] == IA64_OPND_AR3)
9401 /* AR[] reads */
9402 regno = CURR_SLOT.opnd[1].X_add_number - REG_AR;
9403 switch (dep->regindex)
9405 default:
9406 break;
9407 case AR_RSC:
9408 if (regno == AR_BSPSTORE || regno == AR_RNAT)
9410 specs[count++] = tmpl;
9412 break;
9415 else
9417 specs[count++] = tmpl;
9420 else
9422 UNHANDLED;
9424 break;
9426 case IA64_RS_CRX:
9427 /* Handle all CR[REG] resources */
9428 if (note == 0 || note == 1)
9430 if (idesc->operands[!rsrc_write] == IA64_OPND_CR3)
9432 int regno = CURR_SLOT.opnd[!rsrc_write].X_add_number - REG_CR;
9433 if (regno == dep->regindex)
9435 specs[count++] = tmpl;
9437 else if (!rsrc_write)
9439 /* Reads from CR[IVR] affect other resources. */
9440 if (regno == CR_IVR)
9442 if ((dep->regindex >= CR_IRR0
9443 && dep->regindex <= CR_IRR3)
9444 || dep->regindex == CR_TPR)
9446 specs[count++] = tmpl;
9451 else
9453 specs[count++] = tmpl;
9456 else
9458 UNHANDLED;
9460 break;
9462 case IA64_RS_INSERVICE:
9463 /* look for write of EOI (67) or read of IVR (65) */
9464 if ((idesc->operands[0] == IA64_OPND_CR3
9465 && CURR_SLOT.opnd[0].X_add_number - REG_CR == CR_EOI)
9466 || (idesc->operands[1] == IA64_OPND_CR3
9467 && CURR_SLOT.opnd[1].X_add_number - REG_CR == CR_IVR))
9469 specs[count++] = tmpl;
9471 break;
9473 case IA64_RS_GR0:
9474 if (note == 1)
9476 specs[count++] = tmpl;
9478 else
9480 UNHANDLED;
9482 break;
9484 case IA64_RS_CFM:
9485 if (note != 2)
9487 specs[count++] = tmpl;
9489 else
9491 /* Check if any of the registers accessed are in the rotating region.
9492 mov to/from pr accesses CFM only when qp_regno is in the rotating
9493 region */
9494 for (i = 0; i < NELEMS (idesc->operands); i++)
9496 if (idesc->operands[i] == IA64_OPND_R1
9497 || idesc->operands[i] == IA64_OPND_R2
9498 || idesc->operands[i] == IA64_OPND_R3)
9500 int num = CURR_SLOT.opnd[i].X_add_number - REG_GR;
9501 /* Assumes that md.rot.num_regs is always valid */
9502 if (md.rot.num_regs > 0
9503 && num > 31
9504 && num < 31 + md.rot.num_regs)
9506 specs[count] = tmpl;
9507 specs[count++].specific = 0;
9510 else if (idesc->operands[i] == IA64_OPND_F1
9511 || idesc->operands[i] == IA64_OPND_F2
9512 || idesc->operands[i] == IA64_OPND_F3
9513 || idesc->operands[i] == IA64_OPND_F4)
9515 int num = CURR_SLOT.opnd[i].X_add_number - REG_FR;
9516 if (num > 31)
9518 specs[count] = tmpl;
9519 specs[count++].specific = 0;
9522 else if (idesc->operands[i] == IA64_OPND_P1
9523 || idesc->operands[i] == IA64_OPND_P2)
9525 int num = CURR_SLOT.opnd[i].X_add_number - REG_P;
9526 if (num > 15)
9528 specs[count] = tmpl;
9529 specs[count++].specific = 0;
9533 if (CURR_SLOT.qp_regno > 15)
9535 specs[count] = tmpl;
9536 specs[count++].specific = 0;
9539 break;
9541 /* This is the same as IA64_RS_PRr, except simplified to account for
9542 the fact that there is only one register. */
9543 case IA64_RS_PR63:
9544 if (note == 0)
9546 specs[count++] = tmpl;
9548 else if (note == 7)
9550 valueT mask = 0;
9551 if (idesc->operands[2] == IA64_OPND_IMM17)
9552 mask = CURR_SLOT.opnd[2].X_add_number;
9553 if (mask & ((valueT) 1 << 63))
9554 specs[count++] = tmpl;
9556 else if (note == 11)
9558 if ((idesc->operands[0] == IA64_OPND_P1
9559 && CURR_SLOT.opnd[0].X_add_number - REG_P == 63)
9560 || (idesc->operands[1] == IA64_OPND_P2
9561 && CURR_SLOT.opnd[1].X_add_number - REG_P == 63))
9563 specs[count++] = tmpl;
9566 else if (note == 12)
9568 if (CURR_SLOT.qp_regno == 63)
9570 specs[count++] = tmpl;
9573 else if (note == 1)
9575 if (rsrc_write)
9577 int p1 = CURR_SLOT.opnd[0].X_add_number - REG_P;
9578 int p2 = CURR_SLOT.opnd[1].X_add_number - REG_P;
9579 int or_andcm = strstr (idesc->name, "or.andcm") != NULL;
9580 int and_orcm = strstr (idesc->name, "and.orcm") != NULL;
9582 if (p1 == 63
9583 && (idesc->operands[0] == IA64_OPND_P1
9584 || idesc->operands[0] == IA64_OPND_P2))
9586 specs[count] = tmpl;
9587 specs[count++].cmp_type =
9588 (or_andcm ? CMP_OR : (and_orcm ? CMP_AND : CMP_NONE));
9590 if (p2 == 63
9591 && (idesc->operands[1] == IA64_OPND_P1
9592 || idesc->operands[1] == IA64_OPND_P2))
9594 specs[count] = tmpl;
9595 specs[count++].cmp_type =
9596 (or_andcm ? CMP_AND : (and_orcm ? CMP_OR : CMP_NONE));
9599 else
9601 if (CURR_SLOT.qp_regno == 63)
9603 specs[count++] = tmpl;
9607 else
9609 UNHANDLED;
9611 break;
9613 case IA64_RS_RSE:
9614 /* FIXME we can identify some individual RSE written resources, but RSE
9615 read resources have not yet been completely identified, so for now
9616 treat RSE as a single resource */
9617 if (strncmp (idesc->name, "mov", 3) == 0)
9619 if (rsrc_write)
9621 if (idesc->operands[0] == IA64_OPND_AR3
9622 && CURR_SLOT.opnd[0].X_add_number - REG_AR == AR_BSPSTORE)
9624 specs[count++] = tmpl;
9627 else
9629 if (idesc->operands[0] == IA64_OPND_AR3)
9631 if (CURR_SLOT.opnd[0].X_add_number - REG_AR == AR_BSPSTORE
9632 || CURR_SLOT.opnd[0].X_add_number - REG_AR == AR_RNAT)
9634 specs[count++] = tmpl;
9637 else if (idesc->operands[1] == IA64_OPND_AR3)
9639 if (CURR_SLOT.opnd[1].X_add_number - REG_AR == AR_BSP
9640 || CURR_SLOT.opnd[1].X_add_number - REG_AR == AR_BSPSTORE
9641 || CURR_SLOT.opnd[1].X_add_number - REG_AR == AR_RNAT)
9643 specs[count++] = tmpl;
9648 else
9650 specs[count++] = tmpl;
9652 break;
9654 case IA64_RS_ANY:
9655 /* FIXME -- do any of these need to be non-specific? */
9656 specs[count++] = tmpl;
9657 break;
9659 default:
9660 as_bad (_("Unrecognized dependency specifier %d\n"), dep->specifier);
9661 break;
9664 return count;
9667 /* Clear branch flags on marked resources. This breaks the link between the
9668 QP of the marking instruction and a subsequent branch on the same QP. */
9670 static void
9671 clear_qp_branch_flag (mask)
9672 valueT mask;
9674 int i;
9675 for (i = 0; i < regdepslen; i++)
9677 valueT bit = ((valueT) 1 << regdeps[i].qp_regno);
9678 if ((bit & mask) != 0)
9680 regdeps[i].link_to_qp_branch = 0;
9685 /* MASK contains 2 and only 2 PRs which are mutually exclusive. Remove
9686 any mutexes which contain one of the PRs and create new ones when
9687 needed. */
9689 static int
9690 update_qp_mutex (valueT mask)
9692 int i;
9693 int add = 0;
9695 i = 0;
9696 while (i < qp_mutexeslen)
9698 if ((qp_mutexes[i].prmask & mask) != 0)
9700 /* If it destroys and creates the same mutex, do nothing. */
9701 if (qp_mutexes[i].prmask == mask
9702 && qp_mutexes[i].path == md.path)
9704 i++;
9705 add = -1;
9707 else
9709 int keep = 0;
9711 if (md.debug_dv)
9713 fprintf (stderr, " Clearing mutex relation");
9714 print_prmask (qp_mutexes[i].prmask);
9715 fprintf (stderr, "\n");
9718 /* Deal with the old mutex with more than 3+ PRs only if
9719 the new mutex on the same execution path with it.
9721 FIXME: The 3+ mutex support is incomplete.
9722 dot_pred_rel () may be a better place to fix it. */
9723 if (qp_mutexes[i].path == md.path)
9725 /* If it is a proper subset of the mutex, create a
9726 new mutex. */
9727 if (add == 0
9728 && (qp_mutexes[i].prmask & mask) == mask)
9729 add = 1;
9731 qp_mutexes[i].prmask &= ~mask;
9732 if (qp_mutexes[i].prmask & (qp_mutexes[i].prmask - 1))
9734 /* Modify the mutex if there are more than one
9735 PR left. */
9736 keep = 1;
9737 i++;
9741 if (keep == 0)
9742 /* Remove the mutex. */
9743 qp_mutexes[i] = qp_mutexes[--qp_mutexeslen];
9746 else
9747 ++i;
9750 if (add == 1)
9751 add_qp_mutex (mask);
9753 return add;
9756 /* Remove any mutexes which contain any of the PRs indicated in the mask.
9758 Any changes to a PR clears the mutex relations which include that PR. */
9760 static void
9761 clear_qp_mutex (mask)
9762 valueT mask;
9764 int i;
9766 i = 0;
9767 while (i < qp_mutexeslen)
9769 if ((qp_mutexes[i].prmask & mask) != 0)
9771 if (md.debug_dv)
9773 fprintf (stderr, " Clearing mutex relation");
9774 print_prmask (qp_mutexes[i].prmask);
9775 fprintf (stderr, "\n");
9777 qp_mutexes[i] = qp_mutexes[--qp_mutexeslen];
9779 else
9780 ++i;
9784 /* Clear implies relations which contain PRs in the given masks.
9785 P1_MASK indicates the source of the implies relation, while P2_MASK
9786 indicates the implied PR. */
9788 static void
9789 clear_qp_implies (p1_mask, p2_mask)
9790 valueT p1_mask;
9791 valueT p2_mask;
9793 int i;
9795 i = 0;
9796 while (i < qp_implieslen)
9798 if ((((valueT) 1 << qp_implies[i].p1) & p1_mask) != 0
9799 || (((valueT) 1 << qp_implies[i].p2) & p2_mask) != 0)
9801 if (md.debug_dv)
9802 fprintf (stderr, "Clearing implied relation PR%d->PR%d\n",
9803 qp_implies[i].p1, qp_implies[i].p2);
9804 qp_implies[i] = qp_implies[--qp_implieslen];
9806 else
9807 ++i;
9811 /* Add the PRs specified to the list of implied relations. */
9813 static void
9814 add_qp_imply (p1, p2)
9815 int p1, p2;
9817 valueT mask;
9818 valueT bit;
9819 int i;
9821 /* p0 is not meaningful here. */
9822 if (p1 == 0 || p2 == 0)
9823 abort ();
9825 if (p1 == p2)
9826 return;
9828 /* If it exists already, ignore it. */
9829 for (i = 0; i < qp_implieslen; i++)
9831 if (qp_implies[i].p1 == p1
9832 && qp_implies[i].p2 == p2
9833 && qp_implies[i].path == md.path
9834 && !qp_implies[i].p2_branched)
9835 return;
9838 if (qp_implieslen == qp_impliestotlen)
9840 qp_impliestotlen += 20;
9841 qp_implies = (struct qp_imply *)
9842 xrealloc ((void *) qp_implies,
9843 qp_impliestotlen * sizeof (struct qp_imply));
9845 if (md.debug_dv)
9846 fprintf (stderr, " Registering PR%d implies PR%d\n", p1, p2);
9847 qp_implies[qp_implieslen].p1 = p1;
9848 qp_implies[qp_implieslen].p2 = p2;
9849 qp_implies[qp_implieslen].path = md.path;
9850 qp_implies[qp_implieslen++].p2_branched = 0;
9852 /* Add in the implied transitive relations; for everything that p2 implies,
9853 make p1 imply that, too; for everything that implies p1, make it imply p2
9854 as well. */
9855 for (i = 0; i < qp_implieslen; i++)
9857 if (qp_implies[i].p1 == p2)
9858 add_qp_imply (p1, qp_implies[i].p2);
9859 if (qp_implies[i].p2 == p1)
9860 add_qp_imply (qp_implies[i].p1, p2);
9862 /* Add in mutex relations implied by this implies relation; for each mutex
9863 relation containing p2, duplicate it and replace p2 with p1. */
9864 bit = (valueT) 1 << p1;
9865 mask = (valueT) 1 << p2;
9866 for (i = 0; i < qp_mutexeslen; i++)
9868 if (qp_mutexes[i].prmask & mask)
9869 add_qp_mutex ((qp_mutexes[i].prmask & ~mask) | bit);
9873 /* Add the PRs specified in the mask to the mutex list; this means that only
9874 one of the PRs can be true at any time. PR0 should never be included in
9875 the mask. */
9877 static void
9878 add_qp_mutex (mask)
9879 valueT mask;
9881 if (mask & 0x1)
9882 abort ();
9884 if (qp_mutexeslen == qp_mutexestotlen)
9886 qp_mutexestotlen += 20;
9887 qp_mutexes = (struct qpmutex *)
9888 xrealloc ((void *) qp_mutexes,
9889 qp_mutexestotlen * sizeof (struct qpmutex));
9891 if (md.debug_dv)
9893 fprintf (stderr, " Registering mutex on");
9894 print_prmask (mask);
9895 fprintf (stderr, "\n");
9897 qp_mutexes[qp_mutexeslen].path = md.path;
9898 qp_mutexes[qp_mutexeslen++].prmask = mask;
9901 static int
9902 has_suffix_p (name, suffix)
9903 const char *name;
9904 const char *suffix;
9906 size_t namelen = strlen (name);
9907 size_t sufflen = strlen (suffix);
9909 if (namelen <= sufflen)
9910 return 0;
9911 return strcmp (name + namelen - sufflen, suffix) == 0;
9914 static void
9915 clear_register_values ()
9917 int i;
9918 if (md.debug_dv)
9919 fprintf (stderr, " Clearing register values\n");
9920 for (i = 1; i < NELEMS (gr_values); i++)
9921 gr_values[i].known = 0;
9924 /* Keep track of register values/changes which affect DV tracking.
9926 optimization note: should add a flag to classes of insns where otherwise we
9927 have to examine a group of strings to identify them. */
9929 static void
9930 note_register_values (idesc)
9931 struct ia64_opcode *idesc;
9933 valueT qp_changemask = 0;
9934 int i;
9936 /* Invalidate values for registers being written to. */
9937 for (i = 0; i < idesc->num_outputs; i++)
9939 if (idesc->operands[i] == IA64_OPND_R1
9940 || idesc->operands[i] == IA64_OPND_R2
9941 || idesc->operands[i] == IA64_OPND_R3)
9943 int regno = CURR_SLOT.opnd[i].X_add_number - REG_GR;
9944 if (regno > 0 && regno < NELEMS (gr_values))
9945 gr_values[regno].known = 0;
9947 else if (idesc->operands[i] == IA64_OPND_R3_2)
9949 int regno = CURR_SLOT.opnd[i].X_add_number - REG_GR;
9950 if (regno > 0 && regno < 4)
9951 gr_values[regno].known = 0;
9953 else if (idesc->operands[i] == IA64_OPND_P1
9954 || idesc->operands[i] == IA64_OPND_P2)
9956 int regno = CURR_SLOT.opnd[i].X_add_number - REG_P;
9957 qp_changemask |= (valueT) 1 << regno;
9959 else if (idesc->operands[i] == IA64_OPND_PR)
9961 if (idesc->operands[2] & (valueT) 0x10000)
9962 qp_changemask = ~(valueT) 0x1FFFF | idesc->operands[2];
9963 else
9964 qp_changemask = idesc->operands[2];
9965 break;
9967 else if (idesc->operands[i] == IA64_OPND_PR_ROT)
9969 if (idesc->operands[1] & ((valueT) 1 << 43))
9970 qp_changemask = -((valueT) 1 << 44) | idesc->operands[1];
9971 else
9972 qp_changemask = idesc->operands[1];
9973 qp_changemask &= ~(valueT) 0xFFFF;
9974 break;
9978 /* Always clear qp branch flags on any PR change. */
9979 /* FIXME there may be exceptions for certain compares. */
9980 clear_qp_branch_flag (qp_changemask);
9982 /* Invalidate rotating registers on insns which affect RRBs in CFM. */
9983 if (idesc->flags & IA64_OPCODE_MOD_RRBS)
9985 qp_changemask |= ~(valueT) 0xFFFF;
9986 if (strcmp (idesc->name, "clrrrb.pr") != 0)
9988 for (i = 32; i < 32 + md.rot.num_regs; i++)
9989 gr_values[i].known = 0;
9991 clear_qp_mutex (qp_changemask);
9992 clear_qp_implies (qp_changemask, qp_changemask);
9994 /* After a call, all register values are undefined, except those marked
9995 as "safe". */
9996 else if (strncmp (idesc->name, "br.call", 6) == 0
9997 || strncmp (idesc->name, "brl.call", 7) == 0)
9999 /* FIXME keep GR values which are marked as "safe_across_calls" */
10000 clear_register_values ();
10001 clear_qp_mutex (~qp_safe_across_calls);
10002 clear_qp_implies (~qp_safe_across_calls, ~qp_safe_across_calls);
10003 clear_qp_branch_flag (~qp_safe_across_calls);
10005 else if (is_interruption_or_rfi (idesc)
10006 || is_taken_branch (idesc))
10008 clear_register_values ();
10009 clear_qp_mutex (~(valueT) 0);
10010 clear_qp_implies (~(valueT) 0, ~(valueT) 0);
10012 /* Look for mutex and implies relations. */
10013 else if ((idesc->operands[0] == IA64_OPND_P1
10014 || idesc->operands[0] == IA64_OPND_P2)
10015 && (idesc->operands[1] == IA64_OPND_P1
10016 || idesc->operands[1] == IA64_OPND_P2))
10018 int p1 = CURR_SLOT.opnd[0].X_add_number - REG_P;
10019 int p2 = CURR_SLOT.opnd[1].X_add_number - REG_P;
10020 valueT p1mask = (p1 != 0) ? (valueT) 1 << p1 : 0;
10021 valueT p2mask = (p2 != 0) ? (valueT) 1 << p2 : 0;
10023 /* If both PRs are PR0, we can't really do anything. */
10024 if (p1 == 0 && p2 == 0)
10026 if (md.debug_dv)
10027 fprintf (stderr, " Ignoring PRs due to inclusion of p0\n");
10029 /* In general, clear mutexes and implies which include P1 or P2,
10030 with the following exceptions. */
10031 else if (has_suffix_p (idesc->name, ".or.andcm")
10032 || has_suffix_p (idesc->name, ".and.orcm"))
10034 clear_qp_implies (p2mask, p1mask);
10036 else if (has_suffix_p (idesc->name, ".andcm")
10037 || has_suffix_p (idesc->name, ".and"))
10039 clear_qp_implies (0, p1mask | p2mask);
10041 else if (has_suffix_p (idesc->name, ".orcm")
10042 || has_suffix_p (idesc->name, ".or"))
10044 clear_qp_mutex (p1mask | p2mask);
10045 clear_qp_implies (p1mask | p2mask, 0);
10047 else
10049 int added = 0;
10051 clear_qp_implies (p1mask | p2mask, p1mask | p2mask);
10053 /* If one of the PRs is PR0, we call clear_qp_mutex. */
10054 if (p1 == 0 || p2 == 0)
10055 clear_qp_mutex (p1mask | p2mask);
10056 else
10057 added = update_qp_mutex (p1mask | p2mask);
10059 if (CURR_SLOT.qp_regno == 0
10060 || has_suffix_p (idesc->name, ".unc"))
10062 if (added == 0 && p1 && p2)
10063 add_qp_mutex (p1mask | p2mask);
10064 if (CURR_SLOT.qp_regno != 0)
10066 if (p1)
10067 add_qp_imply (p1, CURR_SLOT.qp_regno);
10068 if (p2)
10069 add_qp_imply (p2, CURR_SLOT.qp_regno);
10074 /* Look for mov imm insns into GRs. */
10075 else if (idesc->operands[0] == IA64_OPND_R1
10076 && (idesc->operands[1] == IA64_OPND_IMM22
10077 || idesc->operands[1] == IA64_OPND_IMMU64)
10078 && CURR_SLOT.opnd[1].X_op == O_constant
10079 && (strcmp (idesc->name, "mov") == 0
10080 || strcmp (idesc->name, "movl") == 0))
10082 int regno = CURR_SLOT.opnd[0].X_add_number - REG_GR;
10083 if (regno > 0 && regno < NELEMS (gr_values))
10085 gr_values[regno].known = 1;
10086 gr_values[regno].value = CURR_SLOT.opnd[1].X_add_number;
10087 gr_values[regno].path = md.path;
10088 if (md.debug_dv)
10090 fprintf (stderr, " Know gr%d = ", regno);
10091 fprintf_vma (stderr, gr_values[regno].value);
10092 fputs ("\n", stderr);
10096 /* Look for dep.z imm insns. */
10097 else if (idesc->operands[0] == IA64_OPND_R1
10098 && idesc->operands[1] == IA64_OPND_IMM8
10099 && strcmp (idesc->name, "dep.z") == 0)
10101 int regno = CURR_SLOT.opnd[0].X_add_number - REG_GR;
10102 if (regno > 0 && regno < NELEMS (gr_values))
10104 valueT value = CURR_SLOT.opnd[1].X_add_number;
10106 if (CURR_SLOT.opnd[3].X_add_number < 64)
10107 value &= ((valueT)1 << CURR_SLOT.opnd[3].X_add_number) - 1;
10108 value <<= CURR_SLOT.opnd[2].X_add_number;
10109 gr_values[regno].known = 1;
10110 gr_values[regno].value = value;
10111 gr_values[regno].path = md.path;
10112 if (md.debug_dv)
10114 fprintf (stderr, " Know gr%d = ", regno);
10115 fprintf_vma (stderr, gr_values[regno].value);
10116 fputs ("\n", stderr);
10120 else
10122 clear_qp_mutex (qp_changemask);
10123 clear_qp_implies (qp_changemask, qp_changemask);
10127 /* Return whether the given predicate registers are currently mutex. */
10129 static int
10130 qp_mutex (p1, p2, path)
10131 int p1;
10132 int p2;
10133 int path;
10135 int i;
10136 valueT mask;
10138 if (p1 != p2)
10140 mask = ((valueT) 1 << p1) | (valueT) 1 << p2;
10141 for (i = 0; i < qp_mutexeslen; i++)
10143 if (qp_mutexes[i].path >= path
10144 && (qp_mutexes[i].prmask & mask) == mask)
10145 return 1;
10148 return 0;
10151 /* Return whether the given resource is in the given insn's list of chks
10152 Return 1 if the conflict is absolutely determined, 2 if it's a potential
10153 conflict. */
10155 static int
10156 resources_match (rs, idesc, note, qp_regno, path)
10157 struct rsrc *rs;
10158 struct ia64_opcode *idesc;
10159 int note;
10160 int qp_regno;
10161 int path;
10163 struct rsrc specs[MAX_SPECS];
10164 int count;
10166 /* If the marked resource's qp_regno and the given qp_regno are mutex,
10167 we don't need to check. One exception is note 11, which indicates that
10168 target predicates are written regardless of PR[qp]. */
10169 if (qp_mutex (rs->qp_regno, qp_regno, path)
10170 && note != 11)
10171 return 0;
10173 count = specify_resource (rs->dependency, idesc, DV_CHK, specs, note, path);
10174 while (count-- > 0)
10176 /* UNAT checking is a bit more specific than other resources */
10177 if (rs->dependency->specifier == IA64_RS_AR_UNAT
10178 && specs[count].mem_offset.hint
10179 && rs->mem_offset.hint)
10181 if (rs->mem_offset.base == specs[count].mem_offset.base)
10183 if (((rs->mem_offset.offset >> 3) & 0x3F) ==
10184 ((specs[count].mem_offset.offset >> 3) & 0x3F))
10185 return 1;
10186 else
10187 continue;
10191 /* Skip apparent PR write conflicts where both writes are an AND or both
10192 writes are an OR. */
10193 if (rs->dependency->specifier == IA64_RS_PR
10194 || rs->dependency->specifier == IA64_RS_PRr
10195 || rs->dependency->specifier == IA64_RS_PR63)
10197 if (specs[count].cmp_type != CMP_NONE
10198 && specs[count].cmp_type == rs->cmp_type)
10200 if (md.debug_dv)
10201 fprintf (stderr, " %s on parallel compare allowed (PR%d)\n",
10202 dv_mode[rs->dependency->mode],
10203 rs->dependency->specifier != IA64_RS_PR63 ?
10204 specs[count].index : 63);
10205 continue;
10207 if (md.debug_dv)
10208 fprintf (stderr,
10209 " %s on parallel compare conflict %s vs %s on PR%d\n",
10210 dv_mode[rs->dependency->mode],
10211 dv_cmp_type[rs->cmp_type],
10212 dv_cmp_type[specs[count].cmp_type],
10213 rs->dependency->specifier != IA64_RS_PR63 ?
10214 specs[count].index : 63);
10218 /* If either resource is not specific, conservatively assume a conflict
10220 if (!specs[count].specific || !rs->specific)
10221 return 2;
10222 else if (specs[count].index == rs->index)
10223 return 1;
10226 return 0;
10229 /* Indicate an instruction group break; if INSERT_STOP is non-zero, then
10230 insert a stop to create the break. Update all resource dependencies
10231 appropriately. If QP_REGNO is non-zero, only apply the break to resources
10232 which use the same QP_REGNO and have the link_to_qp_branch flag set.
10233 If SAVE_CURRENT is non-zero, don't affect resources marked by the current
10234 instruction. */
10236 static void
10237 insn_group_break (insert_stop, qp_regno, save_current)
10238 int insert_stop;
10239 int qp_regno;
10240 int save_current;
10242 int i;
10244 if (insert_stop && md.num_slots_in_use > 0)
10245 PREV_SLOT.end_of_insn_group = 1;
10247 if (md.debug_dv)
10249 fprintf (stderr, " Insn group break%s",
10250 (insert_stop ? " (w/stop)" : ""));
10251 if (qp_regno != 0)
10252 fprintf (stderr, " effective for QP=%d", qp_regno);
10253 fprintf (stderr, "\n");
10256 i = 0;
10257 while (i < regdepslen)
10259 const struct ia64_dependency *dep = regdeps[i].dependency;
10261 if (qp_regno != 0
10262 && regdeps[i].qp_regno != qp_regno)
10264 ++i;
10265 continue;
10268 if (save_current
10269 && CURR_SLOT.src_file == regdeps[i].file
10270 && CURR_SLOT.src_line == regdeps[i].line)
10272 ++i;
10273 continue;
10276 /* clear dependencies which are automatically cleared by a stop, or
10277 those that have reached the appropriate state of insn serialization */
10278 if (dep->semantics == IA64_DVS_IMPLIED
10279 || dep->semantics == IA64_DVS_IMPLIEDF
10280 || regdeps[i].insn_srlz == STATE_SRLZ)
10282 print_dependency ("Removing", i);
10283 regdeps[i] = regdeps[--regdepslen];
10285 else
10287 if (dep->semantics == IA64_DVS_DATA
10288 || dep->semantics == IA64_DVS_INSTR
10289 || dep->semantics == IA64_DVS_SPECIFIC)
10291 if (regdeps[i].insn_srlz == STATE_NONE)
10292 regdeps[i].insn_srlz = STATE_STOP;
10293 if (regdeps[i].data_srlz == STATE_NONE)
10294 regdeps[i].data_srlz = STATE_STOP;
10296 ++i;
10301 /* Add the given resource usage spec to the list of active dependencies. */
10303 static void
10304 mark_resource (idesc, dep, spec, depind, path)
10305 struct ia64_opcode *idesc ATTRIBUTE_UNUSED;
10306 const struct ia64_dependency *dep ATTRIBUTE_UNUSED;
10307 struct rsrc *spec;
10308 int depind;
10309 int path;
10311 if (regdepslen == regdepstotlen)
10313 regdepstotlen += 20;
10314 regdeps = (struct rsrc *)
10315 xrealloc ((void *) regdeps,
10316 regdepstotlen * sizeof (struct rsrc));
10319 regdeps[regdepslen] = *spec;
10320 regdeps[regdepslen].depind = depind;
10321 regdeps[regdepslen].path = path;
10322 regdeps[regdepslen].file = CURR_SLOT.src_file;
10323 regdeps[regdepslen].line = CURR_SLOT.src_line;
10325 print_dependency ("Adding", regdepslen);
10327 ++regdepslen;
10330 static void
10331 print_dependency (action, depind)
10332 const char *action;
10333 int depind;
10335 if (md.debug_dv)
10337 fprintf (stderr, " %s %s '%s'",
10338 action, dv_mode[(regdeps[depind].dependency)->mode],
10339 (regdeps[depind].dependency)->name);
10340 if (regdeps[depind].specific && regdeps[depind].index >= 0)
10341 fprintf (stderr, " (%d)", regdeps[depind].index);
10342 if (regdeps[depind].mem_offset.hint)
10344 fputs (" ", stderr);
10345 fprintf_vma (stderr, regdeps[depind].mem_offset.base);
10346 fputs ("+", stderr);
10347 fprintf_vma (stderr, regdeps[depind].mem_offset.offset);
10349 fprintf (stderr, "\n");
10353 static void
10354 instruction_serialization ()
10356 int i;
10357 if (md.debug_dv)
10358 fprintf (stderr, " Instruction serialization\n");
10359 for (i = 0; i < regdepslen; i++)
10360 if (regdeps[i].insn_srlz == STATE_STOP)
10361 regdeps[i].insn_srlz = STATE_SRLZ;
10364 static void
10365 data_serialization ()
10367 int i = 0;
10368 if (md.debug_dv)
10369 fprintf (stderr, " Data serialization\n");
10370 while (i < regdepslen)
10372 if (regdeps[i].data_srlz == STATE_STOP
10373 /* Note: as of 991210, all "other" dependencies are cleared by a
10374 data serialization. This might change with new tables */
10375 || (regdeps[i].dependency)->semantics == IA64_DVS_OTHER)
10377 print_dependency ("Removing", i);
10378 regdeps[i] = regdeps[--regdepslen];
10380 else
10381 ++i;
10385 /* Insert stops and serializations as needed to avoid DVs. */
10387 static void
10388 remove_marked_resource (rs)
10389 struct rsrc *rs;
10391 switch (rs->dependency->semantics)
10393 case IA64_DVS_SPECIFIC:
10394 if (md.debug_dv)
10395 fprintf (stderr, "Implementation-specific, assume worst case...\n");
10396 /* ...fall through... */
10397 case IA64_DVS_INSTR:
10398 if (md.debug_dv)
10399 fprintf (stderr, "Inserting instr serialization\n");
10400 if (rs->insn_srlz < STATE_STOP)
10401 insn_group_break (1, 0, 0);
10402 if (rs->insn_srlz < STATE_SRLZ)
10404 struct slot oldslot = CURR_SLOT;
10405 /* Manually jam a srlz.i insn into the stream */
10406 memset (&CURR_SLOT, 0, sizeof (CURR_SLOT));
10407 CURR_SLOT.user_template = -1;
10408 CURR_SLOT.idesc = ia64_find_opcode ("srlz.i");
10409 instruction_serialization ();
10410 md.curr_slot = (md.curr_slot + 1) % NUM_SLOTS;
10411 if (++md.num_slots_in_use >= NUM_SLOTS)
10412 emit_one_bundle ();
10413 CURR_SLOT = oldslot;
10415 insn_group_break (1, 0, 0);
10416 break;
10417 case IA64_DVS_OTHER: /* as of rev2 (991220) of the DV tables, all
10418 "other" types of DV are eliminated
10419 by a data serialization */
10420 case IA64_DVS_DATA:
10421 if (md.debug_dv)
10422 fprintf (stderr, "Inserting data serialization\n");
10423 if (rs->data_srlz < STATE_STOP)
10424 insn_group_break (1, 0, 0);
10426 struct slot oldslot = CURR_SLOT;
10427 /* Manually jam a srlz.d insn into the stream */
10428 memset (&CURR_SLOT, 0, sizeof (CURR_SLOT));
10429 CURR_SLOT.user_template = -1;
10430 CURR_SLOT.idesc = ia64_find_opcode ("srlz.d");
10431 data_serialization ();
10432 md.curr_slot = (md.curr_slot + 1) % NUM_SLOTS;
10433 if (++md.num_slots_in_use >= NUM_SLOTS)
10434 emit_one_bundle ();
10435 CURR_SLOT = oldslot;
10437 break;
10438 case IA64_DVS_IMPLIED:
10439 case IA64_DVS_IMPLIEDF:
10440 if (md.debug_dv)
10441 fprintf (stderr, "Inserting stop\n");
10442 insn_group_break (1, 0, 0);
10443 break;
10444 default:
10445 break;
10449 /* Check the resources used by the given opcode against the current dependency
10450 list.
10452 The check is run once for each execution path encountered. In this case,
10453 a unique execution path is the sequence of instructions following a code
10454 entry point, e.g. the following has three execution paths, one starting
10455 at L0, one at L1, and one at L2.
10457 L0: nop
10458 L1: add
10459 L2: add
10460 br.ret
10463 static void
10464 check_dependencies (idesc)
10465 struct ia64_opcode *idesc;
10467 const struct ia64_opcode_dependency *opdeps = idesc->dependencies;
10468 int path;
10469 int i;
10471 /* Note that the number of marked resources may change within the
10472 loop if in auto mode. */
10473 i = 0;
10474 while (i < regdepslen)
10476 struct rsrc *rs = &regdeps[i];
10477 const struct ia64_dependency *dep = rs->dependency;
10478 int chkind;
10479 int note;
10480 int start_over = 0;
10482 if (dep->semantics == IA64_DVS_NONE
10483 || (chkind = depends_on (rs->depind, idesc)) == -1)
10485 ++i;
10486 continue;
10489 note = NOTE (opdeps->chks[chkind]);
10491 /* Check this resource against each execution path seen thus far. */
10492 for (path = 0; path <= md.path; path++)
10494 int matchtype;
10496 /* If the dependency wasn't on the path being checked, ignore it. */
10497 if (rs->path < path)
10498 continue;
10500 /* If the QP for this insn implies a QP which has branched, don't
10501 bother checking. Ed. NOTE: I don't think this check is terribly
10502 useful; what's the point of generating code which will only be
10503 reached if its QP is zero?
10504 This code was specifically inserted to handle the following code,
10505 based on notes from Intel's DV checking code, where p1 implies p2.
10507 mov r4 = 2
10508 (p2) br.cond L
10509 (p1) mov r4 = 7
10511 if (CURR_SLOT.qp_regno != 0)
10513 int skip = 0;
10514 int implies;
10515 for (implies = 0; implies < qp_implieslen; implies++)
10517 if (qp_implies[implies].path >= path
10518 && qp_implies[implies].p1 == CURR_SLOT.qp_regno
10519 && qp_implies[implies].p2_branched)
10521 skip = 1;
10522 break;
10525 if (skip)
10526 continue;
10529 if ((matchtype = resources_match (rs, idesc, note,
10530 CURR_SLOT.qp_regno, path)) != 0)
10532 char msg[1024];
10533 char pathmsg[256] = "";
10534 char indexmsg[256] = "";
10535 int certain = (matchtype == 1 && CURR_SLOT.qp_regno == 0);
10537 if (path != 0)
10538 sprintf (pathmsg, " when entry is at label '%s'",
10539 md.entry_labels[path - 1]);
10540 if (matchtype == 1 && rs->index >= 0)
10541 sprintf (indexmsg, ", specific resource number is %d",
10542 rs->index);
10543 sprintf (msg, "Use of '%s' %s %s dependency '%s' (%s)%s%s",
10544 idesc->name,
10545 (certain ? "violates" : "may violate"),
10546 dv_mode[dep->mode], dep->name,
10547 dv_sem[dep->semantics],
10548 pathmsg, indexmsg);
10550 if (md.explicit_mode)
10552 as_warn ("%s", msg);
10553 if (path < md.path)
10554 as_warn (_("Only the first path encountering the conflict "
10555 "is reported"));
10556 as_warn_where (rs->file, rs->line,
10557 _("This is the location of the "
10558 "conflicting usage"));
10559 /* Don't bother checking other paths, to avoid duplicating
10560 the same warning */
10561 break;
10563 else
10565 if (md.debug_dv)
10566 fprintf (stderr, "%s @ %s:%d\n", msg, rs->file, rs->line);
10568 remove_marked_resource (rs);
10570 /* since the set of dependencies has changed, start over */
10571 /* FIXME -- since we're removing dvs as we go, we
10572 probably don't really need to start over... */
10573 start_over = 1;
10574 break;
10578 if (start_over)
10579 i = 0;
10580 else
10581 ++i;
10585 /* Register new dependencies based on the given opcode. */
10587 static void
10588 mark_resources (idesc)
10589 struct ia64_opcode *idesc;
10591 int i;
10592 const struct ia64_opcode_dependency *opdeps = idesc->dependencies;
10593 int add_only_qp_reads = 0;
10595 /* A conditional branch only uses its resources if it is taken; if it is
10596 taken, we stop following that path. The other branch types effectively
10597 *always* write their resources. If it's not taken, register only QP
10598 reads. */
10599 if (is_conditional_branch (idesc) || is_interruption_or_rfi (idesc))
10601 add_only_qp_reads = 1;
10604 if (md.debug_dv)
10605 fprintf (stderr, "Registering '%s' resource usage\n", idesc->name);
10607 for (i = 0; i < opdeps->nregs; i++)
10609 const struct ia64_dependency *dep;
10610 struct rsrc specs[MAX_SPECS];
10611 int note;
10612 int path;
10613 int count;
10615 dep = ia64_find_dependency (opdeps->regs[i]);
10616 note = NOTE (opdeps->regs[i]);
10618 if (add_only_qp_reads
10619 && !(dep->mode == IA64_DV_WAR
10620 && (dep->specifier == IA64_RS_PR
10621 || dep->specifier == IA64_RS_PRr
10622 || dep->specifier == IA64_RS_PR63)))
10623 continue;
10625 count = specify_resource (dep, idesc, DV_REG, specs, note, md.path);
10627 while (count-- > 0)
10629 mark_resource (idesc, dep, &specs[count],
10630 DEP (opdeps->regs[i]), md.path);
10633 /* The execution path may affect register values, which may in turn
10634 affect which indirect-access resources are accessed. */
10635 switch (dep->specifier)
10637 default:
10638 break;
10639 case IA64_RS_CPUID:
10640 case IA64_RS_DBR:
10641 case IA64_RS_IBR:
10642 case IA64_RS_MSR:
10643 case IA64_RS_PKR:
10644 case IA64_RS_PMC:
10645 case IA64_RS_PMD:
10646 case IA64_RS_RR:
10647 for (path = 0; path < md.path; path++)
10649 count = specify_resource (dep, idesc, DV_REG, specs, note, path);
10650 while (count-- > 0)
10651 mark_resource (idesc, dep, &specs[count],
10652 DEP (opdeps->regs[i]), path);
10654 break;
10659 /* Remove dependencies when they no longer apply. */
10661 static void
10662 update_dependencies (idesc)
10663 struct ia64_opcode *idesc;
10665 int i;
10667 if (strcmp (idesc->name, "srlz.i") == 0)
10669 instruction_serialization ();
10671 else if (strcmp (idesc->name, "srlz.d") == 0)
10673 data_serialization ();
10675 else if (is_interruption_or_rfi (idesc)
10676 || is_taken_branch (idesc))
10678 /* Although technically the taken branch doesn't clear dependencies
10679 which require a srlz.[id], we don't follow the branch; the next
10680 instruction is assumed to start with a clean slate. */
10681 regdepslen = 0;
10682 md.path = 0;
10684 else if (is_conditional_branch (idesc)
10685 && CURR_SLOT.qp_regno != 0)
10687 int is_call = strstr (idesc->name, ".call") != NULL;
10689 for (i = 0; i < qp_implieslen; i++)
10691 /* If the conditional branch's predicate is implied by the predicate
10692 in an existing dependency, remove that dependency. */
10693 if (qp_implies[i].p2 == CURR_SLOT.qp_regno)
10695 int depind = 0;
10696 /* Note that this implied predicate takes a branch so that if
10697 a later insn generates a DV but its predicate implies this
10698 one, we can avoid the false DV warning. */
10699 qp_implies[i].p2_branched = 1;
10700 while (depind < regdepslen)
10702 if (regdeps[depind].qp_regno == qp_implies[i].p1)
10704 print_dependency ("Removing", depind);
10705 regdeps[depind] = regdeps[--regdepslen];
10707 else
10708 ++depind;
10712 /* Any marked resources which have this same predicate should be
10713 cleared, provided that the QP hasn't been modified between the
10714 marking instruction and the branch. */
10715 if (is_call)
10717 insn_group_break (0, CURR_SLOT.qp_regno, 1);
10719 else
10721 i = 0;
10722 while (i < regdepslen)
10724 if (regdeps[i].qp_regno == CURR_SLOT.qp_regno
10725 && regdeps[i].link_to_qp_branch
10726 && (regdeps[i].file != CURR_SLOT.src_file
10727 || regdeps[i].line != CURR_SLOT.src_line))
10729 /* Treat like a taken branch */
10730 print_dependency ("Removing", i);
10731 regdeps[i] = regdeps[--regdepslen];
10733 else
10734 ++i;
10740 /* Examine the current instruction for dependency violations. */
10742 static int
10743 check_dv (idesc)
10744 struct ia64_opcode *idesc;
10746 if (md.debug_dv)
10748 fprintf (stderr, "Checking %s for violations (line %d, %d/%d)\n",
10749 idesc->name, CURR_SLOT.src_line,
10750 idesc->dependencies->nchks,
10751 idesc->dependencies->nregs);
10754 /* Look through the list of currently marked resources; if the current
10755 instruction has the dependency in its chks list which uses that resource,
10756 check against the specific resources used. */
10757 check_dependencies (idesc);
10759 /* Look up the instruction's regdeps (RAW writes, WAW writes, and WAR reads),
10760 then add them to the list of marked resources. */
10761 mark_resources (idesc);
10763 /* There are several types of dependency semantics, and each has its own
10764 requirements for being cleared
10766 Instruction serialization (insns separated by interruption, rfi, or
10767 writer + srlz.i + reader, all in separate groups) clears DVS_INSTR.
10769 Data serialization (instruction serialization, or writer + srlz.d +
10770 reader, where writer and srlz.d are in separate groups) clears
10771 DVS_DATA. (This also clears DVS_OTHER, but that is not guaranteed to
10772 always be the case).
10774 Instruction group break (groups separated by stop, taken branch,
10775 interruption or rfi) clears DVS_IMPLIED and DVS_IMPLIEDF.
10777 update_dependencies (idesc);
10779 /* Sometimes, knowing a register value allows us to avoid giving a false DV
10780 warning. Keep track of as many as possible that are useful. */
10781 note_register_values (idesc);
10783 /* We don't need or want this anymore. */
10784 md.mem_offset.hint = 0;
10786 return 0;
10789 /* Translate one line of assembly. Pseudo ops and labels do not show
10790 here. */
10791 void
10792 md_assemble (str)
10793 char *str;
10795 char *saved_input_line_pointer, *mnemonic;
10796 const struct pseudo_opcode *pdesc;
10797 struct ia64_opcode *idesc;
10798 unsigned char qp_regno;
10799 unsigned int flags;
10800 int ch;
10802 saved_input_line_pointer = input_line_pointer;
10803 input_line_pointer = str;
10805 /* extract the opcode (mnemonic): */
10807 mnemonic = input_line_pointer;
10808 ch = get_symbol_end ();
10809 pdesc = (struct pseudo_opcode *) hash_find (md.pseudo_hash, mnemonic);
10810 if (pdesc)
10812 *input_line_pointer = ch;
10813 (*pdesc->handler) (pdesc->arg);
10814 goto done;
10817 /* Find the instruction descriptor matching the arguments. */
10819 idesc = ia64_find_opcode (mnemonic);
10820 *input_line_pointer = ch;
10821 if (!idesc)
10823 as_bad ("Unknown opcode `%s'", mnemonic);
10824 goto done;
10827 idesc = parse_operands (idesc);
10828 if (!idesc)
10829 goto done;
10831 /* Handle the dynamic ops we can handle now: */
10832 if (idesc->type == IA64_TYPE_DYN)
10834 if (strcmp (idesc->name, "add") == 0)
10836 if (CURR_SLOT.opnd[2].X_op == O_register
10837 && CURR_SLOT.opnd[2].X_add_number < 4)
10838 mnemonic = "addl";
10839 else
10840 mnemonic = "adds";
10841 ia64_free_opcode (idesc);
10842 idesc = ia64_find_opcode (mnemonic);
10844 else if (strcmp (idesc->name, "mov") == 0)
10846 enum ia64_opnd opnd1, opnd2;
10847 int rop;
10849 opnd1 = idesc->operands[0];
10850 opnd2 = idesc->operands[1];
10851 if (opnd1 == IA64_OPND_AR3)
10852 rop = 0;
10853 else if (opnd2 == IA64_OPND_AR3)
10854 rop = 1;
10855 else
10856 abort ();
10857 if (CURR_SLOT.opnd[rop].X_op == O_register)
10859 if (ar_is_only_in_integer_unit (CURR_SLOT.opnd[rop].X_add_number))
10860 mnemonic = "mov.i";
10861 else if (ar_is_only_in_memory_unit (CURR_SLOT.opnd[rop].X_add_number))
10862 mnemonic = "mov.m";
10863 else
10864 rop = -1;
10866 else
10867 abort ();
10868 if (rop >= 0)
10870 ia64_free_opcode (idesc);
10871 idesc = ia64_find_opcode (mnemonic);
10872 while (idesc != NULL
10873 && (idesc->operands[0] != opnd1
10874 || idesc->operands[1] != opnd2))
10875 idesc = get_next_opcode (idesc);
10879 else if (strcmp (idesc->name, "mov.i") == 0
10880 || strcmp (idesc->name, "mov.m") == 0)
10882 enum ia64_opnd opnd1, opnd2;
10883 int rop;
10885 opnd1 = idesc->operands[0];
10886 opnd2 = idesc->operands[1];
10887 if (opnd1 == IA64_OPND_AR3)
10888 rop = 0;
10889 else if (opnd2 == IA64_OPND_AR3)
10890 rop = 1;
10891 else
10892 abort ();
10893 if (CURR_SLOT.opnd[rop].X_op == O_register)
10895 char unit = 'a';
10896 if (ar_is_only_in_integer_unit (CURR_SLOT.opnd[rop].X_add_number))
10897 unit = 'i';
10898 else if (ar_is_only_in_memory_unit (CURR_SLOT.opnd[rop].X_add_number))
10899 unit = 'm';
10900 if (unit != 'a' && unit != idesc->name [4])
10901 as_bad ("AR %d can only be accessed by %c-unit",
10902 (int) (CURR_SLOT.opnd[rop].X_add_number - REG_AR),
10903 TOUPPER (unit));
10906 else if (strcmp (idesc->name, "hint.b") == 0)
10908 switch (md.hint_b)
10910 case hint_b_ok:
10911 break;
10912 case hint_b_warning:
10913 as_warn ("hint.b may be treated as nop");
10914 break;
10915 case hint_b_error:
10916 as_bad ("hint.b shouldn't be used");
10917 break;
10921 qp_regno = 0;
10922 if (md.qp.X_op == O_register)
10924 qp_regno = md.qp.X_add_number - REG_P;
10925 md.qp.X_op = O_absent;
10928 flags = idesc->flags;
10930 if ((flags & IA64_OPCODE_FIRST) != 0)
10932 /* The alignment frag has to end with a stop bit only if the
10933 next instruction after the alignment directive has to be
10934 the first instruction in an instruction group. */
10935 if (align_frag)
10937 while (align_frag->fr_type != rs_align_code)
10939 align_frag = align_frag->fr_next;
10940 if (!align_frag)
10941 break;
10943 /* align_frag can be NULL if there are directives in
10944 between. */
10945 if (align_frag && align_frag->fr_next == frag_now)
10946 align_frag->tc_frag_data = 1;
10949 insn_group_break (1, 0, 0);
10951 align_frag = NULL;
10953 if ((flags & IA64_OPCODE_NO_PRED) != 0 && qp_regno != 0)
10955 as_bad ("`%s' cannot be predicated", idesc->name);
10956 goto done;
10959 /* Build the instruction. */
10960 CURR_SLOT.qp_regno = qp_regno;
10961 CURR_SLOT.idesc = idesc;
10962 as_where (&CURR_SLOT.src_file, &CURR_SLOT.src_line);
10963 dwarf2_where (&CURR_SLOT.debug_line);
10965 /* Add unwind entries, if there are any. */
10966 if (unwind.current_entry)
10968 CURR_SLOT.unwind_record = unwind.current_entry;
10969 unwind.current_entry = NULL;
10971 if (unwind.pending_saves)
10973 if (unwind.pending_saves->next)
10975 /* Attach the next pending save to the next slot so that its
10976 slot number will get set correctly. */
10977 add_unwind_entry (unwind.pending_saves->next, NOT_A_CHAR);
10978 unwind.pending_saves = &unwind.pending_saves->next->r.record.p;
10980 else
10981 unwind.pending_saves = NULL;
10983 if (unwind.proc_pending.sym && S_IS_DEFINED (unwind.proc_pending.sym))
10984 unwind.insn = 1;
10986 /* Check for dependency violations. */
10987 if (md.detect_dv)
10988 check_dv (idesc);
10990 md.curr_slot = (md.curr_slot + 1) % NUM_SLOTS;
10991 if (++md.num_slots_in_use >= NUM_SLOTS)
10992 emit_one_bundle ();
10994 if ((flags & IA64_OPCODE_LAST) != 0)
10995 insn_group_break (1, 0, 0);
10997 md.last_text_seg = now_seg;
10999 done:
11000 input_line_pointer = saved_input_line_pointer;
11003 /* Called when symbol NAME cannot be found in the symbol table.
11004 Should be used for dynamic valued symbols only. */
11006 symbolS *
11007 md_undefined_symbol (name)
11008 char *name ATTRIBUTE_UNUSED;
11010 return 0;
11013 /* Called for any expression that can not be recognized. When the
11014 function is called, `input_line_pointer' will point to the start of
11015 the expression. */
11017 void
11018 md_operand (e)
11019 expressionS *e;
11021 switch (*input_line_pointer)
11023 case '[':
11024 ++input_line_pointer;
11025 expression_and_evaluate (e);
11026 if (*input_line_pointer != ']')
11028 as_bad ("Closing bracket missing");
11029 goto err;
11031 else
11033 if (e->X_op != O_register)
11034 as_bad ("Register expected as index");
11036 ++input_line_pointer;
11037 e->X_op = O_index;
11039 break;
11041 default:
11042 break;
11044 return;
11046 err:
11047 ignore_rest_of_line ();
11050 /* Return 1 if it's OK to adjust a reloc by replacing the symbol with
11051 a section symbol plus some offset. For relocs involving @fptr(),
11052 directives we don't want such adjustments since we need to have the
11053 original symbol's name in the reloc. */
11055 ia64_fix_adjustable (fix)
11056 fixS *fix;
11058 /* Prevent all adjustments to global symbols */
11059 if (S_IS_EXTERNAL (fix->fx_addsy) || S_IS_WEAK (fix->fx_addsy))
11060 return 0;
11062 switch (fix->fx_r_type)
11064 case BFD_RELOC_IA64_FPTR64I:
11065 case BFD_RELOC_IA64_FPTR32MSB:
11066 case BFD_RELOC_IA64_FPTR32LSB:
11067 case BFD_RELOC_IA64_FPTR64MSB:
11068 case BFD_RELOC_IA64_FPTR64LSB:
11069 case BFD_RELOC_IA64_LTOFF_FPTR22:
11070 case BFD_RELOC_IA64_LTOFF_FPTR64I:
11071 return 0;
11072 default:
11073 break;
11076 return 1;
11080 ia64_force_relocation (fix)
11081 fixS *fix;
11083 switch (fix->fx_r_type)
11085 case BFD_RELOC_IA64_FPTR64I:
11086 case BFD_RELOC_IA64_FPTR32MSB:
11087 case BFD_RELOC_IA64_FPTR32LSB:
11088 case BFD_RELOC_IA64_FPTR64MSB:
11089 case BFD_RELOC_IA64_FPTR64LSB:
11091 case BFD_RELOC_IA64_LTOFF22:
11092 case BFD_RELOC_IA64_LTOFF64I:
11093 case BFD_RELOC_IA64_LTOFF_FPTR22:
11094 case BFD_RELOC_IA64_LTOFF_FPTR64I:
11095 case BFD_RELOC_IA64_PLTOFF22:
11096 case BFD_RELOC_IA64_PLTOFF64I:
11097 case BFD_RELOC_IA64_PLTOFF64MSB:
11098 case BFD_RELOC_IA64_PLTOFF64LSB:
11100 case BFD_RELOC_IA64_LTOFF22X:
11101 case BFD_RELOC_IA64_LDXMOV:
11102 return 1;
11104 default:
11105 break;
11108 return generic_force_reloc (fix);
11111 /* Decide from what point a pc-relative relocation is relative to,
11112 relative to the pc-relative fixup. Er, relatively speaking. */
11113 long
11114 ia64_pcrel_from_section (fix, sec)
11115 fixS *fix;
11116 segT sec;
11118 unsigned long off = fix->fx_frag->fr_address + fix->fx_where;
11120 if (bfd_get_section_flags (stdoutput, sec) & SEC_CODE)
11121 off &= ~0xfUL;
11123 return off;
11127 /* Used to emit section-relative relocs for the dwarf2 debug data. */
11128 void
11129 ia64_dwarf2_emit_offset (symbolS *symbol, unsigned int size)
11131 expressionS expr;
11133 expr.X_op = O_pseudo_fixup;
11134 expr.X_op_symbol = pseudo_func[FUNC_SEC_RELATIVE].u.sym;
11135 expr.X_add_number = 0;
11136 expr.X_add_symbol = symbol;
11137 emit_expr (&expr, size);
11140 /* This is called whenever some data item (not an instruction) needs a
11141 fixup. We pick the right reloc code depending on the byteorder
11142 currently in effect. */
11143 void
11144 ia64_cons_fix_new (f, where, nbytes, exp)
11145 fragS *f;
11146 int where;
11147 int nbytes;
11148 expressionS *exp;
11150 bfd_reloc_code_real_type code;
11151 fixS *fix;
11153 switch (nbytes)
11155 /* There are no reloc for 8 and 16 bit quantities, but we allow
11156 them here since they will work fine as long as the expression
11157 is fully defined at the end of the pass over the source file. */
11158 case 1: code = BFD_RELOC_8; break;
11159 case 2: code = BFD_RELOC_16; break;
11160 case 4:
11161 if (target_big_endian)
11162 code = BFD_RELOC_IA64_DIR32MSB;
11163 else
11164 code = BFD_RELOC_IA64_DIR32LSB;
11165 break;
11167 case 8:
11168 /* In 32-bit mode, data8 could mean function descriptors too. */
11169 if (exp->X_op == O_pseudo_fixup
11170 && exp->X_op_symbol
11171 && S_GET_VALUE (exp->X_op_symbol) == FUNC_IPLT_RELOC
11172 && !(md.flags & EF_IA_64_ABI64))
11174 if (target_big_endian)
11175 code = BFD_RELOC_IA64_IPLTMSB;
11176 else
11177 code = BFD_RELOC_IA64_IPLTLSB;
11178 exp->X_op = O_symbol;
11179 break;
11181 else
11183 if (target_big_endian)
11184 code = BFD_RELOC_IA64_DIR64MSB;
11185 else
11186 code = BFD_RELOC_IA64_DIR64LSB;
11187 break;
11190 case 16:
11191 if (exp->X_op == O_pseudo_fixup
11192 && exp->X_op_symbol
11193 && S_GET_VALUE (exp->X_op_symbol) == FUNC_IPLT_RELOC)
11195 if (target_big_endian)
11196 code = BFD_RELOC_IA64_IPLTMSB;
11197 else
11198 code = BFD_RELOC_IA64_IPLTLSB;
11199 exp->X_op = O_symbol;
11200 break;
11202 /* FALLTHRU */
11204 default:
11205 as_bad ("Unsupported fixup size %d", nbytes);
11206 ignore_rest_of_line ();
11207 return;
11210 if (exp->X_op == O_pseudo_fixup)
11212 exp->X_op = O_symbol;
11213 code = ia64_gen_real_reloc_type (exp->X_op_symbol, code);
11214 /* ??? If code unchanged, unsupported. */
11217 fix = fix_new_exp (f, where, nbytes, exp, 0, code);
11218 /* We need to store the byte order in effect in case we're going
11219 to fix an 8 or 16 bit relocation (for which there no real
11220 relocs available). See md_apply_fix(). */
11221 fix->tc_fix_data.bigendian = target_big_endian;
11224 /* Return the actual relocation we wish to associate with the pseudo
11225 reloc described by SYM and R_TYPE. SYM should be one of the
11226 symbols in the pseudo_func array, or NULL. */
11228 static bfd_reloc_code_real_type
11229 ia64_gen_real_reloc_type (sym, r_type)
11230 struct symbol *sym;
11231 bfd_reloc_code_real_type r_type;
11233 bfd_reloc_code_real_type new = 0;
11234 const char *type = NULL, *suffix = "";
11236 if (sym == NULL)
11238 return r_type;
11241 switch (S_GET_VALUE (sym))
11243 case FUNC_FPTR_RELATIVE:
11244 switch (r_type)
11246 case BFD_RELOC_IA64_IMM64: new = BFD_RELOC_IA64_FPTR64I; break;
11247 case BFD_RELOC_IA64_DIR32MSB: new = BFD_RELOC_IA64_FPTR32MSB; break;
11248 case BFD_RELOC_IA64_DIR32LSB: new = BFD_RELOC_IA64_FPTR32LSB; break;
11249 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_FPTR64MSB; break;
11250 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_FPTR64LSB; break;
11251 default: type = "FPTR"; break;
11253 break;
11255 case FUNC_GP_RELATIVE:
11256 switch (r_type)
11258 case BFD_RELOC_IA64_IMM22: new = BFD_RELOC_IA64_GPREL22; break;
11259 case BFD_RELOC_IA64_IMM64: new = BFD_RELOC_IA64_GPREL64I; break;
11260 case BFD_RELOC_IA64_DIR32MSB: new = BFD_RELOC_IA64_GPREL32MSB; break;
11261 case BFD_RELOC_IA64_DIR32LSB: new = BFD_RELOC_IA64_GPREL32LSB; break;
11262 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_GPREL64MSB; break;
11263 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_GPREL64LSB; break;
11264 default: type = "GPREL"; break;
11266 break;
11268 case FUNC_LT_RELATIVE:
11269 switch (r_type)
11271 case BFD_RELOC_IA64_IMM22: new = BFD_RELOC_IA64_LTOFF22; break;
11272 case BFD_RELOC_IA64_IMM64: new = BFD_RELOC_IA64_LTOFF64I; break;
11273 default: type = "LTOFF"; break;
11275 break;
11277 case FUNC_LT_RELATIVE_X:
11278 switch (r_type)
11280 case BFD_RELOC_IA64_IMM22: new = BFD_RELOC_IA64_LTOFF22X; break;
11281 default: type = "LTOFF"; suffix = "X"; break;
11283 break;
11285 case FUNC_PC_RELATIVE:
11286 switch (r_type)
11288 case BFD_RELOC_IA64_IMM22: new = BFD_RELOC_IA64_PCREL22; break;
11289 case BFD_RELOC_IA64_IMM64: new = BFD_RELOC_IA64_PCREL64I; break;
11290 case BFD_RELOC_IA64_DIR32MSB: new = BFD_RELOC_IA64_PCREL32MSB; break;
11291 case BFD_RELOC_IA64_DIR32LSB: new = BFD_RELOC_IA64_PCREL32LSB; break;
11292 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_PCREL64MSB; break;
11293 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_PCREL64LSB; break;
11294 default: type = "PCREL"; break;
11296 break;
11298 case FUNC_PLT_RELATIVE:
11299 switch (r_type)
11301 case BFD_RELOC_IA64_IMM22: new = BFD_RELOC_IA64_PLTOFF22; break;
11302 case BFD_RELOC_IA64_IMM64: new = BFD_RELOC_IA64_PLTOFF64I; break;
11303 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_PLTOFF64MSB;break;
11304 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_PLTOFF64LSB;break;
11305 default: type = "PLTOFF"; break;
11307 break;
11309 case FUNC_SEC_RELATIVE:
11310 switch (r_type)
11312 case BFD_RELOC_IA64_DIR32MSB: new = BFD_RELOC_IA64_SECREL32MSB;break;
11313 case BFD_RELOC_IA64_DIR32LSB: new = BFD_RELOC_IA64_SECREL32LSB;break;
11314 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_SECREL64MSB;break;
11315 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_SECREL64LSB;break;
11316 default: type = "SECREL"; break;
11318 break;
11320 case FUNC_SEG_RELATIVE:
11321 switch (r_type)
11323 case BFD_RELOC_IA64_DIR32MSB: new = BFD_RELOC_IA64_SEGREL32MSB;break;
11324 case BFD_RELOC_IA64_DIR32LSB: new = BFD_RELOC_IA64_SEGREL32LSB;break;
11325 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_SEGREL64MSB;break;
11326 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_SEGREL64LSB;break;
11327 default: type = "SEGREL"; break;
11329 break;
11331 case FUNC_LTV_RELATIVE:
11332 switch (r_type)
11334 case BFD_RELOC_IA64_DIR32MSB: new = BFD_RELOC_IA64_LTV32MSB; break;
11335 case BFD_RELOC_IA64_DIR32LSB: new = BFD_RELOC_IA64_LTV32LSB; break;
11336 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_LTV64MSB; break;
11337 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_LTV64LSB; break;
11338 default: type = "LTV"; break;
11340 break;
11342 case FUNC_LT_FPTR_RELATIVE:
11343 switch (r_type)
11345 case BFD_RELOC_IA64_IMM22:
11346 new = BFD_RELOC_IA64_LTOFF_FPTR22; break;
11347 case BFD_RELOC_IA64_IMM64:
11348 new = BFD_RELOC_IA64_LTOFF_FPTR64I; break;
11349 case BFD_RELOC_IA64_DIR32MSB:
11350 new = BFD_RELOC_IA64_LTOFF_FPTR32MSB; break;
11351 case BFD_RELOC_IA64_DIR32LSB:
11352 new = BFD_RELOC_IA64_LTOFF_FPTR32LSB; break;
11353 case BFD_RELOC_IA64_DIR64MSB:
11354 new = BFD_RELOC_IA64_LTOFF_FPTR64MSB; break;
11355 case BFD_RELOC_IA64_DIR64LSB:
11356 new = BFD_RELOC_IA64_LTOFF_FPTR64LSB; break;
11357 default:
11358 type = "LTOFF_FPTR"; break;
11360 break;
11362 case FUNC_TP_RELATIVE:
11363 switch (r_type)
11365 case BFD_RELOC_IA64_IMM14: new = BFD_RELOC_IA64_TPREL14; break;
11366 case BFD_RELOC_IA64_IMM22: new = BFD_RELOC_IA64_TPREL22; break;
11367 case BFD_RELOC_IA64_IMM64: new = BFD_RELOC_IA64_TPREL64I; break;
11368 case BFD_RELOC_IA64_DIR64MSB: new = BFD_RELOC_IA64_TPREL64MSB; break;
11369 case BFD_RELOC_IA64_DIR64LSB: new = BFD_RELOC_IA64_TPREL64LSB; break;
11370 default: type = "TPREL"; break;
11372 break;
11374 case FUNC_LT_TP_RELATIVE:
11375 switch (r_type)
11377 case BFD_RELOC_IA64_IMM22:
11378 new = BFD_RELOC_IA64_LTOFF_TPREL22; break;
11379 default:
11380 type = "LTOFF_TPREL"; break;
11382 break;
11384 case FUNC_DTP_MODULE:
11385 switch (r_type)
11387 case BFD_RELOC_IA64_DIR64MSB:
11388 new = BFD_RELOC_IA64_DTPMOD64MSB; break;
11389 case BFD_RELOC_IA64_DIR64LSB:
11390 new = BFD_RELOC_IA64_DTPMOD64LSB; break;
11391 default:
11392 type = "DTPMOD"; break;
11394 break;
11396 case FUNC_LT_DTP_MODULE:
11397 switch (r_type)
11399 case BFD_RELOC_IA64_IMM22:
11400 new = BFD_RELOC_IA64_LTOFF_DTPMOD22; break;
11401 default:
11402 type = "LTOFF_DTPMOD"; break;
11404 break;
11406 case FUNC_DTP_RELATIVE:
11407 switch (r_type)
11409 case BFD_RELOC_IA64_DIR32MSB:
11410 new = BFD_RELOC_IA64_DTPREL32MSB; break;
11411 case BFD_RELOC_IA64_DIR32LSB:
11412 new = BFD_RELOC_IA64_DTPREL32LSB; break;
11413 case BFD_RELOC_IA64_DIR64MSB:
11414 new = BFD_RELOC_IA64_DTPREL64MSB; break;
11415 case BFD_RELOC_IA64_DIR64LSB:
11416 new = BFD_RELOC_IA64_DTPREL64LSB; break;
11417 case BFD_RELOC_IA64_IMM14:
11418 new = BFD_RELOC_IA64_DTPREL14; break;
11419 case BFD_RELOC_IA64_IMM22:
11420 new = BFD_RELOC_IA64_DTPREL22; break;
11421 case BFD_RELOC_IA64_IMM64:
11422 new = BFD_RELOC_IA64_DTPREL64I; break;
11423 default:
11424 type = "DTPREL"; break;
11426 break;
11428 case FUNC_LT_DTP_RELATIVE:
11429 switch (r_type)
11431 case BFD_RELOC_IA64_IMM22:
11432 new = BFD_RELOC_IA64_LTOFF_DTPREL22; break;
11433 default:
11434 type = "LTOFF_DTPREL"; break;
11436 break;
11438 case FUNC_IPLT_RELOC:
11439 switch (r_type)
11441 case BFD_RELOC_IA64_IPLTMSB: return r_type;
11442 case BFD_RELOC_IA64_IPLTLSB: return r_type;
11443 default: type = "IPLT"; break;
11445 break;
11447 default:
11448 abort ();
11451 if (new)
11452 return new;
11453 else
11455 int width;
11457 if (!type)
11458 abort ();
11459 switch (r_type)
11461 case BFD_RELOC_IA64_DIR32MSB: width = 32; suffix = "MSB"; break;
11462 case BFD_RELOC_IA64_DIR32LSB: width = 32; suffix = "LSB"; break;
11463 case BFD_RELOC_IA64_DIR64MSB: width = 64; suffix = "MSB"; break;
11464 case BFD_RELOC_IA64_DIR64LSB: width = 64; suffix = "LSB"; break;
11465 case BFD_RELOC_UNUSED: width = 13; break;
11466 case BFD_RELOC_IA64_IMM14: width = 14; break;
11467 case BFD_RELOC_IA64_IMM22: width = 22; break;
11468 case BFD_RELOC_IA64_IMM64: width = 64; suffix = "I"; break;
11469 default: abort ();
11472 /* This should be an error, but since previously there wasn't any
11473 diagnostic here, dont't make it fail because of this for now. */
11474 as_warn ("Cannot express %s%d%s relocation", type, width, suffix);
11475 return r_type;
11479 /* Here is where generate the appropriate reloc for pseudo relocation
11480 functions. */
11481 void
11482 ia64_validate_fix (fix)
11483 fixS *fix;
11485 switch (fix->fx_r_type)
11487 case BFD_RELOC_IA64_FPTR64I:
11488 case BFD_RELOC_IA64_FPTR32MSB:
11489 case BFD_RELOC_IA64_FPTR64LSB:
11490 case BFD_RELOC_IA64_LTOFF_FPTR22:
11491 case BFD_RELOC_IA64_LTOFF_FPTR64I:
11492 if (fix->fx_offset != 0)
11493 as_bad_where (fix->fx_file, fix->fx_line,
11494 "No addend allowed in @fptr() relocation");
11495 break;
11496 default:
11497 break;
11501 static void
11502 fix_insn (fix, odesc, value)
11503 fixS *fix;
11504 const struct ia64_operand *odesc;
11505 valueT value;
11507 bfd_vma insn[3], t0, t1, control_bits;
11508 const char *err;
11509 char *fixpos;
11510 long slot;
11512 slot = fix->fx_where & 0x3;
11513 fixpos = fix->fx_frag->fr_literal + (fix->fx_where - slot);
11515 /* Bundles are always in little-endian byte order */
11516 t0 = bfd_getl64 (fixpos);
11517 t1 = bfd_getl64 (fixpos + 8);
11518 control_bits = t0 & 0x1f;
11519 insn[0] = (t0 >> 5) & 0x1ffffffffffLL;
11520 insn[1] = ((t0 >> 46) & 0x3ffff) | ((t1 & 0x7fffff) << 18);
11521 insn[2] = (t1 >> 23) & 0x1ffffffffffLL;
11523 err = NULL;
11524 if (odesc - elf64_ia64_operands == IA64_OPND_IMMU64)
11526 insn[1] = (value >> 22) & 0x1ffffffffffLL;
11527 insn[2] |= (((value & 0x7f) << 13)
11528 | (((value >> 7) & 0x1ff) << 27)
11529 | (((value >> 16) & 0x1f) << 22)
11530 | (((value >> 21) & 0x1) << 21)
11531 | (((value >> 63) & 0x1) << 36));
11533 else if (odesc - elf64_ia64_operands == IA64_OPND_IMMU62)
11535 if (value & ~0x3fffffffffffffffULL)
11536 err = "integer operand out of range";
11537 insn[1] = (value >> 21) & 0x1ffffffffffLL;
11538 insn[2] |= (((value & 0xfffff) << 6) | (((value >> 20) & 0x1) << 36));
11540 else if (odesc - elf64_ia64_operands == IA64_OPND_TGT64)
11542 value >>= 4;
11543 insn[1] = ((value >> 20) & 0x7fffffffffLL) << 2;
11544 insn[2] |= ((((value >> 59) & 0x1) << 36)
11545 | (((value >> 0) & 0xfffff) << 13));
11547 else
11548 err = (*odesc->insert) (odesc, value, insn + slot);
11550 if (err)
11551 as_bad_where (fix->fx_file, fix->fx_line, err);
11553 t0 = control_bits | (insn[0] << 5) | (insn[1] << 46);
11554 t1 = ((insn[1] >> 18) & 0x7fffff) | (insn[2] << 23);
11555 number_to_chars_littleendian (fixpos + 0, t0, 8);
11556 number_to_chars_littleendian (fixpos + 8, t1, 8);
11559 /* Attempt to simplify or even eliminate a fixup. The return value is
11560 ignored; perhaps it was once meaningful, but now it is historical.
11561 To indicate that a fixup has been eliminated, set FIXP->FX_DONE.
11563 If fixp->fx_addsy is non-NULL, we'll have to generate a reloc entry
11564 (if possible). */
11566 void
11567 md_apply_fix (fix, valP, seg)
11568 fixS *fix;
11569 valueT *valP;
11570 segT seg ATTRIBUTE_UNUSED;
11572 char *fixpos;
11573 valueT value = *valP;
11575 fixpos = fix->fx_frag->fr_literal + fix->fx_where;
11577 if (fix->fx_pcrel)
11579 switch (fix->fx_r_type)
11581 case BFD_RELOC_IA64_PCREL21B: break;
11582 case BFD_RELOC_IA64_PCREL21BI: break;
11583 case BFD_RELOC_IA64_PCREL21F: break;
11584 case BFD_RELOC_IA64_PCREL21M: break;
11585 case BFD_RELOC_IA64_PCREL60B: break;
11586 case BFD_RELOC_IA64_PCREL22: break;
11587 case BFD_RELOC_IA64_PCREL64I: break;
11588 case BFD_RELOC_IA64_PCREL32MSB: break;
11589 case BFD_RELOC_IA64_PCREL32LSB: break;
11590 case BFD_RELOC_IA64_PCREL64MSB: break;
11591 case BFD_RELOC_IA64_PCREL64LSB: break;
11592 default:
11593 fix->fx_r_type = ia64_gen_real_reloc_type (pseudo_func[FUNC_PC_RELATIVE].u.sym,
11594 fix->fx_r_type);
11595 break;
11598 if (fix->fx_addsy)
11600 switch (fix->fx_r_type)
11602 case BFD_RELOC_UNUSED:
11603 /* This must be a TAG13 or TAG13b operand. There are no external
11604 relocs defined for them, so we must give an error. */
11605 as_bad_where (fix->fx_file, fix->fx_line,
11606 "%s must have a constant value",
11607 elf64_ia64_operands[fix->tc_fix_data.opnd].desc);
11608 fix->fx_done = 1;
11609 return;
11611 case BFD_RELOC_IA64_TPREL14:
11612 case BFD_RELOC_IA64_TPREL22:
11613 case BFD_RELOC_IA64_TPREL64I:
11614 case BFD_RELOC_IA64_LTOFF_TPREL22:
11615 case BFD_RELOC_IA64_LTOFF_DTPMOD22:
11616 case BFD_RELOC_IA64_DTPREL14:
11617 case BFD_RELOC_IA64_DTPREL22:
11618 case BFD_RELOC_IA64_DTPREL64I:
11619 case BFD_RELOC_IA64_LTOFF_DTPREL22:
11620 S_SET_THREAD_LOCAL (fix->fx_addsy);
11621 break;
11623 default:
11624 break;
11627 else if (fix->tc_fix_data.opnd == IA64_OPND_NIL)
11629 if (fix->tc_fix_data.bigendian)
11630 number_to_chars_bigendian (fixpos, value, fix->fx_size);
11631 else
11632 number_to_chars_littleendian (fixpos, value, fix->fx_size);
11633 fix->fx_done = 1;
11635 else
11637 fix_insn (fix, elf64_ia64_operands + fix->tc_fix_data.opnd, value);
11638 fix->fx_done = 1;
11642 /* Generate the BFD reloc to be stuck in the object file from the
11643 fixup used internally in the assembler. */
11645 arelent *
11646 tc_gen_reloc (sec, fixp)
11647 asection *sec ATTRIBUTE_UNUSED;
11648 fixS *fixp;
11650 arelent *reloc;
11652 reloc = xmalloc (sizeof (*reloc));
11653 reloc->sym_ptr_ptr = (asymbol **) xmalloc (sizeof (asymbol *));
11654 *reloc->sym_ptr_ptr = symbol_get_bfdsym (fixp->fx_addsy);
11655 reloc->address = fixp->fx_frag->fr_address + fixp->fx_where;
11656 reloc->addend = fixp->fx_offset;
11657 reloc->howto = bfd_reloc_type_lookup (stdoutput, fixp->fx_r_type);
11659 if (!reloc->howto)
11661 as_bad_where (fixp->fx_file, fixp->fx_line,
11662 "Cannot represent %s relocation in object file",
11663 bfd_get_reloc_code_name (fixp->fx_r_type));
11665 return reloc;
11668 /* Turn a string in input_line_pointer into a floating point constant
11669 of type TYPE, and store the appropriate bytes in *LIT. The number
11670 of LITTLENUMS emitted is stored in *SIZE. An error message is
11671 returned, or NULL on OK. */
11673 #define MAX_LITTLENUMS 5
11675 char *
11676 md_atof (type, lit, size)
11677 int type;
11678 char *lit;
11679 int *size;
11681 LITTLENUM_TYPE words[MAX_LITTLENUMS];
11682 char *t;
11683 int prec;
11685 switch (type)
11687 /* IEEE floats */
11688 case 'f':
11689 case 'F':
11690 case 's':
11691 case 'S':
11692 prec = 2;
11693 break;
11695 case 'd':
11696 case 'D':
11697 case 'r':
11698 case 'R':
11699 prec = 4;
11700 break;
11702 case 'x':
11703 case 'X':
11704 case 'p':
11705 case 'P':
11706 prec = 5;
11707 break;
11709 default:
11710 *size = 0;
11711 return "Bad call to MD_ATOF()";
11713 t = atof_ieee (input_line_pointer, type, words);
11714 if (t)
11715 input_line_pointer = t;
11717 (*ia64_float_to_chars) (lit, words, prec);
11719 if (type == 'X')
11721 /* It is 10 byte floating point with 6 byte padding. */
11722 memset (&lit [10], 0, 6);
11723 *size = 8 * sizeof (LITTLENUM_TYPE);
11725 else
11726 *size = prec * sizeof (LITTLENUM_TYPE);
11728 return 0;
11731 /* Handle ia64 specific semantics of the align directive. */
11733 void
11734 ia64_md_do_align (n, fill, len, max)
11735 int n ATTRIBUTE_UNUSED;
11736 const char *fill ATTRIBUTE_UNUSED;
11737 int len ATTRIBUTE_UNUSED;
11738 int max ATTRIBUTE_UNUSED;
11740 if (subseg_text_p (now_seg))
11741 ia64_flush_insns ();
11744 /* This is called from HANDLE_ALIGN in write.c. Fill in the contents
11745 of an rs_align_code fragment. */
11747 void
11748 ia64_handle_align (fragp)
11749 fragS *fragp;
11751 int bytes;
11752 char *p;
11753 const unsigned char *nop;
11755 if (fragp->fr_type != rs_align_code)
11756 return;
11758 /* Check if this frag has to end with a stop bit. */
11759 nop = fragp->tc_frag_data ? le_nop_stop : le_nop;
11761 bytes = fragp->fr_next->fr_address - fragp->fr_address - fragp->fr_fix;
11762 p = fragp->fr_literal + fragp->fr_fix;
11764 /* If no paddings are needed, we check if we need a stop bit. */
11765 if (!bytes && fragp->tc_frag_data)
11767 if (fragp->fr_fix < 16)
11768 #if 1
11769 /* FIXME: It won't work with
11770 .align 16
11771 alloc r32=ar.pfs,1,2,4,0
11774 #else
11775 as_bad_where (fragp->fr_file, fragp->fr_line,
11776 _("Can't add stop bit to mark end of instruction group"));
11777 #endif
11778 else
11779 /* Bundles are always in little-endian byte order. Make sure
11780 the previous bundle has the stop bit. */
11781 *(p - 16) |= 1;
11784 /* Make sure we are on a 16-byte boundary, in case someone has been
11785 putting data into a text section. */
11786 if (bytes & 15)
11788 int fix = bytes & 15;
11789 memset (p, 0, fix);
11790 p += fix;
11791 bytes -= fix;
11792 fragp->fr_fix += fix;
11795 /* Instruction bundles are always little-endian. */
11796 memcpy (p, nop, 16);
11797 fragp->fr_var = 16;
11800 static void
11801 ia64_float_to_chars_bigendian (char *lit, LITTLENUM_TYPE *words,
11802 int prec)
11804 while (prec--)
11806 number_to_chars_bigendian (lit, (long) (*words++),
11807 sizeof (LITTLENUM_TYPE));
11808 lit += sizeof (LITTLENUM_TYPE);
11812 static void
11813 ia64_float_to_chars_littleendian (char *lit, LITTLENUM_TYPE *words,
11814 int prec)
11816 while (prec--)
11818 number_to_chars_littleendian (lit, (long) (words[prec]),
11819 sizeof (LITTLENUM_TYPE));
11820 lit += sizeof (LITTLENUM_TYPE);
11824 void
11825 ia64_elf_section_change_hook (void)
11827 if (elf_section_type (now_seg) == SHT_IA_64_UNWIND
11828 && elf_linked_to_section (now_seg) == NULL)
11829 elf_linked_to_section (now_seg) = text_section;
11830 dot_byteorder (-1);
11833 /* Check if a label should be made global. */
11834 void
11835 ia64_check_label (symbolS *label)
11837 if (*input_line_pointer == ':')
11839 S_SET_EXTERNAL (label);
11840 input_line_pointer++;
11844 /* Used to remember where .alias and .secalias directives are seen. We
11845 will rename symbol and section names when we are about to output
11846 the relocatable file. */
11847 struct alias
11849 char *file; /* The file where the directive is seen. */
11850 unsigned int line; /* The line number the directive is at. */
11851 const char *name; /* The orignale name of the symbol. */
11854 /* Called for .alias and .secalias directives. If SECTION is 1, it is
11855 .secalias. Otherwise, it is .alias. */
11856 static void
11857 dot_alias (int section)
11859 char *name, *alias;
11860 char delim;
11861 char *end_name;
11862 int len;
11863 const char *error_string;
11864 struct alias *h;
11865 const char *a;
11866 struct hash_control *ahash, *nhash;
11867 const char *kind;
11869 name = input_line_pointer;
11870 delim = get_symbol_end ();
11871 end_name = input_line_pointer;
11872 *end_name = delim;
11874 if (name == end_name)
11876 as_bad (_("expected symbol name"));
11877 ignore_rest_of_line ();
11878 return;
11881 SKIP_WHITESPACE ();
11883 if (*input_line_pointer != ',')
11885 *end_name = 0;
11886 as_bad (_("expected comma after \"%s\""), name);
11887 *end_name = delim;
11888 ignore_rest_of_line ();
11889 return;
11892 input_line_pointer++;
11893 *end_name = 0;
11894 ia64_canonicalize_symbol_name (name);
11896 /* We call demand_copy_C_string to check if alias string is valid.
11897 There should be a closing `"' and no `\0' in the string. */
11898 alias = demand_copy_C_string (&len);
11899 if (alias == NULL)
11901 ignore_rest_of_line ();
11902 return;
11905 /* Make a copy of name string. */
11906 len = strlen (name) + 1;
11907 obstack_grow (&notes, name, len);
11908 name = obstack_finish (&notes);
11910 if (section)
11912 kind = "section";
11913 ahash = secalias_hash;
11914 nhash = secalias_name_hash;
11916 else
11918 kind = "symbol";
11919 ahash = alias_hash;
11920 nhash = alias_name_hash;
11923 /* Check if alias has been used before. */
11924 h = (struct alias *) hash_find (ahash, alias);
11925 if (h)
11927 if (strcmp (h->name, name))
11928 as_bad (_("`%s' is already the alias of %s `%s'"),
11929 alias, kind, h->name);
11930 goto out;
11933 /* Check if name already has an alias. */
11934 a = (const char *) hash_find (nhash, name);
11935 if (a)
11937 if (strcmp (a, alias))
11938 as_bad (_("%s `%s' already has an alias `%s'"), kind, name, a);
11939 goto out;
11942 h = (struct alias *) xmalloc (sizeof (struct alias));
11943 as_where (&h->file, &h->line);
11944 h->name = name;
11946 error_string = hash_jam (ahash, alias, (PTR) h);
11947 if (error_string)
11949 as_fatal (_("inserting \"%s\" into %s alias hash table failed: %s"),
11950 alias, kind, error_string);
11951 goto out;
11954 error_string = hash_jam (nhash, name, (PTR) alias);
11955 if (error_string)
11957 as_fatal (_("inserting \"%s\" into %s name hash table failed: %s"),
11958 alias, kind, error_string);
11959 out:
11960 obstack_free (&notes, name);
11961 obstack_free (&notes, alias);
11964 demand_empty_rest_of_line ();
11967 /* It renames the original symbol name to its alias. */
11968 static void
11969 do_alias (const char *alias, PTR value)
11971 struct alias *h = (struct alias *) value;
11972 symbolS *sym = symbol_find (h->name);
11974 if (sym == NULL)
11975 as_warn_where (h->file, h->line,
11976 _("symbol `%s' aliased to `%s' is not used"),
11977 h->name, alias);
11978 else
11979 S_SET_NAME (sym, (char *) alias);
11982 /* Called from write_object_file. */
11983 void
11984 ia64_adjust_symtab (void)
11986 hash_traverse (alias_hash, do_alias);
11989 /* It renames the original section name to its alias. */
11990 static void
11991 do_secalias (const char *alias, PTR value)
11993 struct alias *h = (struct alias *) value;
11994 segT sec = bfd_get_section_by_name (stdoutput, h->name);
11996 if (sec == NULL)
11997 as_warn_where (h->file, h->line,
11998 _("section `%s' aliased to `%s' is not used"),
11999 h->name, alias);
12000 else
12001 sec->name = alias;
12004 /* Called from write_object_file. */
12005 void
12006 ia64_frob_file (void)
12008 hash_traverse (secalias_hash, do_secalias);