Merge -r 127928:132243 from trunk
[official-gcc.git] / gcc / config / mmix / mmix.c
blobfa6566b147d74bfdb8b0508d391655f25ee4bf44
1 /* Definitions of target machine for GNU compiler, for MMIX.
2 Copyright (C) 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007
3 Free Software Foundation, Inc.
4 Contributed by Hans-Peter Nilsson (hp@bitrange.com)
6 This file is part of GCC.
8 GCC 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 3, or (at your option)
11 any later version.
13 GCC 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 GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
22 #include "config.h"
23 #include "system.h"
24 #include "coretypes.h"
25 #include "tm.h"
26 #include "rtl.h"
27 #include "regs.h"
28 #include "hard-reg-set.h"
29 #include "hashtab.h"
30 #include "insn-config.h"
31 #include "output.h"
32 #include "flags.h"
33 #include "tree.h"
34 #include "function.h"
35 #include "expr.h"
36 #include "toplev.h"
37 #include "recog.h"
38 #include "ggc.h"
39 #include "dwarf2.h"
40 #include "debug.h"
41 #include "tm_p.h"
42 #include "integrate.h"
43 #include "target.h"
44 #include "target-def.h"
45 #include "real.h"
47 /* First some local helper definitions. */
48 #define MMIX_FIRST_GLOBAL_REGNUM 32
50 /* We'd need a current_function_has_landing_pad. It's marked as such when
51 a nonlocal_goto_receiver is expanded. Not just a C++ thing, but
52 mostly. */
53 #define MMIX_CFUN_HAS_LANDING_PAD (cfun->machine->has_landing_pad != 0)
55 /* We have no means to tell DWARF 2 about the register stack, so we need
56 to store the return address on the stack if an exception can get into
57 this function. FIXME: Narrow condition. Before any whole-function
58 analysis, df_regs_ever_live_p () isn't initialized. We know it's up-to-date
59 after reload_completed; it may contain incorrect information some time
60 before that. Within a RTL sequence (after a call to start_sequence,
61 such as in RTL expanders), leaf_function_p doesn't see all insns
62 (perhaps any insn). But regs_ever_live is up-to-date when
63 leaf_function_p () isn't, so we "or" them together to get accurate
64 information. FIXME: Some tweak to leaf_function_p might be
65 preferable. */
66 #define MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS \
67 (flag_exceptions \
68 && ((reload_completed && df_regs_ever_live_p (MMIX_rJ_REGNUM)) \
69 || !leaf_function_p ()))
71 #define IS_MMIX_EH_RETURN_DATA_REG(REGNO) \
72 (current_function_calls_eh_return \
73 && (EH_RETURN_DATA_REGNO (0) == REGNO \
74 || EH_RETURN_DATA_REGNO (1) == REGNO \
75 || EH_RETURN_DATA_REGNO (2) == REGNO \
76 || EH_RETURN_DATA_REGNO (3) == REGNO))
78 /* For the default ABI, we rename registers at output-time to fill the gap
79 between the (statically partitioned) saved registers and call-clobbered
80 registers. In effect this makes unused call-saved registers to be used
81 as call-clobbered registers. The benefit comes from keeping the number
82 of local registers (value of rL) low, since there's a cost of
83 increasing rL and clearing unused (unset) registers with lower numbers.
84 Don't translate while outputting the prologue. */
85 #define MMIX_OUTPUT_REGNO(N) \
86 (TARGET_ABI_GNU \
87 || (int) (N) < MMIX_RETURN_VALUE_REGNUM \
88 || (int) (N) > MMIX_LAST_STACK_REGISTER_REGNUM \
89 || cfun == NULL \
90 || cfun->machine == NULL \
91 || cfun->machine->in_prologue \
92 ? (N) : ((N) - MMIX_RETURN_VALUE_REGNUM \
93 + cfun->machine->highest_saved_stack_register + 1))
95 /* The %d in "POP %d,0". */
96 #define MMIX_POP_ARGUMENT() \
97 ((! TARGET_ABI_GNU \
98 && current_function_return_rtx != NULL \
99 && ! current_function_returns_struct) \
100 ? (GET_CODE (current_function_return_rtx) == PARALLEL \
101 ? GET_NUM_ELEM (XVEC (current_function_return_rtx, 0)) : 1) \
102 : 0)
104 /* The canonical saved comparison operands for non-cc0 machines, set in
105 the compare expander. */
106 rtx mmix_compare_op0;
107 rtx mmix_compare_op1;
109 /* Declarations of locals. */
111 /* Intermediate for insn output. */
112 static int mmix_output_destination_register;
114 static void mmix_output_shiftvalue_op_from_str
115 (FILE *, const char *, HOST_WIDEST_INT);
116 static void mmix_output_shifted_value (FILE *, HOST_WIDEST_INT);
117 static void mmix_output_condition (FILE *, rtx, int);
118 static HOST_WIDEST_INT mmix_intval (rtx);
119 static void mmix_output_octa (FILE *, HOST_WIDEST_INT, int);
120 static bool mmix_assemble_integer (rtx, unsigned int, int);
121 static struct machine_function *mmix_init_machine_status (void);
122 static void mmix_encode_section_info (tree, rtx, int);
123 static const char *mmix_strip_name_encoding (const char *);
124 static void mmix_emit_sp_add (HOST_WIDE_INT offset);
125 static void mmix_target_asm_function_prologue (FILE *, HOST_WIDE_INT);
126 static void mmix_target_asm_function_end_prologue (FILE *);
127 static void mmix_target_asm_function_epilogue (FILE *, HOST_WIDE_INT);
128 static void mmix_reorg (void);
129 static void mmix_asm_output_mi_thunk
130 (FILE *, tree, HOST_WIDE_INT, HOST_WIDE_INT, tree);
131 static void mmix_setup_incoming_varargs
132 (CUMULATIVE_ARGS *, enum machine_mode, tree, int *, int);
133 static void mmix_file_start (void);
134 static void mmix_file_end (void);
135 static bool mmix_rtx_costs (rtx, int, int, int *);
136 static rtx mmix_struct_value_rtx (tree, int);
137 static bool mmix_pass_by_reference (CUMULATIVE_ARGS *,
138 enum machine_mode, const_tree, bool);
140 /* Target structure macros. Listed by node. See `Using and Porting GCC'
141 for a general description. */
143 /* Node: Function Entry */
145 #undef TARGET_ASM_BYTE_OP
146 #define TARGET_ASM_BYTE_OP NULL
147 #undef TARGET_ASM_ALIGNED_HI_OP
148 #define TARGET_ASM_ALIGNED_HI_OP NULL
149 #undef TARGET_ASM_ALIGNED_SI_OP
150 #define TARGET_ASM_ALIGNED_SI_OP NULL
151 #undef TARGET_ASM_ALIGNED_DI_OP
152 #define TARGET_ASM_ALIGNED_DI_OP NULL
153 #undef TARGET_ASM_INTEGER
154 #define TARGET_ASM_INTEGER mmix_assemble_integer
156 #undef TARGET_ASM_FUNCTION_PROLOGUE
157 #define TARGET_ASM_FUNCTION_PROLOGUE mmix_target_asm_function_prologue
159 #undef TARGET_ASM_FUNCTION_END_PROLOGUE
160 #define TARGET_ASM_FUNCTION_END_PROLOGUE mmix_target_asm_function_end_prologue
162 #undef TARGET_ASM_FUNCTION_EPILOGUE
163 #define TARGET_ASM_FUNCTION_EPILOGUE mmix_target_asm_function_epilogue
165 #undef TARGET_ENCODE_SECTION_INFO
166 #define TARGET_ENCODE_SECTION_INFO mmix_encode_section_info
167 #undef TARGET_STRIP_NAME_ENCODING
168 #define TARGET_STRIP_NAME_ENCODING mmix_strip_name_encoding
170 #undef TARGET_ASM_OUTPUT_MI_THUNK
171 #define TARGET_ASM_OUTPUT_MI_THUNK mmix_asm_output_mi_thunk
172 #undef TARGET_ASM_CAN_OUTPUT_MI_THUNK
173 #define TARGET_ASM_CAN_OUTPUT_MI_THUNK default_can_output_mi_thunk_no_vcall
174 #undef TARGET_ASM_FILE_START
175 #define TARGET_ASM_FILE_START mmix_file_start
176 #undef TARGET_ASM_FILE_START_FILE_DIRECTIVE
177 #define TARGET_ASM_FILE_START_FILE_DIRECTIVE true
178 #undef TARGET_ASM_FILE_END
179 #define TARGET_ASM_FILE_END mmix_file_end
181 #undef TARGET_RTX_COSTS
182 #define TARGET_RTX_COSTS mmix_rtx_costs
183 #undef TARGET_ADDRESS_COST
184 #define TARGET_ADDRESS_COST hook_int_rtx_0
186 #undef TARGET_MACHINE_DEPENDENT_REORG
187 #define TARGET_MACHINE_DEPENDENT_REORG mmix_reorg
189 #undef TARGET_PROMOTE_FUNCTION_ARGS
190 #define TARGET_PROMOTE_FUNCTION_ARGS hook_bool_const_tree_true
191 #if 0
192 /* Apparently not doing TRT if int < register-size. FIXME: Perhaps
193 FUNCTION_VALUE and LIBCALL_VALUE needs tweaking as some ports say. */
194 #undef TARGET_PROMOTE_FUNCTION_RETURN
195 #define TARGET_PROMOTE_FUNCTION_RETURN hook_bool_tree_true
196 #endif
198 #undef TARGET_STRUCT_VALUE_RTX
199 #define TARGET_STRUCT_VALUE_RTX mmix_struct_value_rtx
200 #undef TARGET_SETUP_INCOMING_VARARGS
201 #define TARGET_SETUP_INCOMING_VARARGS mmix_setup_incoming_varargs
202 #undef TARGET_PASS_BY_REFERENCE
203 #define TARGET_PASS_BY_REFERENCE mmix_pass_by_reference
204 #undef TARGET_CALLEE_COPIES
205 #define TARGET_CALLEE_COPIES hook_bool_CUMULATIVE_ARGS_mode_tree_bool_true
206 #undef TARGET_DEFAULT_TARGET_FLAGS
207 #define TARGET_DEFAULT_TARGET_FLAGS TARGET_DEFAULT
209 struct gcc_target targetm = TARGET_INITIALIZER;
211 /* Functions that are expansions for target macros.
212 See Target Macros in `Using and Porting GCC'. */
214 /* OVERRIDE_OPTIONS. */
216 void
217 mmix_override_options (void)
219 /* Should we err or should we warn? Hmm. At least we must neutralize
220 it. For example the wrong kind of case-tables will be generated with
221 PIC; we use absolute address items for mmixal compatibility. FIXME:
222 They could be relative if we just elide them to after all pertinent
223 labels. */
224 if (flag_pic)
226 warning (0, "-f%s not supported: ignored", (flag_pic > 1) ? "PIC" : "pic");
227 flag_pic = 0;
231 /* INIT_EXPANDERS. */
233 void
234 mmix_init_expanders (void)
236 init_machine_status = mmix_init_machine_status;
239 /* Set the per-function data. */
241 static struct machine_function *
242 mmix_init_machine_status (void)
244 return ggc_alloc_cleared (sizeof (struct machine_function));
247 /* DATA_ALIGNMENT.
248 We have trouble getting the address of stuff that is located at other
249 than 32-bit alignments (GETA requirements), so try to give everything
250 at least 32-bit alignment. */
253 mmix_data_alignment (tree type ATTRIBUTE_UNUSED, int basic_align)
255 if (basic_align < 32)
256 return 32;
258 return basic_align;
261 /* CONSTANT_ALIGNMENT. */
264 mmix_constant_alignment (tree constant ATTRIBUTE_UNUSED, int basic_align)
266 if (basic_align < 32)
267 return 32;
269 return basic_align;
272 /* LOCAL_ALIGNMENT. */
275 mmix_local_alignment (tree type ATTRIBUTE_UNUSED, int basic_align)
277 if (basic_align < 32)
278 return 32;
280 return basic_align;
283 /* CONDITIONAL_REGISTER_USAGE. */
285 void
286 mmix_conditional_register_usage (void)
288 int i;
290 if (TARGET_ABI_GNU)
292 static const int gnu_abi_reg_alloc_order[]
293 = MMIX_GNU_ABI_REG_ALLOC_ORDER;
295 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
296 reg_alloc_order[i] = gnu_abi_reg_alloc_order[i];
298 /* Change the default from the mmixware ABI. For the GNU ABI,
299 $15..$30 are call-saved just as $0..$14. There must be one
300 call-clobbered local register for the "hole" that holds the
301 number of saved local registers saved by PUSHJ/PUSHGO during the
302 function call, receiving the return value at return. So best is
303 to use the highest, $31. It's already marked call-clobbered for
304 the mmixware ABI. */
305 for (i = 15; i <= 30; i++)
306 call_used_regs[i] = 0;
308 /* "Unfix" the parameter registers. */
309 for (i = MMIX_RESERVED_GNU_ARG_0_REGNUM;
310 i < MMIX_RESERVED_GNU_ARG_0_REGNUM + MMIX_MAX_ARGS_IN_REGS;
311 i++)
312 fixed_regs[i] = 0;
315 /* Step over the ":" in special register names. */
316 if (! TARGET_TOPLEVEL_SYMBOLS)
317 for (i = 0; i < FIRST_PSEUDO_REGISTER; i++)
318 if (reg_names[i][0] == ':')
319 reg_names[i]++;
322 /* INCOMING_REGNO and OUTGOING_REGNO worker function.
323 Those two macros must only be applied to function argument
324 registers. FIXME: for their current use in gcc, it'd be better
325 with an explicit specific additional FUNCTION_INCOMING_ARG_REGNO_P
326 a'la FUNCTION_ARG / FUNCTION_INCOMING_ARG instead of forcing the
327 target to commit to a fixed mapping and for any unspecified
328 register use. */
331 mmix_opposite_regno (int regno, int incoming)
333 if (!mmix_function_arg_regno_p (regno, incoming))
334 return regno;
336 return
337 regno - (incoming
338 ? MMIX_FIRST_INCOMING_ARG_REGNUM - MMIX_FIRST_ARG_REGNUM
339 : MMIX_FIRST_ARG_REGNUM - MMIX_FIRST_INCOMING_ARG_REGNUM);
342 /* LOCAL_REGNO.
343 All registers that are part of the register stack and that will be
344 saved are local. */
347 mmix_local_regno (int regno)
349 return regno <= MMIX_LAST_STACK_REGISTER_REGNUM && !call_used_regs[regno];
352 /* PREFERRED_RELOAD_CLASS.
353 We need to extend the reload class of REMAINDER_REG and HIMULT_REG. */
355 enum reg_class
356 mmix_preferred_reload_class (rtx x ATTRIBUTE_UNUSED, enum reg_class class)
358 /* FIXME: Revisit. */
359 return GET_CODE (x) == MOD && GET_MODE (x) == DImode
360 ? REMAINDER_REG : class;
363 /* PREFERRED_OUTPUT_RELOAD_CLASS.
364 We need to extend the reload class of REMAINDER_REG and HIMULT_REG. */
366 enum reg_class
367 mmix_preferred_output_reload_class (rtx x ATTRIBUTE_UNUSED,
368 enum reg_class class)
370 /* FIXME: Revisit. */
371 return GET_CODE (x) == MOD && GET_MODE (x) == DImode
372 ? REMAINDER_REG : class;
375 /* SECONDARY_RELOAD_CLASS.
376 We need to reload regs of REMAINDER_REG and HIMULT_REG elsewhere. */
378 enum reg_class
379 mmix_secondary_reload_class (enum reg_class class,
380 enum machine_mode mode ATTRIBUTE_UNUSED,
381 rtx x ATTRIBUTE_UNUSED,
382 int in_p ATTRIBUTE_UNUSED)
384 if (class == REMAINDER_REG
385 || class == HIMULT_REG
386 || class == SYSTEM_REGS)
387 return GENERAL_REGS;
389 return NO_REGS;
392 /* CONST_OK_FOR_LETTER_P. */
395 mmix_const_ok_for_letter_p (HOST_WIDE_INT value, int c)
397 return
398 (c == 'I' ? value >= 0 && value <= 255
399 : c == 'J' ? value >= 0 && value <= 65535
400 : c == 'K' ? value <= 0 && value >= -255
401 : c == 'L' ? mmix_shiftable_wyde_value (value)
402 : c == 'M' ? value == 0
403 : c == 'N' ? mmix_shiftable_wyde_value (~value)
404 : c == 'O' ? (value == 3 || value == 5 || value == 9
405 || value == 17)
406 : 0);
409 /* CONST_DOUBLE_OK_FOR_LETTER_P. */
412 mmix_const_double_ok_for_letter_p (rtx value, int c)
414 return
415 (c == 'G' ? value == CONST0_RTX (GET_MODE (value))
416 : 0);
419 /* EXTRA_CONSTRAINT.
420 We need this since our constants are not always expressible as
421 CONST_INT:s, but rather often as CONST_DOUBLE:s. */
424 mmix_extra_constraint (rtx x, int c, int strict)
426 HOST_WIDEST_INT value;
428 /* When checking for an address, we need to handle strict vs. non-strict
429 register checks. Don't use address_operand, but instead its
430 equivalent (its callee, which it is just a wrapper for),
431 memory_operand_p and the strict-equivalent strict_memory_address_p. */
432 if (c == 'U')
433 return
434 strict
435 ? strict_memory_address_p (Pmode, x)
436 : memory_address_p (Pmode, x);
438 /* R asks whether x is to be loaded with GETA or something else. Right
439 now, only a SYMBOL_REF and LABEL_REF can fit for
440 TARGET_BASE_ADDRESSES.
442 Only constant symbolic addresses apply. With TARGET_BASE_ADDRESSES,
443 we just allow straight LABEL_REF or SYMBOL_REFs with SYMBOL_REF_FLAG
444 set right now; only function addresses and code labels. If we change
445 to let SYMBOL_REF_FLAG be set on other symbols, we have to check
446 inside CONST expressions. When TARGET_BASE_ADDRESSES is not in
447 effect, a "raw" constant check together with mmix_constant_address_p
448 is all that's needed; we want all constant addresses to be loaded
449 with GETA then. */
450 if (c == 'R')
451 return
452 GET_CODE (x) != CONST_INT && GET_CODE (x) != CONST_DOUBLE
453 && mmix_constant_address_p (x)
454 && (! TARGET_BASE_ADDRESSES
455 || (GET_CODE (x) == LABEL_REF
456 || (GET_CODE (x) == SYMBOL_REF && SYMBOL_REF_FLAG (x))));
458 if (GET_CODE (x) != CONST_DOUBLE || GET_MODE (x) != VOIDmode)
459 return 0;
461 value = mmix_intval (x);
463 /* We used to map Q->J, R->K, S->L, T->N, U->O, but we don't have to any
464 more ('U' taken for address_operand, 'R' similarly). Some letters map
465 outside of CONST_INT, though; we still use 'S' and 'T'. */
466 if (c == 'S')
467 return mmix_shiftable_wyde_value (value);
468 else if (c == 'T')
469 return mmix_shiftable_wyde_value (~value);
470 return 0;
473 /* DYNAMIC_CHAIN_ADDRESS. */
476 mmix_dynamic_chain_address (rtx frame)
478 /* FIXME: the frame-pointer is stored at offset -8 from the current
479 frame-pointer. Unfortunately, the caller assumes that a
480 frame-pointer is present for *all* previous frames. There should be
481 a way to say that that cannot be done, like for RETURN_ADDR_RTX. */
482 return plus_constant (frame, -8);
485 /* STARTING_FRAME_OFFSET. */
488 mmix_starting_frame_offset (void)
490 /* The old frame pointer is in the slot below the new one, so
491 FIRST_PARM_OFFSET does not need to depend on whether the
492 frame-pointer is needed or not. We have to adjust for the register
493 stack pointer being located below the saved frame pointer.
494 Similarly, we store the return address on the stack too, for
495 exception handling, and always if we save the register stack pointer. */
496 return
498 + (MMIX_CFUN_HAS_LANDING_PAD
499 ? -16 : (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS ? -8 : 0)));
502 /* RETURN_ADDR_RTX. */
505 mmix_return_addr_rtx (int count, rtx frame ATTRIBUTE_UNUSED)
507 return count == 0
508 ? (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS
509 /* FIXME: Set frame_alias_set on the following. (Why?)
510 See mmix_initial_elimination_offset for the reason we can't use
511 get_hard_reg_initial_val for both. Always using a stack slot
512 and not a register would be suboptimal. */
513 ? validize_mem (gen_rtx_MEM (Pmode, plus_constant (frame_pointer_rtx, -16)))
514 : get_hard_reg_initial_val (Pmode, MMIX_INCOMING_RETURN_ADDRESS_REGNUM))
515 : NULL_RTX;
518 /* SETUP_FRAME_ADDRESSES. */
520 void
521 mmix_setup_frame_addresses (void)
523 /* Nothing needed at the moment. */
526 /* The difference between the (imaginary) frame pointer and the stack
527 pointer. Used to eliminate the frame pointer. */
530 mmix_initial_elimination_offset (int fromreg, int toreg)
532 int regno;
533 int fp_sp_offset
534 = (get_frame_size () + current_function_outgoing_args_size + 7) & ~7;
536 /* There is no actual offset between these two virtual values, but for
537 the frame-pointer, we have the old one in the stack position below
538 it, so the offset for the frame-pointer to the stack-pointer is one
539 octabyte larger. */
540 if (fromreg == MMIX_ARG_POINTER_REGNUM
541 && toreg == MMIX_FRAME_POINTER_REGNUM)
542 return 0;
544 /* The difference is the size of local variables plus the size of
545 outgoing function arguments that would normally be passed as
546 registers but must be passed on stack because we're out of
547 function-argument registers. Only global saved registers are
548 counted; the others go on the register stack.
550 The frame-pointer is counted too if it is what is eliminated, as we
551 need to balance the offset for it from STARTING_FRAME_OFFSET.
553 Also add in the slot for the register stack pointer we save if we
554 have a landing pad.
556 Unfortunately, we can't access $0..$14, from unwinder code easily, so
557 store the return address in a frame slot too. FIXME: Only for
558 non-leaf functions. FIXME: Always with a landing pad, because it's
559 hard to know whether we need the other at the time we know we need
560 the offset for one (and have to state it). It's a kludge until we
561 can express the register stack in the EH frame info.
563 We have to do alignment here; get_frame_size will not return a
564 multiple of STACK_BOUNDARY. FIXME: Add note in manual. */
566 for (regno = MMIX_FIRST_GLOBAL_REGNUM;
567 regno <= 255;
568 regno++)
569 if ((df_regs_ever_live_p (regno) && ! call_used_regs[regno])
570 || IS_MMIX_EH_RETURN_DATA_REG (regno))
571 fp_sp_offset += 8;
573 return fp_sp_offset
574 + (MMIX_CFUN_HAS_LANDING_PAD
575 ? 16 : (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS ? 8 : 0))
576 + (fromreg == MMIX_ARG_POINTER_REGNUM ? 0 : 8);
579 /* Return an rtx for a function argument to go in a register, and 0 for
580 one that must go on stack. */
583 mmix_function_arg (const CUMULATIVE_ARGS *argsp,
584 enum machine_mode mode,
585 tree type,
586 int named ATTRIBUTE_UNUSED,
587 int incoming)
589 /* Last-argument marker. */
590 if (type == void_type_node)
591 return (argsp->regs < MMIX_MAX_ARGS_IN_REGS)
592 ? gen_rtx_REG (mode,
593 (incoming
594 ? MMIX_FIRST_INCOMING_ARG_REGNUM
595 : MMIX_FIRST_ARG_REGNUM) + argsp->regs)
596 : NULL_RTX;
598 return (argsp->regs < MMIX_MAX_ARGS_IN_REGS
599 && !targetm.calls.must_pass_in_stack (mode, type)
600 && (GET_MODE_BITSIZE (mode) <= 64
601 || argsp->lib
602 || TARGET_LIBFUNC))
603 ? gen_rtx_REG (mode,
604 (incoming
605 ? MMIX_FIRST_INCOMING_ARG_REGNUM
606 : MMIX_FIRST_ARG_REGNUM)
607 + argsp->regs)
608 : NULL_RTX;
611 /* Returns nonzero for everything that goes by reference, 0 for
612 everything that goes by value. */
614 static bool
615 mmix_pass_by_reference (CUMULATIVE_ARGS *argsp, enum machine_mode mode,
616 const_tree type, bool named ATTRIBUTE_UNUSED)
618 /* FIXME: Check: I'm not sure the must_pass_in_stack check is
619 necessary. */
620 if (targetm.calls.must_pass_in_stack (mode, type))
621 return true;
623 if (MMIX_FUNCTION_ARG_SIZE (mode, type) > 8
624 && !TARGET_LIBFUNC
625 && (!argsp || !argsp->lib))
626 return true;
628 return false;
631 /* Return nonzero if regno is a register number where a parameter is
632 passed, and 0 otherwise. */
635 mmix_function_arg_regno_p (int regno, int incoming)
637 int first_arg_regnum
638 = incoming ? MMIX_FIRST_INCOMING_ARG_REGNUM : MMIX_FIRST_ARG_REGNUM;
640 return regno >= first_arg_regnum
641 && regno < first_arg_regnum + MMIX_MAX_ARGS_IN_REGS;
644 /* FUNCTION_OUTGOING_VALUE. */
647 mmix_function_outgoing_value (const_tree valtype, const_tree func ATTRIBUTE_UNUSED)
649 enum machine_mode mode = TYPE_MODE (valtype);
650 enum machine_mode cmode;
651 int first_val_regnum = MMIX_OUTGOING_RETURN_VALUE_REGNUM;
652 rtx vec[MMIX_MAX_REGS_FOR_VALUE];
653 int i;
654 int nregs;
656 /* Return values that fit in a register need no special handling.
657 There's no register hole when parameters are passed in global
658 registers. */
659 if (TARGET_ABI_GNU
660 || GET_MODE_BITSIZE (mode) <= BITS_PER_WORD)
661 return
662 gen_rtx_REG (mode, MMIX_OUTGOING_RETURN_VALUE_REGNUM);
664 if (COMPLEX_MODE_P (mode))
665 /* A complex type, made up of components. */
666 cmode = TYPE_MODE (TREE_TYPE (valtype));
667 else
669 /* Of the other larger-than-register modes, we only support
670 scalar mode TImode. (At least, that's the only one that's
671 been rudimentally tested.) Make sure we're alerted for
672 unexpected cases. */
673 if (mode != TImode)
674 sorry ("support for mode %qs", GET_MODE_NAME (mode));
676 /* In any case, we will fill registers to the natural size. */
677 cmode = DImode;
680 nregs = ((GET_MODE_BITSIZE (mode) + BITS_PER_WORD - 1) / BITS_PER_WORD);
682 /* We need to take care of the effect of the register hole on return
683 values of large sizes; the last register will appear as the first
684 register, with the rest shifted. (For complex modes, this is just
685 swapped registers.) */
687 if (nregs > MMIX_MAX_REGS_FOR_VALUE)
688 internal_error ("too large function value type, needs %d registers,\
689 have only %d registers for this", nregs, MMIX_MAX_REGS_FOR_VALUE);
691 /* FIXME: Maybe we should handle structure values like this too
692 (adjusted for BLKmode), perhaps for both ABI:s. */
693 for (i = 0; i < nregs - 1; i++)
694 vec[i]
695 = gen_rtx_EXPR_LIST (VOIDmode,
696 gen_rtx_REG (cmode, first_val_regnum + i),
697 GEN_INT ((i + 1) * BITS_PER_UNIT));
699 vec[nregs - 1]
700 = gen_rtx_EXPR_LIST (VOIDmode,
701 gen_rtx_REG (cmode, first_val_regnum + nregs - 1),
702 const0_rtx);
704 return gen_rtx_PARALLEL (VOIDmode, gen_rtvec_v (nregs, vec));
707 /* FUNCTION_VALUE_REGNO_P. */
710 mmix_function_value_regno_p (int regno)
712 return regno == MMIX_RETURN_VALUE_REGNUM;
715 /* EH_RETURN_DATA_REGNO. */
718 mmix_eh_return_data_regno (int n)
720 if (n >= 0 && n < 4)
721 return MMIX_EH_RETURN_DATA_REGNO_START + n;
723 return INVALID_REGNUM;
726 /* EH_RETURN_STACKADJ_RTX. */
729 mmix_eh_return_stackadj_rtx (void)
731 return gen_rtx_REG (Pmode, MMIX_EH_RETURN_STACKADJ_REGNUM);
734 /* EH_RETURN_HANDLER_RTX. */
737 mmix_eh_return_handler_rtx (void)
739 return gen_rtx_REG (Pmode, MMIX_INCOMING_RETURN_ADDRESS_REGNUM);
742 /* ASM_PREFERRED_EH_DATA_FORMAT. */
745 mmix_asm_preferred_eh_data_format (int code ATTRIBUTE_UNUSED,
746 int global ATTRIBUTE_UNUSED)
748 /* This is the default (was at 2001-07-20). Revisit when needed. */
749 return DW_EH_PE_absptr;
752 /* Make a note that we've seen the beginning of the prologue. This
753 matters to whether we'll translate register numbers as calculated by
754 mmix_reorg. */
756 static void
757 mmix_target_asm_function_prologue (FILE *stream ATTRIBUTE_UNUSED,
758 HOST_WIDE_INT framesize ATTRIBUTE_UNUSED)
760 cfun->machine->in_prologue = 1;
763 /* Make a note that we've seen the end of the prologue. */
765 static void
766 mmix_target_asm_function_end_prologue (FILE *stream ATTRIBUTE_UNUSED)
768 cfun->machine->in_prologue = 0;
771 /* Implement TARGET_MACHINE_DEPENDENT_REORG. No actual rearrangements
772 done here; just virtually by calculating the highest saved stack
773 register number used to modify the register numbers at output time. */
775 static void
776 mmix_reorg (void)
778 int regno;
780 /* We put the number of the highest saved register-file register in a
781 location convenient for the call-patterns to output. Note that we
782 don't tell dwarf2 about these registers, since it can't restore them
783 anyway. */
784 for (regno = MMIX_LAST_STACK_REGISTER_REGNUM;
785 regno >= 0;
786 regno--)
787 if ((df_regs_ever_live_p (regno) && !call_used_regs[regno])
788 || (regno == MMIX_FRAME_POINTER_REGNUM && frame_pointer_needed))
789 break;
791 /* Regardless of whether they're saved (they might be just read), we
792 mustn't include registers that carry parameters. We could scan the
793 insns to see whether they're actually used (and indeed do other less
794 trivial register usage analysis and transformations), but it seems
795 wasteful to optimize for unused parameter registers. As of
796 2002-04-30, df_regs_ever_live_p (n) seems to be set for only-reads too, but
797 that might change. */
798 if (!TARGET_ABI_GNU && regno < current_function_args_info.regs - 1)
800 regno = current_function_args_info.regs - 1;
802 /* We don't want to let this cause us to go over the limit and make
803 incoming parameter registers be misnumbered and treating the last
804 parameter register and incoming return value register call-saved.
805 Stop things at the unmodified scheme. */
806 if (regno > MMIX_RETURN_VALUE_REGNUM - 1)
807 regno = MMIX_RETURN_VALUE_REGNUM - 1;
810 cfun->machine->highest_saved_stack_register = regno;
813 /* TARGET_ASM_FUNCTION_EPILOGUE. */
815 static void
816 mmix_target_asm_function_epilogue (FILE *stream,
817 HOST_WIDE_INT locals_size ATTRIBUTE_UNUSED)
819 /* Emit an \n for readability of the generated assembly. */
820 fputc ('\n', stream);
823 /* TARGET_ASM_OUTPUT_MI_THUNK. */
825 static void
826 mmix_asm_output_mi_thunk (FILE *stream,
827 tree fndecl ATTRIBUTE_UNUSED,
828 HOST_WIDE_INT delta,
829 HOST_WIDE_INT vcall_offset ATTRIBUTE_UNUSED,
830 tree func)
832 /* If you define TARGET_STRUCT_VALUE_RTX that returns 0 (i.e. pass
833 location of structure to return as invisible first argument), you
834 need to tweak this code too. */
835 const char *regname = reg_names[MMIX_FIRST_INCOMING_ARG_REGNUM];
837 if (delta >= 0 && delta < 65536)
838 fprintf (stream, "\tINCL %s,%d\n", regname, (int)delta);
839 else if (delta < 0 && delta >= -255)
840 fprintf (stream, "\tSUBU %s,%s,%d\n", regname, regname, (int)-delta);
841 else
843 mmix_output_register_setting (stream, 255, delta, 1);
844 fprintf (stream, "\tADDU %s,%s,$255\n", regname, regname);
847 fprintf (stream, "\tJMP ");
848 assemble_name (stream, XSTR (XEXP (DECL_RTL (func), 0), 0));
849 fprintf (stream, "\n");
852 /* FUNCTION_PROFILER. */
854 void
855 mmix_function_profiler (FILE *stream ATTRIBUTE_UNUSED,
856 int labelno ATTRIBUTE_UNUSED)
858 sorry ("function_profiler support for MMIX");
861 /* Worker function for TARGET_SETUP_INCOMING_VARARGS. For the moment,
862 let's stick to pushing argument registers on the stack. Later, we
863 can parse all arguments in registers, to improve performance. */
865 static void
866 mmix_setup_incoming_varargs (CUMULATIVE_ARGS *args_so_farp,
867 enum machine_mode mode,
868 tree vartype,
869 int *pretend_sizep,
870 int second_time ATTRIBUTE_UNUSED)
872 /* The last named variable has been handled, but
873 args_so_farp has not been advanced for it. */
874 if (args_so_farp->regs + 1 < MMIX_MAX_ARGS_IN_REGS)
875 *pretend_sizep = (MMIX_MAX_ARGS_IN_REGS - (args_so_farp->regs + 1)) * 8;
877 /* We assume that one argument takes up one register here. That should
878 be true until we start messing with multi-reg parameters. */
879 if ((7 + (MMIX_FUNCTION_ARG_SIZE (mode, vartype))) / 8 != 1)
880 internal_error ("MMIX Internal: Last named vararg would not fit in a register");
883 /* TRAMPOLINE_SIZE. */
884 /* Four 4-byte insns plus two 8-byte values. */
885 int mmix_trampoline_size = 32;
888 /* TRAMPOLINE_TEMPLATE. */
890 void
891 mmix_trampoline_template (FILE *stream)
893 /* Read a value into the static-chain register and jump somewhere. The
894 static chain is stored at offset 16, and the function address is
895 stored at offset 24. */
896 /* FIXME: GCC copies this using *intsize* (tetra), when it should use
897 register size (octa). */
898 fprintf (stream, "\tGETA $255,1F\n\t");
899 fprintf (stream, "LDOU %s,$255,0\n\t",
900 reg_names[MMIX_STATIC_CHAIN_REGNUM]);
901 fprintf (stream, "LDOU $255,$255,8\n\t");
902 fprintf (stream, "GO $255,$255,0\n");
903 fprintf (stream, "1H\tOCTA 0\n\t");
904 fprintf (stream, "OCTA 0\n");
907 /* INITIALIZE_TRAMPOLINE. */
908 /* Set the static chain and function pointer field in the trampoline.
909 We also SYNCID here to be sure (doesn't matter in the simulator, but
910 some day it will). */
912 void
913 mmix_initialize_trampoline (rtx trampaddr, rtx fnaddr, rtx static_chain)
915 emit_move_insn (gen_rtx_MEM (DImode, plus_constant (trampaddr, 16)),
916 static_chain);
917 emit_move_insn (gen_rtx_MEM (DImode,
918 plus_constant (trampaddr, 24)),
919 fnaddr);
920 emit_insn (gen_sync_icache (validize_mem (gen_rtx_MEM (DImode,
921 trampaddr)),
922 GEN_INT (mmix_trampoline_size - 1)));
925 /* We must exclude constant addresses that have an increment that is not a
926 multiple of four bytes because of restrictions of the GETA
927 instruction, unless TARGET_BASE_ADDRESSES. */
930 mmix_constant_address_p (rtx x)
932 RTX_CODE code = GET_CODE (x);
933 int addend = 0;
934 /* When using "base addresses", anything constant goes. */
935 int constant_ok = TARGET_BASE_ADDRESSES != 0;
937 switch (code)
939 case LABEL_REF:
940 case SYMBOL_REF:
941 return 1;
943 case HIGH:
944 /* FIXME: Don't know how to dissect these. Avoid them for now,
945 except we know they're constants. */
946 return constant_ok;
948 case CONST_INT:
949 addend = INTVAL (x);
950 break;
952 case CONST_DOUBLE:
953 if (GET_MODE (x) != VOIDmode)
954 /* Strange that we got here. FIXME: Check if we do. */
955 return constant_ok;
956 addend = CONST_DOUBLE_LOW (x);
957 break;
959 case CONST:
960 /* Note that expressions with arithmetic on forward references don't
961 work in mmixal. People using gcc assembly code with mmixal might
962 need to move arrays and such to before the point of use. */
963 if (GET_CODE (XEXP (x, 0)) == PLUS)
965 rtx x0 = XEXP (XEXP (x, 0), 0);
966 rtx x1 = XEXP (XEXP (x, 0), 1);
968 if ((GET_CODE (x0) == SYMBOL_REF
969 || GET_CODE (x0) == LABEL_REF)
970 && (GET_CODE (x1) == CONST_INT
971 || (GET_CODE (x1) == CONST_DOUBLE
972 && GET_MODE (x1) == VOIDmode)))
973 addend = mmix_intval (x1);
974 else
975 return constant_ok;
977 else
978 return constant_ok;
979 break;
981 default:
982 return 0;
985 return constant_ok || (addend & 3) == 0;
988 /* Return 1 if the address is OK, otherwise 0.
989 Used by GO_IF_LEGITIMATE_ADDRESS. */
992 mmix_legitimate_address (enum machine_mode mode ATTRIBUTE_UNUSED,
993 rtx x,
994 int strict_checking)
996 #define MMIX_REG_OK(X) \
997 ((strict_checking \
998 && (REGNO (X) <= MMIX_LAST_GENERAL_REGISTER \
999 || (reg_renumber[REGNO (X)] > 0 \
1000 && reg_renumber[REGNO (X)] <= MMIX_LAST_GENERAL_REGISTER))) \
1001 || (!strict_checking \
1002 && (REGNO (X) <= MMIX_LAST_GENERAL_REGISTER \
1003 || REGNO (X) >= FIRST_PSEUDO_REGISTER \
1004 || REGNO (X) == ARG_POINTER_REGNUM)))
1006 /* We only accept:
1007 (mem reg)
1008 (mem (plus reg reg))
1009 (mem (plus reg 0..255)).
1010 unless TARGET_BASE_ADDRESSES, in which case we accept all
1011 (mem constant_address) too. */
1014 /* (mem reg) */
1015 if (REG_P (x) && MMIX_REG_OK (x))
1016 return 1;
1018 if (GET_CODE(x) == PLUS)
1020 rtx x1 = XEXP (x, 0);
1021 rtx x2 = XEXP (x, 1);
1023 /* Try swapping the order. FIXME: Do we need this? */
1024 if (! REG_P (x1))
1026 rtx tem = x1;
1027 x1 = x2;
1028 x2 = tem;
1031 /* (mem (plus (reg?) (?))) */
1032 if (!REG_P (x1) || !MMIX_REG_OK (x1))
1033 return TARGET_BASE_ADDRESSES && mmix_constant_address_p (x);
1035 /* (mem (plus (reg) (reg?))) */
1036 if (REG_P (x2) && MMIX_REG_OK (x2))
1037 return 1;
1039 /* (mem (plus (reg) (0..255?))) */
1040 if (GET_CODE (x2) == CONST_INT
1041 && CONST_OK_FOR_LETTER_P (INTVAL (x2), 'I'))
1042 return 1;
1044 return 0;
1047 return TARGET_BASE_ADDRESSES && mmix_constant_address_p (x);
1050 /* LEGITIMATE_CONSTANT_P. */
1053 mmix_legitimate_constant_p (rtx x)
1055 RTX_CODE code = GET_CODE (x);
1057 /* We must allow any number due to the way the cse passes works; if we
1058 do not allow any number here, general_operand will fail, and insns
1059 will fatally fail recognition instead of "softly". */
1060 if (code == CONST_INT || code == CONST_DOUBLE)
1061 return 1;
1063 return CONSTANT_ADDRESS_P (x);
1066 /* SELECT_CC_MODE. */
1068 enum machine_mode
1069 mmix_select_cc_mode (RTX_CODE op, rtx x, rtx y ATTRIBUTE_UNUSED)
1071 /* We use CCmode, CC_UNSmode, CC_FPmode, CC_FPEQmode and CC_FUNmode to
1072 output different compare insns. Note that we do not check the
1073 validity of the comparison here. */
1075 if (GET_MODE_CLASS (GET_MODE (x)) == MODE_FLOAT)
1077 if (op == ORDERED || op == UNORDERED || op == UNGE
1078 || op == UNGT || op == UNLE || op == UNLT)
1079 return CC_FUNmode;
1081 if (op == EQ || op == NE)
1082 return CC_FPEQmode;
1084 return CC_FPmode;
1087 if (op == GTU || op == LTU || op == GEU || op == LEU)
1088 return CC_UNSmode;
1090 return CCmode;
1093 /* REVERSIBLE_CC_MODE. */
1096 mmix_reversible_cc_mode (enum machine_mode mode)
1098 /* That is, all integer and the EQ, NE, ORDERED and UNORDERED float
1099 compares. */
1100 return mode != CC_FPmode;
1103 /* TARGET_RTX_COSTS. */
1105 static bool
1106 mmix_rtx_costs (rtx x ATTRIBUTE_UNUSED,
1107 int code ATTRIBUTE_UNUSED,
1108 int outer_code ATTRIBUTE_UNUSED,
1109 int *total ATTRIBUTE_UNUSED)
1111 /* For the time being, this is just a stub and we'll accept the
1112 generic calculations, until we can do measurements, at least.
1113 Say we did not modify any calculated costs. */
1114 return false;
1117 /* REGISTER_MOVE_COST. */
1120 mmix_register_move_cost (enum machine_mode mode ATTRIBUTE_UNUSED,
1121 enum reg_class from,
1122 enum reg_class to)
1124 return (from == GENERAL_REGS && from == to) ? 2 : 3;
1127 /* Note that we don't have a TEXT_SECTION_ASM_OP, because it has to be a
1128 compile-time constant; it's used in an asm in crtstuff.c, compiled for
1129 the target. */
1131 /* DATA_SECTION_ASM_OP. */
1133 const char *
1134 mmix_data_section_asm_op (void)
1136 return "\t.data ! mmixal:= 8H LOC 9B";
1139 static void
1140 mmix_encode_section_info (tree decl, rtx rtl, int first)
1142 /* Test for an external declaration, and do nothing if it is one. */
1143 if ((TREE_CODE (decl) == VAR_DECL
1144 && (DECL_EXTERNAL (decl) || TREE_PUBLIC (decl)))
1145 || (TREE_CODE (decl) == FUNCTION_DECL && TREE_PUBLIC (decl)))
1147 else if (first && DECL_P (decl))
1149 /* For non-visible declarations, add a "@" prefix, which we skip
1150 when the label is output. If the label does not have this
1151 prefix, a ":" is output if -mtoplevel-symbols.
1153 Note that this does not work for data that is declared extern and
1154 later defined as static. If there's code in between, that code
1155 will refer to the extern declaration, and vice versa. This just
1156 means that when -mtoplevel-symbols is in use, we can just handle
1157 well-behaved ISO-compliant code. */
1159 const char *str = XSTR (XEXP (rtl, 0), 0);
1160 int len = strlen (str);
1161 char *newstr = alloca (len + 2);
1162 newstr[0] = '@';
1163 strcpy (newstr + 1, str);
1164 XSTR (XEXP (rtl, 0), 0) = ggc_alloc_string (newstr, len + 1);
1167 /* Set SYMBOL_REF_FLAG for things that we want to access with GETA. We
1168 may need different options to reach for different things with GETA.
1169 For now, functions and things we know or have been told are constant. */
1170 if (TREE_CODE (decl) == FUNCTION_DECL
1171 || TREE_CONSTANT (decl)
1172 || (TREE_CODE (decl) == VAR_DECL
1173 && TREE_READONLY (decl)
1174 && !TREE_SIDE_EFFECTS (decl)
1175 && (!DECL_INITIAL (decl)
1176 || TREE_CONSTANT (DECL_INITIAL (decl)))))
1177 SYMBOL_REF_FLAG (XEXP (rtl, 0)) = 1;
1180 static const char *
1181 mmix_strip_name_encoding (const char *name)
1183 for (; (*name == '@' || *name == '*'); name++)
1186 return name;
1189 /* TARGET_ASM_FILE_START.
1190 We just emit a little comment for the time being. */
1192 static void
1193 mmix_file_start (void)
1195 default_file_start ();
1197 fputs ("! mmixal:= 8H LOC Data_Section\n", asm_out_file);
1199 /* Make sure each file starts with the text section. */
1200 switch_to_section (text_section);
1203 /* TARGET_ASM_FILE_END. */
1205 static void
1206 mmix_file_end (void)
1208 /* Make sure each file ends with the data section. */
1209 switch_to_section (data_section);
1212 /* ASM_OUTPUT_SOURCE_FILENAME. */
1214 void
1215 mmix_asm_output_source_filename (FILE *stream, const char *name)
1217 fprintf (stream, "# 1 ");
1218 OUTPUT_QUOTED_STRING (stream, name);
1219 fprintf (stream, "\n");
1222 /* OUTPUT_QUOTED_STRING. */
1224 void
1225 mmix_output_quoted_string (FILE *stream, const char *string, int length)
1227 const char * string_end = string + length;
1228 static const char *const unwanted_chars = "\"[]\\";
1230 /* Output "any character except newline and double quote character". We
1231 play it safe and avoid all control characters too. We also do not
1232 want [] as characters, should input be passed through m4 with [] as
1233 quotes. Further, we avoid "\", because the GAS port handles it as a
1234 quoting character. */
1235 while (string < string_end)
1237 if (*string
1238 && (unsigned char) *string < 128
1239 && !ISCNTRL (*string)
1240 && strchr (unwanted_chars, *string) == NULL)
1242 fputc ('"', stream);
1243 while (*string
1244 && (unsigned char) *string < 128
1245 && !ISCNTRL (*string)
1246 && strchr (unwanted_chars, *string) == NULL
1247 && string < string_end)
1249 fputc (*string, stream);
1250 string++;
1252 fputc ('"', stream);
1253 if (string < string_end)
1254 fprintf (stream, ",");
1256 if (string < string_end)
1258 fprintf (stream, "#%x", *string & 255);
1259 string++;
1260 if (string < string_end)
1261 fprintf (stream, ",");
1266 /* Target hook for assembling integer objects. Use mmix_print_operand
1267 for WYDE and TETRA. Use mmix_output_octa to output 8-byte
1268 CONST_DOUBLEs. */
1270 static bool
1271 mmix_assemble_integer (rtx x, unsigned int size, int aligned_p)
1273 if (aligned_p)
1274 switch (size)
1276 /* We handle a limited number of types of operands in here. But
1277 that's ok, because we can punt to generic functions. We then
1278 pretend that aligned data isn't needed, so the usual .<pseudo>
1279 syntax is used (which works for aligned data too). We actually
1280 *must* do that, since we say we don't have simple aligned
1281 pseudos, causing this function to be called. We just try and
1282 keep as much compatibility as possible with mmixal syntax for
1283 normal cases (i.e. without GNU extensions and C only). */
1284 case 1:
1285 if (GET_CODE (x) != CONST_INT)
1287 aligned_p = 0;
1288 break;
1290 fputs ("\tBYTE\t", asm_out_file);
1291 mmix_print_operand (asm_out_file, x, 'B');
1292 fputc ('\n', asm_out_file);
1293 return true;
1295 case 2:
1296 if (GET_CODE (x) != CONST_INT)
1298 aligned_p = 0;
1299 break;
1301 fputs ("\tWYDE\t", asm_out_file);
1302 mmix_print_operand (asm_out_file, x, 'W');
1303 fputc ('\n', asm_out_file);
1304 return true;
1306 case 4:
1307 if (GET_CODE (x) != CONST_INT)
1309 aligned_p = 0;
1310 break;
1312 fputs ("\tTETRA\t", asm_out_file);
1313 mmix_print_operand (asm_out_file, x, 'L');
1314 fputc ('\n', asm_out_file);
1315 return true;
1317 case 8:
1318 /* We don't get here anymore for CONST_DOUBLE, because DImode
1319 isn't expressed as CONST_DOUBLE, and DFmode is handled
1320 elsewhere. */
1321 gcc_assert (GET_CODE (x) != CONST_DOUBLE);
1322 assemble_integer_with_op ("\tOCTA\t", x);
1323 return true;
1325 return default_assemble_integer (x, size, aligned_p);
1328 /* ASM_OUTPUT_ASCII. */
1330 void
1331 mmix_asm_output_ascii (FILE *stream, const char *string, int length)
1333 while (length > 0)
1335 int chunk_size = length > 60 ? 60 : length;
1336 fprintf (stream, "\tBYTE ");
1337 mmix_output_quoted_string (stream, string, chunk_size);
1338 string += chunk_size;
1339 length -= chunk_size;
1340 fprintf (stream, "\n");
1344 /* ASM_OUTPUT_ALIGNED_COMMON. */
1346 void
1347 mmix_asm_output_aligned_common (FILE *stream,
1348 const char *name,
1349 int size,
1350 int align)
1352 /* This is mostly the elfos.h one. There doesn't seem to be a way to
1353 express this in a mmixal-compatible way. */
1354 fprintf (stream, "\t.comm\t");
1355 assemble_name (stream, name);
1356 fprintf (stream, ",%u,%u ! mmixal-incompatible COMMON\n",
1357 size, align / BITS_PER_UNIT);
1360 /* ASM_OUTPUT_ALIGNED_LOCAL. */
1362 void
1363 mmix_asm_output_aligned_local (FILE *stream,
1364 const char *name,
1365 int size,
1366 int align)
1368 switch_to_section (data_section);
1370 ASM_OUTPUT_ALIGN (stream, exact_log2 (align/BITS_PER_UNIT));
1371 assemble_name (stream, name);
1372 fprintf (stream, "\tLOC @+%d\n", size);
1375 /* ASM_OUTPUT_LABEL. */
1377 void
1378 mmix_asm_output_label (FILE *stream, const char *name)
1380 assemble_name (stream, name);
1381 fprintf (stream, "\tIS @\n");
1384 /* ASM_OUTPUT_INTERNAL_LABEL. */
1386 void
1387 mmix_asm_output_internal_label (FILE *stream, const char *name)
1389 assemble_name_raw (stream, name);
1390 fprintf (stream, "\tIS @\n");
1393 /* ASM_DECLARE_REGISTER_GLOBAL. */
1395 void
1396 mmix_asm_declare_register_global (FILE *stream ATTRIBUTE_UNUSED,
1397 tree decl ATTRIBUTE_UNUSED,
1398 int regno ATTRIBUTE_UNUSED,
1399 const char *name ATTRIBUTE_UNUSED)
1401 /* Nothing to do here, but there *will* be, therefore the framework is
1402 here. */
1405 /* ASM_WEAKEN_LABEL. */
1407 void
1408 mmix_asm_weaken_label (FILE *stream ATTRIBUTE_UNUSED,
1409 const char *name ATTRIBUTE_UNUSED)
1411 fprintf (stream, "\t.weak ");
1412 assemble_name (stream, name);
1413 fprintf (stream, " ! mmixal-incompatible\n");
1416 /* MAKE_DECL_ONE_ONLY. */
1418 void
1419 mmix_make_decl_one_only (tree decl)
1421 DECL_WEAK (decl) = 1;
1424 /* ASM_OUTPUT_LABELREF.
1425 Strip GCC's '*' and our own '@'. No order is assumed. */
1427 void
1428 mmix_asm_output_labelref (FILE *stream, const char *name)
1430 int is_extern = 1;
1432 for (; (*name == '@' || *name == '*'); name++)
1433 if (*name == '@')
1434 is_extern = 0;
1436 asm_fprintf (stream, "%s%U%s",
1437 is_extern && TARGET_TOPLEVEL_SYMBOLS ? ":" : "",
1438 name);
1441 /* ASM_OUTPUT_DEF. */
1443 void
1444 mmix_asm_output_def (FILE *stream, const char *name, const char *value)
1446 assemble_name (stream, name);
1447 fprintf (stream, "\tIS ");
1448 assemble_name (stream, value);
1449 fputc ('\n', stream);
1452 /* PRINT_OPERAND. */
1454 void
1455 mmix_print_operand (FILE *stream, rtx x, int code)
1457 /* When we add support for different codes later, we can, when needed,
1458 drop through to the main handler with a modified operand. */
1459 rtx modified_x = x;
1460 int regno = x != NULL_RTX && REG_P (x) ? REGNO (x) : 0;
1462 switch (code)
1464 /* Unrelated codes are in alphabetic order. */
1466 case '+':
1467 /* For conditional branches, output "P" for a probable branch. */
1468 if (TARGET_BRANCH_PREDICT)
1470 x = find_reg_note (current_output_insn, REG_BR_PROB, 0);
1471 if (x && INTVAL (XEXP (x, 0)) > REG_BR_PROB_BASE / 2)
1472 putc ('P', stream);
1474 return;
1476 case '.':
1477 /* For the %d in POP %d,0. */
1478 fprintf (stream, "%d", MMIX_POP_ARGUMENT ());
1479 return;
1481 case 'B':
1482 if (GET_CODE (x) != CONST_INT)
1483 fatal_insn ("MMIX Internal: Expected a CONST_INT, not this", x);
1484 fprintf (stream, "%d", (int) (INTVAL (x) & 0xff));
1485 return;
1487 case 'H':
1488 /* Highpart. Must be general register, and not the last one, as
1489 that one cannot be part of a consecutive register pair. */
1490 if (regno > MMIX_LAST_GENERAL_REGISTER - 1)
1491 internal_error ("MMIX Internal: Bad register: %d", regno);
1493 /* This is big-endian, so the high-part is the first one. */
1494 fprintf (stream, "%s", reg_names[MMIX_OUTPUT_REGNO (regno)]);
1495 return;
1497 case 'L':
1498 /* Lowpart. Must be CONST_INT or general register, and not the last
1499 one, as that one cannot be part of a consecutive register pair. */
1500 if (GET_CODE (x) == CONST_INT)
1502 fprintf (stream, "#%lx",
1503 (unsigned long) (INTVAL (x)
1504 & ((unsigned int) 0x7fffffff * 2 + 1)));
1505 return;
1508 if (GET_CODE (x) == SYMBOL_REF)
1510 output_addr_const (stream, x);
1511 return;
1514 if (regno > MMIX_LAST_GENERAL_REGISTER - 1)
1515 internal_error ("MMIX Internal: Bad register: %d", regno);
1517 /* This is big-endian, so the low-part is + 1. */
1518 fprintf (stream, "%s", reg_names[MMIX_OUTPUT_REGNO (regno) + 1]);
1519 return;
1521 /* Can't use 'a' because that's a generic modifier for address
1522 output. */
1523 case 'A':
1524 mmix_output_shiftvalue_op_from_str (stream, "ANDN",
1525 ~(unsigned HOST_WIDEST_INT)
1526 mmix_intval (x));
1527 return;
1529 case 'i':
1530 mmix_output_shiftvalue_op_from_str (stream, "INC",
1531 (unsigned HOST_WIDEST_INT)
1532 mmix_intval (x));
1533 return;
1535 case 'o':
1536 mmix_output_shiftvalue_op_from_str (stream, "OR",
1537 (unsigned HOST_WIDEST_INT)
1538 mmix_intval (x));
1539 return;
1541 case 's':
1542 mmix_output_shiftvalue_op_from_str (stream, "SET",
1543 (unsigned HOST_WIDEST_INT)
1544 mmix_intval (x));
1545 return;
1547 case 'd':
1548 case 'D':
1549 mmix_output_condition (stream, x, (code == 'D'));
1550 return;
1552 case 'e':
1553 /* Output an extra "e" to make fcmpe, fune. */
1554 if (TARGET_FCMP_EPSILON)
1555 fprintf (stream, "e");
1556 return;
1558 case 'm':
1559 /* Output the number minus 1. */
1560 if (GET_CODE (x) != CONST_INT)
1562 fatal_insn ("MMIX Internal: Bad value for 'm', not a CONST_INT",
1565 fprintf (stream, HOST_WIDEST_INT_PRINT_DEC,
1566 (HOST_WIDEST_INT) (mmix_intval (x) - 1));
1567 return;
1569 case 'p':
1570 /* Store the number of registers we want to save. This was setup
1571 by the prologue. The actual operand contains the number of
1572 registers to pass, but we don't use it currently. Anyway, we
1573 need to output the number of saved registers here. */
1574 fprintf (stream, "%d",
1575 cfun->machine->highest_saved_stack_register + 1);
1576 return;
1578 case 'r':
1579 /* Store the register to output a constant to. */
1580 if (! REG_P (x))
1581 fatal_insn ("MMIX Internal: Expected a register, not this", x);
1582 mmix_output_destination_register = MMIX_OUTPUT_REGNO (regno);
1583 return;
1585 case 'I':
1586 /* Output the constant. Note that we use this for floats as well. */
1587 if (GET_CODE (x) != CONST_INT
1588 && (GET_CODE (x) != CONST_DOUBLE
1589 || (GET_MODE (x) != VOIDmode && GET_MODE (x) != DFmode
1590 && GET_MODE (x) != SFmode)))
1591 fatal_insn ("MMIX Internal: Expected a constant, not this", x);
1592 mmix_output_register_setting (stream,
1593 mmix_output_destination_register,
1594 mmix_intval (x), 0);
1595 return;
1597 case 'U':
1598 /* An U for unsigned, if TARGET_ZERO_EXTEND. Ignore the operand. */
1599 if (TARGET_ZERO_EXTEND)
1600 putc ('U', stream);
1601 return;
1603 case 'v':
1604 mmix_output_shifted_value (stream, (HOST_WIDEST_INT) mmix_intval (x));
1605 return;
1607 case 'V':
1608 mmix_output_shifted_value (stream, (HOST_WIDEST_INT) ~mmix_intval (x));
1609 return;
1611 case 'W':
1612 if (GET_CODE (x) != CONST_INT)
1613 fatal_insn ("MMIX Internal: Expected a CONST_INT, not this", x);
1614 fprintf (stream, "#%x", (int) (INTVAL (x) & 0xffff));
1615 return;
1617 case 0:
1618 /* Nothing to do. */
1619 break;
1621 default:
1622 /* Presumably there's a missing case above if we get here. */
1623 internal_error ("MMIX Internal: Missing %qc case in mmix_print_operand", code);
1626 switch (GET_CODE (modified_x))
1628 case REG:
1629 regno = REGNO (modified_x);
1630 if (regno >= FIRST_PSEUDO_REGISTER)
1631 internal_error ("MMIX Internal: Bad register: %d", regno);
1632 fprintf (stream, "%s", reg_names[MMIX_OUTPUT_REGNO (regno)]);
1633 return;
1635 case MEM:
1636 output_address (XEXP (modified_x, 0));
1637 return;
1639 case CONST_INT:
1640 /* For -2147483648, mmixal complains that the constant does not fit
1641 in 4 bytes, so let's output it as hex. Take care to handle hosts
1642 where HOST_WIDE_INT is longer than an int.
1644 Print small constants +-255 using decimal. */
1646 if (INTVAL (modified_x) > -256 && INTVAL (modified_x) < 256)
1647 fprintf (stream, "%d", (int) (INTVAL (modified_x)));
1648 else
1649 fprintf (stream, "#%x",
1650 (int) (INTVAL (modified_x)) & (unsigned int) ~0);
1651 return;
1653 case CONST_DOUBLE:
1654 /* Do somewhat as CONST_INT. */
1655 mmix_output_octa (stream, mmix_intval (modified_x), 0);
1656 return;
1658 case CONST:
1659 output_addr_const (stream, modified_x);
1660 return;
1662 default:
1663 /* No need to test for all strange things. Let output_addr_const do
1664 it for us. */
1665 if (CONSTANT_P (modified_x)
1666 /* Strangely enough, this is not included in CONSTANT_P.
1667 FIXME: Ask/check about sanity here. */
1668 || GET_CODE (modified_x) == CODE_LABEL)
1670 output_addr_const (stream, modified_x);
1671 return;
1674 /* We need the original here. */
1675 fatal_insn ("MMIX Internal: Cannot decode this operand", x);
1679 /* PRINT_OPERAND_PUNCT_VALID_P. */
1682 mmix_print_operand_punct_valid_p (int code ATTRIBUTE_UNUSED)
1684 /* A '+' is used for branch prediction, similar to other ports. */
1685 return code == '+'
1686 /* A '.' is used for the %d in the POP %d,0 return insn. */
1687 || code == '.';
1690 /* PRINT_OPERAND_ADDRESS. */
1692 void
1693 mmix_print_operand_address (FILE *stream, rtx x)
1695 if (REG_P (x))
1697 /* I find the generated assembly code harder to read without
1698 the ",0". */
1699 fprintf (stream, "%s,0", reg_names[MMIX_OUTPUT_REGNO (REGNO (x))]);
1700 return;
1702 else if (GET_CODE (x) == PLUS)
1704 rtx x1 = XEXP (x, 0);
1705 rtx x2 = XEXP (x, 1);
1707 if (REG_P (x1))
1709 fprintf (stream, "%s,", reg_names[MMIX_OUTPUT_REGNO (REGNO (x1))]);
1711 if (REG_P (x2))
1713 fprintf (stream, "%s",
1714 reg_names[MMIX_OUTPUT_REGNO (REGNO (x2))]);
1715 return;
1717 else if (GET_CODE (x2) == CONST_INT
1718 && CONST_OK_FOR_LETTER_P (INTVAL (x2), 'I'))
1720 output_addr_const (stream, x2);
1721 return;
1726 if (TARGET_BASE_ADDRESSES && mmix_legitimate_constant_p (x))
1728 output_addr_const (stream, x);
1729 return;
1732 fatal_insn ("MMIX Internal: This is not a recognized address", x);
1735 /* ASM_OUTPUT_REG_PUSH. */
1737 void
1738 mmix_asm_output_reg_push (FILE *stream, int regno)
1740 fprintf (stream, "\tSUBU %s,%s,8\n\tSTOU %s,%s,0\n",
1741 reg_names[MMIX_STACK_POINTER_REGNUM],
1742 reg_names[MMIX_STACK_POINTER_REGNUM],
1743 reg_names[MMIX_OUTPUT_REGNO (regno)],
1744 reg_names[MMIX_STACK_POINTER_REGNUM]);
1747 /* ASM_OUTPUT_REG_POP. */
1749 void
1750 mmix_asm_output_reg_pop (FILE *stream, int regno)
1752 fprintf (stream, "\tLDOU %s,%s,0\n\tINCL %s,8\n",
1753 reg_names[MMIX_OUTPUT_REGNO (regno)],
1754 reg_names[MMIX_STACK_POINTER_REGNUM],
1755 reg_names[MMIX_STACK_POINTER_REGNUM]);
1758 /* ASM_OUTPUT_ADDR_DIFF_ELT. */
1760 void
1761 mmix_asm_output_addr_diff_elt (FILE *stream,
1762 rtx body ATTRIBUTE_UNUSED,
1763 int value,
1764 int rel)
1766 fprintf (stream, "\tTETRA L%d-L%d\n", value, rel);
1769 /* ASM_OUTPUT_ADDR_VEC_ELT. */
1771 void
1772 mmix_asm_output_addr_vec_elt (FILE *stream, int value)
1774 fprintf (stream, "\tOCTA L:%d\n", value);
1777 /* ASM_OUTPUT_SKIP. */
1779 void
1780 mmix_asm_output_skip (FILE *stream, int nbytes)
1782 fprintf (stream, "\tLOC @+%d\n", nbytes);
1785 /* ASM_OUTPUT_ALIGN. */
1787 void
1788 mmix_asm_output_align (FILE *stream, int power)
1790 /* We need to record the needed alignment of this section in the object,
1791 so we have to output an alignment directive. Use a .p2align (not
1792 .align) so people will never have to wonder about whether the
1793 argument is in number of bytes or the log2 thereof. We do it in
1794 addition to the LOC directive, so nothing needs tweaking when
1795 copy-pasting assembly into mmixal. */
1796 fprintf (stream, "\t.p2align %d\n", power);
1797 fprintf (stream, "\tLOC @+(%d-@)&%d\n", 1 << power, (1 << power) - 1);
1800 /* DBX_REGISTER_NUMBER. */
1803 mmix_dbx_register_number (int regno)
1805 /* Adjust the register number to the one it will be output as, dammit.
1806 It'd be nice if we could check the assumption that we're filling a
1807 gap, but every register between the last saved register and parameter
1808 registers might be a valid parameter register. */
1809 regno = MMIX_OUTPUT_REGNO (regno);
1811 /* We need to renumber registers to get the number of the return address
1812 register in the range 0..255. It is also space-saving if registers
1813 mentioned in the call-frame information (which uses this function by
1814 defaulting DWARF_FRAME_REGNUM to DBX_REGISTER_NUMBER) are numbered
1815 0 .. 63. So map 224 .. 256+15 -> 0 .. 47 and 0 .. 223 -> 48..223+48. */
1816 return regno >= 224 ? (regno - 224) : (regno + 48);
1819 /* End of target macro support functions.
1821 Now the MMIX port's own functions. First the exported ones. */
1823 /* Wrapper for get_hard_reg_initial_val since integrate.h isn't included
1824 from insn-emit.c. */
1827 mmix_get_hard_reg_initial_val (enum machine_mode mode, int regno)
1829 return get_hard_reg_initial_val (mode, regno);
1832 /* Nonzero when the function epilogue is simple enough that a single
1833 "POP %d,0" should be used even within the function. */
1836 mmix_use_simple_return (void)
1838 int regno;
1840 int stack_space_to_allocate
1841 = (current_function_outgoing_args_size
1842 + current_function_pretend_args_size
1843 + get_frame_size () + 7) & ~7;
1845 if (!TARGET_USE_RETURN_INSN || !reload_completed)
1846 return 0;
1848 for (regno = 255;
1849 regno >= MMIX_FIRST_GLOBAL_REGNUM;
1850 regno--)
1851 /* Note that we assume that the frame-pointer-register is one of these
1852 registers, in which case we don't count it here. */
1853 if ((((regno != MMIX_FRAME_POINTER_REGNUM || !frame_pointer_needed)
1854 && df_regs_ever_live_p (regno) && !call_used_regs[regno]))
1855 || IS_MMIX_EH_RETURN_DATA_REG (regno))
1856 return 0;
1858 if (frame_pointer_needed)
1859 stack_space_to_allocate += 8;
1861 if (MMIX_CFUN_HAS_LANDING_PAD)
1862 stack_space_to_allocate += 16;
1863 else if (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS)
1864 stack_space_to_allocate += 8;
1866 return stack_space_to_allocate == 0;
1870 /* Expands the function prologue into RTX. */
1872 void
1873 mmix_expand_prologue (void)
1875 HOST_WIDE_INT locals_size = get_frame_size ();
1876 int regno;
1877 HOST_WIDE_INT stack_space_to_allocate
1878 = (current_function_outgoing_args_size
1879 + current_function_pretend_args_size
1880 + locals_size + 7) & ~7;
1881 HOST_WIDE_INT offset = -8;
1883 /* Add room needed to save global non-register-stack registers. */
1884 for (regno = 255;
1885 regno >= MMIX_FIRST_GLOBAL_REGNUM;
1886 regno--)
1887 /* Note that we assume that the frame-pointer-register is one of these
1888 registers, in which case we don't count it here. */
1889 if ((((regno != MMIX_FRAME_POINTER_REGNUM || !frame_pointer_needed)
1890 && df_regs_ever_live_p (regno) && !call_used_regs[regno]))
1891 || IS_MMIX_EH_RETURN_DATA_REG (regno))
1892 stack_space_to_allocate += 8;
1894 /* If we do have a frame-pointer, add room for it. */
1895 if (frame_pointer_needed)
1896 stack_space_to_allocate += 8;
1898 /* If we have a non-local label, we need to be able to unwind to it, so
1899 store the current register stack pointer. Also store the return
1900 address if we do that. */
1901 if (MMIX_CFUN_HAS_LANDING_PAD)
1902 stack_space_to_allocate += 16;
1903 else if (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS)
1904 /* If we do have a saved return-address slot, add room for it. */
1905 stack_space_to_allocate += 8;
1907 /* Make sure we don't get an unaligned stack. */
1908 if ((stack_space_to_allocate % 8) != 0)
1909 internal_error ("stack frame not a multiple of 8 bytes: %wd",
1910 stack_space_to_allocate);
1912 if (current_function_pretend_args_size)
1914 int mmix_first_vararg_reg
1915 = (MMIX_FIRST_INCOMING_ARG_REGNUM
1916 + (MMIX_MAX_ARGS_IN_REGS
1917 - current_function_pretend_args_size / 8));
1919 for (regno
1920 = MMIX_FIRST_INCOMING_ARG_REGNUM + MMIX_MAX_ARGS_IN_REGS - 1;
1921 regno >= mmix_first_vararg_reg;
1922 regno--)
1924 if (offset < 0)
1926 HOST_WIDE_INT stack_chunk
1927 = stack_space_to_allocate > (256 - 8)
1928 ? (256 - 8) : stack_space_to_allocate;
1930 mmix_emit_sp_add (-stack_chunk);
1931 offset += stack_chunk;
1932 stack_space_to_allocate -= stack_chunk;
1935 /* These registers aren't actually saved (as in "will be
1936 restored"), so don't tell DWARF2 they're saved. */
1937 emit_move_insn (gen_rtx_MEM (DImode,
1938 plus_constant (stack_pointer_rtx,
1939 offset)),
1940 gen_rtx_REG (DImode, regno));
1941 offset -= 8;
1945 /* Store the frame-pointer. */
1947 if (frame_pointer_needed)
1949 rtx insn;
1951 if (offset < 0)
1953 /* Get 8 less than otherwise, since we need to reach offset + 8. */
1954 HOST_WIDE_INT stack_chunk
1955 = stack_space_to_allocate > (256 - 8 - 8)
1956 ? (256 - 8 - 8) : stack_space_to_allocate;
1958 mmix_emit_sp_add (-stack_chunk);
1960 offset += stack_chunk;
1961 stack_space_to_allocate -= stack_chunk;
1964 insn = emit_move_insn (gen_rtx_MEM (DImode,
1965 plus_constant (stack_pointer_rtx,
1966 offset)),
1967 hard_frame_pointer_rtx);
1968 RTX_FRAME_RELATED_P (insn) = 1;
1969 insn = emit_insn (gen_adddi3 (hard_frame_pointer_rtx,
1970 stack_pointer_rtx,
1971 GEN_INT (offset + 8)));
1972 RTX_FRAME_RELATED_P (insn) = 1;
1973 offset -= 8;
1976 if (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS)
1978 rtx tmpreg, retreg;
1979 rtx insn;
1981 /* Store the return-address, if one is needed on the stack. We
1982 usually store it in a register when needed, but that doesn't work
1983 with -fexceptions. */
1985 if (offset < 0)
1987 /* Get 8 less than otherwise, since we need to reach offset + 8. */
1988 HOST_WIDE_INT stack_chunk
1989 = stack_space_to_allocate > (256 - 8 - 8)
1990 ? (256 - 8 - 8) : stack_space_to_allocate;
1992 mmix_emit_sp_add (-stack_chunk);
1994 offset += stack_chunk;
1995 stack_space_to_allocate -= stack_chunk;
1998 tmpreg = gen_rtx_REG (DImode, 255);
1999 retreg = gen_rtx_REG (DImode, MMIX_rJ_REGNUM);
2001 /* Dwarf2 code is confused by the use of a temporary register for
2002 storing the return address, so we have to express it as a note,
2003 which we attach to the actual store insn. */
2004 emit_move_insn (tmpreg, retreg);
2006 insn = emit_move_insn (gen_rtx_MEM (DImode,
2007 plus_constant (stack_pointer_rtx,
2008 offset)),
2009 tmpreg);
2010 RTX_FRAME_RELATED_P (insn) = 1;
2011 REG_NOTES (insn)
2012 = gen_rtx_EXPR_LIST (REG_FRAME_RELATED_EXPR,
2013 gen_rtx_SET (VOIDmode,
2014 gen_rtx_MEM (DImode,
2015 plus_constant (stack_pointer_rtx,
2016 offset)),
2017 retreg),
2018 REG_NOTES (insn));
2020 offset -= 8;
2022 else if (MMIX_CFUN_HAS_LANDING_PAD)
2023 offset -= 8;
2025 if (MMIX_CFUN_HAS_LANDING_PAD)
2027 /* Store the register defining the numbering of local registers, so
2028 we know how long to unwind the register stack. */
2030 if (offset < 0)
2032 /* Get 8 less than otherwise, since we need to reach offset + 8. */
2033 HOST_WIDE_INT stack_chunk
2034 = stack_space_to_allocate > (256 - 8 - 8)
2035 ? (256 - 8 - 8) : stack_space_to_allocate;
2037 mmix_emit_sp_add (-stack_chunk);
2039 offset += stack_chunk;
2040 stack_space_to_allocate -= stack_chunk;
2043 /* We don't tell dwarf2 about this one; we just have it to unwind
2044 the register stack at landing pads. FIXME: It's a kludge because
2045 we can't describe the effect of the PUSHJ and PUSHGO insns on the
2046 register stack at the moment. Best thing would be to handle it
2047 like stack-pointer offsets. Better: some hook into dwarf2out.c
2048 to produce DW_CFA_expression:s that specify the increment of rO,
2049 and unwind it at eh_return (preferred) or at the landing pad.
2050 Then saves to $0..$G-1 could be specified through that register. */
2052 emit_move_insn (gen_rtx_REG (DImode, 255),
2053 gen_rtx_REG (DImode,
2054 MMIX_rO_REGNUM));
2055 emit_move_insn (gen_rtx_MEM (DImode,
2056 plus_constant (stack_pointer_rtx, offset)),
2057 gen_rtx_REG (DImode, 255));
2058 offset -= 8;
2061 /* After the return-address and the frame-pointer, we have the local
2062 variables. They're the ones that may have an "unaligned" size. */
2063 offset -= (locals_size + 7) & ~7;
2065 /* Now store all registers that are global, i.e. not saved by the
2066 register file machinery.
2068 It is assumed that the frame-pointer is one of these registers, so it
2069 is explicitly excluded in the count. */
2071 for (regno = 255;
2072 regno >= MMIX_FIRST_GLOBAL_REGNUM;
2073 regno--)
2074 if (((regno != MMIX_FRAME_POINTER_REGNUM || !frame_pointer_needed)
2075 && df_regs_ever_live_p (regno) && ! call_used_regs[regno])
2076 || IS_MMIX_EH_RETURN_DATA_REG (regno))
2078 rtx insn;
2080 if (offset < 0)
2082 HOST_WIDE_INT stack_chunk
2083 = (stack_space_to_allocate > (256 - offset - 8)
2084 ? (256 - offset - 8) : stack_space_to_allocate);
2086 mmix_emit_sp_add (-stack_chunk);
2087 offset += stack_chunk;
2088 stack_space_to_allocate -= stack_chunk;
2091 insn = emit_move_insn (gen_rtx_MEM (DImode,
2092 plus_constant (stack_pointer_rtx,
2093 offset)),
2094 gen_rtx_REG (DImode, regno));
2095 RTX_FRAME_RELATED_P (insn) = 1;
2096 offset -= 8;
2099 /* Finally, allocate room for outgoing args and local vars if room
2100 wasn't allocated above. */
2101 if (stack_space_to_allocate)
2102 mmix_emit_sp_add (-stack_space_to_allocate);
2105 /* Expands the function epilogue into RTX. */
2107 void
2108 mmix_expand_epilogue (void)
2110 HOST_WIDE_INT locals_size = get_frame_size ();
2111 int regno;
2112 HOST_WIDE_INT stack_space_to_deallocate
2113 = (current_function_outgoing_args_size
2114 + current_function_pretend_args_size
2115 + locals_size + 7) & ~7;
2117 /* The first address to access is beyond the outgoing_args area. */
2118 HOST_WIDE_INT offset = current_function_outgoing_args_size;
2120 /* Add the space for global non-register-stack registers.
2121 It is assumed that the frame-pointer register can be one of these
2122 registers, in which case it is excluded from the count when needed. */
2123 for (regno = 255;
2124 regno >= MMIX_FIRST_GLOBAL_REGNUM;
2125 regno--)
2126 if (((regno != MMIX_FRAME_POINTER_REGNUM || !frame_pointer_needed)
2127 && df_regs_ever_live_p (regno) && !call_used_regs[regno])
2128 || IS_MMIX_EH_RETURN_DATA_REG (regno))
2129 stack_space_to_deallocate += 8;
2131 /* Add in the space for register stack-pointer. If so, always add room
2132 for the saved PC. */
2133 if (MMIX_CFUN_HAS_LANDING_PAD)
2134 stack_space_to_deallocate += 16;
2135 else if (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS)
2136 /* If we have a saved return-address slot, add it in. */
2137 stack_space_to_deallocate += 8;
2139 /* Add in the frame-pointer. */
2140 if (frame_pointer_needed)
2141 stack_space_to_deallocate += 8;
2143 /* Make sure we don't get an unaligned stack. */
2144 if ((stack_space_to_deallocate % 8) != 0)
2145 internal_error ("stack frame not a multiple of octabyte: %wd",
2146 stack_space_to_deallocate);
2148 /* We will add back small offsets to the stack pointer as we go.
2149 First, we restore all registers that are global, i.e. not saved by
2150 the register file machinery. */
2152 for (regno = MMIX_FIRST_GLOBAL_REGNUM;
2153 regno <= 255;
2154 regno++)
2155 if (((regno != MMIX_FRAME_POINTER_REGNUM || !frame_pointer_needed)
2156 && df_regs_ever_live_p (regno) && !call_used_regs[regno])
2157 || IS_MMIX_EH_RETURN_DATA_REG (regno))
2159 if (offset > 255)
2161 mmix_emit_sp_add (offset);
2162 stack_space_to_deallocate -= offset;
2163 offset = 0;
2166 emit_move_insn (gen_rtx_REG (DImode, regno),
2167 gen_rtx_MEM (DImode,
2168 plus_constant (stack_pointer_rtx,
2169 offset)));
2170 offset += 8;
2173 /* Here is where the local variables were. As in the prologue, they
2174 might be of an unaligned size. */
2175 offset += (locals_size + 7) & ~7;
2177 /* The saved register stack pointer is just below the frame-pointer
2178 register. We don't need to restore it "manually"; the POP
2179 instruction does that. */
2180 if (MMIX_CFUN_HAS_LANDING_PAD)
2181 offset += 16;
2182 else if (MMIX_CFUN_NEEDS_SAVED_EH_RETURN_ADDRESS)
2183 /* The return-address slot is just below the frame-pointer register.
2184 We don't need to restore it because we don't really use it. */
2185 offset += 8;
2187 /* Get back the old frame-pointer-value. */
2188 if (frame_pointer_needed)
2190 if (offset > 255)
2192 mmix_emit_sp_add (offset);
2194 stack_space_to_deallocate -= offset;
2195 offset = 0;
2198 emit_move_insn (hard_frame_pointer_rtx,
2199 gen_rtx_MEM (DImode,
2200 plus_constant (stack_pointer_rtx,
2201 offset)));
2202 offset += 8;
2205 /* We do not need to restore pretended incoming args, just add back
2206 offset to sp. */
2207 if (stack_space_to_deallocate != 0)
2208 mmix_emit_sp_add (stack_space_to_deallocate);
2210 if (current_function_calls_eh_return)
2211 /* Adjust the (normal) stack-pointer to that of the receiver.
2212 FIXME: It would be nice if we could also adjust the register stack
2213 here, but we need to express it through DWARF 2 too. */
2214 emit_insn (gen_adddi3 (stack_pointer_rtx, stack_pointer_rtx,
2215 gen_rtx_REG (DImode,
2216 MMIX_EH_RETURN_STACKADJ_REGNUM)));
2219 /* Output an optimal sequence for setting a register to a specific
2220 constant. Used in an alternative for const_ints in movdi, and when
2221 using large stack-frame offsets.
2223 Use do_begin_end to say if a line-starting TAB and newline before the
2224 first insn and after the last insn is wanted. */
2226 void
2227 mmix_output_register_setting (FILE *stream,
2228 int regno,
2229 HOST_WIDEST_INT value,
2230 int do_begin_end)
2232 if (do_begin_end)
2233 fprintf (stream, "\t");
2235 if (mmix_shiftable_wyde_value ((unsigned HOST_WIDEST_INT) value))
2237 /* First, the one-insn cases. */
2238 mmix_output_shiftvalue_op_from_str (stream, "SET",
2239 (unsigned HOST_WIDEST_INT)
2240 value);
2241 fprintf (stream, " %s,", reg_names[regno]);
2242 mmix_output_shifted_value (stream, (unsigned HOST_WIDEST_INT) value);
2244 else if (mmix_shiftable_wyde_value (-(unsigned HOST_WIDEST_INT) value))
2246 /* We do this to get a bit more legible assembly code. The next
2247 alternative is mostly redundant with this. */
2249 mmix_output_shiftvalue_op_from_str (stream, "SET",
2250 -(unsigned HOST_WIDEST_INT)
2251 value);
2252 fprintf (stream, " %s,", reg_names[regno]);
2253 mmix_output_shifted_value (stream, -(unsigned HOST_WIDEST_INT) value);
2254 fprintf (stream, "\n\tNEGU %s,0,%s", reg_names[regno],
2255 reg_names[regno]);
2257 else if (mmix_shiftable_wyde_value (~(unsigned HOST_WIDEST_INT) value))
2259 /* Slightly more expensive, the two-insn cases. */
2261 /* FIXME: We could of course also test if 0..255-N or ~(N | 1..255)
2262 is shiftable, or any other one-insn transformation of the value.
2263 FIXME: Check first if the value is "shiftable" by two loading
2264 with two insns, since it makes more readable assembly code (if
2265 anyone else cares). */
2267 mmix_output_shiftvalue_op_from_str (stream, "SET",
2268 ~(unsigned HOST_WIDEST_INT)
2269 value);
2270 fprintf (stream, " %s,", reg_names[regno]);
2271 mmix_output_shifted_value (stream, ~(unsigned HOST_WIDEST_INT) value);
2272 fprintf (stream, "\n\tNOR %s,%s,0", reg_names[regno],
2273 reg_names[regno]);
2275 else
2277 /* The generic case. 2..4 insns. */
2278 static const char *const higher_parts[] = {"L", "ML", "MH", "H"};
2279 const char *op = "SET";
2280 const char *line_begin = "";
2281 int insns = 0;
2282 int i;
2283 HOST_WIDEST_INT tmpvalue = value;
2285 /* Compute the number of insns needed to output this constant. */
2286 for (i = 0; i < 4 && tmpvalue != 0; i++)
2288 if (tmpvalue & 65535)
2289 insns++;
2290 tmpvalue >>= 16;
2292 if (TARGET_BASE_ADDRESSES && insns == 3)
2294 /* The number three is based on a static observation on
2295 ghostscript-6.52. Two and four are excluded because there
2296 are too many such constants, and each unique constant (maybe
2297 offset by 1..255) were used few times compared to other uses,
2298 e.g. addresses.
2300 We use base-plus-offset addressing to force it into a global
2301 register; we just use a "LDA reg,VALUE", which will cause the
2302 assembler and linker to DTRT (for constants as well as
2303 addresses). */
2304 fprintf (stream, "LDA %s,", reg_names[regno]);
2305 mmix_output_octa (stream, value, 0);
2307 else
2309 /* Output pertinent parts of the 4-wyde sequence.
2310 Still more to do if we want this to be optimal, but hey...
2311 Note that the zero case has been handled above. */
2312 for (i = 0; i < 4 && value != 0; i++)
2314 if (value & 65535)
2316 fprintf (stream, "%s%s%s %s,#%x", line_begin, op,
2317 higher_parts[i], reg_names[regno],
2318 (int) (value & 65535));
2319 /* The first one sets the rest of the bits to 0, the next
2320 ones add set bits. */
2321 op = "INC";
2322 line_begin = "\n\t";
2325 value >>= 16;
2330 if (do_begin_end)
2331 fprintf (stream, "\n");
2334 /* Return 1 if value is 0..65535*2**(16*N) for N=0..3.
2335 else return 0. */
2338 mmix_shiftable_wyde_value (unsigned HOST_WIDEST_INT value)
2340 /* Shift by 16 bits per group, stop when we've found two groups with
2341 nonzero bits. */
2342 int i;
2343 int has_candidate = 0;
2345 for (i = 0; i < 4; i++)
2347 if (value & 65535)
2349 if (has_candidate)
2350 return 0;
2351 else
2352 has_candidate = 1;
2355 value >>= 16;
2358 return 1;
2361 /* Returns zero if code and mode is not a valid condition from a
2362 compare-type insn. Nonzero if it is. The parameter op, if non-NULL,
2363 is the comparison of mode is CC-somethingmode. */
2366 mmix_valid_comparison (RTX_CODE code, enum machine_mode mode, rtx op)
2368 if (mode == VOIDmode && op != NULL_RTX)
2369 mode = GET_MODE (op);
2371 /* We don't care to look at these, they should always be valid. */
2372 if (mode == CCmode || mode == CC_UNSmode || mode == DImode)
2373 return 1;
2375 if ((mode == CC_FPmode || mode == DFmode)
2376 && (code == GT || code == LT))
2377 return 1;
2379 if ((mode == CC_FPEQmode || mode == DFmode)
2380 && (code == EQ || code == NE))
2381 return 1;
2383 if ((mode == CC_FUNmode || mode == DFmode)
2384 && (code == ORDERED || code == UNORDERED))
2385 return 1;
2387 return 0;
2390 /* X and Y are two things to compare using CODE. Emit a compare insn if
2391 possible and return the rtx for the cc-reg in the proper mode, or
2392 NULL_RTX if this is not a valid comparison. */
2395 mmix_gen_compare_reg (RTX_CODE code, rtx x, rtx y)
2397 enum machine_mode ccmode = SELECT_CC_MODE (code, x, y);
2398 rtx cc_reg;
2400 /* FIXME: Do we get constants here? Of double mode? */
2401 enum machine_mode mode
2402 = GET_MODE (x) == VOIDmode
2403 ? GET_MODE (y)
2404 : GET_MODE_CLASS (GET_MODE (x)) == MODE_FLOAT ? DFmode : DImode;
2406 if (! mmix_valid_comparison (code, mode, x))
2407 return NULL_RTX;
2409 cc_reg = gen_reg_rtx (ccmode);
2411 /* FIXME: Can we avoid emitting a compare insn here? */
2412 if (! REG_P (x) && ! REG_P (y))
2413 x = force_reg (mode, x);
2415 /* If it's not quite right yet, put y in a register. */
2416 if (! REG_P (y)
2417 && (GET_CODE (y) != CONST_INT
2418 || ! CONST_OK_FOR_LETTER_P (INTVAL (y), 'I')))
2419 y = force_reg (mode, y);
2421 emit_insn (gen_rtx_SET (VOIDmode, cc_reg,
2422 gen_rtx_COMPARE (ccmode, x, y)));
2424 return cc_reg;
2427 /* Local (static) helper functions. */
2429 static void
2430 mmix_emit_sp_add (HOST_WIDE_INT offset)
2432 rtx insn;
2434 if (offset < 0)
2436 /* Negative stack-pointer adjustments are allocations and appear in
2437 the prologue only. We mark them as frame-related so unwind and
2438 debug info is properly emitted for them. */
2439 if (offset > -255)
2440 insn = emit_insn (gen_adddi3 (stack_pointer_rtx,
2441 stack_pointer_rtx,
2442 GEN_INT (offset)));
2443 else
2445 rtx tmpr = gen_rtx_REG (DImode, 255);
2446 RTX_FRAME_RELATED_P (emit_move_insn (tmpr, GEN_INT (offset))) = 1;
2447 insn = emit_insn (gen_adddi3 (stack_pointer_rtx,
2448 stack_pointer_rtx, tmpr));
2450 RTX_FRAME_RELATED_P (insn) = 1;
2452 else
2454 /* Positive adjustments are in the epilogue only. Don't mark them
2455 as "frame-related" for unwind info. */
2456 if (CONST_OK_FOR_LETTER_P (offset, 'L'))
2457 emit_insn (gen_adddi3 (stack_pointer_rtx,
2458 stack_pointer_rtx,
2459 GEN_INT (offset)));
2460 else
2462 rtx tmpr = gen_rtx_REG (DImode, 255);
2463 emit_move_insn (tmpr, GEN_INT (offset));
2464 insn = emit_insn (gen_adddi3 (stack_pointer_rtx,
2465 stack_pointer_rtx, tmpr));
2470 /* Print operator suitable for doing something with a shiftable
2471 wyde. The type of operator is passed as an asm output modifier. */
2473 static void
2474 mmix_output_shiftvalue_op_from_str (FILE *stream,
2475 const char *mainop,
2476 HOST_WIDEST_INT value)
2478 static const char *const op_part[] = {"L", "ML", "MH", "H"};
2479 int i;
2481 if (! mmix_shiftable_wyde_value (value))
2483 char s[sizeof ("0xffffffffffffffff")];
2484 sprintf (s, HOST_WIDEST_INT_PRINT_HEX, value);
2485 internal_error ("MMIX Internal: %s is not a shiftable int", s);
2488 for (i = 0; i < 4; i++)
2490 /* We know we're through when we find one-bits in the low
2491 16 bits. */
2492 if (value & 0xffff)
2494 fprintf (stream, "%s%s", mainop, op_part[i]);
2495 return;
2497 value >>= 16;
2500 /* No bits set? Then it must have been zero. */
2501 fprintf (stream, "%sL", mainop);
2504 /* Print a 64-bit value, optionally prefixed by assembly pseudo. */
2506 static void
2507 mmix_output_octa (FILE *stream, HOST_WIDEST_INT value, int do_begin_end)
2509 /* Snipped from final.c:output_addr_const. We need to avoid the
2510 presumed universal "0x" prefix. We can do it by replacing "0x" with
2511 "#0" here; we must avoid a space in the operands and no, the zero
2512 won't cause the number to be assumed in octal format. */
2513 char hex_format[sizeof (HOST_WIDEST_INT_PRINT_HEX)];
2515 if (do_begin_end)
2516 fprintf (stream, "\tOCTA ");
2518 strcpy (hex_format, HOST_WIDEST_INT_PRINT_HEX);
2519 hex_format[0] = '#';
2520 hex_format[1] = '0';
2522 /* Provide a few alternative output formats depending on the number, to
2523 improve legibility of assembler output. */
2524 if ((value < (HOST_WIDEST_INT) 0 && value > (HOST_WIDEST_INT) -10000)
2525 || (value >= (HOST_WIDEST_INT) 0 && value <= (HOST_WIDEST_INT) 16384))
2526 fprintf (stream, "%d", (int) value);
2527 else if (value > (HOST_WIDEST_INT) 0
2528 && value < ((HOST_WIDEST_INT) 1 << 31) * 2)
2529 fprintf (stream, "#%x", (unsigned int) value);
2530 else
2531 fprintf (stream, hex_format, value);
2533 if (do_begin_end)
2534 fprintf (stream, "\n");
2537 /* Print the presumed shiftable wyde argument shifted into place (to
2538 be output with an operand). */
2540 static void
2541 mmix_output_shifted_value (FILE *stream, HOST_WIDEST_INT value)
2543 int i;
2545 if (! mmix_shiftable_wyde_value (value))
2547 char s[16+2+1];
2548 sprintf (s, HOST_WIDEST_INT_PRINT_HEX, value);
2549 internal_error ("MMIX Internal: %s is not a shiftable int", s);
2552 for (i = 0; i < 4; i++)
2554 /* We know we're through when we find one-bits in the low 16 bits. */
2555 if (value & 0xffff)
2557 fprintf (stream, "#%x", (int) (value & 0xffff));
2558 return;
2561 value >>= 16;
2564 /* No bits set? Then it must have been zero. */
2565 fprintf (stream, "0");
2568 /* Output an MMIX condition name corresponding to an operator
2569 and operands:
2570 (comparison_operator [(comparison_operator ...) (const_int 0)])
2571 which means we have to look at *two* operators.
2573 The argument "reversed" refers to reversal of the condition (not the
2574 same as swapping the arguments). */
2576 static void
2577 mmix_output_condition (FILE *stream, rtx x, int reversed)
2579 struct cc_conv
2581 RTX_CODE cc;
2583 /* The normal output cc-code. */
2584 const char *const normal;
2586 /* The reversed cc-code, or NULL if invalid. */
2587 const char *const reversed;
2590 struct cc_type_conv
2592 enum machine_mode cc_mode;
2594 /* Terminated with {UNKNOWN, NULL, NULL} */
2595 const struct cc_conv *const convs;
2598 #undef CCEND
2599 #define CCEND {UNKNOWN, NULL, NULL}
2601 static const struct cc_conv cc_fun_convs[]
2602 = {{ORDERED, "Z", "P"},
2603 {UNORDERED, "P", "Z"},
2604 CCEND};
2605 static const struct cc_conv cc_fp_convs[]
2606 = {{GT, "P", NULL},
2607 {LT, "N", NULL},
2608 CCEND};
2609 static const struct cc_conv cc_fpeq_convs[]
2610 = {{NE, "Z", "P"},
2611 {EQ, "P", "Z"},
2612 CCEND};
2613 static const struct cc_conv cc_uns_convs[]
2614 = {{GEU, "NN", "N"},
2615 {GTU, "P", "NP"},
2616 {LEU, "NP", "P"},
2617 {LTU, "N", "NN"},
2618 CCEND};
2619 static const struct cc_conv cc_signed_convs[]
2620 = {{NE, "NZ", "Z"},
2621 {EQ, "Z", "NZ"},
2622 {GE, "NN", "N"},
2623 {GT, "P", "NP"},
2624 {LE, "NP", "P"},
2625 {LT, "N", "NN"},
2626 CCEND};
2627 static const struct cc_conv cc_di_convs[]
2628 = {{NE, "NZ", "Z"},
2629 {EQ, "Z", "NZ"},
2630 {GE, "NN", "N"},
2631 {GT, "P", "NP"},
2632 {LE, "NP", "P"},
2633 {LT, "N", "NN"},
2634 {GTU, "NZ", "Z"},
2635 {LEU, "Z", "NZ"},
2636 CCEND};
2637 #undef CCEND
2639 static const struct cc_type_conv cc_convs[]
2640 = {{CC_FUNmode, cc_fun_convs},
2641 {CC_FPmode, cc_fp_convs},
2642 {CC_FPEQmode, cc_fpeq_convs},
2643 {CC_UNSmode, cc_uns_convs},
2644 {CCmode, cc_signed_convs},
2645 {DImode, cc_di_convs}};
2647 size_t i;
2648 int j;
2650 enum machine_mode mode = GET_MODE (XEXP (x, 0));
2651 RTX_CODE cc = GET_CODE (x);
2653 for (i = 0; i < ARRAY_SIZE (cc_convs); i++)
2655 if (mode == cc_convs[i].cc_mode)
2657 for (j = 0; cc_convs[i].convs[j].cc != UNKNOWN; j++)
2658 if (cc == cc_convs[i].convs[j].cc)
2660 const char *mmix_cc
2661 = (reversed ? cc_convs[i].convs[j].reversed
2662 : cc_convs[i].convs[j].normal);
2664 if (mmix_cc == NULL)
2665 fatal_insn ("MMIX Internal: Trying to output invalidly\
2666 reversed condition:", x);
2668 fprintf (stream, "%s", mmix_cc);
2669 return;
2672 fatal_insn ("MMIX Internal: What's the CC of this?", x);
2676 fatal_insn ("MMIX Internal: What is the CC of this?", x);
2679 /* Return the bit-value for a const_int or const_double. */
2681 static HOST_WIDEST_INT
2682 mmix_intval (rtx x)
2684 unsigned HOST_WIDEST_INT retval;
2686 if (GET_CODE (x) == CONST_INT)
2687 return INTVAL (x);
2689 /* We make a little song and dance because converting to long long in
2690 gcc-2.7.2 is broken. I still want people to be able to use it for
2691 cross-compilation to MMIX. */
2692 if (GET_CODE (x) == CONST_DOUBLE && GET_MODE (x) == VOIDmode)
2694 if (sizeof (HOST_WIDE_INT) < sizeof (HOST_WIDEST_INT))
2696 retval = (unsigned) CONST_DOUBLE_LOW (x) / 2;
2697 retval *= 2;
2698 retval |= CONST_DOUBLE_LOW (x) & 1;
2700 retval |=
2701 (unsigned HOST_WIDEST_INT) CONST_DOUBLE_HIGH (x)
2702 << (HOST_BITS_PER_LONG);
2704 else
2705 retval = CONST_DOUBLE_HIGH (x);
2707 return retval;
2710 if (GET_CODE (x) == CONST_DOUBLE)
2712 REAL_VALUE_TYPE value;
2714 /* FIXME: This macro is not in the manual but should be. */
2715 REAL_VALUE_FROM_CONST_DOUBLE (value, x);
2717 if (GET_MODE (x) == DFmode)
2719 long bits[2];
2721 REAL_VALUE_TO_TARGET_DOUBLE (value, bits);
2723 /* The double cast is necessary to avoid getting the long
2724 sign-extended to unsigned long long(!) when they're of
2725 different size (usually 32-bit hosts). */
2726 return
2727 ((unsigned HOST_WIDEST_INT) (unsigned long) bits[0]
2728 << (unsigned HOST_WIDEST_INT) 32U)
2729 | (unsigned HOST_WIDEST_INT) (unsigned long) bits[1];
2731 else if (GET_MODE (x) == SFmode)
2733 long bits;
2734 REAL_VALUE_TO_TARGET_SINGLE (value, bits);
2736 return (unsigned long) bits;
2740 fatal_insn ("MMIX Internal: This is not a constant:", x);
2743 /* Worker function for TARGET_STRUCT_VALUE_RTX. */
2745 static rtx
2746 mmix_struct_value_rtx (tree fntype ATTRIBUTE_UNUSED,
2747 int incoming ATTRIBUTE_UNUSED)
2749 return gen_rtx_REG (Pmode, MMIX_STRUCT_VALUE_REGNUM);
2753 * Local variables:
2754 * eval: (c-set-style "gnu")
2755 * indent-tabs-mode: t
2756 * End: