[PATCH] [PR testsuite/67959]Minor cleanup for ssa-thread-13.c
[official-gcc.git] / gcc / rtl.h
blobd6edc719ac0e95d6d814d753db54da7c132a110e
1 /* Register Transfer Language (RTL) definitions for GCC
2 Copyright (C) 1987-2015 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 #ifndef GCC_RTL_H
21 #define GCC_RTL_H
23 /* This file is occasionally included by generator files which expect
24 machmode.h and other files to exist and would not normally have been
25 included by coretypes.h. */
26 #ifdef GENERATOR_FILE
27 #include "machmode.h"
28 #include "signop.h"
29 #include "wide-int.h"
30 #include "double-int.h"
31 #include "real.h"
32 #include "fixed-value.h"
33 #include "statistics.h"
34 #include "vec.h"
35 #include "hash-table.h"
36 #include "hash-set.h"
37 #include "input.h"
38 #include "is-a.h"
39 #endif /* GENERATOR_FILE */
41 #include "hard-reg-set.h"
43 /* Value used by some passes to "recognize" noop moves as valid
44 instructions. */
45 #define NOOP_MOVE_INSN_CODE INT_MAX
47 /* Register Transfer Language EXPRESSIONS CODES */
49 #define RTX_CODE enum rtx_code
50 enum rtx_code {
52 #define DEF_RTL_EXPR(ENUM, NAME, FORMAT, CLASS) ENUM ,
53 #include "rtl.def" /* rtl expressions are documented here */
54 #undef DEF_RTL_EXPR
56 LAST_AND_UNUSED_RTX_CODE}; /* A convenient way to get a value for
57 NUM_RTX_CODE.
58 Assumes default enum value assignment. */
60 /* The cast here, saves many elsewhere. */
61 #define NUM_RTX_CODE ((int) LAST_AND_UNUSED_RTX_CODE)
63 /* Similar, but since generator files get more entries... */
64 #ifdef GENERATOR_FILE
65 # define NON_GENERATOR_NUM_RTX_CODE ((int) MATCH_OPERAND)
66 #endif
68 /* Register Transfer Language EXPRESSIONS CODE CLASSES */
70 enum rtx_class {
71 /* We check bit 0-1 of some rtx class codes in the predicates below. */
73 /* Bit 0 = comparison if 0, arithmetic is 1
74 Bit 1 = 1 if commutative. */
75 RTX_COMPARE, /* 0 */
76 RTX_COMM_COMPARE,
77 RTX_BIN_ARITH,
78 RTX_COMM_ARITH,
80 /* Must follow the four preceding values. */
81 RTX_UNARY, /* 4 */
83 RTX_EXTRA,
84 RTX_MATCH,
85 RTX_INSN,
87 /* Bit 0 = 1 if constant. */
88 RTX_OBJ, /* 8 */
89 RTX_CONST_OBJ,
91 RTX_TERNARY,
92 RTX_BITFIELD_OPS,
93 RTX_AUTOINC
96 #define RTX_OBJ_MASK (~1)
97 #define RTX_OBJ_RESULT (RTX_OBJ & RTX_OBJ_MASK)
98 #define RTX_COMPARE_MASK (~1)
99 #define RTX_COMPARE_RESULT (RTX_COMPARE & RTX_COMPARE_MASK)
100 #define RTX_ARITHMETIC_MASK (~1)
101 #define RTX_ARITHMETIC_RESULT (RTX_COMM_ARITH & RTX_ARITHMETIC_MASK)
102 #define RTX_BINARY_MASK (~3)
103 #define RTX_BINARY_RESULT (RTX_COMPARE & RTX_BINARY_MASK)
104 #define RTX_COMMUTATIVE_MASK (~2)
105 #define RTX_COMMUTATIVE_RESULT (RTX_COMM_COMPARE & RTX_COMMUTATIVE_MASK)
106 #define RTX_NON_COMMUTATIVE_RESULT (RTX_COMPARE & RTX_COMMUTATIVE_MASK)
108 extern const unsigned char rtx_length[NUM_RTX_CODE];
109 #define GET_RTX_LENGTH(CODE) (rtx_length[(int) (CODE)])
111 extern const char * const rtx_name[NUM_RTX_CODE];
112 #define GET_RTX_NAME(CODE) (rtx_name[(int) (CODE)])
114 extern const char * const rtx_format[NUM_RTX_CODE];
115 #define GET_RTX_FORMAT(CODE) (rtx_format[(int) (CODE)])
117 extern const enum rtx_class rtx_class[NUM_RTX_CODE];
118 #define GET_RTX_CLASS(CODE) (rtx_class[(int) (CODE)])
120 /* True if CODE is part of the insn chain (i.e. has INSN_UID, PREV_INSN
121 and NEXT_INSN fields). */
122 #define INSN_CHAIN_CODE_P(CODE) IN_RANGE (CODE, DEBUG_INSN, NOTE)
124 extern const unsigned char rtx_code_size[NUM_RTX_CODE];
125 extern const unsigned char rtx_next[NUM_RTX_CODE];
127 /* The flags and bitfields of an ADDR_DIFF_VEC. BASE is the base label
128 relative to which the offsets are calculated, as explained in rtl.def. */
129 struct addr_diff_vec_flags
131 /* Set at the start of shorten_branches - ONLY WHEN OPTIMIZING - : */
132 unsigned min_align: 8;
133 /* Flags: */
134 unsigned base_after_vec: 1; /* BASE is after the ADDR_DIFF_VEC. */
135 unsigned min_after_vec: 1; /* minimum address target label is
136 after the ADDR_DIFF_VEC. */
137 unsigned max_after_vec: 1; /* maximum address target label is
138 after the ADDR_DIFF_VEC. */
139 unsigned min_after_base: 1; /* minimum address target label is
140 after BASE. */
141 unsigned max_after_base: 1; /* maximum address target label is
142 after BASE. */
143 /* Set by the actual branch shortening process - ONLY WHEN OPTIMIZING - : */
144 unsigned offset_unsigned: 1; /* offsets have to be treated as unsigned. */
145 unsigned : 2;
146 unsigned scale : 8;
149 /* Structure used to describe the attributes of a MEM. These are hashed
150 so MEMs that the same attributes share a data structure. This means
151 they cannot be modified in place. */
152 struct GTY(()) mem_attrs
154 /* The expression that the MEM accesses, or null if not known.
155 This expression might be larger than the memory reference itself.
156 (In other words, the MEM might access only part of the object.) */
157 tree expr;
159 /* The offset of the memory reference from the start of EXPR.
160 Only valid if OFFSET_KNOWN_P. */
161 HOST_WIDE_INT offset;
163 /* The size of the memory reference in bytes. Only valid if
164 SIZE_KNOWN_P. */
165 HOST_WIDE_INT size;
167 /* The alias set of the memory reference. */
168 alias_set_type alias;
170 /* The alignment of the reference in bits. Always a multiple of
171 BITS_PER_UNIT. Note that EXPR may have a stricter alignment
172 than the memory reference itself. */
173 unsigned int align;
175 /* The address space that the memory reference uses. */
176 unsigned char addrspace;
178 /* True if OFFSET is known. */
179 bool offset_known_p;
181 /* True if SIZE is known. */
182 bool size_known_p;
185 /* Structure used to describe the attributes of a REG in similar way as
186 mem_attrs does for MEM above. Note that the OFFSET field is calculated
187 in the same way as for mem_attrs, rather than in the same way as a
188 SUBREG_BYTE. For example, if a big-endian target stores a byte
189 object in the low part of a 4-byte register, the OFFSET field
190 will be -3 rather than 0. */
192 struct GTY((for_user)) reg_attrs {
193 tree decl; /* decl corresponding to REG. */
194 HOST_WIDE_INT offset; /* Offset from start of DECL. */
197 /* Common union for an element of an rtx. */
199 union rtunion
201 int rt_int;
202 unsigned int rt_uint;
203 const char *rt_str;
204 rtx rt_rtx;
205 rtvec rt_rtvec;
206 machine_mode rt_type;
207 addr_diff_vec_flags rt_addr_diff_vec_flags;
208 struct cselib_val *rt_cselib;
209 tree rt_tree;
210 basic_block rt_bb;
211 mem_attrs *rt_mem;
212 struct constant_descriptor_rtx *rt_constant;
213 struct dw_cfi_node *rt_cfi;
216 /* Describes the properties of a REG. */
217 struct GTY(()) reg_info {
218 /* The value of REGNO. */
219 unsigned int regno;
221 /* The value of REG_NREGS. */
222 unsigned int nregs : 8;
223 unsigned int unused : 24;
225 /* The value of REG_ATTRS. */
226 reg_attrs *attrs;
229 /* This structure remembers the position of a SYMBOL_REF within an
230 object_block structure. A SYMBOL_REF only provides this information
231 if SYMBOL_REF_HAS_BLOCK_INFO_P is true. */
232 struct GTY(()) block_symbol {
233 /* The usual SYMBOL_REF fields. */
234 rtunion GTY ((skip)) fld[2];
236 /* The block that contains this object. */
237 struct object_block *block;
239 /* The offset of this object from the start of its block. It is negative
240 if the symbol has not yet been assigned an offset. */
241 HOST_WIDE_INT offset;
244 /* Describes a group of objects that are to be placed together in such
245 a way that their relative positions are known. */
246 struct GTY((for_user)) object_block {
247 /* The section in which these objects should be placed. */
248 section *sect;
250 /* The alignment of the first object, measured in bits. */
251 unsigned int alignment;
253 /* The total size of the objects, measured in bytes. */
254 HOST_WIDE_INT size;
256 /* The SYMBOL_REFs for each object. The vector is sorted in
257 order of increasing offset and the following conditions will
258 hold for each element X:
260 SYMBOL_REF_HAS_BLOCK_INFO_P (X)
261 !SYMBOL_REF_ANCHOR_P (X)
262 SYMBOL_REF_BLOCK (X) == [address of this structure]
263 SYMBOL_REF_BLOCK_OFFSET (X) >= 0. */
264 vec<rtx, va_gc> *objects;
266 /* All the anchor SYMBOL_REFs used to address these objects, sorted
267 in order of increasing offset, and then increasing TLS model.
268 The following conditions will hold for each element X in this vector:
270 SYMBOL_REF_HAS_BLOCK_INFO_P (X)
271 SYMBOL_REF_ANCHOR_P (X)
272 SYMBOL_REF_BLOCK (X) == [address of this structure]
273 SYMBOL_REF_BLOCK_OFFSET (X) >= 0. */
274 vec<rtx, va_gc> *anchors;
277 struct GTY((variable_size)) hwivec_def {
278 HOST_WIDE_INT elem[1];
281 /* Number of elements of the HWIVEC if RTX is a CONST_WIDE_INT. */
282 #define CWI_GET_NUM_ELEM(RTX) \
283 ((int)RTL_FLAG_CHECK1("CWI_GET_NUM_ELEM", (RTX), CONST_WIDE_INT)->u2.num_elem)
284 #define CWI_PUT_NUM_ELEM(RTX, NUM) \
285 (RTL_FLAG_CHECK1("CWI_PUT_NUM_ELEM", (RTX), CONST_WIDE_INT)->u2.num_elem = (NUM))
287 /* RTL expression ("rtx"). */
289 /* The GTY "desc" and "tag" options below are a kludge: we need a desc
290 field for gengtype to recognize that inheritance is occurring,
291 so that all subclasses are redirected to the traversal hook for the
292 base class.
293 However, all of the fields are in the base class, and special-casing
294 is at work. Hence we use desc and tag of 0, generating a switch
295 statement of the form:
296 switch (0)
298 case 0: // all the work happens here
300 in order to work with the existing special-casing in gengtype. */
302 struct GTY((desc("0"), tag("0"),
303 chain_next ("RTX_NEXT (&%h)"),
304 chain_prev ("RTX_PREV (&%h)"))) rtx_def {
305 /* The kind of expression this is. */
306 ENUM_BITFIELD(rtx_code) code: 16;
308 /* The kind of value the expression has. */
309 ENUM_BITFIELD(machine_mode) mode : 8;
311 /* 1 in a MEM if we should keep the alias set for this mem unchanged
312 when we access a component.
313 1 in a JUMP_INSN if it is a crossing jump.
314 1 in a CALL_INSN if it is a sibling call.
315 1 in a SET that is for a return.
316 In a CODE_LABEL, part of the two-bit alternate entry field.
317 1 in a CONCAT is VAL_EXPR_IS_COPIED in var-tracking.c.
318 1 in a VALUE is SP_BASED_VALUE_P in cselib.c.
319 1 in a SUBREG generated by LRA for reload insns.
320 1 in a CALL for calls instrumented by Pointer Bounds Checker. */
321 unsigned int jump : 1;
322 /* In a CODE_LABEL, part of the two-bit alternate entry field.
323 1 in a MEM if it cannot trap.
324 1 in a CALL_INSN logically equivalent to
325 ECF_LOOPING_CONST_OR_PURE and DECL_LOOPING_CONST_OR_PURE_P. */
326 unsigned int call : 1;
327 /* 1 in a REG, MEM, or CONCAT if the value is set at most once, anywhere.
328 1 in a SUBREG used for SUBREG_PROMOTED_UNSIGNED_P.
329 1 in a SYMBOL_REF if it addresses something in the per-function
330 constants pool.
331 1 in a CALL_INSN logically equivalent to ECF_CONST and TREE_READONLY.
332 1 in a NOTE, or EXPR_LIST for a const call.
333 1 in a JUMP_INSN of an annulling branch.
334 1 in a CONCAT is VAL_EXPR_IS_CLOBBERED in var-tracking.c.
335 1 in a preserved VALUE is PRESERVED_VALUE_P in cselib.c.
336 1 in a clobber temporarily created for LRA. */
337 unsigned int unchanging : 1;
338 /* 1 in a MEM or ASM_OPERANDS expression if the memory reference is volatile.
339 1 in an INSN, CALL_INSN, JUMP_INSN, CODE_LABEL, BARRIER, or NOTE
340 if it has been deleted.
341 1 in a REG expression if corresponds to a variable declared by the user,
342 0 for an internally generated temporary.
343 1 in a SUBREG used for SUBREG_PROMOTED_UNSIGNED_P.
344 1 in a LABEL_REF, REG_LABEL_TARGET or REG_LABEL_OPERAND note for a
345 non-local label.
346 In a SYMBOL_REF, this flag is used for machine-specific purposes.
347 In a PREFETCH, this flag indicates that it should be considered a scheduling
348 barrier.
349 1 in a CONCAT is VAL_NEEDS_RESOLUTION in var-tracking.c. */
350 unsigned int volatil : 1;
351 /* 1 in a REG if the register is used only in exit code a loop.
352 1 in a SUBREG expression if was generated from a variable with a
353 promoted mode.
354 1 in a CODE_LABEL if the label is used for nonlocal gotos
355 and must not be deleted even if its count is zero.
356 1 in an INSN, JUMP_INSN or CALL_INSN if this insn must be scheduled
357 together with the preceding insn. Valid only within sched.
358 1 in an INSN, JUMP_INSN, or CALL_INSN if insn is in a delay slot and
359 from the target of a branch. Valid from reorg until end of compilation;
360 cleared before used.
362 The name of the field is historical. It used to be used in MEMs
363 to record whether the MEM accessed part of a structure. */
364 unsigned int in_struct : 1;
365 /* At the end of RTL generation, 1 if this rtx is used. This is used for
366 copying shared structure. See `unshare_all_rtl'.
367 In a REG, this is not needed for that purpose, and used instead
368 in `leaf_renumber_regs_insn'.
369 1 in a SYMBOL_REF, means that emit_library_call
370 has used it as the function.
371 1 in a CONCAT is VAL_HOLDS_TRACK_EXPR in var-tracking.c.
372 1 in a VALUE or DEBUG_EXPR is VALUE_RECURSED_INTO in var-tracking.c. */
373 unsigned int used : 1;
374 /* 1 in an INSN or a SET if this rtx is related to the call frame,
375 either changing how we compute the frame address or saving and
376 restoring registers in the prologue and epilogue.
377 1 in a REG or MEM if it is a pointer.
378 1 in a SYMBOL_REF if it addresses something in the per-function
379 constant string pool.
380 1 in a VALUE is VALUE_CHANGED in var-tracking.c. */
381 unsigned frame_related : 1;
382 /* 1 in a REG or PARALLEL that is the current function's return value.
383 1 in a SYMBOL_REF for a weak symbol.
384 1 in a CALL_INSN logically equivalent to ECF_PURE and DECL_PURE_P.
385 1 in a CONCAT is VAL_EXPR_HAS_REVERSE in var-tracking.c.
386 1 in a VALUE or DEBUG_EXPR is NO_LOC_P in var-tracking.c. */
387 unsigned return_val : 1;
389 union {
390 /* The final union field is aligned to 64 bits on LP64 hosts,
391 giving a 32-bit gap after the fields above. We optimize the
392 layout for that case and use the gap for extra code-specific
393 information. */
395 /* The ORIGINAL_REGNO of a REG. */
396 unsigned int original_regno;
398 /* The INSN_UID of an RTX_INSN-class code. */
399 int insn_uid;
401 /* The SYMBOL_REF_FLAGS of a SYMBOL_REF. */
402 unsigned int symbol_ref_flags;
404 /* The PAT_VAR_LOCATION_STATUS of a VAR_LOCATION. */
405 enum var_init_status var_location_status;
407 /* In a CONST_WIDE_INT (aka hwivec_def), this is the number of
408 HOST_WIDE_INTs in the hwivec_def. */
409 unsigned int num_elem;
410 } GTY ((skip)) u2;
412 /* The first element of the operands of this rtx.
413 The number of operands and their types are controlled
414 by the `code' field, according to rtl.def. */
415 union u {
416 rtunion fld[1];
417 HOST_WIDE_INT hwint[1];
418 struct reg_info reg;
419 struct block_symbol block_sym;
420 struct real_value rv;
421 struct fixed_value fv;
422 struct hwivec_def hwiv;
423 } GTY ((special ("rtx_def"), desc ("GET_CODE (&%0)"))) u;
426 /* A node for constructing singly-linked lists of rtx. */
428 class GTY(()) rtx_expr_list : public rtx_def
430 /* No extra fields, but adds invariant: (GET_CODE (X) == EXPR_LIST). */
432 public:
433 /* Get next in list. */
434 rtx_expr_list *next () const;
436 /* Get at the underlying rtx. */
437 rtx element () const;
440 template <>
441 template <>
442 inline bool
443 is_a_helper <rtx_expr_list *>::test (rtx rt)
445 return rt->code == EXPR_LIST;
448 class GTY(()) rtx_insn_list : public rtx_def
450 /* No extra fields, but adds invariant: (GET_CODE (X) == INSN_LIST).
452 This is an instance of:
454 DEF_RTL_EXPR(INSN_LIST, "insn_list", "ue", RTX_EXTRA)
456 i.e. a node for constructing singly-linked lists of rtx_insn *, where
457 the list is "external" to the insn (as opposed to the doubly-linked
458 list embedded within rtx_insn itself). */
460 public:
461 /* Get next in list. */
462 rtx_insn_list *next () const;
464 /* Get at the underlying instruction. */
465 rtx_insn *insn () const;
469 template <>
470 template <>
471 inline bool
472 is_a_helper <rtx_insn_list *>::test (rtx rt)
474 return rt->code == INSN_LIST;
477 /* A node with invariant GET_CODE (X) == SEQUENCE i.e. a vector of rtx,
478 typically (but not always) of rtx_insn *, used in the late passes. */
480 class GTY(()) rtx_sequence : public rtx_def
482 /* No extra fields, but adds invariant: (GET_CODE (X) == SEQUENCE). */
484 public:
485 /* Get number of elements in sequence. */
486 int len () const;
488 /* Get i-th element of the sequence. */
489 rtx element (int index) const;
491 /* Get i-th element of the sequence, with a checked cast to
492 rtx_insn *. */
493 rtx_insn *insn (int index) const;
496 template <>
497 template <>
498 inline bool
499 is_a_helper <rtx_sequence *>::test (rtx rt)
501 return rt->code == SEQUENCE;
504 template <>
505 template <>
506 inline bool
507 is_a_helper <const rtx_sequence *>::test (const_rtx rt)
509 return rt->code == SEQUENCE;
512 class GTY(()) rtx_insn : public rtx_def
514 public:
515 /* No extra fields, but adds the invariant:
517 (INSN_P (X)
518 || NOTE_P (X)
519 || JUMP_TABLE_DATA_P (X)
520 || BARRIER_P (X)
521 || LABEL_P (X))
523 i.e. that we must be able to use the following:
524 INSN_UID ()
525 NEXT_INSN ()
526 PREV_INSN ()
527 i.e. we have an rtx that has an INSN_UID field and can be part of
528 a linked list of insns.
531 /* Returns true if this insn has been deleted. */
533 bool deleted () const { return volatil; }
535 /* Mark this insn as deleted. */
537 void set_deleted () { volatil = true; }
539 /* Mark this insn as not deleted. */
541 void set_undeleted () { volatil = false; }
544 /* Subclasses of rtx_insn. */
546 class GTY(()) rtx_debug_insn : public rtx_insn
548 /* No extra fields, but adds the invariant:
549 DEBUG_INSN_P (X) aka (GET_CODE (X) == DEBUG_INSN)
550 i.e. an annotation for tracking variable assignments.
552 This is an instance of:
553 DEF_RTL_EXPR(DEBUG_INSN, "debug_insn", "uuBeiie", RTX_INSN)
554 from rtl.def. */
557 class GTY(()) rtx_nonjump_insn : public rtx_insn
559 /* No extra fields, but adds the invariant:
560 NONJUMP_INSN_P (X) aka (GET_CODE (X) == INSN)
561 i.e an instruction that cannot jump.
563 This is an instance of:
564 DEF_RTL_EXPR(INSN, "insn", "uuBeiie", RTX_INSN)
565 from rtl.def. */
568 class GTY(()) rtx_jump_insn : public rtx_insn
570 public:
571 /* No extra fields, but adds the invariant:
572 JUMP_P (X) aka (GET_CODE (X) == JUMP_INSN)
573 i.e. an instruction that can possibly jump.
575 This is an instance of:
576 DEF_RTL_EXPR(JUMP_INSN, "jump_insn", "uuBeiie0", RTX_INSN)
577 from rtl.def. */
579 /* Returns jump target of this instruction. The returned value is not
580 necessarily a code label: it may also be a RETURN or SIMPLE_RETURN
581 expression. Also, when the code label is marked "deleted", it is
582 replaced by a NOTE. In some cases the value is NULL_RTX. */
584 inline rtx jump_label () const;
586 /* Returns jump target cast to rtx_code_label *. */
588 inline rtx_code_label *jump_target () const;
590 /* Set jump target. */
592 inline void set_jump_target (rtx_code_label *);
595 class GTY(()) rtx_call_insn : public rtx_insn
597 /* No extra fields, but adds the invariant:
598 CALL_P (X) aka (GET_CODE (X) == CALL_INSN)
599 i.e. an instruction that can possibly call a subroutine
600 but which will not change which instruction comes next
601 in the current function.
603 This is an instance of:
604 DEF_RTL_EXPR(CALL_INSN, "call_insn", "uuBeiiee", RTX_INSN)
605 from rtl.def. */
608 class GTY(()) rtx_jump_table_data : public rtx_insn
610 /* No extra fields, but adds the invariant:
611 JUMP_TABLE_DATA_P (X) aka (GET_CODE (INSN) == JUMP_TABLE_DATA)
612 i.e. a data for a jump table, considered an instruction for
613 historical reasons.
615 This is an instance of:
616 DEF_RTL_EXPR(JUMP_TABLE_DATA, "jump_table_data", "uuBe0000", RTX_INSN)
617 from rtl.def. */
619 public:
621 /* This can be either:
623 (a) a table of absolute jumps, in which case PATTERN (this) is an
624 ADDR_VEC with arg 0 a vector of labels, or
626 (b) a table of relative jumps (e.g. for -fPIC), in which case
627 PATTERN (this) is an ADDR_DIFF_VEC, with arg 0 a LABEL_REF and
628 arg 1 the vector of labels.
630 This method gets the underlying vec. */
632 inline rtvec get_labels () const;
635 class GTY(()) rtx_barrier : public rtx_insn
637 /* No extra fields, but adds the invariant:
638 BARRIER_P (X) aka (GET_CODE (X) == BARRIER)
639 i.e. a marker that indicates that control will not flow through.
641 This is an instance of:
642 DEF_RTL_EXPR(BARRIER, "barrier", "uu00000", RTX_EXTRA)
643 from rtl.def. */
646 class GTY(()) rtx_code_label : public rtx_insn
648 /* No extra fields, but adds the invariant:
649 LABEL_P (X) aka (GET_CODE (X) == CODE_LABEL)
650 i.e. a label in the assembler.
652 This is an instance of:
653 DEF_RTL_EXPR(CODE_LABEL, "code_label", "uuB00is", RTX_EXTRA)
654 from rtl.def. */
657 class GTY(()) rtx_note : public rtx_insn
659 /* No extra fields, but adds the invariant:
660 NOTE_P(X) aka (GET_CODE (X) == NOTE)
661 i.e. a note about the corresponding source code.
663 This is an instance of:
664 DEF_RTL_EXPR(NOTE, "note", "uuB0ni", RTX_EXTRA)
665 from rtl.def. */
668 /* The size in bytes of an rtx header (code, mode and flags). */
669 #define RTX_HDR_SIZE offsetof (struct rtx_def, u)
671 /* The size in bytes of an rtx with code CODE. */
672 #define RTX_CODE_SIZE(CODE) rtx_code_size[CODE]
674 #define NULL_RTX (rtx) 0
676 /* The "next" and "previous" RTX, relative to this one. */
678 #define RTX_NEXT(X) (rtx_next[GET_CODE (X)] == 0 ? NULL \
679 : *(rtx *)(((char *)X) + rtx_next[GET_CODE (X)]))
681 /* FIXME: the "NEXT_INSN (PREV_INSN (X)) == X" condition shouldn't be needed.
683 #define RTX_PREV(X) ((INSN_P (X) \
684 || NOTE_P (X) \
685 || JUMP_TABLE_DATA_P (X) \
686 || BARRIER_P (X) \
687 || LABEL_P (X)) \
688 && PREV_INSN (as_a <rtx_insn *> (X)) != NULL \
689 && NEXT_INSN (PREV_INSN (as_a <rtx_insn *> (X))) == X \
690 ? PREV_INSN (as_a <rtx_insn *> (X)) : NULL)
692 /* Define macros to access the `code' field of the rtx. */
694 #define GET_CODE(RTX) ((enum rtx_code) (RTX)->code)
695 #define PUT_CODE(RTX, CODE) ((RTX)->code = (CODE))
697 #define GET_MODE(RTX) ((machine_mode) (RTX)->mode)
698 #define PUT_MODE_RAW(RTX, MODE) ((RTX)->mode = (MODE))
700 /* RTL vector. These appear inside RTX's when there is a need
701 for a variable number of things. The principle use is inside
702 PARALLEL expressions. */
704 struct GTY(()) rtvec_def {
705 int num_elem; /* number of elements */
706 rtx GTY ((length ("%h.num_elem"))) elem[1];
709 #define NULL_RTVEC (rtvec) 0
711 #define GET_NUM_ELEM(RTVEC) ((RTVEC)->num_elem)
712 #define PUT_NUM_ELEM(RTVEC, NUM) ((RTVEC)->num_elem = (NUM))
714 /* Predicate yielding nonzero iff X is an rtx for a register. */
715 #define REG_P(X) (GET_CODE (X) == REG)
717 /* Predicate yielding nonzero iff X is an rtx for a memory location. */
718 #define MEM_P(X) (GET_CODE (X) == MEM)
720 #if TARGET_SUPPORTS_WIDE_INT
722 /* Match CONST_*s that can represent compile-time constant integers. */
723 #define CASE_CONST_SCALAR_INT \
724 case CONST_INT: \
725 case CONST_WIDE_INT
727 /* Match CONST_*s for which pointer equality corresponds to value
728 equality. */
729 #define CASE_CONST_UNIQUE \
730 case CONST_INT: \
731 case CONST_WIDE_INT: \
732 case CONST_DOUBLE: \
733 case CONST_FIXED
735 /* Match all CONST_* rtxes. */
736 #define CASE_CONST_ANY \
737 case CONST_INT: \
738 case CONST_WIDE_INT: \
739 case CONST_DOUBLE: \
740 case CONST_FIXED: \
741 case CONST_VECTOR
743 #else
745 /* Match CONST_*s that can represent compile-time constant integers. */
746 #define CASE_CONST_SCALAR_INT \
747 case CONST_INT: \
748 case CONST_DOUBLE
750 /* Match CONST_*s for which pointer equality corresponds to value
751 equality. */
752 #define CASE_CONST_UNIQUE \
753 case CONST_INT: \
754 case CONST_DOUBLE: \
755 case CONST_FIXED
757 /* Match all CONST_* rtxes. */
758 #define CASE_CONST_ANY \
759 case CONST_INT: \
760 case CONST_DOUBLE: \
761 case CONST_FIXED: \
762 case CONST_VECTOR
763 #endif
765 /* Predicate yielding nonzero iff X is an rtx for a constant integer. */
766 #define CONST_INT_P(X) (GET_CODE (X) == CONST_INT)
768 /* Predicate yielding nonzero iff X is an rtx for a constant integer. */
769 #define CONST_WIDE_INT_P(X) (GET_CODE (X) == CONST_WIDE_INT)
771 /* Predicate yielding nonzero iff X is an rtx for a constant fixed-point. */
772 #define CONST_FIXED_P(X) (GET_CODE (X) == CONST_FIXED)
774 /* Predicate yielding true iff X is an rtx for a double-int
775 or floating point constant. */
776 #define CONST_DOUBLE_P(X) (GET_CODE (X) == CONST_DOUBLE)
778 /* Predicate yielding true iff X is an rtx for a double-int. */
779 #define CONST_DOUBLE_AS_INT_P(X) \
780 (GET_CODE (X) == CONST_DOUBLE && GET_MODE (X) == VOIDmode)
782 /* Predicate yielding true iff X is an rtx for a integer const. */
783 #if TARGET_SUPPORTS_WIDE_INT
784 #define CONST_SCALAR_INT_P(X) \
785 (CONST_INT_P (X) || CONST_WIDE_INT_P (X))
786 #else
787 #define CONST_SCALAR_INT_P(X) \
788 (CONST_INT_P (X) || CONST_DOUBLE_AS_INT_P (X))
789 #endif
791 /* Predicate yielding true iff X is an rtx for a double-int. */
792 #define CONST_DOUBLE_AS_FLOAT_P(X) \
793 (GET_CODE (X) == CONST_DOUBLE && GET_MODE (X) != VOIDmode)
795 /* Predicate yielding nonzero iff X is a label insn. */
796 #define LABEL_P(X) (GET_CODE (X) == CODE_LABEL)
798 /* Predicate yielding nonzero iff X is a jump insn. */
799 #define JUMP_P(X) (GET_CODE (X) == JUMP_INSN)
801 /* Predicate yielding nonzero iff X is a call insn. */
802 #define CALL_P(X) (GET_CODE (X) == CALL_INSN)
804 /* Predicate yielding nonzero iff X is an insn that cannot jump. */
805 #define NONJUMP_INSN_P(X) (GET_CODE (X) == INSN)
807 /* Predicate yielding nonzero iff X is a debug note/insn. */
808 #define DEBUG_INSN_P(X) (GET_CODE (X) == DEBUG_INSN)
810 /* Predicate yielding nonzero iff X is an insn that is not a debug insn. */
811 #define NONDEBUG_INSN_P(X) (INSN_P (X) && !DEBUG_INSN_P (X))
813 /* Nonzero if DEBUG_INSN_P may possibly hold. */
814 #define MAY_HAVE_DEBUG_INSNS (flag_var_tracking_assignments)
816 /* Predicate yielding nonzero iff X is a real insn. */
817 #define INSN_P(X) \
818 (NONJUMP_INSN_P (X) || DEBUG_INSN_P (X) || JUMP_P (X) || CALL_P (X))
820 /* Predicate yielding nonzero iff X is a note insn. */
821 #define NOTE_P(X) (GET_CODE (X) == NOTE)
823 /* Predicate yielding nonzero iff X is a barrier insn. */
824 #define BARRIER_P(X) (GET_CODE (X) == BARRIER)
826 /* Predicate yielding nonzero iff X is a data for a jump table. */
827 #define JUMP_TABLE_DATA_P(INSN) (GET_CODE (INSN) == JUMP_TABLE_DATA)
829 /* Predicate yielding nonzero iff RTX is a subreg. */
830 #define SUBREG_P(RTX) (GET_CODE (RTX) == SUBREG)
832 template <>
833 template <>
834 inline bool
835 is_a_helper <rtx_insn *>::test (rtx rt)
837 return (INSN_P (rt)
838 || NOTE_P (rt)
839 || JUMP_TABLE_DATA_P (rt)
840 || BARRIER_P (rt)
841 || LABEL_P (rt));
844 template <>
845 template <>
846 inline bool
847 is_a_helper <const rtx_insn *>::test (const_rtx rt)
849 return (INSN_P (rt)
850 || NOTE_P (rt)
851 || JUMP_TABLE_DATA_P (rt)
852 || BARRIER_P (rt)
853 || LABEL_P (rt));
856 template <>
857 template <>
858 inline bool
859 is_a_helper <rtx_debug_insn *>::test (rtx rt)
861 return DEBUG_INSN_P (rt);
864 template <>
865 template <>
866 inline bool
867 is_a_helper <rtx_nonjump_insn *>::test (rtx rt)
869 return NONJUMP_INSN_P (rt);
872 template <>
873 template <>
874 inline bool
875 is_a_helper <rtx_jump_insn *>::test (rtx rt)
877 return JUMP_P (rt);
880 template <>
881 template <>
882 inline bool
883 is_a_helper <rtx_jump_insn *>::test (rtx_insn *insn)
885 return JUMP_P (insn);
888 template <>
889 template <>
890 inline bool
891 is_a_helper <rtx_call_insn *>::test (rtx rt)
893 return CALL_P (rt);
896 template <>
897 template <>
898 inline bool
899 is_a_helper <rtx_call_insn *>::test (rtx_insn *insn)
901 return CALL_P (insn);
904 template <>
905 template <>
906 inline bool
907 is_a_helper <rtx_jump_table_data *>::test (rtx rt)
909 return JUMP_TABLE_DATA_P (rt);
912 template <>
913 template <>
914 inline bool
915 is_a_helper <rtx_jump_table_data *>::test (rtx_insn *insn)
917 return JUMP_TABLE_DATA_P (insn);
920 template <>
921 template <>
922 inline bool
923 is_a_helper <rtx_barrier *>::test (rtx rt)
925 return BARRIER_P (rt);
928 template <>
929 template <>
930 inline bool
931 is_a_helper <rtx_code_label *>::test (rtx rt)
933 return LABEL_P (rt);
936 template <>
937 template <>
938 inline bool
939 is_a_helper <rtx_code_label *>::test (rtx_insn *insn)
941 return LABEL_P (insn);
944 template <>
945 template <>
946 inline bool
947 is_a_helper <rtx_note *>::test (rtx rt)
949 return NOTE_P (rt);
952 template <>
953 template <>
954 inline bool
955 is_a_helper <rtx_note *>::test (rtx_insn *insn)
957 return NOTE_P (insn);
960 /* Predicate yielding nonzero iff X is a return or simple_return. */
961 #define ANY_RETURN_P(X) \
962 (GET_CODE (X) == RETURN || GET_CODE (X) == SIMPLE_RETURN)
964 /* 1 if X is a unary operator. */
966 #define UNARY_P(X) \
967 (GET_RTX_CLASS (GET_CODE (X)) == RTX_UNARY)
969 /* 1 if X is a binary operator. */
971 #define BINARY_P(X) \
972 ((GET_RTX_CLASS (GET_CODE (X)) & RTX_BINARY_MASK) == RTX_BINARY_RESULT)
974 /* 1 if X is an arithmetic operator. */
976 #define ARITHMETIC_P(X) \
977 ((GET_RTX_CLASS (GET_CODE (X)) & RTX_ARITHMETIC_MASK) \
978 == RTX_ARITHMETIC_RESULT)
980 /* 1 if X is an arithmetic operator. */
982 #define COMMUTATIVE_ARITH_P(X) \
983 (GET_RTX_CLASS (GET_CODE (X)) == RTX_COMM_ARITH)
985 /* 1 if X is a commutative arithmetic operator or a comparison operator.
986 These two are sometimes selected together because it is possible to
987 swap the two operands. */
989 #define SWAPPABLE_OPERANDS_P(X) \
990 ((1 << GET_RTX_CLASS (GET_CODE (X))) \
991 & ((1 << RTX_COMM_ARITH) | (1 << RTX_COMM_COMPARE) \
992 | (1 << RTX_COMPARE)))
994 /* 1 if X is a non-commutative operator. */
996 #define NON_COMMUTATIVE_P(X) \
997 ((GET_RTX_CLASS (GET_CODE (X)) & RTX_COMMUTATIVE_MASK) \
998 == RTX_NON_COMMUTATIVE_RESULT)
1000 /* 1 if X is a commutative operator on integers. */
1002 #define COMMUTATIVE_P(X) \
1003 ((GET_RTX_CLASS (GET_CODE (X)) & RTX_COMMUTATIVE_MASK) \
1004 == RTX_COMMUTATIVE_RESULT)
1006 /* 1 if X is a relational operator. */
1008 #define COMPARISON_P(X) \
1009 ((GET_RTX_CLASS (GET_CODE (X)) & RTX_COMPARE_MASK) == RTX_COMPARE_RESULT)
1011 /* 1 if X is a constant value that is an integer. */
1013 #define CONSTANT_P(X) \
1014 (GET_RTX_CLASS (GET_CODE (X)) == RTX_CONST_OBJ)
1016 /* 1 if X can be used to represent an object. */
1017 #define OBJECT_P(X) \
1018 ((GET_RTX_CLASS (GET_CODE (X)) & RTX_OBJ_MASK) == RTX_OBJ_RESULT)
1020 /* General accessor macros for accessing the fields of an rtx. */
1022 #if defined ENABLE_RTL_CHECKING && (GCC_VERSION >= 2007)
1023 /* The bit with a star outside the statement expr and an & inside is
1024 so that N can be evaluated only once. */
1025 #define RTL_CHECK1(RTX, N, C1) __extension__ \
1026 (*({ __typeof (RTX) const _rtx = (RTX); const int _n = (N); \
1027 const enum rtx_code _code = GET_CODE (_rtx); \
1028 if (_n < 0 || _n >= GET_RTX_LENGTH (_code)) \
1029 rtl_check_failed_bounds (_rtx, _n, __FILE__, __LINE__, \
1030 __FUNCTION__); \
1031 if (GET_RTX_FORMAT (_code)[_n] != C1) \
1032 rtl_check_failed_type1 (_rtx, _n, C1, __FILE__, __LINE__, \
1033 __FUNCTION__); \
1034 &_rtx->u.fld[_n]; }))
1036 #define RTL_CHECK2(RTX, N, C1, C2) __extension__ \
1037 (*({ __typeof (RTX) const _rtx = (RTX); const int _n = (N); \
1038 const enum rtx_code _code = GET_CODE (_rtx); \
1039 if (_n < 0 || _n >= GET_RTX_LENGTH (_code)) \
1040 rtl_check_failed_bounds (_rtx, _n, __FILE__, __LINE__, \
1041 __FUNCTION__); \
1042 if (GET_RTX_FORMAT (_code)[_n] != C1 \
1043 && GET_RTX_FORMAT (_code)[_n] != C2) \
1044 rtl_check_failed_type2 (_rtx, _n, C1, C2, __FILE__, __LINE__, \
1045 __FUNCTION__); \
1046 &_rtx->u.fld[_n]; }))
1048 #define RTL_CHECKC1(RTX, N, C) __extension__ \
1049 (*({ __typeof (RTX) const _rtx = (RTX); const int _n = (N); \
1050 if (GET_CODE (_rtx) != (C)) \
1051 rtl_check_failed_code1 (_rtx, (C), __FILE__, __LINE__, \
1052 __FUNCTION__); \
1053 &_rtx->u.fld[_n]; }))
1055 #define RTL_CHECKC2(RTX, N, C1, C2) __extension__ \
1056 (*({ __typeof (RTX) const _rtx = (RTX); const int _n = (N); \
1057 const enum rtx_code _code = GET_CODE (_rtx); \
1058 if (_code != (C1) && _code != (C2)) \
1059 rtl_check_failed_code2 (_rtx, (C1), (C2), __FILE__, __LINE__, \
1060 __FUNCTION__); \
1061 &_rtx->u.fld[_n]; }))
1063 #define RTVEC_ELT(RTVEC, I) __extension__ \
1064 (*({ __typeof (RTVEC) const _rtvec = (RTVEC); const int _i = (I); \
1065 if (_i < 0 || _i >= GET_NUM_ELEM (_rtvec)) \
1066 rtvec_check_failed_bounds (_rtvec, _i, __FILE__, __LINE__, \
1067 __FUNCTION__); \
1068 &_rtvec->elem[_i]; }))
1070 #define XWINT(RTX, N) __extension__ \
1071 (*({ __typeof (RTX) const _rtx = (RTX); const int _n = (N); \
1072 const enum rtx_code _code = GET_CODE (_rtx); \
1073 if (_n < 0 || _n >= GET_RTX_LENGTH (_code)) \
1074 rtl_check_failed_bounds (_rtx, _n, __FILE__, __LINE__, \
1075 __FUNCTION__); \
1076 if (GET_RTX_FORMAT (_code)[_n] != 'w') \
1077 rtl_check_failed_type1 (_rtx, _n, 'w', __FILE__, __LINE__, \
1078 __FUNCTION__); \
1079 &_rtx->u.hwint[_n]; }))
1081 #define CWI_ELT(RTX, I) __extension__ \
1082 (*({ __typeof (RTX) const _cwi = (RTX); \
1083 int _max = CWI_GET_NUM_ELEM (_cwi); \
1084 const int _i = (I); \
1085 if (_i < 0 || _i >= _max) \
1086 cwi_check_failed_bounds (_cwi, _i, __FILE__, __LINE__, \
1087 __FUNCTION__); \
1088 &_cwi->u.hwiv.elem[_i]; }))
1090 #define XCWINT(RTX, N, C) __extension__ \
1091 (*({ __typeof (RTX) const _rtx = (RTX); \
1092 if (GET_CODE (_rtx) != (C)) \
1093 rtl_check_failed_code1 (_rtx, (C), __FILE__, __LINE__, \
1094 __FUNCTION__); \
1095 &_rtx->u.hwint[N]; }))
1097 #define XCMWINT(RTX, N, C, M) __extension__ \
1098 (*({ __typeof (RTX) const _rtx = (RTX); \
1099 if (GET_CODE (_rtx) != (C) || GET_MODE (_rtx) != (M)) \
1100 rtl_check_failed_code_mode (_rtx, (C), (M), false, __FILE__, \
1101 __LINE__, __FUNCTION__); \
1102 &_rtx->u.hwint[N]; }))
1104 #define XCNMPRV(RTX, C, M) __extension__ \
1105 ({ __typeof (RTX) const _rtx = (RTX); \
1106 if (GET_CODE (_rtx) != (C) || GET_MODE (_rtx) == (M)) \
1107 rtl_check_failed_code_mode (_rtx, (C), (M), true, __FILE__, \
1108 __LINE__, __FUNCTION__); \
1109 &_rtx->u.rv; })
1111 #define XCNMPFV(RTX, C, M) __extension__ \
1112 ({ __typeof (RTX) const _rtx = (RTX); \
1113 if (GET_CODE (_rtx) != (C) || GET_MODE (_rtx) == (M)) \
1114 rtl_check_failed_code_mode (_rtx, (C), (M), true, __FILE__, \
1115 __LINE__, __FUNCTION__); \
1116 &_rtx->u.fv; })
1118 #define REG_CHECK(RTX) __extension__ \
1119 ({ __typeof (RTX) const _rtx = (RTX); \
1120 if (GET_CODE (_rtx) != REG) \
1121 rtl_check_failed_code1 (_rtx, REG, __FILE__, __LINE__, \
1122 __FUNCTION__); \
1123 &_rtx->u.reg; })
1125 #define BLOCK_SYMBOL_CHECK(RTX) __extension__ \
1126 ({ __typeof (RTX) const _symbol = (RTX); \
1127 const unsigned int flags = SYMBOL_REF_FLAGS (_symbol); \
1128 if ((flags & SYMBOL_FLAG_HAS_BLOCK_INFO) == 0) \
1129 rtl_check_failed_block_symbol (__FILE__, __LINE__, \
1130 __FUNCTION__); \
1131 &_symbol->u.block_sym; })
1133 #define HWIVEC_CHECK(RTX,C) __extension__ \
1134 ({ __typeof (RTX) const _symbol = (RTX); \
1135 RTL_CHECKC1 (_symbol, 0, C); \
1136 &_symbol->u.hwiv; })
1138 extern void rtl_check_failed_bounds (const_rtx, int, const char *, int,
1139 const char *)
1140 ATTRIBUTE_NORETURN;
1141 extern void rtl_check_failed_type1 (const_rtx, int, int, const char *, int,
1142 const char *)
1143 ATTRIBUTE_NORETURN;
1144 extern void rtl_check_failed_type2 (const_rtx, int, int, int, const char *,
1145 int, const char *)
1146 ATTRIBUTE_NORETURN;
1147 extern void rtl_check_failed_code1 (const_rtx, enum rtx_code, const char *,
1148 int, const char *)
1149 ATTRIBUTE_NORETURN;
1150 extern void rtl_check_failed_code2 (const_rtx, enum rtx_code, enum rtx_code,
1151 const char *, int, const char *)
1152 ATTRIBUTE_NORETURN;
1153 extern void rtl_check_failed_code_mode (const_rtx, enum rtx_code, machine_mode,
1154 bool, const char *, int, const char *)
1155 ATTRIBUTE_NORETURN;
1156 extern void rtl_check_failed_block_symbol (const char *, int, const char *)
1157 ATTRIBUTE_NORETURN;
1158 extern void cwi_check_failed_bounds (const_rtx, int, const char *, int,
1159 const char *)
1160 ATTRIBUTE_NORETURN;
1161 extern void rtvec_check_failed_bounds (const_rtvec, int, const char *, int,
1162 const char *)
1163 ATTRIBUTE_NORETURN;
1165 #else /* not ENABLE_RTL_CHECKING */
1167 #define RTL_CHECK1(RTX, N, C1) ((RTX)->u.fld[N])
1168 #define RTL_CHECK2(RTX, N, C1, C2) ((RTX)->u.fld[N])
1169 #define RTL_CHECKC1(RTX, N, C) ((RTX)->u.fld[N])
1170 #define RTL_CHECKC2(RTX, N, C1, C2) ((RTX)->u.fld[N])
1171 #define RTVEC_ELT(RTVEC, I) ((RTVEC)->elem[I])
1172 #define XWINT(RTX, N) ((RTX)->u.hwint[N])
1173 #define CWI_ELT(RTX, I) ((RTX)->u.hwiv.elem[I])
1174 #define XCWINT(RTX, N, C) ((RTX)->u.hwint[N])
1175 #define XCMWINT(RTX, N, C, M) ((RTX)->u.hwint[N])
1176 #define XCNMWINT(RTX, N, C, M) ((RTX)->u.hwint[N])
1177 #define XCNMPRV(RTX, C, M) (&(RTX)->u.rv)
1178 #define XCNMPFV(RTX, C, M) (&(RTX)->u.fv)
1179 #define REG_CHECK(RTX) (&(RTX)->u.reg)
1180 #define BLOCK_SYMBOL_CHECK(RTX) (&(RTX)->u.block_sym)
1181 #define HWIVEC_CHECK(RTX,C) (&(RTX)->u.hwiv)
1183 #endif
1185 /* General accessor macros for accessing the flags of an rtx. */
1187 /* Access an individual rtx flag, with no checking of any kind. */
1188 #define RTX_FLAG(RTX, FLAG) ((RTX)->FLAG)
1190 #if defined ENABLE_RTL_FLAG_CHECKING && (GCC_VERSION >= 2007)
1191 #define RTL_FLAG_CHECK1(NAME, RTX, C1) __extension__ \
1192 ({ __typeof (RTX) const _rtx = (RTX); \
1193 if (GET_CODE (_rtx) != C1) \
1194 rtl_check_failed_flag (NAME, _rtx, __FILE__, __LINE__, \
1195 __FUNCTION__); \
1196 _rtx; })
1198 #define RTL_FLAG_CHECK2(NAME, RTX, C1, C2) __extension__ \
1199 ({ __typeof (RTX) const _rtx = (RTX); \
1200 if (GET_CODE (_rtx) != C1 && GET_CODE(_rtx) != C2) \
1201 rtl_check_failed_flag (NAME,_rtx, __FILE__, __LINE__, \
1202 __FUNCTION__); \
1203 _rtx; })
1205 #define RTL_FLAG_CHECK3(NAME, RTX, C1, C2, C3) __extension__ \
1206 ({ __typeof (RTX) const _rtx = (RTX); \
1207 if (GET_CODE (_rtx) != C1 && GET_CODE(_rtx) != C2 \
1208 && GET_CODE (_rtx) != C3) \
1209 rtl_check_failed_flag (NAME, _rtx, __FILE__, __LINE__, \
1210 __FUNCTION__); \
1211 _rtx; })
1213 #define RTL_FLAG_CHECK4(NAME, RTX, C1, C2, C3, C4) __extension__ \
1214 ({ __typeof (RTX) const _rtx = (RTX); \
1215 if (GET_CODE (_rtx) != C1 && GET_CODE(_rtx) != C2 \
1216 && GET_CODE (_rtx) != C3 && GET_CODE(_rtx) != C4) \
1217 rtl_check_failed_flag (NAME, _rtx, __FILE__, __LINE__, \
1218 __FUNCTION__); \
1219 _rtx; })
1221 #define RTL_FLAG_CHECK5(NAME, RTX, C1, C2, C3, C4, C5) __extension__ \
1222 ({ __typeof (RTX) const _rtx = (RTX); \
1223 if (GET_CODE (_rtx) != C1 && GET_CODE (_rtx) != C2 \
1224 && GET_CODE (_rtx) != C3 && GET_CODE (_rtx) != C4 \
1225 && GET_CODE (_rtx) != C5) \
1226 rtl_check_failed_flag (NAME, _rtx, __FILE__, __LINE__, \
1227 __FUNCTION__); \
1228 _rtx; })
1230 #define RTL_FLAG_CHECK6(NAME, RTX, C1, C2, C3, C4, C5, C6) \
1231 __extension__ \
1232 ({ __typeof (RTX) const _rtx = (RTX); \
1233 if (GET_CODE (_rtx) != C1 && GET_CODE (_rtx) != C2 \
1234 && GET_CODE (_rtx) != C3 && GET_CODE (_rtx) != C4 \
1235 && GET_CODE (_rtx) != C5 && GET_CODE (_rtx) != C6) \
1236 rtl_check_failed_flag (NAME,_rtx, __FILE__, __LINE__, \
1237 __FUNCTION__); \
1238 _rtx; })
1240 #define RTL_FLAG_CHECK7(NAME, RTX, C1, C2, C3, C4, C5, C6, C7) \
1241 __extension__ \
1242 ({ __typeof (RTX) const _rtx = (RTX); \
1243 if (GET_CODE (_rtx) != C1 && GET_CODE (_rtx) != C2 \
1244 && GET_CODE (_rtx) != C3 && GET_CODE (_rtx) != C4 \
1245 && GET_CODE (_rtx) != C5 && GET_CODE (_rtx) != C6 \
1246 && GET_CODE (_rtx) != C7) \
1247 rtl_check_failed_flag (NAME, _rtx, __FILE__, __LINE__, \
1248 __FUNCTION__); \
1249 _rtx; })
1251 #define RTL_INSN_CHAIN_FLAG_CHECK(NAME, RTX) \
1252 __extension__ \
1253 ({ __typeof (RTX) const _rtx = (RTX); \
1254 if (!INSN_CHAIN_CODE_P (GET_CODE (_rtx))) \
1255 rtl_check_failed_flag (NAME, _rtx, __FILE__, __LINE__, \
1256 __FUNCTION__); \
1257 _rtx; })
1259 extern void rtl_check_failed_flag (const char *, const_rtx, const char *,
1260 int, const char *)
1261 ATTRIBUTE_NORETURN
1264 #else /* not ENABLE_RTL_FLAG_CHECKING */
1266 #define RTL_FLAG_CHECK1(NAME, RTX, C1) (RTX)
1267 #define RTL_FLAG_CHECK2(NAME, RTX, C1, C2) (RTX)
1268 #define RTL_FLAG_CHECK3(NAME, RTX, C1, C2, C3) (RTX)
1269 #define RTL_FLAG_CHECK4(NAME, RTX, C1, C2, C3, C4) (RTX)
1270 #define RTL_FLAG_CHECK5(NAME, RTX, C1, C2, C3, C4, C5) (RTX)
1271 #define RTL_FLAG_CHECK6(NAME, RTX, C1, C2, C3, C4, C5, C6) (RTX)
1272 #define RTL_FLAG_CHECK7(NAME, RTX, C1, C2, C3, C4, C5, C6, C7) (RTX)
1273 #define RTL_INSN_CHAIN_FLAG_CHECK(NAME, RTX) (RTX)
1274 #endif
1276 #define XINT(RTX, N) (RTL_CHECK2 (RTX, N, 'i', 'n').rt_int)
1277 #define XUINT(RTX, N) (RTL_CHECK2 (RTX, N, 'i', 'n').rt_uint)
1278 #define XSTR(RTX, N) (RTL_CHECK2 (RTX, N, 's', 'S').rt_str)
1279 #define XEXP(RTX, N) (RTL_CHECK2 (RTX, N, 'e', 'u').rt_rtx)
1280 #define XVEC(RTX, N) (RTL_CHECK2 (RTX, N, 'E', 'V').rt_rtvec)
1281 #define XMODE(RTX, N) (RTL_CHECK1 (RTX, N, 'M').rt_type)
1282 #define XTREE(RTX, N) (RTL_CHECK1 (RTX, N, 't').rt_tree)
1283 #define XBBDEF(RTX, N) (RTL_CHECK1 (RTX, N, 'B').rt_bb)
1284 #define XTMPL(RTX, N) (RTL_CHECK1 (RTX, N, 'T').rt_str)
1285 #define XCFI(RTX, N) (RTL_CHECK1 (RTX, N, 'C').rt_cfi)
1287 #define XVECEXP(RTX, N, M) RTVEC_ELT (XVEC (RTX, N), M)
1288 #define XVECLEN(RTX, N) GET_NUM_ELEM (XVEC (RTX, N))
1290 /* These are like XINT, etc. except that they expect a '0' field instead
1291 of the normal type code. */
1293 #define X0INT(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_int)
1294 #define X0UINT(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_uint)
1295 #define X0STR(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_str)
1296 #define X0EXP(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_rtx)
1297 #define X0VEC(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_rtvec)
1298 #define X0MODE(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_type)
1299 #define X0TREE(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_tree)
1300 #define X0BBDEF(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_bb)
1301 #define X0ADVFLAGS(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_addr_diff_vec_flags)
1302 #define X0CSELIB(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_cselib)
1303 #define X0MEMATTR(RTX, N) (RTL_CHECKC1 (RTX, N, MEM).rt_mem)
1304 #define X0CONSTANT(RTX, N) (RTL_CHECK1 (RTX, N, '0').rt_constant)
1306 /* Access a '0' field with any type. */
1307 #define X0ANY(RTX, N) RTL_CHECK1 (RTX, N, '0')
1309 #define XCINT(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_int)
1310 #define XCUINT(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_uint)
1311 #define XCSTR(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_str)
1312 #define XCEXP(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_rtx)
1313 #define XCVEC(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_rtvec)
1314 #define XCMODE(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_type)
1315 #define XCTREE(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_tree)
1316 #define XCBBDEF(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_bb)
1317 #define XCCFI(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_cfi)
1318 #define XCCSELIB(RTX, N, C) (RTL_CHECKC1 (RTX, N, C).rt_cselib)
1320 #define XCVECEXP(RTX, N, M, C) RTVEC_ELT (XCVEC (RTX, N, C), M)
1321 #define XCVECLEN(RTX, N, C) GET_NUM_ELEM (XCVEC (RTX, N, C))
1323 #define XC2EXP(RTX, N, C1, C2) (RTL_CHECKC2 (RTX, N, C1, C2).rt_rtx)
1326 /* Methods of rtx_expr_list. */
1328 inline rtx_expr_list *rtx_expr_list::next () const
1330 rtx tmp = XEXP (this, 1);
1331 return safe_as_a <rtx_expr_list *> (tmp);
1334 inline rtx rtx_expr_list::element () const
1336 return XEXP (this, 0);
1339 /* Methods of rtx_insn_list. */
1341 inline rtx_insn_list *rtx_insn_list::next () const
1343 rtx tmp = XEXP (this, 1);
1344 return safe_as_a <rtx_insn_list *> (tmp);
1347 inline rtx_insn *rtx_insn_list::insn () const
1349 rtx tmp = XEXP (this, 0);
1350 return safe_as_a <rtx_insn *> (tmp);
1353 /* Methods of rtx_sequence. */
1355 inline int rtx_sequence::len () const
1357 return XVECLEN (this, 0);
1360 inline rtx rtx_sequence::element (int index) const
1362 return XVECEXP (this, 0, index);
1365 inline rtx_insn *rtx_sequence::insn (int index) const
1367 return as_a <rtx_insn *> (XVECEXP (this, 0, index));
1370 /* ACCESS MACROS for particular fields of insns. */
1372 /* Holds a unique number for each insn.
1373 These are not necessarily sequentially increasing. */
1374 inline int INSN_UID (const_rtx insn)
1376 return RTL_INSN_CHAIN_FLAG_CHECK ("INSN_UID",
1377 (insn))->u2.insn_uid;
1379 inline int& INSN_UID (rtx insn)
1381 return RTL_INSN_CHAIN_FLAG_CHECK ("INSN_UID",
1382 (insn))->u2.insn_uid;
1385 /* Chain insns together in sequence. */
1387 /* For now these are split in two: an rvalue form:
1388 PREV_INSN/NEXT_INSN
1389 and an lvalue form:
1390 SET_NEXT_INSN/SET_PREV_INSN. */
1392 inline rtx_insn *PREV_INSN (const rtx_insn *insn)
1394 rtx prev = XEXP (insn, 0);
1395 return safe_as_a <rtx_insn *> (prev);
1398 inline rtx& SET_PREV_INSN (rtx_insn *insn)
1400 return XEXP (insn, 0);
1403 inline rtx_insn *NEXT_INSN (const rtx_insn *insn)
1405 rtx next = XEXP (insn, 1);
1406 return safe_as_a <rtx_insn *> (next);
1409 inline rtx& SET_NEXT_INSN (rtx_insn *insn)
1411 return XEXP (insn, 1);
1414 inline basic_block BLOCK_FOR_INSN (const_rtx insn)
1416 return XBBDEF (insn, 2);
1419 inline basic_block& BLOCK_FOR_INSN (rtx insn)
1421 return XBBDEF (insn, 2);
1424 inline void set_block_for_insn (rtx_insn *insn, basic_block bb)
1426 BLOCK_FOR_INSN (insn) = bb;
1429 /* The body of an insn. */
1430 inline rtx PATTERN (const_rtx insn)
1432 return XEXP (insn, 3);
1435 inline rtx& PATTERN (rtx insn)
1437 return XEXP (insn, 3);
1440 inline unsigned int INSN_LOCATION (const rtx_insn *insn)
1442 return XUINT (insn, 4);
1445 inline unsigned int& INSN_LOCATION (rtx_insn *insn)
1447 return XUINT (insn, 4);
1450 inline bool INSN_HAS_LOCATION (const rtx_insn *insn)
1452 return LOCATION_LOCUS (INSN_LOCATION (insn)) != UNKNOWN_LOCATION;
1455 /* LOCATION of an RTX if relevant. */
1456 #define RTL_LOCATION(X) (INSN_P (X) ? \
1457 INSN_LOCATION (as_a <rtx_insn *> (X)) \
1458 : UNKNOWN_LOCATION)
1460 /* Code number of instruction, from when it was recognized.
1461 -1 means this instruction has not been recognized yet. */
1462 #define INSN_CODE(INSN) XINT (INSN, 5)
1464 inline rtvec rtx_jump_table_data::get_labels () const
1466 rtx pat = PATTERN (this);
1467 if (GET_CODE (pat) == ADDR_VEC)
1468 return XVEC (pat, 0);
1469 else
1470 return XVEC (pat, 1); /* presumably an ADDR_DIFF_VEC */
1473 #define RTX_FRAME_RELATED_P(RTX) \
1474 (RTL_FLAG_CHECK6 ("RTX_FRAME_RELATED_P", (RTX), DEBUG_INSN, INSN, \
1475 CALL_INSN, JUMP_INSN, BARRIER, SET)->frame_related)
1477 /* 1 if JUMP RTX is a crossing jump. */
1478 #define CROSSING_JUMP_P(RTX) \
1479 (RTL_FLAG_CHECK1 ("CROSSING_JUMP_P", (RTX), JUMP_INSN)->jump)
1481 /* 1 if RTX is a call to a const function. Built from ECF_CONST and
1482 TREE_READONLY. */
1483 #define RTL_CONST_CALL_P(RTX) \
1484 (RTL_FLAG_CHECK1 ("RTL_CONST_CALL_P", (RTX), CALL_INSN)->unchanging)
1486 /* 1 if RTX is a call to a pure function. Built from ECF_PURE and
1487 DECL_PURE_P. */
1488 #define RTL_PURE_CALL_P(RTX) \
1489 (RTL_FLAG_CHECK1 ("RTL_PURE_CALL_P", (RTX), CALL_INSN)->return_val)
1491 /* 1 if RTX is a call to a const or pure function. */
1492 #define RTL_CONST_OR_PURE_CALL_P(RTX) \
1493 (RTL_CONST_CALL_P (RTX) || RTL_PURE_CALL_P (RTX))
1495 /* 1 if RTX is a call to a looping const or pure function. Built from
1496 ECF_LOOPING_CONST_OR_PURE and DECL_LOOPING_CONST_OR_PURE_P. */
1497 #define RTL_LOOPING_CONST_OR_PURE_CALL_P(RTX) \
1498 (RTL_FLAG_CHECK1 ("CONST_OR_PURE_CALL_P", (RTX), CALL_INSN)->call)
1500 /* 1 if RTX is a call_insn for a sibling call. */
1501 #define SIBLING_CALL_P(RTX) \
1502 (RTL_FLAG_CHECK1 ("SIBLING_CALL_P", (RTX), CALL_INSN)->jump)
1504 /* 1 if RTX is a jump_insn, call_insn, or insn that is an annulling branch. */
1505 #define INSN_ANNULLED_BRANCH_P(RTX) \
1506 (RTL_FLAG_CHECK1 ("INSN_ANNULLED_BRANCH_P", (RTX), JUMP_INSN)->unchanging)
1508 /* 1 if RTX is an insn in a delay slot and is from the target of the branch.
1509 If the branch insn has INSN_ANNULLED_BRANCH_P set, this insn should only be
1510 executed if the branch is taken. For annulled branches with this bit
1511 clear, the insn should be executed only if the branch is not taken. */
1512 #define INSN_FROM_TARGET_P(RTX) \
1513 (RTL_FLAG_CHECK3 ("INSN_FROM_TARGET_P", (RTX), INSN, JUMP_INSN, \
1514 CALL_INSN)->in_struct)
1516 /* In an ADDR_DIFF_VEC, the flags for RTX for use by branch shortening.
1517 See the comments for ADDR_DIFF_VEC in rtl.def. */
1518 #define ADDR_DIFF_VEC_FLAGS(RTX) X0ADVFLAGS (RTX, 4)
1520 /* In a VALUE, the value cselib has assigned to RTX.
1521 This is a "struct cselib_val", see cselib.h. */
1522 #define CSELIB_VAL_PTR(RTX) X0CSELIB (RTX, 0)
1524 /* Holds a list of notes on what this insn does to various REGs.
1525 It is a chain of EXPR_LIST rtx's, where the second operand is the
1526 chain pointer and the first operand is the REG being described.
1527 The mode field of the EXPR_LIST contains not a real machine mode
1528 but a value from enum reg_note. */
1529 #define REG_NOTES(INSN) XEXP(INSN, 6)
1531 /* In an ENTRY_VALUE this is the DECL_INCOMING_RTL of the argument in
1532 question. */
1533 #define ENTRY_VALUE_EXP(RTX) (RTL_CHECKC1 (RTX, 0, ENTRY_VALUE).rt_rtx)
1535 enum reg_note
1537 #define DEF_REG_NOTE(NAME) NAME,
1538 #include "reg-notes.def"
1539 #undef DEF_REG_NOTE
1540 REG_NOTE_MAX
1543 /* Define macros to extract and insert the reg-note kind in an EXPR_LIST. */
1544 #define REG_NOTE_KIND(LINK) ((enum reg_note) GET_MODE (LINK))
1545 #define PUT_REG_NOTE_KIND(LINK, KIND) \
1546 PUT_MODE_RAW (LINK, (machine_mode) (KIND))
1548 /* Names for REG_NOTE's in EXPR_LIST insn's. */
1550 extern const char * const reg_note_name[];
1551 #define GET_REG_NOTE_NAME(MODE) (reg_note_name[(int) (MODE)])
1553 /* This field is only present on CALL_INSNs. It holds a chain of EXPR_LIST of
1554 USE and CLOBBER expressions.
1555 USE expressions list the registers filled with arguments that
1556 are passed to the function.
1557 CLOBBER expressions document the registers explicitly clobbered
1558 by this CALL_INSN.
1559 Pseudo registers can not be mentioned in this list. */
1560 #define CALL_INSN_FUNCTION_USAGE(INSN) XEXP(INSN, 7)
1562 /* The label-number of a code-label. The assembler label
1563 is made from `L' and the label-number printed in decimal.
1564 Label numbers are unique in a compilation. */
1565 #define CODE_LABEL_NUMBER(INSN) XINT (INSN, 5)
1567 /* In a NOTE that is a line number, this is a string for the file name that the
1568 line is in. We use the same field to record block numbers temporarily in
1569 NOTE_INSN_BLOCK_BEG and NOTE_INSN_BLOCK_END notes. (We avoid lots of casts
1570 between ints and pointers if we use a different macro for the block number.)
1573 /* Opaque data. */
1574 #define NOTE_DATA(INSN) RTL_CHECKC1 (INSN, 3, NOTE)
1575 #define NOTE_DELETED_LABEL_NAME(INSN) XCSTR (INSN, 3, NOTE)
1576 #define SET_INSN_DELETED(INSN) set_insn_deleted (INSN);
1577 #define NOTE_BLOCK(INSN) XCTREE (INSN, 3, NOTE)
1578 #define NOTE_EH_HANDLER(INSN) XCINT (INSN, 3, NOTE)
1579 #define NOTE_BASIC_BLOCK(INSN) XCBBDEF (INSN, 3, NOTE)
1580 #define NOTE_VAR_LOCATION(INSN) XCEXP (INSN, 3, NOTE)
1581 #define NOTE_CFI(INSN) XCCFI (INSN, 3, NOTE)
1582 #define NOTE_LABEL_NUMBER(INSN) XCINT (INSN, 3, NOTE)
1584 /* In a NOTE that is a line number, this is the line number.
1585 Other kinds of NOTEs are identified by negative numbers here. */
1586 #define NOTE_KIND(INSN) XCINT (INSN, 4, NOTE)
1588 /* Nonzero if INSN is a note marking the beginning of a basic block. */
1589 #define NOTE_INSN_BASIC_BLOCK_P(INSN) \
1590 (NOTE_P (INSN) && NOTE_KIND (INSN) == NOTE_INSN_BASIC_BLOCK)
1592 /* Variable declaration and the location of a variable. */
1593 #define PAT_VAR_LOCATION_DECL(PAT) (XCTREE ((PAT), 0, VAR_LOCATION))
1594 #define PAT_VAR_LOCATION_LOC(PAT) (XCEXP ((PAT), 1, VAR_LOCATION))
1596 /* Initialization status of the variable in the location. Status
1597 can be unknown, uninitialized or initialized. See enumeration
1598 type below. */
1599 #define PAT_VAR_LOCATION_STATUS(PAT) \
1600 (RTL_FLAG_CHECK1 ("PAT_VAR_LOCATION_STATUS", PAT, VAR_LOCATION) \
1601 ->u2.var_location_status)
1603 /* Accessors for a NOTE_INSN_VAR_LOCATION. */
1604 #define NOTE_VAR_LOCATION_DECL(NOTE) \
1605 PAT_VAR_LOCATION_DECL (NOTE_VAR_LOCATION (NOTE))
1606 #define NOTE_VAR_LOCATION_LOC(NOTE) \
1607 PAT_VAR_LOCATION_LOC (NOTE_VAR_LOCATION (NOTE))
1608 #define NOTE_VAR_LOCATION_STATUS(NOTE) \
1609 PAT_VAR_LOCATION_STATUS (NOTE_VAR_LOCATION (NOTE))
1611 /* The VAR_LOCATION rtx in a DEBUG_INSN. */
1612 #define INSN_VAR_LOCATION(INSN) PATTERN (INSN)
1614 /* Accessors for a tree-expanded var location debug insn. */
1615 #define INSN_VAR_LOCATION_DECL(INSN) \
1616 PAT_VAR_LOCATION_DECL (INSN_VAR_LOCATION (INSN))
1617 #define INSN_VAR_LOCATION_LOC(INSN) \
1618 PAT_VAR_LOCATION_LOC (INSN_VAR_LOCATION (INSN))
1619 #define INSN_VAR_LOCATION_STATUS(INSN) \
1620 PAT_VAR_LOCATION_STATUS (INSN_VAR_LOCATION (INSN))
1622 /* Expand to the RTL that denotes an unknown variable location in a
1623 DEBUG_INSN. */
1624 #define gen_rtx_UNKNOWN_VAR_LOC() (gen_rtx_CLOBBER (VOIDmode, const0_rtx))
1626 /* Determine whether X is such an unknown location. */
1627 #define VAR_LOC_UNKNOWN_P(X) \
1628 (GET_CODE (X) == CLOBBER && XEXP ((X), 0) == const0_rtx)
1630 /* 1 if RTX is emitted after a call, but it should take effect before
1631 the call returns. */
1632 #define NOTE_DURING_CALL_P(RTX) \
1633 (RTL_FLAG_CHECK1 ("NOTE_VAR_LOCATION_DURING_CALL_P", (RTX), NOTE)->call)
1635 /* DEBUG_EXPR_DECL corresponding to a DEBUG_EXPR RTX. */
1636 #define DEBUG_EXPR_TREE_DECL(RTX) XCTREE (RTX, 0, DEBUG_EXPR)
1638 /* VAR_DECL/PARM_DECL DEBUG_IMPLICIT_PTR takes address of. */
1639 #define DEBUG_IMPLICIT_PTR_DECL(RTX) XCTREE (RTX, 0, DEBUG_IMPLICIT_PTR)
1641 /* PARM_DECL DEBUG_PARAMETER_REF references. */
1642 #define DEBUG_PARAMETER_REF_DECL(RTX) XCTREE (RTX, 0, DEBUG_PARAMETER_REF)
1644 /* Codes that appear in the NOTE_KIND field for kinds of notes
1645 that are not line numbers. These codes are all negative.
1647 Notice that we do not try to use zero here for any of
1648 the special note codes because sometimes the source line
1649 actually can be zero! This happens (for example) when we
1650 are generating code for the per-translation-unit constructor
1651 and destructor routines for some C++ translation unit. */
1653 enum insn_note
1655 #define DEF_INSN_NOTE(NAME) NAME,
1656 #include "insn-notes.def"
1657 #undef DEF_INSN_NOTE
1659 NOTE_INSN_MAX
1662 /* Names for NOTE insn's other than line numbers. */
1664 extern const char * const note_insn_name[NOTE_INSN_MAX];
1665 #define GET_NOTE_INSN_NAME(NOTE_CODE) \
1666 (note_insn_name[(NOTE_CODE)])
1668 /* The name of a label, in case it corresponds to an explicit label
1669 in the input source code. */
1670 #define LABEL_NAME(RTX) XCSTR (RTX, 6, CODE_LABEL)
1672 /* In jump.c, each label contains a count of the number
1673 of LABEL_REFs that point at it, so unused labels can be deleted. */
1674 #define LABEL_NUSES(RTX) XCINT (RTX, 4, CODE_LABEL)
1676 /* Labels carry a two-bit field composed of the ->jump and ->call
1677 bits. This field indicates whether the label is an alternate
1678 entry point, and if so, what kind. */
1679 enum label_kind
1681 LABEL_NORMAL = 0, /* ordinary label */
1682 LABEL_STATIC_ENTRY, /* alternate entry point, not exported */
1683 LABEL_GLOBAL_ENTRY, /* alternate entry point, exported */
1684 LABEL_WEAK_ENTRY /* alternate entry point, exported as weak symbol */
1687 #if defined ENABLE_RTL_FLAG_CHECKING && (GCC_VERSION > 2007)
1689 /* Retrieve the kind of LABEL. */
1690 #define LABEL_KIND(LABEL) __extension__ \
1691 ({ __typeof (LABEL) const _label = (LABEL); \
1692 if (! LABEL_P (_label)) \
1693 rtl_check_failed_flag ("LABEL_KIND", _label, __FILE__, __LINE__, \
1694 __FUNCTION__); \
1695 (enum label_kind) ((_label->jump << 1) | _label->call); })
1697 /* Set the kind of LABEL. */
1698 #define SET_LABEL_KIND(LABEL, KIND) do { \
1699 __typeof (LABEL) const _label = (LABEL); \
1700 const unsigned int _kind = (KIND); \
1701 if (! LABEL_P (_label)) \
1702 rtl_check_failed_flag ("SET_LABEL_KIND", _label, __FILE__, __LINE__, \
1703 __FUNCTION__); \
1704 _label->jump = ((_kind >> 1) & 1); \
1705 _label->call = (_kind & 1); \
1706 } while (0)
1708 #else
1710 /* Retrieve the kind of LABEL. */
1711 #define LABEL_KIND(LABEL) \
1712 ((enum label_kind) (((LABEL)->jump << 1) | (LABEL)->call))
1714 /* Set the kind of LABEL. */
1715 #define SET_LABEL_KIND(LABEL, KIND) do { \
1716 rtx const _label = (LABEL); \
1717 const unsigned int _kind = (KIND); \
1718 _label->jump = ((_kind >> 1) & 1); \
1719 _label->call = (_kind & 1); \
1720 } while (0)
1722 #endif /* rtl flag checking */
1724 #define LABEL_ALT_ENTRY_P(LABEL) (LABEL_KIND (LABEL) != LABEL_NORMAL)
1726 /* In jump.c, each JUMP_INSN can point to a label that it can jump to,
1727 so that if the JUMP_INSN is deleted, the label's LABEL_NUSES can
1728 be decremented and possibly the label can be deleted. */
1729 #define JUMP_LABEL(INSN) XCEXP (INSN, 7, JUMP_INSN)
1731 inline rtx_insn *JUMP_LABEL_AS_INSN (const rtx_insn *insn)
1733 return safe_as_a <rtx_insn *> (JUMP_LABEL (insn));
1736 /* Methods of rtx_jump_insn. */
1738 inline rtx rtx_jump_insn::jump_label () const
1740 return JUMP_LABEL (this);
1743 inline rtx_code_label *rtx_jump_insn::jump_target () const
1745 return safe_as_a <rtx_code_label *> (JUMP_LABEL (this));
1748 inline void rtx_jump_insn::set_jump_target (rtx_code_label *target)
1750 JUMP_LABEL (this) = target;
1753 /* Once basic blocks are found, each CODE_LABEL starts a chain that
1754 goes through all the LABEL_REFs that jump to that label. The chain
1755 eventually winds up at the CODE_LABEL: it is circular. */
1756 #define LABEL_REFS(LABEL) XCEXP (LABEL, 3, CODE_LABEL)
1758 /* Get the label that a LABEL_REF references. */
1759 #define LABEL_REF_LABEL(LABREF) XCEXP (LABREF, 0, LABEL_REF)
1762 /* For a REG rtx, REGNO extracts the register number. REGNO can only
1763 be used on RHS. Use SET_REGNO to change the value. */
1764 #define REGNO(RTX) (rhs_regno(RTX))
1765 #define SET_REGNO(RTX, N) (df_ref_change_reg_with_loc (RTX, N))
1767 /* Return the number of consecutive registers in a REG. This is always
1768 1 for pseudo registers and is determined by HARD_REGNO_NREGS for
1769 hard registers. */
1770 #define REG_NREGS(RTX) (REG_CHECK (RTX)->nregs)
1772 /* ORIGINAL_REGNO holds the number the register originally had; for a
1773 pseudo register turned into a hard reg this will hold the old pseudo
1774 register number. */
1775 #define ORIGINAL_REGNO(RTX) \
1776 (RTL_FLAG_CHECK1 ("ORIGINAL_REGNO", (RTX), REG)->u2.original_regno)
1778 /* Force the REGNO macro to only be used on the lhs. */
1779 static inline unsigned int
1780 rhs_regno (const_rtx x)
1782 return REG_CHECK (x)->regno;
1785 /* Return the final register in REG X plus one. */
1786 static inline unsigned int
1787 END_REGNO (const_rtx x)
1789 return REGNO (x) + REG_NREGS (x);
1792 /* Change the REGNO and REG_NREGS of REG X to the specified values,
1793 bypassing the df machinery. */
1794 static inline void
1795 set_regno_raw (rtx x, unsigned int regno, unsigned int nregs)
1797 reg_info *reg = REG_CHECK (x);
1798 reg->regno = regno;
1799 reg->nregs = nregs;
1802 /* 1 if RTX is a reg or parallel that is the current function's return
1803 value. */
1804 #define REG_FUNCTION_VALUE_P(RTX) \
1805 (RTL_FLAG_CHECK2 ("REG_FUNCTION_VALUE_P", (RTX), REG, PARALLEL)->return_val)
1807 /* 1 if RTX is a reg that corresponds to a variable declared by the user. */
1808 #define REG_USERVAR_P(RTX) \
1809 (RTL_FLAG_CHECK1 ("REG_USERVAR_P", (RTX), REG)->volatil)
1811 /* 1 if RTX is a reg that holds a pointer value. */
1812 #define REG_POINTER(RTX) \
1813 (RTL_FLAG_CHECK1 ("REG_POINTER", (RTX), REG)->frame_related)
1815 /* 1 if RTX is a mem that holds a pointer value. */
1816 #define MEM_POINTER(RTX) \
1817 (RTL_FLAG_CHECK1 ("MEM_POINTER", (RTX), MEM)->frame_related)
1819 /* 1 if the given register REG corresponds to a hard register. */
1820 #define HARD_REGISTER_P(REG) (HARD_REGISTER_NUM_P (REGNO (REG)))
1822 /* 1 if the given register number REG_NO corresponds to a hard register. */
1823 #define HARD_REGISTER_NUM_P(REG_NO) ((REG_NO) < FIRST_PSEUDO_REGISTER)
1825 /* For a CONST_INT rtx, INTVAL extracts the integer. */
1826 #define INTVAL(RTX) XCWINT (RTX, 0, CONST_INT)
1827 #define UINTVAL(RTX) ((unsigned HOST_WIDE_INT) INTVAL (RTX))
1829 /* For a CONST_WIDE_INT, CONST_WIDE_INT_NUNITS is the number of
1830 elements actually needed to represent the constant.
1831 CONST_WIDE_INT_ELT gets one of the elements. 0 is the least
1832 significant HOST_WIDE_INT. */
1833 #define CONST_WIDE_INT_VEC(RTX) HWIVEC_CHECK (RTX, CONST_WIDE_INT)
1834 #define CONST_WIDE_INT_NUNITS(RTX) CWI_GET_NUM_ELEM (RTX)
1835 #define CONST_WIDE_INT_ELT(RTX, N) CWI_ELT (RTX, N)
1837 /* For a CONST_DOUBLE:
1838 #if TARGET_SUPPORTS_WIDE_INT == 0
1839 For a VOIDmode, there are two integers CONST_DOUBLE_LOW is the
1840 low-order word and ..._HIGH the high-order.
1841 #endif
1842 For a float, there is a REAL_VALUE_TYPE structure, and
1843 CONST_DOUBLE_REAL_VALUE(r) is a pointer to it. */
1844 #define CONST_DOUBLE_LOW(r) XCMWINT (r, 0, CONST_DOUBLE, VOIDmode)
1845 #define CONST_DOUBLE_HIGH(r) XCMWINT (r, 1, CONST_DOUBLE, VOIDmode)
1846 #define CONST_DOUBLE_REAL_VALUE(r) \
1847 ((const struct real_value *) XCNMPRV (r, CONST_DOUBLE, VOIDmode))
1849 #define CONST_FIXED_VALUE(r) \
1850 ((const struct fixed_value *) XCNMPFV (r, CONST_FIXED, VOIDmode))
1851 #define CONST_FIXED_VALUE_HIGH(r) \
1852 ((HOST_WIDE_INT) (CONST_FIXED_VALUE (r)->data.high))
1853 #define CONST_FIXED_VALUE_LOW(r) \
1854 ((HOST_WIDE_INT) (CONST_FIXED_VALUE (r)->data.low))
1856 /* For a CONST_VECTOR, return element #n. */
1857 #define CONST_VECTOR_ELT(RTX, N) XCVECEXP (RTX, 0, N, CONST_VECTOR)
1859 /* For a CONST_VECTOR, return the number of elements in a vector. */
1860 #define CONST_VECTOR_NUNITS(RTX) XCVECLEN (RTX, 0, CONST_VECTOR)
1862 /* For a SUBREG rtx, SUBREG_REG extracts the value we want a subreg of.
1863 SUBREG_BYTE extracts the byte-number. */
1865 #define SUBREG_REG(RTX) XCEXP (RTX, 0, SUBREG)
1866 #define SUBREG_BYTE(RTX) XCUINT (RTX, 1, SUBREG)
1868 /* in rtlanal.c */
1869 /* Return the right cost to give to an operation
1870 to make the cost of the corresponding register-to-register instruction
1871 N times that of a fast register-to-register instruction. */
1872 #define COSTS_N_INSNS(N) ((N) * 4)
1874 /* Maximum cost of an rtl expression. This value has the special meaning
1875 not to use an rtx with this cost under any circumstances. */
1876 #define MAX_COST INT_MAX
1878 /* Return true if CODE always has VOIDmode. */
1880 static inline bool
1881 always_void_p (enum rtx_code code)
1883 return code == SET;
1886 /* A structure to hold all available cost information about an rtl
1887 expression. */
1888 struct full_rtx_costs
1890 int speed;
1891 int size;
1894 /* Initialize a full_rtx_costs structure C to the maximum cost. */
1895 static inline void
1896 init_costs_to_max (struct full_rtx_costs *c)
1898 c->speed = MAX_COST;
1899 c->size = MAX_COST;
1902 /* Initialize a full_rtx_costs structure C to zero cost. */
1903 static inline void
1904 init_costs_to_zero (struct full_rtx_costs *c)
1906 c->speed = 0;
1907 c->size = 0;
1910 /* Compare two full_rtx_costs structures A and B, returning true
1911 if A < B when optimizing for speed. */
1912 static inline bool
1913 costs_lt_p (struct full_rtx_costs *a, struct full_rtx_costs *b,
1914 bool speed)
1916 if (speed)
1917 return (a->speed < b->speed
1918 || (a->speed == b->speed && a->size < b->size));
1919 else
1920 return (a->size < b->size
1921 || (a->size == b->size && a->speed < b->speed));
1924 /* Increase both members of the full_rtx_costs structure C by the
1925 cost of N insns. */
1926 static inline void
1927 costs_add_n_insns (struct full_rtx_costs *c, int n)
1929 c->speed += COSTS_N_INSNS (n);
1930 c->size += COSTS_N_INSNS (n);
1933 /* Describes the shape of a subreg:
1935 inner_mode == the mode of the SUBREG_REG
1936 offset == the SUBREG_BYTE
1937 outer_mode == the mode of the SUBREG itself. */
1938 struct subreg_shape {
1939 subreg_shape (machine_mode, unsigned int, machine_mode);
1940 bool operator == (const subreg_shape &) const;
1941 bool operator != (const subreg_shape &) const;
1942 unsigned int unique_id () const;
1944 machine_mode inner_mode;
1945 unsigned int offset;
1946 machine_mode outer_mode;
1949 inline
1950 subreg_shape::subreg_shape (machine_mode inner_mode_in,
1951 unsigned int offset_in,
1952 machine_mode outer_mode_in)
1953 : inner_mode (inner_mode_in), offset (offset_in), outer_mode (outer_mode_in)
1956 inline bool
1957 subreg_shape::operator == (const subreg_shape &other) const
1959 return (inner_mode == other.inner_mode
1960 && offset == other.offset
1961 && outer_mode == other.outer_mode);
1964 inline bool
1965 subreg_shape::operator != (const subreg_shape &other) const
1967 return !operator == (other);
1970 /* Return an integer that uniquely identifies this shape. Structures
1971 like rtx_def assume that a mode can fit in an 8-bit bitfield and no
1972 current mode is anywhere near being 65536 bytes in size, so the
1973 id comfortably fits in an int. */
1975 inline unsigned int
1976 subreg_shape::unique_id () const
1978 STATIC_ASSERT (MAX_MACHINE_MODE <= 256);
1979 return (int) inner_mode + ((int) outer_mode << 8) + (offset << 16);
1982 /* Return the shape of a SUBREG rtx. */
1984 static inline subreg_shape
1985 shape_of_subreg (const_rtx x)
1987 return subreg_shape (GET_MODE (SUBREG_REG (x)),
1988 SUBREG_BYTE (x), GET_MODE (x));
1991 /* Information about an address. This structure is supposed to be able
1992 to represent all supported target addresses. Please extend it if it
1993 is not yet general enough. */
1994 struct address_info {
1995 /* The mode of the value being addressed, or VOIDmode if this is
1996 a load-address operation with no known address mode. */
1997 machine_mode mode;
1999 /* The address space. */
2000 addr_space_t as;
2002 /* A pointer to the top-level address. */
2003 rtx *outer;
2005 /* A pointer to the inner address, after all address mutations
2006 have been stripped from the top-level address. It can be one
2007 of the following:
2009 - A {PRE,POST}_{INC,DEC} of *BASE. SEGMENT, INDEX and DISP are null.
2011 - A {PRE,POST}_MODIFY of *BASE. In this case either INDEX or DISP
2012 points to the step value, depending on whether the step is variable
2013 or constant respectively. SEGMENT is null.
2015 - A plain sum of the form SEGMENT + BASE + INDEX + DISP,
2016 with null fields evaluating to 0. */
2017 rtx *inner;
2019 /* Components that make up *INNER. Each one may be null or nonnull.
2020 When nonnull, their meanings are as follows:
2022 - *SEGMENT is the "segment" of memory to which the address refers.
2023 This value is entirely target-specific and is only called a "segment"
2024 because that's its most typical use. It contains exactly one UNSPEC,
2025 pointed to by SEGMENT_TERM. The contents of *SEGMENT do not need
2026 reloading.
2028 - *BASE is a variable expression representing a base address.
2029 It contains exactly one REG, SUBREG or MEM, pointed to by BASE_TERM.
2031 - *INDEX is a variable expression representing an index value.
2032 It may be a scaled expression, such as a MULT. It has exactly
2033 one REG, SUBREG or MEM, pointed to by INDEX_TERM.
2035 - *DISP is a constant, possibly mutated. DISP_TERM points to the
2036 unmutated RTX_CONST_OBJ. */
2037 rtx *segment;
2038 rtx *base;
2039 rtx *index;
2040 rtx *disp;
2042 rtx *segment_term;
2043 rtx *base_term;
2044 rtx *index_term;
2045 rtx *disp_term;
2047 /* In a {PRE,POST}_MODIFY address, this points to a second copy
2048 of BASE_TERM, otherwise it is null. */
2049 rtx *base_term2;
2051 /* ADDRESS if this structure describes an address operand, MEM if
2052 it describes a MEM address. */
2053 enum rtx_code addr_outer_code;
2055 /* If BASE is nonnull, this is the code of the rtx that contains it. */
2056 enum rtx_code base_outer_code;
2058 /* True if this is an RTX_AUTOINC address. */
2059 bool autoinc_p;
2062 /* This is used to bundle an rtx and a mode together so that the pair
2063 can be used with the wi:: routines. If we ever put modes into rtx
2064 integer constants, this should go away and then just pass an rtx in. */
2065 typedef std::pair <rtx, machine_mode> rtx_mode_t;
2067 namespace wi
2069 template <>
2070 struct int_traits <rtx_mode_t>
2072 static const enum precision_type precision_type = VAR_PRECISION;
2073 static const bool host_dependent_precision = false;
2074 /* This ought to be true, except for the special case that BImode
2075 is canonicalized to STORE_FLAG_VALUE, which might be 1. */
2076 static const bool is_sign_extended = false;
2077 static unsigned int get_precision (const rtx_mode_t &);
2078 static wi::storage_ref decompose (HOST_WIDE_INT *, unsigned int,
2079 const rtx_mode_t &);
2083 inline unsigned int
2084 wi::int_traits <rtx_mode_t>::get_precision (const rtx_mode_t &x)
2086 return GET_MODE_PRECISION (x.second);
2089 inline wi::storage_ref
2090 wi::int_traits <rtx_mode_t>::decompose (HOST_WIDE_INT *,
2091 unsigned int precision,
2092 const rtx_mode_t &x)
2094 gcc_checking_assert (precision == get_precision (x));
2095 switch (GET_CODE (x.first))
2097 case CONST_INT:
2098 if (precision < HOST_BITS_PER_WIDE_INT)
2099 /* Nonzero BImodes are stored as STORE_FLAG_VALUE, which on many
2100 targets is 1 rather than -1. */
2101 gcc_checking_assert (INTVAL (x.first)
2102 == sext_hwi (INTVAL (x.first), precision)
2103 || (x.second == BImode && INTVAL (x.first) == 1));
2105 return wi::storage_ref (&INTVAL (x.first), 1, precision);
2107 case CONST_WIDE_INT:
2108 return wi::storage_ref (&CONST_WIDE_INT_ELT (x.first, 0),
2109 CONST_WIDE_INT_NUNITS (x.first), precision);
2111 #if TARGET_SUPPORTS_WIDE_INT == 0
2112 case CONST_DOUBLE:
2113 return wi::storage_ref (&CONST_DOUBLE_LOW (x.first), 2, precision);
2114 #endif
2116 default:
2117 gcc_unreachable ();
2121 namespace wi
2123 hwi_with_prec shwi (HOST_WIDE_INT, machine_mode mode);
2124 wide_int min_value (machine_mode, signop);
2125 wide_int max_value (machine_mode, signop);
2128 inline wi::hwi_with_prec
2129 wi::shwi (HOST_WIDE_INT val, machine_mode mode)
2131 return shwi (val, GET_MODE_PRECISION (mode));
2134 /* Produce the smallest number that is represented in MODE. The precision
2135 is taken from MODE and the sign from SGN. */
2136 inline wide_int
2137 wi::min_value (machine_mode mode, signop sgn)
2139 return min_value (GET_MODE_PRECISION (mode), sgn);
2142 /* Produce the largest number that is represented in MODE. The precision
2143 is taken from MODE and the sign from SGN. */
2144 inline wide_int
2145 wi::max_value (machine_mode mode, signop sgn)
2147 return max_value (GET_MODE_PRECISION (mode), sgn);
2150 extern void init_rtlanal (void);
2151 extern int rtx_cost (rtx, machine_mode, enum rtx_code, int, bool);
2152 extern int address_cost (rtx, machine_mode, addr_space_t, bool);
2153 extern void get_full_rtx_cost (rtx, machine_mode, enum rtx_code, int,
2154 struct full_rtx_costs *);
2155 extern unsigned int subreg_lsb (const_rtx);
2156 extern unsigned int subreg_lsb_1 (machine_mode, machine_mode,
2157 unsigned int);
2158 extern unsigned int subreg_regno_offset (unsigned int, machine_mode,
2159 unsigned int, machine_mode);
2160 extern bool subreg_offset_representable_p (unsigned int, machine_mode,
2161 unsigned int, machine_mode);
2162 extern unsigned int subreg_regno (const_rtx);
2163 extern int simplify_subreg_regno (unsigned int, machine_mode,
2164 unsigned int, machine_mode);
2165 extern unsigned int subreg_nregs (const_rtx);
2166 extern unsigned int subreg_nregs_with_regno (unsigned int, const_rtx);
2167 extern unsigned HOST_WIDE_INT nonzero_bits (const_rtx, machine_mode);
2168 extern unsigned int num_sign_bit_copies (const_rtx, machine_mode);
2169 extern bool constant_pool_constant_p (rtx);
2170 extern bool truncated_to_mode (machine_mode, const_rtx);
2171 extern int low_bitmask_len (machine_mode, unsigned HOST_WIDE_INT);
2172 extern void split_double (rtx, rtx *, rtx *);
2173 extern rtx *strip_address_mutations (rtx *, enum rtx_code * = 0);
2174 extern void decompose_address (struct address_info *, rtx *,
2175 machine_mode, addr_space_t, enum rtx_code);
2176 extern void decompose_lea_address (struct address_info *, rtx *);
2177 extern void decompose_mem_address (struct address_info *, rtx);
2178 extern void update_address (struct address_info *);
2179 extern HOST_WIDE_INT get_index_scale (const struct address_info *);
2180 extern enum rtx_code get_index_code (const struct address_info *);
2182 /* 1 if RTX is a subreg containing a reg that is already known to be
2183 sign- or zero-extended from the mode of the subreg to the mode of
2184 the reg. SUBREG_PROMOTED_UNSIGNED_P gives the signedness of the
2185 extension.
2187 When used as a LHS, is means that this extension must be done
2188 when assigning to SUBREG_REG. */
2190 #define SUBREG_PROMOTED_VAR_P(RTX) \
2191 (RTL_FLAG_CHECK1 ("SUBREG_PROMOTED", (RTX), SUBREG)->in_struct)
2193 /* Valid for subregs which are SUBREG_PROMOTED_VAR_P(). In that case
2194 this gives the necessary extensions:
2195 0 - signed (SPR_SIGNED)
2196 1 - normal unsigned (SPR_UNSIGNED)
2197 2 - value is both sign and unsign extended for mode
2198 (SPR_SIGNED_AND_UNSIGNED).
2199 -1 - pointer unsigned, which most often can be handled like unsigned
2200 extension, except for generating instructions where we need to
2201 emit special code (ptr_extend insns) on some architectures
2202 (SPR_POINTER). */
2204 const int SRP_POINTER = -1;
2205 const int SRP_SIGNED = 0;
2206 const int SRP_UNSIGNED = 1;
2207 const int SRP_SIGNED_AND_UNSIGNED = 2;
2209 /* Sets promoted mode for SUBREG_PROMOTED_VAR_P(). */
2210 #define SUBREG_PROMOTED_SET(RTX, VAL) \
2211 do { \
2212 rtx const _rtx = RTL_FLAG_CHECK1 ("SUBREG_PROMOTED_SET", \
2213 (RTX), SUBREG); \
2214 switch (VAL) \
2216 case SRP_POINTER: \
2217 _rtx->volatil = 0; \
2218 _rtx->unchanging = 0; \
2219 break; \
2220 case SRP_SIGNED: \
2221 _rtx->volatil = 0; \
2222 _rtx->unchanging = 1; \
2223 break; \
2224 case SRP_UNSIGNED: \
2225 _rtx->volatil = 1; \
2226 _rtx->unchanging = 0; \
2227 break; \
2228 case SRP_SIGNED_AND_UNSIGNED: \
2229 _rtx->volatil = 1; \
2230 _rtx->unchanging = 1; \
2231 break; \
2233 } while (0)
2235 /* Gets the value stored in promoted mode for SUBREG_PROMOTED_VAR_P(),
2236 including SRP_SIGNED_AND_UNSIGNED if promoted for
2237 both signed and unsigned. */
2238 #define SUBREG_PROMOTED_GET(RTX) \
2239 (2 * (RTL_FLAG_CHECK1 ("SUBREG_PROMOTED_GET", (RTX), SUBREG)->volatil)\
2240 + (RTX)->unchanging - 1)
2242 /* Returns sign of promoted mode for SUBREG_PROMOTED_VAR_P(). */
2243 #define SUBREG_PROMOTED_SIGN(RTX) \
2244 ((RTL_FLAG_CHECK1 ("SUBREG_PROMOTED_SIGN", (RTX), SUBREG)->volatil) ? 1\
2245 : (RTX)->unchanging - 1)
2247 /* Predicate to check if RTX of SUBREG_PROMOTED_VAR_P() is promoted
2248 for SIGNED type. */
2249 #define SUBREG_PROMOTED_SIGNED_P(RTX) \
2250 (RTL_FLAG_CHECK1 ("SUBREG_PROMOTED_SIGNED_P", (RTX), SUBREG)->unchanging)
2252 /* Predicate to check if RTX of SUBREG_PROMOTED_VAR_P() is promoted
2253 for UNSIGNED type. */
2254 #define SUBREG_PROMOTED_UNSIGNED_P(RTX) \
2255 (RTL_FLAG_CHECK1 ("SUBREG_PROMOTED_UNSIGNED_P", (RTX), SUBREG)->volatil)
2257 /* Checks if RTX of SUBREG_PROMOTED_VAR_P() is promoted for given SIGN. */
2258 #define SUBREG_CHECK_PROMOTED_SIGN(RTX, SIGN) \
2259 ((SIGN) == SRP_POINTER ? SUBREG_PROMOTED_GET (RTX) == SRP_POINTER \
2260 : (SIGN) == SRP_SIGNED ? SUBREG_PROMOTED_SIGNED_P (RTX) \
2261 : SUBREG_PROMOTED_UNSIGNED_P (RTX))
2263 /* True if the subreg was generated by LRA for reload insns. Such
2264 subregs are valid only during LRA. */
2265 #define LRA_SUBREG_P(RTX) \
2266 (RTL_FLAG_CHECK1 ("LRA_SUBREG_P", (RTX), SUBREG)->jump)
2268 /* True if call is instrumented by Pointer Bounds Checker. */
2269 #define CALL_EXPR_WITH_BOUNDS_P(RTX) \
2270 (RTL_FLAG_CHECK1 ("CALL_EXPR_WITH_BOUNDS_P", (RTX), CALL)->jump)
2272 /* Access various components of an ASM_OPERANDS rtx. */
2274 #define ASM_OPERANDS_TEMPLATE(RTX) XCSTR (RTX, 0, ASM_OPERANDS)
2275 #define ASM_OPERANDS_OUTPUT_CONSTRAINT(RTX) XCSTR (RTX, 1, ASM_OPERANDS)
2276 #define ASM_OPERANDS_OUTPUT_IDX(RTX) XCINT (RTX, 2, ASM_OPERANDS)
2277 #define ASM_OPERANDS_INPUT_VEC(RTX) XCVEC (RTX, 3, ASM_OPERANDS)
2278 #define ASM_OPERANDS_INPUT_CONSTRAINT_VEC(RTX) XCVEC (RTX, 4, ASM_OPERANDS)
2279 #define ASM_OPERANDS_INPUT(RTX, N) XCVECEXP (RTX, 3, N, ASM_OPERANDS)
2280 #define ASM_OPERANDS_INPUT_LENGTH(RTX) XCVECLEN (RTX, 3, ASM_OPERANDS)
2281 #define ASM_OPERANDS_INPUT_CONSTRAINT_EXP(RTX, N) \
2282 XCVECEXP (RTX, 4, N, ASM_OPERANDS)
2283 #define ASM_OPERANDS_INPUT_CONSTRAINT(RTX, N) \
2284 XSTR (XCVECEXP (RTX, 4, N, ASM_OPERANDS), 0)
2285 #define ASM_OPERANDS_INPUT_MODE(RTX, N) \
2286 GET_MODE (XCVECEXP (RTX, 4, N, ASM_OPERANDS))
2287 #define ASM_OPERANDS_LABEL_VEC(RTX) XCVEC (RTX, 5, ASM_OPERANDS)
2288 #define ASM_OPERANDS_LABEL_LENGTH(RTX) XCVECLEN (RTX, 5, ASM_OPERANDS)
2289 #define ASM_OPERANDS_LABEL(RTX, N) XCVECEXP (RTX, 5, N, ASM_OPERANDS)
2290 #define ASM_OPERANDS_SOURCE_LOCATION(RTX) XCUINT (RTX, 6, ASM_OPERANDS)
2291 #define ASM_INPUT_SOURCE_LOCATION(RTX) XCUINT (RTX, 1, ASM_INPUT)
2293 /* 1 if RTX is a mem that is statically allocated in read-only memory. */
2294 #define MEM_READONLY_P(RTX) \
2295 (RTL_FLAG_CHECK1 ("MEM_READONLY_P", (RTX), MEM)->unchanging)
2297 /* 1 if RTX is a mem and we should keep the alias set for this mem
2298 unchanged when we access a component. Set to 1, or example, when we
2299 are already in a non-addressable component of an aggregate. */
2300 #define MEM_KEEP_ALIAS_SET_P(RTX) \
2301 (RTL_FLAG_CHECK1 ("MEM_KEEP_ALIAS_SET_P", (RTX), MEM)->jump)
2303 /* 1 if RTX is a mem or asm_operand for a volatile reference. */
2304 #define MEM_VOLATILE_P(RTX) \
2305 (RTL_FLAG_CHECK3 ("MEM_VOLATILE_P", (RTX), MEM, ASM_OPERANDS, \
2306 ASM_INPUT)->volatil)
2308 /* 1 if RTX is a mem that cannot trap. */
2309 #define MEM_NOTRAP_P(RTX) \
2310 (RTL_FLAG_CHECK1 ("MEM_NOTRAP_P", (RTX), MEM)->call)
2312 /* The memory attribute block. We provide access macros for each value
2313 in the block and provide defaults if none specified. */
2314 #define MEM_ATTRS(RTX) X0MEMATTR (RTX, 1)
2316 /* The register attribute block. We provide access macros for each value
2317 in the block and provide defaults if none specified. */
2318 #define REG_ATTRS(RTX) (REG_CHECK (RTX)->attrs)
2320 #ifndef GENERATOR_FILE
2321 /* For a MEM rtx, the alias set. If 0, this MEM is not in any alias
2322 set, and may alias anything. Otherwise, the MEM can only alias
2323 MEMs in a conflicting alias set. This value is set in a
2324 language-dependent manner in the front-end, and should not be
2325 altered in the back-end. These set numbers are tested with
2326 alias_sets_conflict_p. */
2327 #define MEM_ALIAS_SET(RTX) (get_mem_attrs (RTX)->alias)
2329 /* For a MEM rtx, the decl it is known to refer to, if it is known to
2330 refer to part of a DECL. It may also be a COMPONENT_REF. */
2331 #define MEM_EXPR(RTX) (get_mem_attrs (RTX)->expr)
2333 /* For a MEM rtx, true if its MEM_OFFSET is known. */
2334 #define MEM_OFFSET_KNOWN_P(RTX) (get_mem_attrs (RTX)->offset_known_p)
2336 /* For a MEM rtx, the offset from the start of MEM_EXPR. */
2337 #define MEM_OFFSET(RTX) (get_mem_attrs (RTX)->offset)
2339 /* For a MEM rtx, the address space. */
2340 #define MEM_ADDR_SPACE(RTX) (get_mem_attrs (RTX)->addrspace)
2342 /* For a MEM rtx, true if its MEM_SIZE is known. */
2343 #define MEM_SIZE_KNOWN_P(RTX) (get_mem_attrs (RTX)->size_known_p)
2345 /* For a MEM rtx, the size in bytes of the MEM. */
2346 #define MEM_SIZE(RTX) (get_mem_attrs (RTX)->size)
2348 /* For a MEM rtx, the alignment in bits. We can use the alignment of the
2349 mode as a default when STRICT_ALIGNMENT, but not if not. */
2350 #define MEM_ALIGN(RTX) (get_mem_attrs (RTX)->align)
2351 #else
2352 #define MEM_ADDR_SPACE(RTX) ADDR_SPACE_GENERIC
2353 #endif
2355 /* For a REG rtx, the decl it is known to refer to, if it is known to
2356 refer to part of a DECL. */
2357 #define REG_EXPR(RTX) (REG_ATTRS (RTX) == 0 ? 0 : REG_ATTRS (RTX)->decl)
2359 /* For a REG rtx, the offset from the start of REG_EXPR, if known, as an
2360 HOST_WIDE_INT. */
2361 #define REG_OFFSET(RTX) (REG_ATTRS (RTX) == 0 ? 0 : REG_ATTRS (RTX)->offset)
2363 /* Copy the attributes that apply to memory locations from RHS to LHS. */
2364 #define MEM_COPY_ATTRIBUTES(LHS, RHS) \
2365 (MEM_VOLATILE_P (LHS) = MEM_VOLATILE_P (RHS), \
2366 MEM_NOTRAP_P (LHS) = MEM_NOTRAP_P (RHS), \
2367 MEM_READONLY_P (LHS) = MEM_READONLY_P (RHS), \
2368 MEM_KEEP_ALIAS_SET_P (LHS) = MEM_KEEP_ALIAS_SET_P (RHS), \
2369 MEM_POINTER (LHS) = MEM_POINTER (RHS), \
2370 MEM_ATTRS (LHS) = MEM_ATTRS (RHS))
2372 /* 1 if RTX is a label_ref for a nonlocal label. */
2373 /* Likewise in an expr_list for a REG_LABEL_OPERAND or
2374 REG_LABEL_TARGET note. */
2375 #define LABEL_REF_NONLOCAL_P(RTX) \
2376 (RTL_FLAG_CHECK1 ("LABEL_REF_NONLOCAL_P", (RTX), LABEL_REF)->volatil)
2378 /* 1 if RTX is a code_label that should always be considered to be needed. */
2379 #define LABEL_PRESERVE_P(RTX) \
2380 (RTL_FLAG_CHECK2 ("LABEL_PRESERVE_P", (RTX), CODE_LABEL, NOTE)->in_struct)
2382 /* During sched, 1 if RTX is an insn that must be scheduled together
2383 with the preceding insn. */
2384 #define SCHED_GROUP_P(RTX) \
2385 (RTL_FLAG_CHECK4 ("SCHED_GROUP_P", (RTX), DEBUG_INSN, INSN, \
2386 JUMP_INSN, CALL_INSN)->in_struct)
2388 /* For a SET rtx, SET_DEST is the place that is set
2389 and SET_SRC is the value it is set to. */
2390 #define SET_DEST(RTX) XC2EXP (RTX, 0, SET, CLOBBER)
2391 #define SET_SRC(RTX) XCEXP (RTX, 1, SET)
2392 #define SET_IS_RETURN_P(RTX) \
2393 (RTL_FLAG_CHECK1 ("SET_IS_RETURN_P", (RTX), SET)->jump)
2395 /* For a TRAP_IF rtx, TRAP_CONDITION is an expression. */
2396 #define TRAP_CONDITION(RTX) XCEXP (RTX, 0, TRAP_IF)
2397 #define TRAP_CODE(RTX) XCEXP (RTX, 1, TRAP_IF)
2399 /* For a COND_EXEC rtx, COND_EXEC_TEST is the condition to base
2400 conditionally executing the code on, COND_EXEC_CODE is the code
2401 to execute if the condition is true. */
2402 #define COND_EXEC_TEST(RTX) XCEXP (RTX, 0, COND_EXEC)
2403 #define COND_EXEC_CODE(RTX) XCEXP (RTX, 1, COND_EXEC)
2405 /* 1 if RTX is a symbol_ref that addresses this function's rtl
2406 constants pool. */
2407 #define CONSTANT_POOL_ADDRESS_P(RTX) \
2408 (RTL_FLAG_CHECK1 ("CONSTANT_POOL_ADDRESS_P", (RTX), SYMBOL_REF)->unchanging)
2410 /* 1 if RTX is a symbol_ref that addresses a value in the file's
2411 tree constant pool. This information is private to varasm.c. */
2412 #define TREE_CONSTANT_POOL_ADDRESS_P(RTX) \
2413 (RTL_FLAG_CHECK1 ("TREE_CONSTANT_POOL_ADDRESS_P", \
2414 (RTX), SYMBOL_REF)->frame_related)
2416 /* Used if RTX is a symbol_ref, for machine-specific purposes. */
2417 #define SYMBOL_REF_FLAG(RTX) \
2418 (RTL_FLAG_CHECK1 ("SYMBOL_REF_FLAG", (RTX), SYMBOL_REF)->volatil)
2420 /* 1 if RTX is a symbol_ref that has been the library function in
2421 emit_library_call. */
2422 #define SYMBOL_REF_USED(RTX) \
2423 (RTL_FLAG_CHECK1 ("SYMBOL_REF_USED", (RTX), SYMBOL_REF)->used)
2425 /* 1 if RTX is a symbol_ref for a weak symbol. */
2426 #define SYMBOL_REF_WEAK(RTX) \
2427 (RTL_FLAG_CHECK1 ("SYMBOL_REF_WEAK", (RTX), SYMBOL_REF)->return_val)
2429 /* A pointer attached to the SYMBOL_REF; either SYMBOL_REF_DECL or
2430 SYMBOL_REF_CONSTANT. */
2431 #define SYMBOL_REF_DATA(RTX) X0ANY ((RTX), 1)
2433 /* Set RTX's SYMBOL_REF_DECL to DECL. RTX must not be a constant
2434 pool symbol. */
2435 #define SET_SYMBOL_REF_DECL(RTX, DECL) \
2436 (gcc_assert (!CONSTANT_POOL_ADDRESS_P (RTX)), X0TREE ((RTX), 1) = (DECL))
2438 /* The tree (decl or constant) associated with the symbol, or null. */
2439 #define SYMBOL_REF_DECL(RTX) \
2440 (CONSTANT_POOL_ADDRESS_P (RTX) ? NULL : X0TREE ((RTX), 1))
2442 /* Set RTX's SYMBOL_REF_CONSTANT to C. RTX must be a constant pool symbol. */
2443 #define SET_SYMBOL_REF_CONSTANT(RTX, C) \
2444 (gcc_assert (CONSTANT_POOL_ADDRESS_P (RTX)), X0CONSTANT ((RTX), 1) = (C))
2446 /* The rtx constant pool entry for a symbol, or null. */
2447 #define SYMBOL_REF_CONSTANT(RTX) \
2448 (CONSTANT_POOL_ADDRESS_P (RTX) ? X0CONSTANT ((RTX), 1) : NULL)
2450 /* A set of flags on a symbol_ref that are, in some respects, redundant with
2451 information derivable from the tree decl associated with this symbol.
2452 Except that we build a *lot* of SYMBOL_REFs that aren't associated with a
2453 decl. In some cases this is a bug. But beyond that, it's nice to cache
2454 this information to avoid recomputing it. Finally, this allows space for
2455 the target to store more than one bit of information, as with
2456 SYMBOL_REF_FLAG. */
2457 #define SYMBOL_REF_FLAGS(RTX) \
2458 (RTL_FLAG_CHECK1 ("SYMBOL_REF_FLAGS", (RTX), SYMBOL_REF) \
2459 ->u2.symbol_ref_flags)
2461 /* These flags are common enough to be defined for all targets. They
2462 are computed by the default version of targetm.encode_section_info. */
2464 /* Set if this symbol is a function. */
2465 #define SYMBOL_FLAG_FUNCTION (1 << 0)
2466 #define SYMBOL_REF_FUNCTION_P(RTX) \
2467 ((SYMBOL_REF_FLAGS (RTX) & SYMBOL_FLAG_FUNCTION) != 0)
2468 /* Set if targetm.binds_local_p is true. */
2469 #define SYMBOL_FLAG_LOCAL (1 << 1)
2470 #define SYMBOL_REF_LOCAL_P(RTX) \
2471 ((SYMBOL_REF_FLAGS (RTX) & SYMBOL_FLAG_LOCAL) != 0)
2472 /* Set if targetm.in_small_data_p is true. */
2473 #define SYMBOL_FLAG_SMALL (1 << 2)
2474 #define SYMBOL_REF_SMALL_P(RTX) \
2475 ((SYMBOL_REF_FLAGS (RTX) & SYMBOL_FLAG_SMALL) != 0)
2476 /* The three-bit field at [5:3] is true for TLS variables; use
2477 SYMBOL_REF_TLS_MODEL to extract the field as an enum tls_model. */
2478 #define SYMBOL_FLAG_TLS_SHIFT 3
2479 #define SYMBOL_REF_TLS_MODEL(RTX) \
2480 ((enum tls_model) ((SYMBOL_REF_FLAGS (RTX) >> SYMBOL_FLAG_TLS_SHIFT) & 7))
2481 /* Set if this symbol is not defined in this translation unit. */
2482 #define SYMBOL_FLAG_EXTERNAL (1 << 6)
2483 #define SYMBOL_REF_EXTERNAL_P(RTX) \
2484 ((SYMBOL_REF_FLAGS (RTX) & SYMBOL_FLAG_EXTERNAL) != 0)
2485 /* Set if this symbol has a block_symbol structure associated with it. */
2486 #define SYMBOL_FLAG_HAS_BLOCK_INFO (1 << 7)
2487 #define SYMBOL_REF_HAS_BLOCK_INFO_P(RTX) \
2488 ((SYMBOL_REF_FLAGS (RTX) & SYMBOL_FLAG_HAS_BLOCK_INFO) != 0)
2489 /* Set if this symbol is a section anchor. SYMBOL_REF_ANCHOR_P implies
2490 SYMBOL_REF_HAS_BLOCK_INFO_P. */
2491 #define SYMBOL_FLAG_ANCHOR (1 << 8)
2492 #define SYMBOL_REF_ANCHOR_P(RTX) \
2493 ((SYMBOL_REF_FLAGS (RTX) & SYMBOL_FLAG_ANCHOR) != 0)
2495 /* Subsequent bits are available for the target to use. */
2496 #define SYMBOL_FLAG_MACH_DEP_SHIFT 9
2497 #define SYMBOL_FLAG_MACH_DEP (1 << SYMBOL_FLAG_MACH_DEP_SHIFT)
2499 /* If SYMBOL_REF_HAS_BLOCK_INFO_P (RTX), this is the object_block
2500 structure to which the symbol belongs, or NULL if it has not been
2501 assigned a block. */
2502 #define SYMBOL_REF_BLOCK(RTX) (BLOCK_SYMBOL_CHECK (RTX)->block)
2504 /* If SYMBOL_REF_HAS_BLOCK_INFO_P (RTX), this is the offset of RTX from
2505 the first object in SYMBOL_REF_BLOCK (RTX). The value is negative if
2506 RTX has not yet been assigned to a block, or it has not been given an
2507 offset within that block. */
2508 #define SYMBOL_REF_BLOCK_OFFSET(RTX) (BLOCK_SYMBOL_CHECK (RTX)->offset)
2510 /* True if RTX is flagged to be a scheduling barrier. */
2511 #define PREFETCH_SCHEDULE_BARRIER_P(RTX) \
2512 (RTL_FLAG_CHECK1 ("PREFETCH_SCHEDULE_BARRIER_P", (RTX), PREFETCH)->volatil)
2514 /* Indicate whether the machine has any sort of auto increment addressing.
2515 If not, we can avoid checking for REG_INC notes. */
2517 #if (defined (HAVE_PRE_INCREMENT) || defined (HAVE_PRE_DECREMENT) \
2518 || defined (HAVE_POST_INCREMENT) || defined (HAVE_POST_DECREMENT) \
2519 || defined (HAVE_PRE_MODIFY_DISP) || defined (HAVE_POST_MODIFY_DISP) \
2520 || defined (HAVE_PRE_MODIFY_REG) || defined (HAVE_POST_MODIFY_REG))
2521 #define AUTO_INC_DEC 1
2522 #else
2523 #define AUTO_INC_DEC 0
2524 #endif
2526 /* Define a macro to look for REG_INC notes,
2527 but save time on machines where they never exist. */
2529 #if AUTO_INC_DEC
2530 #define FIND_REG_INC_NOTE(INSN, REG) \
2531 ((REG) != NULL_RTX && REG_P ((REG)) \
2532 ? find_regno_note ((INSN), REG_INC, REGNO (REG)) \
2533 : find_reg_note ((INSN), REG_INC, (REG)))
2534 #else
2535 #define FIND_REG_INC_NOTE(INSN, REG) 0
2536 #endif
2538 #ifndef HAVE_PRE_INCREMENT
2539 #define HAVE_PRE_INCREMENT 0
2540 #endif
2542 #ifndef HAVE_PRE_DECREMENT
2543 #define HAVE_PRE_DECREMENT 0
2544 #endif
2546 #ifndef HAVE_POST_INCREMENT
2547 #define HAVE_POST_INCREMENT 0
2548 #endif
2550 #ifndef HAVE_POST_DECREMENT
2551 #define HAVE_POST_DECREMENT 0
2552 #endif
2554 #ifndef HAVE_POST_MODIFY_DISP
2555 #define HAVE_POST_MODIFY_DISP 0
2556 #endif
2558 #ifndef HAVE_POST_MODIFY_REG
2559 #define HAVE_POST_MODIFY_REG 0
2560 #endif
2562 #ifndef HAVE_PRE_MODIFY_DISP
2563 #define HAVE_PRE_MODIFY_DISP 0
2564 #endif
2566 #ifndef HAVE_PRE_MODIFY_REG
2567 #define HAVE_PRE_MODIFY_REG 0
2568 #endif
2571 /* Some architectures do not have complete pre/post increment/decrement
2572 instruction sets, or only move some modes efficiently. These macros
2573 allow us to tune autoincrement generation. */
2575 #ifndef USE_LOAD_POST_INCREMENT
2576 #define USE_LOAD_POST_INCREMENT(MODE) HAVE_POST_INCREMENT
2577 #endif
2579 #ifndef USE_LOAD_POST_DECREMENT
2580 #define USE_LOAD_POST_DECREMENT(MODE) HAVE_POST_DECREMENT
2581 #endif
2583 #ifndef USE_LOAD_PRE_INCREMENT
2584 #define USE_LOAD_PRE_INCREMENT(MODE) HAVE_PRE_INCREMENT
2585 #endif
2587 #ifndef USE_LOAD_PRE_DECREMENT
2588 #define USE_LOAD_PRE_DECREMENT(MODE) HAVE_PRE_DECREMENT
2589 #endif
2591 #ifndef USE_STORE_POST_INCREMENT
2592 #define USE_STORE_POST_INCREMENT(MODE) HAVE_POST_INCREMENT
2593 #endif
2595 #ifndef USE_STORE_POST_DECREMENT
2596 #define USE_STORE_POST_DECREMENT(MODE) HAVE_POST_DECREMENT
2597 #endif
2599 #ifndef USE_STORE_PRE_INCREMENT
2600 #define USE_STORE_PRE_INCREMENT(MODE) HAVE_PRE_INCREMENT
2601 #endif
2603 #ifndef USE_STORE_PRE_DECREMENT
2604 #define USE_STORE_PRE_DECREMENT(MODE) HAVE_PRE_DECREMENT
2605 #endif
2607 /* Nonzero when we are generating CONCATs. */
2608 extern int generating_concat_p;
2610 /* Nonzero when we are expanding trees to RTL. */
2611 extern int currently_expanding_to_rtl;
2613 /* Generally useful functions. */
2615 #ifndef GENERATOR_FILE
2616 /* Return the cost of SET X. SPEED_P is true if optimizing for speed
2617 rather than size. */
2619 static inline int
2620 set_rtx_cost (rtx x, bool speed_p)
2622 return rtx_cost (x, VOIDmode, INSN, 4, speed_p);
2625 /* Like set_rtx_cost, but return both the speed and size costs in C. */
2627 static inline void
2628 get_full_set_rtx_cost (rtx x, struct full_rtx_costs *c)
2630 get_full_rtx_cost (x, VOIDmode, INSN, 4, c);
2633 /* Return the cost of moving X into a register, relative to the cost
2634 of a register move. SPEED_P is true if optimizing for speed rather
2635 than size. */
2637 static inline int
2638 set_src_cost (rtx x, machine_mode mode, bool speed_p)
2640 return rtx_cost (x, mode, SET, 1, speed_p);
2643 /* Like set_src_cost, but return both the speed and size costs in C. */
2645 static inline void
2646 get_full_set_src_cost (rtx x, machine_mode mode, struct full_rtx_costs *c)
2648 get_full_rtx_cost (x, mode, SET, 1, c);
2650 #endif
2652 /* In explow.c */
2653 extern HOST_WIDE_INT trunc_int_for_mode (HOST_WIDE_INT, machine_mode);
2654 extern rtx plus_constant (machine_mode, rtx, HOST_WIDE_INT, bool = false);
2656 /* In rtl.c */
2657 extern rtx rtx_alloc_stat (RTX_CODE MEM_STAT_DECL);
2658 #define rtx_alloc(c) rtx_alloc_stat (c MEM_STAT_INFO)
2659 extern rtx rtx_alloc_stat_v (RTX_CODE MEM_STAT_DECL, int);
2660 #define rtx_alloc_v(c, SZ) rtx_alloc_stat_v (c MEM_STAT_INFO, SZ)
2661 #define const_wide_int_alloc(NWORDS) \
2662 rtx_alloc_v (CONST_WIDE_INT, \
2663 (sizeof (struct hwivec_def) \
2664 + ((NWORDS)-1) * sizeof (HOST_WIDE_INT))) \
2666 extern rtvec rtvec_alloc (int);
2667 extern rtvec shallow_copy_rtvec (rtvec);
2668 extern bool shared_const_p (const_rtx);
2669 extern rtx copy_rtx (rtx);
2670 extern enum rtx_code classify_insn (rtx);
2671 extern void dump_rtx_statistics (void);
2673 /* In emit-rtl.c */
2674 extern rtx copy_rtx_if_shared (rtx);
2676 /* In rtl.c */
2677 extern unsigned int rtx_size (const_rtx);
2678 extern rtx shallow_copy_rtx_stat (const_rtx MEM_STAT_DECL);
2679 #define shallow_copy_rtx(a) shallow_copy_rtx_stat (a MEM_STAT_INFO)
2680 extern int rtx_equal_p (const_rtx, const_rtx);
2681 extern bool rtvec_all_equal_p (const_rtvec);
2683 /* Return true if X is a vector constant with a duplicated element value. */
2685 inline bool
2686 const_vec_duplicate_p (const_rtx x)
2688 return GET_CODE (x) == CONST_VECTOR && rtvec_all_equal_p (XVEC (x, 0));
2691 /* Return true if X is a vector constant with a duplicated element value.
2692 Store the duplicated element in *ELT if so. */
2694 template <typename T>
2695 inline bool
2696 const_vec_duplicate_p (T x, T *elt)
2698 if (const_vec_duplicate_p (x))
2700 *elt = CONST_VECTOR_ELT (x, 0);
2701 return true;
2703 return false;
2706 /* If X is a vector constant with a duplicated element value, return that
2707 element value, otherwise return X. */
2709 template <typename T>
2710 inline T
2711 unwrap_const_vec_duplicate (T x)
2713 if (const_vec_duplicate_p (x))
2714 x = CONST_VECTOR_ELT (x, 0);
2715 return x;
2718 /* In emit-rtl.c */
2719 extern rtvec gen_rtvec_v (int, rtx *);
2720 extern rtvec gen_rtvec_v (int, rtx_insn **);
2721 extern rtx gen_reg_rtx (machine_mode);
2722 extern rtx gen_rtx_REG_offset (rtx, machine_mode, unsigned int, int);
2723 extern rtx gen_reg_rtx_offset (rtx, machine_mode, int);
2724 extern rtx gen_reg_rtx_and_attrs (rtx);
2725 extern rtx_code_label *gen_label_rtx (void);
2726 extern rtx gen_lowpart_common (machine_mode, rtx);
2728 /* In cse.c */
2729 extern rtx gen_lowpart_if_possible (machine_mode, rtx);
2731 /* In emit-rtl.c */
2732 extern rtx gen_highpart (machine_mode, rtx);
2733 extern rtx gen_highpart_mode (machine_mode, machine_mode, rtx);
2734 extern rtx operand_subword (rtx, unsigned int, int, machine_mode);
2736 /* In emit-rtl.c */
2737 extern rtx operand_subword_force (rtx, unsigned int, machine_mode);
2738 extern bool paradoxical_subreg_p (const_rtx);
2739 extern int subreg_lowpart_p (const_rtx);
2740 extern unsigned int subreg_lowpart_offset (machine_mode,
2741 machine_mode);
2742 extern unsigned int subreg_highpart_offset (machine_mode,
2743 machine_mode);
2744 extern int byte_lowpart_offset (machine_mode, machine_mode);
2745 extern rtx make_safe_from (rtx, rtx);
2746 extern rtx convert_memory_address_addr_space (machine_mode, rtx,
2747 addr_space_t);
2748 #define convert_memory_address(to_mode,x) \
2749 convert_memory_address_addr_space ((to_mode), (x), ADDR_SPACE_GENERIC)
2750 extern const char *get_insn_name (int);
2751 extern rtx_insn *get_last_insn_anywhere (void);
2752 extern rtx_insn *get_first_nonnote_insn (void);
2753 extern rtx_insn *get_last_nonnote_insn (void);
2754 extern void start_sequence (void);
2755 extern void push_to_sequence (rtx_insn *);
2756 extern void push_to_sequence2 (rtx_insn *, rtx_insn *);
2757 extern void end_sequence (void);
2758 #if TARGET_SUPPORTS_WIDE_INT == 0
2759 extern double_int rtx_to_double_int (const_rtx);
2760 #endif
2761 extern void cwi_output_hex (FILE *, const_rtx);
2762 #ifndef GENERATOR_FILE
2763 extern rtx immed_wide_int_const (const wide_int_ref &, machine_mode);
2764 #endif
2765 #if TARGET_SUPPORTS_WIDE_INT == 0
2766 extern rtx immed_double_const (HOST_WIDE_INT, HOST_WIDE_INT,
2767 machine_mode);
2768 #endif
2770 /* In varasm.c */
2771 extern rtx force_const_mem (machine_mode, rtx);
2773 /* In varasm.c */
2775 struct function;
2776 extern rtx get_pool_constant (const_rtx);
2777 extern rtx get_pool_constant_mark (rtx, bool *);
2778 extern machine_mode get_pool_mode (const_rtx);
2779 extern rtx simplify_subtraction (rtx);
2780 extern void decide_function_section (tree);
2782 /* In emit-rtl.c */
2783 extern rtx_insn *emit_insn_before (rtx, rtx);
2784 extern rtx_insn *emit_insn_before_noloc (rtx, rtx_insn *, basic_block);
2785 extern rtx_insn *emit_insn_before_setloc (rtx, rtx_insn *, int);
2786 extern rtx_jump_insn *emit_jump_insn_before (rtx, rtx);
2787 extern rtx_jump_insn *emit_jump_insn_before_noloc (rtx, rtx_insn *);
2788 extern rtx_jump_insn *emit_jump_insn_before_setloc (rtx, rtx_insn *, int);
2789 extern rtx_insn *emit_call_insn_before (rtx, rtx_insn *);
2790 extern rtx_insn *emit_call_insn_before_noloc (rtx, rtx_insn *);
2791 extern rtx_insn *emit_call_insn_before_setloc (rtx, rtx_insn *, int);
2792 extern rtx_insn *emit_debug_insn_before (rtx, rtx_insn *);
2793 extern rtx_insn *emit_debug_insn_before_noloc (rtx, rtx);
2794 extern rtx_insn *emit_debug_insn_before_setloc (rtx, rtx, int);
2795 extern rtx_barrier *emit_barrier_before (rtx);
2796 extern rtx_code_label *emit_label_before (rtx, rtx_insn *);
2797 extern rtx_note *emit_note_before (enum insn_note, rtx_insn *);
2798 extern rtx_insn *emit_insn_after (rtx, rtx);
2799 extern rtx_insn *emit_insn_after_noloc (rtx, rtx, basic_block);
2800 extern rtx_insn *emit_insn_after_setloc (rtx, rtx, int);
2801 extern rtx_jump_insn *emit_jump_insn_after (rtx, rtx);
2802 extern rtx_jump_insn *emit_jump_insn_after_noloc (rtx, rtx);
2803 extern rtx_jump_insn *emit_jump_insn_after_setloc (rtx, rtx, int);
2804 extern rtx_insn *emit_call_insn_after (rtx, rtx);
2805 extern rtx_insn *emit_call_insn_after_noloc (rtx, rtx);
2806 extern rtx_insn *emit_call_insn_after_setloc (rtx, rtx, int);
2807 extern rtx_insn *emit_debug_insn_after (rtx, rtx);
2808 extern rtx_insn *emit_debug_insn_after_noloc (rtx, rtx);
2809 extern rtx_insn *emit_debug_insn_after_setloc (rtx, rtx, int);
2810 extern rtx_barrier *emit_barrier_after (rtx);
2811 extern rtx_insn *emit_label_after (rtx, rtx_insn *);
2812 extern rtx_note *emit_note_after (enum insn_note, rtx_insn *);
2813 extern rtx_insn *emit_insn (rtx);
2814 extern rtx_insn *emit_debug_insn (rtx);
2815 extern rtx_insn *emit_jump_insn (rtx);
2816 extern rtx_insn *emit_call_insn (rtx);
2817 extern rtx_code_label *emit_label (rtx);
2818 extern rtx_jump_table_data *emit_jump_table_data (rtx);
2819 extern rtx_barrier *emit_barrier (void);
2820 extern rtx_note *emit_note (enum insn_note);
2821 extern rtx_note *emit_note_copy (rtx_note *);
2822 extern rtx_insn *gen_clobber (rtx);
2823 extern rtx_insn *emit_clobber (rtx);
2824 extern rtx_insn *gen_use (rtx);
2825 extern rtx_insn *emit_use (rtx);
2826 extern rtx_insn *make_insn_raw (rtx);
2827 extern void add_function_usage_to (rtx, rtx);
2828 extern rtx_call_insn *last_call_insn (void);
2829 extern rtx_insn *previous_insn (rtx_insn *);
2830 extern rtx_insn *next_insn (rtx_insn *);
2831 extern rtx_insn *prev_nonnote_insn (rtx);
2832 extern rtx_insn *prev_nonnote_insn_bb (rtx);
2833 extern rtx_insn *next_nonnote_insn (rtx);
2834 extern rtx_insn *next_nonnote_insn_bb (rtx_insn *);
2835 extern rtx_insn *prev_nondebug_insn (rtx);
2836 extern rtx_insn *next_nondebug_insn (rtx);
2837 extern rtx_insn *prev_nonnote_nondebug_insn (rtx);
2838 extern rtx_insn *next_nonnote_nondebug_insn (rtx);
2839 extern rtx_insn *prev_real_insn (rtx);
2840 extern rtx_insn *next_real_insn (rtx);
2841 extern rtx_insn *prev_active_insn (rtx);
2842 extern rtx_insn *next_active_insn (rtx);
2843 extern int active_insn_p (const_rtx);
2844 extern rtx_insn *next_cc0_user (rtx);
2845 extern rtx_insn *prev_cc0_setter (rtx_insn *);
2847 /* In emit-rtl.c */
2848 extern int insn_line (const rtx_insn *);
2849 extern const char * insn_file (const rtx_insn *);
2850 extern tree insn_scope (const rtx_insn *);
2851 extern expanded_location insn_location (const rtx_insn *);
2852 extern location_t prologue_location, epilogue_location;
2854 /* In jump.c */
2855 extern enum rtx_code reverse_condition (enum rtx_code);
2856 extern enum rtx_code reverse_condition_maybe_unordered (enum rtx_code);
2857 extern enum rtx_code swap_condition (enum rtx_code);
2858 extern enum rtx_code unsigned_condition (enum rtx_code);
2859 extern enum rtx_code signed_condition (enum rtx_code);
2860 extern void mark_jump_label (rtx, rtx_insn *, int);
2862 /* In jump.c */
2863 extern rtx_insn *delete_related_insns (rtx);
2865 /* In recog.c */
2866 extern rtx *find_constant_term_loc (rtx *);
2868 /* In emit-rtl.c */
2869 extern rtx_insn *try_split (rtx, rtx_insn *, int);
2870 extern int split_branch_probability;
2872 /* In insn-recog.c (generated by genrecog). */
2873 extern rtx_insn *split_insns (rtx, rtx_insn *);
2875 /* In simplify-rtx.c */
2876 extern rtx simplify_const_unary_operation (enum rtx_code, machine_mode,
2877 rtx, machine_mode);
2878 extern rtx simplify_unary_operation (enum rtx_code, machine_mode, rtx,
2879 machine_mode);
2880 extern rtx simplify_const_binary_operation (enum rtx_code, machine_mode,
2881 rtx, rtx);
2882 extern rtx simplify_binary_operation (enum rtx_code, machine_mode, rtx,
2883 rtx);
2884 extern rtx simplify_ternary_operation (enum rtx_code, machine_mode,
2885 machine_mode, rtx, rtx, rtx);
2886 extern rtx simplify_const_relational_operation (enum rtx_code,
2887 machine_mode, rtx, rtx);
2888 extern rtx simplify_relational_operation (enum rtx_code, machine_mode,
2889 machine_mode, rtx, rtx);
2890 extern rtx simplify_gen_binary (enum rtx_code, machine_mode, rtx, rtx);
2891 extern rtx simplify_gen_unary (enum rtx_code, machine_mode, rtx,
2892 machine_mode);
2893 extern rtx simplify_gen_ternary (enum rtx_code, machine_mode,
2894 machine_mode, rtx, rtx, rtx);
2895 extern rtx simplify_gen_relational (enum rtx_code, machine_mode,
2896 machine_mode, rtx, rtx);
2897 extern rtx simplify_subreg (machine_mode, rtx, machine_mode,
2898 unsigned int);
2899 extern rtx simplify_gen_subreg (machine_mode, rtx, machine_mode,
2900 unsigned int);
2901 extern rtx lowpart_subreg (machine_mode, rtx, machine_mode);
2902 extern rtx simplify_replace_fn_rtx (rtx, const_rtx,
2903 rtx (*fn) (rtx, const_rtx, void *), void *);
2904 extern rtx simplify_replace_rtx (rtx, const_rtx, rtx);
2905 extern rtx simplify_rtx (const_rtx);
2906 extern rtx avoid_constant_pool_reference (rtx);
2907 extern rtx delegitimize_mem_from_attrs (rtx);
2908 extern bool mode_signbit_p (machine_mode, const_rtx);
2909 extern bool val_signbit_p (machine_mode, unsigned HOST_WIDE_INT);
2910 extern bool val_signbit_known_set_p (machine_mode,
2911 unsigned HOST_WIDE_INT);
2912 extern bool val_signbit_known_clear_p (machine_mode,
2913 unsigned HOST_WIDE_INT);
2915 /* In reginfo.c */
2916 extern machine_mode choose_hard_reg_mode (unsigned int, unsigned int,
2917 bool);
2918 extern const HARD_REG_SET &simplifiable_subregs (const subreg_shape &);
2920 /* In emit-rtl.c */
2921 extern rtx set_for_reg_notes (rtx);
2922 extern rtx set_unique_reg_note (rtx, enum reg_note, rtx);
2923 extern rtx set_dst_reg_note (rtx, enum reg_note, rtx, rtx);
2924 extern void set_insn_deleted (rtx);
2926 /* Functions in rtlanal.c */
2928 extern rtx single_set_2 (const rtx_insn *, const_rtx);
2930 /* Handle the cheap and common cases inline for performance. */
2932 inline rtx single_set (const rtx_insn *insn)
2934 if (!INSN_P (insn))
2935 return NULL_RTX;
2937 if (GET_CODE (PATTERN (insn)) == SET)
2938 return PATTERN (insn);
2940 /* Defer to the more expensive case. */
2941 return single_set_2 (insn, PATTERN (insn));
2944 extern machine_mode get_address_mode (rtx mem);
2945 extern int rtx_addr_can_trap_p (const_rtx);
2946 extern bool nonzero_address_p (const_rtx);
2947 extern int rtx_unstable_p (const_rtx);
2948 extern bool rtx_varies_p (const_rtx, bool);
2949 extern bool rtx_addr_varies_p (const_rtx, bool);
2950 extern rtx get_call_rtx_from (rtx);
2951 extern HOST_WIDE_INT get_integer_term (const_rtx);
2952 extern rtx get_related_value (const_rtx);
2953 extern bool offset_within_block_p (const_rtx, HOST_WIDE_INT);
2954 extern void split_const (rtx, rtx *, rtx *);
2955 extern bool unsigned_reg_p (rtx);
2956 extern int reg_mentioned_p (const_rtx, const_rtx);
2957 extern int count_occurrences (const_rtx, const_rtx, int);
2958 extern int reg_referenced_p (const_rtx, const_rtx);
2959 extern int reg_used_between_p (const_rtx, const rtx_insn *, const rtx_insn *);
2960 extern int reg_set_between_p (const_rtx, const rtx_insn *, const rtx_insn *);
2961 extern int commutative_operand_precedence (rtx);
2962 extern bool swap_commutative_operands_p (rtx, rtx);
2963 extern int modified_between_p (const_rtx, const rtx_insn *, const rtx_insn *);
2964 extern int no_labels_between_p (const rtx_insn *, const rtx_insn *);
2965 extern int modified_in_p (const_rtx, const_rtx);
2966 extern int reg_set_p (const_rtx, const_rtx);
2967 extern int multiple_sets (const_rtx);
2968 extern int set_noop_p (const_rtx);
2969 extern int noop_move_p (const rtx_insn *);
2970 extern bool refers_to_regno_p (unsigned int, unsigned int, const_rtx, rtx *);
2971 extern int reg_overlap_mentioned_p (const_rtx, const_rtx);
2972 extern const_rtx set_of (const_rtx, const_rtx);
2973 extern void record_hard_reg_sets (rtx, const_rtx, void *);
2974 extern void record_hard_reg_uses (rtx *, void *);
2975 extern void find_all_hard_regs (const_rtx, HARD_REG_SET *);
2976 extern void find_all_hard_reg_sets (const rtx_insn *, HARD_REG_SET *, bool);
2977 extern void note_stores (const_rtx, void (*) (rtx, const_rtx, void *), void *);
2978 extern void note_uses (rtx *, void (*) (rtx *, void *), void *);
2979 extern int dead_or_set_p (const_rtx, const_rtx);
2980 extern int dead_or_set_regno_p (const_rtx, unsigned int);
2981 extern rtx find_reg_note (const_rtx, enum reg_note, const_rtx);
2982 extern rtx find_regno_note (const_rtx, enum reg_note, unsigned int);
2983 extern rtx find_reg_equal_equiv_note (const_rtx);
2984 extern rtx find_constant_src (const rtx_insn *);
2985 extern int find_reg_fusage (const_rtx, enum rtx_code, const_rtx);
2986 extern int find_regno_fusage (const_rtx, enum rtx_code, unsigned int);
2987 extern rtx alloc_reg_note (enum reg_note, rtx, rtx);
2988 extern void add_reg_note (rtx, enum reg_note, rtx);
2989 extern void add_int_reg_note (rtx, enum reg_note, int);
2990 extern void add_shallow_copy_of_reg_note (rtx_insn *, rtx);
2991 extern void remove_note (rtx, const_rtx);
2992 extern void remove_reg_equal_equiv_notes (rtx_insn *);
2993 extern void remove_reg_equal_equiv_notes_for_regno (unsigned int);
2994 extern int side_effects_p (const_rtx);
2995 extern int volatile_refs_p (const_rtx);
2996 extern int volatile_insn_p (const_rtx);
2997 extern int may_trap_p_1 (const_rtx, unsigned);
2998 extern int may_trap_p (const_rtx);
2999 extern int may_trap_or_fault_p (const_rtx);
3000 extern bool can_throw_internal (const_rtx);
3001 extern bool can_throw_external (const_rtx);
3002 extern bool insn_could_throw_p (const_rtx);
3003 extern bool insn_nothrow_p (const_rtx);
3004 extern bool can_nonlocal_goto (const rtx_insn *);
3005 extern void copy_reg_eh_region_note_forward (rtx, rtx_insn *, rtx);
3006 extern void copy_reg_eh_region_note_backward (rtx, rtx_insn *, rtx);
3007 extern int inequality_comparisons_p (const_rtx);
3008 extern rtx replace_rtx (rtx, rtx, rtx);
3009 extern void replace_label (rtx *, rtx, rtx, bool);
3010 extern void replace_label_in_insn (rtx_insn *, rtx, rtx, bool);
3011 extern bool rtx_referenced_p (const_rtx, const_rtx);
3012 extern bool tablejump_p (const rtx_insn *, rtx *, rtx_jump_table_data **);
3013 extern int computed_jump_p (const rtx_insn *);
3014 extern bool tls_referenced_p (const_rtx);
3016 /* Overload for refers_to_regno_p for checking a single register. */
3017 inline bool
3018 refers_to_regno_p (unsigned int regnum, const_rtx x, rtx* loc = NULL)
3020 return refers_to_regno_p (regnum, regnum + 1, x, loc);
3023 /* Callback for for_each_inc_dec, to process the autoinc operation OP
3024 within MEM that sets DEST to SRC + SRCOFF, or SRC if SRCOFF is
3025 NULL. The callback is passed the same opaque ARG passed to
3026 for_each_inc_dec. Return zero to continue looking for other
3027 autoinc operations or any other value to interrupt the traversal and
3028 return that value to the caller of for_each_inc_dec. */
3029 typedef int (*for_each_inc_dec_fn) (rtx mem, rtx op, rtx dest, rtx src,
3030 rtx srcoff, void *arg);
3031 extern int for_each_inc_dec (rtx, for_each_inc_dec_fn, void *arg);
3033 typedef int (*rtx_equal_p_callback_function) (const_rtx *, const_rtx *,
3034 rtx *, rtx *);
3035 extern int rtx_equal_p_cb (const_rtx, const_rtx,
3036 rtx_equal_p_callback_function);
3038 typedef int (*hash_rtx_callback_function) (const_rtx, machine_mode, rtx *,
3039 machine_mode *);
3040 extern unsigned hash_rtx_cb (const_rtx, machine_mode, int *, int *,
3041 bool, hash_rtx_callback_function);
3043 extern rtx regno_use_in (unsigned int, rtx);
3044 extern int auto_inc_p (const_rtx);
3045 extern bool in_insn_list_p (const rtx_insn_list *, const rtx_insn *);
3046 extern void remove_node_from_expr_list (const_rtx, rtx_expr_list **);
3047 extern void remove_node_from_insn_list (const rtx_insn *, rtx_insn_list **);
3048 extern int loc_mentioned_in_p (rtx *, const_rtx);
3049 extern rtx_insn *find_first_parameter_load (rtx_insn *, rtx_insn *);
3050 extern bool keep_with_call_p (const rtx_insn *);
3051 extern bool label_is_jump_target_p (const_rtx, const rtx_insn *);
3052 extern int insn_rtx_cost (rtx, bool);
3053 extern unsigned seq_cost (const rtx_insn *, bool);
3055 /* Given an insn and condition, return a canonical description of
3056 the test being made. */
3057 extern rtx canonicalize_condition (rtx_insn *, rtx, int, rtx_insn **, rtx,
3058 int, int);
3060 /* Given a JUMP_INSN, return a canonical description of the test
3061 being made. */
3062 extern rtx get_condition (rtx_insn *, rtx_insn **, int, int);
3064 /* Information about a subreg of a hard register. */
3065 struct subreg_info
3067 /* Offset of first hard register involved in the subreg. */
3068 int offset;
3069 /* Number of hard registers involved in the subreg. In the case of
3070 a paradoxical subreg, this is the number of registers that would
3071 be modified by writing to the subreg; some of them may be don't-care
3072 when reading from the subreg. */
3073 int nregs;
3074 /* Whether this subreg can be represented as a hard reg with the new
3075 mode (by adding OFFSET to the original hard register). */
3076 bool representable_p;
3079 extern void subreg_get_info (unsigned int, machine_mode,
3080 unsigned int, machine_mode,
3081 struct subreg_info *);
3083 /* lists.c */
3085 extern void free_EXPR_LIST_list (rtx_expr_list **);
3086 extern void free_INSN_LIST_list (rtx_insn_list **);
3087 extern void free_EXPR_LIST_node (rtx);
3088 extern void free_INSN_LIST_node (rtx);
3089 extern rtx_insn_list *alloc_INSN_LIST (rtx, rtx);
3090 extern rtx_insn_list *copy_INSN_LIST (rtx_insn_list *);
3091 extern rtx_insn_list *concat_INSN_LIST (rtx_insn_list *, rtx_insn_list *);
3092 extern rtx_expr_list *alloc_EXPR_LIST (int, rtx, rtx);
3093 extern void remove_free_INSN_LIST_elem (rtx_insn *, rtx_insn_list **);
3094 extern rtx remove_list_elem (rtx, rtx *);
3095 extern rtx_insn *remove_free_INSN_LIST_node (rtx_insn_list **);
3096 extern rtx remove_free_EXPR_LIST_node (rtx_expr_list **);
3099 /* reginfo.c */
3101 /* Resize reg info. */
3102 extern bool resize_reg_info (void);
3103 /* Free up register info memory. */
3104 extern void free_reg_info (void);
3105 extern void init_subregs_of_mode (void);
3106 extern void finish_subregs_of_mode (void);
3108 /* recog.c */
3109 extern rtx extract_asm_operands (rtx);
3110 extern int asm_noperands (const_rtx);
3111 extern const char *decode_asm_operands (rtx, rtx *, rtx **, const char **,
3112 machine_mode *, location_t *);
3113 extern void get_referenced_operands (const char *, bool *, unsigned int);
3115 extern enum reg_class reg_preferred_class (int);
3116 extern enum reg_class reg_alternate_class (int);
3117 extern enum reg_class reg_allocno_class (int);
3118 extern void setup_reg_classes (int, enum reg_class, enum reg_class,
3119 enum reg_class);
3121 extern void split_all_insns (void);
3122 extern unsigned int split_all_insns_noflow (void);
3124 #define MAX_SAVED_CONST_INT 64
3125 extern GTY(()) rtx const_int_rtx[MAX_SAVED_CONST_INT * 2 + 1];
3127 #define const0_rtx (const_int_rtx[MAX_SAVED_CONST_INT])
3128 #define const1_rtx (const_int_rtx[MAX_SAVED_CONST_INT+1])
3129 #define const2_rtx (const_int_rtx[MAX_SAVED_CONST_INT+2])
3130 #define constm1_rtx (const_int_rtx[MAX_SAVED_CONST_INT-1])
3131 extern GTY(()) rtx const_true_rtx;
3133 extern GTY(()) rtx const_tiny_rtx[4][(int) MAX_MACHINE_MODE];
3135 /* Returns a constant 0 rtx in mode MODE. Integer modes are treated the
3136 same as VOIDmode. */
3138 #define CONST0_RTX(MODE) (const_tiny_rtx[0][(int) (MODE)])
3140 /* Likewise, for the constants 1 and 2 and -1. */
3142 #define CONST1_RTX(MODE) (const_tiny_rtx[1][(int) (MODE)])
3143 #define CONST2_RTX(MODE) (const_tiny_rtx[2][(int) (MODE)])
3144 #define CONSTM1_RTX(MODE) (const_tiny_rtx[3][(int) (MODE)])
3146 extern GTY(()) rtx pc_rtx;
3147 extern GTY(()) rtx cc0_rtx;
3148 extern GTY(()) rtx ret_rtx;
3149 extern GTY(()) rtx simple_return_rtx;
3150 extern GTY(()) rtx_insn *invalid_insn_rtx;
3152 /* If HARD_FRAME_POINTER_REGNUM is defined, then a special dummy reg
3153 is used to represent the frame pointer. This is because the
3154 hard frame pointer and the automatic variables are separated by an amount
3155 that cannot be determined until after register allocation. We can assume
3156 that in this case ELIMINABLE_REGS will be defined, one action of which
3157 will be to eliminate FRAME_POINTER_REGNUM into HARD_FRAME_POINTER_REGNUM. */
3158 #ifndef HARD_FRAME_POINTER_REGNUM
3159 #define HARD_FRAME_POINTER_REGNUM FRAME_POINTER_REGNUM
3160 #endif
3162 #ifndef HARD_FRAME_POINTER_IS_FRAME_POINTER
3163 #define HARD_FRAME_POINTER_IS_FRAME_POINTER \
3164 (HARD_FRAME_POINTER_REGNUM == FRAME_POINTER_REGNUM)
3165 #endif
3167 #ifndef HARD_FRAME_POINTER_IS_ARG_POINTER
3168 #define HARD_FRAME_POINTER_IS_ARG_POINTER \
3169 (HARD_FRAME_POINTER_REGNUM == ARG_POINTER_REGNUM)
3170 #endif
3172 /* Index labels for global_rtl. */
3173 enum global_rtl_index
3175 GR_STACK_POINTER,
3176 GR_FRAME_POINTER,
3177 /* For register elimination to work properly these hard_frame_pointer_rtx,
3178 frame_pointer_rtx, and arg_pointer_rtx must be the same if they refer to
3179 the same register. */
3180 #if FRAME_POINTER_REGNUM == ARG_POINTER_REGNUM
3181 GR_ARG_POINTER = GR_FRAME_POINTER,
3182 #endif
3183 #if HARD_FRAME_POINTER_IS_FRAME_POINTER
3184 GR_HARD_FRAME_POINTER = GR_FRAME_POINTER,
3185 #else
3186 GR_HARD_FRAME_POINTER,
3187 #endif
3188 #if FRAME_POINTER_REGNUM != ARG_POINTER_REGNUM
3189 #if HARD_FRAME_POINTER_IS_ARG_POINTER
3190 GR_ARG_POINTER = GR_HARD_FRAME_POINTER,
3191 #else
3192 GR_ARG_POINTER,
3193 #endif
3194 #endif
3195 GR_VIRTUAL_INCOMING_ARGS,
3196 GR_VIRTUAL_STACK_ARGS,
3197 GR_VIRTUAL_STACK_DYNAMIC,
3198 GR_VIRTUAL_OUTGOING_ARGS,
3199 GR_VIRTUAL_CFA,
3200 GR_VIRTUAL_PREFERRED_STACK_BOUNDARY,
3202 GR_MAX
3205 /* Target-dependent globals. */
3206 struct GTY(()) target_rtl {
3207 /* All references to the hard registers in global_rtl_index go through
3208 these unique rtl objects. On machines where the frame-pointer and
3209 arg-pointer are the same register, they use the same unique object.
3211 After register allocation, other rtl objects which used to be pseudo-regs
3212 may be clobbered to refer to the frame-pointer register.
3213 But references that were originally to the frame-pointer can be
3214 distinguished from the others because they contain frame_pointer_rtx.
3216 When to use frame_pointer_rtx and hard_frame_pointer_rtx is a little
3217 tricky: until register elimination has taken place hard_frame_pointer_rtx
3218 should be used if it is being set, and frame_pointer_rtx otherwise. After
3219 register elimination hard_frame_pointer_rtx should always be used.
3220 On machines where the two registers are same (most) then these are the
3221 same. */
3222 rtx x_global_rtl[GR_MAX];
3224 /* A unique representation of (REG:Pmode PIC_OFFSET_TABLE_REGNUM). */
3225 rtx x_pic_offset_table_rtx;
3227 /* A unique representation of (REG:Pmode RETURN_ADDRESS_POINTER_REGNUM).
3228 This is used to implement __builtin_return_address for some machines;
3229 see for instance the MIPS port. */
3230 rtx x_return_address_pointer_rtx;
3232 /* Commonly used RTL for hard registers. These objects are not
3233 necessarily unique, so we allocate them separately from global_rtl.
3234 They are initialized once per compilation unit, then copied into
3235 regno_reg_rtx at the beginning of each function. */
3236 rtx x_initial_regno_reg_rtx[FIRST_PSEUDO_REGISTER];
3238 /* A sample (mem:M stack_pointer_rtx) rtx for each mode M. */
3239 rtx x_top_of_stack[MAX_MACHINE_MODE];
3241 /* Static hunks of RTL used by the aliasing code; these are treated
3242 as persistent to avoid unnecessary RTL allocations. */
3243 rtx x_static_reg_base_value[FIRST_PSEUDO_REGISTER];
3245 /* The default memory attributes for each mode. */
3246 struct mem_attrs *x_mode_mem_attrs[(int) MAX_MACHINE_MODE];
3248 /* Track if RTL has been initialized. */
3249 bool target_specific_initialized;
3252 extern GTY(()) struct target_rtl default_target_rtl;
3253 #if SWITCHABLE_TARGET
3254 extern struct target_rtl *this_target_rtl;
3255 #else
3256 #define this_target_rtl (&default_target_rtl)
3257 #endif
3259 #define global_rtl \
3260 (this_target_rtl->x_global_rtl)
3261 #define pic_offset_table_rtx \
3262 (this_target_rtl->x_pic_offset_table_rtx)
3263 #define return_address_pointer_rtx \
3264 (this_target_rtl->x_return_address_pointer_rtx)
3265 #define top_of_stack \
3266 (this_target_rtl->x_top_of_stack)
3267 #define mode_mem_attrs \
3268 (this_target_rtl->x_mode_mem_attrs)
3270 /* All references to certain hard regs, except those created
3271 by allocating pseudo regs into them (when that's possible),
3272 go through these unique rtx objects. */
3273 #define stack_pointer_rtx (global_rtl[GR_STACK_POINTER])
3274 #define frame_pointer_rtx (global_rtl[GR_FRAME_POINTER])
3275 #define hard_frame_pointer_rtx (global_rtl[GR_HARD_FRAME_POINTER])
3276 #define arg_pointer_rtx (global_rtl[GR_ARG_POINTER])
3278 #ifndef GENERATOR_FILE
3279 /* Return the attributes of a MEM rtx. */
3280 static inline struct mem_attrs *
3281 get_mem_attrs (const_rtx x)
3283 struct mem_attrs *attrs;
3285 attrs = MEM_ATTRS (x);
3286 if (!attrs)
3287 attrs = mode_mem_attrs[(int) GET_MODE (x)];
3288 return attrs;
3290 #endif
3292 /* Include the RTL generation functions. */
3294 #ifndef GENERATOR_FILE
3295 #include "genrtl.h"
3296 #undef gen_rtx_ASM_INPUT
3297 #define gen_rtx_ASM_INPUT(MODE, ARG0) \
3298 gen_rtx_fmt_si (ASM_INPUT, (MODE), (ARG0), 0)
3299 #define gen_rtx_ASM_INPUT_loc(MODE, ARG0, LOC) \
3300 gen_rtx_fmt_si (ASM_INPUT, (MODE), (ARG0), (LOC))
3301 #endif
3303 /* There are some RTL codes that require special attention; the
3304 generation functions included above do the raw handling. If you
3305 add to this list, modify special_rtx in gengenrtl.c as well. */
3307 extern rtx_expr_list *gen_rtx_EXPR_LIST (machine_mode, rtx, rtx);
3308 extern rtx_insn_list *gen_rtx_INSN_LIST (machine_mode, rtx, rtx);
3309 extern rtx_insn *
3310 gen_rtx_INSN (machine_mode mode, rtx_insn *prev_insn, rtx_insn *next_insn,
3311 basic_block bb, rtx pattern, int location, int code,
3312 rtx reg_notes);
3313 extern rtx gen_rtx_CONST_INT (machine_mode, HOST_WIDE_INT);
3314 extern rtx gen_rtx_CONST_VECTOR (machine_mode, rtvec);
3315 extern void set_mode_and_regno (rtx, machine_mode, unsigned int);
3316 extern rtx gen_raw_REG (machine_mode, unsigned int);
3317 extern rtx gen_rtx_REG (machine_mode, unsigned int);
3318 extern rtx gen_rtx_SUBREG (machine_mode, rtx, int);
3319 extern rtx gen_rtx_MEM (machine_mode, rtx);
3320 extern rtx gen_rtx_VAR_LOCATION (machine_mode, tree, rtx,
3321 enum var_init_status);
3323 #ifdef GENERATOR_FILE
3324 #define PUT_MODE(RTX, MODE) PUT_MODE_RAW (RTX, MODE)
3325 #else
3326 static inline void
3327 PUT_MODE (rtx x, machine_mode mode)
3329 if (REG_P (x))
3330 set_mode_and_regno (x, mode, REGNO (x));
3331 else
3332 PUT_MODE_RAW (x, mode);
3334 #endif
3336 #define GEN_INT(N) gen_rtx_CONST_INT (VOIDmode, (N))
3338 /* Virtual registers are used during RTL generation to refer to locations into
3339 the stack frame when the actual location isn't known until RTL generation
3340 is complete. The routine instantiate_virtual_regs replaces these with
3341 the proper value, which is normally {frame,arg,stack}_pointer_rtx plus
3342 a constant. */
3344 #define FIRST_VIRTUAL_REGISTER (FIRST_PSEUDO_REGISTER)
3346 /* This points to the first word of the incoming arguments passed on the stack,
3347 either by the caller or by the callee when pretending it was passed by the
3348 caller. */
3350 #define virtual_incoming_args_rtx (global_rtl[GR_VIRTUAL_INCOMING_ARGS])
3352 #define VIRTUAL_INCOMING_ARGS_REGNUM (FIRST_VIRTUAL_REGISTER)
3354 /* If FRAME_GROWS_DOWNWARD, this points to immediately above the first
3355 variable on the stack. Otherwise, it points to the first variable on
3356 the stack. */
3358 #define virtual_stack_vars_rtx (global_rtl[GR_VIRTUAL_STACK_ARGS])
3360 #define VIRTUAL_STACK_VARS_REGNUM ((FIRST_VIRTUAL_REGISTER) + 1)
3362 /* This points to the location of dynamically-allocated memory on the stack
3363 immediately after the stack pointer has been adjusted by the amount
3364 desired. */
3366 #define virtual_stack_dynamic_rtx (global_rtl[GR_VIRTUAL_STACK_DYNAMIC])
3368 #define VIRTUAL_STACK_DYNAMIC_REGNUM ((FIRST_VIRTUAL_REGISTER) + 2)
3370 /* This points to the location in the stack at which outgoing arguments should
3371 be written when the stack is pre-pushed (arguments pushed using push
3372 insns always use sp). */
3374 #define virtual_outgoing_args_rtx (global_rtl[GR_VIRTUAL_OUTGOING_ARGS])
3376 #define VIRTUAL_OUTGOING_ARGS_REGNUM ((FIRST_VIRTUAL_REGISTER) + 3)
3378 /* This points to the Canonical Frame Address of the function. This
3379 should correspond to the CFA produced by INCOMING_FRAME_SP_OFFSET,
3380 but is calculated relative to the arg pointer for simplicity; the
3381 frame pointer nor stack pointer are necessarily fixed relative to
3382 the CFA until after reload. */
3384 #define virtual_cfa_rtx (global_rtl[GR_VIRTUAL_CFA])
3386 #define VIRTUAL_CFA_REGNUM ((FIRST_VIRTUAL_REGISTER) + 4)
3388 #define LAST_VIRTUAL_POINTER_REGISTER ((FIRST_VIRTUAL_REGISTER) + 4)
3390 /* This is replaced by crtl->preferred_stack_boundary / BITS_PER_UNIT
3391 when finalized. */
3393 #define virtual_preferred_stack_boundary_rtx \
3394 (global_rtl[GR_VIRTUAL_PREFERRED_STACK_BOUNDARY])
3396 #define VIRTUAL_PREFERRED_STACK_BOUNDARY_REGNUM \
3397 ((FIRST_VIRTUAL_REGISTER) + 5)
3399 #define LAST_VIRTUAL_REGISTER ((FIRST_VIRTUAL_REGISTER) + 5)
3401 /* Nonzero if REGNUM is a pointer into the stack frame. */
3402 #define REGNO_PTR_FRAME_P(REGNUM) \
3403 ((REGNUM) == STACK_POINTER_REGNUM \
3404 || (REGNUM) == FRAME_POINTER_REGNUM \
3405 || (REGNUM) == HARD_FRAME_POINTER_REGNUM \
3406 || (REGNUM) == ARG_POINTER_REGNUM \
3407 || ((REGNUM) >= FIRST_VIRTUAL_REGISTER \
3408 && (REGNUM) <= LAST_VIRTUAL_POINTER_REGISTER))
3410 /* REGNUM never really appearing in the INSN stream. */
3411 #define INVALID_REGNUM (~(unsigned int) 0)
3413 /* REGNUM for which no debug information can be generated. */
3414 #define IGNORED_DWARF_REGNUM (INVALID_REGNUM - 1)
3416 extern rtx output_constant_def (tree, int);
3417 extern rtx lookup_constant_def (tree);
3419 /* Nonzero after end of reload pass.
3420 Set to 1 or 0 by reload1.c. */
3422 extern int reload_completed;
3424 /* Nonzero after thread_prologue_and_epilogue_insns has run. */
3425 extern int epilogue_completed;
3427 /* Set to 1 while reload_as_needed is operating.
3428 Required by some machines to handle any generated moves differently. */
3430 extern int reload_in_progress;
3432 /* Set to 1 while in lra. */
3433 extern int lra_in_progress;
3435 /* This macro indicates whether you may create a new
3436 pseudo-register. */
3438 #define can_create_pseudo_p() (!reload_in_progress && !reload_completed)
3440 #ifdef STACK_REGS
3441 /* Nonzero after end of regstack pass.
3442 Set to 1 or 0 by reg-stack.c. */
3443 extern int regstack_completed;
3444 #endif
3446 /* If this is nonzero, we do not bother generating VOLATILE
3447 around volatile memory references, and we are willing to
3448 output indirect addresses. If cse is to follow, we reject
3449 indirect addresses so a useful potential cse is generated;
3450 if it is used only once, instruction combination will produce
3451 the same indirect address eventually. */
3452 extern int cse_not_expected;
3454 /* Translates rtx code to tree code, for those codes needed by
3455 real_arithmetic. The function returns an int because the caller may not
3456 know what `enum tree_code' means. */
3458 extern int rtx_to_tree_code (enum rtx_code);
3460 /* In cse.c */
3461 extern int delete_trivially_dead_insns (rtx_insn *, int);
3462 extern int exp_equiv_p (const_rtx, const_rtx, int, bool);
3463 extern unsigned hash_rtx (const_rtx x, machine_mode, int *, int *, bool);
3465 /* In dse.c */
3466 extern bool check_for_inc_dec (rtx_insn *insn);
3468 /* In jump.c */
3469 extern int comparison_dominates_p (enum rtx_code, enum rtx_code);
3470 extern bool jump_to_label_p (const rtx_insn *);
3471 extern int condjump_p (const rtx_insn *);
3472 extern int any_condjump_p (const rtx_insn *);
3473 extern int any_uncondjump_p (const rtx_insn *);
3474 extern rtx pc_set (const rtx_insn *);
3475 extern rtx condjump_label (const rtx_insn *);
3476 extern int simplejump_p (const rtx_insn *);
3477 extern int returnjump_p (const rtx_insn *);
3478 extern int eh_returnjump_p (rtx_insn *);
3479 extern int onlyjump_p (const rtx_insn *);
3480 extern int only_sets_cc0_p (const_rtx);
3481 extern int sets_cc0_p (const_rtx);
3482 extern int invert_jump_1 (rtx_jump_insn *, rtx);
3483 extern int invert_jump (rtx_jump_insn *, rtx, int);
3484 extern int rtx_renumbered_equal_p (const_rtx, const_rtx);
3485 extern int true_regnum (const_rtx);
3486 extern unsigned int reg_or_subregno (const_rtx);
3487 extern int redirect_jump_1 (rtx_insn *, rtx);
3488 extern void redirect_jump_2 (rtx_jump_insn *, rtx, rtx, int, int);
3489 extern int redirect_jump (rtx_jump_insn *, rtx, int);
3490 extern void rebuild_jump_labels (rtx_insn *);
3491 extern void rebuild_jump_labels_chain (rtx_insn *);
3492 extern rtx reversed_comparison (const_rtx, machine_mode);
3493 extern enum rtx_code reversed_comparison_code (const_rtx, const_rtx);
3494 extern enum rtx_code reversed_comparison_code_parts (enum rtx_code, const_rtx,
3495 const_rtx, const_rtx);
3496 extern void delete_for_peephole (rtx_insn *, rtx_insn *);
3497 extern int condjump_in_parallel_p (const rtx_insn *);
3499 /* In emit-rtl.c. */
3500 extern int max_reg_num (void);
3501 extern int max_label_num (void);
3502 extern int get_first_label_num (void);
3503 extern void maybe_set_first_label_num (rtx);
3504 extern void delete_insns_since (rtx_insn *);
3505 extern void mark_reg_pointer (rtx, int);
3506 extern void mark_user_reg (rtx);
3507 extern void reset_used_flags (rtx);
3508 extern void set_used_flags (rtx);
3509 extern void reorder_insns (rtx_insn *, rtx_insn *, rtx_insn *);
3510 extern void reorder_insns_nobb (rtx_insn *, rtx_insn *, rtx_insn *);
3511 extern int get_max_insn_count (void);
3512 extern int in_sequence_p (void);
3513 extern void init_emit (void);
3514 extern void init_emit_regs (void);
3515 extern void init_derived_machine_modes (void);
3516 extern void init_emit_once (void);
3517 extern void push_topmost_sequence (void);
3518 extern void pop_topmost_sequence (void);
3519 extern void set_new_first_and_last_insn (rtx_insn *, rtx_insn *);
3520 extern unsigned int unshare_all_rtl (void);
3521 extern void unshare_all_rtl_again (rtx_insn *);
3522 extern void unshare_all_rtl_in_chain (rtx_insn *);
3523 extern void verify_rtl_sharing (void);
3524 extern void add_insn (rtx_insn *);
3525 extern void add_insn_before (rtx, rtx, basic_block);
3526 extern void add_insn_after (rtx, rtx, basic_block);
3527 extern void remove_insn (rtx);
3528 extern rtx_insn *emit (rtx, bool = true);
3529 extern void emit_insn_at_entry (rtx);
3530 extern rtx gen_lowpart_SUBREG (machine_mode, rtx);
3531 extern rtx gen_const_mem (machine_mode, rtx);
3532 extern rtx gen_frame_mem (machine_mode, rtx);
3533 extern rtx gen_tmp_stack_mem (machine_mode, rtx);
3534 extern bool validate_subreg (machine_mode, machine_mode,
3535 const_rtx, unsigned int);
3537 /* In combine.c */
3538 extern unsigned int extended_count (const_rtx, machine_mode, int);
3539 extern rtx remove_death (unsigned int, rtx_insn *);
3540 extern void dump_combine_stats (FILE *);
3541 extern void dump_combine_total_stats (FILE *);
3542 extern rtx make_compound_operation (rtx, enum rtx_code);
3544 /* In sched-rgn.c. */
3545 extern void schedule_insns (void);
3547 /* In sched-ebb.c. */
3548 extern void schedule_ebbs (void);
3550 /* In sel-sched-dump.c. */
3551 extern void sel_sched_fix_param (const char *param, const char *val);
3553 /* In print-rtl.c */
3554 extern const char *print_rtx_head;
3555 extern void debug (const rtx_def &ref);
3556 extern void debug (const rtx_def *ptr);
3557 extern void debug_rtx (const_rtx);
3558 extern void debug_rtx_list (const rtx_insn *, int);
3559 extern void debug_rtx_range (const rtx_insn *, const rtx_insn *);
3560 extern const rtx_insn *debug_rtx_find (const rtx_insn *, int);
3561 extern void print_mem_expr (FILE *, const_tree);
3562 extern void print_rtl (FILE *, const_rtx);
3563 extern void print_simple_rtl (FILE *, const_rtx);
3564 extern int print_rtl_single (FILE *, const_rtx);
3565 extern int print_rtl_single_with_indent (FILE *, const_rtx, int);
3566 extern void print_inline_rtx (FILE *, const_rtx, int);
3568 /* Functions in sched-vis.c. FIXME: Ideally these functions would
3569 not be in sched-vis.c but in rtl.c, because they are not only used
3570 by the scheduler anymore but for all "slim" RTL dumping. */
3571 extern void dump_value_slim (FILE *, const_rtx, int);
3572 extern void dump_insn_slim (FILE *, const rtx_insn *);
3573 extern void dump_rtl_slim (FILE *, const rtx_insn *, const rtx_insn *,
3574 int, int);
3575 extern void print_value (pretty_printer *, const_rtx, int);
3576 extern void print_pattern (pretty_printer *, const_rtx, int);
3577 extern void print_insn (pretty_printer *, const rtx_insn *, int);
3578 extern void rtl_dump_bb_for_graph (pretty_printer *, basic_block);
3579 extern const char *str_pattern_slim (const_rtx);
3581 /* In stmt.c */
3582 extern void expand_null_return (void);
3583 extern void expand_naked_return (void);
3584 extern void emit_jump (rtx);
3586 /* In expr.c */
3587 extern rtx move_by_pieces (rtx, rtx, unsigned HOST_WIDE_INT,
3588 unsigned int, int);
3589 extern HOST_WIDE_INT find_args_size_adjust (rtx_insn *);
3590 extern int fixup_args_size_notes (rtx_insn *, rtx_insn *, int);
3592 /* In expmed.c */
3593 extern void init_expmed (void);
3594 extern void expand_inc (rtx, rtx);
3595 extern void expand_dec (rtx, rtx);
3597 /* In lower-subreg.c */
3598 extern void init_lower_subreg (void);
3600 /* In gcse.c */
3601 extern bool can_copy_p (machine_mode);
3602 extern bool can_assign_to_reg_without_clobbers_p (rtx);
3603 extern rtx fis_get_condition (rtx_insn *);
3605 /* In ira.c */
3606 extern HARD_REG_SET eliminable_regset;
3607 extern void mark_elimination (int, int);
3609 /* In reginfo.c */
3610 extern int reg_classes_intersect_p (reg_class_t, reg_class_t);
3611 extern int reg_class_subset_p (reg_class_t, reg_class_t);
3612 extern void globalize_reg (tree, int);
3613 extern void init_reg_modes_target (void);
3614 extern void init_regs (void);
3615 extern void reinit_regs (void);
3616 extern void init_fake_stack_mems (void);
3617 extern void save_register_info (void);
3618 extern void init_reg_sets (void);
3619 extern void regclass (rtx, int);
3620 extern void reg_scan (rtx_insn *, unsigned int);
3621 extern void fix_register (const char *, int, int);
3622 extern const HARD_REG_SET *valid_mode_changes_for_regno (unsigned int);
3624 /* In reload1.c */
3625 extern int function_invariant_p (const_rtx);
3627 /* In calls.c */
3628 enum libcall_type
3630 LCT_NORMAL = 0,
3631 LCT_CONST = 1,
3632 LCT_PURE = 2,
3633 LCT_NORETURN = 3,
3634 LCT_THROW = 4,
3635 LCT_RETURNS_TWICE = 5
3638 extern void emit_library_call (rtx, enum libcall_type, machine_mode, int,
3639 ...);
3640 extern rtx emit_library_call_value (rtx, rtx, enum libcall_type,
3641 machine_mode, int, ...);
3643 /* In varasm.c */
3644 extern void init_varasm_once (void);
3646 extern rtx make_debug_expr_from_rtl (const_rtx);
3648 /* In read-rtl.c */
3649 extern bool read_rtx (const char *, vec<rtx> *);
3651 /* In alias.c */
3652 extern rtx canon_rtx (rtx);
3653 extern int true_dependence (const_rtx, machine_mode, const_rtx);
3654 extern rtx get_addr (rtx);
3655 extern int canon_true_dependence (const_rtx, machine_mode, rtx,
3656 const_rtx, rtx);
3657 extern int read_dependence (const_rtx, const_rtx);
3658 extern int anti_dependence (const_rtx, const_rtx);
3659 extern int canon_anti_dependence (const_rtx, bool,
3660 const_rtx, machine_mode, rtx);
3661 extern int output_dependence (const_rtx, const_rtx);
3662 extern int may_alias_p (const_rtx, const_rtx);
3663 extern void init_alias_target (void);
3664 extern void init_alias_analysis (void);
3665 extern void end_alias_analysis (void);
3666 extern void vt_equate_reg_base_value (const_rtx, const_rtx);
3667 extern bool memory_modified_in_insn_p (const_rtx, const_rtx);
3668 extern bool memory_must_be_modified_in_insn_p (const_rtx, const_rtx);
3669 extern bool may_be_sp_based_p (rtx);
3670 extern rtx gen_hard_reg_clobber (machine_mode, unsigned int);
3671 extern rtx get_reg_known_value (unsigned int);
3672 extern bool get_reg_known_equiv_p (unsigned int);
3673 extern rtx get_reg_base_value (unsigned int);
3675 #ifdef STACK_REGS
3676 extern int stack_regs_mentioned (const_rtx insn);
3677 #endif
3679 /* In toplev.c */
3680 extern GTY(()) rtx stack_limit_rtx;
3682 /* In var-tracking.c */
3683 extern unsigned int variable_tracking_main (void);
3685 /* In stor-layout.c. */
3686 extern void get_mode_bounds (machine_mode, int, machine_mode,
3687 rtx *, rtx *);
3689 /* In loop-iv.c */
3690 extern rtx canon_condition (rtx);
3691 extern void simplify_using_condition (rtx, rtx *, bitmap);
3693 /* In final.c */
3694 extern unsigned int compute_alignments (void);
3695 extern void update_alignments (vec<rtx> &);
3696 extern int asm_str_count (const char *templ);
3698 struct rtl_hooks
3700 rtx (*gen_lowpart) (machine_mode, rtx);
3701 rtx (*gen_lowpart_no_emit) (machine_mode, rtx);
3702 rtx (*reg_nonzero_bits) (const_rtx, machine_mode, const_rtx, machine_mode,
3703 unsigned HOST_WIDE_INT, unsigned HOST_WIDE_INT *);
3704 rtx (*reg_num_sign_bit_copies) (const_rtx, machine_mode, const_rtx, machine_mode,
3705 unsigned int, unsigned int *);
3706 bool (*reg_truncated_to_mode) (machine_mode, const_rtx);
3708 /* Whenever you add entries here, make sure you adjust rtlhooks-def.h. */
3711 /* Each pass can provide its own. */
3712 extern struct rtl_hooks rtl_hooks;
3714 /* ... but then it has to restore these. */
3715 extern const struct rtl_hooks general_rtl_hooks;
3717 /* Keep this for the nonce. */
3718 #define gen_lowpart rtl_hooks.gen_lowpart
3720 extern void insn_locations_init (void);
3721 extern void insn_locations_finalize (void);
3722 extern void set_curr_insn_location (location_t);
3723 extern location_t curr_insn_location (void);
3725 /* rtl-error.c */
3726 extern void _fatal_insn_not_found (const_rtx, const char *, int, const char *)
3727 ATTRIBUTE_NORETURN;
3728 extern void _fatal_insn (const char *, const_rtx, const char *, int, const char *)
3729 ATTRIBUTE_NORETURN;
3731 #define fatal_insn(msgid, insn) \
3732 _fatal_insn (msgid, insn, __FILE__, __LINE__, __FUNCTION__)
3733 #define fatal_insn_not_found(insn) \
3734 _fatal_insn_not_found (insn, __FILE__, __LINE__, __FUNCTION__)
3736 /* reginfo.c */
3737 extern tree GTY(()) global_regs_decl[FIRST_PSEUDO_REGISTER];
3739 /* Information about the function that is propagated by the RTL backend.
3740 Available only for functions that has been already assembled. */
3742 struct GTY(()) cgraph_rtl_info {
3743 unsigned int preferred_incoming_stack_boundary;
3745 /* Call unsaved hard registers really used by the corresponding
3746 function (including ones used by functions called by the
3747 function). */
3748 HARD_REG_SET function_used_regs;
3749 /* Set if function_used_regs is valid. */
3750 unsigned function_used_regs_valid: 1;
3754 #endif /* ! GCC_RTL_H */