Move *-*-gnu* pattern below *-*-linux*.
[official-gcc.git] / gcc / rtl.h
blobec0b73829debc3e8f5e08014b124c7be93405f25
1 /* Register Transfer Language (RTL) definitions for GNU C-Compiler
2 Copyright (C) 1987, 91-98, 1999 Free Software Foundation, Inc.
4 This file is part of GNU CC.
6 GNU CC is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
9 any later version.
11 GNU CC is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with GNU CC; see the file COPYING. If not, write to
18 the Free Software Foundation, 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
21 #ifndef _RTL_H
22 #define _RTL_H
24 #include "machmode.h"
26 #undef FFS /* Some systems predefine this symbol; don't let it interfere. */
27 #undef FLOAT /* Likewise. */
28 #undef ABS /* Likewise. */
29 #undef PC /* Likewise. */
31 #ifndef TREE_CODE
32 union tree_node;
33 #endif
35 /* Register Transfer Language EXPRESSIONS CODES */
37 #define RTX_CODE enum rtx_code
38 enum rtx_code {
40 #define DEF_RTL_EXPR(ENUM, NAME, FORMAT, CLASS) ENUM ,
41 #include "rtl.def" /* rtl expressions are documented here */
42 #undef DEF_RTL_EXPR
44 LAST_AND_UNUSED_RTX_CODE}; /* A convenient way to get a value for
45 NUM_RTX_CODE.
46 Assumes default enum value assignment. */
48 #define NUM_RTX_CODE ((int)LAST_AND_UNUSED_RTX_CODE)
49 /* The cast here, saves many elsewhere. */
51 extern const int rtx_length[];
52 #define GET_RTX_LENGTH(CODE) (rtx_length[(int) (CODE)])
54 extern const char * const rtx_name[];
55 #define GET_RTX_NAME(CODE) (rtx_name[(int) (CODE)])
57 extern const char * const rtx_format[];
58 #define GET_RTX_FORMAT(CODE) (rtx_format[(int) (CODE)])
60 extern const char rtx_class[];
61 #define GET_RTX_CLASS(CODE) (rtx_class[(int) (CODE)])
63 /* The flags and bitfields of an ADDR_DIFF_VEC. BASE is the base label
64 relative to which the offsets are calculated, as explained in rtl.def. */
65 typedef struct
67 /* Set at the start of shorten_branches - ONLY WHEN OPTIMIZING - : */
68 unsigned min_align: 8;
69 /* Flags: */
70 unsigned base_after_vec: 1; /* BASE is after the ADDR_DIFF_VEC. */
71 unsigned min_after_vec: 1; /* minimum address target label is after the ADDR_DIFF_VEC. */
72 unsigned max_after_vec: 1; /* maximum address target label is after the ADDR_DIFF_VEC. */
73 unsigned min_after_base: 1; /* minimum address target label is after BASE. */
74 unsigned max_after_base: 1; /* maximum address target label is after BASE. */
75 /* Set by the actual branch shortening process - ONLY WHEN OPTIMIZING - : */
76 unsigned offset_unsigned: 1; /* offsets have to be treated as unsigned. */
77 unsigned : 2;
78 unsigned scale : 8;
79 } addr_diff_vec_flags;
81 /* Common union for an element of an rtx. */
83 typedef union rtunion_def
85 HOST_WIDE_INT rtwint;
86 int rtint;
87 char *rtstr;
88 struct rtx_def *rtx;
89 struct rtvec_def *rtvec;
90 enum machine_mode rttype;
91 addr_diff_vec_flags rt_addr_diff_vec_flags;
92 struct bitmap_head_def *rtbit;
93 union tree_node *rttree;
94 struct basic_block_def *bb;
95 } rtunion;
97 /* RTL expression ("rtx"). */
99 typedef struct rtx_def
101 #ifdef ONLY_INT_FIELDS
102 #ifdef CODE_FIELD_BUG
103 unsigned int code : 16;
104 #else
105 unsigned short code;
106 #endif
107 #else
108 /* The kind of expression this is. */
109 enum rtx_code code : 16;
110 #endif
111 /* The kind of value the expression has. */
112 #ifdef ONLY_INT_FIELDS
113 int mode : 8;
114 #else
115 enum machine_mode mode : 8;
116 #endif
117 /* LINK_COST_ZERO in an INSN_LIST. */
118 unsigned int jump : 1;
119 /* LINK_COST_FREE in an INSN_LIST. */
120 unsigned int call : 1;
121 /* 1 in a MEM or REG if value of this expression will never change
122 during the current function, even though it is not
123 manifestly constant.
124 1 in a SUBREG if it is from a promoted variable that is unsigned.
125 1 in a SYMBOL_REF if it addresses something in the per-function
126 constants pool.
127 1 in a CALL_INSN if it is a const call.
128 1 in a JUMP_INSN if it is a branch that should be annulled. Valid from
129 reorg until end of compilation; cleared before used. */
130 unsigned int unchanging : 1;
131 /* 1 in a MEM expression if contents of memory are volatile.
132 1 in an INSN, CALL_INSN, JUMP_INSN, CODE_LABEL or BARRIER
133 if it is deleted.
134 1 in a REG expression if corresponds to a variable declared by the user.
135 0 for an internally generated temporary.
136 In a SYMBOL_REF, this flag is used for machine-specific purposes.
137 In a LABEL_REF or in a REG_LABEL note, this is LABEL_REF_NONLOCAL_P. */
138 unsigned int volatil : 1;
139 /* 1 in a MEM referring to a field of an aggregate.
140 0 if the MEM was a variable or the result of a * operator in C;
141 1 if it was the result of a . or -> operator (on a struct) in C.
142 1 in a REG if the register is used only in exit code a loop.
143 1 in a SUBREG expression if was generated from a variable with a
144 promoted mode.
145 1 in a CODE_LABEL if the label is used for nonlocal gotos
146 and must not be deleted even if its count is zero.
147 1 in a LABEL_REF if this is a reference to a label outside the
148 current loop.
149 1 in an INSN, JUMP_INSN, or CALL_INSN if this insn must be scheduled
150 together with the preceding insn. Valid only within sched.
151 1 in an INSN, JUMP_INSN, or CALL_INSN if insn is in a delay slot and
152 from the target of a branch. Valid from reorg until end of compilation;
153 cleared before used. */
154 unsigned int in_struct : 1;
155 /* 1 if this rtx is used. This is used for copying shared structure.
156 See `unshare_all_rtl'.
157 In a REG, this is not needed for that purpose, and used instead
158 in `leaf_renumber_regs_insn'.
159 In a SYMBOL_REF, means that emit_library_call
160 has used it as the function. */
161 unsigned int used : 1;
162 /* Nonzero if this rtx came from procedure integration.
163 In a REG, nonzero means this reg refers to the return value
164 of the current function. */
165 unsigned integrated : 1;
166 /* 1 in an INSN or a SET if this rtx is related to the call frame,
167 either changing how we compute the frame address or saving and
168 restoring registers in the prologue and epilogue.
169 1 in a MEM if the MEM refers to a scalar, rather than a member of
170 an aggregate. */
171 unsigned frame_related : 1;
172 /* The first element of the operands of this rtx.
173 The number of operands and their types are controlled
174 by the `code' field, according to rtl.def. */
175 rtunion fld[1];
176 } *rtx;
178 #define NULL_RTX (rtx) 0
180 /* Define macros to access the `code' field of the rtx. */
182 #ifdef SHORT_ENUM_BUG
183 #define GET_CODE(RTX) ((enum rtx_code) ((RTX)->code))
184 #define PUT_CODE(RTX, CODE) ((RTX)->code = ((short) (CODE)))
185 #else
186 #define GET_CODE(RTX) ((RTX)->code)
187 #define PUT_CODE(RTX, CODE) ((RTX)->code = (CODE))
188 #endif
190 #define GET_MODE(RTX) ((RTX)->mode)
191 #define PUT_MODE(RTX, MODE) ((RTX)->mode = (MODE))
193 #define RTX_INTEGRATED_P(RTX) ((RTX)->integrated)
194 #define RTX_UNCHANGING_P(RTX) ((RTX)->unchanging)
195 #define RTX_FRAME_RELATED_P(RTX) ((RTX)->frame_related)
197 /* RTL vector. These appear inside RTX's when there is a need
198 for a variable number of things. The principle use is inside
199 PARALLEL expressions. */
201 typedef struct rtvec_def{
202 int num_elem; /* number of elements */
203 struct rtx_def *elem[1];
204 } *rtvec;
206 #define NULL_RTVEC (rtvec) 0
208 #define GET_NUM_ELEM(RTVEC) ((RTVEC)->num_elem)
209 #define PUT_NUM_ELEM(RTVEC, NUM) ((RTVEC)->num_elem = (NUM))
211 /* 1 if X is a REG. */
213 #define REG_P(X) (GET_CODE (X) == REG)
215 /* 1 if X is a constant value that is an integer. */
217 #define CONSTANT_P(X) \
218 (GET_CODE (X) == LABEL_REF || GET_CODE (X) == SYMBOL_REF \
219 || GET_CODE (X) == CONST_INT || GET_CODE (X) == CONST_DOUBLE \
220 || GET_CODE (X) == CONST || GET_CODE (X) == HIGH \
221 || GET_CODE (X) == CONSTANT_P_RTX)
223 /* General accessor macros for accessing the fields of an rtx. */
225 #if defined ENABLE_CHECKING && (__GNUC__ > 2 || __GNUC_MINOR__ > 6)
226 /* The bit with a star outside the statement expr and an & inside is
227 so that N can be evaluated only once. */
228 #define RTL_CHECK1(RTX, N, C1) \
229 (*({ rtx _rtx = RTX; int _n = N; \
230 enum rtx_code _code = GET_CODE (_rtx); \
231 if (_n < 0 || _n >= GET_RTX_LENGTH (_code)) \
232 rtl_check_failed_bounds (_rtx, _n, __FILE__, __LINE__, \
233 __PRETTY_FUNCTION__); \
234 if (GET_RTX_FORMAT(_code)[_n] != C1) \
235 rtl_check_failed_type1 (_rtx, _n, C1, __FILE__, __LINE__, \
236 __PRETTY_FUNCTION__); \
237 &_rtx->fld[_n]; }))
239 #define RTL_CHECK2(RTX, N, C1, C2) \
240 (*({ rtx _rtx = RTX; int _n = N; \
241 enum rtx_code _code = GET_CODE (_rtx); \
242 if (_n < 0 || _n >= GET_RTX_LENGTH (_code)) \
243 rtl_check_failed_bounds (_rtx, _n, __FILE__, __LINE__, \
244 __PRETTY_FUNCTION__); \
245 if (GET_RTX_FORMAT(_code)[_n] != C1 \
246 && GET_RTX_FORMAT(_code)[_n] != C2) \
247 rtl_check_failed_type2 (_rtx, _n, C1, C2, __FILE__, __LINE__, \
248 __PRETTY_FUNCTION__); \
249 &_rtx->fld[_n]; }))
251 #define RTVEC_ELT(RTVEC, I) \
252 (*({ rtvec _rtvec = RTVEC; int _i = I; \
253 if (_i < 0 || _i >= GET_NUM_ELEM (_rtvec)) \
254 rtvec_check_failed_bounds (_rtvec, _i, __FILE__, __LINE__, \
255 __PRETTY_FUNCTION__); \
256 &_rtvec->elem[_i]; }))
258 extern void rtl_check_failed_bounds PROTO((rtx, int,
259 const char *, int, const char *))
260 ATTRIBUTE_NORETURN;
261 extern void rtl_check_failed_type1 PROTO((rtx, int, int,
262 const char *, int, const char *))
263 ATTRIBUTE_NORETURN;
264 extern void rtl_check_failed_type2 PROTO((rtx, int, int, int,
265 const char *, int, const char *))
266 ATTRIBUTE_NORETURN;
267 extern void rtvec_check_failed_bounds PROTO((rtvec, int,
268 const char *, int, const char *))
269 ATTRIBUTE_NORETURN;
271 #else /* not ENABLE_CHECKING */
273 #define RTL_CHECK1(RTX, N, C1) ((RTX)->fld[N])
274 #define RTL_CHECK2(RTX, N, C1, C2) ((RTX)->fld[N])
275 #define RTVEC_ELT(RTVEC, I) ((RTVEC)->elem[I])
277 #endif
279 #define XWINT(RTX, N) (RTL_CHECK1(RTX, N, 'w').rtwint)
280 #define XINT(RTX, N) (RTL_CHECK2(RTX, N, 'i', 'n').rtint)
281 #define XSTR(RTX, N) (RTL_CHECK2(RTX, N, 's', 'S').rtstr)
282 #define XEXP(RTX, N) (RTL_CHECK2(RTX, N, 'e', 'u').rtx)
283 #define XVEC(RTX, N) (RTL_CHECK2(RTX, N, 'E', 'V').rtvec)
284 #define XMODE(RTX, N) (RTL_CHECK1(RTX, N, 'M').rttype)
285 #define XBITMAP(RTX, N) (RTL_CHECK1(RTX, N, 'b').rtbit)
286 #define XTREE(RTX, N) (RTL_CHECK1(RTX, N, 't').rttree)
287 #define XBBDEF(RTX, N) (RTL_CHECK1(RTX, N, 'B').bb)
289 #define XVECEXP(RTX, N, M) RTVEC_ELT (XVEC (RTX, N), M)
290 #define XVECLEN(RTX, N) GET_NUM_ELEM (XVEC (RTX, N))
292 /* These are like XWINT, etc. except that they expect a '0' field instead
293 of the normal type code. */
295 #define X0WINT(RTX, N) (RTL_CHECK1(RTX, N, '0').rtwint)
296 #define X0INT(RTX, N) (RTL_CHECK1(RTX, N, '0').rtint)
297 #define X0STR(RTX, N) (RTL_CHECK1(RTX, N, '0').rtstr)
298 #define X0EXP(RTX, N) (RTL_CHECK1(RTX, N, '0').rtx)
299 #define X0VEC(RTX, N) (RTL_CHECK1(RTX, N, '0').rtvec)
300 #define X0MODE(RTX, N) (RTL_CHECK1(RTX, N, '0').rttype)
301 #define X0BITMAP(RTX, N) (RTL_CHECK1(RTX, N, '0').rtbit)
302 #define X0TREE(RTX, N) (RTL_CHECK1(RTX, N, '0').rttree)
303 #define X0BBDEF(RTX, N) (RTL_CHECK1(RTX, N, '0').bb)
304 #define X0ADVFLAGS(RTX, N) (RTL_CHECK1(RTX, N, '0').rt_addr_diff_vec_flags)
307 /* ACCESS MACROS for particular fields of insns. */
309 /* Holds a unique number for each insn.
310 These are not necessarily sequentially increasing. */
311 #define INSN_UID(INSN) XINT(INSN, 0)
313 /* Chain insns together in sequence. */
314 #define PREV_INSN(INSN) XEXP(INSN, 1)
315 #define NEXT_INSN(INSN) XEXP(INSN, 2)
317 /* The body of an insn. */
318 #define PATTERN(INSN) XEXP(INSN, 3)
320 /* Code number of instruction, from when it was recognized.
321 -1 means this instruction has not been recognized yet. */
322 #define INSN_CODE(INSN) XINT(INSN, 4)
324 /* Set up in flow.c; empty before then.
325 Holds a chain of INSN_LIST rtx's whose first operands point at
326 previous insns with direct data-flow connections to this one.
327 That means that those insns set variables whose next use is in this insn.
328 They are always in the same basic block as this insn. */
329 #define LOG_LINKS(INSN) XEXP(INSN, 5)
331 /* 1 if insn has been deleted. */
332 #define INSN_DELETED_P(INSN) ((INSN)->volatil)
334 /* 1 if insn is a call to a const function. */
335 #define CONST_CALL_P(INSN) ((INSN)->unchanging)
337 /* 1 if insn is a branch that should not unconditionally execute its
338 delay slots, i.e., it is an annulled branch. */
339 #define INSN_ANNULLED_BRANCH_P(INSN) ((INSN)->unchanging)
341 /* 1 if insn is in a delay slot and is from the target of the branch. If
342 the branch insn has INSN_ANNULLED_BRANCH_P set, this insn should only be
343 executed if the branch is taken. For annulled branches with this bit
344 clear, the insn should be executed only if the branch is not taken. */
345 #define INSN_FROM_TARGET_P(INSN) ((INSN)->in_struct)
347 /* Holds a list of notes on what this insn does to various REGs.
348 It is a chain of EXPR_LIST rtx's, where the second operand
349 is the chain pointer and the first operand is the REG being described.
350 The mode field of the EXPR_LIST contains not a real machine mode
351 but a value that says what this note says about the REG:
352 REG_DEAD means that the value in REG dies in this insn (i.e., it is
353 not needed past this insn). If REG is set in this insn, the REG_DEAD
354 note may, but need not, be omitted.
355 REG_INC means that the REG is autoincremented or autodecremented.
356 REG_EQUIV describes the insn as a whole; it says that the insn
357 sets a register to a constant value or to be equivalent to a memory
358 address. If the register is spilled to the stack then the constant
359 value should be substituted for it. The contents of the REG_EQUIV
360 is the constant value or memory address, which may be different
361 from the source of the SET although it has the same value. A
362 REG_EQUIV note may also appear on an insn which copies a register
363 parameter to a pseudo-register, if there is a memory address which
364 could be used to hold that pseudo-register throughout the function.
365 REG_EQUAL is like REG_EQUIV except that the destination
366 is only momentarily equal to the specified rtx. Therefore, it
367 cannot be used for substitution; but it can be used for cse.
368 REG_RETVAL means that this insn copies the return-value of
369 a library call out of the hard reg for return values. This note
370 is actually an INSN_LIST and it points to the first insn involved
371 in setting up arguments for the call. flow.c uses this to delete
372 the entire library call when its result is dead.
373 REG_LIBCALL is the inverse of REG_RETVAL: it goes on the first insn
374 of the library call and points at the one that has the REG_RETVAL.
375 REG_WAS_0 says that the register set in this insn held 0 before the insn.
376 The contents of the note is the insn that stored the 0.
377 If that insn is deleted or patched to a NOTE, the REG_WAS_0 is inoperative.
378 The REG_WAS_0 note is actually an INSN_LIST, not an EXPR_LIST.
379 REG_NONNEG means that the register is always nonnegative during
380 the containing loop. This is used in branches so that decrement and
381 branch instructions terminating on zero can be matched. There must be
382 an insn pattern in the md file named `decrement_and_branch_until_zero'
383 or else this will never be added to any instructions.
384 REG_NO_CONFLICT means there is no conflict *after this insn*
385 between the register in the note and the destination of this insn.
386 REG_UNUSED identifies a register set in this insn and never used.
387 REG_CC_SETTER and REG_CC_USER link a pair of insns that set and use
388 CC0, respectively. Normally, these are required to be consecutive insns,
389 but we permit putting a cc0-setting insn in the delay slot of a branch
390 as long as only one copy of the insn exists. In that case, these notes
391 point from one to the other to allow code generation to determine what
392 any require information and to properly update CC_STATUS.
393 REG_LABEL points to a CODE_LABEL. Used by non-JUMP_INSNs to
394 say that the CODE_LABEL contained in the REG_LABEL note is used
395 by the insn.
396 REG_DEP_ANTI is used in LOG_LINKS which represent anti (write after read)
397 dependencies. REG_DEP_OUTPUT is used in LOG_LINKS which represent output
398 (write after write) dependencies. Data dependencies, which are the only
399 type of LOG_LINK created by flow, are represented by a 0 reg note kind. */
400 /* REG_BR_PROB is attached to JUMP_INSNs and CALL_INSNs when the flag
401 -fbranch-probabilities is given. It has an integer value. For jumps,
402 it is the probability that this is a taken branch. For calls, it is the
403 probability that this call won't return.
404 REG_EXEC_COUNT is attached to the first insn of each basic block, and
405 the first insn after each CALL_INSN. It indicates how many times this
406 block was executed.
407 REG_SAVE_AREA is used to optimize rtl generated by dynamic stack
408 allocations for targets where SETJMP_VIA_SAVE_AREA is true.
409 REG_BR_PRED is attached to JUMP_INSNs only, it holds the branch prediction
410 flags computed by get_jump_flags() after dbr scheduling is complete.
411 REG_FRAME_RELATED_EXPR is attached to insns that are RTX_FRAME_RELATED_P,
412 but are too complex for DWARF to interpret what they imply. The attached
413 rtx is used instead of intuition. */
414 /* REG_EH_REGION is used to indicate what exception region an INSN
415 belongs in. This can be used to indicate what region a call may throw
416 to. a REGION of 0 indicates that a call cannot throw at all.
417 a REGION of -1 indicates that it cannot throw, nor will it execute
418 a non-local goto.
419 REG_EH_RETHROW is used to indicate that a call is actually a
420 call to rethrow, and specifies the rethrow symbol for the region
421 the rethrow is targetting. This provides a way to generate the
422 non standard flow edges required for a rethrow. */
425 #define REG_NOTES(INSN) XEXP(INSN, 6)
427 #define ADDR_DIFF_VEC_FLAGS(RTX) X0ADVFLAGS(RTX, 4)
429 /* Don't forget to change reg_note_name in rtl.c. */
430 enum reg_note { REG_DEAD = 1, REG_INC = 2, REG_EQUIV = 3, REG_WAS_0 = 4,
431 REG_EQUAL = 5, REG_RETVAL = 6, REG_LIBCALL = 7,
432 REG_NONNEG = 8, REG_NO_CONFLICT = 9, REG_UNUSED = 10,
433 REG_CC_SETTER = 11, REG_CC_USER = 12, REG_LABEL = 13,
434 REG_DEP_ANTI = 14, REG_DEP_OUTPUT = 15, REG_BR_PROB = 16,
435 REG_EXEC_COUNT = 17, REG_NOALIAS = 18, REG_SAVE_AREA = 19,
436 REG_BR_PRED = 20, REG_EH_CONTEXT = 21,
437 REG_FRAME_RELATED_EXPR = 22, REG_EH_REGION = 23,
438 REG_EH_RETHROW = 24 };
439 /* The base value for branch probability notes. */
440 #define REG_BR_PROB_BASE 10000
442 /* Define macros to extract and insert the reg-note kind in an EXPR_LIST. */
443 #define REG_NOTE_KIND(LINK) ((enum reg_note) GET_MODE (LINK))
444 #define PUT_REG_NOTE_KIND(LINK,KIND) PUT_MODE(LINK, (enum machine_mode) (KIND))
446 /* Names for REG_NOTE's in EXPR_LIST insn's. */
448 extern const char * const reg_note_name[];
449 #define GET_REG_NOTE_NAME(MODE) (reg_note_name[(int) (MODE)])
451 /* This field is only present on CALL_INSNs. It holds a chain of EXPR_LIST of
452 USE and CLOBBER expressions.
453 USE expressions list the registers filled with arguments that
454 are passed to the function.
455 CLOBBER expressions document the registers explicitly clobbered
456 by this CALL_INSN.
457 Pseudo registers can not be mentioned in this list. */
458 #define CALL_INSN_FUNCTION_USAGE(INSN) XEXP(INSN, 7)
460 /* The label-number of a code-label. The assembler label
461 is made from `L' and the label-number printed in decimal.
462 Label numbers are unique in a compilation. */
463 #define CODE_LABEL_NUMBER(INSN) XINT(INSN, 3)
465 #define LINE_NUMBER NOTE
467 /* In a NOTE that is a line number, this is a string for the file name that the
468 line is in. We use the same field to record block numbers temporarily in
469 NOTE_INSN_BLOCK_BEG and NOTE_INSN_BLOCK_END notes. (We avoid lots of casts
470 between ints and pointers if we use a different macro for the block number.)
471 The NOTE_INSN_RANGE_{START,END} and NOTE_INSN_LIVE notes record their
472 information as a rtx in the field. */
474 #define NOTE_SOURCE_FILE(INSN) X0STR(INSN, 3)
475 #define NOTE_BLOCK_NUMBER(INSN) X0INT(INSN, 3)
476 #define NOTE_EH_HANDLER(INSN) X0INT(INSN, 3)
477 #define NOTE_RANGE_INFO(INSN) X0EXP(INSN, 3)
478 #define NOTE_LIVE_INFO(INSN) X0EXP(INSN, 3)
479 #define NOTE_BASIC_BLOCK(INSN) X0EXP(INSN, 3)
481 /* If the NOTE_BLOCK_NUMBER field gets a -1, it means create a new
482 block node for a live range block. */
483 #define NOTE_BLOCK_LIVE_RANGE_BLOCK -1
485 /* In a NOTE that is a line number, this is the line number.
486 Other kinds of NOTEs are identified by negative numbers here. */
487 #define NOTE_LINE_NUMBER(INSN) XINT(INSN, 4)
489 /* Codes that appear in the NOTE_LINE_NUMBER field
490 for kinds of notes that are not line numbers.
492 Notice that we do not try to use zero here for any of
493 the special note codes because sometimes the source line
494 actually can be zero! This happens (for example) when we
495 are generating code for the per-translation-unit constructor
496 and destructor routines for some C++ translation unit.
498 If you should change any of the following values, or if you
499 should add a new value here, don't forget to change the
500 note_insn_name array in rtl.c. */
502 /* This note is used to get rid of an insn
503 when it isn't safe to patch the insn out of the chain. */
504 #define NOTE_INSN_DELETED -1
505 #define NOTE_INSN_BLOCK_BEG -2
506 #define NOTE_INSN_BLOCK_END -3
507 #define NOTE_INSN_LOOP_BEG -4
508 #define NOTE_INSN_LOOP_END -5
509 /* This kind of note is generated at the end of the function body,
510 just before the return insn or return label.
511 In an optimizing compilation it is deleted by the first jump optimization,
512 after enabling that optimizer to determine whether control can fall
513 off the end of the function body without a return statement. */
514 #define NOTE_INSN_FUNCTION_END -6
515 /* This kind of note is generated just after each call to `setjmp', et al. */
516 #define NOTE_INSN_SETJMP -7
517 /* Generated at the place in a loop that `continue' jumps to. */
518 #define NOTE_INSN_LOOP_CONT -8
519 /* Generated at the start of a duplicated exit test. */
520 #define NOTE_INSN_LOOP_VTOP -9
521 /* This marks the point immediately after the last prologue insn. */
522 #define NOTE_INSN_PROLOGUE_END -10
523 /* This marks the point immediately prior to the first epilogue insn. */
524 #define NOTE_INSN_EPILOGUE_BEG -11
525 /* Generated in place of user-declared labels when they are deleted. */
526 #define NOTE_INSN_DELETED_LABEL -12
527 /* This note indicates the start of the real body of the function,
528 i.e. the point just after all of the parms have been moved into
529 their homes, etc. */
530 #define NOTE_INSN_FUNCTION_BEG -13
531 /* These note where exception handling regions begin and end. */
532 #define NOTE_INSN_EH_REGION_BEG -14
533 #define NOTE_INSN_EH_REGION_END -15
534 /* Generated whenever a duplicate line number note is output. For example,
535 one is output after the end of an inline function, in order to prevent
536 the line containing the inline call from being counted twice in gcov. */
537 #define NOTE_REPEATED_LINE_NUMBER -16
539 /* Start/end of a live range region, where pseudos allocated on the stack can
540 be allocated to temporary registers. */
541 #define NOTE_INSN_RANGE_START -17
542 #define NOTE_INSN_RANGE_END -18
543 /* Record which registers are currently live. */
544 #define NOTE_INSN_LIVE -19
545 /* Record the struct for the following basic block. */
546 #define NOTE_INSN_BASIC_BLOCK -20
548 /* Names for NOTE insn's other than line numbers. */
550 extern const char * const note_insn_name[];
551 #define GET_NOTE_INSN_NAME(NOTE_CODE) (note_insn_name[-(NOTE_CODE)])
553 /* The name of a label, in case it corresponds to an explicit label
554 in the input source code. */
555 #define LABEL_NAME(LABEL) XSTR(LABEL, 4)
557 /* In jump.c, each label contains a count of the number
558 of LABEL_REFs that point at it, so unused labels can be deleted. */
559 #define LABEL_NUSES(LABEL) X0INT(LABEL, 5)
561 /* The original regno this ADDRESSOF was built for. */
562 #define ADDRESSOF_REGNO(RTX) XINT(RTX, 1)
564 /* The variable in the register we took the address of. */
565 #define ADDRESSOF_DECL(RTX) XTREE(RTX, 2)
567 /* In jump.c, each JUMP_INSN can point to a label that it can jump to,
568 so that if the JUMP_INSN is deleted, the label's LABEL_NUSES can
569 be decremented and possibly the label can be deleted. */
570 #define JUMP_LABEL(INSN) X0EXP(INSN, 7)
572 /* Once basic blocks are found in flow.c,
573 each CODE_LABEL starts a chain that goes through
574 all the LABEL_REFs that jump to that label.
575 The chain eventually winds up at the CODE_LABEL; it is circular. */
576 #define LABEL_REFS(LABEL) X0EXP(LABEL, 6)
578 /* This is the field in the LABEL_REF through which the circular chain
579 of references to a particular label is linked.
580 This chain is set up in flow.c. */
582 #define LABEL_NEXTREF(REF) X0EXP(REF, 1)
584 /* Once basic blocks are found in flow.c,
585 Each LABEL_REF points to its containing instruction with this field. */
587 #define CONTAINING_INSN(RTX) X0EXP(RTX, 2)
589 /* For a REG rtx, REGNO extracts the register number. */
591 #define REGNO(RTX) XINT(RTX, 0)
593 /* For a REG rtx, REG_FUNCTION_VALUE_P is nonzero if the reg
594 is the current function's return value. */
596 #define REG_FUNCTION_VALUE_P(RTX) ((RTX)->integrated)
598 /* 1 in a REG rtx if it corresponds to a variable declared by the user. */
599 #define REG_USERVAR_P(RTX) ((RTX)->volatil)
601 /* For a CONST_INT rtx, INTVAL extracts the integer. */
603 #define INTVAL(RTX) XWINT(RTX, 0)
605 /* For a SUBREG rtx, SUBREG_REG extracts the value we want a subreg of.
606 SUBREG_WORD extracts the word-number. */
608 #define SUBREG_REG(RTX) XEXP(RTX, 0)
609 #define SUBREG_WORD(RTX) XINT(RTX, 1)
611 /* 1 if the REG contained in SUBREG_REG is already known to be
612 sign- or zero-extended from the mode of the SUBREG to the mode of
613 the reg. SUBREG_PROMOTED_UNSIGNED_P gives the signedness of the
614 extension.
616 When used as a LHS, is means that this extension must be done
617 when assigning to SUBREG_REG. */
619 #define SUBREG_PROMOTED_VAR_P(RTX) ((RTX)->in_struct)
620 #define SUBREG_PROMOTED_UNSIGNED_P(RTX) ((RTX)->unchanging)
622 /* Access various components of an ASM_OPERANDS rtx. */
624 #define ASM_OPERANDS_TEMPLATE(RTX) XSTR ((RTX), 0)
625 #define ASM_OPERANDS_OUTPUT_CONSTRAINT(RTX) XSTR ((RTX), 1)
626 #define ASM_OPERANDS_OUTPUT_IDX(RTX) XINT ((RTX), 2)
627 #define ASM_OPERANDS_INPUT_VEC(RTX) XVEC ((RTX), 3)
628 #define ASM_OPERANDS_INPUT_CONSTRAINT_VEC(RTX) XVEC ((RTX), 4)
629 #define ASM_OPERANDS_INPUT(RTX, N) XVECEXP ((RTX), 3, (N))
630 #define ASM_OPERANDS_INPUT_LENGTH(RTX) XVECLEN ((RTX), 3)
631 #define ASM_OPERANDS_INPUT_CONSTRAINT(RTX, N) XSTR (XVECEXP ((RTX), 4, (N)), 0)
632 #define ASM_OPERANDS_INPUT_MODE(RTX, N) GET_MODE (XVECEXP ((RTX), 4, (N)))
633 #define ASM_OPERANDS_SOURCE_FILE(RTX) XSTR ((RTX), 5)
634 #define ASM_OPERANDS_SOURCE_LINE(RTX) XINT ((RTX), 6)
636 /* For a MEM rtx, 1 if it's a volatile reference.
637 Also in an ASM_OPERANDS rtx. */
638 #define MEM_VOLATILE_P(RTX) ((RTX)->volatil)
640 /* For a MEM rtx, 1 if it refers to a field of an aggregate. If zero,
641 RTX may or may not refer to a field of an aggregate. */
642 #define MEM_IN_STRUCT_P(RTX) ((RTX)->in_struct)
644 /* For a MEM rtx, 1 if it refers to a scalar. If zero, RTX may or may
645 not refer to a scalar.*/
646 #define MEM_SCALAR_P(RTX) ((RTX)->frame_related)
648 /* Copy the MEM_VOLATILE_P, MEM_IN_STRUCT_P, and MEM_SCALAR_P
649 attributes from RHS to LHS. */
650 #define MEM_COPY_ATTRIBUTES(LHS, RHS) \
651 (MEM_VOLATILE_P (LHS) = MEM_VOLATILE_P (RHS), \
652 MEM_IN_STRUCT_P (LHS) = MEM_IN_STRUCT_P (RHS), \
653 MEM_SCALAR_P (LHS) = MEM_SCALAR_P (RHS))
655 /* If VAL is non-zero, set MEM_IN_STRUCT_P and clear MEM_SCALAR_P in
656 RTX. Otherwise, vice versa. Use this macro only when you are
657 *sure* that you know that the MEM is in a structure, or is a
658 scalar. VAL is evaluated only once. */
659 #define MEM_SET_IN_STRUCT_P(RTX, VAL) \
660 ((VAL) ? (MEM_IN_STRUCT_P (RTX) = 1, MEM_SCALAR_P (RTX) = 0) \
661 : (MEM_IN_STRUCT_P (RTX) = 0, MEM_SCALAR_P (RTX) = 1))
663 /* For a MEM rtx, the alias set. If 0, this MEM is not in any alias
664 set, and may alias anything. Otherwise, the MEM can only alias
665 MEMs in the same alias set. This value is set in a
666 language-dependent manner in the front-end, and should not be
667 altered in the back-end. These set numbers are tested for zero,
668 and compared for equality; they have no other significance. In
669 some front-ends, these numbers may correspond in some way to types,
670 or other language-level entities, but they need not, and the
671 back-end makes no such assumptions. */
672 #define MEM_ALIAS_SET(RTX) X0INT(RTX, 1)
674 /* For a LABEL_REF, 1 means that this reference is to a label outside the
675 loop containing the reference. */
676 #define LABEL_OUTSIDE_LOOP_P(RTX) ((RTX)->in_struct)
678 /* For a LABEL_REF, 1 means it is for a nonlocal label. */
679 /* Likewise in an EXPR_LIST for a REG_LABEL note. */
680 #define LABEL_REF_NONLOCAL_P(RTX) ((RTX)->volatil)
682 /* For a CODE_LABEL, 1 means always consider this label to be needed. */
683 #define LABEL_PRESERVE_P(RTX) ((RTX)->in_struct)
685 /* For a REG, 1 means the register is used only in an exit test of a loop. */
686 #define REG_LOOP_TEST_P(RTX) ((RTX)->in_struct)
688 /* During sched, for an insn, 1 means that the insn must be scheduled together
689 with the preceding insn. */
690 #define SCHED_GROUP_P(INSN) ((INSN)->in_struct)
692 /* During sched, for the LOG_LINKS of an insn, these cache the adjusted
693 cost of the dependence link. The cost of executing an instruction
694 may vary based on how the results are used. LINK_COST_ZERO is 1 when
695 the cost through the link varies and is unchanged (i.e., the link has
696 zero additional cost). LINK_COST_FREE is 1 when the cost through the
697 link is zero (i.e., the link makes the cost free). In other cases,
698 the adjustment to the cost is recomputed each time it is needed. */
699 #define LINK_COST_ZERO(X) ((X)->jump)
700 #define LINK_COST_FREE(X) ((X)->call)
702 /* For a SET rtx, SET_DEST is the place that is set
703 and SET_SRC is the value it is set to. */
704 #define SET_DEST(RTX) XEXP(RTX, 0)
705 #define SET_SRC(RTX) XEXP(RTX, 1)
707 /* For a TRAP_IF rtx, TRAP_CONDITION is an expression. */
708 #define TRAP_CONDITION(RTX) XEXP(RTX, 0)
709 #define TRAP_CODE(RTX) XEXP(RTX, 1)
711 /* 1 in a SYMBOL_REF if it addresses this function's constants pool. */
712 #define CONSTANT_POOL_ADDRESS_P(RTX) ((RTX)->unchanging)
714 /* Flag in a SYMBOL_REF for machine-specific purposes. */
715 #define SYMBOL_REF_FLAG(RTX) ((RTX)->volatil)
717 /* 1 in a SYMBOL_REF if it represents a symbol which might have to change
718 if its inlined or unrolled. */
719 #define SYMBOL_REF_NEED_ADJUST(RTX) ((RTX)->in_struct)
721 /* 1 means a SYMBOL_REF has been the library function in emit_library_call. */
722 #define SYMBOL_REF_USED(RTX) ((RTX)->used)
724 /* Define a macro to look for REG_INC notes,
725 but save time on machines where they never exist. */
727 /* Don't continue this line--convex cc version 4.1 would lose. */
728 #if (defined (HAVE_PRE_INCREMENT) || defined (HAVE_PRE_DECREMENT) || defined (HAVE_POST_INCREMENT) || defined (HAVE_POST_DECREMENT))
729 #define FIND_REG_INC_NOTE(insn, reg) (find_reg_note ((insn), REG_INC, (reg)))
730 #else
731 #define FIND_REG_INC_NOTE(insn, reg) 0
732 #endif
734 /* Indicate whether the machine has any sort of auto increment addressing.
735 If not, we can avoid checking for REG_INC notes. */
737 /* Don't continue this line--convex cc version 4.1 would lose. */
738 #if (defined (HAVE_PRE_INCREMENT) || defined (HAVE_PRE_DECREMENT) || defined (HAVE_POST_INCREMENT) || defined (HAVE_POST_DECREMENT))
739 #define AUTO_INC_DEC
740 #endif
742 #ifndef HAVE_PRE_INCREMENT
743 #define HAVE_PRE_INCREMENT 0
744 #endif
746 #ifndef HAVE_PRE_DECREMENT
747 #define HAVE_PRE_DECREMENT 0
748 #endif
750 #ifndef HAVE_POST_INCREMENT
751 #define HAVE_POST_INCREMENT 0
752 #endif
754 #ifndef HAVE_POST_DECREMENT
755 #define HAVE_POST_DECREMENT 0
756 #endif
759 /* Some architectures do not have complete pre/post increment/decrement
760 instruction sets, or only move some modes efficiently. These macros
761 allow us to tune autoincrement generation. */
763 #ifndef USE_LOAD_POST_INCREMENT
764 #define USE_LOAD_POST_INCREMENT(MODE) HAVE_POST_INCREMENT
765 #endif
767 #ifndef USE_LOAD_POST_DECREMENT
768 #define USE_LOAD_POST_DECREMENT(MODE) HAVE_POST_DECREMENT
769 #endif
771 #ifndef USE_LOAD_PRE_INCREMENT
772 #define USE_LOAD_PRE_INCREMENT(MODE) HAVE_PRE_INCREMENT
773 #endif
775 #ifndef USE_LOAD_PRE_DECREMENT
776 #define USE_LOAD_PRE_DECREMENT(MODE) HAVE_PRE_DECREMENT
777 #endif
779 #ifndef USE_STORE_POST_INCREMENT
780 #define USE_STORE_POST_INCREMENT(MODE) HAVE_POST_INCREMENT
781 #endif
783 #ifndef USE_STORE_POST_DECREMENT
784 #define USE_STORE_POST_DECREMENT(MODE) HAVE_POST_DECREMENT
785 #endif
787 #ifndef USE_STORE_PRE_INCREMENT
788 #define USE_STORE_PRE_INCREMENT(MODE) HAVE_PRE_INCREMENT
789 #endif
791 #ifndef USE_STORE_PRE_DECREMENT
792 #define USE_STORE_PRE_DECREMENT(MODE) HAVE_PRE_DECREMENT
793 #endif
796 /* Accessors for RANGE_INFO. */
797 /* For RANGE_{START,END} notes return the RANGE_START note. */
798 #define RANGE_INFO_NOTE_START(INSN) (XEXP (INSN, 0))
800 /* For RANGE_{START,END} notes return the RANGE_START note. */
801 #define RANGE_INFO_NOTE_END(INSN) (XEXP (INSN, 1))
803 /* For RANGE_{START,END} notes, return the vector containing the registers used
804 in the range. */
805 #define RANGE_INFO_REGS(INSN) (XVEC (INSN, 2))
806 #define RANGE_INFO_REGS_REG(INSN, N) (XVECEXP (INSN, 2, N))
807 #define RANGE_INFO_NUM_REGS(INSN) (XVECLEN (INSN, 2))
809 /* For RANGE_{START,END} notes, the number of calls within the range. */
810 #define RANGE_INFO_NCALLS(INSN) (XINT (INSN, 3))
812 /* For RANGE_{START,END} notes, the number of insns within the range. */
813 #define RANGE_INFO_NINSNS(INSN) (XINT (INSN, 4))
815 /* For RANGE_{START,END} notes, a unique # to identify this range. */
816 #define RANGE_INFO_UNIQUE(INSN) (XINT (INSN, 5))
818 /* For RANGE_{START,END} notes, the basic block # the range starts with. */
819 #define RANGE_INFO_BB_START(INSN) (XINT (INSN, 6))
821 /* For RANGE_{START,END} notes, the basic block # the range ends with. */
822 #define RANGE_INFO_BB_END(INSN) (XINT (INSN, 7))
824 /* For RANGE_{START,END} notes, the loop depth the range is in. */
825 #define RANGE_INFO_LOOP_DEPTH(INSN) (XINT (INSN, 8))
827 /* For RANGE_{START,END} notes, the bitmap of live registers at the start
828 of the range. */
829 #define RANGE_INFO_LIVE_START(INSN) (XBITMAP (INSN, 9))
831 /* For RANGE_{START,END} notes, the bitmap of live registers at the end
832 of the range. */
833 #define RANGE_INFO_LIVE_END(INSN) (XBITMAP (INSN, 10))
835 /* For RANGE_START notes, the marker # of the start of the range. */
836 #define RANGE_INFO_MARKER_START(INSN) (XINT (INSN, 11))
838 /* For RANGE_START notes, the marker # of the end of the range. */
839 #define RANGE_INFO_MARKER_END(INSN) (XINT (INSN, 12))
841 /* Original pseudo register # for a live range note. */
842 #define RANGE_REG_PSEUDO(INSN,N) (XINT (XVECEXP (INSN, 2, N), 0))
844 /* Pseudo register # original register is copied into or -1. */
845 #define RANGE_REG_COPY(INSN,N) (XINT (XVECEXP (INSN, 2, N), 1))
847 /* How many times a register in a live range note was referenced. */
848 #define RANGE_REG_REFS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 2))
850 /* How many times a register in a live range note was set. */
851 #define RANGE_REG_SETS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 3))
853 /* How many times a register in a live range note died. */
854 #define RANGE_REG_DEATHS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 4))
856 /* Whether the original value is needed to be copied into the range register at
857 the start of the range. */
858 #define RANGE_REG_COPY_FLAGS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 5))
860 /* # of insns the register copy is live over. */
861 #define RANGE_REG_LIVE_LENGTH(INSN,N) (XINT (XVECEXP (INSN, 2, N), 6))
863 /* # of calls the register copy is live over. */
864 #define RANGE_REG_N_CALLS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 7))
866 /* DECL_NODE pointer of the declaration if the register is a user defined
867 variable. */
868 #define RANGE_REG_SYMBOL_NODE(INSN,N) (XTREE (XVECEXP (INSN, 2, N), 8))
870 /* BLOCK_NODE pointer to the block the variable is declared in if the
871 register is a user defined variable. */
872 #define RANGE_REG_BLOCK_NODE(INSN,N) (XTREE (XVECEXP (INSN, 2, N), 9))
874 /* EXPR_LIST of the distinct ranges a variable is in. */
875 #define RANGE_VAR_LIST(INSN) (XEXP (INSN, 0))
877 /* Block a variable is declared in. */
878 #define RANGE_VAR_BLOCK(INSN) (XTREE (INSN, 1))
880 /* # of distinct ranges a variable is in. */
881 #define RANGE_VAR_NUM(INSN) (XINT (INSN, 2))
883 /* For a NOTE_INSN_LIVE note, the registers which are currently live. */
884 #define RANGE_LIVE_BITMAP(INSN) (XBITMAP (INSN, 0))
886 /* For a NOTE_INSN_LIVE note, the original basic block number. */
887 #define RANGE_LIVE_ORIG_BLOCK(INSN) (XINT (INSN, 1))
889 /* Nonzero if we need to distinguish between the return value of this function
890 and the return value of a function called by this function. This helps
891 integrate.c.
892 This is 1 until after the rtl generation pass. */
893 extern int rtx_equal_function_value_matters;
895 /* Generally useful functions. */
897 /* The following functions accept a wide integer argument. Rather than
898 having to cast on every function call, we use a macro instead, that is
899 defined here and in tree.h. */
901 #ifndef exact_log2
902 #define exact_log2(N) exact_log2_wide ((unsigned HOST_WIDE_INT) (N))
903 #define floor_log2(N) floor_log2_wide ((unsigned HOST_WIDE_INT) (N))
904 #endif
905 extern int exact_log2_wide PROTO((unsigned HOST_WIDE_INT));
906 extern int floor_log2_wide PROTO((unsigned HOST_WIDE_INT));
908 /* In expmed.c */
909 extern int ceil_log2 PROTO((unsigned HOST_WIDE_INT));
911 #define plus_constant(X,C) plus_constant_wide (X, (HOST_WIDE_INT) (C))
913 #define plus_constant_for_output(X,C) \
914 plus_constant_for_output_wide (X, (HOST_WIDE_INT) (C))
916 /* In explow.c */
917 extern HOST_WIDE_INT trunc_int_for_mode PROTO((HOST_WIDE_INT,
918 enum machine_mode));
919 extern rtx plus_constant_wide PROTO((rtx, HOST_WIDE_INT));
920 extern rtx plus_constant_for_output_wide PROTO((rtx, HOST_WIDE_INT));
921 extern void optimize_save_area_alloca PROTO((rtx));
923 extern rtx gen_rtx PVPROTO((enum rtx_code,
924 enum machine_mode, ...));
925 extern rtvec gen_rtvec PVPROTO((int, ...));
927 #ifdef BUFSIZ
928 extern rtx read_rtx PROTO((FILE *));
929 #endif
931 extern char *oballoc PROTO((int));
932 extern char *permalloc PROTO((int));
933 extern rtx rtx_alloc PROTO((RTX_CODE));
934 extern rtvec rtvec_alloc PROTO((int));
935 extern rtx copy_rtx PROTO((rtx));
936 extern rtx copy_rtx_if_shared PROTO((rtx));
937 extern rtx copy_most_rtx PROTO((rtx, rtx));
938 extern rtx shallow_copy_rtx PROTO((rtx));
939 extern rtvec gen_rtvec_v PROTO((int, rtx *));
940 extern rtx gen_reg_rtx PROTO((enum machine_mode));
941 extern rtx gen_label_rtx PROTO((void));
942 extern rtx gen_lowpart_common PROTO((enum machine_mode, rtx));
943 extern rtx gen_lowpart PROTO((enum machine_mode, rtx));
944 extern rtx gen_lowpart_if_possible PROTO((enum machine_mode, rtx));
945 extern rtx gen_highpart PROTO((enum machine_mode, rtx));
946 extern rtx gen_realpart PROTO((enum machine_mode, rtx));
947 extern rtx gen_imagpart PROTO((enum machine_mode, rtx));
948 extern rtx operand_subword PROTO((rtx, int, int, enum machine_mode));
949 extern rtx operand_subword_force PROTO((rtx, int, enum machine_mode));
950 extern int subreg_lowpart_p PROTO((rtx));
951 extern rtx make_safe_from PROTO((rtx, rtx));
952 extern rtx convert_memory_address PROTO((enum machine_mode, rtx));
953 extern rtx memory_address PROTO((enum machine_mode, rtx));
954 extern rtx get_insns PROTO((void));
955 extern rtx get_last_insn PROTO((void));
956 extern rtx get_last_insn_anywhere PROTO((void));
957 extern void start_sequence PROTO((void));
958 extern void push_to_sequence PROTO((rtx));
959 extern void end_sequence PROTO((void));
960 extern rtx gen_sequence PROTO((void));
961 extern rtx immed_double_const PROTO((HOST_WIDE_INT, HOST_WIDE_INT, enum machine_mode));
962 extern rtx force_const_mem PROTO((enum machine_mode, rtx));
963 extern rtx force_reg PROTO((enum machine_mode, rtx));
964 extern rtx get_pool_constant PROTO((rtx));
965 extern enum machine_mode get_pool_mode PROTO((rtx));
966 extern int get_pool_offset PROTO((rtx));
967 extern rtx simplify_subtraction PROTO((rtx));
968 extern rtx assign_stack_local PROTO((enum machine_mode,
969 HOST_WIDE_INT, int));
970 extern rtx assign_stack_temp PROTO((enum machine_mode,
971 HOST_WIDE_INT, int));
972 extern rtx assign_temp PROTO((union tree_node *,
973 int, int, int));
974 extern rtx protect_from_queue PROTO((rtx, int));
975 extern void emit_queue PROTO((void));
976 extern rtx emit_move_insn PROTO((rtx, rtx));
977 extern rtx emit_insn_before PROTO((rtx, rtx));
978 extern rtx emit_jump_insn_before PROTO((rtx, rtx));
979 extern rtx emit_call_insn_before PROTO((rtx, rtx));
980 extern rtx emit_barrier_before PROTO((rtx));
981 extern rtx emit_label_before PROTO((rtx, rtx));
982 extern rtx emit_note_before PROTO((int, rtx));
983 extern rtx emit_insn_after PROTO((rtx, rtx));
984 extern rtx emit_jump_insn_after PROTO((rtx, rtx));
985 extern rtx emit_barrier_after PROTO((rtx));
986 extern rtx emit_label_after PROTO((rtx, rtx));
987 extern rtx emit_note_after PROTO((int, rtx));
988 extern rtx emit_line_note_after PROTO((char *, int, rtx));
989 extern rtx emit_insn PROTO((rtx));
990 extern rtx emit_insns PROTO((rtx));
991 extern rtx emit_insns_before PROTO((rtx, rtx));
992 extern rtx emit_insns_after PROTO((rtx, rtx));
993 extern rtx emit_jump_insn PROTO((rtx));
994 extern rtx emit_call_insn PROTO((rtx));
995 extern rtx emit_label PROTO((rtx));
996 extern rtx emit_barrier PROTO((void));
997 extern rtx emit_line_note PROTO((char *, int));
998 extern rtx emit_note PROTO((char *, int));
999 extern rtx emit_line_note_force PROTO((char *, int));
1000 extern rtx make_insn_raw PROTO((rtx));
1001 extern rtx previous_insn PROTO((rtx));
1002 extern rtx next_insn PROTO((rtx));
1003 extern rtx prev_nonnote_insn PROTO((rtx));
1004 extern rtx next_nonnote_insn PROTO((rtx));
1005 extern rtx prev_real_insn PROTO((rtx));
1006 extern rtx next_real_insn PROTO((rtx));
1007 extern rtx prev_active_insn PROTO((rtx));
1008 extern rtx next_active_insn PROTO((rtx));
1009 extern rtx prev_label PROTO((rtx));
1010 extern rtx next_label PROTO((rtx));
1011 extern rtx next_cc0_user PROTO((rtx));
1012 extern rtx prev_cc0_setter PROTO((rtx));
1013 extern rtx next_nondeleted_insn PROTO((rtx));
1014 extern enum rtx_code reverse_condition PROTO((enum rtx_code));
1015 extern enum rtx_code swap_condition PROTO((enum rtx_code));
1016 extern enum rtx_code unsigned_condition PROTO((enum rtx_code));
1017 extern enum rtx_code signed_condition PROTO((enum rtx_code));
1018 extern rtx find_equiv_reg PROTO((rtx, rtx, enum reg_class, int, short *, int, enum machine_mode));
1019 extern rtx squeeze_notes PROTO((rtx, rtx));
1020 extern rtx delete_insn PROTO((rtx));
1021 extern void delete_jump PROTO((rtx));
1022 extern rtx get_label_before PROTO((rtx));
1023 extern rtx get_label_after PROTO((rtx));
1024 extern rtx follow_jumps PROTO((rtx));
1025 extern rtx adj_offsettable_operand PROTO((rtx, int));
1026 extern rtx try_split PROTO((rtx, rtx, int));
1027 extern rtx split_insns PROTO((rtx, rtx));
1028 extern rtx simplify_unary_operation PROTO((enum rtx_code, enum machine_mode, rtx, enum machine_mode));
1029 extern rtx simplify_binary_operation PROTO((enum rtx_code, enum machine_mode, rtx, rtx));
1030 extern rtx simplify_ternary_operation PROTO((enum rtx_code, enum machine_mode, enum machine_mode, rtx, rtx, rtx));
1031 extern rtx simplify_relational_operation PROTO((enum rtx_code, enum machine_mode, rtx, rtx));
1032 extern rtx gen_move_insn PROTO((rtx, rtx));
1033 extern rtx gen_jump PROTO((rtx));
1034 extern rtx gen_beq PROTO((rtx));
1035 extern rtx gen_bge PROTO((rtx));
1036 extern rtx gen_ble PROTO((rtx));
1037 extern rtx gen_mem_addressof PROTO((rtx, union tree_node *));
1038 extern rtx eliminate_constant_term PROTO((rtx, rtx *));
1039 extern rtx expand_complex_abs PROTO((enum machine_mode, rtx, rtx, int));
1040 extern enum machine_mode choose_hard_reg_mode PROTO((int, int));
1041 extern void set_unique_reg_note PROTO((rtx, enum reg_note, rtx));
1043 /* Functions in rtlanal.c */
1045 extern int rtx_unstable_p PROTO((rtx));
1046 extern int rtx_varies_p PROTO((rtx));
1047 extern int rtx_addr_varies_p PROTO((rtx));
1048 extern HOST_WIDE_INT get_integer_term PROTO((rtx));
1049 extern rtx get_related_value PROTO((rtx));
1050 extern int reg_mentioned_p PROTO((rtx, rtx));
1051 extern int reg_referenced_p PROTO((rtx, rtx));
1052 extern int reg_used_between_p PROTO((rtx, rtx, rtx));
1053 extern int reg_referenced_between_p PROTO((rtx, rtx, rtx));
1054 extern int reg_set_between_p PROTO((rtx, rtx, rtx));
1055 extern int regs_set_between_p PROTO((rtx, rtx, rtx));
1056 extern int modified_between_p PROTO((rtx, rtx, rtx));
1057 extern int no_labels_between_p PROTO((rtx, rtx));
1058 extern int no_jumps_between_p PROTO((rtx, rtx));
1059 extern int modified_in_p PROTO((rtx, rtx));
1060 extern int reg_set_p PROTO((rtx, rtx));
1061 extern rtx single_set PROTO((rtx));
1062 extern int multiple_sets PROTO((rtx));
1063 extern rtx find_last_value PROTO((rtx, rtx *, rtx, int));
1064 extern int refers_to_regno_p PROTO((int, int, rtx, rtx *));
1065 extern int reg_overlap_mentioned_p PROTO((rtx, rtx));
1066 extern void note_stores PROTO((rtx, void (*)(rtx, rtx)));
1067 extern rtx reg_set_last PROTO((rtx, rtx));
1068 extern int rtx_equal_p PROTO((rtx, rtx));
1069 extern int dead_or_set_p PROTO((rtx, rtx));
1070 extern int dead_or_set_regno_p PROTO((rtx, int));
1071 extern rtx find_reg_note PROTO((rtx, enum reg_note, rtx));
1072 extern rtx find_regno_note PROTO((rtx, enum reg_note, int));
1073 extern int find_reg_fusage PROTO((rtx, enum rtx_code, rtx));
1074 extern int find_regno_fusage PROTO((rtx, enum rtx_code, int));
1075 extern void remove_note PROTO((rtx, rtx));
1076 extern int side_effects_p PROTO((rtx));
1077 extern int volatile_refs_p PROTO((rtx));
1078 extern int volatile_insn_p PROTO((rtx));
1079 extern int may_trap_p PROTO((rtx));
1080 extern int inequality_comparisons_p PROTO ((rtx));
1081 extern rtx replace_rtx PROTO((rtx, rtx, rtx));
1082 extern rtx replace_regs PROTO((rtx, rtx *, int, int));
1083 extern int computed_jump_p PROTO((rtx));
1084 typedef int (*rtx_function) PROTO((rtx *, void *));
1085 extern int for_each_rtx PROTO((rtx *, rtx_function, void *));
1086 extern rtx regno_use_in PROTO((int, rtx));
1087 extern int auto_inc_p PROTO((rtx));
1088 extern void remove_node_from_expr_list PROTO((rtx, rtx *));
1090 /* flow.c */
1092 extern rtx find_use_as_address PROTO((rtx, rtx, HOST_WIDE_INT));
1093 void init_EXPR_INSN_LIST_cache PROTO((void));
1094 void free_EXPR_LIST_list PROTO((rtx *));
1095 void free_INSN_LIST_list PROTO((rtx *));
1096 void free_EXPR_LIST_node PROTO((rtx));
1097 void free_INSN_LIST_node PROTO((rtx));
1098 rtx alloc_INSN_LIST PROTO((rtx, rtx));
1099 rtx alloc_EXPR_LIST PROTO((int, rtx, rtx));
1101 /* regclass.c */
1103 /* Maximum number of parallel sets and clobbers in any insn in this fn.
1104 Always at least 3, since the combiner could put that many togetherm
1105 and we want this to remain correct for all the remaining passes. */
1107 extern int max_parallel;
1109 /* Free up register info memory. */
1110 extern void free_reg_info PROTO((void));
1112 /* recog.c */
1113 extern int asm_noperands PROTO((rtx));
1114 extern char *decode_asm_operands PROTO((rtx, rtx *, rtx **,
1115 const char **,
1116 enum machine_mode *));
1118 extern enum reg_class reg_preferred_class PROTO((int));
1119 extern enum reg_class reg_alternate_class PROTO((int));
1121 extern rtx get_first_nonparm_insn PROTO((void));
1123 extern void split_block_insns PROTO((int, int));
1124 extern void update_flow_info PROTO((rtx, rtx, rtx, rtx));
1126 /* Standard pieces of rtx, to be substituted directly into things. */
1127 #define pc_rtx (&global_rtl.pc_val)
1128 #define cc0_rtx (&global_rtl.cc0_val)
1130 #define MAX_SAVED_CONST_INT 64
1131 extern struct rtx_def const_int_rtx[MAX_SAVED_CONST_INT * 2 + 1];
1133 #define const0_rtx (&const_int_rtx[MAX_SAVED_CONST_INT])
1134 #define const1_rtx (&const_int_rtx[MAX_SAVED_CONST_INT+1])
1135 #define const2_rtx (&const_int_rtx[MAX_SAVED_CONST_INT+2])
1136 #define constm1_rtx (&const_int_rtx[MAX_SAVED_CONST_INT-1])
1137 extern rtx const_true_rtx;
1139 extern rtx const_tiny_rtx[3][(int) MAX_MACHINE_MODE];
1141 /* Returns a constant 0 rtx in mode MODE. Integer modes are treated the
1142 same as VOIDmode. */
1144 #define CONST0_RTX(MODE) (const_tiny_rtx[0][(int) (MODE)])
1146 /* Likewise, for the constants 1 and 2. */
1148 #define CONST1_RTX(MODE) (const_tiny_rtx[1][(int) (MODE)])
1149 #define CONST2_RTX(MODE) (const_tiny_rtx[2][(int) (MODE)])
1151 extern struct _global_rtl
1153 struct rtx_def pc_val, cc0_val;
1154 struct rtx_def stack_pointer_val, frame_pointer_val;
1155 struct rtx_def hard_frame_pointer_val;
1156 struct rtx_def arg_pointer_val;
1157 struct rtx_def virtual_incoming_args_val;
1158 struct rtx_def virtual_stack_vars_val;
1159 struct rtx_def virtual_stack_dynamic_val;
1160 struct rtx_def virtual_outgoing_args_val;
1161 struct rtx_def virtual_cfa_val;
1162 } global_rtl;
1164 /* All references to certain hard regs, except those created
1165 by allocating pseudo regs into them (when that's possible),
1166 go through these unique rtx objects. */
1167 #define stack_pointer_rtx (&global_rtl.stack_pointer_val)
1168 #define frame_pointer_rtx (&global_rtl.frame_pointer_val)
1170 extern rtx pic_offset_table_rtx;
1171 extern rtx struct_value_rtx;
1172 extern rtx struct_value_incoming_rtx;
1173 extern rtx static_chain_rtx;
1174 extern rtx static_chain_incoming_rtx;
1175 extern rtx return_address_pointer_rtx;
1177 /* Include the RTL generation functions. */
1179 #ifndef NO_GENRTL_H
1180 #include "genrtl.h"
1181 #endif
1183 /* There are some RTL codes that require special attention; the
1184 generation functions included above do the raw handling. If you
1185 add to this list, modify special_rtx in gengenrtl.c as well. You
1186 should also modify gen_rtx to use the special function. */
1188 extern rtx gen_rtx_CONST_DOUBLE PROTO((enum machine_mode, rtx,
1189 HOST_WIDE_INT, HOST_WIDE_INT));
1190 extern rtx gen_rtx_CONST_INT PROTO((enum machine_mode, HOST_WIDE_INT));
1191 extern rtx gen_rtx_REG PROTO((enum machine_mode, int));
1192 extern rtx gen_rtx_MEM PROTO((enum machine_mode, rtx));
1194 /* We need the cast here to ensure that we get the same result both with
1195 and without prototypes. */
1196 #define GEN_INT(N) gen_rtx_CONST_INT (VOIDmode, (HOST_WIDE_INT) (N))
1199 /* If HARD_FRAME_POINTER_REGNUM is defined, then a special dummy reg
1200 is used to represent the frame pointer. This is because the
1201 hard frame pointer and the automatic variables are separated by an amount
1202 that cannot be determined until after register allocation. We can assume
1203 that in this case ELIMINABLE_REGS will be defined, one action of which
1204 will be to eliminate FRAME_POINTER_REGNUM into HARD_FRAME_POINTER_REGNUM. */
1205 #ifndef HARD_FRAME_POINTER_REGNUM
1206 #define HARD_FRAME_POINTER_REGNUM FRAME_POINTER_REGNUM
1207 #endif
1209 /* For register elimination to work properly these hard_frame_pointer_rtx,
1210 frame_pointer_rtx, and arg_pointer_rtx must be the same if they refer to
1211 the same register. */
1212 #if HARD_FRAME_POINTER_REGNUM == FRAME_POINTER_REGNUM
1213 #define hard_frame_pointer_rtx (&global_rtl.frame_pointer_val)
1214 #else
1215 #define hard_frame_pointer_rtx (&global_rtl.hard_frame_pointer_val)
1216 #endif
1218 #if FRAME_POINTER_REGNUM == ARG_POINTER_REGNUM
1219 #define arg_pointer_rtx (&global_rtl.frame_pointer_val)
1220 #else
1221 #if HARD_FRAME_POINTER_REGNUM == ARG_POINTER_REGNUM
1222 #define arg_pointer_rtx (&global_rtl.hard_frame_pointer_val)
1223 #else
1224 #define arg_pointer_rtx (&global_rtl.arg_pointer_val)
1225 #endif
1226 #endif
1228 /* Virtual registers are used during RTL generation to refer to locations into
1229 the stack frame when the actual location isn't known until RTL generation
1230 is complete. The routine instantiate_virtual_regs replaces these with
1231 the proper value, which is normally {frame,arg,stack}_pointer_rtx plus
1232 a constant. */
1234 #define FIRST_VIRTUAL_REGISTER (FIRST_PSEUDO_REGISTER)
1236 /* This points to the first word of the incoming arguments passed on the stack,
1237 either by the caller or by the callee when pretending it was passed by the
1238 caller. */
1240 #define virtual_incoming_args_rtx (&global_rtl.virtual_incoming_args_val)
1242 #define VIRTUAL_INCOMING_ARGS_REGNUM (FIRST_VIRTUAL_REGISTER)
1244 /* If FRAME_GROWS_DOWNWARD, this points to immediately above the first
1245 variable on the stack. Otherwise, it points to the first variable on
1246 the stack. */
1248 #define virtual_stack_vars_rtx (&global_rtl.virtual_stack_vars_val)
1250 #define VIRTUAL_STACK_VARS_REGNUM ((FIRST_VIRTUAL_REGISTER) + 1)
1252 /* This points to the location of dynamically-allocated memory on the stack
1253 immediately after the stack pointer has been adjusted by the amount
1254 desired. */
1256 #define virtual_stack_dynamic_rtx (&global_rtl.virtual_stack_dynamic_val)
1258 #define VIRTUAL_STACK_DYNAMIC_REGNUM ((FIRST_VIRTUAL_REGISTER) + 2)
1260 /* This points to the location in the stack at which outgoing arguments should
1261 be written when the stack is pre-pushed (arguments pushed using push
1262 insns always use sp). */
1264 #define virtual_outgoing_args_rtx (&global_rtl.virtual_outgoing_args_val)
1266 #define VIRTUAL_OUTGOING_ARGS_REGNUM ((FIRST_VIRTUAL_REGISTER) + 3)
1268 /* This points to the Canonical Frame Address of the function. This
1269 should corrospond to the CFA produced by INCOMING_FRAME_SP_OFFSET,
1270 but is calculated relative to the arg pointer for simplicity; the
1271 frame pointer nor stack pointer are necessarily fixed relative to
1272 the CFA until after reload. */
1274 #define virtual_cfa_rtx (&global_rtl.virtual_cfa_val)
1276 #define VIRTUAL_CFA_REGNUM ((FIRST_VIRTUAL_REGISTER) + 4)
1278 #define LAST_VIRTUAL_REGISTER ((FIRST_VIRTUAL_REGISTER) + 4)
1280 extern rtx find_next_ref PROTO((rtx, rtx));
1281 extern rtx *find_single_use PROTO((rtx, rtx, rtx *));
1283 extern rtx output_constant_def PROTO((union tree_node *));
1284 extern rtx immed_real_const PROTO((union tree_node *));
1285 extern union tree_node *make_tree PROTO((union tree_node *, rtx));
1287 /* Define a default value for STORE_FLAG_VALUE. */
1289 #ifndef STORE_FLAG_VALUE
1290 #define STORE_FLAG_VALUE 1
1291 #endif
1293 /* Nonzero after the second flow pass has completed.
1294 Set to 1 or 0 by toplev.c */
1295 extern int flow2_completed;
1297 /* Nonzero after end of reload pass.
1298 Set to 1 or 0 by reload1.c. */
1300 extern int reload_completed;
1302 /* Set to 1 while reload_as_needed is operating.
1303 Required by some machines to handle any generated moves differently. */
1305 extern int reload_in_progress;
1307 /* If this is nonzero, we do not bother generating VOLATILE
1308 around volatile memory references, and we are willing to
1309 output indirect addresses. If cse is to follow, we reject
1310 indirect addresses so a useful potential cse is generated;
1311 if it is used only once, instruction combination will produce
1312 the same indirect address eventually. */
1313 extern int cse_not_expected;
1315 /* Set to nonzero before life analysis to indicate that it is unsafe to
1316 generate any new pseudo registers. */
1317 extern int no_new_pseudos;
1319 /* Translates rtx code to tree code, for those codes needed by
1320 REAL_ARITHMETIC. The function returns an int because the caller may not
1321 know what `enum tree_code' means. */
1323 extern int rtx_to_tree_code PROTO((enum rtx_code));
1325 /* In tree.c */
1326 extern void obfree PROTO ((char *));
1327 struct obstack;
1328 extern void gcc_obstack_init PROTO ((struct obstack *));
1329 extern void pop_obstacks PROTO ((void));
1330 extern void push_obstacks PROTO ((struct obstack *,
1331 struct obstack *));
1332 #ifdef BUFSIZ
1333 extern int read_skip_spaces PROTO ((FILE *));
1334 #endif
1336 /* In cse.c */
1337 struct cse_basic_block_data;
1338 extern int rtx_cost PROTO ((rtx, enum rtx_code));
1339 extern void delete_trivially_dead_insns PROTO ((rtx, int));
1340 #ifdef BUFSIZ
1341 extern int cse_main PROTO ((rtx, int, int, FILE *));
1342 #endif
1343 extern void cse_end_of_basic_block PROTO ((rtx,
1344 struct cse_basic_block_data *,
1345 int, int, int));
1347 /* In jump.c */
1348 extern int comparison_dominates_p PROTO ((enum rtx_code, enum rtx_code));
1349 extern int condjump_p PROTO ((rtx));
1350 extern rtx condjump_label PROTO ((rtx));
1351 extern int simplejump_p PROTO ((rtx));
1352 extern int returnjump_p PROTO ((rtx));
1353 extern int onlyjump_p PROTO ((rtx));
1354 extern int sets_cc0_p PROTO ((rtx));
1355 extern int invert_jump PROTO ((rtx, rtx));
1356 extern int rtx_renumbered_equal_p PROTO ((rtx, rtx));
1357 extern int true_regnum PROTO ((rtx));
1358 extern int redirect_jump PROTO ((rtx, rtx));
1359 extern void jump_optimize PROTO ((rtx, int, int, int));
1360 extern void rebuild_jump_labels PROTO ((rtx));
1361 extern void thread_jumps PROTO ((rtx, int, int));
1362 extern int redirect_exp PROTO ((rtx *, rtx, rtx, rtx));
1363 extern int rtx_equal_for_thread_p PROTO ((rtx, rtx, rtx));
1364 extern int invert_exp PROTO ((rtx, rtx));
1365 extern int can_reverse_comparison_p PROTO ((rtx, rtx));
1366 extern void delete_for_peephole PROTO ((rtx, rtx));
1367 extern int condjump_in_parallel_p PROTO ((rtx));
1368 extern void never_reached_warning PROTO ((rtx));
1370 /* Flags for jump_optimize() */
1371 #define JUMP_CROSS_JUMP 1
1372 #define JUMP_NOOP_MOVES 1
1373 #define JUMP_AFTER_REGSCAN 1
1375 /* In emit-rtl.c. */
1376 extern int max_reg_num PROTO ((void));
1377 extern int max_label_num PROTO ((void));
1378 extern int get_first_label_num PROTO ((void));
1379 extern void delete_insns_since PROTO ((rtx));
1380 extern void mark_reg_pointer PROTO ((rtx, int));
1381 extern void mark_user_reg PROTO ((rtx));
1382 extern void reset_used_flags PROTO ((rtx));
1383 extern void reorder_insns PROTO ((rtx, rtx, rtx));
1384 extern int get_max_uid PROTO ((void));
1385 extern int in_sequence_p PROTO ((void));
1386 extern void force_next_line_note PROTO ((void));
1387 extern void clear_emit_caches PROTO ((void));
1388 extern void init_emit PROTO ((void));
1389 extern void init_emit_once PROTO ((int));
1390 extern void push_topmost_sequence PROTO ((void));
1391 extern void pop_topmost_sequence PROTO ((void));
1392 extern int subreg_realpart_p PROTO ((rtx));
1393 extern void reverse_comparison PROTO ((rtx));
1394 extern void set_new_first_and_last_insn PROTO ((rtx, rtx));
1395 extern void set_new_first_and_last_label_num PROTO ((int, int));
1396 extern void set_new_last_label_num PROTO ((int));
1397 extern void unshare_all_rtl PROTO ((rtx));
1398 extern void set_last_insn PROTO ((rtx));
1399 extern void link_cc0_insns PROTO ((rtx));
1400 extern void add_insn PROTO ((rtx));
1401 extern void add_insn_before PROTO ((rtx, rtx));
1402 extern void add_insn_after PROTO ((rtx, rtx));
1403 extern void remove_insn PROTO ((rtx));
1404 extern void reorder_insns_with_line_notes PROTO ((rtx, rtx, rtx));
1405 extern void emit_insn_after_with_line_notes PROTO ((rtx, rtx, rtx));
1406 extern enum rtx_code classify_insn PROTO ((rtx));
1407 extern rtx emit PROTO ((rtx));
1408 /* Query and clear/ restore no_line_numbers. This is used by the
1409 switch / case handling in stmt.c to give proper line numbers in
1410 warnings about unreachable code. */
1411 int force_line_numbers PROTO((void));
1412 void restore_line_number_status PROTO((int old_value));
1414 /* In insn-emit.c */
1415 extern void add_clobbers PROTO ((rtx, int));
1417 /* In combine.c */
1418 extern void combine_instructions PROTO ((rtx, int));
1419 extern int extended_count PROTO ((rtx, enum machine_mode, int));
1420 extern rtx remove_death PROTO ((int, rtx));
1421 #ifdef BUFSIZ
1422 extern void dump_combine_stats PROTO ((FILE *));
1423 extern void dump_combine_total_stats PROTO ((FILE *));
1424 #endif
1426 /* In sched.c. */
1427 #ifdef BUFSIZ
1428 extern void schedule_insns PROTO ((FILE *));
1429 #endif
1430 extern void fix_sched_param PROTO ((const char *, const char *));
1432 /* In print-rtl.c */
1433 extern void debug_rtx PROTO ((rtx));
1434 extern void debug_rtx_list PROTO ((rtx, int));
1435 extern rtx debug_rtx_find PROTO ((rtx, int));
1436 #ifdef BUFSIZ
1437 extern void print_rtl PROTO ((FILE *, rtx));
1438 extern int print_rtl_single PROTO ((FILE *, rtx));
1439 extern void print_inline_rtx PROTO ((FILE *, rtx, int));
1440 #endif
1442 /* In loop.c */
1443 extern void init_loop PROTO ((void));
1444 extern rtx libcall_other_reg PROTO ((rtx, rtx));
1445 #ifdef BUFSIZ
1446 extern void loop_optimize PROTO ((rtx, FILE *, int, int));
1447 #endif
1448 extern void record_excess_regs PROTO ((rtx, rtx, rtx *));
1450 /* In function.c */
1451 extern void reposition_prologue_and_epilogue_notes PROTO ((rtx));
1452 extern void thread_prologue_and_epilogue_insns PROTO ((rtx));
1453 extern int prologue_epilogue_contains PROTO ((rtx));
1454 extern void use_variable PROTO ((rtx));
1455 extern HOST_WIDE_INT get_frame_size PROTO ((void));
1456 extern void preserve_rtl_expr_result PROTO ((rtx));
1457 extern void mark_temp_addr_taken PROTO ((rtx));
1458 extern void update_temp_slot_address PROTO ((rtx, rtx));
1459 extern void use_variable_after PROTO ((rtx, rtx));
1460 extern void purge_addressof PROTO ((rtx));
1462 /* In reload.c */
1463 extern int operands_match_p PROTO ((rtx, rtx));
1464 extern int safe_from_earlyclobber PROTO ((rtx, rtx));
1466 /* In stmt.c */
1467 extern void set_file_and_line_for_stmt PROTO ((char *, int));
1468 extern void expand_null_return PROTO((void));
1469 extern void emit_jump PROTO ((rtx));
1470 extern int preserve_subexpressions_p PROTO ((void));
1472 /* In expr.c */
1473 extern void init_expr_once PROTO ((void));
1474 extern void move_by_pieces PROTO ((rtx, rtx, int, int));
1477 /* In stupid.c */
1478 #ifdef BUFSIZ
1479 extern void stupid_life_analysis PROTO ((rtx, int, FILE *));
1480 #endif
1482 /* In flow.c */
1483 extern void allocate_bb_life_data PROTO ((void));
1484 extern void allocate_reg_life_data PROTO ((void));
1485 extern void recompute_reg_usage PROTO ((rtx, int));
1486 #ifdef BUFSIZ
1487 extern void dump_flow_info PROTO ((FILE *));
1488 #endif
1489 extern void free_bb_mem PROTO ((void));
1490 extern void replace_insns PROTO ((rtx, rtx, rtx, rtx));
1492 /* In expmed.c */
1493 extern void init_expmed PROTO ((void));
1494 extern void expand_inc PROTO ((rtx, rtx));
1495 extern void expand_dec PROTO ((rtx, rtx));
1496 extern rtx expand_mult_highpart PROTO ((enum machine_mode, rtx,
1497 unsigned HOST_WIDE_INT, rtx,
1498 int, int));
1500 /* In gcse.c */
1501 #ifdef BUFSIZ
1502 extern int gcse_main PROTO ((rtx, FILE *));
1503 #endif
1505 /* In global.c */
1506 extern void mark_elimination PROTO ((int, int));
1507 #ifdef BUFSIZ
1508 extern int global_alloc PROTO ((FILE *));
1509 extern void dump_global_regs PROTO ((FILE *));
1510 #endif
1511 #ifdef HARD_CONST
1512 extern void retry_global_alloc PROTO ((int, HARD_REG_SET));
1513 #endif
1515 /* In regclass.c */
1516 extern int reg_classes_intersect_p PROTO ((enum reg_class, enum reg_class));
1517 extern int reg_class_subset_p PROTO ((enum reg_class, enum reg_class));
1518 extern void globalize_reg PROTO ((int));
1519 extern void init_regs PROTO ((void));
1520 extern void init_reg_sets PROTO ((void));
1521 extern void regset_release_memory PROTO ((void));
1522 extern void regclass_init PROTO ((void));
1523 extern void regclass PROTO ((rtx, int));
1524 extern void reg_scan PROTO ((rtx, int, int));
1525 extern void reg_scan_update PROTO ((rtx, rtx, int));
1526 extern void fix_register PROTO ((char *, int, int));
1528 /* In regmove.c */
1529 #ifdef BUFSIZ
1530 extern void regmove_optimize PROTO ((rtx, int, FILE *));
1531 #endif
1533 /* In reorg.c */
1534 #ifdef BUFSIZ
1535 extern void dbr_schedule PROTO ((rtx, FILE *));
1536 #endif
1538 /* In optabs.c */
1539 extern void init_optabs PROTO ((void));
1541 /* In local-alloc.c */
1542 #ifdef BUFSIZ
1543 extern void dump_local_alloc PROTO ((FILE *));
1544 #endif
1545 extern int local_alloc PROTO ((void));
1546 extern int function_invariant_p PROTO ((rtx));
1548 /* In reload1.c */
1549 extern void reload_cse_regs PROTO ((rtx));
1550 extern void init_reload PROTO ((void));
1551 extern void mark_home_live PROTO ((int));
1552 #ifdef BUFSIZ
1553 extern int reload PROTO ((rtx, int, FILE *));
1554 #endif
1556 /* In caller-save.c */
1557 extern void init_caller_save PROTO ((void));
1559 /* In profile.c */
1560 extern void init_branch_prob PROTO ((const char *));
1561 #ifdef BUFSIZ
1562 extern void branch_prob PROTO ((rtx, FILE *));
1563 extern void end_branch_prob PROTO ((FILE *));
1564 #endif
1565 extern void output_func_start_profiler PROTO ((void));
1567 /* In reg-stack.c */
1568 #ifdef BUFSIZ
1569 extern void reg_to_stack PROTO ((rtx, FILE *));
1570 #endif
1571 extern int stack_regs_mentioned_p PROTO ((rtx));
1573 /* In fold-const.c */
1574 extern int add_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1575 HOST_WIDE_INT, HOST_WIDE_INT,
1576 HOST_WIDE_INT *, HOST_WIDE_INT *));
1577 extern int neg_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1578 HOST_WIDE_INT *, HOST_WIDE_INT *));
1579 extern int mul_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1580 HOST_WIDE_INT, HOST_WIDE_INT,
1581 HOST_WIDE_INT *, HOST_WIDE_INT *));
1582 extern void lshift_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1583 HOST_WIDE_INT, int, HOST_WIDE_INT *,
1584 HOST_WIDE_INT *, int));
1585 extern void rshift_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1586 HOST_WIDE_INT, int,
1587 HOST_WIDE_INT *, HOST_WIDE_INT *, int));
1588 extern void lrotate_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1589 HOST_WIDE_INT, int, HOST_WIDE_INT *,
1590 HOST_WIDE_INT *));
1591 extern void rrotate_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1592 HOST_WIDE_INT, int, HOST_WIDE_INT *,
1593 HOST_WIDE_INT *));
1595 /* In calls.c */
1596 /* Emit library call. */
1597 extern void emit_library_call PVPROTO ((rtx, int, enum machine_mode,
1598 int, ...));
1599 extern rtx emit_library_call_value PVPROTO((rtx, rtx, int,
1600 enum machine_mode,
1601 int, ...));
1603 /* In unroll.c */
1604 extern int set_dominates_use PROTO ((int, int, int, rtx, rtx));
1606 /* In varasm.c */
1607 extern void bss_section PROTO ((void));
1608 extern int in_data_section PROTO ((void));
1609 extern int supports_one_only PROTO ((void));
1611 /* In rtl.c */
1612 extern void init_rtl PROTO ((void));
1613 extern void rtx_free PROTO ((rtx));
1615 /* Redefine abort to report an internal error w/o coredump, and
1616 reporting the location of the error in the source file. This logic
1617 is duplicated in rtl.h and tree.h because every file that needs the
1618 special abort includes one or both. toplev.h gets too few files,
1619 system.h gets too many. */
1621 extern void fancy_abort PROTO((const char *, int, const char *))
1622 ATTRIBUTE_NORETURN;
1623 #if __GNUC__ < 2 || (__GNUC__ == 2 && __GNUC_MINOR__ < 7)
1624 #define abort() fancy_abort (__FILE__, __LINE__, 0)
1625 #else
1626 #define abort() fancy_abort (__FILE__, __LINE__, __PRETTY_FUNCTION__)
1627 #endif
1629 /* In alias.c */
1630 extern int true_dependence PROTO ((rtx, enum machine_mode, rtx,
1631 int (*)(rtx)));
1632 extern int read_dependence PROTO ((rtx, rtx));
1633 extern int anti_dependence PROTO ((rtx, rtx));
1634 extern int output_dependence PROTO ((rtx, rtx));
1635 extern void mark_constant_function PROTO ((void));
1636 extern void init_alias_once PROTO ((void));
1637 extern void init_alias_analysis PROTO ((void));
1638 extern void end_alias_analysis PROTO ((void));
1640 extern void record_base_value PROTO ((int, rtx, int));
1641 extern void record_alias_subset PROTO ((int, int));
1642 extern rtx addr_side_effect_eval PROTO ((rtx, int, int));
1644 #ifdef STACK_REGS
1645 extern int stack_regs_mentioned PROTO((rtx insn));
1646 #endif
1648 #endif /* _RTL_H */