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6f29feb1 1/* Register Transfer Language (RTL) definitions for GNU C-Compiler
87e11268 2 Copyright (C) 1987, 91-98, 1999 Free Software Foundation, Inc.
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3
4This file is part of GNU CC.
5
6GNU CC is free software; you can redistribute it and/or modify
7it under the terms of the GNU General Public License as published by
8the Free Software Foundation; either version 2, or (at your option)
9any later version.
10
11GNU CC is distributed in the hope that it will be useful,
12but WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
17along with GNU CC; see the file COPYING. If not, write to
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18the Free Software Foundation, 59 Temple Place - Suite 330,
19Boston, MA 02111-1307, USA. */
6f29feb1 20
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21#ifndef _RTL_H
22#define _RTL_H
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23
24#include "machmode.h"
25
26#undef FFS /* Some systems predefine this symbol; don't let it interfere. */
1cfc3092 27#undef FLOAT /* Likewise. */
ac889e46 28#undef ABS /* Likewise. */
71ae9cc6 29#undef PC /* Likewise. */
6f29feb1 30
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31#ifndef TREE_CODE
32union tree_node;
33#endif
34
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35/* Register Transfer Language EXPRESSIONS CODES */
36
37#define RTX_CODE enum rtx_code
38enum rtx_code {
39
40#define DEF_RTL_EXPR(ENUM, NAME, FORMAT, CLASS) ENUM ,
41#include "rtl.def" /* rtl expressions are documented here */
42#undef DEF_RTL_EXPR
43
6dc42e49 44 LAST_AND_UNUSED_RTX_CODE}; /* A convenient way to get a value for
6f29feb1 45 NUM_RTX_CODE.
6dc42e49 46 Assumes default enum value assignment. */
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47
48#define NUM_RTX_CODE ((int)LAST_AND_UNUSED_RTX_CODE)
49 /* The cast here, saves many elsewhere. */
50
aa0b4465 51extern const int rtx_length[];
0f41302f 52#define GET_RTX_LENGTH(CODE) (rtx_length[(int) (CODE)])
6f29feb1 53
5f06c983 54extern const char * const rtx_name[];
0f41302f 55#define GET_RTX_NAME(CODE) (rtx_name[(int) (CODE)])
6f29feb1 56
aa0b4465 57extern const char * const rtx_format[];
0f41302f 58#define GET_RTX_FORMAT(CODE) (rtx_format[(int) (CODE)])
6f29feb1 59
1f9a015e 60extern const char rtx_class[];
0f41302f 61#define GET_RTX_CLASS(CODE) (rtx_class[(int) (CODE)])
6f29feb1 62\f
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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. */
65typedef struct
66{
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;
80
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81/* Common union for an element of an rtx. */
82
83typedef union rtunion_def
84{
5f4f0e22 85 HOST_WIDE_INT rtwint;
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86 int rtint;
87 char *rtstr;
88 struct rtx_def *rtx;
89 struct rtvec_def *rtvec;
90 enum machine_mode rttype;
33f7f353 91 addr_diff_vec_flags rt_addr_diff_vec_flags;
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92 struct bitmap_head_def *rtbit;
93 union tree_node *rttree;
e881bb1b 94 struct basic_block_def *bb;
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95} rtunion;
96
97/* RTL expression ("rtx"). */
98
99typedef struct rtx_def
100{
101#ifdef ONLY_INT_FIELDS
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102#ifdef CODE_FIELD_BUG
103 unsigned int code : 16;
104#else
6f29feb1 105 unsigned short code;
10c344b4 106#endif
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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
10c5bca8 117 /* LINK_COST_ZERO in an INSN_LIST. */
6f29feb1 118 unsigned int jump : 1;
10c5bca8 119 /* LINK_COST_FREE in an INSN_LIST. */
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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.
07be3989 124 1 in a SUBREG if it is from a promoted variable that is unsigned.
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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.
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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. */
6f29feb1 138 unsigned int volatil : 1;
8358a974 139 /* 1 in a MEM referring to a field of an aggregate.
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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.
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143 1 in a SUBREG expression if was generated from a variable with a
144 promoted mode.
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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
d45cf215 150 together with the preceding insn. Valid only within sched.
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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;
b664de3a 166 /* 1 in an INSN or a SET if this rtx is related to the call frame,
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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. */
469ac993 171 unsigned frame_related : 1;
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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;
177
178#define NULL_RTX (rtx) 0
179
180/* Define macros to access the `code' field of the rtx. */
181
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
189
190#define GET_MODE(RTX) ((RTX)->mode)
191#define PUT_MODE(RTX, MODE) ((RTX)->mode = (MODE))
192
193#define RTX_INTEGRATED_P(RTX) ((RTX)->integrated)
194#define RTX_UNCHANGING_P(RTX) ((RTX)->unchanging)
469ac993 195#define RTX_FRAME_RELATED_P(RTX) ((RTX)->frame_related)
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196
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. */
200
201typedef struct rtvec_def{
e9a25f70 202 int num_elem; /* number of elements */
8f985ec4 203 struct rtx_def *elem[1];
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204} *rtvec;
205
206#define NULL_RTVEC (rtvec) 0
207
208#define GET_NUM_ELEM(RTVEC) ((RTVEC)->num_elem)
e9a25f70 209#define PUT_NUM_ELEM(RTVEC, NUM) ((RTVEC)->num_elem = (NUM))
6f29feb1 210
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211/* 1 if X is a REG. */
212
213#define REG_P(X) (GET_CODE (X) == REG)
214
215/* 1 if X is a constant value that is an integer. */
216
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 \
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220 || GET_CODE (X) == CONST || GET_CODE (X) == HIGH \
221 || GET_CODE (X) == CONSTANT_P_RTX)
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222
223/* General accessor macros for accessing the fields of an rtx. */
224
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225#define XWINT(RTX, N) ((RTX)->fld[N].rtwint) /* w */
226#define XINT(RTX, N) ((RTX)->fld[N].rtint) /* i,n */
227#define XSTR(RTX, N) ((RTX)->fld[N].rtstr) /* s,S */
228#define XEXP(RTX, N) ((RTX)->fld[N].rtx) /* e,u */
229#define XVEC(RTX, N) ((RTX)->fld[N].rtvec) /* E,V */
230#define XVECLEN(RTX, N) ((RTX)->fld[N].rtvec->num_elem) /* E,V */
231#define XMODE(RTX, N) ((RTX)->fld[N].rttype) /* M */
232#define XBITMAP(RTX, N) ((RTX)->fld[N].rtbit) /* b */
233#define XTREE(RTX, N) ((RTX)->fld[N].rttree) /* t */
234#define XBBDEF(RTX, N) ((RTX)->fld[N].bb) /* B */
235
236#define RTVEC_ELT(RTVEC, I) ((RTVEC)->elem[I])
237#define XVECEXP(RTX,N,M) RTVEC_ELT (XVEC (RTX, N), M)
0dfa1860 238
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239\f
240/* ACCESS MACROS for particular fields of insns. */
241
242/* Holds a unique number for each insn.
243 These are not necessarily sequentially increasing. */
8f985ec4 244#define INSN_UID(INSN) XINT(INSN, 0)
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245
246/* Chain insns together in sequence. */
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247#define PREV_INSN(INSN) XEXP(INSN, 1)
248#define NEXT_INSN(INSN) XEXP(INSN, 2)
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249
250/* The body of an insn. */
8f985ec4 251#define PATTERN(INSN) XEXP(INSN, 3)
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252
253/* Code number of instruction, from when it was recognized.
254 -1 means this instruction has not been recognized yet. */
8f985ec4 255#define INSN_CODE(INSN) XINT(INSN, 4)
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256
257/* Set up in flow.c; empty before then.
258 Holds a chain of INSN_LIST rtx's whose first operands point at
259 previous insns with direct data-flow connections to this one.
260 That means that those insns set variables whose next use is in this insn.
261 They are always in the same basic block as this insn. */
8f985ec4 262#define LOG_LINKS(INSN) XEXP(INSN, 5)
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263
264/* 1 if insn has been deleted. */
265#define INSN_DELETED_P(INSN) ((INSN)->volatil)
266
267/* 1 if insn is a call to a const function. */
268#define CONST_CALL_P(INSN) ((INSN)->unchanging)
269
270/* 1 if insn is a branch that should not unconditionally execute its
271 delay slots, i.e., it is an annulled branch. */
272#define INSN_ANNULLED_BRANCH_P(INSN) ((INSN)->unchanging)
273
274/* 1 if insn is in a delay slot and is from the target of the branch. If
6dc42e49 275 the branch insn has INSN_ANNULLED_BRANCH_P set, this insn should only be
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276 executed if the branch is taken. For annulled branches with this bit
277 clear, the insn should be executed only if the branch is not taken. */
278#define INSN_FROM_TARGET_P(INSN) ((INSN)->in_struct)
279
280/* Holds a list of notes on what this insn does to various REGs.
281 It is a chain of EXPR_LIST rtx's, where the second operand
282 is the chain pointer and the first operand is the REG being described.
283 The mode field of the EXPR_LIST contains not a real machine mode
284 but a value that says what this note says about the REG:
285 REG_DEAD means that the value in REG dies in this insn (i.e., it is
286 not needed past this insn). If REG is set in this insn, the REG_DEAD
287 note may, but need not, be omitted.
288 REG_INC means that the REG is autoincremented or autodecremented.
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289 REG_EQUIV describes the insn as a whole; it says that the insn
290 sets a register to a constant value or to be equivalent to a memory
291 address. If the register is spilled to the stack then the constant
292 value should be substituted for it. The contents of the REG_EQUIV
6f29feb1 293 is the constant value or memory address, which may be different
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294 from the source of the SET although it has the same value. A
295 REG_EQUIV note may also appear on an insn which copies a register
296 parameter to a pseudo-register, if there is a memory address which
297 could be used to hold that pseudo-register throughout the function.
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298 REG_EQUAL is like REG_EQUIV except that the destination
299 is only momentarily equal to the specified rtx. Therefore, it
300 cannot be used for substitution; but it can be used for cse.
301 REG_RETVAL means that this insn copies the return-value of
302 a library call out of the hard reg for return values. This note
303 is actually an INSN_LIST and it points to the first insn involved
304 in setting up arguments for the call. flow.c uses this to delete
305 the entire library call when its result is dead.
306 REG_LIBCALL is the inverse of REG_RETVAL: it goes on the first insn
307 of the library call and points at the one that has the REG_RETVAL.
308 REG_WAS_0 says that the register set in this insn held 0 before the insn.
309 The contents of the note is the insn that stored the 0.
310 If that insn is deleted or patched to a NOTE, the REG_WAS_0 is inoperative.
311 The REG_WAS_0 note is actually an INSN_LIST, not an EXPR_LIST.
312 REG_NONNEG means that the register is always nonnegative during
313 the containing loop. This is used in branches so that decrement and
314 branch instructions terminating on zero can be matched. There must be
315 an insn pattern in the md file named `decrement_and_branch_until_zero'
316 or else this will never be added to any instructions.
317 REG_NO_CONFLICT means there is no conflict *after this insn*
318 between the register in the note and the destination of this insn.
319 REG_UNUSED identifies a register set in this insn and never used.
320 REG_CC_SETTER and REG_CC_USER link a pair of insns that set and use
321 CC0, respectively. Normally, these are required to be consecutive insns,
322 but we permit putting a cc0-setting insn in the delay slot of a branch
323 as long as only one copy of the insn exists. In that case, these notes
324 point from one to the other to allow code generation to determine what
325 any require information and to properly update CC_STATUS.
326 REG_LABEL points to a CODE_LABEL. Used by non-JUMP_INSNs to
327 say that the CODE_LABEL contained in the REG_LABEL note is used
328 by the insn.
d45cf215 329 REG_DEP_ANTI is used in LOG_LINKS which represent anti (write after read)
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330 dependencies. REG_DEP_OUTPUT is used in LOG_LINKS which represent output
331 (write after write) dependencies. Data dependencies, which are the only
332 type of LOG_LINK created by flow, are represented by a 0 reg note kind. */
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333/* REG_BR_PROB is attached to JUMP_INSNs and CALL_INSNs when the flag
334 -fbranch-probabilities is given. It has an integer value. For jumps,
335 it is the probability that this is a taken branch. For calls, it is the
336 probability that this call won't return.
337 REG_EXEC_COUNT is attached to the first insn of each basic block, and
338 the first insn after each CALL_INSN. It indicates how many times this
c107334d
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339 block was executed.
340 REG_SAVE_AREA is used to optimize rtl generated by dynamic stack
341 allocations for targets where SETJMP_VIA_SAVE_AREA is true.
342 REG_BR_PRED is attached to JUMP_INSNs only, it holds the branch prediction
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343 flags computed by get_jump_flags() after dbr scheduling is complete.
344 REG_FRAME_RELATED_EXPR is attached to insns that are RTX_FRAME_RELATED_P,
345 but are too complex for DWARF to interpret what they imply. The attached
346 rtx is used instead of intuition. */
e6cfb550 347/* REG_EH_REGION is used to indicate what exception region an INSN
6af57aae 348 belongs in. This can be used to indicate what region a call may throw
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349 to. a REGION of 0 indicates that a call cannot throw at all.
350 a REGION of -1 indicates that it cannot throw, nor will it execute
6af57aae 351 a non-local goto.
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352 REG_EH_RETHROW is used to indicate that a call is actually a
353 call to rethrow, and specifies the rethrow symbol for the region
354 the rethrow is targetting. This provides a way to generate the
355 non standard flow edges required for a rethrow. */
e6cfb550 356
6f29feb1 357
8f985ec4 358#define REG_NOTES(INSN) XEXP(INSN, 6)
6f29feb1 359
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360#define ADDR_DIFF_VEC_FLAGS(RTX) ((RTX)->fld[4].rt_addr_diff_vec_flags)
361
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362/* Don't forget to change reg_note_name in rtl.c. */
363enum reg_note { REG_DEAD = 1, REG_INC = 2, REG_EQUIV = 3, REG_WAS_0 = 4,
364 REG_EQUAL = 5, REG_RETVAL = 6, REG_LIBCALL = 7,
365 REG_NONNEG = 8, REG_NO_CONFLICT = 9, REG_UNUSED = 10,
366 REG_CC_SETTER = 11, REG_CC_USER = 12, REG_LABEL = 13,
7ae21caf 367 REG_DEP_ANTI = 14, REG_DEP_OUTPUT = 15, REG_BR_PROB = 16,
c107334d 368 REG_EXEC_COUNT = 17, REG_NOALIAS = 18, REG_SAVE_AREA = 19,
07ebc930 369 REG_BR_PRED = 20, REG_EH_CONTEXT = 21,
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370 REG_FRAME_RELATED_EXPR = 22, REG_EH_REGION = 23,
371 REG_EH_RETHROW = 24 };
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372/* The base value for branch probability notes. */
373#define REG_BR_PROB_BASE 10000
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374
375/* Define macros to extract and insert the reg-note kind in an EXPR_LIST. */
376#define REG_NOTE_KIND(LINK) ((enum reg_note) GET_MODE (LINK))
377#define PUT_REG_NOTE_KIND(LINK,KIND) PUT_MODE(LINK, (enum machine_mode) (KIND))
378
379/* Names for REG_NOTE's in EXPR_LIST insn's. */
380
1f9a015e 381extern const char * const reg_note_name[];
0f41302f 382#define GET_REG_NOTE_NAME(MODE) (reg_note_name[(int) (MODE)])
6f29feb1 383
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384/* This field is only present on CALL_INSNs. It holds a chain of EXPR_LIST of
385 USE and CLOBBER expressions.
386 USE expressions list the registers filled with arguments that
387 are passed to the function.
388 CLOBBER expressions document the registers explicitly clobbered
389 by this CALL_INSN.
390 Pseudo registers can not be mentioned in this list. */
8f985ec4 391#define CALL_INSN_FUNCTION_USAGE(INSN) XEXP(INSN, 7)
e51c6661 392
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393/* The label-number of a code-label. The assembler label
394 is made from `L' and the label-number printed in decimal.
395 Label numbers are unique in a compilation. */
8f985ec4 396#define CODE_LABEL_NUMBER(INSN) XINT(INSN, 3)
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397
398#define LINE_NUMBER NOTE
399
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400/* In a NOTE that is a line number, this is a string for the file name that the
401 line is in. We use the same field to record block numbers temporarily in
402 NOTE_INSN_BLOCK_BEG and NOTE_INSN_BLOCK_END notes. (We avoid lots of casts
403 between ints and pointers if we use a different macro for the block number.)
404 The NOTE_INSN_RANGE_{START,END} and NOTE_INSN_LIVE notes record their
405 information as a rtx in the field. */
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406
407#define NOTE_SOURCE_FILE(INSN) ((INSN)->fld[3].rtstr)
3da3fb2f 408#define NOTE_BLOCK_NUMBER(INSN) ((INSN)->fld[3].rtint)
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409#define NOTE_RANGE_INFO(INSN) ((INSN)->fld[3].rtx)
410#define NOTE_LIVE_INFO(INSN) ((INSN)->fld[3].rtx)
e881bb1b 411#define NOTE_BASIC_BLOCK(INSN) ((INSN)->fld[3].bb)
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412
413/* If the NOTE_BLOCK_NUMBER field gets a -1, it means create a new
414 block node for a live range block. */
415#define NOTE_BLOCK_LIVE_RANGE_BLOCK -1
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416
417/* In a NOTE that is a line number, this is the line number.
418 Other kinds of NOTEs are identified by negative numbers here. */
8f985ec4 419#define NOTE_LINE_NUMBER(INSN) XINT(INSN, 4)
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420
421/* Codes that appear in the NOTE_LINE_NUMBER field
a31efb86 422 for kinds of notes that are not line numbers.
6f29feb1 423
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424 Notice that we do not try to use zero here for any of
425 the special note codes because sometimes the source line
426 actually can be zero! This happens (for example) when we
427 are generating code for the per-translation-unit constructor
428 and destructor routines for some C++ translation unit.
429
430 If you should change any of the following values, or if you
431 should add a new value here, don't forget to change the
432 note_insn_name array in rtl.c. */
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433
434/* This note is used to get rid of an insn
435 when it isn't safe to patch the insn out of the chain. */
436#define NOTE_INSN_DELETED -1
437#define NOTE_INSN_BLOCK_BEG -2
438#define NOTE_INSN_BLOCK_END -3
439#define NOTE_INSN_LOOP_BEG -4
440#define NOTE_INSN_LOOP_END -5
441/* This kind of note is generated at the end of the function body,
442 just before the return insn or return label.
443 In an optimizing compilation it is deleted by the first jump optimization,
444 after enabling that optimizer to determine whether control can fall
445 off the end of the function body without a return statement. */
446#define NOTE_INSN_FUNCTION_END -6
447/* This kind of note is generated just after each call to `setjmp', et al. */
448#define NOTE_INSN_SETJMP -7
449/* Generated at the place in a loop that `continue' jumps to. */
450#define NOTE_INSN_LOOP_CONT -8
451/* Generated at the start of a duplicated exit test. */
452#define NOTE_INSN_LOOP_VTOP -9
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453/* This marks the point immediately after the last prologue insn. */
454#define NOTE_INSN_PROLOGUE_END -10
455/* This marks the point immediately prior to the first epilogue insn. */
456#define NOTE_INSN_EPILOGUE_BEG -11
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457/* Generated in place of user-declared labels when they are deleted. */
458#define NOTE_INSN_DELETED_LABEL -12
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459/* This note indicates the start of the real body of the function,
460 i.e. the point just after all of the parms have been moved into
461 their homes, etc. */
462#define NOTE_INSN_FUNCTION_BEG -13
3d195391
MS
463/* These note where exception handling regions begin and end. */
464#define NOTE_INSN_EH_REGION_BEG -14
465#define NOTE_INSN_EH_REGION_END -15
7ae21caf
DE
466/* Generated whenever a duplicate line number note is output. For example,
467 one is output after the end of an inline function, in order to prevent
468 the line containing the inline call from being counted twice in gcov. */
469#define NOTE_REPEATED_LINE_NUMBER -16
6f29feb1 470
0dfa1860
MM
471/* Start/end of a live range region, where pseudos allocated on the stack can
472 be allocated to temporary registers. */
473#define NOTE_INSN_RANGE_START -17
474#define NOTE_INSN_RANGE_END -18
475/* Record which registers are currently live. */
476#define NOTE_INSN_LIVE -19
e881bb1b
RH
477/* Record the struct for the following basic block. */
478#define NOTE_INSN_BASIC_BLOCK -20
10f07067 479
6f29feb1
JW
480/* Names for NOTE insn's other than line numbers. */
481
1f9a015e 482extern const char * const note_insn_name[];
6f29feb1
JW
483#define GET_NOTE_INSN_NAME(NOTE_CODE) (note_insn_name[-(NOTE_CODE)])
484
485/* The name of a label, in case it corresponds to an explicit label
486 in the input source code. */
8f985ec4 487#define LABEL_NAME(LABEL) XSTR(LABEL, 4)
6f29feb1
JW
488
489/* In jump.c, each label contains a count of the number
490 of LABEL_REFs that point at it, so unused labels can be deleted. */
491#define LABEL_NUSES(LABEL) ((LABEL)->fld[5].rtint)
492
e9a25f70 493/* The original regno this ADDRESSOF was built for. */
8f985ec4 494#define ADDRESSOF_REGNO(RTX) XINT(RTX, 1)
e9a25f70
JL
495
496/* The variable in the register we took the address of. */
8f985ec4 497#define ADDRESSOF_DECL(RTX) XTREE(RTX, 2)
e9a25f70 498
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JW
499/* In jump.c, each JUMP_INSN can point to a label that it can jump to,
500 so that if the JUMP_INSN is deleted, the label's LABEL_NUSES can
501 be decremented and possibly the label can be deleted. */
502#define JUMP_LABEL(INSN) ((INSN)->fld[7].rtx)
503
504/* Once basic blocks are found in flow.c,
505 each CODE_LABEL starts a chain that goes through
506 all the LABEL_REFs that jump to that label.
507 The chain eventually winds up at the CODE_LABEL; it is circular. */
f754c4a1 508#define LABEL_REFS(LABEL) ((LABEL)->fld[6].rtx)
6f29feb1
JW
509\f
510/* This is the field in the LABEL_REF through which the circular chain
511 of references to a particular label is linked.
512 This chain is set up in flow.c. */
513
514#define LABEL_NEXTREF(REF) ((REF)->fld[1].rtx)
515
516/* Once basic blocks are found in flow.c,
517 Each LABEL_REF points to its containing instruction with this field. */
518
519#define CONTAINING_INSN(RTX) ((RTX)->fld[2].rtx)
520
521/* For a REG rtx, REGNO extracts the register number. */
522
8f985ec4 523#define REGNO(RTX) XINT(RTX, 0)
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JW
524
525/* For a REG rtx, REG_FUNCTION_VALUE_P is nonzero if the reg
526 is the current function's return value. */
527
528#define REG_FUNCTION_VALUE_P(RTX) ((RTX)->integrated)
529
530/* 1 in a REG rtx if it corresponds to a variable declared by the user. */
531#define REG_USERVAR_P(RTX) ((RTX)->volatil)
532
533/* For a CONST_INT rtx, INTVAL extracts the integer. */
534
8f985ec4 535#define INTVAL(RTX) XWINT(RTX, 0)
6f29feb1
JW
536
537/* For a SUBREG rtx, SUBREG_REG extracts the value we want a subreg of.
538 SUBREG_WORD extracts the word-number. */
539
8f985ec4
ZW
540#define SUBREG_REG(RTX) XEXP(RTX, 0)
541#define SUBREG_WORD(RTX) XINT(RTX, 1)
6f29feb1 542
07be3989
RK
543/* 1 if the REG contained in SUBREG_REG is already known to be
544 sign- or zero-extended from the mode of the SUBREG to the mode of
545 the reg. SUBREG_PROMOTED_UNSIGNED_P gives the signedness of the
546 extension.
547
548 When used as a LHS, is means that this extension must be done
549 when assigning to SUBREG_REG. */
550
551#define SUBREG_PROMOTED_VAR_P(RTX) ((RTX)->in_struct)
552#define SUBREG_PROMOTED_UNSIGNED_P(RTX) ((RTX)->unchanging)
553
6f29feb1
JW
554/* Access various components of an ASM_OPERANDS rtx. */
555
556#define ASM_OPERANDS_TEMPLATE(RTX) XSTR ((RTX), 0)
557#define ASM_OPERANDS_OUTPUT_CONSTRAINT(RTX) XSTR ((RTX), 1)
558#define ASM_OPERANDS_OUTPUT_IDX(RTX) XINT ((RTX), 2)
559#define ASM_OPERANDS_INPUT_VEC(RTX) XVEC ((RTX), 3)
560#define ASM_OPERANDS_INPUT_CONSTRAINT_VEC(RTX) XVEC ((RTX), 4)
561#define ASM_OPERANDS_INPUT(RTX, N) XVECEXP ((RTX), 3, (N))
562#define ASM_OPERANDS_INPUT_LENGTH(RTX) XVECLEN ((RTX), 3)
563#define ASM_OPERANDS_INPUT_CONSTRAINT(RTX, N) XSTR (XVECEXP ((RTX), 4, (N)), 0)
564#define ASM_OPERANDS_INPUT_MODE(RTX, N) GET_MODE (XVECEXP ((RTX), 4, (N)))
565#define ASM_OPERANDS_SOURCE_FILE(RTX) XSTR ((RTX), 5)
566#define ASM_OPERANDS_SOURCE_LINE(RTX) XINT ((RTX), 6)
567
568/* For a MEM rtx, 1 if it's a volatile reference.
569 Also in an ASM_OPERANDS rtx. */
570#define MEM_VOLATILE_P(RTX) ((RTX)->volatil)
571
c6df88cb
MM
572/* For a MEM rtx, 1 if it refers to a field of an aggregate. If zero,
573 RTX may or may not refer to a field of an aggregate. */
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JW
574#define MEM_IN_STRUCT_P(RTX) ((RTX)->in_struct)
575
c6df88cb
MM
576/* For a MEM rtx, 1 if it refers to a scalar. If zero, RTX may or may
577 not refer to a scalar.*/
578#define MEM_SCALAR_P(RTX) ((RTX)->frame_related)
579
580/* Copy the MEM_VOLATILE_P, MEM_IN_STRUCT_P, and MEM_SCALAR_P
581 attributes from RHS to LHS. */
582#define MEM_COPY_ATTRIBUTES(LHS, RHS) \
583 (MEM_VOLATILE_P (LHS) = MEM_VOLATILE_P (RHS), \
584 MEM_IN_STRUCT_P (LHS) = MEM_IN_STRUCT_P (RHS), \
63681b5f 585 MEM_SCALAR_P (LHS) = MEM_SCALAR_P (RHS))
c6df88cb
MM
586
587/* If VAL is non-zero, set MEM_IN_STRUCT_P and clear MEM_SCALAR_P in
588 RTX. Otherwise, vice versa. Use this macro only when you are
589 *sure* that you know that the MEM is in a structure, or is a
590 scalar. VAL is evaluated only once. */
591#define MEM_SET_IN_STRUCT_P(RTX, VAL) \
592 ((VAL) ? (MEM_IN_STRUCT_P (RTX) = 1, MEM_SCALAR_P (RTX) = 0) \
593 : (MEM_IN_STRUCT_P (RTX) = 0, MEM_SCALAR_P (RTX) = 1))
594
41472af8
MM
595/* For a MEM rtx, the alias set. If 0, this MEM is not in any alias
596 set, and may alias anything. Otherwise, the MEM can only alias
597 MEMs in the same alias set. This value is set in a
598 language-dependent manner in the front-end, and should not be
599 altered in the back-end. These set numbers are tested for zero,
600 and compared for equality; they have no other significance. In
601 some front-ends, these numbers may correspond in some way to types,
602 or other language-level entities, but they need not, and the
603 back-end makes no such assumptions. */
604#define MEM_ALIAS_SET(RTX) (XINT (RTX, 1))
605
6f29feb1
JW
606/* For a LABEL_REF, 1 means that this reference is to a label outside the
607 loop containing the reference. */
608#define LABEL_OUTSIDE_LOOP_P(RTX) ((RTX)->in_struct)
609
adfaf10a 610/* For a LABEL_REF, 1 means it is for a nonlocal label. */
2a406d2a 611/* Likewise in an EXPR_LIST for a REG_LABEL note. */
adfaf10a
RS
612#define LABEL_REF_NONLOCAL_P(RTX) ((RTX)->volatil)
613
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JW
614/* For a CODE_LABEL, 1 means always consider this label to be needed. */
615#define LABEL_PRESERVE_P(RTX) ((RTX)->in_struct)
616
617/* For a REG, 1 means the register is used only in an exit test of a loop. */
618#define REG_LOOP_TEST_P(RTX) ((RTX)->in_struct)
619
620/* During sched, for an insn, 1 means that the insn must be scheduled together
d45cf215 621 with the preceding insn. */
6f29feb1
JW
622#define SCHED_GROUP_P(INSN) ((INSN)->in_struct)
623
c376c05b
TW
624/* During sched, for the LOG_LINKS of an insn, these cache the adjusted
625 cost of the dependence link. The cost of executing an instruction
626 may vary based on how the results are used. LINK_COST_ZERO is 1 when
627 the cost through the link varies and is unchanged (i.e., the link has
628 zero additional cost). LINK_COST_FREE is 1 when the cost through the
629 link is zero (i.e., the link makes the cost free). In other cases,
630 the adjustment to the cost is recomputed each time it is needed. */
631#define LINK_COST_ZERO(X) ((X)->jump)
632#define LINK_COST_FREE(X) ((X)->call)
633
6f29feb1
JW
634/* For a SET rtx, SET_DEST is the place that is set
635 and SET_SRC is the value it is set to. */
8f985ec4
ZW
636#define SET_DEST(RTX) XEXP(RTX, 0)
637#define SET_SRC(RTX) XEXP(RTX, 1)
6f29feb1
JW
638
639/* For a TRAP_IF rtx, TRAP_CONDITION is an expression. */
8f985ec4
ZW
640#define TRAP_CONDITION(RTX) XEXP(RTX, 0)
641#define TRAP_CODE(RTX) XEXP(RTX, 1)
6f29feb1
JW
642
643/* 1 in a SYMBOL_REF if it addresses this function's constants pool. */
644#define CONSTANT_POOL_ADDRESS_P(RTX) ((RTX)->unchanging)
645
646/* Flag in a SYMBOL_REF for machine-specific purposes. */
647#define SYMBOL_REF_FLAG(RTX) ((RTX)->volatil)
648
e6cfb550
AM
649/* 1 in a SYMBOL_REF if it represents a symbol which might have to change
650 if its inlined or unrolled. */
651#define SYMBOL_REF_NEED_ADJUST(RTX) ((RTX)->in_struct)
652
6f29feb1
JW
653/* 1 means a SYMBOL_REF has been the library function in emit_library_call. */
654#define SYMBOL_REF_USED(RTX) ((RTX)->used)
655
6f29feb1
JW
656/* Define a macro to look for REG_INC notes,
657 but save time on machines where they never exist. */
658
58e54c44
RS
659/* Don't continue this line--convex cc version 4.1 would lose. */
660#if (defined (HAVE_PRE_INCREMENT) || defined (HAVE_PRE_DECREMENT) || defined (HAVE_POST_INCREMENT) || defined (HAVE_POST_DECREMENT))
6f29feb1
JW
661#define FIND_REG_INC_NOTE(insn, reg) (find_reg_note ((insn), REG_INC, (reg)))
662#else
663#define FIND_REG_INC_NOTE(insn, reg) 0
664#endif
665
666/* Indicate whether the machine has any sort of auto increment addressing.
667 If not, we can avoid checking for REG_INC notes. */
668
58e54c44
RS
669/* Don't continue this line--convex cc version 4.1 would lose. */
670#if (defined (HAVE_PRE_INCREMENT) || defined (HAVE_PRE_DECREMENT) || defined (HAVE_POST_INCREMENT) || defined (HAVE_POST_DECREMENT))
6f29feb1
JW
671#define AUTO_INC_DEC
672#endif
0dfa1860 673
940da324
JL
674#ifndef HAVE_PRE_INCREMENT
675#define HAVE_PRE_INCREMENT 0
676#endif
677
678#ifndef HAVE_PRE_DECREMENT
679#define HAVE_PRE_DECREMENT 0
680#endif
681
682#ifndef HAVE_POST_INCREMENT
683#define HAVE_POST_INCREMENT 0
684#endif
685
686#ifndef HAVE_POST_DECREMENT
687#define HAVE_POST_DECREMENT 0
688#endif
689
6e01bd94
MH
690
691/* Some architectures do not have complete pre/post increment/decrement
692 instruction sets, or only move some modes efficiently. These macros
693 allow us to tune autoincrement generation. */
694
695#ifndef USE_LOAD_POST_INCREMENT
696#define USE_LOAD_POST_INCREMENT(MODE) HAVE_POST_INCREMENT
697#endif
698
699#ifndef USE_LOAD_POST_DECREMENT
700#define USE_LOAD_POST_DECREMENT(MODE) HAVE_POST_DECREMENT
701#endif
702
703#ifndef USE_LOAD_PRE_INCREMENT
704#define USE_LOAD_PRE_INCREMENT(MODE) HAVE_PRE_INCREMENT
705#endif
706
707#ifndef USE_LOAD_PRE_DECREMENT
708#define USE_LOAD_PRE_DECREMENT(MODE) HAVE_PRE_DECREMENT
709#endif
710
711#ifndef USE_STORE_POST_INCREMENT
712#define USE_STORE_POST_INCREMENT(MODE) HAVE_POST_INCREMENT
713#endif
714
715#ifndef USE_STORE_POST_DECREMENT
716#define USE_STORE_POST_DECREMENT(MODE) HAVE_POST_DECREMENT
717#endif
718
719#ifndef USE_STORE_PRE_INCREMENT
720#define USE_STORE_PRE_INCREMENT(MODE) HAVE_PRE_INCREMENT
721#endif
722
723#ifndef USE_STORE_PRE_DECREMENT
724#define USE_STORE_PRE_DECREMENT(MODE) HAVE_PRE_DECREMENT
725#endif
726
727
0dfa1860
MM
728/* Accessors for RANGE_INFO. */
729/* For RANGE_{START,END} notes return the RANGE_START note. */
730#define RANGE_INFO_NOTE_START(INSN) (XEXP (INSN, 0))
731
732/* For RANGE_{START,END} notes return the RANGE_START note. */
733#define RANGE_INFO_NOTE_END(INSN) (XEXP (INSN, 1))
734
735/* For RANGE_{START,END} notes, return the vector containing the registers used
736 in the range. */
737#define RANGE_INFO_REGS(INSN) (XVEC (INSN, 2))
738#define RANGE_INFO_REGS_REG(INSN, N) (XVECEXP (INSN, 2, N))
739#define RANGE_INFO_NUM_REGS(INSN) (XVECLEN (INSN, 2))
740
741/* For RANGE_{START,END} notes, the number of calls within the range. */
742#define RANGE_INFO_NCALLS(INSN) (XINT (INSN, 3))
743
744/* For RANGE_{START,END} notes, the number of insns within the range. */
745#define RANGE_INFO_NINSNS(INSN) (XINT (INSN, 4))
746
747/* For RANGE_{START,END} notes, a unique # to identify this range. */
748#define RANGE_INFO_UNIQUE(INSN) (XINT (INSN, 5))
749
750/* For RANGE_{START,END} notes, the basic block # the range starts with. */
751#define RANGE_INFO_BB_START(INSN) (XINT (INSN, 6))
752
753/* For RANGE_{START,END} notes, the basic block # the range ends with. */
754#define RANGE_INFO_BB_END(INSN) (XINT (INSN, 7))
755
756/* For RANGE_{START,END} notes, the loop depth the range is in. */
757#define RANGE_INFO_LOOP_DEPTH(INSN) (XINT (INSN, 8))
758
759/* For RANGE_{START,END} notes, the bitmap of live registers at the start
760 of the range. */
761#define RANGE_INFO_LIVE_START(INSN) (XBITMAP (INSN, 9))
762
763/* For RANGE_{START,END} notes, the bitmap of live registers at the end
764 of the range. */
765#define RANGE_INFO_LIVE_END(INSN) (XBITMAP (INSN, 10))
766
767/* For RANGE_START notes, the marker # of the start of the range. */
768#define RANGE_INFO_MARKER_START(INSN) (XINT (INSN, 11))
769
770/* For RANGE_START notes, the marker # of the end of the range. */
771#define RANGE_INFO_MARKER_END(INSN) (XINT (INSN, 12))
772
773/* Original pseudo register # for a live range note. */
774#define RANGE_REG_PSEUDO(INSN,N) (XINT (XVECEXP (INSN, 2, N), 0))
775
776/* Pseudo register # original register is copied into or -1. */
777#define RANGE_REG_COPY(INSN,N) (XINT (XVECEXP (INSN, 2, N), 1))
778
779/* How many times a register in a live range note was referenced. */
780#define RANGE_REG_REFS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 2))
781
782/* How many times a register in a live range note was set. */
783#define RANGE_REG_SETS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 3))
784
785/* How many times a register in a live range note died. */
786#define RANGE_REG_DEATHS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 4))
787
788/* Whether the original value is needed to be copied into the range register at
789 the start of the range. */
790#define RANGE_REG_COPY_FLAGS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 5))
791
792/* # of insns the register copy is live over. */
793#define RANGE_REG_LIVE_LENGTH(INSN,N) (XINT (XVECEXP (INSN, 2, N), 6))
794
795/* # of calls the register copy is live over. */
796#define RANGE_REG_N_CALLS(INSN,N) (XINT (XVECEXP (INSN, 2, N), 7))
797
798/* DECL_NODE pointer of the declaration if the register is a user defined
799 variable. */
800#define RANGE_REG_SYMBOL_NODE(INSN,N) (XTREE (XVECEXP (INSN, 2, N), 8))
801
802/* BLOCK_NODE pointer to the block the variable is declared in if the
803 register is a user defined variable. */
804#define RANGE_REG_BLOCK_NODE(INSN,N) (XTREE (XVECEXP (INSN, 2, N), 9))
805
806/* EXPR_LIST of the distinct ranges a variable is in. */
807#define RANGE_VAR_LIST(INSN) (XEXP (INSN, 0))
808
809/* Block a variable is declared in. */
810#define RANGE_VAR_BLOCK(INSN) (XTREE (INSN, 1))
811
812/* # of distinct ranges a variable is in. */
813#define RANGE_VAR_NUM(INSN) (XINT (INSN, 2))
814
815/* For a NOTE_INSN_LIVE note, the registers which are currently live. */
816#define RANGE_LIVE_BITMAP(INSN) (XBITMAP (INSN, 0))
817
818/* For a NOTE_INSN_LIVE note, the original basic block number. */
819#define RANGE_LIVE_ORIG_BLOCK(INSN) (XINT (INSN, 1))
6f29feb1 820\f
bf6bb899
BS
821/* Nonzero if we need to distinguish between the return value of this function
822 and the return value of a function called by this function. This helps
823 integrate.c.
824 This is 1 until after the rtl generation pass. */
825extern int rtx_equal_function_value_matters;
826
6f29feb1
JW
827/* Generally useful functions. */
828
5f4f0e22
CH
829/* The following functions accept a wide integer argument. Rather than
830 having to cast on every function call, we use a macro instead, that is
831 defined here and in tree.h. */
832
833#ifndef exact_log2
ac957f13
JL
834#define exact_log2(N) exact_log2_wide ((unsigned HOST_WIDE_INT) (N))
835#define floor_log2(N) floor_log2_wide ((unsigned HOST_WIDE_INT) (N))
5f4f0e22 836#endif
ac957f13
JL
837extern int exact_log2_wide PROTO((unsigned HOST_WIDE_INT));
838extern int floor_log2_wide PROTO((unsigned HOST_WIDE_INT));
839
840/* In expmed.c */
841extern int ceil_log2 PROTO((unsigned HOST_WIDE_INT));
5f4f0e22
CH
842
843#define plus_constant(X,C) plus_constant_wide (X, (HOST_WIDE_INT) (C))
844
845#define plus_constant_for_output(X,C) \
846 plus_constant_for_output_wide (X, (HOST_WIDE_INT) (C))
847
50b2596f 848/* In explow.c */
7e4ce834
RH
849extern HOST_WIDE_INT trunc_int_for_mode PROTO((HOST_WIDE_INT,
850 enum machine_mode));
f837a861
MM
851extern rtx plus_constant_wide PROTO((rtx, HOST_WIDE_INT));
852extern rtx plus_constant_for_output_wide PROTO((rtx, HOST_WIDE_INT));
50b2596f 853extern void optimize_save_area_alloca PROTO((rtx));
5f4f0e22 854
bdea67fa
RK
855extern rtx gen_rtx PVPROTO((enum rtx_code,
856 enum machine_mode, ...));
857extern rtvec gen_rtvec PVPROTO((int, ...));
f837a861 858
e9a25f70
JL
859#ifdef BUFSIZ
860extern rtx read_rtx PROTO((FILE *));
861#endif
f837a861 862
f837a861
MM
863extern char *oballoc PROTO((int));
864extern char *permalloc PROTO((int));
f837a861
MM
865extern rtx rtx_alloc PROTO((RTX_CODE));
866extern rtvec rtvec_alloc PROTO((int));
f837a861
MM
867extern rtx copy_rtx PROTO((rtx));
868extern rtx copy_rtx_if_shared PROTO((rtx));
869extern rtx copy_most_rtx PROTO((rtx, rtx));
ce9d4c6d 870extern rtx shallow_copy_rtx PROTO((rtx));
f837a861
MM
871extern rtvec gen_rtvec_v PROTO((int, rtx *));
872extern rtx gen_reg_rtx PROTO((enum machine_mode));
873extern rtx gen_label_rtx PROTO((void));
f837a861
MM
874extern rtx gen_lowpart_common PROTO((enum machine_mode, rtx));
875extern rtx gen_lowpart PROTO((enum machine_mode, rtx));
876extern rtx gen_lowpart_if_possible PROTO((enum machine_mode, rtx));
24f8db99 877extern rtx gen_highpart PROTO((enum machine_mode, rtx));
1577a9b4
RS
878extern rtx gen_realpart PROTO((enum machine_mode, rtx));
879extern rtx gen_imagpart PROTO((enum machine_mode, rtx));
f837a861
MM
880extern rtx operand_subword PROTO((rtx, int, int, enum machine_mode));
881extern rtx operand_subword_force PROTO((rtx, int, enum machine_mode));
882extern int subreg_lowpart_p PROTO((rtx));
883extern rtx make_safe_from PROTO((rtx, rtx));
9c5f2956 884extern rtx convert_memory_address PROTO((enum machine_mode, rtx));
f837a861
MM
885extern rtx memory_address PROTO((enum machine_mode, rtx));
886extern rtx get_insns PROTO((void));
887extern rtx get_last_insn PROTO((void));
888extern rtx get_last_insn_anywhere PROTO((void));
889extern void start_sequence PROTO((void));
890extern void push_to_sequence PROTO((rtx));
891extern void end_sequence PROTO((void));
892extern rtx gen_sequence PROTO((void));
893extern rtx immed_double_const PROTO((HOST_WIDE_INT, HOST_WIDE_INT, enum machine_mode));
894extern rtx force_const_mem PROTO((enum machine_mode, rtx));
895extern rtx force_reg PROTO((enum machine_mode, rtx));
896extern rtx get_pool_constant PROTO((rtx));
897extern enum machine_mode get_pool_mode PROTO((rtx));
898extern int get_pool_offset PROTO((rtx));
9ee96709 899extern rtx simplify_subtraction PROTO((rtx));
e5e809f4
JL
900extern rtx assign_stack_local PROTO((enum machine_mode,
901 HOST_WIDE_INT, int));
902extern rtx assign_stack_temp PROTO((enum machine_mode,
903 HOST_WIDE_INT, int));
904extern rtx assign_temp PROTO((union tree_node *,
905 int, int, int));
f837a861
MM
906extern rtx protect_from_queue PROTO((rtx, int));
907extern void emit_queue PROTO((void));
908extern rtx emit_move_insn PROTO((rtx, rtx));
909extern rtx emit_insn_before PROTO((rtx, rtx));
910extern rtx emit_jump_insn_before PROTO((rtx, rtx));
911extern rtx emit_call_insn_before PROTO((rtx, rtx));
912extern rtx emit_barrier_before PROTO((rtx));
e881bb1b 913extern rtx emit_label_before PROTO((rtx, rtx));
f837a861
MM
914extern rtx emit_note_before PROTO((int, rtx));
915extern rtx emit_insn_after PROTO((rtx, rtx));
916extern rtx emit_jump_insn_after PROTO((rtx, rtx));
917extern rtx emit_barrier_after PROTO((rtx));
918extern rtx emit_label_after PROTO((rtx, rtx));
919extern rtx emit_note_after PROTO((int, rtx));
920extern rtx emit_line_note_after PROTO((char *, int, rtx));
921extern rtx emit_insn PROTO((rtx));
922extern rtx emit_insns PROTO((rtx));
923extern rtx emit_insns_before PROTO((rtx, rtx));
81f59869 924extern rtx emit_insns_after PROTO((rtx, rtx));
f837a861
MM
925extern rtx emit_jump_insn PROTO((rtx));
926extern rtx emit_call_insn PROTO((rtx));
927extern rtx emit_label PROTO((rtx));
928extern rtx emit_barrier PROTO((void));
929extern rtx emit_line_note PROTO((char *, int));
930extern rtx emit_note PROTO((char *, int));
931extern rtx emit_line_note_force PROTO((char *, int));
932extern rtx make_insn_raw PROTO((rtx));
933extern rtx previous_insn PROTO((rtx));
934extern rtx next_insn PROTO((rtx));
935extern rtx prev_nonnote_insn PROTO((rtx));
936extern rtx next_nonnote_insn PROTO((rtx));
937extern rtx prev_real_insn PROTO((rtx));
938extern rtx next_real_insn PROTO((rtx));
939extern rtx prev_active_insn PROTO((rtx));
940extern rtx next_active_insn PROTO((rtx));
941extern rtx prev_label PROTO((rtx));
942extern rtx next_label PROTO((rtx));
943extern rtx next_cc0_user PROTO((rtx));
944extern rtx prev_cc0_setter PROTO((rtx));
f837a861
MM
945extern rtx next_nondeleted_insn PROTO((rtx));
946extern enum rtx_code reverse_condition PROTO((enum rtx_code));
947extern enum rtx_code swap_condition PROTO((enum rtx_code));
948extern enum rtx_code unsigned_condition PROTO((enum rtx_code));
949extern enum rtx_code signed_condition PROTO((enum rtx_code));
950extern rtx find_equiv_reg PROTO((rtx, rtx, enum reg_class, int, short *, int, enum machine_mode));
951extern rtx squeeze_notes PROTO((rtx, rtx));
952extern rtx delete_insn PROTO((rtx));
953extern void delete_jump PROTO((rtx));
954extern rtx get_label_before PROTO((rtx));
955extern rtx get_label_after PROTO((rtx));
956extern rtx follow_jumps PROTO((rtx));
957extern rtx adj_offsettable_operand PROTO((rtx, int));
958extern rtx try_split PROTO((rtx, rtx, int));
959extern rtx split_insns PROTO((rtx, rtx));
960extern rtx simplify_unary_operation PROTO((enum rtx_code, enum machine_mode, rtx, enum machine_mode));
961extern rtx simplify_binary_operation PROTO((enum rtx_code, enum machine_mode, rtx, rtx));
962extern rtx simplify_ternary_operation PROTO((enum rtx_code, enum machine_mode, enum machine_mode, rtx, rtx, rtx));
963extern rtx simplify_relational_operation PROTO((enum rtx_code, enum machine_mode, rtx, rtx));
f837a861
MM
964extern rtx gen_move_insn PROTO((rtx, rtx));
965extern rtx gen_jump PROTO((rtx));
966extern rtx gen_beq PROTO((rtx));
967extern rtx gen_bge PROTO((rtx));
968extern rtx gen_ble PROTO((rtx));
e9a25f70 969extern rtx gen_mem_addressof PROTO((rtx, union tree_node *));
f837a861 970extern rtx eliminate_constant_term PROTO((rtx, rtx *));
d03cc004 971extern rtx expand_complex_abs PROTO((enum machine_mode, rtx, rtx, int));
a021f58a 972extern enum machine_mode choose_hard_reg_mode PROTO((int, int));
b664de3a 973extern void set_unique_reg_note PROTO((rtx, enum reg_note, rtx));
9ae8ffe7 974
e9a25f70
JL
975/* Functions in rtlanal.c */
976
977extern int rtx_unstable_p PROTO((rtx));
978extern int rtx_varies_p PROTO((rtx));
979extern int rtx_addr_varies_p PROTO((rtx));
980extern HOST_WIDE_INT get_integer_term PROTO((rtx));
981extern rtx get_related_value PROTO((rtx));
982extern int reg_mentioned_p PROTO((rtx, rtx));
983extern int reg_referenced_p PROTO((rtx, rtx));
984extern int reg_used_between_p PROTO((rtx, rtx, rtx));
985extern int reg_referenced_between_p PROTO((rtx, rtx, rtx));
986extern int reg_set_between_p PROTO((rtx, rtx, rtx));
a2e1a0bf 987extern int regs_set_between_p PROTO((rtx, rtx, rtx));
e9a25f70
JL
988extern int modified_between_p PROTO((rtx, rtx, rtx));
989extern int no_labels_between_p PROTO((rtx, rtx));
3ec2b590 990extern int no_jumps_between_p PROTO((rtx, rtx));
e9a25f70
JL
991extern int modified_in_p PROTO((rtx, rtx));
992extern int reg_set_p PROTO((rtx, rtx));
993extern rtx single_set PROTO((rtx));
93e0dfe1 994extern int multiple_sets PROTO((rtx));
89d3d442 995extern rtx find_last_value PROTO((rtx, rtx *, rtx, int));
e9a25f70
JL
996extern int refers_to_regno_p PROTO((int, int, rtx, rtx *));
997extern int reg_overlap_mentioned_p PROTO((rtx, rtx));
3228bc05 998extern void note_stores PROTO((rtx, void (*)(rtx, rtx)));
e9a25f70
JL
999extern rtx reg_set_last PROTO((rtx, rtx));
1000extern int rtx_equal_p PROTO((rtx, rtx));
1001extern int dead_or_set_p PROTO((rtx, rtx));
1002extern int dead_or_set_regno_p PROTO((rtx, int));
1003extern rtx find_reg_note PROTO((rtx, enum reg_note, rtx));
1004extern rtx find_regno_note PROTO((rtx, enum reg_note, int));
1005extern int find_reg_fusage PROTO((rtx, enum rtx_code, rtx));
1006extern int find_regno_fusage PROTO((rtx, enum rtx_code, int));
1007extern void remove_note PROTO((rtx, rtx));
1008extern int side_effects_p PROTO((rtx));
1009extern int volatile_refs_p PROTO((rtx));
1010extern int volatile_insn_p PROTO((rtx));
1011extern int may_trap_p PROTO((rtx));
ae0b51ef 1012extern int inequality_comparisons_p PROTO ((rtx));
e9a25f70
JL
1013extern rtx replace_rtx PROTO((rtx, rtx, rtx));
1014extern rtx replace_regs PROTO((rtx, rtx *, int, int));
ac957f13 1015extern int computed_jump_p PROTO((rtx));
41a972a9
MM
1016typedef int (*rtx_function) PROTO((rtx *, void *));
1017extern int for_each_rtx PROTO((rtx *, rtx_function, void *));
6a73406e 1018extern rtx regno_use_in PROTO((int, rtx));
2dfa9a87 1019extern int auto_inc_p PROTO((rtx));
55a98783 1020extern void remove_node_from_expr_list PROTO((rtx, rtx *));
6f29feb1 1021
ae0b51ef
JL
1022/* flow.c */
1023
1024extern rtx find_use_as_address PROTO((rtx, rtx, HOST_WIDE_INT));
5a4f6418
AM
1025void init_EXPR_INSN_LIST_cache PROTO((void));
1026void free_EXPR_LIST_list PROTO((rtx *));
1027void free_INSN_LIST_list PROTO((rtx *));
1028void free_EXPR_LIST_node PROTO((rtx));
1029void free_INSN_LIST_node PROTO((rtx));
1030rtx alloc_INSN_LIST PROTO((rtx, rtx));
1031rtx alloc_EXPR_LIST PROTO((int, rtx, rtx));
ae0b51ef
JL
1032
1033/* regclass.c */
1034
6f29feb1
JW
1035/* Maximum number of parallel sets and clobbers in any insn in this fn.
1036 Always at least 3, since the combiner could put that many togetherm
1037 and we want this to remain correct for all the remaining passes. */
1038
1039extern int max_parallel;
1040
e0c6d139 1041/* Free up register info memory. */
ed396e68 1042extern void free_reg_info PROTO((void));
e0c6d139 1043
ae0b51ef 1044/* recog.c */
f837a861 1045extern int asm_noperands PROTO((rtx));
9b3142b3
KG
1046extern char *decode_asm_operands PROTO((rtx, rtx *, rtx **,
1047 const char **,
1048 enum machine_mode *));
6f29feb1 1049
f837a861
MM
1050extern enum reg_class reg_preferred_class PROTO((int));
1051extern enum reg_class reg_alternate_class PROTO((int));
6f29feb1 1052
f837a861 1053extern rtx get_first_nonparm_insn PROTO((void));
6f29feb1 1054
6a73406e
RH
1055extern void split_block_insns PROTO((int, int));
1056extern void update_flow_info PROTO((rtx, rtx, rtx, rtx));
1057
6f29feb1 1058/* Standard pieces of rtx, to be substituted directly into things. */
68d75312
JC
1059#define pc_rtx (&global_rtl.pc_val)
1060#define cc0_rtx (&global_rtl.cc0_val)
1061
1062#define MAX_SAVED_CONST_INT 64
1063extern struct rtx_def const_int_rtx[MAX_SAVED_CONST_INT * 2 + 1];
1064
1065#define const0_rtx (&const_int_rtx[MAX_SAVED_CONST_INT])
1066#define const1_rtx (&const_int_rtx[MAX_SAVED_CONST_INT+1])
1067#define const2_rtx (&const_int_rtx[MAX_SAVED_CONST_INT+2])
1068#define constm1_rtx (&const_int_rtx[MAX_SAVED_CONST_INT-1])
6f29feb1 1069extern rtx const_true_rtx;
a8efe40d
RK
1070
1071extern rtx const_tiny_rtx[3][(int) MAX_MACHINE_MODE];
1072
1073/* Returns a constant 0 rtx in mode MODE. Integer modes are treated the
1074 same as VOIDmode. */
1075
1076#define CONST0_RTX(MODE) (const_tiny_rtx[0][(int) (MODE)])
1077
1078/* Likewise, for the constants 1 and 2. */
1079
1080#define CONST1_RTX(MODE) (const_tiny_rtx[1][(int) (MODE)])
1081#define CONST2_RTX(MODE) (const_tiny_rtx[2][(int) (MODE)])
6f29feb1 1082
68d75312
JC
1083extern struct _global_rtl
1084{
1085 struct rtx_def pc_val, cc0_val;
1086 struct rtx_def stack_pointer_val, frame_pointer_val;
1087 struct rtx_def hard_frame_pointer_val;
1088 struct rtx_def arg_pointer_val;
1089 struct rtx_def virtual_incoming_args_val;
1090 struct rtx_def virtual_stack_vars_val;
1091 struct rtx_def virtual_stack_dynamic_val;
1092 struct rtx_def virtual_outgoing_args_val;
71038426 1093 struct rtx_def virtual_cfa_val;
68d75312
JC
1094} global_rtl;
1095
6f29feb1
JW
1096/* All references to certain hard regs, except those created
1097 by allocating pseudo regs into them (when that's possible),
1098 go through these unique rtx objects. */
68d75312
JC
1099#define stack_pointer_rtx (&global_rtl.stack_pointer_val)
1100#define frame_pointer_rtx (&global_rtl.frame_pointer_val)
1101
6f29feb1
JW
1102extern rtx pic_offset_table_rtx;
1103extern rtx struct_value_rtx;
1104extern rtx struct_value_incoming_rtx;
1105extern rtx static_chain_rtx;
1106extern rtx static_chain_incoming_rtx;
07ebc930 1107extern rtx return_address_pointer_rtx;
3b80f6ca
RH
1108
1109/* Include the RTL generation functions. */
1110
1111#ifndef NO_GENRTL_H
1112#include "genrtl.h"
1113#endif
1114
41472af8
MM
1115/* There are some RTL codes that require special attention; the
1116 generation functions included above do the raw handling. If you
b4213325
MM
1117 add to this list, modify special_rtx in gengenrtl.c as well. You
1118 should also modify gen_rtx to use the special function. */
3b80f6ca 1119
0133b7d9
RH
1120extern rtx gen_rtx_CONST_DOUBLE PROTO((enum machine_mode, rtx,
1121 HOST_WIDE_INT, HOST_WIDE_INT));
3b80f6ca
RH
1122extern rtx gen_rtx_CONST_INT PROTO((enum machine_mode, HOST_WIDE_INT));
1123extern rtx gen_rtx_REG PROTO((enum machine_mode, int));
41472af8 1124extern rtx gen_rtx_MEM PROTO((enum machine_mode, rtx));
3b80f6ca 1125
aefdd5ab
JL
1126/* We need the cast here to ensure that we get the same result both with
1127 and without prototypes. */
1128#define GEN_INT(N) gen_rtx_CONST_INT (VOIDmode, (HOST_WIDE_INT) (N))
3b80f6ca
RH
1129
1130
3ba71656
DE
1131/* If HARD_FRAME_POINTER_REGNUM is defined, then a special dummy reg
1132 is used to represent the frame pointer. This is because the
1133 hard frame pointer and the automatic variables are separated by an amount
1134 that cannot be determined until after register allocation. We can assume
1135 that in this case ELIMINABLE_REGS will be defined, one action of which
1136 will be to eliminate FRAME_POINTER_REGNUM into HARD_FRAME_POINTER_REGNUM. */
1137#ifndef HARD_FRAME_POINTER_REGNUM
1138#define HARD_FRAME_POINTER_REGNUM FRAME_POINTER_REGNUM
1139#endif
1140
68d75312
JC
1141/* For register elimination to work properly these hard_frame_pointer_rtx,
1142 frame_pointer_rtx, and arg_pointer_rtx must be the same if they refer to
1143 the same register. */
1144#if HARD_FRAME_POINTER_REGNUM == FRAME_POINTER_REGNUM
1145#define hard_frame_pointer_rtx (&global_rtl.frame_pointer_val)
1146#else
1147#define hard_frame_pointer_rtx (&global_rtl.hard_frame_pointer_val)
1148#endif
1149
1150#if FRAME_POINTER_REGNUM == ARG_POINTER_REGNUM
1151#define arg_pointer_rtx (&global_rtl.frame_pointer_val)
1152#else
ffc3503d 1153#if HARD_FRAME_POINTER_REGNUM == ARG_POINTER_REGNUM
68d75312
JC
1154#define arg_pointer_rtx (&global_rtl.hard_frame_pointer_val)
1155#else
1156#define arg_pointer_rtx (&global_rtl.arg_pointer_val)
1157#endif
1158#endif
1159
6f29feb1
JW
1160/* Virtual registers are used during RTL generation to refer to locations into
1161 the stack frame when the actual location isn't known until RTL generation
1162 is complete. The routine instantiate_virtual_regs replaces these with
1163 the proper value, which is normally {frame,arg,stack}_pointer_rtx plus
1164 a constant. */
1165
1166#define FIRST_VIRTUAL_REGISTER (FIRST_PSEUDO_REGISTER)
1167
1168/* This points to the first word of the incoming arguments passed on the stack,
1169 either by the caller or by the callee when pretending it was passed by the
1170 caller. */
1171
68d75312 1172#define virtual_incoming_args_rtx (&global_rtl.virtual_incoming_args_val)
6f29feb1
JW
1173
1174#define VIRTUAL_INCOMING_ARGS_REGNUM (FIRST_VIRTUAL_REGISTER)
1175
60343c3b 1176/* If FRAME_GROWS_DOWNWARD, this points to immediately above the first
6f29feb1
JW
1177 variable on the stack. Otherwise, it points to the first variable on
1178 the stack. */
1179
68d75312 1180#define virtual_stack_vars_rtx (&global_rtl.virtual_stack_vars_val)
6f29feb1
JW
1181
1182#define VIRTUAL_STACK_VARS_REGNUM ((FIRST_VIRTUAL_REGISTER) + 1)
1183
1184/* This points to the location of dynamically-allocated memory on the stack
1185 immediately after the stack pointer has been adjusted by the amount
1186 desired. */
1187
68d75312 1188#define virtual_stack_dynamic_rtx (&global_rtl.virtual_stack_dynamic_val)
6f29feb1
JW
1189
1190#define VIRTUAL_STACK_DYNAMIC_REGNUM ((FIRST_VIRTUAL_REGISTER) + 2)
1191
1192/* This points to the location in the stack at which outgoing arguments should
1193 be written when the stack is pre-pushed (arguments pushed using push
1194 insns always use sp). */
1195
68d75312 1196#define virtual_outgoing_args_rtx (&global_rtl.virtual_outgoing_args_val)
6f29feb1
JW
1197
1198#define VIRTUAL_OUTGOING_ARGS_REGNUM ((FIRST_VIRTUAL_REGISTER) + 3)
1199
71038426
RH
1200/* This points to the Canonical Frame Address of the function. This
1201 should corrospond to the CFA produced by INCOMING_FRAME_SP_OFFSET,
1202 but is calculated relative to the arg pointer for simplicity; the
1203 frame pointer nor stack pointer are necessarily fixed relative to
1204 the CFA until after reload. */
1205
1206#define virtual_cfa_rtx (&global_rtl.virtual_cfa_val)
1207
1208#define VIRTUAL_CFA_REGNUM ((FIRST_VIRTUAL_REGISTER) + 4)
1209
1210#define LAST_VIRTUAL_REGISTER ((FIRST_VIRTUAL_REGISTER) + 4)
6f29feb1 1211
f837a861
MM
1212extern rtx find_next_ref PROTO((rtx, rtx));
1213extern rtx *find_single_use PROTO((rtx, rtx, rtx *));
1214
88efc60a
RK
1215extern rtx output_constant_def PROTO((union tree_node *));
1216extern rtx immed_real_const PROTO((union tree_node *));
1217extern union tree_node *make_tree PROTO((union tree_node *, rtx));
6f29feb1
JW
1218
1219/* Define a default value for STORE_FLAG_VALUE. */
1220
1221#ifndef STORE_FLAG_VALUE
1222#define STORE_FLAG_VALUE 1
1223#endif
1224
0ea0e871
JL
1225/* Nonzero after the second flow pass has completed.
1226 Set to 1 or 0 by toplev.c */
1227extern int flow2_completed;
1228
6f29feb1 1229/* Nonzero after end of reload pass.
0ea0e871 1230 Set to 1 or 0 by reload1.c. */
6f29feb1
JW
1231
1232extern int reload_completed;
1233
1234/* Set to 1 while reload_as_needed is operating.
1235 Required by some machines to handle any generated moves differently. */
1236
1237extern int reload_in_progress;
1238
1239/* If this is nonzero, we do not bother generating VOLATILE
1240 around volatile memory references, and we are willing to
1241 output indirect addresses. If cse is to follow, we reject
1242 indirect addresses so a useful potential cse is generated;
1243 if it is used only once, instruction combination will produce
1244 the same indirect address eventually. */
1245extern int cse_not_expected;
1246
f1db3576
JL
1247/* Set to nonzero before life analysis to indicate that it is unsafe to
1248 generate any new pseudo registers. */
1249extern int no_new_pseudos;
1250
f5118aa5 1251/* Translates rtx code to tree code, for those codes needed by
88efc60a
RK
1252 REAL_ARITHMETIC. The function returns an int because the caller may not
1253 know what `enum tree_code' means. */
1254
1255extern int rtx_to_tree_code PROTO((enum rtx_code));
9ae8ffe7 1256
ac957f13
JL
1257/* In tree.c */
1258extern void obfree PROTO ((char *));
1259struct obstack;
1260extern void gcc_obstack_init PROTO ((struct obstack *));
1261extern void pop_obstacks PROTO ((void));
1262extern void push_obstacks PROTO ((struct obstack *,
1263 struct obstack *));
1264#ifdef BUFSIZ
1265extern int read_skip_spaces PROTO ((FILE *));
1266#endif
1267
1268/* In cse.c */
1269struct cse_basic_block_data;
1270extern int rtx_cost PROTO ((rtx, enum rtx_code));
c6a26dc4 1271extern void delete_trivially_dead_insns PROTO ((rtx, int));
ac957f13
JL
1272#ifdef BUFSIZ
1273extern int cse_main PROTO ((rtx, int, int, FILE *));
1274#endif
1275extern void cse_end_of_basic_block PROTO ((rtx,
1276 struct cse_basic_block_data *,
1277 int, int, int));
1278
1279/* In jump.c */
1280extern int comparison_dominates_p PROTO ((enum rtx_code, enum rtx_code));
1281extern int condjump_p PROTO ((rtx));
d804ed43 1282extern rtx condjump_label PROTO ((rtx));
ac957f13 1283extern int simplejump_p PROTO ((rtx));
e881bb1b 1284extern int returnjump_p PROTO ((rtx));
d0e80719 1285extern int onlyjump_p PROTO ((rtx));
c2861502 1286extern int sets_cc0_p PROTO ((rtx));
ac957f13
JL
1287extern int invert_jump PROTO ((rtx, rtx));
1288extern int rtx_renumbered_equal_p PROTO ((rtx, rtx));
1289extern int true_regnum PROTO ((rtx));
1290extern int redirect_jump PROTO ((rtx, rtx));
1291extern void jump_optimize PROTO ((rtx, int, int, int));
c4403371 1292extern void rebuild_jump_labels PROTO ((rtx));
ac957f13
JL
1293extern void thread_jumps PROTO ((rtx, int, int));
1294extern int redirect_exp PROTO ((rtx *, rtx, rtx, rtx));
1295extern int rtx_equal_for_thread_p PROTO ((rtx, rtx, rtx));
1296extern int invert_exp PROTO ((rtx, rtx));
1297extern int can_reverse_comparison_p PROTO ((rtx, rtx));
1298extern void delete_for_peephole PROTO ((rtx, rtx));
1299extern int condjump_in_parallel_p PROTO ((rtx));
312f6255 1300extern void never_reached_warning PROTO ((rtx));
ac957f13 1301
14bf4a33
MM
1302/* Flags for jump_optimize() */
1303#define JUMP_CROSS_JUMP 1
1304#define JUMP_NOOP_MOVES 1
1305#define JUMP_AFTER_REGSCAN 1
1306
ac957f13
JL
1307/* In emit-rtl.c. */
1308extern int max_reg_num PROTO ((void));
1309extern int max_label_num PROTO ((void));
1310extern int get_first_label_num PROTO ((void));
1311extern void delete_insns_since PROTO ((rtx));
1312extern void mark_reg_pointer PROTO ((rtx, int));
1313extern void mark_user_reg PROTO ((rtx));
1314extern void reset_used_flags PROTO ((rtx));
1315extern void reorder_insns PROTO ((rtx, rtx, rtx));
1316extern int get_max_uid PROTO ((void));
1317extern int in_sequence_p PROTO ((void));
1318extern void force_next_line_note PROTO ((void));
49ad7cfa 1319extern void clear_emit_caches PROTO ((void));
ac957f13
JL
1320extern void init_emit PROTO ((void));
1321extern void init_emit_once PROTO ((int));
1322extern void push_topmost_sequence PROTO ((void));
1323extern void pop_topmost_sequence PROTO ((void));
1324extern int subreg_realpart_p PROTO ((rtx));
1325extern void reverse_comparison PROTO ((rtx));
1326extern void set_new_first_and_last_insn PROTO ((rtx, rtx));
1327extern void set_new_first_and_last_label_num PROTO ((int, int));
49ad7cfa 1328extern void set_new_last_label_num PROTO ((int));
ac957f13
JL
1329extern void unshare_all_rtl PROTO ((rtx));
1330extern void set_last_insn PROTO ((rtx));
1331extern void link_cc0_insns PROTO ((rtx));
1332extern void add_insn PROTO ((rtx));
1333extern void add_insn_before PROTO ((rtx, rtx));
1334extern void add_insn_after PROTO ((rtx, rtx));
89e99eea 1335extern void remove_insn PROTO ((rtx));
ac957f13
JL
1336extern void reorder_insns_with_line_notes PROTO ((rtx, rtx, rtx));
1337extern void emit_insn_after_with_line_notes PROTO ((rtx, rtx, rtx));
1338extern enum rtx_code classify_insn PROTO ((rtx));
1339extern rtx emit PROTO ((rtx));
a11759a3
JR
1340/* Query and clear/ restore no_line_numbers. This is used by the
1341 switch / case handling in stmt.c to give proper line numbers in
1342 warnings about unreachable code. */
1343int force_line_numbers PROTO((void));
1344void restore_line_number_status PROTO((int old_value));
ac957f13
JL
1345
1346/* In insn-emit.c */
1347extern void add_clobbers PROTO ((rtx, int));
1348
1349/* In combine.c */
1350extern void combine_instructions PROTO ((rtx, int));
1351extern int extended_count PROTO ((rtx, enum machine_mode, int));
1352extern rtx remove_death PROTO ((int, rtx));
1353#ifdef BUFSIZ
1354extern void dump_combine_stats PROTO ((FILE *));
1355extern void dump_combine_total_stats PROTO ((FILE *));
1356#endif
1357
1358/* In sched.c. */
1359#ifdef BUFSIZ
1360extern void schedule_insns PROTO ((FILE *));
1361#endif
5f06c983 1362extern void fix_sched_param PROTO ((const char *, const char *));
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1363
1364/* In print-rtl.c */
1365extern void debug_rtx PROTO ((rtx));
1366extern void debug_rtx_list PROTO ((rtx, int));
1367extern rtx debug_rtx_find PROTO ((rtx, int));
1368#ifdef BUFSIZ
1369extern void print_rtl PROTO ((FILE *, rtx));
b707b450 1370extern int print_rtl_single PROTO ((FILE *, rtx));
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1371extern void print_inline_rtx PROTO ((FILE *, rtx, int));
1372#endif
1373
1374/* In loop.c */
1375extern void init_loop PROTO ((void));
89d3d442 1376extern rtx libcall_other_reg PROTO ((rtx, rtx));
ac957f13 1377#ifdef BUFSIZ
5accd822 1378extern void loop_optimize PROTO ((rtx, FILE *, int, int));
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1379#endif
1380extern void record_excess_regs PROTO ((rtx, rtx, rtx *));
1381
1382/* In function.c */
1383extern void reposition_prologue_and_epilogue_notes PROTO ((rtx));
1384extern void thread_prologue_and_epilogue_insns PROTO ((rtx));
5c7675e9 1385extern int prologue_epilogue_contains PROTO ((rtx));
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1386extern void use_variable PROTO ((rtx));
1387extern HOST_WIDE_INT get_frame_size PROTO ((void));
1388extern void preserve_rtl_expr_result PROTO ((rtx));
1389extern void mark_temp_addr_taken PROTO ((rtx));
1390extern void update_temp_slot_address PROTO ((rtx, rtx));
1391extern void use_variable_after PROTO ((rtx, rtx));
50b2596f 1392extern void purge_addressof PROTO ((rtx));
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1393
1394/* In reload.c */
1395extern int operands_match_p PROTO ((rtx, rtx));
1396extern int safe_from_earlyclobber PROTO ((rtx, rtx));
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1397
1398/* In stmt.c */
3f1d071b 1399extern void set_file_and_line_for_stmt PROTO ((char *, int));
487a6e06 1400extern void expand_null_return PROTO((void));
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1401extern void emit_jump PROTO ((rtx));
1402extern int preserve_subexpressions_p PROTO ((void));
1403
1404/* In expr.c */
ac957f13 1405extern void init_expr_once PROTO ((void));
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1406extern void move_by_pieces PROTO ((rtx, rtx, int, int));
1407
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1408
1409/* In stupid.c */
1410#ifdef BUFSIZ
1411extern void stupid_life_analysis PROTO ((rtx, int, FILE *));
1412#endif
1413
1414/* In flow.c */
359da67d
RH
1415extern void allocate_bb_life_data PROTO ((void));
1416extern void allocate_reg_life_data PROTO ((void));
213c4983 1417extern void recompute_reg_usage PROTO ((rtx, int));
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1418#ifdef BUFSIZ
1419extern void dump_flow_info PROTO ((FILE *));
1420#endif
774018b9 1421extern void free_bb_mem PROTO ((void));
f2a1bc02 1422extern void replace_insns PROTO ((rtx, rtx, rtx, rtx));
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1423
1424/* In expmed.c */
1425extern void init_expmed PROTO ((void));
1426extern void expand_inc PROTO ((rtx, rtx));
1427extern void expand_dec PROTO ((rtx, rtx));
1428extern rtx expand_mult_highpart PROTO ((enum machine_mode, rtx,
1429 unsigned HOST_WIDE_INT, rtx,
1430 int, int));
1431
50b2596f
KG
1432/* In gcse.c */
1433#ifdef BUFSIZ
e78d9500 1434extern int gcse_main PROTO ((rtx, FILE *));
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1435#endif
1436
ac957f13 1437/* In global.c */
487a6e06 1438extern void mark_elimination PROTO ((int, int));
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1439#ifdef BUFSIZ
1440extern int global_alloc PROTO ((FILE *));
1441extern void dump_global_regs PROTO ((FILE *));
1442#endif
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1443#ifdef HARD_CONST
1444extern void retry_global_alloc PROTO ((int, HARD_REG_SET));
1445#endif
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1446
1447/* In regclass.c */
487a6e06 1448extern int reg_classes_intersect_p PROTO ((enum reg_class, enum reg_class));
d6f4ec51 1449extern int reg_class_subset_p PROTO ((enum reg_class, enum reg_class));
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1450extern void globalize_reg PROTO ((int));
1451extern void init_regs PROTO ((void));
1452extern void init_reg_sets PROTO ((void));
1453extern void regset_release_memory PROTO ((void));
1454extern void regclass_init PROTO ((void));
1455extern void regclass PROTO ((rtx, int));
1456extern void reg_scan PROTO ((rtx, int, int));
f903b91f 1457extern void reg_scan_update PROTO ((rtx, rtx, int));
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1458extern void fix_register PROTO ((char *, int, int));
1459
50b2596f
KG
1460/* In regmove.c */
1461#ifdef BUFSIZ
1462extern void regmove_optimize PROTO ((rtx, int, FILE *));
1463#endif
1464
1465/* In reorg.c */
1466#ifdef BUFSIZ
1467extern void dbr_schedule PROTO ((rtx, FILE *));
1468#endif
1469
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1470/* In optabs.c */
1471extern void init_optabs PROTO ((void));
1472
1473/* In local-alloc.c */
1474#ifdef BUFSIZ
1475extern void dump_local_alloc PROTO ((FILE *));
1476#endif
3f1b9b1b 1477extern int local_alloc PROTO ((void));
2b49ee39 1478extern int function_invariant_p PROTO ((rtx));
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1479
1480/* In reload1.c */
1481extern void reload_cse_regs PROTO ((rtx));
1482extern void init_reload PROTO ((void));
1483extern void mark_home_live PROTO ((int));
1484#ifdef BUFSIZ
1485extern int reload PROTO ((rtx, int, FILE *));
1486#endif
1487
1488/* In caller-save.c */
1489extern void init_caller_save PROTO ((void));
1490
1491/* In profile.c */
87e11268 1492extern void init_branch_prob PROTO ((const char *));
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KG
1493#ifdef BUFSIZ
1494extern void branch_prob PROTO ((rtx, FILE *));
1495extern void end_branch_prob PROTO ((FILE *));
1496#endif
d6f4ec51 1497extern void output_func_start_profiler PROTO ((void));
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1498
1499/* In reg-stack.c */
1500#ifdef BUFSIZ
1501extern void reg_to_stack PROTO ((rtx, FILE *));
1502#endif
1503extern int stack_regs_mentioned_p PROTO ((rtx));
1504
1505/* In fold-const.c */
1506extern int add_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1507 HOST_WIDE_INT, HOST_WIDE_INT,
1508 HOST_WIDE_INT *, HOST_WIDE_INT *));
1509extern int neg_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1510 HOST_WIDE_INT *, HOST_WIDE_INT *));
1511extern int mul_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1512 HOST_WIDE_INT, HOST_WIDE_INT,
1513 HOST_WIDE_INT *, HOST_WIDE_INT *));
1514extern void lshift_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1515 HOST_WIDE_INT, int, HOST_WIDE_INT *,
1516 HOST_WIDE_INT *, int));
1517extern void rshift_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1518 HOST_WIDE_INT, int,
1519 HOST_WIDE_INT *, HOST_WIDE_INT *, int));
1520extern void lrotate_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1521 HOST_WIDE_INT, int, HOST_WIDE_INT *,
1522 HOST_WIDE_INT *));
1523extern void rrotate_double PROTO ((HOST_WIDE_INT, HOST_WIDE_INT,
1524 HOST_WIDE_INT, int, HOST_WIDE_INT *,
1525 HOST_WIDE_INT *));
1526
1527/* In calls.c */
1528/* Emit library call. */
1529extern void emit_library_call PVPROTO ((rtx, int, enum machine_mode,
1530 int, ...));
1531extern rtx emit_library_call_value PVPROTO((rtx, rtx, int,
1532 enum machine_mode,
1533 int, ...));
1534
1535/* In unroll.c */
1536extern int set_dominates_use PROTO ((int, int, int, rtx, rtx));
1537
1538/* In varasm.c */
1539extern void bss_section PROTO ((void));
1540extern int in_data_section PROTO ((void));
1541extern int supports_one_only PROTO ((void));
1542
1543/* In rtl.c */
1544extern void init_rtl PROTO ((void));
1545extern void rtx_free PROTO ((rtx));
1546
987009bf
ZW
1547/* Redefine abort to report an internal error w/o coredump, and
1548 reporting the location of the error in the source file. This logic
1549 is duplicated in rtl.h and tree.h because every file that needs the
1550 special abort includes one or both. toplev.h gets too few files,
1551 system.h gets too many. */
1552
1553extern void fancy_abort PROTO((const char *, int, const char *))
1554 ATTRIBUTE_NORETURN;
1555#if __GNUC__ < 2 || (__GNUC__ == 2 && __GNUC_MINOR__ < 7)
1556#define abort() fancy_abort (__FILE__, __LINE__, 0)
1557#else
1558#define abort() fancy_abort (__FILE__, __LINE__, __PRETTY_FUNCTION__)
1559#endif
1560
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1561/* In alias.c */
1562extern int true_dependence PROTO ((rtx, enum machine_mode, rtx,
1563 int (*)(rtx)));
1564extern int read_dependence PROTO ((rtx, rtx));
1565extern int anti_dependence PROTO ((rtx, rtx));
1566extern int output_dependence PROTO ((rtx, rtx));
7790df19 1567extern void mark_constant_function PROTO ((void));
6e73e666 1568extern void init_alias_once PROTO ((void));
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1569extern void init_alias_analysis PROTO ((void));
1570extern void end_alias_analysis PROTO ((void));
1571
de12be17 1572extern void record_base_value PROTO ((int, rtx, int));
3932261a 1573extern void record_alias_subset PROTO ((int, int));
39cec1ac 1574extern rtx addr_side_effect_eval PROTO ((rtx, int, int));
4c649323 1575
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1576#ifdef STACK_REGS
1577extern int stack_regs_mentioned PROTO((rtx insn));
1578#endif
1579
ac957f13 1580#endif /* _RTL_H */
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