gimple.texi revision 1.6 1 1.6 mrg @c Copyright (C) 2008-2016 Free Software Foundation, Inc.
2 1.1 mrg @c Free Software Foundation, Inc.
3 1.1 mrg @c This is part of the GCC manual.
4 1.1 mrg @c For copying conditions, see the file gcc.texi.
5 1.1 mrg
6 1.1 mrg @node GIMPLE
7 1.1 mrg @chapter GIMPLE
8 1.1 mrg @cindex GIMPLE
9 1.1 mrg
10 1.1 mrg GIMPLE is a three-address representation derived from GENERIC by
11 1.1 mrg breaking down GENERIC expressions into tuples of no more than 3
12 1.1 mrg operands (with some exceptions like function calls). GIMPLE was
13 1.1 mrg heavily influenced by the SIMPLE IL used by the McCAT compiler
14 1.1 mrg project at McGill University, though we have made some different
15 1.1 mrg choices. For one thing, SIMPLE doesn't support @code{goto}.
16 1.1 mrg
17 1.1 mrg Temporaries are introduced to hold intermediate values needed to
18 1.1 mrg compute complex expressions. Additionally, all the control
19 1.1 mrg structures used in GENERIC are lowered into conditional jumps,
20 1.1 mrg lexical scopes are removed and exception regions are converted
21 1.1 mrg into an on the side exception region tree.
22 1.1 mrg
23 1.1 mrg The compiler pass which converts GENERIC into GIMPLE is referred to as
24 1.1 mrg the @samp{gimplifier}. The gimplifier works recursively, generating
25 1.1 mrg GIMPLE tuples out of the original GENERIC expressions.
26 1.1 mrg
27 1.1 mrg One of the early implementation strategies used for the GIMPLE
28 1.1 mrg representation was to use the same internal data structures used
29 1.1 mrg by front ends to represent parse trees. This simplified
30 1.1 mrg implementation because we could leverage existing functionality
31 1.1 mrg and interfaces. However, GIMPLE is a much more restrictive
32 1.1 mrg representation than abstract syntax trees (AST), therefore it
33 1.1 mrg does not require the full structural complexity provided by the
34 1.1 mrg main tree data structure.
35 1.1 mrg
36 1.1 mrg The GENERIC representation of a function is stored in the
37 1.1 mrg @code{DECL_SAVED_TREE} field of the associated @code{FUNCTION_DECL}
38 1.1 mrg tree node. It is converted to GIMPLE by a call to
39 1.1 mrg @code{gimplify_function_tree}.
40 1.1 mrg
41 1.1 mrg If a front end wants to include language-specific tree codes in the tree
42 1.1 mrg representation which it provides to the back end, it must provide a
43 1.1 mrg definition of @code{LANG_HOOKS_GIMPLIFY_EXPR} which knows how to
44 1.1 mrg convert the front end trees to GIMPLE@. Usually such a hook will involve
45 1.1 mrg much of the same code for expanding front end trees to RTL@. This function
46 1.1 mrg can return fully lowered GIMPLE, or it can return GENERIC trees and let the
47 1.1 mrg main gimplifier lower them the rest of the way; this is often simpler.
48 1.1 mrg GIMPLE that is not fully lowered is known as ``High GIMPLE'' and
49 1.1 mrg consists of the IL before the pass @code{pass_lower_cf}. High GIMPLE
50 1.1 mrg contains some container statements like lexical scopes
51 1.1 mrg (represented by @code{GIMPLE_BIND}) and nested expressions (e.g.,
52 1.1 mrg @code{GIMPLE_TRY}), while ``Low GIMPLE'' exposes all of the
53 1.1 mrg implicit jumps for control and exception expressions directly in
54 1.1 mrg the IL and EH region trees.
55 1.1 mrg
56 1.1 mrg The C and C++ front ends currently convert directly from front end
57 1.1 mrg trees to GIMPLE, and hand that off to the back end rather than first
58 1.1 mrg converting to GENERIC@. Their gimplifier hooks know about all the
59 1.1 mrg @code{_STMT} nodes and how to convert them to GENERIC forms. There
60 1.1 mrg was some work done on a genericization pass which would run first, but
61 1.1 mrg the existence of @code{STMT_EXPR} meant that in order to convert all
62 1.1 mrg of the C statements into GENERIC equivalents would involve walking the
63 1.1 mrg entire tree anyway, so it was simpler to lower all the way. This
64 1.1 mrg might change in the future if someone writes an optimization pass
65 1.1 mrg which would work better with higher-level trees, but currently the
66 1.1 mrg optimizers all expect GIMPLE@.
67 1.1 mrg
68 1.1 mrg You can request to dump a C-like representation of the GIMPLE form
69 1.1 mrg with the flag @option{-fdump-tree-gimple}.
70 1.1 mrg
71 1.1 mrg @menu
72 1.1 mrg * Tuple representation::
73 1.5 mrg * Class hierarchy of GIMPLE statements::
74 1.1 mrg * GIMPLE instruction set::
75 1.1 mrg * GIMPLE Exception Handling::
76 1.1 mrg * Temporaries::
77 1.1 mrg * Operands::
78 1.1 mrg * Manipulating GIMPLE statements::
79 1.1 mrg * Tuple specific accessors::
80 1.1 mrg * GIMPLE sequences::
81 1.1 mrg * Sequence iterators::
82 1.1 mrg * Adding a new GIMPLE statement code::
83 1.1 mrg * Statement and operand traversals::
84 1.1 mrg @end menu
85 1.1 mrg
86 1.1 mrg @node Tuple representation
87 1.1 mrg @section Tuple representation
88 1.1 mrg @cindex tuples
89 1.1 mrg
90 1.1 mrg GIMPLE instructions are tuples of variable size divided in two
91 1.1 mrg groups: a header describing the instruction and its locations,
92 1.1 mrg and a variable length body with all the operands. Tuples are
93 1.1 mrg organized into a hierarchy with 3 main classes of tuples.
94 1.1 mrg
95 1.6 mrg @subsection @code{gimple} (gsbase)
96 1.6 mrg @cindex gimple
97 1.1 mrg
98 1.1 mrg This is the root of the hierarchy, it holds basic information
99 1.1 mrg needed by most GIMPLE statements. There are some fields that
100 1.1 mrg may not be relevant to every GIMPLE statement, but those were
101 1.1 mrg moved into the base structure to take advantage of holes left by
102 1.1 mrg other fields (thus making the structure more compact). The
103 1.1 mrg structure takes 4 words (32 bytes) on 64 bit hosts:
104 1.1 mrg
105 1.1 mrg @multitable {@code{references_memory_p}} {Size (bits)}
106 1.1 mrg @item Field @tab Size (bits)
107 1.1 mrg @item @code{code} @tab 8
108 1.1 mrg @item @code{subcode} @tab 16
109 1.1 mrg @item @code{no_warning} @tab 1
110 1.1 mrg @item @code{visited} @tab 1
111 1.1 mrg @item @code{nontemporal_move} @tab 1
112 1.1 mrg @item @code{plf} @tab 2
113 1.1 mrg @item @code{modified} @tab 1
114 1.1 mrg @item @code{has_volatile_ops} @tab 1
115 1.1 mrg @item @code{references_memory_p} @tab 1
116 1.1 mrg @item @code{uid} @tab 32
117 1.1 mrg @item @code{location} @tab 32
118 1.1 mrg @item @code{num_ops} @tab 32
119 1.1 mrg @item @code{bb} @tab 64
120 1.1 mrg @item @code{block} @tab 63
121 1.1 mrg @item Total size @tab 32 bytes
122 1.1 mrg @end multitable
123 1.1 mrg
124 1.1 mrg @itemize @bullet
125 1.1 mrg @item @code{code}
126 1.3 mrg Main identifier for a GIMPLE instruction.
127 1.1 mrg
128 1.1 mrg @item @code{subcode}
129 1.1 mrg Used to distinguish different variants of the same basic
130 1.1 mrg instruction or provide flags applicable to a given code. The
131 1.1 mrg @code{subcode} flags field has different uses depending on the code of
132 1.1 mrg the instruction, but mostly it distinguishes instructions of the
133 1.1 mrg same family. The most prominent use of this field is in
134 1.1 mrg assignments, where subcode indicates the operation done on the
135 1.1 mrg RHS of the assignment. For example, a = b + c is encoded as
136 1.1 mrg @code{GIMPLE_ASSIGN <PLUS_EXPR, a, b, c>}.
137 1.1 mrg
138 1.1 mrg @item @code{no_warning}
139 1.1 mrg Bitflag to indicate whether a warning has already been issued on
140 1.1 mrg this statement.
141 1.1 mrg
142 1.1 mrg @item @code{visited}
143 1.1 mrg General purpose ``visited'' marker. Set and cleared by each pass
144 1.1 mrg when needed.
145 1.1 mrg
146 1.1 mrg @item @code{nontemporal_move}
147 1.1 mrg Bitflag used in assignments that represent non-temporal moves.
148 1.1 mrg Although this bitflag is only used in assignments, it was moved
149 1.1 mrg into the base to take advantage of the bit holes left by the
150 1.1 mrg previous fields.
151 1.1 mrg
152 1.1 mrg @item @code{plf}
153 1.1 mrg Pass Local Flags. This 2-bit mask can be used as general purpose
154 1.1 mrg markers by any pass. Passes are responsible for clearing and
155 1.1 mrg setting these two flags accordingly.
156 1.1 mrg
157 1.1 mrg @item @code{modified}
158 1.1 mrg Bitflag to indicate whether the statement has been modified.
159 1.1 mrg Used mainly by the operand scanner to determine when to re-scan a
160 1.1 mrg statement for operands.
161 1.1 mrg
162 1.1 mrg @item @code{has_volatile_ops}
163 1.1 mrg Bitflag to indicate whether this statement contains operands that
164 1.1 mrg have been marked volatile.
165 1.1 mrg
166 1.1 mrg @item @code{references_memory_p}
167 1.1 mrg Bitflag to indicate whether this statement contains memory
168 1.1 mrg references (i.e., its operands are either global variables, or
169 1.1 mrg pointer dereferences or anything that must reside in memory).
170 1.1 mrg
171 1.1 mrg @item @code{uid}
172 1.1 mrg This is an unsigned integer used by passes that want to assign
173 1.1 mrg IDs to every statement. These IDs must be assigned and used by
174 1.1 mrg each pass.
175 1.1 mrg
176 1.1 mrg @item @code{location}
177 1.1 mrg This is a @code{location_t} identifier to specify source code
178 1.1 mrg location for this statement. It is inherited from the front
179 1.1 mrg end.
180 1.1 mrg
181 1.1 mrg @item @code{num_ops}
182 1.1 mrg Number of operands that this statement has. This specifies the
183 1.1 mrg size of the operand vector embedded in the tuple. Only used in
184 1.1 mrg some tuples, but it is declared in the base tuple to take
185 1.1 mrg advantage of the 32-bit hole left by the previous fields.
186 1.1 mrg
187 1.1 mrg @item @code{bb}
188 1.1 mrg Basic block holding the instruction.
189 1.3 mrg
190 1.1 mrg @item @code{block}
191 1.1 mrg Lexical block holding this statement. Also used for debug
192 1.1 mrg information generation.
193 1.1 mrg @end itemize
194 1.1 mrg
195 1.1 mrg @subsection @code{gimple_statement_with_ops}
196 1.1 mrg @cindex gimple_statement_with_ops
197 1.1 mrg
198 1.1 mrg This tuple is actually split in two:
199 1.1 mrg @code{gimple_statement_with_ops_base} and
200 1.1 mrg @code{gimple_statement_with_ops}. This is needed to accommodate the
201 1.1 mrg way the operand vector is allocated. The operand vector is
202 1.1 mrg defined to be an array of 1 element. So, to allocate a dynamic
203 1.1 mrg number of operands, the memory allocator (@code{gimple_alloc}) simply
204 1.1 mrg allocates enough memory to hold the structure itself plus @code{N
205 1.1 mrg - 1} operands which run ``off the end'' of the structure. For
206 1.1 mrg example, to allocate space for a tuple with 3 operands,
207 1.1 mrg @code{gimple_alloc} reserves @code{sizeof (struct
208 1.1 mrg gimple_statement_with_ops) + 2 * sizeof (tree)} bytes.
209 1.1 mrg
210 1.1 mrg On the other hand, several fields in this tuple need to be shared
211 1.1 mrg with the @code{gimple_statement_with_memory_ops} tuple. So, these
212 1.1 mrg common fields are placed in @code{gimple_statement_with_ops_base} which
213 1.1 mrg is then inherited from the other two tuples.
214 1.1 mrg
215 1.1 mrg
216 1.3 mrg @multitable {@code{def_ops}} {48 + 8 * @code{num_ops} bytes}
217 1.1 mrg @item @code{gsbase} @tab 256
218 1.1 mrg @item @code{def_ops} @tab 64
219 1.1 mrg @item @code{use_ops} @tab 64
220 1.1 mrg @item @code{op} @tab @code{num_ops} * 64
221 1.3 mrg @item Total size @tab 48 + 8 * @code{num_ops} bytes
222 1.1 mrg @end multitable
223 1.1 mrg
224 1.1 mrg @itemize @bullet
225 1.1 mrg @item @code{gsbase}
226 1.6 mrg Inherited from @code{struct gimple}.
227 1.1 mrg
228 1.1 mrg @item @code{def_ops}
229 1.1 mrg Array of pointers into the operand array indicating all the slots that
230 1.1 mrg contain a variable written-to by the statement. This array is
231 1.1 mrg also used for immediate use chaining. Note that it would be
232 1.1 mrg possible to not rely on this array, but the changes required to
233 1.1 mrg implement this are pretty invasive.
234 1.1 mrg
235 1.1 mrg @item @code{use_ops}
236 1.1 mrg Similar to @code{def_ops} but for variables read by the statement.
237 1.1 mrg
238 1.1 mrg @item @code{op}
239 1.1 mrg Array of trees with @code{num_ops} slots.
240 1.1 mrg @end itemize
241 1.1 mrg
242 1.1 mrg @subsection @code{gimple_statement_with_memory_ops}
243 1.1 mrg
244 1.1 mrg This tuple is essentially identical to @code{gimple_statement_with_ops},
245 1.1 mrg except that it contains 4 additional fields to hold vectors
246 1.1 mrg related memory stores and loads. Similar to the previous case,
247 1.1 mrg the structure is split in two to accommodate for the operand
248 1.1 mrg vector (@code{gimple_statement_with_memory_ops_base} and
249 1.1 mrg @code{gimple_statement_with_memory_ops}).
250 1.1 mrg
251 1.1 mrg
252 1.3 mrg @multitable {@code{vdef_ops}} {80 + 8 * @code{num_ops} bytes}
253 1.3 mrg @item Field @tab Size (bits)
254 1.3 mrg @item @code{gsbase} @tab 256
255 1.3 mrg @item @code{def_ops} @tab 64
256 1.3 mrg @item @code{use_ops} @tab 64
257 1.3 mrg @item @code{vdef_ops} @tab 64
258 1.3 mrg @item @code{vuse_ops} @tab 64
259 1.3 mrg @item @code{stores} @tab 64
260 1.3 mrg @item @code{loads} @tab 64
261 1.3 mrg @item @code{op} @tab @code{num_ops} * 64
262 1.3 mrg @item Total size @tab 80 + 8 * @code{num_ops} bytes
263 1.1 mrg @end multitable
264 1.1 mrg
265 1.1 mrg @itemize @bullet
266 1.1 mrg @item @code{vdef_ops}
267 1.1 mrg Similar to @code{def_ops} but for @code{VDEF} operators. There is
268 1.1 mrg one entry per memory symbol written by this statement. This is
269 1.1 mrg used to maintain the memory SSA use-def and def-def chains.
270 1.1 mrg
271 1.1 mrg @item @code{vuse_ops}
272 1.1 mrg Similar to @code{use_ops} but for @code{VUSE} operators. There is
273 1.1 mrg one entry per memory symbol loaded by this statement. This is
274 1.1 mrg used to maintain the memory SSA use-def chains.
275 1.1 mrg
276 1.1 mrg @item @code{stores}
277 1.1 mrg Bitset with all the UIDs for the symbols written-to by the
278 1.1 mrg statement. This is different than @code{vdef_ops} in that all the
279 1.1 mrg affected symbols are mentioned in this set. If memory
280 1.1 mrg partitioning is enabled, the @code{vdef_ops} vector will refer to memory
281 1.1 mrg partitions. Furthermore, no SSA information is stored in this
282 1.1 mrg set.
283 1.1 mrg
284 1.1 mrg @item @code{loads}
285 1.1 mrg Similar to @code{stores}, but for memory loads. (Note that there
286 1.1 mrg is some amount of redundancy here, it should be possible to
287 1.1 mrg reduce memory utilization further by removing these sets).
288 1.1 mrg @end itemize
289 1.1 mrg
290 1.1 mrg All the other tuples are defined in terms of these three basic
291 1.5 mrg ones. Each tuple will add some fields.
292 1.5 mrg
293 1.5 mrg
294 1.5 mrg @node Class hierarchy of GIMPLE statements
295 1.5 mrg @section Class hierarchy of GIMPLE statements
296 1.5 mrg @cindex GIMPLE class hierarchy
297 1.5 mrg
298 1.5 mrg The following diagram shows the C++ inheritance hierarchy of statement
299 1.5 mrg kinds, along with their relationships to @code{GSS_} values (layouts) and
300 1.5 mrg @code{GIMPLE_} values (codes):
301 1.1 mrg
302 1.1 mrg @smallexample
303 1.6 mrg gimple
304 1.5 mrg | layout: GSS_BASE
305 1.5 mrg | used for 4 codes: GIMPLE_ERROR_MARK
306 1.5 mrg | GIMPLE_NOP
307 1.5 mrg | GIMPLE_OMP_SECTIONS_SWITCH
308 1.5 mrg | GIMPLE_PREDICT
309 1.5 mrg |
310 1.5 mrg + gimple_statement_with_ops_base
311 1.5 mrg | | (no GSS layout)
312 1.5 mrg | |
313 1.5 mrg | + gimple_statement_with_ops
314 1.5 mrg | | | layout: GSS_WITH_OPS
315 1.5 mrg | | |
316 1.5 mrg | | + gcond
317 1.5 mrg | | | code: GIMPLE_COND
318 1.5 mrg | | |
319 1.5 mrg | | + gdebug
320 1.5 mrg | | | code: GIMPLE_DEBUG
321 1.5 mrg | | |
322 1.5 mrg | | + ggoto
323 1.5 mrg | | | code: GIMPLE_GOTO
324 1.5 mrg | | |
325 1.5 mrg | | + glabel
326 1.5 mrg | | | code: GIMPLE_LABEL
327 1.5 mrg | | |
328 1.5 mrg | | + gswitch
329 1.5 mrg | | code: GIMPLE_SWITCH
330 1.5 mrg | |
331 1.5 mrg | + gimple_statement_with_memory_ops_base
332 1.5 mrg | | layout: GSS_WITH_MEM_OPS_BASE
333 1.5 mrg | |
334 1.5 mrg | + gimple_statement_with_memory_ops
335 1.5 mrg | | | layout: GSS_WITH_MEM_OPS
336 1.5 mrg | | |
337 1.5 mrg | | + gassign
338 1.5 mrg | | | code GIMPLE_ASSIGN
339 1.5 mrg | | |
340 1.5 mrg | | + greturn
341 1.5 mrg | | code GIMPLE_RETURN
342 1.5 mrg | |
343 1.5 mrg | + gcall
344 1.5 mrg | | layout: GSS_CALL, code: GIMPLE_CALL
345 1.5 mrg | |
346 1.5 mrg | + gasm
347 1.5 mrg | | layout: GSS_ASM, code: GIMPLE_ASM
348 1.5 mrg | |
349 1.5 mrg | + gtransaction
350 1.5 mrg | layout: GSS_TRANSACTION, code: GIMPLE_TRANSACTION
351 1.5 mrg |
352 1.5 mrg + gimple_statement_omp
353 1.5 mrg | | layout: GSS_OMP. Used for code GIMPLE_OMP_SECTION
354 1.5 mrg | |
355 1.5 mrg | + gomp_critical
356 1.5 mrg | | layout: GSS_OMP_CRITICAL, code: GIMPLE_OMP_CRITICAL
357 1.5 mrg | |
358 1.5 mrg | + gomp_for
359 1.5 mrg | | layout: GSS_OMP_FOR, code: GIMPLE_OMP_FOR
360 1.5 mrg | |
361 1.5 mrg | + gomp_parallel_layout
362 1.5 mrg | | | layout: GSS_OMP_PARALLEL_LAYOUT
363 1.5 mrg | | |
364 1.5 mrg | | + gimple_statement_omp_taskreg
365 1.5 mrg | | | |
366 1.5 mrg | | | + gomp_parallel
367 1.5 mrg | | | | code: GIMPLE_OMP_PARALLEL
368 1.5 mrg | | | |
369 1.5 mrg | | | + gomp_task
370 1.5 mrg | | | code: GIMPLE_OMP_TASK
371 1.5 mrg | | |
372 1.5 mrg | | + gimple_statement_omp_target
373 1.5 mrg | | code: GIMPLE_OMP_TARGET
374 1.5 mrg | |
375 1.5 mrg | + gomp_sections
376 1.5 mrg | | layout: GSS_OMP_SECTIONS, code: GIMPLE_OMP_SECTIONS
377 1.5 mrg | |
378 1.5 mrg | + gimple_statement_omp_single_layout
379 1.5 mrg | | layout: GSS_OMP_SINGLE_LAYOUT
380 1.5 mrg | |
381 1.5 mrg | + gomp_single
382 1.5 mrg | | code: GIMPLE_OMP_SINGLE
383 1.5 mrg | |
384 1.5 mrg | + gomp_teams
385 1.5 mrg | code: GIMPLE_OMP_TEAMS
386 1.5 mrg |
387 1.5 mrg + gbind
388 1.5 mrg | layout: GSS_BIND, code: GIMPLE_BIND
389 1.5 mrg |
390 1.5 mrg + gcatch
391 1.5 mrg | layout: GSS_CATCH, code: GIMPLE_CATCH
392 1.5 mrg |
393 1.5 mrg + geh_filter
394 1.5 mrg | layout: GSS_EH_FILTER, code: GIMPLE_EH_FILTER
395 1.5 mrg |
396 1.5 mrg + geh_else
397 1.5 mrg | layout: GSS_EH_ELSE, code: GIMPLE_EH_ELSE
398 1.5 mrg |
399 1.5 mrg + geh_mnt
400 1.5 mrg | layout: GSS_EH_MNT, code: GIMPLE_EH_MUST_NOT_THROW
401 1.5 mrg |
402 1.5 mrg + gphi
403 1.5 mrg | layout: GSS_PHI, code: GIMPLE_PHI
404 1.5 mrg |
405 1.5 mrg + gimple_statement_eh_ctrl
406 1.5 mrg | | layout: GSS_EH_CTRL
407 1.5 mrg | |
408 1.5 mrg | + gresx
409 1.5 mrg | | code: GIMPLE_RESX
410 1.5 mrg | |
411 1.5 mrg | + geh_dispatch
412 1.5 mrg | code: GIMPLE_EH_DISPATCH
413 1.5 mrg |
414 1.5 mrg + gtry
415 1.5 mrg | layout: GSS_TRY, code: GIMPLE_TRY
416 1.5 mrg |
417 1.5 mrg + gimple_statement_wce
418 1.5 mrg | layout: GSS_WCE, code: GIMPLE_WITH_CLEANUP_EXPR
419 1.5 mrg |
420 1.5 mrg + gomp_continue
421 1.5 mrg | layout: GSS_OMP_CONTINUE, code: GIMPLE_OMP_CONTINUE
422 1.5 mrg |
423 1.5 mrg + gomp_atomic_load
424 1.5 mrg | layout: GSS_OMP_ATOMIC_LOAD, code: GIMPLE_OMP_ATOMIC_LOAD
425 1.5 mrg |
426 1.5 mrg + gimple_statement_omp_atomic_store_layout
427 1.5 mrg | layout: GSS_OMP_ATOMIC_STORE_LAYOUT,
428 1.5 mrg | code: GIMPLE_OMP_ATOMIC_STORE
429 1.5 mrg |
430 1.5 mrg + gomp_atomic_store
431 1.5 mrg | code: GIMPLE_OMP_ATOMIC_STORE
432 1.5 mrg |
433 1.5 mrg + gomp_return
434 1.5 mrg code: GIMPLE_OMP_RETURN
435 1.1 mrg @end smallexample
436 1.1 mrg
437 1.3 mrg
438 1.1 mrg @node GIMPLE instruction set
439 1.1 mrg @section GIMPLE instruction set
440 1.1 mrg @cindex GIMPLE instruction set
441 1.1 mrg
442 1.1 mrg The following table briefly describes the GIMPLE instruction set.
443 1.1 mrg
444 1.1 mrg @multitable {@code{GIMPLE_OMP_SECTIONS_SWITCH}} {High GIMPLE} {Low GIMPLE}
445 1.1 mrg @item Instruction @tab High GIMPLE @tab Low GIMPLE
446 1.1 mrg @item @code{GIMPLE_ASM} @tab x @tab x
447 1.1 mrg @item @code{GIMPLE_ASSIGN} @tab x @tab x
448 1.1 mrg @item @code{GIMPLE_BIND} @tab x @tab
449 1.1 mrg @item @code{GIMPLE_CALL} @tab x @tab x
450 1.1 mrg @item @code{GIMPLE_CATCH} @tab x @tab
451 1.1 mrg @item @code{GIMPLE_COND} @tab x @tab x
452 1.1 mrg @item @code{GIMPLE_DEBUG} @tab x @tab x
453 1.1 mrg @item @code{GIMPLE_EH_FILTER} @tab x @tab
454 1.1 mrg @item @code{GIMPLE_GOTO} @tab x @tab x
455 1.1 mrg @item @code{GIMPLE_LABEL} @tab x @tab x
456 1.1 mrg @item @code{GIMPLE_NOP} @tab x @tab x
457 1.1 mrg @item @code{GIMPLE_OMP_ATOMIC_LOAD} @tab x @tab x
458 1.1 mrg @item @code{GIMPLE_OMP_ATOMIC_STORE} @tab x @tab x
459 1.1 mrg @item @code{GIMPLE_OMP_CONTINUE} @tab x @tab x
460 1.1 mrg @item @code{GIMPLE_OMP_CRITICAL} @tab x @tab x
461 1.1 mrg @item @code{GIMPLE_OMP_FOR} @tab x @tab x
462 1.1 mrg @item @code{GIMPLE_OMP_MASTER} @tab x @tab x
463 1.1 mrg @item @code{GIMPLE_OMP_ORDERED} @tab x @tab x
464 1.1 mrg @item @code{GIMPLE_OMP_PARALLEL} @tab x @tab x
465 1.1 mrg @item @code{GIMPLE_OMP_RETURN} @tab x @tab x
466 1.1 mrg @item @code{GIMPLE_OMP_SECTION} @tab x @tab x
467 1.1 mrg @item @code{GIMPLE_OMP_SECTIONS} @tab x @tab x
468 1.1 mrg @item @code{GIMPLE_OMP_SECTIONS_SWITCH} @tab x @tab x
469 1.1 mrg @item @code{GIMPLE_OMP_SINGLE} @tab x @tab x
470 1.1 mrg @item @code{GIMPLE_PHI} @tab @tab x
471 1.1 mrg @item @code{GIMPLE_RESX} @tab @tab x
472 1.1 mrg @item @code{GIMPLE_RETURN} @tab x @tab x
473 1.1 mrg @item @code{GIMPLE_SWITCH} @tab x @tab x
474 1.1 mrg @item @code{GIMPLE_TRY} @tab x @tab
475 1.1 mrg @end multitable
476 1.1 mrg
477 1.1 mrg @node GIMPLE Exception Handling
478 1.1 mrg @section Exception Handling
479 1.1 mrg @cindex GIMPLE Exception Handling
480 1.1 mrg
481 1.1 mrg Other exception handling constructs are represented using
482 1.1 mrg @code{GIMPLE_TRY_CATCH}. @code{GIMPLE_TRY_CATCH} has two operands. The
483 1.1 mrg first operand is a sequence of statements to execute. If executing
484 1.1 mrg these statements does not throw an exception, then the second operand
485 1.1 mrg is ignored. Otherwise, if an exception is thrown, then the second
486 1.1 mrg operand of the @code{GIMPLE_TRY_CATCH} is checked. The second
487 1.1 mrg operand may have the following forms:
488 1.1 mrg
489 1.1 mrg @enumerate
490 1.1 mrg
491 1.1 mrg @item A sequence of statements to execute. When an exception occurs,
492 1.1 mrg these statements are executed, and then the exception is rethrown.
493 1.1 mrg
494 1.1 mrg @item A sequence of @code{GIMPLE_CATCH} statements. Each
495 1.1 mrg @code{GIMPLE_CATCH} has a list of applicable exception types and
496 1.1 mrg handler code. If the thrown exception matches one of the caught
497 1.1 mrg types, the associated handler code is executed. If the handler
498 1.1 mrg code falls off the bottom, execution continues after the original
499 1.1 mrg @code{GIMPLE_TRY_CATCH}.
500 1.1 mrg
501 1.1 mrg @item A @code{GIMPLE_EH_FILTER} statement. This has a list of
502 1.1 mrg permitted exception types, and code to handle a match failure. If the
503 1.1 mrg thrown exception does not match one of the allowed types, the
504 1.1 mrg associated match failure code is executed. If the thrown exception
505 1.1 mrg does match, it continues unwinding the stack looking for the next
506 1.1 mrg handler.
507 1.1 mrg
508 1.1 mrg @end enumerate
509 1.1 mrg
510 1.1 mrg Currently throwing an exception is not directly represented in
511 1.1 mrg GIMPLE, since it is implemented by calling a function. At some
512 1.1 mrg point in the future we will want to add some way to express that
513 1.1 mrg the call will throw an exception of a known type.
514 1.1 mrg
515 1.1 mrg Just before running the optimizers, the compiler lowers the
516 1.1 mrg high-level EH constructs above into a set of @samp{goto}s, magic
517 1.1 mrg labels, and EH regions. Continuing to unwind at the end of a
518 1.1 mrg cleanup is represented with a @code{GIMPLE_RESX}.
519 1.1 mrg
520 1.1 mrg
521 1.1 mrg @node Temporaries
522 1.1 mrg @section Temporaries
523 1.1 mrg @cindex Temporaries
524 1.1 mrg
525 1.1 mrg When gimplification encounters a subexpression that is too
526 1.1 mrg complex, it creates a new temporary variable to hold the value of
527 1.1 mrg the subexpression, and adds a new statement to initialize it
528 1.1 mrg before the current statement. These special temporaries are known
529 1.1 mrg as @samp{expression temporaries}, and are allocated using
530 1.1 mrg @code{get_formal_tmp_var}. The compiler tries to always evaluate
531 1.1 mrg identical expressions into the same temporary, to simplify
532 1.1 mrg elimination of redundant calculations.
533 1.1 mrg
534 1.1 mrg We can only use expression temporaries when we know that it will
535 1.1 mrg not be reevaluated before its value is used, and that it will not
536 1.1 mrg be otherwise modified@footnote{These restrictions are derived
537 1.1 mrg from those in Morgan 4.8.}. Other temporaries can be allocated
538 1.1 mrg using @code{get_initialized_tmp_var} or @code{create_tmp_var}.
539 1.1 mrg
540 1.1 mrg Currently, an expression like @code{a = b + 5} is not reduced any
541 1.1 mrg further. We tried converting it to something like
542 1.1 mrg @smallexample
543 1.3 mrg T1 = b + 5;
544 1.3 mrg a = T1;
545 1.1 mrg @end smallexample
546 1.1 mrg but this bloated the representation for minimal benefit. However, a
547 1.1 mrg variable which must live in memory cannot appear in an expression; its
548 1.1 mrg value is explicitly loaded into a temporary first. Similarly, storing
549 1.1 mrg the value of an expression to a memory variable goes through a
550 1.1 mrg temporary.
551 1.1 mrg
552 1.1 mrg @node Operands
553 1.1 mrg @section Operands
554 1.1 mrg @cindex Operands
555 1.1 mrg
556 1.1 mrg In general, expressions in GIMPLE consist of an operation and the
557 1.1 mrg appropriate number of simple operands; these operands must either be a
558 1.1 mrg GIMPLE rvalue (@code{is_gimple_val}), i.e.@: a constant or a register
559 1.1 mrg variable. More complex operands are factored out into temporaries, so
560 1.1 mrg that
561 1.1 mrg @smallexample
562 1.3 mrg a = b + c + d
563 1.1 mrg @end smallexample
564 1.1 mrg becomes
565 1.1 mrg @smallexample
566 1.3 mrg T1 = b + c;
567 1.3 mrg a = T1 + d;
568 1.1 mrg @end smallexample
569 1.1 mrg
570 1.1 mrg The same rule holds for arguments to a @code{GIMPLE_CALL}.
571 1.1 mrg
572 1.3 mrg The target of an assignment is usually a variable, but can also be a
573 1.3 mrg @code{MEM_REF} or a compound lvalue as described below.
574 1.1 mrg
575 1.1 mrg @menu
576 1.1 mrg * Compound Expressions::
577 1.1 mrg * Compound Lvalues::
578 1.1 mrg * Conditional Expressions::
579 1.1 mrg * Logical Operators::
580 1.1 mrg @end menu
581 1.1 mrg
582 1.1 mrg @node Compound Expressions
583 1.1 mrg @subsection Compound Expressions
584 1.1 mrg @cindex Compound Expressions
585 1.1 mrg
586 1.1 mrg The left-hand side of a C comma expression is simply moved into a separate
587 1.1 mrg statement.
588 1.1 mrg
589 1.1 mrg @node Compound Lvalues
590 1.1 mrg @subsection Compound Lvalues
591 1.1 mrg @cindex Compound Lvalues
592 1.1 mrg
593 1.1 mrg Currently compound lvalues involving array and structure field references
594 1.1 mrg are not broken down; an expression like @code{a.b[2] = 42} is not reduced
595 1.1 mrg any further (though complex array subscripts are). This restriction is a
596 1.1 mrg workaround for limitations in later optimizers; if we were to convert this
597 1.1 mrg to
598 1.1 mrg
599 1.1 mrg @smallexample
600 1.3 mrg T1 = &a.b;
601 1.3 mrg T1[2] = 42;
602 1.1 mrg @end smallexample
603 1.1 mrg
604 1.1 mrg alias analysis would not remember that the reference to @code{T1[2]} came
605 1.1 mrg by way of @code{a.b}, so it would think that the assignment could alias
606 1.1 mrg another member of @code{a}; this broke @code{struct-alias-1.c}. Future
607 1.1 mrg optimizer improvements may make this limitation unnecessary.
608 1.1 mrg
609 1.1 mrg @node Conditional Expressions
610 1.1 mrg @subsection Conditional Expressions
611 1.1 mrg @cindex Conditional Expressions
612 1.1 mrg
613 1.1 mrg A C @code{?:} expression is converted into an @code{if} statement with
614 1.1 mrg each branch assigning to the same temporary. So,
615 1.1 mrg
616 1.1 mrg @smallexample
617 1.3 mrg a = b ? c : d;
618 1.1 mrg @end smallexample
619 1.1 mrg becomes
620 1.1 mrg @smallexample
621 1.3 mrg if (b == 1)
622 1.3 mrg T1 = c;
623 1.3 mrg else
624 1.3 mrg T1 = d;
625 1.3 mrg a = T1;
626 1.1 mrg @end smallexample
627 1.1 mrg
628 1.1 mrg The GIMPLE level if-conversion pass re-introduces @code{?:}
629 1.1 mrg expression, if appropriate. It is used to vectorize loops with
630 1.1 mrg conditions using vector conditional operations.
631 1.1 mrg
632 1.1 mrg Note that in GIMPLE, @code{if} statements are represented using
633 1.1 mrg @code{GIMPLE_COND}, as described below.
634 1.1 mrg
635 1.1 mrg @node Logical Operators
636 1.1 mrg @subsection Logical Operators
637 1.1 mrg @cindex Logical Operators
638 1.1 mrg
639 1.1 mrg Except when they appear in the condition operand of a
640 1.1 mrg @code{GIMPLE_COND}, logical `and' and `or' operators are simplified
641 1.1 mrg as follows: @code{a = b && c} becomes
642 1.1 mrg
643 1.1 mrg @smallexample
644 1.3 mrg T1 = (bool)b;
645 1.3 mrg if (T1 == true)
646 1.3 mrg T1 = (bool)c;
647 1.3 mrg a = T1;
648 1.1 mrg @end smallexample
649 1.1 mrg
650 1.1 mrg Note that @code{T1} in this example cannot be an expression temporary,
651 1.1 mrg because it has two different assignments.
652 1.1 mrg
653 1.1 mrg @subsection Manipulating operands
654 1.1 mrg
655 1.1 mrg All gimple operands are of type @code{tree}. But only certain
656 1.1 mrg types of trees are allowed to be used as operand tuples. Basic
657 1.1 mrg validation is controlled by the function
658 1.1 mrg @code{get_gimple_rhs_class}, which given a tree code, returns an
659 1.1 mrg @code{enum} with the following values of type @code{enum
660 1.1 mrg gimple_rhs_class}
661 1.1 mrg
662 1.1 mrg @itemize @bullet
663 1.1 mrg @item @code{GIMPLE_INVALID_RHS}
664 1.1 mrg The tree cannot be used as a GIMPLE operand.
665 1.1 mrg
666 1.3 mrg @item @code{GIMPLE_TERNARY_RHS}
667 1.3 mrg The tree is a valid GIMPLE ternary operation.
668 1.3 mrg
669 1.1 mrg @item @code{GIMPLE_BINARY_RHS}
670 1.1 mrg The tree is a valid GIMPLE binary operation.
671 1.1 mrg
672 1.1 mrg @item @code{GIMPLE_UNARY_RHS}
673 1.1 mrg The tree is a valid GIMPLE unary operation.
674 1.1 mrg
675 1.1 mrg @item @code{GIMPLE_SINGLE_RHS}
676 1.1 mrg The tree is a single object, that cannot be split into simpler
677 1.1 mrg operands (for instance, @code{SSA_NAME}, @code{VAR_DECL}, @code{COMPONENT_REF}, etc).
678 1.1 mrg
679 1.1 mrg This operand class also acts as an escape hatch for tree nodes
680 1.1 mrg that may be flattened out into the operand vector, but would need
681 1.1 mrg more than two slots on the RHS. For instance, a @code{COND_EXPR}
682 1.1 mrg expression of the form @code{(a op b) ? x : y} could be flattened
683 1.1 mrg out on the operand vector using 4 slots, but it would also
684 1.1 mrg require additional processing to distinguish @code{c = a op b}
685 1.1 mrg from @code{c = a op b ? x : y}. Something similar occurs with
686 1.1 mrg @code{ASSERT_EXPR}. In time, these special case tree
687 1.1 mrg expressions should be flattened into the operand vector.
688 1.1 mrg @end itemize
689 1.1 mrg
690 1.3 mrg For tree nodes in the categories @code{GIMPLE_TERNARY_RHS},
691 1.3 mrg @code{GIMPLE_BINARY_RHS} and @code{GIMPLE_UNARY_RHS}, they cannot be
692 1.3 mrg stored inside tuples directly. They first need to be flattened and
693 1.3 mrg separated into individual components. For instance, given the GENERIC
694 1.3 mrg expression
695 1.1 mrg
696 1.1 mrg @smallexample
697 1.1 mrg a = b + c
698 1.1 mrg @end smallexample
699 1.1 mrg
700 1.1 mrg its tree representation is:
701 1.1 mrg
702 1.1 mrg @smallexample
703 1.1 mrg MODIFY_EXPR <VAR_DECL <a>, PLUS_EXPR <VAR_DECL <b>, VAR_DECL <c>>>
704 1.1 mrg @end smallexample
705 1.1 mrg
706 1.1 mrg In this case, the GIMPLE form for this statement is logically
707 1.1 mrg identical to its GENERIC form but in GIMPLE, the @code{PLUS_EXPR}
708 1.1 mrg on the RHS of the assignment is not represented as a tree,
709 1.1 mrg instead the two operands are taken out of the @code{PLUS_EXPR} sub-tree
710 1.1 mrg and flattened into the GIMPLE tuple as follows:
711 1.1 mrg
712 1.1 mrg @smallexample
713 1.1 mrg GIMPLE_ASSIGN <PLUS_EXPR, VAR_DECL <a>, VAR_DECL <b>, VAR_DECL <c>>
714 1.1 mrg @end smallexample
715 1.1 mrg
716 1.1 mrg @subsection Operand vector allocation
717 1.1 mrg
718 1.1 mrg The operand vector is stored at the bottom of the three tuple
719 1.1 mrg structures that accept operands. This means, that depending on
720 1.1 mrg the code of a given statement, its operand vector will be at
721 1.1 mrg different offsets from the base of the structure. To access
722 1.1 mrg tuple operands use the following accessors
723 1.1 mrg
724 1.1 mrg @deftypefn {GIMPLE function} unsigned gimple_num_ops (gimple g)
725 1.1 mrg Returns the number of operands in statement G.
726 1.1 mrg @end deftypefn
727 1.1 mrg
728 1.1 mrg @deftypefn {GIMPLE function} tree gimple_op (gimple g, unsigned i)
729 1.1 mrg Returns operand @code{I} from statement @code{G}.
730 1.1 mrg @end deftypefn
731 1.1 mrg
732 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_ops (gimple g)
733 1.1 mrg Returns a pointer into the operand vector for statement @code{G}. This
734 1.1 mrg is computed using an internal table called @code{gimple_ops_offset_}[].
735 1.1 mrg This table is indexed by the gimple code of @code{G}.
736 1.1 mrg
737 1.1 mrg When the compiler is built, this table is filled-in using the
738 1.1 mrg sizes of the structures used by each statement code defined in
739 1.1 mrg gimple.def. Since the operand vector is at the bottom of the
740 1.1 mrg structure, for a gimple code @code{C} the offset is computed as sizeof
741 1.1 mrg (struct-of @code{C}) - sizeof (tree).
742 1.1 mrg
743 1.1 mrg This mechanism adds one memory indirection to every access when
744 1.1 mrg using @code{gimple_op}(), if this becomes a bottleneck, a pass can
745 1.1 mrg choose to memoize the result from @code{gimple_ops}() and use that to
746 1.1 mrg access the operands.
747 1.1 mrg @end deftypefn
748 1.1 mrg
749 1.1 mrg @subsection Operand validation
750 1.1 mrg
751 1.1 mrg When adding a new operand to a gimple statement, the operand will
752 1.1 mrg be validated according to what each tuple accepts in its operand
753 1.1 mrg vector. These predicates are called by the
754 1.3 mrg @code{gimple_@var{name}_set_...()}. Each tuple will use one of the
755 1.1 mrg following predicates (Note, this list is not exhaustive):
756 1.1 mrg
757 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_val (tree t)
758 1.1 mrg Returns true if t is a "GIMPLE value", which are all the
759 1.1 mrg non-addressable stack variables (variables for which
760 1.1 mrg @code{is_gimple_reg} returns true) and constants (expressions for which
761 1.1 mrg @code{is_gimple_min_invariant} returns true).
762 1.1 mrg @end deftypefn
763 1.1 mrg
764 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_addressable (tree t)
765 1.1 mrg Returns true if t is a symbol or memory reference whose address
766 1.1 mrg can be taken.
767 1.1 mrg @end deftypefn
768 1.1 mrg
769 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_asm_val (tree t)
770 1.1 mrg Similar to @code{is_gimple_val} but it also accepts hard registers.
771 1.1 mrg @end deftypefn
772 1.1 mrg
773 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_call_addr (tree t)
774 1.1 mrg Return true if t is a valid expression to use as the function
775 1.1 mrg called by a @code{GIMPLE_CALL}.
776 1.1 mrg @end deftypefn
777 1.1 mrg
778 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_mem_ref_addr (tree t)
779 1.3 mrg Return true if t is a valid expression to use as first operand
780 1.3 mrg of a @code{MEM_REF} expression.
781 1.3 mrg @end deftypefn
782 1.3 mrg
783 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_constant (tree t)
784 1.1 mrg Return true if t is a valid gimple constant.
785 1.1 mrg @end deftypefn
786 1.1 mrg
787 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_min_invariant (tree t)
788 1.1 mrg Return true if t is a valid minimal invariant. This is different
789 1.1 mrg from constants, in that the specific value of t may not be known
790 1.1 mrg at compile time, but it is known that it doesn't change (e.g.,
791 1.1 mrg the address of a function local variable).
792 1.1 mrg @end deftypefn
793 1.1 mrg
794 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_ip_invariant (tree t)
795 1.1 mrg Return true if t is an interprocedural invariant. This means that t
796 1.1 mrg is a valid invariant in all functions (e.g. it can be an address of a
797 1.1 mrg global variable but not of a local one).
798 1.1 mrg @end deftypefn
799 1.1 mrg
800 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_ip_invariant_address (tree t)
801 1.1 mrg Return true if t is an @code{ADDR_EXPR} that does not change once the
802 1.1 mrg program is running (and which is valid in all functions).
803 1.1 mrg @end deftypefn
804 1.1 mrg
805 1.1 mrg
806 1.1 mrg @subsection Statement validation
807 1.1 mrg
808 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_assign (gimple g)
809 1.1 mrg Return true if the code of g is @code{GIMPLE_ASSIGN}.
810 1.1 mrg @end deftypefn
811 1.3 mrg
812 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_call (gimple g)
813 1.1 mrg Return true if the code of g is @code{GIMPLE_CALL}.
814 1.1 mrg @end deftypefn
815 1.3 mrg
816 1.3 mrg @deftypefn {GIMPLE function} bool is_gimple_debug (gimple g)
817 1.1 mrg Return true if the code of g is @code{GIMPLE_DEBUG}.
818 1.1 mrg @end deftypefn
819 1.1 mrg
820 1.5 mrg @deftypefn {GIMPLE function} bool gimple_assign_cast_p (const_gimple g)
821 1.1 mrg Return true if g is a @code{GIMPLE_ASSIGN} that performs a type cast
822 1.1 mrg operation.
823 1.1 mrg @end deftypefn
824 1.1 mrg
825 1.3 mrg @deftypefn {GIMPLE function} bool gimple_debug_bind_p (gimple g)
826 1.1 mrg Return true if g is a @code{GIMPLE_DEBUG} that binds the value of an
827 1.1 mrg expression to a variable.
828 1.1 mrg @end deftypefn
829 1.1 mrg
830 1.5 mrg @deftypefn {GIMPLE function} bool is_gimple_omp (gimple g)
831 1.5 mrg Return true if g is any of the OpenMP codes.
832 1.5 mrg @end deftypefn
833 1.5 mrg
834 1.1 mrg @node Manipulating GIMPLE statements
835 1.1 mrg @section Manipulating GIMPLE statements
836 1.1 mrg @cindex Manipulating GIMPLE statements
837 1.1 mrg
838 1.1 mrg This section documents all the functions available to handle each
839 1.1 mrg of the GIMPLE instructions.
840 1.1 mrg
841 1.3 mrg @subsection Common accessors
842 1.1 mrg The following are common accessors for gimple statements.
843 1.1 mrg
844 1.3 mrg @deftypefn {GIMPLE function} {enum gimple_code} gimple_code (gimple g)
845 1.1 mrg Return the code for statement @code{G}.
846 1.1 mrg @end deftypefn
847 1.3 mrg
848 1.1 mrg @deftypefn {GIMPLE function} basic_block gimple_bb (gimple g)
849 1.1 mrg Return the basic block to which statement @code{G} belongs to.
850 1.1 mrg @end deftypefn
851 1.3 mrg
852 1.1 mrg @deftypefn {GIMPLE function} tree gimple_block (gimple g)
853 1.1 mrg Return the lexical scope block holding statement @code{G}.
854 1.1 mrg @end deftypefn
855 1.3 mrg
856 1.1 mrg @deftypefn {GIMPLE function} tree gimple_expr_type (gimple stmt)
857 1.1 mrg Return the type of the main expression computed by @code{STMT}. Return
858 1.1 mrg @code{void_type_node} if @code{STMT} computes nothing. This will only return
859 1.1 mrg something meaningful for @code{GIMPLE_ASSIGN}, @code{GIMPLE_COND} and
860 1.1 mrg @code{GIMPLE_CALL}. For all other tuple codes, it will return
861 1.1 mrg @code{void_type_node}.
862 1.1 mrg @end deftypefn
863 1.1 mrg
864 1.3 mrg @deftypefn {GIMPLE function} {enum tree_code} gimple_expr_code (gimple stmt)
865 1.1 mrg Return the tree code for the expression computed by @code{STMT}. This
866 1.1 mrg is only meaningful for @code{GIMPLE_CALL}, @code{GIMPLE_ASSIGN} and
867 1.1 mrg @code{GIMPLE_COND}. If @code{STMT} is @code{GIMPLE_CALL}, it will return @code{CALL_EXPR}.
868 1.1 mrg For @code{GIMPLE_COND}, it returns the code of the comparison predicate.
869 1.1 mrg For @code{GIMPLE_ASSIGN} it returns the code of the operation performed
870 1.1 mrg by the @code{RHS} of the assignment.
871 1.1 mrg @end deftypefn
872 1.1 mrg
873 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_block (gimple g, tree block)
874 1.1 mrg Set the lexical scope block of @code{G} to @code{BLOCK}.
875 1.1 mrg @end deftypefn
876 1.3 mrg
877 1.1 mrg @deftypefn {GIMPLE function} location_t gimple_locus (gimple g)
878 1.1 mrg Return locus information for statement @code{G}.
879 1.1 mrg @end deftypefn
880 1.3 mrg
881 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_locus (gimple g, location_t locus)
882 1.1 mrg Set locus information for statement @code{G}.
883 1.1 mrg @end deftypefn
884 1.3 mrg
885 1.1 mrg @deftypefn {GIMPLE function} bool gimple_locus_empty_p (gimple g)
886 1.1 mrg Return true if @code{G} does not have locus information.
887 1.1 mrg @end deftypefn
888 1.3 mrg
889 1.1 mrg @deftypefn {GIMPLE function} bool gimple_no_warning_p (gimple stmt)
890 1.1 mrg Return true if no warnings should be emitted for statement @code{STMT}.
891 1.1 mrg @end deftypefn
892 1.3 mrg
893 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_visited (gimple stmt, bool visited_p)
894 1.1 mrg Set the visited status on statement @code{STMT} to @code{VISITED_P}.
895 1.1 mrg @end deftypefn
896 1.3 mrg
897 1.1 mrg @deftypefn {GIMPLE function} bool gimple_visited_p (gimple stmt)
898 1.1 mrg Return the visited status on statement @code{STMT}.
899 1.1 mrg @end deftypefn
900 1.3 mrg
901 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_plf (gimple stmt, enum plf_mask plf, bool val_p)
902 1.1 mrg Set pass local flag @code{PLF} on statement @code{STMT} to @code{VAL_P}.
903 1.1 mrg @end deftypefn
904 1.3 mrg
905 1.3 mrg @deftypefn {GIMPLE function} {unsigned int} gimple_plf (gimple stmt, enum plf_mask plf)
906 1.1 mrg Return the value of pass local flag @code{PLF} on statement @code{STMT}.
907 1.1 mrg @end deftypefn
908 1.3 mrg
909 1.1 mrg @deftypefn {GIMPLE function} bool gimple_has_ops (gimple g)
910 1.1 mrg Return true if statement @code{G} has register or memory operands.
911 1.1 mrg @end deftypefn
912 1.3 mrg
913 1.1 mrg @deftypefn {GIMPLE function} bool gimple_has_mem_ops (gimple g)
914 1.1 mrg Return true if statement @code{G} has memory operands.
915 1.1 mrg @end deftypefn
916 1.3 mrg
917 1.1 mrg @deftypefn {GIMPLE function} unsigned gimple_num_ops (gimple g)
918 1.1 mrg Return the number of operands for statement @code{G}.
919 1.1 mrg @end deftypefn
920 1.3 mrg
921 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_ops (gimple g)
922 1.1 mrg Return the array of operands for statement @code{G}.
923 1.1 mrg @end deftypefn
924 1.3 mrg
925 1.1 mrg @deftypefn {GIMPLE function} tree gimple_op (gimple g, unsigned i)
926 1.1 mrg Return operand @code{I} for statement @code{G}.
927 1.1 mrg @end deftypefn
928 1.3 mrg
929 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_op_ptr (gimple g, unsigned i)
930 1.1 mrg Return a pointer to operand @code{I} for statement @code{G}.
931 1.1 mrg @end deftypefn
932 1.3 mrg
933 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_op (gimple g, unsigned i, tree op)
934 1.1 mrg Set operand @code{I} of statement @code{G} to @code{OP}.
935 1.1 mrg @end deftypefn
936 1.3 mrg
937 1.1 mrg @deftypefn {GIMPLE function} bitmap gimple_addresses_taken (gimple stmt)
938 1.1 mrg Return the set of symbols that have had their address taken by
939 1.1 mrg @code{STMT}.
940 1.1 mrg @end deftypefn
941 1.3 mrg
942 1.3 mrg @deftypefn {GIMPLE function} {struct def_optype_d *} gimple_def_ops (gimple g)
943 1.1 mrg Return the set of @code{DEF} operands for statement @code{G}.
944 1.1 mrg @end deftypefn
945 1.3 mrg
946 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_def_ops (gimple g, struct def_optype_d *def)
947 1.1 mrg Set @code{DEF} to be the set of @code{DEF} operands for statement @code{G}.
948 1.1 mrg @end deftypefn
949 1.3 mrg
950 1.3 mrg @deftypefn {GIMPLE function} {struct use_optype_d *} gimple_use_ops (gimple g)
951 1.1 mrg Return the set of @code{USE} operands for statement @code{G}.
952 1.1 mrg @end deftypefn
953 1.3 mrg
954 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_use_ops (gimple g, struct use_optype_d *use)
955 1.1 mrg Set @code{USE} to be the set of @code{USE} operands for statement @code{G}.
956 1.1 mrg @end deftypefn
957 1.3 mrg
958 1.3 mrg @deftypefn {GIMPLE function} {struct voptype_d *} gimple_vuse_ops (gimple g)
959 1.1 mrg Return the set of @code{VUSE} operands for statement @code{G}.
960 1.1 mrg @end deftypefn
961 1.3 mrg
962 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_vuse_ops (gimple g, struct voptype_d *ops)
963 1.1 mrg Set @code{OPS} to be the set of @code{VUSE} operands for statement @code{G}.
964 1.1 mrg @end deftypefn
965 1.3 mrg
966 1.3 mrg @deftypefn {GIMPLE function} {struct voptype_d *} gimple_vdef_ops (gimple g)
967 1.1 mrg Return the set of @code{VDEF} operands for statement @code{G}.
968 1.1 mrg @end deftypefn
969 1.3 mrg
970 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_vdef_ops (gimple g, struct voptype_d *ops)
971 1.1 mrg Set @code{OPS} to be the set of @code{VDEF} operands for statement @code{G}.
972 1.1 mrg @end deftypefn
973 1.3 mrg
974 1.1 mrg @deftypefn {GIMPLE function} bitmap gimple_loaded_syms (gimple g)
975 1.1 mrg Return the set of symbols loaded by statement @code{G}. Each element of
976 1.1 mrg the set is the @code{DECL_UID} of the corresponding symbol.
977 1.1 mrg @end deftypefn
978 1.3 mrg
979 1.1 mrg @deftypefn {GIMPLE function} bitmap gimple_stored_syms (gimple g)
980 1.1 mrg Return the set of symbols stored by statement @code{G}. Each element of
981 1.1 mrg the set is the @code{DECL_UID} of the corresponding symbol.
982 1.1 mrg @end deftypefn
983 1.3 mrg
984 1.1 mrg @deftypefn {GIMPLE function} bool gimple_modified_p (gimple g)
985 1.1 mrg Return true if statement @code{G} has operands and the modified field
986 1.1 mrg has been set.
987 1.1 mrg @end deftypefn
988 1.3 mrg
989 1.1 mrg @deftypefn {GIMPLE function} bool gimple_has_volatile_ops (gimple stmt)
990 1.1 mrg Return true if statement @code{STMT} contains volatile operands.
991 1.1 mrg @end deftypefn
992 1.3 mrg
993 1.1 mrg @deftypefn {GIMPLE function} void gimple_set_has_volatile_ops (gimple stmt, bool volatilep)
994 1.1 mrg Return true if statement @code{STMT} contains volatile operands.
995 1.1 mrg @end deftypefn
996 1.3 mrg
997 1.1 mrg @deftypefn {GIMPLE function} void update_stmt (gimple s)
998 1.1 mrg Mark statement @code{S} as modified, and update it.
999 1.1 mrg @end deftypefn
1000 1.3 mrg
1001 1.1 mrg @deftypefn {GIMPLE function} void update_stmt_if_modified (gimple s)
1002 1.1 mrg Update statement @code{S} if it has been marked modified.
1003 1.1 mrg @end deftypefn
1004 1.3 mrg
1005 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_copy (gimple stmt)
1006 1.1 mrg Return a deep copy of statement @code{STMT}.
1007 1.1 mrg @end deftypefn
1008 1.1 mrg
1009 1.1 mrg @node Tuple specific accessors
1010 1.1 mrg @section Tuple specific accessors
1011 1.1 mrg @cindex Tuple specific accessors
1012 1.1 mrg
1013 1.1 mrg @menu
1014 1.1 mrg * @code{GIMPLE_ASM}::
1015 1.1 mrg * @code{GIMPLE_ASSIGN}::
1016 1.1 mrg * @code{GIMPLE_BIND}::
1017 1.1 mrg * @code{GIMPLE_CALL}::
1018 1.1 mrg * @code{GIMPLE_CATCH}::
1019 1.1 mrg * @code{GIMPLE_COND}::
1020 1.1 mrg * @code{GIMPLE_DEBUG}::
1021 1.1 mrg * @code{GIMPLE_EH_FILTER}::
1022 1.1 mrg * @code{GIMPLE_LABEL}::
1023 1.5 mrg * @code{GIMPLE_GOTO}::
1024 1.1 mrg * @code{GIMPLE_NOP}::
1025 1.1 mrg * @code{GIMPLE_OMP_ATOMIC_LOAD}::
1026 1.1 mrg * @code{GIMPLE_OMP_ATOMIC_STORE}::
1027 1.1 mrg * @code{GIMPLE_OMP_CONTINUE}::
1028 1.1 mrg * @code{GIMPLE_OMP_CRITICAL}::
1029 1.1 mrg * @code{GIMPLE_OMP_FOR}::
1030 1.1 mrg * @code{GIMPLE_OMP_MASTER}::
1031 1.1 mrg * @code{GIMPLE_OMP_ORDERED}::
1032 1.1 mrg * @code{GIMPLE_OMP_PARALLEL}::
1033 1.1 mrg * @code{GIMPLE_OMP_RETURN}::
1034 1.1 mrg * @code{GIMPLE_OMP_SECTION}::
1035 1.1 mrg * @code{GIMPLE_OMP_SECTIONS}::
1036 1.1 mrg * @code{GIMPLE_OMP_SINGLE}::
1037 1.1 mrg * @code{GIMPLE_PHI}::
1038 1.1 mrg * @code{GIMPLE_RESX}::
1039 1.1 mrg * @code{GIMPLE_RETURN}::
1040 1.1 mrg * @code{GIMPLE_SWITCH}::
1041 1.1 mrg * @code{GIMPLE_TRY}::
1042 1.1 mrg * @code{GIMPLE_WITH_CLEANUP_EXPR}::
1043 1.1 mrg @end menu
1044 1.1 mrg
1045 1.1 mrg
1046 1.1 mrg @node @code{GIMPLE_ASM}
1047 1.1 mrg @subsection @code{GIMPLE_ASM}
1048 1.1 mrg @cindex @code{GIMPLE_ASM}
1049 1.1 mrg
1050 1.5 mrg @deftypefn {GIMPLE function} gasm *gimple_build_asm_vec ( @
1051 1.5 mrg const char *string, vec<tree, va_gc> *inputs, @
1052 1.5 mrg vec<tree, va_gc> *outputs, vec<tree, va_gc> *clobbers, @
1053 1.5 mrg vec<tree, va_gc> *labels)
1054 1.1 mrg Build a @code{GIMPLE_ASM} statement. This statement is used for
1055 1.1 mrg building in-line assembly constructs. @code{STRING} is the assembly
1056 1.5 mrg code. @code{INPUTS}, @code{OUTPUTS}, @code{CLOBBERS} and @code{LABELS}
1057 1.5 mrg are the inputs, outputs, clobbered registers and labels.
1058 1.1 mrg @end deftypefn
1059 1.1 mrg
1060 1.5 mrg @deftypefn {GIMPLE function} unsigned gimple_asm_ninputs (const gasm *g)
1061 1.3 mrg Return the number of input operands for @code{GIMPLE_ASM} @code{G}.
1062 1.1 mrg @end deftypefn
1063 1.1 mrg
1064 1.5 mrg @deftypefn {GIMPLE function} unsigned gimple_asm_noutputs (const gasm *g)
1065 1.3 mrg Return the number of output operands for @code{GIMPLE_ASM} @code{G}.
1066 1.1 mrg @end deftypefn
1067 1.1 mrg
1068 1.5 mrg @deftypefn {GIMPLE function} unsigned gimple_asm_nclobbers (const gasm *g)
1069 1.3 mrg Return the number of clobber operands for @code{GIMPLE_ASM} @code{G}.
1070 1.1 mrg @end deftypefn
1071 1.1 mrg
1072 1.5 mrg @deftypefn {GIMPLE function} tree gimple_asm_input_op (const gasm *g, @
1073 1.5 mrg unsigned index)
1074 1.3 mrg Return input operand @code{INDEX} of @code{GIMPLE_ASM} @code{G}.
1075 1.1 mrg @end deftypefn
1076 1.1 mrg
1077 1.5 mrg @deftypefn {GIMPLE function} void gimple_asm_set_input_op (gasm *g, @
1078 1.5 mrg unsigned index, tree in_op)
1079 1.3 mrg Set @code{IN_OP} to be input operand @code{INDEX} in @code{GIMPLE_ASM} @code{G}.
1080 1.1 mrg @end deftypefn
1081 1.1 mrg
1082 1.5 mrg @deftypefn {GIMPLE function} tree gimple_asm_output_op (const gasm *g, @
1083 1.5 mrg unsigned index)
1084 1.3 mrg Return output operand @code{INDEX} of @code{GIMPLE_ASM} @code{G}.
1085 1.1 mrg @end deftypefn
1086 1.1 mrg
1087 1.5 mrg @deftypefn {GIMPLE function} void gimple_asm_set_output_op (gasm *g, @
1088 1.1 mrg unsigned index, tree out_op)
1089 1.3 mrg Set @code{OUT_OP} to be output operand @code{INDEX} in @code{GIMPLE_ASM} @code{G}.
1090 1.1 mrg @end deftypefn
1091 1.1 mrg
1092 1.5 mrg @deftypefn {GIMPLE function} tree gimple_asm_clobber_op (const gasm *g, @
1093 1.5 mrg unsigned index)
1094 1.3 mrg Return clobber operand @code{INDEX} of @code{GIMPLE_ASM} @code{G}.
1095 1.1 mrg @end deftypefn
1096 1.1 mrg
1097 1.5 mrg @deftypefn {GIMPLE function} void gimple_asm_set_clobber_op (gasm *g, @
1098 1.5 mrg unsigned index, tree clobber_op)
1099 1.3 mrg Set @code{CLOBBER_OP} to be clobber operand @code{INDEX} in @code{GIMPLE_ASM} @code{G}.
1100 1.1 mrg @end deftypefn
1101 1.1 mrg
1102 1.5 mrg @deftypefn {GIMPLE function} {const char *} gimple_asm_string (const gasm *g)
1103 1.1 mrg Return the string representing the assembly instruction in
1104 1.3 mrg @code{GIMPLE_ASM} @code{G}.
1105 1.1 mrg @end deftypefn
1106 1.1 mrg
1107 1.5 mrg @deftypefn {GIMPLE function} bool gimple_asm_volatile_p (const gasm *g)
1108 1.3 mrg Return true if @code{G} is an asm statement marked volatile.
1109 1.1 mrg @end deftypefn
1110 1.1 mrg
1111 1.5 mrg @deftypefn {GIMPLE function} void gimple_asm_set_volatile (gasm *g, @
1112 1.5 mrg bool volatile_p)
1113 1.5 mrg Mark asm statement @code{G} as volatile or non-volatile based on
1114 1.5 mrg @code{VOLATILE_P}.
1115 1.1 mrg @end deftypefn
1116 1.1 mrg
1117 1.1 mrg @node @code{GIMPLE_ASSIGN}
1118 1.1 mrg @subsection @code{GIMPLE_ASSIGN}
1119 1.1 mrg @cindex @code{GIMPLE_ASSIGN}
1120 1.1 mrg
1121 1.5 mrg @deftypefn {GIMPLE function} gassign *gimple_build_assign (tree lhs, tree rhs)
1122 1.1 mrg Build a @code{GIMPLE_ASSIGN} statement. The left-hand side is an lvalue
1123 1.1 mrg passed in lhs. The right-hand side can be either a unary or
1124 1.1 mrg binary tree expression. The expression tree rhs will be
1125 1.1 mrg flattened and its operands assigned to the corresponding operand
1126 1.1 mrg slots in the new statement. This function is useful when you
1127 1.1 mrg already have a tree expression that you want to convert into a
1128 1.1 mrg tuple. However, try to avoid building expression trees for the
1129 1.1 mrg sole purpose of calling this function. If you already have the
1130 1.1 mrg operands in separate trees, it is better to use
1131 1.5 mrg @code{gimple_build_assign} with @code{enum tree_code} argument and separate
1132 1.5 mrg arguments for each operand.
1133 1.1 mrg @end deftypefn
1134 1.1 mrg
1135 1.5 mrg @deftypefn {GIMPLE function} gassign *gimple_build_assign @
1136 1.5 mrg (tree lhs, enum tree_code subcode, tree op1, tree op2, tree op3)
1137 1.5 mrg This function is similar to two operand @code{gimple_build_assign},
1138 1.5 mrg but is used to build a @code{GIMPLE_ASSIGN} statement when the operands of the
1139 1.5 mrg right-hand side of the assignment are already split into
1140 1.5 mrg different operands.
1141 1.5 mrg
1142 1.5 mrg The left-hand side is an lvalue passed in lhs. Subcode is the
1143 1.5 mrg @code{tree_code} for the right-hand side of the assignment. Op1, op2 and op3
1144 1.5 mrg are the operands.
1145 1.5 mrg @end deftypefn
1146 1.5 mrg
1147 1.5 mrg @deftypefn {GIMPLE function} gassign *gimple_build_assign @
1148 1.5 mrg (tree lhs, enum tree_code subcode, tree op1, tree op2)
1149 1.5 mrg Like the above 5 operand @code{gimple_build_assign}, but with the last
1150 1.5 mrg argument @code{NULL} - this overload should not be used for
1151 1.5 mrg @code{GIMPLE_TERNARY_RHS} assignments.
1152 1.5 mrg @end deftypefn
1153 1.5 mrg
1154 1.5 mrg @deftypefn {GIMPLE function} gassign *gimple_build_assign @
1155 1.5 mrg (tree lhs, enum tree_code subcode, tree op1)
1156 1.5 mrg Like the above 4 operand @code{gimple_build_assign}, but with the last
1157 1.5 mrg argument @code{NULL} - this overload should be used only for
1158 1.5 mrg @code{GIMPLE_UNARY_RHS} and @code{GIMPLE_SINGLE_RHS} assignments.
1159 1.5 mrg @end deftypefn
1160 1.1 mrg
1161 1.1 mrg @deftypefn {GIMPLE function} gimple gimplify_assign (tree dst, tree src, gimple_seq *seq_p)
1162 1.1 mrg Build a new @code{GIMPLE_ASSIGN} tuple and append it to the end of
1163 1.1 mrg @code{*SEQ_P}.
1164 1.1 mrg @end deftypefn
1165 1.1 mrg
1166 1.1 mrg @code{DST}/@code{SRC} are the destination and source respectively. You can
1167 1.1 mrg pass ungimplified trees in @code{DST} or @code{SRC}, in which
1168 1.1 mrg case they will be converted to a gimple operand if necessary.
1169 1.1 mrg
1170 1.1 mrg This function returns the newly created @code{GIMPLE_ASSIGN} tuple.
1171 1.1 mrg
1172 1.3 mrg @deftypefn {GIMPLE function} {enum tree_code} gimple_assign_rhs_code (gimple g)
1173 1.1 mrg Return the code of the expression computed on the @code{RHS} of
1174 1.1 mrg assignment statement @code{G}.
1175 1.1 mrg @end deftypefn
1176 1.1 mrg
1177 1.3 mrg
1178 1.3 mrg @deftypefn {GIMPLE function} {enum gimple_rhs_class} gimple_assign_rhs_class (gimple g)
1179 1.1 mrg Return the gimple rhs class of the code for the expression
1180 1.1 mrg computed on the rhs of assignment statement @code{G}. This will never
1181 1.1 mrg return @code{GIMPLE_INVALID_RHS}.
1182 1.1 mrg @end deftypefn
1183 1.1 mrg
1184 1.1 mrg @deftypefn {GIMPLE function} tree gimple_assign_lhs (gimple g)
1185 1.1 mrg Return the @code{LHS} of assignment statement @code{G}.
1186 1.1 mrg @end deftypefn
1187 1.3 mrg
1188 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_assign_lhs_ptr (gimple g)
1189 1.1 mrg Return a pointer to the @code{LHS} of assignment statement @code{G}.
1190 1.1 mrg @end deftypefn
1191 1.3 mrg
1192 1.1 mrg @deftypefn {GIMPLE function} tree gimple_assign_rhs1 (gimple g)
1193 1.1 mrg Return the first operand on the @code{RHS} of assignment statement @code{G}.
1194 1.1 mrg @end deftypefn
1195 1.3 mrg
1196 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_assign_rhs1_ptr (gimple g)
1197 1.1 mrg Return the address of the first operand on the @code{RHS} of assignment
1198 1.1 mrg statement @code{G}.
1199 1.1 mrg @end deftypefn
1200 1.3 mrg
1201 1.1 mrg @deftypefn {GIMPLE function} tree gimple_assign_rhs2 (gimple g)
1202 1.1 mrg Return the second operand on the @code{RHS} of assignment statement @code{G}.
1203 1.1 mrg @end deftypefn
1204 1.3 mrg
1205 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_assign_rhs2_ptr (gimple g)
1206 1.1 mrg Return the address of the second operand on the @code{RHS} of assignment
1207 1.1 mrg statement @code{G}.
1208 1.1 mrg @end deftypefn
1209 1.3 mrg
1210 1.3 mrg @deftypefn {GIMPLE function} tree gimple_assign_rhs3 (gimple g)
1211 1.3 mrg Return the third operand on the @code{RHS} of assignment statement @code{G}.
1212 1.3 mrg @end deftypefn
1213 1.3 mrg
1214 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_assign_rhs3_ptr (gimple g)
1215 1.3 mrg Return the address of the third operand on the @code{RHS} of assignment
1216 1.3 mrg statement @code{G}.
1217 1.3 mrg @end deftypefn
1218 1.3 mrg
1219 1.1 mrg @deftypefn {GIMPLE function} void gimple_assign_set_lhs (gimple g, tree lhs)
1220 1.1 mrg Set @code{LHS} to be the @code{LHS} operand of assignment statement @code{G}.
1221 1.1 mrg @end deftypefn
1222 1.3 mrg
1223 1.1 mrg @deftypefn {GIMPLE function} void gimple_assign_set_rhs1 (gimple g, tree rhs)
1224 1.1 mrg Set @code{RHS} to be the first operand on the @code{RHS} of assignment
1225 1.1 mrg statement @code{G}.
1226 1.1 mrg @end deftypefn
1227 1.3 mrg
1228 1.3 mrg @deftypefn {GIMPLE function} void gimple_assign_set_rhs2 (gimple g, tree rhs)
1229 1.3 mrg Set @code{RHS} to be the second operand on the @code{RHS} of assignment
1230 1.1 mrg statement @code{G}.
1231 1.1 mrg @end deftypefn
1232 1.3 mrg
1233 1.3 mrg @deftypefn {GIMPLE function} void gimple_assign_set_rhs3 (gimple g, tree rhs)
1234 1.3 mrg Set @code{RHS} to be the third operand on the @code{RHS} of assignment
1235 1.1 mrg statement @code{G}.
1236 1.1 mrg @end deftypefn
1237 1.3 mrg
1238 1.5 mrg @deftypefn {GIMPLE function} bool gimple_assign_cast_p (const_gimple s)
1239 1.1 mrg Return true if @code{S} is a type-cast assignment.
1240 1.1 mrg @end deftypefn
1241 1.1 mrg
1242 1.1 mrg
1243 1.1 mrg @node @code{GIMPLE_BIND}
1244 1.1 mrg @subsection @code{GIMPLE_BIND}
1245 1.1 mrg @cindex @code{GIMPLE_BIND}
1246 1.1 mrg
1247 1.5 mrg @deftypefn {GIMPLE function} gbind *gimple_build_bind (tree vars, @
1248 1.5 mrg gimple_seq body)
1249 1.1 mrg Build a @code{GIMPLE_BIND} statement with a list of variables in @code{VARS}
1250 1.1 mrg and a body of statements in sequence @code{BODY}.
1251 1.1 mrg @end deftypefn
1252 1.1 mrg
1253 1.5 mrg @deftypefn {GIMPLE function} tree gimple_bind_vars (const gbind *g)
1254 1.3 mrg Return the variables declared in the @code{GIMPLE_BIND} statement @code{G}.
1255 1.1 mrg @end deftypefn
1256 1.1 mrg
1257 1.5 mrg @deftypefn {GIMPLE function} void gimple_bind_set_vars (gbind *g, tree vars)
1258 1.1 mrg Set @code{VARS} to be the set of variables declared in the @code{GIMPLE_BIND}
1259 1.3 mrg statement @code{G}.
1260 1.1 mrg @end deftypefn
1261 1.1 mrg
1262 1.5 mrg @deftypefn {GIMPLE function} void gimple_bind_append_vars (gbind *g, tree vars)
1263 1.1 mrg Append @code{VARS} to the set of variables declared in the @code{GIMPLE_BIND}
1264 1.1 mrg statement @code{G}.
1265 1.1 mrg @end deftypefn
1266 1.1 mrg
1267 1.5 mrg @deftypefn {GIMPLE function} gimple_seq gimple_bind_body (gbind *g)
1268 1.1 mrg Return the GIMPLE sequence contained in the @code{GIMPLE_BIND} statement
1269 1.3 mrg @code{G}.
1270 1.1 mrg @end deftypefn
1271 1.1 mrg
1272 1.5 mrg @deftypefn {GIMPLE function} void gimple_bind_set_body (gbind *g, @
1273 1.5 mrg gimple_seq seq)
1274 1.1 mrg Set @code{SEQ} to be sequence contained in the @code{GIMPLE_BIND} statement @code{G}.
1275 1.1 mrg @end deftypefn
1276 1.1 mrg
1277 1.5 mrg @deftypefn {GIMPLE function} void gimple_bind_add_stmt (gbind *gs, gimple stmt)
1278 1.3 mrg Append a statement to the end of a @code{GIMPLE_BIND}'s body.
1279 1.1 mrg @end deftypefn
1280 1.1 mrg
1281 1.5 mrg @deftypefn {GIMPLE function} void gimple_bind_add_seq (gbind *gs, @
1282 1.5 mrg gimple_seq seq)
1283 1.1 mrg Append a sequence of statements to the end of a @code{GIMPLE_BIND}'s
1284 1.1 mrg body.
1285 1.1 mrg @end deftypefn
1286 1.1 mrg
1287 1.5 mrg @deftypefn {GIMPLE function} tree gimple_bind_block (const gbind *g)
1288 1.1 mrg Return the @code{TREE_BLOCK} node associated with @code{GIMPLE_BIND} statement
1289 1.3 mrg @code{G}. This is analogous to the @code{BIND_EXPR_BLOCK} field in trees.
1290 1.1 mrg @end deftypefn
1291 1.1 mrg
1292 1.5 mrg @deftypefn {GIMPLE function} void gimple_bind_set_block (gbind *g, tree block)
1293 1.1 mrg Set @code{BLOCK} to be the @code{TREE_BLOCK} node associated with @code{GIMPLE_BIND}
1294 1.3 mrg statement @code{G}.
1295 1.1 mrg @end deftypefn
1296 1.1 mrg
1297 1.1 mrg
1298 1.1 mrg @node @code{GIMPLE_CALL}
1299 1.1 mrg @subsection @code{GIMPLE_CALL}
1300 1.1 mrg @cindex @code{GIMPLE_CALL}
1301 1.1 mrg
1302 1.5 mrg @deftypefn {GIMPLE function} gcall *gimple_build_call (tree fn, @
1303 1.5 mrg unsigned nargs, ...)
1304 1.1 mrg Build a @code{GIMPLE_CALL} statement to function @code{FN}. The argument @code{FN}
1305 1.1 mrg must be either a @code{FUNCTION_DECL} or a gimple call address as
1306 1.1 mrg determined by @code{is_gimple_call_addr}. @code{NARGS} are the number of
1307 1.1 mrg arguments. The rest of the arguments follow the argument @code{NARGS},
1308 1.1 mrg and must be trees that are valid as rvalues in gimple (i.e., each
1309 1.1 mrg operand is validated with @code{is_gimple_operand}).
1310 1.1 mrg @end deftypefn
1311 1.1 mrg
1312 1.1 mrg
1313 1.5 mrg @deftypefn {GIMPLE function} gcall *gimple_build_call_from_tree (tree call_expr)
1314 1.1 mrg Build a @code{GIMPLE_CALL} from a @code{CALL_EXPR} node. The arguments and the
1315 1.1 mrg function are taken from the expression directly. This routine
1316 1.1 mrg assumes that @code{call_expr} is already in GIMPLE form. That is, its
1317 1.1 mrg operands are GIMPLE values and the function call needs no further
1318 1.1 mrg simplification. All the call flags in @code{call_expr} are copied over
1319 1.1 mrg to the new @code{GIMPLE_CALL}.
1320 1.1 mrg @end deftypefn
1321 1.1 mrg
1322 1.5 mrg @deftypefn {GIMPLE function} gcall *gimple_build_call_vec (tree fn, @
1323 1.5 mrg @code{vec<tree>} args)
1324 1.1 mrg Identical to @code{gimple_build_call} but the arguments are stored in a
1325 1.5 mrg @code{vec<tree>}.
1326 1.1 mrg @end deftypefn
1327 1.1 mrg
1328 1.1 mrg @deftypefn {GIMPLE function} tree gimple_call_lhs (gimple g)
1329 1.1 mrg Return the @code{LHS} of call statement @code{G}.
1330 1.1 mrg @end deftypefn
1331 1.3 mrg
1332 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_call_lhs_ptr (gimple g)
1333 1.1 mrg Return a pointer to the @code{LHS} of call statement @code{G}.
1334 1.1 mrg @end deftypefn
1335 1.3 mrg
1336 1.1 mrg @deftypefn {GIMPLE function} void gimple_call_set_lhs (gimple g, tree lhs)
1337 1.1 mrg Set @code{LHS} to be the @code{LHS} operand of call statement @code{G}.
1338 1.1 mrg @end deftypefn
1339 1.3 mrg
1340 1.1 mrg @deftypefn {GIMPLE function} tree gimple_call_fn (gimple g)
1341 1.1 mrg Return the tree node representing the function called by call
1342 1.1 mrg statement @code{G}.
1343 1.1 mrg @end deftypefn
1344 1.3 mrg
1345 1.5 mrg @deftypefn {GIMPLE function} void gimple_call_set_fn (gcall *g, tree fn)
1346 1.1 mrg Set @code{FN} to be the function called by call statement @code{G}. This has
1347 1.1 mrg to be a gimple value specifying the address of the called
1348 1.1 mrg function.
1349 1.1 mrg @end deftypefn
1350 1.3 mrg
1351 1.1 mrg @deftypefn {GIMPLE function} tree gimple_call_fndecl (gimple g)
1352 1.1 mrg If a given @code{GIMPLE_CALL}'s callee is a @code{FUNCTION_DECL}, return it.
1353 1.1 mrg Otherwise return @code{NULL}. This function is analogous to
1354 1.1 mrg @code{get_callee_fndecl} in @code{GENERIC}.
1355 1.1 mrg @end deftypefn
1356 1.3 mrg
1357 1.1 mrg @deftypefn {GIMPLE function} tree gimple_call_set_fndecl (gimple g, tree fndecl)
1358 1.1 mrg Set the called function to @code{FNDECL}.
1359 1.1 mrg @end deftypefn
1360 1.1 mrg
1361 1.5 mrg @deftypefn {GIMPLE function} tree gimple_call_return_type (const gcall *g)
1362 1.1 mrg Return the type returned by call statement @code{G}.
1363 1.1 mrg @end deftypefn
1364 1.3 mrg
1365 1.1 mrg @deftypefn {GIMPLE function} tree gimple_call_chain (gimple g)
1366 1.3 mrg Return the static chain for call statement @code{G}.
1367 1.1 mrg @end deftypefn
1368 1.1 mrg
1369 1.5 mrg @deftypefn {GIMPLE function} void gimple_call_set_chain (gcall *g, tree chain)
1370 1.3 mrg Set @code{CHAIN} to be the static chain for call statement @code{G}.
1371 1.1 mrg @end deftypefn
1372 1.1 mrg
1373 1.3 mrg @deftypefn {GIMPLE function} unsigned gimple_call_num_args (gimple g)
1374 1.3 mrg Return the number of arguments used by call statement @code{G}.
1375 1.1 mrg @end deftypefn
1376 1.1 mrg
1377 1.1 mrg @deftypefn {GIMPLE function} tree gimple_call_arg (gimple g, unsigned index)
1378 1.1 mrg Return the argument at position @code{INDEX} for call statement @code{G}. The
1379 1.1 mrg first argument is 0.
1380 1.1 mrg @end deftypefn
1381 1.3 mrg
1382 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_call_arg_ptr (gimple g, unsigned index)
1383 1.1 mrg Return a pointer to the argument at position @code{INDEX} for call
1384 1.3 mrg statement @code{G}.
1385 1.1 mrg @end deftypefn
1386 1.1 mrg
1387 1.1 mrg @deftypefn {GIMPLE function} void gimple_call_set_arg (gimple g, unsigned index, tree arg)
1388 1.1 mrg Set @code{ARG} to be the argument at position @code{INDEX} for call statement
1389 1.3 mrg @code{G}.
1390 1.1 mrg @end deftypefn
1391 1.1 mrg
1392 1.5 mrg @deftypefn {GIMPLE function} void gimple_call_set_tail (gcall *s)
1393 1.1 mrg Mark call statement @code{S} as being a tail call (i.e., a call just
1394 1.1 mrg before the exit of a function). These calls are candidate for
1395 1.3 mrg tail call optimization.
1396 1.1 mrg @end deftypefn
1397 1.1 mrg
1398 1.5 mrg @deftypefn {GIMPLE function} bool gimple_call_tail_p (gcall *s)
1399 1.3 mrg Return true if @code{GIMPLE_CALL} @code{S} is marked as a tail call.
1400 1.1 mrg @end deftypefn
1401 1.1 mrg
1402 1.1 mrg @deftypefn {GIMPLE function} bool gimple_call_noreturn_p (gimple s)
1403 1.3 mrg Return true if @code{S} is a noreturn call.
1404 1.1 mrg @end deftypefn
1405 1.1 mrg
1406 1.5 mrg @deftypefn {GIMPLE function} gimple gimple_call_copy_skip_args (gcall *stmt, @
1407 1.5 mrg bitmap args_to_skip)
1408 1.1 mrg Build a @code{GIMPLE_CALL} identical to @code{STMT} but skipping the arguments
1409 1.1 mrg in the positions marked by the set @code{ARGS_TO_SKIP}.
1410 1.1 mrg @end deftypefn
1411 1.1 mrg
1412 1.1 mrg
1413 1.1 mrg @node @code{GIMPLE_CATCH}
1414 1.1 mrg @subsection @code{GIMPLE_CATCH}
1415 1.1 mrg @cindex @code{GIMPLE_CATCH}
1416 1.1 mrg
1417 1.5 mrg @deftypefn {GIMPLE function} gcatch *gimple_build_catch (tree types, @
1418 1.5 mrg gimple_seq handler)
1419 1.1 mrg Build a @code{GIMPLE_CATCH} statement. @code{TYPES} are the tree types this
1420 1.1 mrg catch handles. @code{HANDLER} is a sequence of statements with the code
1421 1.1 mrg for the handler.
1422 1.1 mrg @end deftypefn
1423 1.1 mrg
1424 1.5 mrg @deftypefn {GIMPLE function} tree gimple_catch_types (const gcatch *g)
1425 1.3 mrg Return the types handled by @code{GIMPLE_CATCH} statement @code{G}.
1426 1.1 mrg @end deftypefn
1427 1.1 mrg
1428 1.5 mrg @deftypefn {GIMPLE function} {tree *} gimple_catch_types_ptr (gcatch *g)
1429 1.1 mrg Return a pointer to the types handled by @code{GIMPLE_CATCH} statement
1430 1.3 mrg @code{G}.
1431 1.1 mrg @end deftypefn
1432 1.1 mrg
1433 1.5 mrg @deftypefn {GIMPLE function} gimple_seq gimple_catch_handler (gcatch *g)
1434 1.1 mrg Return the GIMPLE sequence representing the body of the handler
1435 1.3 mrg of @code{GIMPLE_CATCH} statement @code{G}.
1436 1.1 mrg @end deftypefn
1437 1.1 mrg
1438 1.5 mrg @deftypefn {GIMPLE function} void gimple_catch_set_types (gcatch *g, tree t)
1439 1.3 mrg Set @code{T} to be the set of types handled by @code{GIMPLE_CATCH} @code{G}.
1440 1.1 mrg @end deftypefn
1441 1.1 mrg
1442 1.5 mrg @deftypefn {GIMPLE function} void gimple_catch_set_handler (gcatch *g, @
1443 1.5 mrg gimple_seq handler)
1444 1.3 mrg Set @code{HANDLER} to be the body of @code{GIMPLE_CATCH} @code{G}.
1445 1.1 mrg @end deftypefn
1446 1.1 mrg
1447 1.1 mrg
1448 1.1 mrg @node @code{GIMPLE_COND}
1449 1.1 mrg @subsection @code{GIMPLE_COND}
1450 1.1 mrg @cindex @code{GIMPLE_COND}
1451 1.1 mrg
1452 1.5 mrg @deftypefn {GIMPLE function} gcond *gimple_build_cond ( @
1453 1.5 mrg enum tree_code pred_code, tree lhs, tree rhs, tree t_label, tree f_label)
1454 1.1 mrg Build a @code{GIMPLE_COND} statement. @code{A} @code{GIMPLE_COND} statement compares
1455 1.1 mrg @code{LHS} and @code{RHS} and if the condition in @code{PRED_CODE} is true, jump to
1456 1.1 mrg the label in @code{t_label}, otherwise jump to the label in @code{f_label}.
1457 1.1 mrg @code{PRED_CODE} are relational operator tree codes like @code{EQ_EXPR},
1458 1.1 mrg @code{LT_EXPR}, @code{LE_EXPR}, @code{NE_EXPR}, etc.
1459 1.1 mrg @end deftypefn
1460 1.1 mrg
1461 1.1 mrg
1462 1.5 mrg @deftypefn {GIMPLE function} gcond *gimple_build_cond_from_tree (tree cond, @
1463 1.5 mrg tree t_label, tree f_label)
1464 1.1 mrg Build a @code{GIMPLE_COND} statement from the conditional expression
1465 1.1 mrg tree @code{COND}. @code{T_LABEL} and @code{F_LABEL} are as in @code{gimple_build_cond}.
1466 1.1 mrg @end deftypefn
1467 1.1 mrg
1468 1.3 mrg @deftypefn {GIMPLE function} {enum tree_code} gimple_cond_code (gimple g)
1469 1.1 mrg Return the code of the predicate computed by conditional
1470 1.3 mrg statement @code{G}.
1471 1.1 mrg @end deftypefn
1472 1.1 mrg
1473 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_set_code (gcond *g, @
1474 1.5 mrg enum tree_code code)
1475 1.1 mrg Set @code{CODE} to be the predicate code for the conditional statement
1476 1.3 mrg @code{G}.
1477 1.1 mrg @end deftypefn
1478 1.1 mrg
1479 1.1 mrg @deftypefn {GIMPLE function} tree gimple_cond_lhs (gimple g)
1480 1.1 mrg Return the @code{LHS} of the predicate computed by conditional statement
1481 1.3 mrg @code{G}.
1482 1.1 mrg @end deftypefn
1483 1.1 mrg
1484 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_set_lhs (gcond *g, tree lhs)
1485 1.1 mrg Set @code{LHS} to be the @code{LHS} operand of the predicate computed by
1486 1.3 mrg conditional statement @code{G}.
1487 1.1 mrg @end deftypefn
1488 1.1 mrg
1489 1.1 mrg @deftypefn {GIMPLE function} tree gimple_cond_rhs (gimple g)
1490 1.1 mrg Return the @code{RHS} operand of the predicate computed by conditional
1491 1.3 mrg @code{G}.
1492 1.1 mrg @end deftypefn
1493 1.1 mrg
1494 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_set_rhs (gcond *g, tree rhs)
1495 1.1 mrg Set @code{RHS} to be the @code{RHS} operand of the predicate computed by
1496 1.3 mrg conditional statement @code{G}.
1497 1.1 mrg @end deftypefn
1498 1.1 mrg
1499 1.5 mrg @deftypefn {GIMPLE function} tree gimple_cond_true_label (const gcond *g)
1500 1.1 mrg Return the label used by conditional statement @code{G} when its
1501 1.3 mrg predicate evaluates to true.
1502 1.1 mrg @end deftypefn
1503 1.1 mrg
1504 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_set_true_label (gcond *g, tree label)
1505 1.1 mrg Set @code{LABEL} to be the label used by conditional statement @code{G} when
1506 1.3 mrg its predicate evaluates to true.
1507 1.1 mrg @end deftypefn
1508 1.1 mrg
1509 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_set_false_label (gcond *g, tree label)
1510 1.1 mrg Set @code{LABEL} to be the label used by conditional statement @code{G} when
1511 1.3 mrg its predicate evaluates to false.
1512 1.1 mrg @end deftypefn
1513 1.1 mrg
1514 1.5 mrg @deftypefn {GIMPLE function} tree gimple_cond_false_label (const gcond *g)
1515 1.1 mrg Return the label used by conditional statement @code{G} when its
1516 1.3 mrg predicate evaluates to false.
1517 1.1 mrg @end deftypefn
1518 1.1 mrg
1519 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_make_false (gcond *g)
1520 1.3 mrg Set the conditional @code{COND_STMT} to be of the form 'if (1 == 0)'.
1521 1.1 mrg @end deftypefn
1522 1.1 mrg
1523 1.5 mrg @deftypefn {GIMPLE function} void gimple_cond_make_true (gcond *g)
1524 1.3 mrg Set the conditional @code{COND_STMT} to be of the form 'if (1 == 1)'.
1525 1.1 mrg @end deftypefn
1526 1.1 mrg
1527 1.1 mrg @node @code{GIMPLE_DEBUG}
1528 1.1 mrg @subsection @code{GIMPLE_DEBUG}
1529 1.1 mrg @cindex @code{GIMPLE_DEBUG}
1530 1.1 mrg @cindex @code{GIMPLE_DEBUG_BIND}
1531 1.1 mrg
1532 1.5 mrg @deftypefn {GIMPLE function} gdebug *gimple_build_debug_bind (tree var, @
1533 1.5 mrg tree value, gimple stmt)
1534 1.1 mrg Build a @code{GIMPLE_DEBUG} statement with @code{GIMPLE_DEBUG_BIND} of
1535 1.1 mrg @code{subcode}. The effect of this statement is to tell debug
1536 1.1 mrg information generation machinery that the value of user variable
1537 1.1 mrg @code{var} is given by @code{value} at that point, and to remain with
1538 1.1 mrg that value until @code{var} runs out of scope, a
1539 1.1 mrg dynamically-subsequent debug bind statement overrides the binding, or
1540 1.1 mrg conflicting values reach a control flow merge point. Even if
1541 1.1 mrg components of the @code{value} expression change afterwards, the
1542 1.1 mrg variable is supposed to retain the same value, though not necessarily
1543 1.1 mrg the same location.
1544 1.1 mrg
1545 1.1 mrg It is expected that @code{var} be most often a tree for automatic user
1546 1.1 mrg variables (@code{VAR_DECL} or @code{PARM_DECL}) that satisfy the
1547 1.1 mrg requirements for gimple registers, but it may also be a tree for a
1548 1.1 mrg scalarized component of a user variable (@code{ARRAY_REF},
1549 1.1 mrg @code{COMPONENT_REF}), or a debug temporary (@code{DEBUG_EXPR_DECL}).
1550 1.1 mrg
1551 1.1 mrg As for @code{value}, it can be an arbitrary tree expression, but it is
1552 1.1 mrg recommended that it be in a suitable form for a gimple assignment
1553 1.1 mrg @code{RHS}. It is not expected that user variables that could appear
1554 1.1 mrg as @code{var} ever appear in @code{value}, because in the latter we'd
1555 1.1 mrg have their @code{SSA_NAME}s instead, but even if they were not in SSA
1556 1.1 mrg form, user variables appearing in @code{value} are to be regarded as
1557 1.1 mrg part of the executable code space, whereas those in @code{var} are to
1558 1.1 mrg be regarded as part of the source code space. There is no way to
1559 1.1 mrg refer to the value bound to a user variable within a @code{value}
1560 1.1 mrg expression.
1561 1.1 mrg
1562 1.1 mrg If @code{value} is @code{GIMPLE_DEBUG_BIND_NOVALUE}, debug information
1563 1.1 mrg generation machinery is informed that the variable @code{var} is
1564 1.1 mrg unbound, i.e., that its value is indeterminate, which sometimes means
1565 1.1 mrg it is really unavailable, and other times that the compiler could not
1566 1.1 mrg keep track of it.
1567 1.1 mrg
1568 1.1 mrg Block and location information for the newly-created stmt are
1569 1.1 mrg taken from @code{stmt}, if given.
1570 1.1 mrg @end deftypefn
1571 1.1 mrg
1572 1.1 mrg @deftypefn {GIMPLE function} tree gimple_debug_bind_get_var (gimple stmt)
1573 1.1 mrg Return the user variable @var{var} that is bound at @code{stmt}.
1574 1.1 mrg @end deftypefn
1575 1.1 mrg
1576 1.1 mrg @deftypefn {GIMPLE function} tree gimple_debug_bind_get_value (gimple stmt)
1577 1.1 mrg Return the value expression that is bound to a user variable at
1578 1.1 mrg @code{stmt}.
1579 1.1 mrg @end deftypefn
1580 1.1 mrg
1581 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_debug_bind_get_value_ptr (gimple stmt)
1582 1.1 mrg Return a pointer to the value expression that is bound to a user
1583 1.1 mrg variable at @code{stmt}.
1584 1.1 mrg @end deftypefn
1585 1.1 mrg
1586 1.1 mrg @deftypefn {GIMPLE function} void gimple_debug_bind_set_var (gimple stmt, tree var)
1587 1.1 mrg Modify the user variable bound at @code{stmt} to @var{var}.
1588 1.1 mrg @end deftypefn
1589 1.1 mrg
1590 1.1 mrg @deftypefn {GIMPLE function} void gimple_debug_bind_set_value (gimple stmt, tree var)
1591 1.1 mrg Modify the value bound to the user variable bound at @code{stmt} to
1592 1.1 mrg @var{value}.
1593 1.1 mrg @end deftypefn
1594 1.1 mrg
1595 1.1 mrg @deftypefn {GIMPLE function} void gimple_debug_bind_reset_value (gimple stmt)
1596 1.1 mrg Modify the value bound to the user variable bound at @code{stmt} so
1597 1.1 mrg that the variable becomes unbound.
1598 1.1 mrg @end deftypefn
1599 1.1 mrg
1600 1.1 mrg @deftypefn {GIMPLE function} bool gimple_debug_bind_has_value_p (gimple stmt)
1601 1.1 mrg Return @code{TRUE} if @code{stmt} binds a user variable to a value,
1602 1.1 mrg and @code{FALSE} if it unbinds the variable.
1603 1.1 mrg @end deftypefn
1604 1.1 mrg
1605 1.1 mrg @node @code{GIMPLE_EH_FILTER}
1606 1.1 mrg @subsection @code{GIMPLE_EH_FILTER}
1607 1.1 mrg @cindex @code{GIMPLE_EH_FILTER}
1608 1.1 mrg
1609 1.5 mrg @deftypefn {GIMPLE function} geh_filter *gimple_build_eh_filter (tree types, @
1610 1.5 mrg gimple_seq failure)
1611 1.1 mrg Build a @code{GIMPLE_EH_FILTER} statement. @code{TYPES} are the filter's
1612 1.1 mrg types. @code{FAILURE} is a sequence with the filter's failure action.
1613 1.1 mrg @end deftypefn
1614 1.1 mrg
1615 1.1 mrg @deftypefn {GIMPLE function} tree gimple_eh_filter_types (gimple g)
1616 1.3 mrg Return the types handled by @code{GIMPLE_EH_FILTER} statement @code{G}.
1617 1.1 mrg @end deftypefn
1618 1.1 mrg
1619 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_eh_filter_types_ptr (gimple g)
1620 1.1 mrg Return a pointer to the types handled by @code{GIMPLE_EH_FILTER}
1621 1.3 mrg statement @code{G}.
1622 1.1 mrg @end deftypefn
1623 1.1 mrg
1624 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_eh_filter_failure (gimple g)
1625 1.1 mrg Return the sequence of statement to execute when @code{GIMPLE_EH_FILTER}
1626 1.3 mrg statement fails.
1627 1.1 mrg @end deftypefn
1628 1.1 mrg
1629 1.5 mrg @deftypefn {GIMPLE function} void gimple_eh_filter_set_types (geh_filter *g, @
1630 1.5 mrg tree types)
1631 1.3 mrg Set @code{TYPES} to be the set of types handled by @code{GIMPLE_EH_FILTER} @code{G}.
1632 1.1 mrg @end deftypefn
1633 1.1 mrg
1634 1.5 mrg @deftypefn {GIMPLE function} void gimple_eh_filter_set_failure (geh_filter *g, @
1635 1.5 mrg gimple_seq failure)
1636 1.1 mrg Set @code{FAILURE} to be the sequence of statements to execute on
1637 1.3 mrg failure for @code{GIMPLE_EH_FILTER} @code{G}.
1638 1.1 mrg @end deftypefn
1639 1.1 mrg
1640 1.5 mrg @deftypefn {GIMPLE function} tree gimple_eh_must_not_throw_fndecl ( @
1641 1.5 mrg geh_mnt *eh_mnt_stmt)
1642 1.5 mrg Get the function decl to be called by the MUST_NOT_THROW region.
1643 1.1 mrg @end deftypefn
1644 1.1 mrg
1645 1.5 mrg @deftypefn {GIMPLE function} void gimple_eh_must_not_throw_set_fndecl ( @
1646 1.5 mrg geh_mnt *eh_mnt_stmt, tree decl)
1647 1.5 mrg Set the function decl to be called by GS to DECL.
1648 1.1 mrg @end deftypefn
1649 1.1 mrg
1650 1.1 mrg
1651 1.1 mrg @node @code{GIMPLE_LABEL}
1652 1.1 mrg @subsection @code{GIMPLE_LABEL}
1653 1.1 mrg @cindex @code{GIMPLE_LABEL}
1654 1.1 mrg
1655 1.5 mrg @deftypefn {GIMPLE function} glabel *gimple_build_label (tree label)
1656 1.1 mrg Build a @code{GIMPLE_LABEL} statement with corresponding to the tree
1657 1.1 mrg label, @code{LABEL}.
1658 1.1 mrg @end deftypefn
1659 1.1 mrg
1660 1.5 mrg @deftypefn {GIMPLE function} tree gimple_label_label (const glabel *g)
1661 1.3 mrg Return the @code{LABEL_DECL} node used by @code{GIMPLE_LABEL} statement @code{G}.
1662 1.1 mrg @end deftypefn
1663 1.1 mrg
1664 1.5 mrg @deftypefn {GIMPLE function} void gimple_label_set_label (glabel *g, tree label)
1665 1.1 mrg Set @code{LABEL} to be the @code{LABEL_DECL} node used by @code{GIMPLE_LABEL}
1666 1.3 mrg statement @code{G}.
1667 1.1 mrg @end deftypefn
1668 1.1 mrg
1669 1.5 mrg @node @code{GIMPLE_GOTO}
1670 1.5 mrg @subsection @code{GIMPLE_GOTO}
1671 1.5 mrg @cindex @code{GIMPLE_GOTO}
1672 1.1 mrg
1673 1.5 mrg @deftypefn {GIMPLE function} ggoto *gimple_build_goto (tree dest)
1674 1.1 mrg Build a @code{GIMPLE_GOTO} statement to label @code{DEST}.
1675 1.1 mrg @end deftypefn
1676 1.1 mrg
1677 1.1 mrg @deftypefn {GIMPLE function} tree gimple_goto_dest (gimple g)
1678 1.3 mrg Return the destination of the unconditional jump @code{G}.
1679 1.1 mrg @end deftypefn
1680 1.1 mrg
1681 1.5 mrg @deftypefn {GIMPLE function} void gimple_goto_set_dest (ggoto *g, tree dest)
1682 1.1 mrg Set @code{DEST} to be the destination of the unconditional jump @code{G}.
1683 1.1 mrg @end deftypefn
1684 1.1 mrg
1685 1.1 mrg
1686 1.1 mrg @node @code{GIMPLE_NOP}
1687 1.1 mrg @subsection @code{GIMPLE_NOP}
1688 1.1 mrg @cindex @code{GIMPLE_NOP}
1689 1.1 mrg
1690 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_nop (void)
1691 1.1 mrg Build a @code{GIMPLE_NOP} statement.
1692 1.1 mrg @end deftypefn
1693 1.1 mrg
1694 1.1 mrg @deftypefn {GIMPLE function} bool gimple_nop_p (gimple g)
1695 1.3 mrg Returns @code{TRUE} if statement @code{G} is a @code{GIMPLE_NOP}.
1696 1.1 mrg @end deftypefn
1697 1.1 mrg
1698 1.1 mrg @node @code{GIMPLE_OMP_ATOMIC_LOAD}
1699 1.1 mrg @subsection @code{GIMPLE_OMP_ATOMIC_LOAD}
1700 1.1 mrg @cindex @code{GIMPLE_OMP_ATOMIC_LOAD}
1701 1.1 mrg
1702 1.5 mrg @deftypefn {GIMPLE function} gomp_atomic_load *gimple_build_omp_atomic_load ( @
1703 1.5 mrg tree lhs, tree rhs)
1704 1.1 mrg Build a @code{GIMPLE_OMP_ATOMIC_LOAD} statement. @code{LHS} is the left-hand
1705 1.1 mrg side of the assignment. @code{RHS} is the right-hand side of the
1706 1.1 mrg assignment.
1707 1.1 mrg @end deftypefn
1708 1.1 mrg
1709 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_atomic_load_set_lhs ( @
1710 1.5 mrg gomp_atomic_load *g, tree lhs)
1711 1.3 mrg Set the @code{LHS} of an atomic load.
1712 1.1 mrg @end deftypefn
1713 1.1 mrg
1714 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_atomic_load_lhs ( @
1715 1.5 mrg const gomp_atomic_load *g)
1716 1.3 mrg Get the @code{LHS} of an atomic load.
1717 1.1 mrg @end deftypefn
1718 1.1 mrg
1719 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_atomic_load_set_rhs ( @
1720 1.5 mrg gomp_atomic_load *g, tree rhs)
1721 1.3 mrg Set the @code{RHS} of an atomic set.
1722 1.1 mrg @end deftypefn
1723 1.1 mrg
1724 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_atomic_load_rhs ( @
1725 1.5 mrg const gomp_atomic_load *g)
1726 1.3 mrg Get the @code{RHS} of an atomic set.
1727 1.1 mrg @end deftypefn
1728 1.1 mrg
1729 1.1 mrg
1730 1.1 mrg @node @code{GIMPLE_OMP_ATOMIC_STORE}
1731 1.1 mrg @subsection @code{GIMPLE_OMP_ATOMIC_STORE}
1732 1.1 mrg @cindex @code{GIMPLE_OMP_ATOMIC_STORE}
1733 1.1 mrg
1734 1.5 mrg @deftypefn {GIMPLE function} gomp_atomic_store *gimple_build_omp_atomic_store ( @
1735 1.5 mrg tree val)
1736 1.1 mrg Build a @code{GIMPLE_OMP_ATOMIC_STORE} statement. @code{VAL} is the value to be
1737 1.1 mrg stored.
1738 1.1 mrg @end deftypefn
1739 1.1 mrg
1740 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_atomic_store_set_val ( @
1741 1.5 mrg gomp_atomic_store *g, tree val)
1742 1.3 mrg Set the value being stored in an atomic store.
1743 1.1 mrg @end deftypefn
1744 1.1 mrg
1745 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_atomic_store_val ( @
1746 1.5 mrg const gomp_atomic_store *g)
1747 1.3 mrg Return the value being stored in an atomic store.
1748 1.1 mrg @end deftypefn
1749 1.1 mrg
1750 1.1 mrg @node @code{GIMPLE_OMP_CONTINUE}
1751 1.1 mrg @subsection @code{GIMPLE_OMP_CONTINUE}
1752 1.1 mrg @cindex @code{GIMPLE_OMP_CONTINUE}
1753 1.1 mrg
1754 1.5 mrg @deftypefn {GIMPLE function} gomp_continue *gimple_build_omp_continue ( @
1755 1.5 mrg tree control_def, tree control_use)
1756 1.1 mrg Build a @code{GIMPLE_OMP_CONTINUE} statement. @code{CONTROL_DEF} is the
1757 1.1 mrg definition of the control variable. @code{CONTROL_USE} is the use of
1758 1.1 mrg the control variable.
1759 1.1 mrg @end deftypefn
1760 1.1 mrg
1761 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_continue_control_def ( @
1762 1.5 mrg const gomp_continue *s)
1763 1.1 mrg Return the definition of the control variable on a
1764 1.1 mrg @code{GIMPLE_OMP_CONTINUE} in @code{S}.
1765 1.1 mrg @end deftypefn
1766 1.3 mrg
1767 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_continue_control_def_ptr ( @
1768 1.5 mrg gomp_continue *s)
1769 1.1 mrg Same as above, but return the pointer.
1770 1.1 mrg @end deftypefn
1771 1.3 mrg
1772 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_continue_set_control_def ( @
1773 1.5 mrg gomp_continue *s)
1774 1.1 mrg Set the control variable definition for a @code{GIMPLE_OMP_CONTINUE}
1775 1.1 mrg statement in @code{S}.
1776 1.1 mrg @end deftypefn
1777 1.3 mrg
1778 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_continue_control_use ( @
1779 1.5 mrg const gomp_continue *s)
1780 1.1 mrg Return the use of the control variable on a @code{GIMPLE_OMP_CONTINUE}
1781 1.1 mrg in @code{S}.
1782 1.1 mrg @end deftypefn
1783 1.3 mrg
1784 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_continue_control_use_ptr ( @
1785 1.5 mrg gomp_continue *s)
1786 1.1 mrg Same as above, but return the pointer.
1787 1.1 mrg @end deftypefn
1788 1.3 mrg
1789 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_continue_set_control_use ( @
1790 1.5 mrg gomp_continue *s)
1791 1.1 mrg Set the control variable use for a @code{GIMPLE_OMP_CONTINUE} statement
1792 1.1 mrg in @code{S}.
1793 1.1 mrg @end deftypefn
1794 1.1 mrg
1795 1.1 mrg
1796 1.1 mrg @node @code{GIMPLE_OMP_CRITICAL}
1797 1.1 mrg @subsection @code{GIMPLE_OMP_CRITICAL}
1798 1.1 mrg @cindex @code{GIMPLE_OMP_CRITICAL}
1799 1.1 mrg
1800 1.5 mrg @deftypefn {GIMPLE function} gomp_critical *gimple_build_omp_critical ( @
1801 1.5 mrg gimple_seq body, tree name)
1802 1.1 mrg Build a @code{GIMPLE_OMP_CRITICAL} statement. @code{BODY} is the sequence of
1803 1.1 mrg statements for which only one thread can execute. @code{NAME} is an
1804 1.1 mrg optional identifier for this critical block.
1805 1.1 mrg @end deftypefn
1806 1.1 mrg
1807 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_critical_name ( @
1808 1.5 mrg const gomp_critical *g)
1809 1.3 mrg Return the name associated with @code{OMP_CRITICAL} statement @code{G}.
1810 1.1 mrg @end deftypefn
1811 1.1 mrg
1812 1.5 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_critical_name_ptr ( @
1813 1.5 mrg gomp_critical *g)
1814 1.1 mrg Return a pointer to the name associated with @code{OMP} critical
1815 1.3 mrg statement @code{G}.
1816 1.1 mrg @end deftypefn
1817 1.1 mrg
1818 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_critical_set_name ( @
1819 1.5 mrg gomp_critical *g, tree name)
1820 1.3 mrg Set @code{NAME} to be the name associated with @code{OMP} critical statement @code{G}.
1821 1.1 mrg @end deftypefn
1822 1.1 mrg
1823 1.1 mrg @node @code{GIMPLE_OMP_FOR}
1824 1.1 mrg @subsection @code{GIMPLE_OMP_FOR}
1825 1.1 mrg @cindex @code{GIMPLE_OMP_FOR}
1826 1.1 mrg
1827 1.5 mrg @deftypefn {GIMPLE function} gomp_for *gimple_build_omp_for (gimple_seq body, @
1828 1.1 mrg tree clauses, tree index, tree initial, tree final, tree incr, @
1829 1.1 mrg gimple_seq pre_body, enum tree_code omp_for_cond)
1830 1.1 mrg Build a @code{GIMPLE_OMP_FOR} statement. @code{BODY} is sequence of statements
1831 1.5 mrg inside the for loop. @code{CLAUSES}, are any of the loop
1832 1.5 mrg construct's clauses. @code{PRE_BODY} is the
1833 1.1 mrg sequence of statements that are loop invariant. @code{INDEX} is the
1834 1.1 mrg index variable. @code{INITIAL} is the initial value of @code{INDEX}. @code{FINAL} is
1835 1.1 mrg final value of @code{INDEX}. OMP_FOR_COND is the predicate used to
1836 1.1 mrg compare @code{INDEX} and @code{FINAL}. @code{INCR} is the increment expression.
1837 1.1 mrg @end deftypefn
1838 1.1 mrg
1839 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_for_clauses (gimple g)
1840 1.3 mrg Return the clauses associated with @code{OMP_FOR} @code{G}.
1841 1.1 mrg @end deftypefn
1842 1.1 mrg
1843 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_for_clauses_ptr (gimple g)
1844 1.3 mrg Return a pointer to the @code{OMP_FOR} @code{G}.
1845 1.1 mrg @end deftypefn
1846 1.1 mrg
1847 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_clauses (gimple g, tree clauses)
1848 1.3 mrg Set @code{CLAUSES} to be the list of clauses associated with @code{OMP_FOR} @code{G}.
1849 1.1 mrg @end deftypefn
1850 1.1 mrg
1851 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_for_index (gimple g)
1852 1.3 mrg Return the index variable for @code{OMP_FOR} @code{G}.
1853 1.1 mrg @end deftypefn
1854 1.1 mrg
1855 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_for_index_ptr (gimple g)
1856 1.3 mrg Return a pointer to the index variable for @code{OMP_FOR} @code{G}.
1857 1.1 mrg @end deftypefn
1858 1.1 mrg
1859 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_index (gimple g, tree index)
1860 1.3 mrg Set @code{INDEX} to be the index variable for @code{OMP_FOR} @code{G}.
1861 1.1 mrg @end deftypefn
1862 1.1 mrg
1863 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_for_initial (gimple g)
1864 1.3 mrg Return the initial value for @code{OMP_FOR} @code{G}.
1865 1.1 mrg @end deftypefn
1866 1.1 mrg
1867 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_for_initial_ptr (gimple g)
1868 1.3 mrg Return a pointer to the initial value for @code{OMP_FOR} @code{G}.
1869 1.1 mrg @end deftypefn
1870 1.1 mrg
1871 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_initial (gimple g, tree initial)
1872 1.1 mrg Set @code{INITIAL} to be the initial value for @code{OMP_FOR} @code{G}.
1873 1.1 mrg @end deftypefn
1874 1.1 mrg
1875 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_for_final (gimple g)
1876 1.3 mrg Return the final value for @code{OMP_FOR} @code{G}.
1877 1.1 mrg @end deftypefn
1878 1.1 mrg
1879 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_for_final_ptr (gimple g)
1880 1.3 mrg turn a pointer to the final value for @code{OMP_FOR} @code{G}.
1881 1.1 mrg @end deftypefn
1882 1.1 mrg
1883 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_final (gimple g, tree final)
1884 1.3 mrg Set @code{FINAL} to be the final value for @code{OMP_FOR} @code{G}.
1885 1.1 mrg @end deftypefn
1886 1.1 mrg
1887 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_for_incr (gimple g)
1888 1.3 mrg Return the increment value for @code{OMP_FOR} @code{G}.
1889 1.1 mrg @end deftypefn
1890 1.1 mrg
1891 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_for_incr_ptr (gimple g)
1892 1.3 mrg Return a pointer to the increment value for @code{OMP_FOR} @code{G}.
1893 1.1 mrg @end deftypefn
1894 1.1 mrg
1895 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_incr (gimple g, tree incr)
1896 1.3 mrg Set @code{INCR} to be the increment value for @code{OMP_FOR} @code{G}.
1897 1.1 mrg @end deftypefn
1898 1.1 mrg
1899 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_omp_for_pre_body (gimple g)
1900 1.1 mrg Return the sequence of statements to execute before the @code{OMP_FOR}
1901 1.3 mrg statement @code{G} starts.
1902 1.1 mrg @end deftypefn
1903 1.1 mrg
1904 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_pre_body (gimple g, gimple_seq pre_body)
1905 1.1 mrg Set @code{PRE_BODY} to be the sequence of statements to execute before
1906 1.1 mrg the @code{OMP_FOR} statement @code{G} starts.
1907 1.1 mrg @end deftypefn
1908 1.3 mrg
1909 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_for_set_cond (gimple g, enum tree_code cond)
1910 1.3 mrg Set @code{COND} to be the condition code for @code{OMP_FOR} @code{G}.
1911 1.1 mrg @end deftypefn
1912 1.1 mrg
1913 1.3 mrg @deftypefn {GIMPLE function} {enum tree_code} gimple_omp_for_cond (gimple g)
1914 1.3 mrg Return the condition code associated with @code{OMP_FOR} @code{G}.
1915 1.1 mrg @end deftypefn
1916 1.1 mrg
1917 1.1 mrg
1918 1.1 mrg @node @code{GIMPLE_OMP_MASTER}
1919 1.1 mrg @subsection @code{GIMPLE_OMP_MASTER}
1920 1.1 mrg @cindex @code{GIMPLE_OMP_MASTER}
1921 1.1 mrg
1922 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_omp_master (gimple_seq body)
1923 1.1 mrg Build a @code{GIMPLE_OMP_MASTER} statement. @code{BODY} is the sequence of
1924 1.1 mrg statements to be executed by just the master.
1925 1.1 mrg @end deftypefn
1926 1.1 mrg
1927 1.1 mrg
1928 1.1 mrg @node @code{GIMPLE_OMP_ORDERED}
1929 1.1 mrg @subsection @code{GIMPLE_OMP_ORDERED}
1930 1.1 mrg @cindex @code{GIMPLE_OMP_ORDERED}
1931 1.1 mrg
1932 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_omp_ordered (gimple_seq body)
1933 1.1 mrg Build a @code{GIMPLE_OMP_ORDERED} statement.
1934 1.1 mrg @end deftypefn
1935 1.1 mrg
1936 1.1 mrg @code{BODY} is the sequence of statements inside a loop that will
1937 1.1 mrg executed in sequence.
1938 1.1 mrg
1939 1.1 mrg
1940 1.1 mrg @node @code{GIMPLE_OMP_PARALLEL}
1941 1.1 mrg @subsection @code{GIMPLE_OMP_PARALLEL}
1942 1.1 mrg @cindex @code{GIMPLE_OMP_PARALLEL}
1943 1.1 mrg
1944 1.5 mrg @deftypefn {GIMPLE function} gomp_parallel *gimple_build_omp_parallel (@
1945 1.5 mrg gimple_seq body, tree clauses, tree child_fn, tree data_arg)
1946 1.1 mrg Build a @code{GIMPLE_OMP_PARALLEL} statement.
1947 1.1 mrg @end deftypefn
1948 1.1 mrg
1949 1.1 mrg @code{BODY} is sequence of statements which are executed in parallel.
1950 1.1 mrg @code{CLAUSES}, are the @code{OMP} parallel construct's clauses. @code{CHILD_FN} is
1951 1.1 mrg the function created for the parallel threads to execute.
1952 1.1 mrg @code{DATA_ARG} are the shared data argument(s).
1953 1.1 mrg
1954 1.1 mrg @deftypefn {GIMPLE function} bool gimple_omp_parallel_combined_p (gimple g)
1955 1.1 mrg Return true if @code{OMP} parallel statement @code{G} has the
1956 1.1 mrg @code{GF_OMP_PARALLEL_COMBINED} flag set.
1957 1.1 mrg @end deftypefn
1958 1.3 mrg
1959 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_parallel_set_combined_p (gimple g)
1960 1.1 mrg Set the @code{GF_OMP_PARALLEL_COMBINED} field in @code{OMP} parallel statement
1961 1.1 mrg @code{G}.
1962 1.1 mrg @end deftypefn
1963 1.3 mrg
1964 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_omp_body (gimple g)
1965 1.3 mrg Return the body for the @code{OMP} statement @code{G}.
1966 1.1 mrg @end deftypefn
1967 1.1 mrg
1968 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_set_body (gimple g, gimple_seq body)
1969 1.3 mrg Set @code{BODY} to be the body for the @code{OMP} statement @code{G}.
1970 1.1 mrg @end deftypefn
1971 1.1 mrg
1972 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_parallel_clauses (gimple g)
1973 1.3 mrg Return the clauses associated with @code{OMP_PARALLEL} @code{G}.
1974 1.1 mrg @end deftypefn
1975 1.1 mrg
1976 1.5 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_parallel_clauses_ptr ( @
1977 1.5 mrg gomp_parallel *g)
1978 1.3 mrg Return a pointer to the clauses associated with @code{OMP_PARALLEL} @code{G}.
1979 1.1 mrg @end deftypefn
1980 1.1 mrg
1981 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_parallel_set_clauses ( @
1982 1.5 mrg gomp_parallel *g, tree clauses)
1983 1.1 mrg Set @code{CLAUSES} to be the list of clauses associated with
1984 1.3 mrg @code{OMP_PARALLEL} @code{G}.
1985 1.1 mrg @end deftypefn
1986 1.1 mrg
1987 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_parallel_child_fn ( @
1988 1.5 mrg const gomp_parallel *g)
1989 1.1 mrg Return the child function used to hold the body of @code{OMP_PARALLEL}
1990 1.3 mrg @code{G}.
1991 1.1 mrg @end deftypefn
1992 1.1 mrg
1993 1.5 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_parallel_child_fn_ptr ( @
1994 1.5 mrg gomp_parallel *g)
1995 1.1 mrg Return a pointer to the child function used to hold the body of
1996 1.3 mrg @code{OMP_PARALLEL} @code{G}.
1997 1.1 mrg @end deftypefn
1998 1.1 mrg
1999 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_parallel_set_child_fn ( @
2000 1.5 mrg gomp_parallel *g, tree child_fn)
2001 1.3 mrg Set @code{CHILD_FN} to be the child function for @code{OMP_PARALLEL} @code{G}.
2002 1.1 mrg @end deftypefn
2003 1.1 mrg
2004 1.5 mrg @deftypefn {GIMPLE function} tree gimple_omp_parallel_data_arg ( @
2005 1.5 mrg const gomp_parallel *g)
2006 1.1 mrg Return the artificial argument used to send variables and values
2007 1.3 mrg from the parent to the children threads in @code{OMP_PARALLEL} @code{G}.
2008 1.1 mrg @end deftypefn
2009 1.1 mrg
2010 1.5 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_parallel_data_arg_ptr ( @
2011 1.5 mrg gomp_parallel *g)
2012 1.3 mrg Return a pointer to the data argument for @code{OMP_PARALLEL} @code{G}.
2013 1.1 mrg @end deftypefn
2014 1.1 mrg
2015 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_parallel_set_data_arg ( @
2016 1.5 mrg gomp_parallel *g, tree data_arg)
2017 1.3 mrg Set @code{DATA_ARG} to be the data argument for @code{OMP_PARALLEL} @code{G}.
2018 1.1 mrg @end deftypefn
2019 1.1 mrg
2020 1.1 mrg
2021 1.1 mrg @node @code{GIMPLE_OMP_RETURN}
2022 1.1 mrg @subsection @code{GIMPLE_OMP_RETURN}
2023 1.1 mrg @cindex @code{GIMPLE_OMP_RETURN}
2024 1.1 mrg
2025 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_omp_return (bool wait_p)
2026 1.1 mrg Build a @code{GIMPLE_OMP_RETURN} statement. @code{WAIT_P} is true if this is a
2027 1.1 mrg non-waiting return.
2028 1.1 mrg @end deftypefn
2029 1.1 mrg
2030 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_return_set_nowait (gimple s)
2031 1.1 mrg Set the nowait flag on @code{GIMPLE_OMP_RETURN} statement @code{S}.
2032 1.1 mrg @end deftypefn
2033 1.3 mrg
2034 1.1 mrg
2035 1.1 mrg @deftypefn {GIMPLE function} bool gimple_omp_return_nowait_p (gimple g)
2036 1.1 mrg Return true if @code{OMP} return statement @code{G} has the
2037 1.1 mrg @code{GF_OMP_RETURN_NOWAIT} flag set.
2038 1.1 mrg @end deftypefn
2039 1.1 mrg
2040 1.1 mrg @node @code{GIMPLE_OMP_SECTION}
2041 1.1 mrg @subsection @code{GIMPLE_OMP_SECTION}
2042 1.1 mrg @cindex @code{GIMPLE_OMP_SECTION}
2043 1.1 mrg
2044 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_omp_section (gimple_seq body)
2045 1.1 mrg Build a @code{GIMPLE_OMP_SECTION} statement for a sections statement.
2046 1.1 mrg @end deftypefn
2047 1.1 mrg
2048 1.1 mrg @code{BODY} is the sequence of statements in the section.
2049 1.1 mrg
2050 1.1 mrg @deftypefn {GIMPLE function} bool gimple_omp_section_last_p (gimple g)
2051 1.1 mrg Return true if @code{OMP} section statement @code{G} has the
2052 1.1 mrg @code{GF_OMP_SECTION_LAST} flag set.
2053 1.1 mrg @end deftypefn
2054 1.3 mrg
2055 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_section_set_last (gimple g)
2056 1.1 mrg Set the @code{GF_OMP_SECTION_LAST} flag on @code{G}.
2057 1.1 mrg @end deftypefn
2058 1.1 mrg
2059 1.1 mrg @node @code{GIMPLE_OMP_SECTIONS}
2060 1.1 mrg @subsection @code{GIMPLE_OMP_SECTIONS}
2061 1.1 mrg @cindex @code{GIMPLE_OMP_SECTIONS}
2062 1.1 mrg
2063 1.5 mrg @deftypefn {GIMPLE function} gomp_sections *gimple_build_omp_sections ( @
2064 1.5 mrg gimple_seq body, tree clauses)
2065 1.1 mrg Build a @code{GIMPLE_OMP_SECTIONS} statement. @code{BODY} is a sequence of
2066 1.1 mrg section statements. @code{CLAUSES} are any of the @code{OMP} sections
2067 1.1 mrg construct's clauses: private, firstprivate, lastprivate,
2068 1.1 mrg reduction, and nowait.
2069 1.1 mrg @end deftypefn
2070 1.1 mrg
2071 1.1 mrg
2072 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_omp_sections_switch (void)
2073 1.1 mrg Build a @code{GIMPLE_OMP_SECTIONS_SWITCH} statement.
2074 1.1 mrg @end deftypefn
2075 1.1 mrg
2076 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_sections_control (gimple g)
2077 1.1 mrg Return the control variable associated with the
2078 1.1 mrg @code{GIMPLE_OMP_SECTIONS} in @code{G}.
2079 1.1 mrg @end deftypefn
2080 1.3 mrg
2081 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_sections_control_ptr (gimple g)
2082 1.1 mrg Return a pointer to the clauses associated with the
2083 1.1 mrg @code{GIMPLE_OMP_SECTIONS} in @code{G}.
2084 1.1 mrg @end deftypefn
2085 1.3 mrg
2086 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_sections_set_control (gimple g, tree control)
2087 1.1 mrg Set @code{CONTROL} to be the set of clauses associated with the
2088 1.1 mrg @code{GIMPLE_OMP_SECTIONS} in @code{G}.
2089 1.1 mrg @end deftypefn
2090 1.3 mrg
2091 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_sections_clauses (gimple g)
2092 1.3 mrg Return the clauses associated with @code{OMP_SECTIONS} @code{G}.
2093 1.1 mrg @end deftypefn
2094 1.1 mrg
2095 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_sections_clauses_ptr (gimple g)
2096 1.3 mrg Return a pointer to the clauses associated with @code{OMP_SECTIONS} @code{G}.
2097 1.1 mrg @end deftypefn
2098 1.1 mrg
2099 1.1 mrg @deftypefn {GIMPLE function} void gimple_omp_sections_set_clauses (gimple g, tree clauses)
2100 1.1 mrg Set @code{CLAUSES} to be the set of clauses associated with @code{OMP_SECTIONS}
2101 1.3 mrg @code{G}.
2102 1.1 mrg @end deftypefn
2103 1.1 mrg
2104 1.1 mrg
2105 1.1 mrg @node @code{GIMPLE_OMP_SINGLE}
2106 1.1 mrg @subsection @code{GIMPLE_OMP_SINGLE}
2107 1.1 mrg @cindex @code{GIMPLE_OMP_SINGLE}
2108 1.1 mrg
2109 1.5 mrg @deftypefn {GIMPLE function} gomp_single *gimple_build_omp_single ( @
2110 1.5 mrg gimple_seq body, tree clauses)
2111 1.1 mrg Build a @code{GIMPLE_OMP_SINGLE} statement. @code{BODY} is the sequence of
2112 1.1 mrg statements that will be executed once. @code{CLAUSES} are any of the
2113 1.1 mrg @code{OMP} single construct's clauses: private, firstprivate,
2114 1.1 mrg copyprivate, nowait.
2115 1.1 mrg @end deftypefn
2116 1.1 mrg
2117 1.1 mrg @deftypefn {GIMPLE function} tree gimple_omp_single_clauses (gimple g)
2118 1.3 mrg Return the clauses associated with @code{OMP_SINGLE} @code{G}.
2119 1.1 mrg @end deftypefn
2120 1.1 mrg
2121 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_omp_single_clauses_ptr (gimple g)
2122 1.3 mrg Return a pointer to the clauses associated with @code{OMP_SINGLE} @code{G}.
2123 1.1 mrg @end deftypefn
2124 1.1 mrg
2125 1.5 mrg @deftypefn {GIMPLE function} void gimple_omp_single_set_clauses ( @
2126 1.5 mrg gomp_single *g, tree clauses)
2127 1.3 mrg Set @code{CLAUSES} to be the clauses associated with @code{OMP_SINGLE} @code{G}.
2128 1.1 mrg @end deftypefn
2129 1.1 mrg
2130 1.1 mrg
2131 1.1 mrg @node @code{GIMPLE_PHI}
2132 1.1 mrg @subsection @code{GIMPLE_PHI}
2133 1.1 mrg @cindex @code{GIMPLE_PHI}
2134 1.1 mrg
2135 1.1 mrg @deftypefn {GIMPLE function} unsigned gimple_phi_capacity (gimple g)
2136 1.3 mrg Return the maximum number of arguments supported by @code{GIMPLE_PHI} @code{G}.
2137 1.1 mrg @end deftypefn
2138 1.1 mrg
2139 1.1 mrg @deftypefn {GIMPLE function} unsigned gimple_phi_num_args (gimple g)
2140 1.1 mrg Return the number of arguments in @code{GIMPLE_PHI} @code{G}. This must always
2141 1.1 mrg be exactly the number of incoming edges for the basic block
2142 1.3 mrg holding @code{G}.
2143 1.1 mrg @end deftypefn
2144 1.1 mrg
2145 1.1 mrg @deftypefn {GIMPLE function} tree gimple_phi_result (gimple g)
2146 1.3 mrg Return the @code{SSA} name created by @code{GIMPLE_PHI} @code{G}.
2147 1.1 mrg @end deftypefn
2148 1.1 mrg
2149 1.3 mrg @deftypefn {GIMPLE function} {tree *} gimple_phi_result_ptr (gimple g)
2150 1.3 mrg Return a pointer to the @code{SSA} name created by @code{GIMPLE_PHI} @code{G}.
2151 1.1 mrg @end deftypefn
2152 1.1 mrg
2153 1.5 mrg @deftypefn {GIMPLE function} void gimple_phi_set_result (gphi *g, tree result)
2154 1.3 mrg Set @code{RESULT} to be the @code{SSA} name created by @code{GIMPLE_PHI} @code{G}.
2155 1.1 mrg @end deftypefn
2156 1.1 mrg
2157 1.3 mrg @deftypefn {GIMPLE function} {struct phi_arg_d *} gimple_phi_arg (gimple g, index)
2158 1.1 mrg Return the @code{PHI} argument corresponding to incoming edge @code{INDEX} for
2159 1.3 mrg @code{GIMPLE_PHI} @code{G}.
2160 1.1 mrg @end deftypefn
2161 1.1 mrg
2162 1.5 mrg @deftypefn {GIMPLE function} void gimple_phi_set_arg (gphi *g, index, @
2163 1.5 mrg struct phi_arg_d * phiarg)
2164 1.1 mrg Set @code{PHIARG} to be the argument corresponding to incoming edge
2165 1.3 mrg @code{INDEX} for @code{GIMPLE_PHI} @code{G}.
2166 1.1 mrg @end deftypefn
2167 1.1 mrg
2168 1.1 mrg @node @code{GIMPLE_RESX}
2169 1.1 mrg @subsection @code{GIMPLE_RESX}
2170 1.1 mrg @cindex @code{GIMPLE_RESX}
2171 1.1 mrg
2172 1.5 mrg @deftypefn {GIMPLE function} gresx *gimple_build_resx (int region)
2173 1.1 mrg Build a @code{GIMPLE_RESX} statement which is a statement. This
2174 1.1 mrg statement is a placeholder for _Unwind_Resume before we know if a
2175 1.1 mrg function call or a branch is needed. @code{REGION} is the exception
2176 1.1 mrg region from which control is flowing.
2177 1.1 mrg @end deftypefn
2178 1.1 mrg
2179 1.5 mrg @deftypefn {GIMPLE function} int gimple_resx_region (const gresx *g)
2180 1.3 mrg Return the region number for @code{GIMPLE_RESX} @code{G}.
2181 1.1 mrg @end deftypefn
2182 1.1 mrg
2183 1.5 mrg @deftypefn {GIMPLE function} void gimple_resx_set_region (gresx *g, int region)
2184 1.3 mrg Set @code{REGION} to be the region number for @code{GIMPLE_RESX} @code{G}.
2185 1.1 mrg @end deftypefn
2186 1.1 mrg
2187 1.1 mrg @node @code{GIMPLE_RETURN}
2188 1.1 mrg @subsection @code{GIMPLE_RETURN}
2189 1.1 mrg @cindex @code{GIMPLE_RETURN}
2190 1.1 mrg
2191 1.5 mrg @deftypefn {GIMPLE function} greturn *gimple_build_return (tree retval)
2192 1.1 mrg Build a @code{GIMPLE_RETURN} statement whose return value is retval.
2193 1.1 mrg @end deftypefn
2194 1.1 mrg
2195 1.5 mrg @deftypefn {GIMPLE function} tree gimple_return_retval (const greturn *g)
2196 1.3 mrg Return the return value for @code{GIMPLE_RETURN} @code{G}.
2197 1.1 mrg @end deftypefn
2198 1.1 mrg
2199 1.5 mrg @deftypefn {GIMPLE function} void gimple_return_set_retval (greturn *g, @
2200 1.5 mrg tree retval)
2201 1.3 mrg Set @code{RETVAL} to be the return value for @code{GIMPLE_RETURN} @code{G}.
2202 1.1 mrg @end deftypefn
2203 1.1 mrg
2204 1.1 mrg @node @code{GIMPLE_SWITCH}
2205 1.1 mrg @subsection @code{GIMPLE_SWITCH}
2206 1.1 mrg @cindex @code{GIMPLE_SWITCH}
2207 1.1 mrg
2208 1.5 mrg @deftypefn {GIMPLE function} gswitch *gimple_build_switch (tree index, @
2209 1.5 mrg tree default_label, @code{vec}<tree> *args)
2210 1.3 mrg Build a @code{GIMPLE_SWITCH} statement. @code{INDEX} is the index variable
2211 1.3 mrg to switch on, and @code{DEFAULT_LABEL} represents the default label.
2212 1.3 mrg @code{ARGS} is a vector of @code{CASE_LABEL_EXPR} trees that contain the
2213 1.3 mrg non-default case labels. Each label is a tree of code @code{CASE_LABEL_EXPR}.
2214 1.1 mrg @end deftypefn
2215 1.1 mrg
2216 1.5 mrg @deftypefn {GIMPLE function} unsigned gimple_switch_num_labels ( @
2217 1.5 mrg const gswitch *g)
2218 1.1 mrg Return the number of labels associated with the switch statement
2219 1.3 mrg @code{G}.
2220 1.1 mrg @end deftypefn
2221 1.1 mrg
2222 1.5 mrg @deftypefn {GIMPLE function} void gimple_switch_set_num_labels (gswitch *g, @
2223 1.3 mrg unsigned nlabels)
2224 1.1 mrg Set @code{NLABELS} to be the number of labels for the switch statement
2225 1.3 mrg @code{G}.
2226 1.1 mrg @end deftypefn
2227 1.1 mrg
2228 1.5 mrg @deftypefn {GIMPLE function} tree gimple_switch_index (const gswitch *g)
2229 1.3 mrg Return the index variable used by the switch statement @code{G}.
2230 1.1 mrg @end deftypefn
2231 1.1 mrg
2232 1.5 mrg @deftypefn {GIMPLE function} void gimple_switch_set_index (gswitch *g, @
2233 1.5 mrg tree index)
2234 1.3 mrg Set @code{INDEX} to be the index variable for switch statement @code{G}.
2235 1.1 mrg @end deftypefn
2236 1.1 mrg
2237 1.5 mrg @deftypefn {GIMPLE function} tree gimple_switch_label (const gswitch *g, @
2238 1.5 mrg unsigned index)
2239 1.1 mrg Return the label numbered @code{INDEX}. The default label is 0, followed
2240 1.3 mrg by any labels in a switch statement.
2241 1.1 mrg @end deftypefn
2242 1.1 mrg
2243 1.5 mrg @deftypefn {GIMPLE function} void gimple_switch_set_label (gswitch *g, @
2244 1.5 mrg unsigned index, tree label)
2245 1.1 mrg Set the label number @code{INDEX} to @code{LABEL}. 0 is always the default
2246 1.3 mrg label.
2247 1.1 mrg @end deftypefn
2248 1.1 mrg
2249 1.5 mrg @deftypefn {GIMPLE function} tree gimple_switch_default_label ( @
2250 1.5 mrg const gswitch *g)
2251 1.3 mrg Return the default label for a switch statement.
2252 1.1 mrg @end deftypefn
2253 1.1 mrg
2254 1.5 mrg @deftypefn {GIMPLE function} void gimple_switch_set_default_label (gswitch *g, @
2255 1.3 mrg tree label)
2256 1.3 mrg Set the default label for a switch statement.
2257 1.1 mrg @end deftypefn
2258 1.1 mrg
2259 1.1 mrg
2260 1.1 mrg @node @code{GIMPLE_TRY}
2261 1.1 mrg @subsection @code{GIMPLE_TRY}
2262 1.1 mrg @cindex @code{GIMPLE_TRY}
2263 1.1 mrg
2264 1.5 mrg @deftypefn {GIMPLE function} gtry *gimple_build_try (gimple_seq eval, @
2265 1.3 mrg gimple_seq cleanup, unsigned int kind)
2266 1.1 mrg Build a @code{GIMPLE_TRY} statement. @code{EVAL} is a sequence with the
2267 1.1 mrg expression to evaluate. @code{CLEANUP} is a sequence of statements to
2268 1.1 mrg run at clean-up time. @code{KIND} is the enumeration value
2269 1.1 mrg @code{GIMPLE_TRY_CATCH} if this statement denotes a try/catch construct
2270 1.1 mrg or @code{GIMPLE_TRY_FINALLY} if this statement denotes a try/finally
2271 1.1 mrg construct.
2272 1.1 mrg @end deftypefn
2273 1.1 mrg
2274 1.3 mrg @deftypefn {GIMPLE function} {enum gimple_try_flags} gimple_try_kind (gimple g)
2275 1.1 mrg Return the kind of try block represented by @code{GIMPLE_TRY} @code{G}. This is
2276 1.3 mrg either @code{GIMPLE_TRY_CATCH} or @code{GIMPLE_TRY_FINALLY}.
2277 1.1 mrg @end deftypefn
2278 1.1 mrg
2279 1.1 mrg @deftypefn {GIMPLE function} bool gimple_try_catch_is_cleanup (gimple g)
2280 1.3 mrg Return the @code{GIMPLE_TRY_CATCH_IS_CLEANUP} flag.
2281 1.1 mrg @end deftypefn
2282 1.1 mrg
2283 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_try_eval (gimple g)
2284 1.1 mrg Return the sequence of statements used as the body for @code{GIMPLE_TRY}
2285 1.3 mrg @code{G}.
2286 1.1 mrg @end deftypefn
2287 1.1 mrg
2288 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_try_cleanup (gimple g)
2289 1.1 mrg Return the sequence of statements used as the cleanup body for
2290 1.3 mrg @code{GIMPLE_TRY} @code{G}.
2291 1.1 mrg @end deftypefn
2292 1.1 mrg
2293 1.3 mrg @deftypefn {GIMPLE function} void gimple_try_set_catch_is_cleanup (gimple g, @
2294 1.3 mrg bool catch_is_cleanup)
2295 1.3 mrg Set the @code{GIMPLE_TRY_CATCH_IS_CLEANUP} flag.
2296 1.1 mrg @end deftypefn
2297 1.1 mrg
2298 1.5 mrg @deftypefn {GIMPLE function} void gimple_try_set_eval (gtry *g, gimple_seq eval)
2299 1.1 mrg Set @code{EVAL} to be the sequence of statements to use as the body for
2300 1.3 mrg @code{GIMPLE_TRY} @code{G}.
2301 1.1 mrg @end deftypefn
2302 1.1 mrg
2303 1.5 mrg @deftypefn {GIMPLE function} void gimple_try_set_cleanup (gtry *g, @
2304 1.5 mrg gimple_seq cleanup)
2305 1.1 mrg Set @code{CLEANUP} to be the sequence of statements to use as the
2306 1.3 mrg cleanup body for @code{GIMPLE_TRY} @code{G}.
2307 1.1 mrg @end deftypefn
2308 1.1 mrg
2309 1.1 mrg @node @code{GIMPLE_WITH_CLEANUP_EXPR}
2310 1.1 mrg @subsection @code{GIMPLE_WITH_CLEANUP_EXPR}
2311 1.1 mrg @cindex @code{GIMPLE_WITH_CLEANUP_EXPR}
2312 1.1 mrg
2313 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_build_wce (gimple_seq cleanup)
2314 1.1 mrg Build a @code{GIMPLE_WITH_CLEANUP_EXPR} statement. @code{CLEANUP} is the
2315 1.1 mrg clean-up expression.
2316 1.1 mrg @end deftypefn
2317 1.1 mrg
2318 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_wce_cleanup (gimple g)
2319 1.3 mrg Return the cleanup sequence for cleanup statement @code{G}.
2320 1.1 mrg @end deftypefn
2321 1.1 mrg
2322 1.1 mrg @deftypefn {GIMPLE function} void gimple_wce_set_cleanup (gimple g, gimple_seq cleanup)
2323 1.3 mrg Set @code{CLEANUP} to be the cleanup sequence for @code{G}.
2324 1.1 mrg @end deftypefn
2325 1.1 mrg
2326 1.1 mrg @deftypefn {GIMPLE function} bool gimple_wce_cleanup_eh_only (gimple g)
2327 1.3 mrg Return the @code{CLEANUP_EH_ONLY} flag for a @code{WCE} tuple.
2328 1.1 mrg @end deftypefn
2329 1.1 mrg
2330 1.1 mrg @deftypefn {GIMPLE function} void gimple_wce_set_cleanup_eh_only (gimple g, bool eh_only_p)
2331 1.3 mrg Set the @code{CLEANUP_EH_ONLY} flag for a @code{WCE} tuple.
2332 1.1 mrg @end deftypefn
2333 1.1 mrg
2334 1.1 mrg
2335 1.3 mrg @node GIMPLE sequences
2336 1.3 mrg @section GIMPLE sequences
2337 1.3 mrg @cindex GIMPLE sequences
2338 1.1 mrg
2339 1.1 mrg GIMPLE sequences are the tuple equivalent of @code{STATEMENT_LIST}'s
2340 1.1 mrg used in @code{GENERIC}. They are used to chain statements together, and
2341 1.1 mrg when used in conjunction with sequence iterators, provide a
2342 1.1 mrg framework for iterating through statements.
2343 1.1 mrg
2344 1.1 mrg GIMPLE sequences are of type struct @code{gimple_sequence}, but are more
2345 1.1 mrg commonly passed by reference to functions dealing with sequences.
2346 1.1 mrg The type for a sequence pointer is @code{gimple_seq} which is the same
2347 1.1 mrg as struct @code{gimple_sequence} *. When declaring a local sequence,
2348 1.1 mrg you can define a local variable of type struct @code{gimple_sequence}.
2349 1.1 mrg When declaring a sequence allocated on the garbage collected
2350 1.1 mrg heap, use the function @code{gimple_seq_alloc} documented below.
2351 1.1 mrg
2352 1.1 mrg There are convenience functions for iterating through sequences
2353 1.1 mrg in the section entitled Sequence Iterators.
2354 1.1 mrg
2355 1.1 mrg Below is a list of functions to manipulate and query sequences.
2356 1.1 mrg
2357 1.1 mrg @deftypefn {GIMPLE function} void gimple_seq_add_stmt (gimple_seq *seq, gimple g)
2358 1.1 mrg Link a gimple statement to the end of the sequence *@code{SEQ} if @code{G} is
2359 1.1 mrg not @code{NULL}. If *@code{SEQ} is @code{NULL}, allocate a sequence before linking.
2360 1.1 mrg @end deftypefn
2361 1.1 mrg
2362 1.1 mrg @deftypefn {GIMPLE function} void gimple_seq_add_seq (gimple_seq *dest, gimple_seq src)
2363 1.1 mrg Append sequence @code{SRC} to the end of sequence *@code{DEST} if @code{SRC} is not
2364 1.1 mrg @code{NULL}. If *@code{DEST} is @code{NULL}, allocate a new sequence before
2365 1.1 mrg appending.
2366 1.1 mrg @end deftypefn
2367 1.1 mrg
2368 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_seq_deep_copy (gimple_seq src)
2369 1.1 mrg Perform a deep copy of sequence @code{SRC} and return the result.
2370 1.1 mrg @end deftypefn
2371 1.1 mrg
2372 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_seq_reverse (gimple_seq seq)
2373 1.1 mrg Reverse the order of the statements in the sequence @code{SEQ}. Return
2374 1.1 mrg @code{SEQ}.
2375 1.1 mrg @end deftypefn
2376 1.1 mrg
2377 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_seq_first (gimple_seq s)
2378 1.1 mrg Return the first statement in sequence @code{S}.
2379 1.1 mrg @end deftypefn
2380 1.1 mrg
2381 1.1 mrg @deftypefn {GIMPLE function} gimple gimple_seq_last (gimple_seq s)
2382 1.1 mrg Return the last statement in sequence @code{S}.
2383 1.1 mrg @end deftypefn
2384 1.1 mrg
2385 1.1 mrg @deftypefn {GIMPLE function} void gimple_seq_set_last (gimple_seq s, gimple last)
2386 1.1 mrg Set the last statement in sequence @code{S} to the statement in @code{LAST}.
2387 1.1 mrg @end deftypefn
2388 1.1 mrg
2389 1.1 mrg @deftypefn {GIMPLE function} void gimple_seq_set_first (gimple_seq s, gimple first)
2390 1.1 mrg Set the first statement in sequence @code{S} to the statement in @code{FIRST}.
2391 1.1 mrg @end deftypefn
2392 1.1 mrg
2393 1.1 mrg @deftypefn {GIMPLE function} void gimple_seq_init (gimple_seq s)
2394 1.1 mrg Initialize sequence @code{S} to an empty sequence.
2395 1.1 mrg @end deftypefn
2396 1.1 mrg
2397 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gimple_seq_alloc (void)
2398 1.1 mrg Allocate a new sequence in the garbage collected store and return
2399 1.1 mrg it.
2400 1.1 mrg @end deftypefn
2401 1.1 mrg
2402 1.1 mrg @deftypefn {GIMPLE function} void gimple_seq_copy (gimple_seq dest, gimple_seq src)
2403 1.1 mrg Copy the sequence @code{SRC} into the sequence @code{DEST}.
2404 1.1 mrg @end deftypefn
2405 1.1 mrg
2406 1.1 mrg @deftypefn {GIMPLE function} bool gimple_seq_empty_p (gimple_seq s)
2407 1.1 mrg Return true if the sequence @code{S} is empty.
2408 1.1 mrg @end deftypefn
2409 1.1 mrg
2410 1.1 mrg @deftypefn {GIMPLE function} gimple_seq bb_seq (basic_block bb)
2411 1.1 mrg Returns the sequence of statements in @code{BB}.
2412 1.1 mrg @end deftypefn
2413 1.1 mrg
2414 1.1 mrg @deftypefn {GIMPLE function} void set_bb_seq (basic_block bb, gimple_seq seq)
2415 1.1 mrg Sets the sequence of statements in @code{BB} to @code{SEQ}.
2416 1.1 mrg @end deftypefn
2417 1.1 mrg
2418 1.1 mrg @deftypefn {GIMPLE function} bool gimple_seq_singleton_p (gimple_seq seq)
2419 1.1 mrg Determine whether @code{SEQ} contains exactly one statement.
2420 1.1 mrg @end deftypefn
2421 1.1 mrg
2422 1.3 mrg @node Sequence iterators
2423 1.3 mrg @section Sequence iterators
2424 1.3 mrg @cindex Sequence iterators
2425 1.1 mrg
2426 1.1 mrg Sequence iterators are convenience constructs for iterating
2427 1.1 mrg through statements in a sequence. Given a sequence @code{SEQ}, here is
2428 1.1 mrg a typical use of gimple sequence iterators:
2429 1.1 mrg
2430 1.1 mrg @smallexample
2431 1.1 mrg gimple_stmt_iterator gsi;
2432 1.1 mrg
2433 1.1 mrg for (gsi = gsi_start (seq); !gsi_end_p (gsi); gsi_next (&gsi))
2434 1.1 mrg @{
2435 1.1 mrg gimple g = gsi_stmt (gsi);
2436 1.1 mrg /* Do something with gimple statement @code{G}. */
2437 1.1 mrg @}
2438 1.1 mrg @end smallexample
2439 1.1 mrg
2440 1.1 mrg Backward iterations are possible:
2441 1.1 mrg
2442 1.1 mrg @smallexample
2443 1.1 mrg for (gsi = gsi_last (seq); !gsi_end_p (gsi); gsi_prev (&gsi))
2444 1.1 mrg @end smallexample
2445 1.1 mrg
2446 1.1 mrg Forward and backward iterations on basic blocks are possible with
2447 1.1 mrg @code{gsi_start_bb} and @code{gsi_last_bb}.
2448 1.1 mrg
2449 1.1 mrg In the documentation below we sometimes refer to enum
2450 1.1 mrg @code{gsi_iterator_update}. The valid options for this enumeration are:
2451 1.1 mrg
2452 1.1 mrg @itemize @bullet
2453 1.1 mrg @item @code{GSI_NEW_STMT}
2454 1.1 mrg Only valid when a single statement is added. Move the iterator to it.
2455 1.1 mrg
2456 1.1 mrg @item @code{GSI_SAME_STMT}
2457 1.1 mrg Leave the iterator at the same statement.
2458 1.1 mrg
2459 1.1 mrg @item @code{GSI_CONTINUE_LINKING}
2460 1.1 mrg Move iterator to whatever position is suitable for linking other
2461 1.1 mrg statements in the same direction.
2462 1.1 mrg @end itemize
2463 1.1 mrg
2464 1.1 mrg Below is a list of the functions used to manipulate and use
2465 1.1 mrg statement iterators.
2466 1.1 mrg
2467 1.1 mrg @deftypefn {GIMPLE function} gimple_stmt_iterator gsi_start (gimple_seq seq)
2468 1.1 mrg Return a new iterator pointing to the sequence @code{SEQ}'s first
2469 1.1 mrg statement. If @code{SEQ} is empty, the iterator's basic block is @code{NULL}.
2470 1.1 mrg Use @code{gsi_start_bb} instead when the iterator needs to always have
2471 1.1 mrg the correct basic block set.
2472 1.1 mrg @end deftypefn
2473 1.1 mrg
2474 1.1 mrg @deftypefn {GIMPLE function} gimple_stmt_iterator gsi_start_bb (basic_block bb)
2475 1.1 mrg Return a new iterator pointing to the first statement in basic
2476 1.1 mrg block @code{BB}.
2477 1.1 mrg @end deftypefn
2478 1.1 mrg
2479 1.1 mrg @deftypefn {GIMPLE function} gimple_stmt_iterator gsi_last (gimple_seq seq)
2480 1.1 mrg Return a new iterator initially pointing to the last statement of
2481 1.1 mrg sequence @code{SEQ}. If @code{SEQ} is empty, the iterator's basic block is
2482 1.1 mrg @code{NULL}. Use @code{gsi_last_bb} instead when the iterator needs to always
2483 1.1 mrg have the correct basic block set.
2484 1.1 mrg @end deftypefn
2485 1.1 mrg
2486 1.1 mrg @deftypefn {GIMPLE function} gimple_stmt_iterator gsi_last_bb (basic_block bb)
2487 1.1 mrg Return a new iterator pointing to the last statement in basic
2488 1.1 mrg block @code{BB}.
2489 1.1 mrg @end deftypefn
2490 1.1 mrg
2491 1.1 mrg @deftypefn {GIMPLE function} bool gsi_end_p (gimple_stmt_iterator i)
2492 1.1 mrg Return @code{TRUE} if at the end of @code{I}.
2493 1.1 mrg @end deftypefn
2494 1.1 mrg
2495 1.1 mrg @deftypefn {GIMPLE function} bool gsi_one_before_end_p (gimple_stmt_iterator i)
2496 1.1 mrg Return @code{TRUE} if we're one statement before the end of @code{I}.
2497 1.1 mrg @end deftypefn
2498 1.1 mrg
2499 1.1 mrg @deftypefn {GIMPLE function} void gsi_next (gimple_stmt_iterator *i)
2500 1.1 mrg Advance the iterator to the next gimple statement.
2501 1.1 mrg @end deftypefn
2502 1.1 mrg
2503 1.1 mrg @deftypefn {GIMPLE function} void gsi_prev (gimple_stmt_iterator *i)
2504 1.1 mrg Advance the iterator to the previous gimple statement.
2505 1.1 mrg @end deftypefn
2506 1.1 mrg
2507 1.1 mrg @deftypefn {GIMPLE function} gimple gsi_stmt (gimple_stmt_iterator i)
2508 1.1 mrg Return the current stmt.
2509 1.1 mrg @end deftypefn
2510 1.1 mrg
2511 1.1 mrg @deftypefn {GIMPLE function} gimple_stmt_iterator gsi_after_labels (basic_block bb)
2512 1.1 mrg Return a block statement iterator that points to the first
2513 1.1 mrg non-label statement in block @code{BB}.
2514 1.1 mrg @end deftypefn
2515 1.1 mrg
2516 1.3 mrg @deftypefn {GIMPLE function} {gimple *} gsi_stmt_ptr (gimple_stmt_iterator *i)
2517 1.1 mrg Return a pointer to the current stmt.
2518 1.1 mrg @end deftypefn
2519 1.1 mrg
2520 1.1 mrg @deftypefn {GIMPLE function} basic_block gsi_bb (gimple_stmt_iterator i)
2521 1.1 mrg Return the basic block associated with this iterator.
2522 1.1 mrg @end deftypefn
2523 1.1 mrg
2524 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gsi_seq (gimple_stmt_iterator i)
2525 1.1 mrg Return the sequence associated with this iterator.
2526 1.1 mrg @end deftypefn
2527 1.1 mrg
2528 1.1 mrg @deftypefn {GIMPLE function} void gsi_remove (gimple_stmt_iterator *i, bool remove_eh_info)
2529 1.1 mrg Remove the current stmt from the sequence. The iterator is
2530 1.1 mrg updated to point to the next statement. When @code{REMOVE_EH_INFO} is
2531 1.1 mrg true we remove the statement pointed to by iterator @code{I} from the @code{EH}
2532 1.1 mrg tables. Otherwise we do not modify the @code{EH} tables. Generally,
2533 1.1 mrg @code{REMOVE_EH_INFO} should be true when the statement is going to be
2534 1.1 mrg removed from the @code{IL} and not reinserted elsewhere.
2535 1.1 mrg @end deftypefn
2536 1.1 mrg
2537 1.1 mrg @deftypefn {GIMPLE function} void gsi_link_seq_before (gimple_stmt_iterator *i, gimple_seq seq, enum gsi_iterator_update mode)
2538 1.1 mrg Links the sequence of statements @code{SEQ} before the statement pointed
2539 1.1 mrg by iterator @code{I}. @code{MODE} indicates what to do with the iterator
2540 1.1 mrg after insertion (see @code{enum gsi_iterator_update} above).
2541 1.1 mrg @end deftypefn
2542 1.1 mrg
2543 1.1 mrg @deftypefn {GIMPLE function} void gsi_link_before (gimple_stmt_iterator *i, gimple g, enum gsi_iterator_update mode)
2544 1.1 mrg Links statement @code{G} before the statement pointed-to by iterator @code{I}.
2545 1.1 mrg Updates iterator @code{I} according to @code{MODE}.
2546 1.1 mrg @end deftypefn
2547 1.1 mrg
2548 1.3 mrg @deftypefn {GIMPLE function} void gsi_link_seq_after (gimple_stmt_iterator *i, @
2549 1.3 mrg gimple_seq seq, enum gsi_iterator_update mode)
2550 1.1 mrg Links sequence @code{SEQ} after the statement pointed-to by iterator @code{I}.
2551 1.1 mrg @code{MODE} is as in @code{gsi_insert_after}.
2552 1.1 mrg @end deftypefn
2553 1.1 mrg
2554 1.3 mrg @deftypefn {GIMPLE function} void gsi_link_after (gimple_stmt_iterator *i, @
2555 1.3 mrg gimple g, enum gsi_iterator_update mode)
2556 1.1 mrg Links statement @code{G} after the statement pointed-to by iterator @code{I}.
2557 1.1 mrg @code{MODE} is as in @code{gsi_insert_after}.
2558 1.1 mrg @end deftypefn
2559 1.1 mrg
2560 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gsi_split_seq_after (gimple_stmt_iterator i)
2561 1.1 mrg Move all statements in the sequence after @code{I} to a new sequence.
2562 1.1 mrg Return this new sequence.
2563 1.1 mrg @end deftypefn
2564 1.1 mrg
2565 1.1 mrg @deftypefn {GIMPLE function} gimple_seq gsi_split_seq_before (gimple_stmt_iterator *i)
2566 1.1 mrg Move all statements in the sequence before @code{I} to a new sequence.
2567 1.1 mrg Return this new sequence.
2568 1.1 mrg @end deftypefn
2569 1.1 mrg
2570 1.3 mrg @deftypefn {GIMPLE function} void gsi_replace (gimple_stmt_iterator *i, @
2571 1.3 mrg gimple stmt, bool update_eh_info)
2572 1.1 mrg Replace the statement pointed-to by @code{I} to @code{STMT}. If @code{UPDATE_EH_INFO}
2573 1.1 mrg is true, the exception handling information of the original
2574 1.1 mrg statement is moved to the new statement.
2575 1.1 mrg @end deftypefn
2576 1.1 mrg
2577 1.3 mrg @deftypefn {GIMPLE function} void gsi_insert_before (gimple_stmt_iterator *i, @
2578 1.3 mrg gimple stmt, enum gsi_iterator_update mode)
2579 1.1 mrg Insert statement @code{STMT} before the statement pointed-to by iterator
2580 1.1 mrg @code{I}, update @code{STMT}'s basic block and scan it for new operands. @code{MODE}
2581 1.1 mrg specifies how to update iterator @code{I} after insertion (see enum
2582 1.1 mrg @code{gsi_iterator_update}).
2583 1.1 mrg @end deftypefn
2584 1.1 mrg
2585 1.3 mrg @deftypefn {GIMPLE function} void gsi_insert_seq_before (gimple_stmt_iterator *i, @
2586 1.3 mrg gimple_seq seq, enum gsi_iterator_update mode)
2587 1.1 mrg Like @code{gsi_insert_before}, but for all the statements in @code{SEQ}.
2588 1.1 mrg @end deftypefn
2589 1.1 mrg
2590 1.3 mrg @deftypefn {GIMPLE function} void gsi_insert_after (gimple_stmt_iterator *i, @
2591 1.3 mrg gimple stmt, enum gsi_iterator_update mode)
2592 1.1 mrg Insert statement @code{STMT} after the statement pointed-to by iterator
2593 1.1 mrg @code{I}, update @code{STMT}'s basic block and scan it for new operands. @code{MODE}
2594 1.1 mrg specifies how to update iterator @code{I} after insertion (see enum
2595 1.1 mrg @code{gsi_iterator_update}).
2596 1.1 mrg @end deftypefn
2597 1.1 mrg
2598 1.3 mrg @deftypefn {GIMPLE function} void gsi_insert_seq_after (gimple_stmt_iterator *i, @
2599 1.3 mrg gimple_seq seq, enum gsi_iterator_update mode)
2600 1.1 mrg Like @code{gsi_insert_after}, but for all the statements in @code{SEQ}.
2601 1.1 mrg @end deftypefn
2602 1.1 mrg
2603 1.1 mrg @deftypefn {GIMPLE function} gimple_stmt_iterator gsi_for_stmt (gimple stmt)
2604 1.1 mrg Finds iterator for @code{STMT}.
2605 1.1 mrg @end deftypefn
2606 1.1 mrg
2607 1.3 mrg @deftypefn {GIMPLE function} void gsi_move_after (gimple_stmt_iterator *from, @
2608 1.3 mrg gimple_stmt_iterator *to)
2609 1.1 mrg Move the statement at @code{FROM} so it comes right after the statement
2610 1.1 mrg at @code{TO}.
2611 1.1 mrg @end deftypefn
2612 1.1 mrg
2613 1.3 mrg @deftypefn {GIMPLE function} void gsi_move_before (gimple_stmt_iterator *from, @
2614 1.3 mrg gimple_stmt_iterator *to)
2615 1.1 mrg Move the statement at @code{FROM} so it comes right before the statement
2616 1.1 mrg at @code{TO}.
2617 1.1 mrg @end deftypefn
2618 1.1 mrg
2619 1.3 mrg @deftypefn {GIMPLE function} void gsi_move_to_bb_end (gimple_stmt_iterator *from, @
2620 1.3 mrg basic_block bb)
2621 1.1 mrg Move the statement at @code{FROM} to the end of basic block @code{BB}.
2622 1.1 mrg @end deftypefn
2623 1.1 mrg
2624 1.1 mrg @deftypefn {GIMPLE function} void gsi_insert_on_edge (edge e, gimple stmt)
2625 1.1 mrg Add @code{STMT} to the pending list of edge @code{E}. No actual insertion is
2626 1.1 mrg made until a call to @code{gsi_commit_edge_inserts}() is made.
2627 1.1 mrg @end deftypefn
2628 1.1 mrg
2629 1.1 mrg @deftypefn {GIMPLE function} void gsi_insert_seq_on_edge (edge e, gimple_seq seq)
2630 1.1 mrg Add the sequence of statements in @code{SEQ} to the pending list of edge
2631 1.1 mrg @code{E}. No actual insertion is made until a call to
2632 1.1 mrg @code{gsi_commit_edge_inserts}() is made.
2633 1.1 mrg @end deftypefn
2634 1.1 mrg
2635 1.1 mrg @deftypefn {GIMPLE function} basic_block gsi_insert_on_edge_immediate (edge e, gimple stmt)
2636 1.1 mrg Similar to @code{gsi_insert_on_edge}+@code{gsi_commit_edge_inserts}. If a new
2637 1.1 mrg block has to be created, it is returned.
2638 1.1 mrg @end deftypefn
2639 1.1 mrg
2640 1.1 mrg @deftypefn {GIMPLE function} void gsi_commit_one_edge_insert (edge e, basic_block *new_bb)
2641 1.1 mrg Commit insertions pending at edge @code{E}. If a new block is created,
2642 1.1 mrg set @code{NEW_BB} to this block, otherwise set it to @code{NULL}.
2643 1.1 mrg @end deftypefn
2644 1.1 mrg
2645 1.1 mrg @deftypefn {GIMPLE function} void gsi_commit_edge_inserts (void)
2646 1.1 mrg This routine will commit all pending edge insertions, creating
2647 1.1 mrg any new basic blocks which are necessary.
2648 1.1 mrg @end deftypefn
2649 1.1 mrg
2650 1.1 mrg
2651 1.1 mrg @node Adding a new GIMPLE statement code
2652 1.1 mrg @section Adding a new GIMPLE statement code
2653 1.1 mrg @cindex Adding a new GIMPLE statement code
2654 1.1 mrg
2655 1.1 mrg The first step in adding a new GIMPLE statement code, is
2656 1.1 mrg modifying the file @code{gimple.def}, which contains all the GIMPLE
2657 1.6 mrg codes. Then you must add a corresponding gimple subclass
2658 1.5 mrg located in @code{gimple.h}. This in turn, will require you to add a
2659 1.5 mrg corresponding @code{GTY} tag in @code{gsstruct.def}, and code to handle
2660 1.5 mrg this tag in @code{gss_for_code} which is located in @code{gimple.c}.
2661 1.1 mrg
2662 1.1 mrg In order for the garbage collector to know the size of the
2663 1.1 mrg structure you created in @code{gimple.h}, you need to add a case to
2664 1.1 mrg handle your new GIMPLE statement in @code{gimple_size} which is located
2665 1.1 mrg in @code{gimple.c}.
2666 1.1 mrg
2667 1.1 mrg You will probably want to create a function to build the new
2668 1.1 mrg gimple statement in @code{gimple.c}. The function should be called
2669 1.3 mrg @code{gimple_build_@var{new-tuple-name}}, and should return the new tuple
2670 1.6 mrg as a pointer to the appropriate gimple subclass.
2671 1.1 mrg
2672 1.1 mrg If your new statement requires accessors for any members or
2673 1.1 mrg operands it may have, put simple inline accessors in
2674 1.1 mrg @code{gimple.h} and any non-trivial accessors in @code{gimple.c} with a
2675 1.1 mrg corresponding prototype in @code{gimple.h}.
2676 1.1 mrg
2677 1.5 mrg You should add the new statement subclass to the class hierarchy diagram
2678 1.5 mrg in @code{gimple.texi}.
2679 1.5 mrg
2680 1.1 mrg
2681 1.1 mrg @node Statement and operand traversals
2682 1.1 mrg @section Statement and operand traversals
2683 1.1 mrg @cindex Statement and operand traversals
2684 1.3 mrg
2685 1.1 mrg There are two functions available for walking statements and
2686 1.1 mrg sequences: @code{walk_gimple_stmt} and @code{walk_gimple_seq},
2687 1.1 mrg accordingly, and a third function for walking the operands in a
2688 1.1 mrg statement: @code{walk_gimple_op}.
2689 1.1 mrg
2690 1.3 mrg @deftypefn {GIMPLE function} tree walk_gimple_stmt (gimple_stmt_iterator *gsi, @
2691 1.3 mrg walk_stmt_fn callback_stmt, walk_tree_fn callback_op, struct walk_stmt_info *wi)
2692 1.1 mrg This function is used to walk the current statement in @code{GSI},
2693 1.1 mrg optionally using traversal state stored in @code{WI}. If @code{WI} is @code{NULL}, no
2694 1.1 mrg state is kept during the traversal.
2695 1.1 mrg
2696 1.1 mrg The callback @code{CALLBACK_STMT} is called. If @code{CALLBACK_STMT} returns
2697 1.1 mrg true, it means that the callback function has handled all the
2698 1.1 mrg operands of the statement and it is not necessary to walk its
2699 1.1 mrg operands.
2700 1.1 mrg
2701 1.1 mrg If @code{CALLBACK_STMT} is @code{NULL} or it returns false, @code{CALLBACK_OP} is
2702 1.1 mrg called on each operand of the statement via @code{walk_gimple_op}. If
2703 1.1 mrg @code{walk_gimple_op} returns non-@code{NULL} for any operand, the remaining
2704 1.1 mrg operands are not scanned.
2705 1.1 mrg
2706 1.1 mrg The return value is that returned by the last call to
2707 1.1 mrg @code{walk_gimple_op}, or @code{NULL_TREE} if no @code{CALLBACK_OP} is specified.
2708 1.1 mrg @end deftypefn
2709 1.1 mrg
2710 1.1 mrg
2711 1.3 mrg @deftypefn {GIMPLE function} tree walk_gimple_op (gimple stmt, @
2712 1.3 mrg walk_tree_fn callback_op, struct walk_stmt_info *wi)
2713 1.1 mrg Use this function to walk the operands of statement @code{STMT}. Every
2714 1.1 mrg operand is walked via @code{walk_tree} with optional state information
2715 1.1 mrg in @code{WI}.
2716 1.1 mrg
2717 1.1 mrg @code{CALLBACK_OP} is called on each operand of @code{STMT} via @code{walk_tree}.
2718 1.1 mrg Additional parameters to @code{walk_tree} must be stored in @code{WI}. For
2719 1.1 mrg each operand @code{OP}, @code{walk_tree} is called as:
2720 1.1 mrg
2721 1.1 mrg @smallexample
2722 1.3 mrg walk_tree (&@code{OP}, @code{CALLBACK_OP}, @code{WI}, @code{PSET})
2723 1.1 mrg @end smallexample
2724 1.1 mrg
2725 1.1 mrg If @code{CALLBACK_OP} returns non-@code{NULL} for an operand, the remaining
2726 1.1 mrg operands are not scanned. The return value is that returned by
2727 1.1 mrg the last call to @code{walk_tree}, or @code{NULL_TREE} if no @code{CALLBACK_OP} is
2728 1.1 mrg specified.
2729 1.1 mrg @end deftypefn
2730 1.1 mrg
2731 1.1 mrg
2732 1.3 mrg @deftypefn {GIMPLE function} tree walk_gimple_seq (gimple_seq seq, @
2733 1.3 mrg walk_stmt_fn callback_stmt, walk_tree_fn callback_op, struct walk_stmt_info *wi)
2734 1.1 mrg This function walks all the statements in the sequence @code{SEQ}
2735 1.1 mrg calling @code{walk_gimple_stmt} on each one. @code{WI} is as in
2736 1.1 mrg @code{walk_gimple_stmt}. If @code{walk_gimple_stmt} returns non-@code{NULL}, the walk
2737 1.1 mrg is stopped and the value returned. Otherwise, all the statements
2738 1.1 mrg are walked and @code{NULL_TREE} returned.
2739 1.1 mrg @end deftypefn
2740