* configure.in: Pass a computed --program-transform-name
[official-gcc.git] / gcc / calls.c
blobfa4f93473c53061f80fe602352e6939c3da679bb
1 /* Convert function calls to rtl insns, for GNU C compiler.
2 Copyright (C) 1989, 1992, 1993, 1994, 1995, 1996, 1997, 1998,
3 1999, 2000, 2001, 2002, 2003 Free Software Foundation, Inc.
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 2, or (at your option) any later
10 version.
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING. If not, write to the Free
19 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
20 02111-1307, USA. */
22 #include "config.h"
23 #include "system.h"
24 #include "coretypes.h"
25 #include "tm.h"
26 #include "rtl.h"
27 #include "tree.h"
28 #include "flags.h"
29 #include "expr.h"
30 #include "optabs.h"
31 #include "libfuncs.h"
32 #include "function.h"
33 #include "regs.h"
34 #include "toplev.h"
35 #include "output.h"
36 #include "tm_p.h"
37 #include "timevar.h"
38 #include "sbitmap.h"
39 #include "langhooks.h"
40 #include "target.h"
41 #include "cgraph.h"
42 #include "except.h"
44 #ifndef STACK_POINTER_OFFSET
45 #define STACK_POINTER_OFFSET 0
46 #endif
48 /* Like PREFERRED_STACK_BOUNDARY but in units of bytes, not bits. */
49 #define STACK_BYTES (PREFERRED_STACK_BOUNDARY / BITS_PER_UNIT)
51 /* Data structure and subroutines used within expand_call. */
53 struct arg_data
55 /* Tree node for this argument. */
56 tree tree_value;
57 /* Mode for value; TYPE_MODE unless promoted. */
58 enum machine_mode mode;
59 /* Current RTL value for argument, or 0 if it isn't precomputed. */
60 rtx value;
61 /* Initially-compute RTL value for argument; only for const functions. */
62 rtx initial_value;
63 /* Register to pass this argument in, 0 if passed on stack, or an
64 PARALLEL if the arg is to be copied into multiple non-contiguous
65 registers. */
66 rtx reg;
67 /* Register to pass this argument in when generating tail call sequence.
68 This is not the same register as for normal calls on machines with
69 register windows. */
70 rtx tail_call_reg;
71 /* If REG was promoted from the actual mode of the argument expression,
72 indicates whether the promotion is sign- or zero-extended. */
73 int unsignedp;
74 /* Number of registers to use. 0 means put the whole arg in registers.
75 Also 0 if not passed in registers. */
76 int partial;
77 /* Nonzero if argument must be passed on stack.
78 Note that some arguments may be passed on the stack
79 even though pass_on_stack is zero, just because FUNCTION_ARG says so.
80 pass_on_stack identifies arguments that *cannot* go in registers. */
81 int pass_on_stack;
82 /* Some fields packaged up for locate_and_pad_parm. */
83 struct locate_and_pad_arg_data locate;
84 /* Location on the stack at which parameter should be stored. The store
85 has already been done if STACK == VALUE. */
86 rtx stack;
87 /* Location on the stack of the start of this argument slot. This can
88 differ from STACK if this arg pads downward. This location is known
89 to be aligned to FUNCTION_ARG_BOUNDARY. */
90 rtx stack_slot;
91 /* Place that this stack area has been saved, if needed. */
92 rtx save_area;
93 /* If an argument's alignment does not permit direct copying into registers,
94 copy in smaller-sized pieces into pseudos. These are stored in a
95 block pointed to by this field. The next field says how many
96 word-sized pseudos we made. */
97 rtx *aligned_regs;
98 int n_aligned_regs;
101 /* A vector of one char per byte of stack space. A byte if nonzero if
102 the corresponding stack location has been used.
103 This vector is used to prevent a function call within an argument from
104 clobbering any stack already set up. */
105 static char *stack_usage_map;
107 /* Size of STACK_USAGE_MAP. */
108 static int highest_outgoing_arg_in_use;
110 /* A bitmap of virtual-incoming stack space. Bit is set if the corresponding
111 stack location's tail call argument has been already stored into the stack.
112 This bitmap is used to prevent sibling call optimization if function tries
113 to use parent's incoming argument slots when they have been already
114 overwritten with tail call arguments. */
115 static sbitmap stored_args_map;
117 /* stack_arg_under_construction is nonzero when an argument may be
118 initialized with a constructor call (including a C function that
119 returns a BLKmode struct) and expand_call must take special action
120 to make sure the object being constructed does not overlap the
121 argument list for the constructor call. */
122 int stack_arg_under_construction;
124 static int calls_function (tree, int);
125 static int calls_function_1 (tree, int);
127 static void emit_call_1 (rtx, tree, tree, HOST_WIDE_INT, HOST_WIDE_INT,
128 HOST_WIDE_INT, rtx, rtx, int, rtx, int,
129 CUMULATIVE_ARGS *);
130 static void precompute_register_parameters (int, struct arg_data *, int *);
131 static int store_one_arg (struct arg_data *, rtx, int, int, int);
132 static void store_unaligned_arguments_into_pseudos (struct arg_data *, int);
133 static int finalize_must_preallocate (int, int, struct arg_data *,
134 struct args_size *);
135 static void precompute_arguments (int, int, struct arg_data *);
136 static int compute_argument_block_size (int, struct args_size *, int);
137 static void initialize_argument_information (int, struct arg_data *,
138 struct args_size *, int, tree,
139 tree, CUMULATIVE_ARGS *, int,
140 rtx *, int *, int *, int *);
141 static void compute_argument_addresses (struct arg_data *, rtx, int);
142 static rtx rtx_for_function_call (tree, tree);
143 static void load_register_parameters (struct arg_data *, int, rtx *, int,
144 int, int *);
145 static rtx emit_library_call_value_1 (int, rtx, rtx, enum libcall_type,
146 enum machine_mode, int, va_list);
147 static int special_function_p (tree, int);
148 static rtx try_to_integrate (tree, tree, rtx, int, tree, rtx);
149 static int check_sibcall_argument_overlap_1 (rtx);
150 static int check_sibcall_argument_overlap (rtx, struct arg_data *, int);
152 static int combine_pending_stack_adjustment_and_call (int, struct args_size *,
153 int);
154 static tree fix_unsafe_tree (tree);
156 #ifdef REG_PARM_STACK_SPACE
157 static rtx save_fixed_argument_area (int, rtx, int *, int *);
158 static void restore_fixed_argument_area (rtx, rtx, int, int);
159 #endif
161 /* If WHICH is 1, return 1 if EXP contains a call to the built-in function
162 `alloca'.
164 If WHICH is 0, return 1 if EXP contains a call to any function.
165 Actually, we only need return 1 if evaluating EXP would require pushing
166 arguments on the stack, but that is too difficult to compute, so we just
167 assume any function call might require the stack. */
169 static tree calls_function_save_exprs;
171 static int
172 calls_function (tree exp, int which)
174 int val;
176 calls_function_save_exprs = 0;
177 val = calls_function_1 (exp, which);
178 calls_function_save_exprs = 0;
179 return val;
182 /* Recursive function to do the work of above function. */
184 static int
185 calls_function_1 (tree exp, int which)
187 int i;
188 enum tree_code code = TREE_CODE (exp);
189 int class = TREE_CODE_CLASS (code);
190 int length = first_rtl_op (code);
192 /* If this code is language-specific, we don't know what it will do. */
193 if ((int) code >= NUM_TREE_CODES)
194 return 1;
196 switch (code)
198 case CALL_EXPR:
199 if (which == 0)
200 return 1;
201 else if ((TREE_CODE (TREE_TYPE (TREE_TYPE (TREE_OPERAND (exp, 0))))
202 == FUNCTION_TYPE)
203 && (TYPE_RETURNS_STACK_DEPRESSED
204 (TREE_TYPE (TREE_TYPE (TREE_OPERAND (exp, 0))))))
205 return 1;
206 else if (TREE_CODE (TREE_OPERAND (exp, 0)) == ADDR_EXPR
207 && (TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0))
208 == FUNCTION_DECL)
209 && (special_function_p (TREE_OPERAND (TREE_OPERAND (exp, 0), 0),
211 & ECF_MAY_BE_ALLOCA))
212 return 1;
214 break;
216 case CONSTRUCTOR:
218 tree tem;
220 for (tem = CONSTRUCTOR_ELTS (exp); tem != 0; tem = TREE_CHAIN (tem))
221 if (calls_function_1 (TREE_VALUE (tem), which))
222 return 1;
225 return 0;
227 case SAVE_EXPR:
228 if (SAVE_EXPR_RTL (exp) != 0)
229 return 0;
230 if (value_member (exp, calls_function_save_exprs))
231 return 0;
232 calls_function_save_exprs = tree_cons (NULL_TREE, exp,
233 calls_function_save_exprs);
234 return (TREE_OPERAND (exp, 0) != 0
235 && calls_function_1 (TREE_OPERAND (exp, 0), which));
237 case BLOCK:
239 tree local;
240 tree subblock;
242 for (local = BLOCK_VARS (exp); local; local = TREE_CHAIN (local))
243 if (DECL_INITIAL (local) != 0
244 && calls_function_1 (DECL_INITIAL (local), which))
245 return 1;
247 for (subblock = BLOCK_SUBBLOCKS (exp);
248 subblock;
249 subblock = TREE_CHAIN (subblock))
250 if (calls_function_1 (subblock, which))
251 return 1;
253 return 0;
255 case TREE_LIST:
256 for (; exp != 0; exp = TREE_CHAIN (exp))
257 if (calls_function_1 (TREE_VALUE (exp), which))
258 return 1;
259 return 0;
261 default:
262 break;
265 /* Only expressions and blocks can contain calls. */
266 if (! IS_EXPR_CODE_CLASS (class) && class != 'b')
267 return 0;
269 for (i = 0; i < length; i++)
270 if (TREE_OPERAND (exp, i) != 0
271 && calls_function_1 (TREE_OPERAND (exp, i), which))
272 return 1;
274 return 0;
277 /* Force FUNEXP into a form suitable for the address of a CALL,
278 and return that as an rtx. Also load the static chain register
279 if FNDECL is a nested function.
281 CALL_FUSAGE points to a variable holding the prospective
282 CALL_INSN_FUNCTION_USAGE information. */
285 prepare_call_address (rtx funexp, tree fndecl, rtx *call_fusage,
286 int reg_parm_seen, int sibcallp)
288 rtx static_chain_value = 0;
290 funexp = protect_from_queue (funexp, 0);
292 if (fndecl != 0)
293 /* Get possible static chain value for nested function in C. */
294 static_chain_value = lookup_static_chain (fndecl);
296 /* Make a valid memory address and copy constants thru pseudo-regs,
297 but not for a constant address if -fno-function-cse. */
298 if (GET_CODE (funexp) != SYMBOL_REF)
299 /* If we are using registers for parameters, force the
300 function address into a register now. */
301 funexp = ((SMALL_REGISTER_CLASSES && reg_parm_seen)
302 ? force_not_mem (memory_address (FUNCTION_MODE, funexp))
303 : memory_address (FUNCTION_MODE, funexp));
304 else if (! sibcallp)
306 #ifndef NO_FUNCTION_CSE
307 if (optimize && ! flag_no_function_cse)
308 #ifdef NO_RECURSIVE_FUNCTION_CSE
309 if (fndecl != current_function_decl)
310 #endif
311 funexp = force_reg (Pmode, funexp);
312 #endif
315 if (static_chain_value != 0)
317 emit_move_insn (static_chain_rtx, static_chain_value);
319 if (GET_CODE (static_chain_rtx) == REG)
320 use_reg (call_fusage, static_chain_rtx);
323 return funexp;
326 /* Generate instructions to call function FUNEXP,
327 and optionally pop the results.
328 The CALL_INSN is the first insn generated.
330 FNDECL is the declaration node of the function. This is given to the
331 macro RETURN_POPS_ARGS to determine whether this function pops its own args.
333 FUNTYPE is the data type of the function. This is given to the macro
334 RETURN_POPS_ARGS to determine whether this function pops its own args.
335 We used to allow an identifier for library functions, but that doesn't
336 work when the return type is an aggregate type and the calling convention
337 says that the pointer to this aggregate is to be popped by the callee.
339 STACK_SIZE is the number of bytes of arguments on the stack,
340 ROUNDED_STACK_SIZE is that number rounded up to
341 PREFERRED_STACK_BOUNDARY; zero if the size is variable. This is
342 both to put into the call insn and to generate explicit popping
343 code if necessary.
345 STRUCT_VALUE_SIZE is the number of bytes wanted in a structure value.
346 It is zero if this call doesn't want a structure value.
348 NEXT_ARG_REG is the rtx that results from executing
349 FUNCTION_ARG (args_so_far, VOIDmode, void_type_node, 1)
350 just after all the args have had their registers assigned.
351 This could be whatever you like, but normally it is the first
352 arg-register beyond those used for args in this call,
353 or 0 if all the arg-registers are used in this call.
354 It is passed on to `gen_call' so you can put this info in the call insn.
356 VALREG is a hard register in which a value is returned,
357 or 0 if the call does not return a value.
359 OLD_INHIBIT_DEFER_POP is the value that `inhibit_defer_pop' had before
360 the args to this call were processed.
361 We restore `inhibit_defer_pop' to that value.
363 CALL_FUSAGE is either empty or an EXPR_LIST of USE expressions that
364 denote registers used by the called function. */
366 static void
367 emit_call_1 (rtx funexp, tree fndecl ATTRIBUTE_UNUSED, tree funtype ATTRIBUTE_UNUSED,
368 HOST_WIDE_INT stack_size ATTRIBUTE_UNUSED,
369 HOST_WIDE_INT rounded_stack_size,
370 HOST_WIDE_INT struct_value_size ATTRIBUTE_UNUSED,
371 rtx next_arg_reg ATTRIBUTE_UNUSED, rtx valreg,
372 int old_inhibit_defer_pop, rtx call_fusage, int ecf_flags,
373 CUMULATIVE_ARGS *args_so_far ATTRIBUTE_UNUSED)
375 rtx rounded_stack_size_rtx = GEN_INT (rounded_stack_size);
376 rtx call_insn;
377 int already_popped = 0;
378 HOST_WIDE_INT n_popped = RETURN_POPS_ARGS (fndecl, funtype, stack_size);
379 #if defined (HAVE_call) && defined (HAVE_call_value)
380 rtx struct_value_size_rtx;
381 struct_value_size_rtx = GEN_INT (struct_value_size);
382 #endif
384 #ifdef CALL_POPS_ARGS
385 n_popped += CALL_POPS_ARGS (* args_so_far);
386 #endif
388 /* Ensure address is valid. SYMBOL_REF is already valid, so no need,
389 and we don't want to load it into a register as an optimization,
390 because prepare_call_address already did it if it should be done. */
391 if (GET_CODE (funexp) != SYMBOL_REF)
392 funexp = memory_address (FUNCTION_MODE, funexp);
394 #if defined (HAVE_sibcall_pop) && defined (HAVE_sibcall_value_pop)
395 if ((ecf_flags & ECF_SIBCALL)
396 && HAVE_sibcall_pop && HAVE_sibcall_value_pop
397 && (n_popped > 0 || stack_size == 0))
399 rtx n_pop = GEN_INT (n_popped);
400 rtx pat;
402 /* If this subroutine pops its own args, record that in the call insn
403 if possible, for the sake of frame pointer elimination. */
405 if (valreg)
406 pat = GEN_SIBCALL_VALUE_POP (valreg,
407 gen_rtx_MEM (FUNCTION_MODE, funexp),
408 rounded_stack_size_rtx, next_arg_reg,
409 n_pop);
410 else
411 pat = GEN_SIBCALL_POP (gen_rtx_MEM (FUNCTION_MODE, funexp),
412 rounded_stack_size_rtx, next_arg_reg, n_pop);
414 emit_call_insn (pat);
415 already_popped = 1;
417 else
418 #endif
420 #if defined (HAVE_call_pop) && defined (HAVE_call_value_pop)
421 /* If the target has "call" or "call_value" insns, then prefer them
422 if no arguments are actually popped. If the target does not have
423 "call" or "call_value" insns, then we must use the popping versions
424 even if the call has no arguments to pop. */
425 #if defined (HAVE_call) && defined (HAVE_call_value)
426 if (HAVE_call && HAVE_call_value && HAVE_call_pop && HAVE_call_value_pop
427 && n_popped > 0 && ! (ecf_flags & ECF_SP_DEPRESSED))
428 #else
429 if (HAVE_call_pop && HAVE_call_value_pop)
430 #endif
432 rtx n_pop = GEN_INT (n_popped);
433 rtx pat;
435 /* If this subroutine pops its own args, record that in the call insn
436 if possible, for the sake of frame pointer elimination. */
438 if (valreg)
439 pat = GEN_CALL_VALUE_POP (valreg,
440 gen_rtx_MEM (FUNCTION_MODE, funexp),
441 rounded_stack_size_rtx, next_arg_reg, n_pop);
442 else
443 pat = GEN_CALL_POP (gen_rtx_MEM (FUNCTION_MODE, funexp),
444 rounded_stack_size_rtx, next_arg_reg, n_pop);
446 emit_call_insn (pat);
447 already_popped = 1;
449 else
450 #endif
452 #if defined (HAVE_sibcall) && defined (HAVE_sibcall_value)
453 if ((ecf_flags & ECF_SIBCALL)
454 && HAVE_sibcall && HAVE_sibcall_value)
456 if (valreg)
457 emit_call_insn (GEN_SIBCALL_VALUE (valreg,
458 gen_rtx_MEM (FUNCTION_MODE, funexp),
459 rounded_stack_size_rtx,
460 next_arg_reg, NULL_RTX));
461 else
462 emit_call_insn (GEN_SIBCALL (gen_rtx_MEM (FUNCTION_MODE, funexp),
463 rounded_stack_size_rtx, next_arg_reg,
464 struct_value_size_rtx));
466 else
467 #endif
469 #if defined (HAVE_call) && defined (HAVE_call_value)
470 if (HAVE_call && HAVE_call_value)
472 if (valreg)
473 emit_call_insn (GEN_CALL_VALUE (valreg,
474 gen_rtx_MEM (FUNCTION_MODE, funexp),
475 rounded_stack_size_rtx, next_arg_reg,
476 NULL_RTX));
477 else
478 emit_call_insn (GEN_CALL (gen_rtx_MEM (FUNCTION_MODE, funexp),
479 rounded_stack_size_rtx, next_arg_reg,
480 struct_value_size_rtx));
482 else
483 #endif
484 abort ();
486 /* Find the call we just emitted. */
487 call_insn = last_call_insn ();
489 /* Mark memory as used for "pure" function call. */
490 if (ecf_flags & ECF_PURE)
491 call_fusage
492 = gen_rtx_EXPR_LIST
493 (VOIDmode,
494 gen_rtx_USE (VOIDmode,
495 gen_rtx_MEM (BLKmode, gen_rtx_SCRATCH (VOIDmode))),
496 call_fusage);
498 /* Put the register usage information there. */
499 add_function_usage_to (call_insn, call_fusage);
501 /* If this is a const call, then set the insn's unchanging bit. */
502 if (ecf_flags & (ECF_CONST | ECF_PURE))
503 CONST_OR_PURE_CALL_P (call_insn) = 1;
505 /* If this call can't throw, attach a REG_EH_REGION reg note to that
506 effect. */
507 if (ecf_flags & ECF_NOTHROW)
508 REG_NOTES (call_insn) = gen_rtx_EXPR_LIST (REG_EH_REGION, const0_rtx,
509 REG_NOTES (call_insn));
510 else
511 note_eh_region_may_contain_throw ();
513 if (ecf_flags & ECF_NORETURN)
514 REG_NOTES (call_insn) = gen_rtx_EXPR_LIST (REG_NORETURN, const0_rtx,
515 REG_NOTES (call_insn));
516 if (ecf_flags & ECF_ALWAYS_RETURN)
517 REG_NOTES (call_insn) = gen_rtx_EXPR_LIST (REG_ALWAYS_RETURN, const0_rtx,
518 REG_NOTES (call_insn));
520 if (ecf_flags & ECF_RETURNS_TWICE)
522 REG_NOTES (call_insn) = gen_rtx_EXPR_LIST (REG_SETJMP, const0_rtx,
523 REG_NOTES (call_insn));
524 current_function_calls_setjmp = 1;
527 SIBLING_CALL_P (call_insn) = ((ecf_flags & ECF_SIBCALL) != 0);
529 /* Restore this now, so that we do defer pops for this call's args
530 if the context of the call as a whole permits. */
531 inhibit_defer_pop = old_inhibit_defer_pop;
533 /* Don't bother cleaning up after a noreturn function. */
534 if (ecf_flags & (ECF_NORETURN | ECF_LONGJMP))
535 return;
537 if (n_popped > 0)
539 if (!already_popped)
540 CALL_INSN_FUNCTION_USAGE (call_insn)
541 = gen_rtx_EXPR_LIST (VOIDmode,
542 gen_rtx_CLOBBER (VOIDmode, stack_pointer_rtx),
543 CALL_INSN_FUNCTION_USAGE (call_insn));
544 rounded_stack_size -= n_popped;
545 rounded_stack_size_rtx = GEN_INT (rounded_stack_size);
546 stack_pointer_delta -= n_popped;
549 if (!ACCUMULATE_OUTGOING_ARGS)
551 /* If returning from the subroutine does not automatically pop the args,
552 we need an instruction to pop them sooner or later.
553 Perhaps do it now; perhaps just record how much space to pop later.
555 If returning from the subroutine does pop the args, indicate that the
556 stack pointer will be changed. */
558 if (rounded_stack_size != 0)
560 if (ecf_flags & ECF_SP_DEPRESSED)
561 /* Just pretend we did the pop. */
562 stack_pointer_delta -= rounded_stack_size;
563 else if (flag_defer_pop && inhibit_defer_pop == 0
564 && ! (ecf_flags & (ECF_CONST | ECF_PURE)))
565 pending_stack_adjust += rounded_stack_size;
566 else
567 adjust_stack (rounded_stack_size_rtx);
570 /* When we accumulate outgoing args, we must avoid any stack manipulations.
571 Restore the stack pointer to its original value now. Usually
572 ACCUMULATE_OUTGOING_ARGS targets don't get here, but there are exceptions.
573 On i386 ACCUMULATE_OUTGOING_ARGS can be enabled on demand, and
574 popping variants of functions exist as well.
576 ??? We may optimize similar to defer_pop above, but it is
577 probably not worthwhile.
579 ??? It will be worthwhile to enable combine_stack_adjustments even for
580 such machines. */
581 else if (n_popped)
582 anti_adjust_stack (GEN_INT (n_popped));
585 /* Determine if the function identified by NAME and FNDECL is one with
586 special properties we wish to know about.
588 For example, if the function might return more than one time (setjmp), then
589 set RETURNS_TWICE to a nonzero value.
591 Similarly set LONGJMP for if the function is in the longjmp family.
593 Set MAY_BE_ALLOCA for any memory allocation function that might allocate
594 space from the stack such as alloca. */
596 static int
597 special_function_p (tree fndecl, int flags)
599 if (! (flags & ECF_MALLOC)
600 && fndecl && DECL_NAME (fndecl)
601 && IDENTIFIER_LENGTH (DECL_NAME (fndecl)) <= 17
602 /* Exclude functions not at the file scope, or not `extern',
603 since they are not the magic functions we would otherwise
604 think they are.
605 FIXME: this should be handled with attributes, not with this
606 hacky imitation of DECL_ASSEMBLER_NAME. It's (also) wrong
607 because you can declare fork() inside a function if you
608 wish. */
609 && (DECL_CONTEXT (fndecl) == NULL_TREE
610 || TREE_CODE (DECL_CONTEXT (fndecl)) == TRANSLATION_UNIT_DECL)
611 && TREE_PUBLIC (fndecl))
613 const char *name = IDENTIFIER_POINTER (DECL_NAME (fndecl));
614 const char *tname = name;
616 /* We assume that alloca will always be called by name. It
617 makes no sense to pass it as a pointer-to-function to
618 anything that does not understand its behavior. */
619 if (((IDENTIFIER_LENGTH (DECL_NAME (fndecl)) == 6
620 && name[0] == 'a'
621 && ! strcmp (name, "alloca"))
622 || (IDENTIFIER_LENGTH (DECL_NAME (fndecl)) == 16
623 && name[0] == '_'
624 && ! strcmp (name, "__builtin_alloca"))))
625 flags |= ECF_MAY_BE_ALLOCA;
627 /* Disregard prefix _, __ or __x. */
628 if (name[0] == '_')
630 if (name[1] == '_' && name[2] == 'x')
631 tname += 3;
632 else if (name[1] == '_')
633 tname += 2;
634 else
635 tname += 1;
638 if (tname[0] == 's')
640 if ((tname[1] == 'e'
641 && (! strcmp (tname, "setjmp")
642 || ! strcmp (tname, "setjmp_syscall")))
643 || (tname[1] == 'i'
644 && ! strcmp (tname, "sigsetjmp"))
645 || (tname[1] == 'a'
646 && ! strcmp (tname, "savectx")))
647 flags |= ECF_RETURNS_TWICE;
649 if (tname[1] == 'i'
650 && ! strcmp (tname, "siglongjmp"))
651 flags |= ECF_LONGJMP;
653 else if ((tname[0] == 'q' && tname[1] == 's'
654 && ! strcmp (tname, "qsetjmp"))
655 || (tname[0] == 'v' && tname[1] == 'f'
656 && ! strcmp (tname, "vfork")))
657 flags |= ECF_RETURNS_TWICE;
659 else if (tname[0] == 'l' && tname[1] == 'o'
660 && ! strcmp (tname, "longjmp"))
661 flags |= ECF_LONGJMP;
663 else if ((tname[0] == 'f' && tname[1] == 'o'
664 && ! strcmp (tname, "fork"))
665 /* Linux specific: __clone. check NAME to insist on the
666 leading underscores, to avoid polluting the ISO / POSIX
667 namespace. */
668 || (name[0] == '_' && name[1] == '_'
669 && ! strcmp (tname, "clone"))
670 || (tname[0] == 'e' && tname[1] == 'x' && tname[2] == 'e'
671 && tname[3] == 'c' && (tname[4] == 'l' || tname[4] == 'v')
672 && (tname[5] == '\0'
673 || ((tname[5] == 'p' || tname[5] == 'e')
674 && tname[6] == '\0'))))
675 flags |= ECF_FORK_OR_EXEC;
677 return flags;
680 /* Return nonzero when tree represent call to longjmp. */
683 setjmp_call_p (tree fndecl)
685 return special_function_p (fndecl, 0) & ECF_RETURNS_TWICE;
688 /* Return true when exp contains alloca call. */
689 bool
690 alloca_call_p (tree exp)
692 if (TREE_CODE (exp) == CALL_EXPR
693 && TREE_CODE (TREE_OPERAND (exp, 0)) == ADDR_EXPR
694 && (TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0))
695 == FUNCTION_DECL)
696 && (special_function_p (TREE_OPERAND (TREE_OPERAND (exp, 0), 0),
697 0) & ECF_MAY_BE_ALLOCA))
698 return true;
699 return false;
702 /* Detect flags (function attributes) from the function decl or type node. */
705 flags_from_decl_or_type (tree exp)
707 int flags = 0;
708 tree type = exp;
710 if (DECL_P (exp))
712 struct cgraph_rtl_info *i = cgraph_rtl_info (exp);
713 type = TREE_TYPE (exp);
715 if (i)
717 if (i->pure_function)
718 flags |= ECF_PURE | ECF_LIBCALL_BLOCK;
719 if (i->const_function)
720 flags |= ECF_CONST | ECF_LIBCALL_BLOCK;
723 /* The function exp may have the `malloc' attribute. */
724 if (DECL_IS_MALLOC (exp))
725 flags |= ECF_MALLOC;
727 /* The function exp may have the `pure' attribute. */
728 if (DECL_IS_PURE (exp))
729 flags |= ECF_PURE | ECF_LIBCALL_BLOCK;
731 if (TREE_NOTHROW (exp))
732 flags |= ECF_NOTHROW;
734 if (TREE_READONLY (exp) && ! TREE_THIS_VOLATILE (exp))
735 flags |= ECF_LIBCALL_BLOCK;
738 if (TREE_READONLY (exp) && ! TREE_THIS_VOLATILE (exp))
739 flags |= ECF_CONST;
741 if (TREE_THIS_VOLATILE (exp))
742 flags |= ECF_NORETURN;
744 /* Mark if the function returns with the stack pointer depressed. We
745 cannot consider it pure or constant in that case. */
746 if (TREE_CODE (type) == FUNCTION_TYPE && TYPE_RETURNS_STACK_DEPRESSED (type))
748 flags |= ECF_SP_DEPRESSED;
749 flags &= ~(ECF_PURE | ECF_CONST | ECF_LIBCALL_BLOCK);
752 return flags;
755 /* Precompute all register parameters as described by ARGS, storing values
756 into fields within the ARGS array.
758 NUM_ACTUALS indicates the total number elements in the ARGS array.
760 Set REG_PARM_SEEN if we encounter a register parameter. */
762 static void
763 precompute_register_parameters (int num_actuals, struct arg_data *args, int *reg_parm_seen)
765 int i;
767 *reg_parm_seen = 0;
769 for (i = 0; i < num_actuals; i++)
770 if (args[i].reg != 0 && ! args[i].pass_on_stack)
772 *reg_parm_seen = 1;
774 if (args[i].value == 0)
776 push_temp_slots ();
777 args[i].value = expand_expr (args[i].tree_value, NULL_RTX,
778 VOIDmode, 0);
779 preserve_temp_slots (args[i].value);
780 pop_temp_slots ();
782 /* ANSI doesn't require a sequence point here,
783 but PCC has one, so this will avoid some problems. */
784 emit_queue ();
787 /* If the value is a non-legitimate constant, force it into a
788 pseudo now. TLS symbols sometimes need a call to resolve. */
789 if (CONSTANT_P (args[i].value)
790 && !LEGITIMATE_CONSTANT_P (args[i].value))
791 args[i].value = force_reg (args[i].mode, args[i].value);
793 /* If we are to promote the function arg to a wider mode,
794 do it now. */
796 if (args[i].mode != TYPE_MODE (TREE_TYPE (args[i].tree_value)))
797 args[i].value
798 = convert_modes (args[i].mode,
799 TYPE_MODE (TREE_TYPE (args[i].tree_value)),
800 args[i].value, args[i].unsignedp);
802 /* If the value is expensive, and we are inside an appropriately
803 short loop, put the value into a pseudo and then put the pseudo
804 into the hard reg.
806 For small register classes, also do this if this call uses
807 register parameters. This is to avoid reload conflicts while
808 loading the parameters registers. */
810 if ((! (GET_CODE (args[i].value) == REG
811 || (GET_CODE (args[i].value) == SUBREG
812 && GET_CODE (SUBREG_REG (args[i].value)) == REG)))
813 && args[i].mode != BLKmode
814 && rtx_cost (args[i].value, SET) > COSTS_N_INSNS (1)
815 && ((SMALL_REGISTER_CLASSES && *reg_parm_seen)
816 || preserve_subexpressions_p ()))
817 args[i].value = copy_to_mode_reg (args[i].mode, args[i].value);
821 #ifdef REG_PARM_STACK_SPACE
823 /* The argument list is the property of the called routine and it
824 may clobber it. If the fixed area has been used for previous
825 parameters, we must save and restore it. */
827 static rtx
828 save_fixed_argument_area (int reg_parm_stack_space, rtx argblock, int *low_to_save, int *high_to_save)
830 int low;
831 int high;
833 /* Compute the boundary of the area that needs to be saved, if any. */
834 high = reg_parm_stack_space;
835 #ifdef ARGS_GROW_DOWNWARD
836 high += 1;
837 #endif
838 if (high > highest_outgoing_arg_in_use)
839 high = highest_outgoing_arg_in_use;
841 for (low = 0; low < high; low++)
842 if (stack_usage_map[low] != 0)
844 int num_to_save;
845 enum machine_mode save_mode;
846 int delta;
847 rtx stack_area;
848 rtx save_area;
850 while (stack_usage_map[--high] == 0)
853 *low_to_save = low;
854 *high_to_save = high;
856 num_to_save = high - low + 1;
857 save_mode = mode_for_size (num_to_save * BITS_PER_UNIT, MODE_INT, 1);
859 /* If we don't have the required alignment, must do this
860 in BLKmode. */
861 if ((low & (MIN (GET_MODE_SIZE (save_mode),
862 BIGGEST_ALIGNMENT / UNITS_PER_WORD) - 1)))
863 save_mode = BLKmode;
865 #ifdef ARGS_GROW_DOWNWARD
866 delta = -high;
867 #else
868 delta = low;
869 #endif
870 stack_area = gen_rtx_MEM (save_mode,
871 memory_address (save_mode,
872 plus_constant (argblock,
873 delta)));
875 set_mem_align (stack_area, PARM_BOUNDARY);
876 if (save_mode == BLKmode)
878 save_area = assign_stack_temp (BLKmode, num_to_save, 0);
879 emit_block_move (validize_mem (save_area), stack_area,
880 GEN_INT (num_to_save), BLOCK_OP_CALL_PARM);
882 else
884 save_area = gen_reg_rtx (save_mode);
885 emit_move_insn (save_area, stack_area);
888 return save_area;
891 return NULL_RTX;
894 static void
895 restore_fixed_argument_area (rtx save_area, rtx argblock, int high_to_save, int low_to_save)
897 enum machine_mode save_mode = GET_MODE (save_area);
898 int delta;
899 rtx stack_area;
901 #ifdef ARGS_GROW_DOWNWARD
902 delta = -high_to_save;
903 #else
904 delta = low_to_save;
905 #endif
906 stack_area = gen_rtx_MEM (save_mode,
907 memory_address (save_mode,
908 plus_constant (argblock, delta)));
909 set_mem_align (stack_area, PARM_BOUNDARY);
911 if (save_mode != BLKmode)
912 emit_move_insn (stack_area, save_area);
913 else
914 emit_block_move (stack_area, validize_mem (save_area),
915 GEN_INT (high_to_save - low_to_save + 1),
916 BLOCK_OP_CALL_PARM);
918 #endif /* REG_PARM_STACK_SPACE */
920 /* If any elements in ARGS refer to parameters that are to be passed in
921 registers, but not in memory, and whose alignment does not permit a
922 direct copy into registers. Copy the values into a group of pseudos
923 which we will later copy into the appropriate hard registers.
925 Pseudos for each unaligned argument will be stored into the array
926 args[argnum].aligned_regs. The caller is responsible for deallocating
927 the aligned_regs array if it is nonzero. */
929 static void
930 store_unaligned_arguments_into_pseudos (struct arg_data *args, int num_actuals)
932 int i, j;
934 for (i = 0; i < num_actuals; i++)
935 if (args[i].reg != 0 && ! args[i].pass_on_stack
936 && args[i].mode == BLKmode
937 && (TYPE_ALIGN (TREE_TYPE (args[i].tree_value))
938 < (unsigned int) MIN (BIGGEST_ALIGNMENT, BITS_PER_WORD)))
940 int bytes = int_size_in_bytes (TREE_TYPE (args[i].tree_value));
941 int nregs = (bytes + UNITS_PER_WORD - 1) / UNITS_PER_WORD;
942 int endian_correction = 0;
944 args[i].n_aligned_regs = args[i].partial ? args[i].partial : nregs;
945 args[i].aligned_regs = xmalloc (sizeof (rtx) * args[i].n_aligned_regs);
947 /* Structures smaller than a word are normally aligned to the
948 least significant byte. On a BYTES_BIG_ENDIAN machine,
949 this means we must skip the empty high order bytes when
950 calculating the bit offset. */
951 if (bytes < UNITS_PER_WORD
952 #ifdef BLOCK_REG_PADDING
953 && (BLOCK_REG_PADDING (args[i].mode,
954 TREE_TYPE (args[i].tree_value), 1)
955 == downward)
956 #else
957 && BYTES_BIG_ENDIAN
958 #endif
960 endian_correction = BITS_PER_WORD - bytes * BITS_PER_UNIT;
962 for (j = 0; j < args[i].n_aligned_regs; j++)
964 rtx reg = gen_reg_rtx (word_mode);
965 rtx word = operand_subword_force (args[i].value, j, BLKmode);
966 int bitsize = MIN (bytes * BITS_PER_UNIT, BITS_PER_WORD);
968 args[i].aligned_regs[j] = reg;
969 word = extract_bit_field (word, bitsize, 0, 1, NULL_RTX,
970 word_mode, word_mode, BITS_PER_WORD);
972 /* There is no need to restrict this code to loading items
973 in TYPE_ALIGN sized hunks. The bitfield instructions can
974 load up entire word sized registers efficiently.
976 ??? This may not be needed anymore.
977 We use to emit a clobber here but that doesn't let later
978 passes optimize the instructions we emit. By storing 0 into
979 the register later passes know the first AND to zero out the
980 bitfield being set in the register is unnecessary. The store
981 of 0 will be deleted as will at least the first AND. */
983 emit_move_insn (reg, const0_rtx);
985 bytes -= bitsize / BITS_PER_UNIT;
986 store_bit_field (reg, bitsize, endian_correction, word_mode,
987 word, BITS_PER_WORD);
992 /* Fill in ARGS_SIZE and ARGS array based on the parameters found in
993 ACTPARMS.
995 NUM_ACTUALS is the total number of parameters.
997 N_NAMED_ARGS is the total number of named arguments.
999 FNDECL is the tree code for the target of this call (if known)
1001 ARGS_SO_FAR holds state needed by the target to know where to place
1002 the next argument.
1004 REG_PARM_STACK_SPACE is the number of bytes of stack space reserved
1005 for arguments which are passed in registers.
1007 OLD_STACK_LEVEL is a pointer to an rtx which olds the old stack level
1008 and may be modified by this routine.
1010 OLD_PENDING_ADJ, MUST_PREALLOCATE and FLAGS are pointers to integer
1011 flags which may may be modified by this routine. */
1013 static void
1014 initialize_argument_information (int num_actuals ATTRIBUTE_UNUSED,
1015 struct arg_data *args,
1016 struct args_size *args_size,
1017 int n_named_args ATTRIBUTE_UNUSED,
1018 tree actparms, tree fndecl,
1019 CUMULATIVE_ARGS *args_so_far,
1020 int reg_parm_stack_space,
1021 rtx *old_stack_level, int *old_pending_adj,
1022 int *must_preallocate, int *ecf_flags)
1024 /* 1 if scanning parms front to back, -1 if scanning back to front. */
1025 int inc;
1027 /* Count arg position in order args appear. */
1028 int argpos;
1030 int i;
1031 tree p;
1033 args_size->constant = 0;
1034 args_size->var = 0;
1036 /* In this loop, we consider args in the order they are written.
1037 We fill up ARGS from the front or from the back if necessary
1038 so that in any case the first arg to be pushed ends up at the front. */
1040 if (PUSH_ARGS_REVERSED)
1042 i = num_actuals - 1, inc = -1;
1043 /* In this case, must reverse order of args
1044 so that we compute and push the last arg first. */
1046 else
1048 i = 0, inc = 1;
1051 /* I counts args in order (to be) pushed; ARGPOS counts in order written. */
1052 for (p = actparms, argpos = 0; p; p = TREE_CHAIN (p), i += inc, argpos++)
1054 tree type = TREE_TYPE (TREE_VALUE (p));
1055 int unsignedp;
1056 enum machine_mode mode;
1058 args[i].tree_value = TREE_VALUE (p);
1060 /* Replace erroneous argument with constant zero. */
1061 if (type == error_mark_node || !COMPLETE_TYPE_P (type))
1062 args[i].tree_value = integer_zero_node, type = integer_type_node;
1064 /* If TYPE is a transparent union, pass things the way we would
1065 pass the first field of the union. We have already verified that
1066 the modes are the same. */
1067 if (TREE_CODE (type) == UNION_TYPE && TYPE_TRANSPARENT_UNION (type))
1068 type = TREE_TYPE (TYPE_FIELDS (type));
1070 /* Decide where to pass this arg.
1072 args[i].reg is nonzero if all or part is passed in registers.
1074 args[i].partial is nonzero if part but not all is passed in registers,
1075 and the exact value says how many words are passed in registers.
1077 args[i].pass_on_stack is nonzero if the argument must at least be
1078 computed on the stack. It may then be loaded back into registers
1079 if args[i].reg is nonzero.
1081 These decisions are driven by the FUNCTION_... macros and must agree
1082 with those made by function.c. */
1084 /* See if this argument should be passed by invisible reference. */
1085 if (CONTAINS_PLACEHOLDER_P (TYPE_SIZE (type))
1086 || TREE_ADDRESSABLE (type)
1087 #ifdef FUNCTION_ARG_PASS_BY_REFERENCE
1088 || FUNCTION_ARG_PASS_BY_REFERENCE (*args_so_far, TYPE_MODE (type),
1089 type, argpos < n_named_args)
1090 #endif
1093 /* If we're compiling a thunk, pass through invisible
1094 references instead of making a copy. */
1095 if (current_function_is_thunk
1096 #ifdef FUNCTION_ARG_CALLEE_COPIES
1097 || (FUNCTION_ARG_CALLEE_COPIES (*args_so_far, TYPE_MODE (type),
1098 type, argpos < n_named_args)
1099 /* If it's in a register, we must make a copy of it too. */
1100 /* ??? Is this a sufficient test? Is there a better one? */
1101 && !(TREE_CODE (args[i].tree_value) == VAR_DECL
1102 && REG_P (DECL_RTL (args[i].tree_value)))
1103 && ! TREE_ADDRESSABLE (type))
1104 #endif
1107 /* C++ uses a TARGET_EXPR to indicate that we want to make a
1108 new object from the argument. If we are passing by
1109 invisible reference, the callee will do that for us, so we
1110 can strip off the TARGET_EXPR. This is not always safe,
1111 but it is safe in the only case where this is a useful
1112 optimization; namely, when the argument is a plain object.
1113 In that case, the frontend is just asking the backend to
1114 make a bitwise copy of the argument. */
1116 if (TREE_CODE (args[i].tree_value) == TARGET_EXPR
1117 && (DECL_P (TREE_OPERAND (args[i].tree_value, 1)))
1118 && ! REG_P (DECL_RTL (TREE_OPERAND (args[i].tree_value, 1))))
1119 args[i].tree_value = TREE_OPERAND (args[i].tree_value, 1);
1121 args[i].tree_value = build1 (ADDR_EXPR,
1122 build_pointer_type (type),
1123 args[i].tree_value);
1124 type = build_pointer_type (type);
1126 else if (TREE_CODE (args[i].tree_value) == TARGET_EXPR)
1128 /* In the V3 C++ ABI, parameters are destroyed in the caller.
1129 We implement this by passing the address of the temporary
1130 rather than expanding it into another allocated slot. */
1131 args[i].tree_value = build1 (ADDR_EXPR,
1132 build_pointer_type (type),
1133 args[i].tree_value);
1134 type = build_pointer_type (type);
1136 else
1138 /* We make a copy of the object and pass the address to the
1139 function being called. */
1140 rtx copy;
1142 if (!COMPLETE_TYPE_P (type)
1143 || TREE_CODE (TYPE_SIZE (type)) != INTEGER_CST
1144 || (flag_stack_check && ! STACK_CHECK_BUILTIN
1145 && (0 < compare_tree_int (TYPE_SIZE_UNIT (type),
1146 STACK_CHECK_MAX_VAR_SIZE))))
1148 /* This is a variable-sized object. Make space on the stack
1149 for it. */
1150 rtx size_rtx = expr_size (TREE_VALUE (p));
1152 if (*old_stack_level == 0)
1154 emit_stack_save (SAVE_BLOCK, old_stack_level, NULL_RTX);
1155 *old_pending_adj = pending_stack_adjust;
1156 pending_stack_adjust = 0;
1159 copy = gen_rtx_MEM (BLKmode,
1160 allocate_dynamic_stack_space
1161 (size_rtx, NULL_RTX, TYPE_ALIGN (type)));
1162 set_mem_attributes (copy, type, 1);
1164 else
1165 copy = assign_temp (type, 0, 1, 0);
1167 store_expr (args[i].tree_value, copy, 0);
1168 *ecf_flags &= ~(ECF_CONST | ECF_PURE | ECF_LIBCALL_BLOCK);
1170 args[i].tree_value = build1 (ADDR_EXPR,
1171 build_pointer_type (type),
1172 make_tree (type, copy));
1173 type = build_pointer_type (type);
1177 mode = TYPE_MODE (type);
1178 unsignedp = TREE_UNSIGNED (type);
1180 if (targetm.calls.promote_function_args (fndecl ? TREE_TYPE (fndecl) : 0))
1181 mode = promote_mode (type, mode, &unsignedp, 1);
1183 args[i].unsignedp = unsignedp;
1184 args[i].mode = mode;
1186 args[i].reg = FUNCTION_ARG (*args_so_far, mode, type,
1187 argpos < n_named_args);
1188 #ifdef FUNCTION_INCOMING_ARG
1189 /* If this is a sibling call and the machine has register windows, the
1190 register window has to be unwinded before calling the routine, so
1191 arguments have to go into the incoming registers. */
1192 args[i].tail_call_reg = FUNCTION_INCOMING_ARG (*args_so_far, mode, type,
1193 argpos < n_named_args);
1194 #else
1195 args[i].tail_call_reg = args[i].reg;
1196 #endif
1198 #ifdef FUNCTION_ARG_PARTIAL_NREGS
1199 if (args[i].reg)
1200 args[i].partial
1201 = FUNCTION_ARG_PARTIAL_NREGS (*args_so_far, mode, type,
1202 argpos < n_named_args);
1203 #endif
1205 args[i].pass_on_stack = MUST_PASS_IN_STACK (mode, type);
1207 /* If FUNCTION_ARG returned a (parallel [(expr_list (nil) ...) ...]),
1208 it means that we are to pass this arg in the register(s) designated
1209 by the PARALLEL, but also to pass it in the stack. */
1210 if (args[i].reg && GET_CODE (args[i].reg) == PARALLEL
1211 && XEXP (XVECEXP (args[i].reg, 0, 0), 0) == 0)
1212 args[i].pass_on_stack = 1;
1214 /* If this is an addressable type, we must preallocate the stack
1215 since we must evaluate the object into its final location.
1217 If this is to be passed in both registers and the stack, it is simpler
1218 to preallocate. */
1219 if (TREE_ADDRESSABLE (type)
1220 || (args[i].pass_on_stack && args[i].reg != 0))
1221 *must_preallocate = 1;
1223 /* If this is an addressable type, we cannot pre-evaluate it. Thus,
1224 we cannot consider this function call constant. */
1225 if (TREE_ADDRESSABLE (type))
1226 *ecf_flags &= ~ECF_LIBCALL_BLOCK;
1228 /* Compute the stack-size of this argument. */
1229 if (args[i].reg == 0 || args[i].partial != 0
1230 || reg_parm_stack_space > 0
1231 || args[i].pass_on_stack)
1232 locate_and_pad_parm (mode, type,
1233 #ifdef STACK_PARMS_IN_REG_PARM_AREA
1235 #else
1236 args[i].reg != 0,
1237 #endif
1238 args[i].pass_on_stack ? 0 : args[i].partial,
1239 fndecl, args_size, &args[i].locate);
1240 #ifdef BLOCK_REG_PADDING
1241 else
1242 /* The argument is passed entirely in registers. See at which
1243 end it should be padded. */
1244 args[i].locate.where_pad =
1245 BLOCK_REG_PADDING (mode, type,
1246 int_size_in_bytes (type) <= UNITS_PER_WORD);
1247 #endif
1249 /* Update ARGS_SIZE, the total stack space for args so far. */
1251 args_size->constant += args[i].locate.size.constant;
1252 if (args[i].locate.size.var)
1253 ADD_PARM_SIZE (*args_size, args[i].locate.size.var);
1255 /* Increment ARGS_SO_FAR, which has info about which arg-registers
1256 have been used, etc. */
1258 FUNCTION_ARG_ADVANCE (*args_so_far, TYPE_MODE (type), type,
1259 argpos < n_named_args);
1263 /* Update ARGS_SIZE to contain the total size for the argument block.
1264 Return the original constant component of the argument block's size.
1266 REG_PARM_STACK_SPACE holds the number of bytes of stack space reserved
1267 for arguments passed in registers. */
1269 static int
1270 compute_argument_block_size (int reg_parm_stack_space,
1271 struct args_size *args_size,
1272 int preferred_stack_boundary ATTRIBUTE_UNUSED)
1274 int unadjusted_args_size = args_size->constant;
1276 /* For accumulate outgoing args mode we don't need to align, since the frame
1277 will be already aligned. Align to STACK_BOUNDARY in order to prevent
1278 backends from generating misaligned frame sizes. */
1279 if (ACCUMULATE_OUTGOING_ARGS && preferred_stack_boundary > STACK_BOUNDARY)
1280 preferred_stack_boundary = STACK_BOUNDARY;
1282 /* Compute the actual size of the argument block required. The variable
1283 and constant sizes must be combined, the size may have to be rounded,
1284 and there may be a minimum required size. */
1286 if (args_size->var)
1288 args_size->var = ARGS_SIZE_TREE (*args_size);
1289 args_size->constant = 0;
1291 preferred_stack_boundary /= BITS_PER_UNIT;
1292 if (preferred_stack_boundary > 1)
1294 /* We don't handle this case yet. To handle it correctly we have
1295 to add the delta, round and subtract the delta.
1296 Currently no machine description requires this support. */
1297 if (stack_pointer_delta & (preferred_stack_boundary - 1))
1298 abort ();
1299 args_size->var = round_up (args_size->var, preferred_stack_boundary);
1302 if (reg_parm_stack_space > 0)
1304 args_size->var
1305 = size_binop (MAX_EXPR, args_size->var,
1306 ssize_int (reg_parm_stack_space));
1308 #ifndef OUTGOING_REG_PARM_STACK_SPACE
1309 /* The area corresponding to register parameters is not to count in
1310 the size of the block we need. So make the adjustment. */
1311 args_size->var
1312 = size_binop (MINUS_EXPR, args_size->var,
1313 ssize_int (reg_parm_stack_space));
1314 #endif
1317 else
1319 preferred_stack_boundary /= BITS_PER_UNIT;
1320 if (preferred_stack_boundary < 1)
1321 preferred_stack_boundary = 1;
1322 args_size->constant = (((args_size->constant
1323 + stack_pointer_delta
1324 + preferred_stack_boundary - 1)
1325 / preferred_stack_boundary
1326 * preferred_stack_boundary)
1327 - stack_pointer_delta);
1329 args_size->constant = MAX (args_size->constant,
1330 reg_parm_stack_space);
1332 #ifdef MAYBE_REG_PARM_STACK_SPACE
1333 if (reg_parm_stack_space == 0)
1334 args_size->constant = 0;
1335 #endif
1337 #ifndef OUTGOING_REG_PARM_STACK_SPACE
1338 args_size->constant -= reg_parm_stack_space;
1339 #endif
1341 return unadjusted_args_size;
1344 /* Precompute parameters as needed for a function call.
1346 FLAGS is mask of ECF_* constants.
1348 NUM_ACTUALS is the number of arguments.
1350 ARGS is an array containing information for each argument; this
1351 routine fills in the INITIAL_VALUE and VALUE fields for each
1352 precomputed argument. */
1354 static void
1355 precompute_arguments (int flags, int num_actuals, struct arg_data *args)
1357 int i;
1359 /* If this function call is cse'able, precompute all the parameters.
1360 Note that if the parameter is constructed into a temporary, this will
1361 cause an additional copy because the parameter will be constructed
1362 into a temporary location and then copied into the outgoing arguments.
1363 If a parameter contains a call to alloca and this function uses the
1364 stack, precompute the parameter. */
1366 /* If we preallocated the stack space, and some arguments must be passed
1367 on the stack, then we must precompute any parameter which contains a
1368 function call which will store arguments on the stack.
1369 Otherwise, evaluating the parameter may clobber previous parameters
1370 which have already been stored into the stack. (we have code to avoid
1371 such case by saving the outgoing stack arguments, but it results in
1372 worse code) */
1374 for (i = 0; i < num_actuals; i++)
1375 if ((flags & ECF_LIBCALL_BLOCK)
1376 || calls_function (args[i].tree_value, !ACCUMULATE_OUTGOING_ARGS))
1378 enum machine_mode mode;
1380 /* If this is an addressable type, we cannot pre-evaluate it. */
1381 if (TREE_ADDRESSABLE (TREE_TYPE (args[i].tree_value)))
1382 abort ();
1384 args[i].value
1385 = expand_expr (args[i].tree_value, NULL_RTX, VOIDmode, 0);
1387 /* ANSI doesn't require a sequence point here,
1388 but PCC has one, so this will avoid some problems. */
1389 emit_queue ();
1391 args[i].initial_value = args[i].value
1392 = protect_from_queue (args[i].value, 0);
1394 mode = TYPE_MODE (TREE_TYPE (args[i].tree_value));
1395 if (mode != args[i].mode)
1397 args[i].value
1398 = convert_modes (args[i].mode, mode,
1399 args[i].value, args[i].unsignedp);
1400 #ifdef PROMOTE_FOR_CALL_ONLY
1401 /* CSE will replace this only if it contains args[i].value
1402 pseudo, so convert it down to the declared mode using
1403 a SUBREG. */
1404 if (GET_CODE (args[i].value) == REG
1405 && GET_MODE_CLASS (args[i].mode) == MODE_INT)
1407 args[i].initial_value
1408 = gen_lowpart_SUBREG (mode, args[i].value);
1409 SUBREG_PROMOTED_VAR_P (args[i].initial_value) = 1;
1410 SUBREG_PROMOTED_UNSIGNED_SET (args[i].initial_value,
1411 args[i].unsignedp);
1413 #endif
1418 /* Given the current state of MUST_PREALLOCATE and information about
1419 arguments to a function call in NUM_ACTUALS, ARGS and ARGS_SIZE,
1420 compute and return the final value for MUST_PREALLOCATE. */
1422 static int
1423 finalize_must_preallocate (int must_preallocate, int num_actuals, struct arg_data *args, struct args_size *args_size)
1425 /* See if we have or want to preallocate stack space.
1427 If we would have to push a partially-in-regs parm
1428 before other stack parms, preallocate stack space instead.
1430 If the size of some parm is not a multiple of the required stack
1431 alignment, we must preallocate.
1433 If the total size of arguments that would otherwise create a copy in
1434 a temporary (such as a CALL) is more than half the total argument list
1435 size, preallocation is faster.
1437 Another reason to preallocate is if we have a machine (like the m88k)
1438 where stack alignment is required to be maintained between every
1439 pair of insns, not just when the call is made. However, we assume here
1440 that such machines either do not have push insns (and hence preallocation
1441 would occur anyway) or the problem is taken care of with
1442 PUSH_ROUNDING. */
1444 if (! must_preallocate)
1446 int partial_seen = 0;
1447 int copy_to_evaluate_size = 0;
1448 int i;
1450 for (i = 0; i < num_actuals && ! must_preallocate; i++)
1452 if (args[i].partial > 0 && ! args[i].pass_on_stack)
1453 partial_seen = 1;
1454 else if (partial_seen && args[i].reg == 0)
1455 must_preallocate = 1;
1457 if (TYPE_MODE (TREE_TYPE (args[i].tree_value)) == BLKmode
1458 && (TREE_CODE (args[i].tree_value) == CALL_EXPR
1459 || TREE_CODE (args[i].tree_value) == TARGET_EXPR
1460 || TREE_CODE (args[i].tree_value) == COND_EXPR
1461 || TREE_ADDRESSABLE (TREE_TYPE (args[i].tree_value))))
1462 copy_to_evaluate_size
1463 += int_size_in_bytes (TREE_TYPE (args[i].tree_value));
1466 if (copy_to_evaluate_size * 2 >= args_size->constant
1467 && args_size->constant > 0)
1468 must_preallocate = 1;
1470 return must_preallocate;
1473 /* If we preallocated stack space, compute the address of each argument
1474 and store it into the ARGS array.
1476 We need not ensure it is a valid memory address here; it will be
1477 validized when it is used.
1479 ARGBLOCK is an rtx for the address of the outgoing arguments. */
1481 static void
1482 compute_argument_addresses (struct arg_data *args, rtx argblock, int num_actuals)
1484 if (argblock)
1486 rtx arg_reg = argblock;
1487 int i, arg_offset = 0;
1489 if (GET_CODE (argblock) == PLUS)
1490 arg_reg = XEXP (argblock, 0), arg_offset = INTVAL (XEXP (argblock, 1));
1492 for (i = 0; i < num_actuals; i++)
1494 rtx offset = ARGS_SIZE_RTX (args[i].locate.offset);
1495 rtx slot_offset = ARGS_SIZE_RTX (args[i].locate.slot_offset);
1496 rtx addr;
1498 /* Skip this parm if it will not be passed on the stack. */
1499 if (! args[i].pass_on_stack && args[i].reg != 0)
1500 continue;
1502 if (GET_CODE (offset) == CONST_INT)
1503 addr = plus_constant (arg_reg, INTVAL (offset));
1504 else
1505 addr = gen_rtx_PLUS (Pmode, arg_reg, offset);
1507 addr = plus_constant (addr, arg_offset);
1508 args[i].stack = gen_rtx_MEM (args[i].mode, addr);
1509 set_mem_align (args[i].stack, PARM_BOUNDARY);
1510 set_mem_attributes (args[i].stack,
1511 TREE_TYPE (args[i].tree_value), 1);
1513 if (GET_CODE (slot_offset) == CONST_INT)
1514 addr = plus_constant (arg_reg, INTVAL (slot_offset));
1515 else
1516 addr = gen_rtx_PLUS (Pmode, arg_reg, slot_offset);
1518 addr = plus_constant (addr, arg_offset);
1519 args[i].stack_slot = gen_rtx_MEM (args[i].mode, addr);
1520 set_mem_align (args[i].stack_slot, PARM_BOUNDARY);
1521 set_mem_attributes (args[i].stack_slot,
1522 TREE_TYPE (args[i].tree_value), 1);
1524 /* Function incoming arguments may overlap with sibling call
1525 outgoing arguments and we cannot allow reordering of reads
1526 from function arguments with stores to outgoing arguments
1527 of sibling calls. */
1528 set_mem_alias_set (args[i].stack, 0);
1529 set_mem_alias_set (args[i].stack_slot, 0);
1534 /* Given a FNDECL and EXP, return an rtx suitable for use as a target address
1535 in a call instruction.
1537 FNDECL is the tree node for the target function. For an indirect call
1538 FNDECL will be NULL_TREE.
1540 ADDR is the operand 0 of CALL_EXPR for this call. */
1542 static rtx
1543 rtx_for_function_call (tree fndecl, tree addr)
1545 rtx funexp;
1547 /* Get the function to call, in the form of RTL. */
1548 if (fndecl)
1550 /* If this is the first use of the function, see if we need to
1551 make an external definition for it. */
1552 if (! TREE_USED (fndecl))
1554 assemble_external (fndecl);
1555 TREE_USED (fndecl) = 1;
1558 /* Get a SYMBOL_REF rtx for the function address. */
1559 funexp = XEXP (DECL_RTL (fndecl), 0);
1561 else
1562 /* Generate an rtx (probably a pseudo-register) for the address. */
1564 push_temp_slots ();
1565 funexp = expand_expr (addr, NULL_RTX, VOIDmode, 0);
1566 pop_temp_slots (); /* FUNEXP can't be BLKmode. */
1567 emit_queue ();
1569 return funexp;
1572 /* Do the register loads required for any wholly-register parms or any
1573 parms which are passed both on the stack and in a register. Their
1574 expressions were already evaluated.
1576 Mark all register-parms as living through the call, putting these USE
1577 insns in the CALL_INSN_FUNCTION_USAGE field.
1579 When IS_SIBCALL, perform the check_sibcall_overlap_argument_overlap
1580 checking, setting *SIBCALL_FAILURE if appropriate. */
1582 static void
1583 load_register_parameters (struct arg_data *args, int num_actuals,
1584 rtx *call_fusage, int flags, int is_sibcall,
1585 int *sibcall_failure)
1587 int i, j;
1589 #ifdef LOAD_ARGS_REVERSED
1590 for (i = num_actuals - 1; i >= 0; i--)
1591 #else
1592 for (i = 0; i < num_actuals; i++)
1593 #endif
1595 rtx reg = ((flags & ECF_SIBCALL)
1596 ? args[i].tail_call_reg : args[i].reg);
1597 if (reg)
1599 int partial = args[i].partial;
1600 int nregs;
1601 int size = 0;
1602 rtx before_arg = get_last_insn ();
1603 /* Set to non-negative if must move a word at a time, even if just
1604 one word (e.g, partial == 1 && mode == DFmode). Set to -1 if
1605 we just use a normal move insn. This value can be zero if the
1606 argument is a zero size structure with no fields. */
1607 nregs = -1;
1608 if (partial)
1609 nregs = partial;
1610 else if (TYPE_MODE (TREE_TYPE (args[i].tree_value)) == BLKmode)
1612 size = int_size_in_bytes (TREE_TYPE (args[i].tree_value));
1613 nregs = (size + (UNITS_PER_WORD - 1)) / UNITS_PER_WORD;
1615 else
1616 size = GET_MODE_SIZE (args[i].mode);
1618 /* Handle calls that pass values in multiple non-contiguous
1619 locations. The Irix 6 ABI has examples of this. */
1621 if (GET_CODE (reg) == PARALLEL)
1623 tree type = TREE_TYPE (args[i].tree_value);
1624 emit_group_load (reg, args[i].value, type,
1625 int_size_in_bytes (type));
1628 /* If simple case, just do move. If normal partial, store_one_arg
1629 has already loaded the register for us. In all other cases,
1630 load the register(s) from memory. */
1632 else if (nregs == -1)
1634 emit_move_insn (reg, args[i].value);
1635 #ifdef BLOCK_REG_PADDING
1636 /* Handle case where we have a value that needs shifting
1637 up to the msb. eg. a QImode value and we're padding
1638 upward on a BYTES_BIG_ENDIAN machine. */
1639 if (size < UNITS_PER_WORD
1640 && (args[i].locate.where_pad
1641 == (BYTES_BIG_ENDIAN ? upward : downward)))
1643 rtx x;
1644 int shift = (UNITS_PER_WORD - size) * BITS_PER_UNIT;
1646 /* Assigning REG here rather than a temp makes CALL_FUSAGE
1647 report the whole reg as used. Strictly speaking, the
1648 call only uses SIZE bytes at the msb end, but it doesn't
1649 seem worth generating rtl to say that. */
1650 reg = gen_rtx_REG (word_mode, REGNO (reg));
1651 x = expand_binop (word_mode, ashl_optab, reg,
1652 GEN_INT (shift), reg, 1, OPTAB_WIDEN);
1653 if (x != reg)
1654 emit_move_insn (reg, x);
1656 #endif
1659 /* If we have pre-computed the values to put in the registers in
1660 the case of non-aligned structures, copy them in now. */
1662 else if (args[i].n_aligned_regs != 0)
1663 for (j = 0; j < args[i].n_aligned_regs; j++)
1664 emit_move_insn (gen_rtx_REG (word_mode, REGNO (reg) + j),
1665 args[i].aligned_regs[j]);
1667 else if (partial == 0 || args[i].pass_on_stack)
1669 rtx mem = validize_mem (args[i].value);
1671 #ifdef BLOCK_REG_PADDING
1672 /* Handle a BLKmode that needs shifting. */
1673 if (nregs == 1 && size < UNITS_PER_WORD
1674 && args[i].locate.where_pad == downward)
1676 rtx tem = operand_subword_force (mem, 0, args[i].mode);
1677 rtx ri = gen_rtx_REG (word_mode, REGNO (reg));
1678 rtx x = gen_reg_rtx (word_mode);
1679 int shift = (UNITS_PER_WORD - size) * BITS_PER_UNIT;
1680 optab dir = BYTES_BIG_ENDIAN ? lshr_optab : ashl_optab;
1682 emit_move_insn (x, tem);
1683 x = expand_binop (word_mode, dir, x, GEN_INT (shift),
1684 ri, 1, OPTAB_WIDEN);
1685 if (x != ri)
1686 emit_move_insn (ri, x);
1688 else
1689 #endif
1690 move_block_to_reg (REGNO (reg), mem, nregs, args[i].mode);
1693 /* When a parameter is a block, and perhaps in other cases, it is
1694 possible that it did a load from an argument slot that was
1695 already clobbered. */
1696 if (is_sibcall
1697 && check_sibcall_argument_overlap (before_arg, &args[i], 0))
1698 *sibcall_failure = 1;
1700 /* Handle calls that pass values in multiple non-contiguous
1701 locations. The Irix 6 ABI has examples of this. */
1702 if (GET_CODE (reg) == PARALLEL)
1703 use_group_regs (call_fusage, reg);
1704 else if (nregs == -1)
1705 use_reg (call_fusage, reg);
1706 else
1707 use_regs (call_fusage, REGNO (reg), nregs == 0 ? 1 : nregs);
1712 /* Try to integrate function. See expand_inline_function for documentation
1713 about the parameters. */
1715 static rtx
1716 try_to_integrate (tree fndecl, tree actparms, rtx target, int ignore,
1717 tree type, rtx structure_value_addr)
1719 rtx temp;
1720 rtx before_call;
1721 int i;
1722 rtx old_stack_level = 0;
1723 int reg_parm_stack_space = 0;
1725 #ifdef REG_PARM_STACK_SPACE
1726 #ifdef MAYBE_REG_PARM_STACK_SPACE
1727 reg_parm_stack_space = MAYBE_REG_PARM_STACK_SPACE;
1728 #else
1729 reg_parm_stack_space = REG_PARM_STACK_SPACE (fndecl);
1730 #endif
1731 #endif
1733 before_call = get_last_insn ();
1735 timevar_push (TV_INTEGRATION);
1737 temp = expand_inline_function (fndecl, actparms, target,
1738 ignore, type,
1739 structure_value_addr);
1741 timevar_pop (TV_INTEGRATION);
1743 /* If inlining succeeded, return. */
1744 if (temp != (rtx) (size_t) - 1)
1746 if (ACCUMULATE_OUTGOING_ARGS)
1748 /* If the outgoing argument list must be preserved, push
1749 the stack before executing the inlined function if it
1750 makes any calls. */
1752 i = reg_parm_stack_space;
1753 if (i > highest_outgoing_arg_in_use)
1754 i = highest_outgoing_arg_in_use;
1755 while (--i >= 0 && stack_usage_map[i] == 0)
1758 if (stack_arg_under_construction || i >= 0)
1760 rtx first_insn
1761 = before_call ? NEXT_INSN (before_call) : get_insns ();
1762 rtx insn = NULL_RTX, seq;
1764 /* Look for a call in the inline function code.
1765 If DECL_SAVED_INSNS (fndecl)->outgoing_args_size is
1766 nonzero then there is a call and it is not necessary
1767 to scan the insns. */
1769 if (DECL_SAVED_INSNS (fndecl)->outgoing_args_size == 0)
1770 for (insn = first_insn; insn; insn = NEXT_INSN (insn))
1771 if (GET_CODE (insn) == CALL_INSN)
1772 break;
1774 if (insn)
1776 /* Reserve enough stack space so that the largest
1777 argument list of any function call in the inline
1778 function does not overlap the argument list being
1779 evaluated. This is usually an overestimate because
1780 allocate_dynamic_stack_space reserves space for an
1781 outgoing argument list in addition to the requested
1782 space, but there is no way to ask for stack space such
1783 that an argument list of a certain length can be
1784 safely constructed.
1786 Add the stack space reserved for register arguments, if
1787 any, in the inline function. What is really needed is the
1788 largest value of reg_parm_stack_space in the inline
1789 function, but that is not available. Using the current
1790 value of reg_parm_stack_space is wrong, but gives
1791 correct results on all supported machines. */
1793 int adjust = (DECL_SAVED_INSNS (fndecl)->outgoing_args_size
1794 + reg_parm_stack_space);
1796 start_sequence ();
1797 emit_stack_save (SAVE_BLOCK, &old_stack_level, NULL_RTX);
1798 allocate_dynamic_stack_space (GEN_INT (adjust),
1799 NULL_RTX, BITS_PER_UNIT);
1800 seq = get_insns ();
1801 end_sequence ();
1802 emit_insn_before (seq, first_insn);
1803 emit_stack_restore (SAVE_BLOCK, old_stack_level, NULL_RTX);
1808 /* If the result is equivalent to TARGET, return TARGET to simplify
1809 checks in store_expr. They can be equivalent but not equal in the
1810 case of a function that returns BLKmode. */
1811 if (temp != target && rtx_equal_p (temp, target))
1812 return target;
1813 return temp;
1816 /* If inlining failed, mark FNDECL as needing to be compiled
1817 separately after all. If function was declared inline,
1818 give a warning. */
1819 if (DECL_INLINE (fndecl) && warn_inline && !flag_no_inline
1820 && optimize > 0 && !TREE_ADDRESSABLE (fndecl))
1822 warning ("%Jinlining failed in call to '%F'", fndecl, fndecl);
1823 warning ("called from here");
1825 (*lang_hooks.mark_addressable) (fndecl);
1826 return (rtx) (size_t) - 1;
1829 /* We need to pop PENDING_STACK_ADJUST bytes. But, if the arguments
1830 wouldn't fill up an even multiple of PREFERRED_UNIT_STACK_BOUNDARY
1831 bytes, then we would need to push some additional bytes to pad the
1832 arguments. So, we compute an adjust to the stack pointer for an
1833 amount that will leave the stack under-aligned by UNADJUSTED_ARGS_SIZE
1834 bytes. Then, when the arguments are pushed the stack will be perfectly
1835 aligned. ARGS_SIZE->CONSTANT is set to the number of bytes that should
1836 be popped after the call. Returns the adjustment. */
1838 static int
1839 combine_pending_stack_adjustment_and_call (int unadjusted_args_size,
1840 struct args_size *args_size,
1841 int preferred_unit_stack_boundary)
1843 /* The number of bytes to pop so that the stack will be
1844 under-aligned by UNADJUSTED_ARGS_SIZE bytes. */
1845 HOST_WIDE_INT adjustment;
1846 /* The alignment of the stack after the arguments are pushed, if we
1847 just pushed the arguments without adjust the stack here. */
1848 HOST_WIDE_INT unadjusted_alignment;
1850 unadjusted_alignment
1851 = ((stack_pointer_delta + unadjusted_args_size)
1852 % preferred_unit_stack_boundary);
1854 /* We want to get rid of as many of the PENDING_STACK_ADJUST bytes
1855 as possible -- leaving just enough left to cancel out the
1856 UNADJUSTED_ALIGNMENT. In other words, we want to ensure that the
1857 PENDING_STACK_ADJUST is non-negative, and congruent to
1858 -UNADJUSTED_ALIGNMENT modulo the PREFERRED_UNIT_STACK_BOUNDARY. */
1860 /* Begin by trying to pop all the bytes. */
1861 unadjusted_alignment
1862 = (unadjusted_alignment
1863 - (pending_stack_adjust % preferred_unit_stack_boundary));
1864 adjustment = pending_stack_adjust;
1865 /* Push enough additional bytes that the stack will be aligned
1866 after the arguments are pushed. */
1867 if (preferred_unit_stack_boundary > 1)
1869 if (unadjusted_alignment > 0)
1870 adjustment -= preferred_unit_stack_boundary - unadjusted_alignment;
1871 else
1872 adjustment += unadjusted_alignment;
1875 /* Now, sets ARGS_SIZE->CONSTANT so that we pop the right number of
1876 bytes after the call. The right number is the entire
1877 PENDING_STACK_ADJUST less our ADJUSTMENT plus the amount required
1878 by the arguments in the first place. */
1879 args_size->constant
1880 = pending_stack_adjust - adjustment + unadjusted_args_size;
1882 return adjustment;
1885 /* Scan X expression if it does not dereference any argument slots
1886 we already clobbered by tail call arguments (as noted in stored_args_map
1887 bitmap).
1888 Return nonzero if X expression dereferences such argument slots,
1889 zero otherwise. */
1891 static int
1892 check_sibcall_argument_overlap_1 (rtx x)
1894 RTX_CODE code;
1895 int i, j;
1896 unsigned int k;
1897 const char *fmt;
1899 if (x == NULL_RTX)
1900 return 0;
1902 code = GET_CODE (x);
1904 if (code == MEM)
1906 if (XEXP (x, 0) == current_function_internal_arg_pointer)
1907 i = 0;
1908 else if (GET_CODE (XEXP (x, 0)) == PLUS
1909 && XEXP (XEXP (x, 0), 0) ==
1910 current_function_internal_arg_pointer
1911 && GET_CODE (XEXP (XEXP (x, 0), 1)) == CONST_INT)
1912 i = INTVAL (XEXP (XEXP (x, 0), 1));
1913 else
1914 return 0;
1916 #ifdef ARGS_GROW_DOWNWARD
1917 i = -i - GET_MODE_SIZE (GET_MODE (x));
1918 #endif
1920 for (k = 0; k < GET_MODE_SIZE (GET_MODE (x)); k++)
1921 if (i + k < stored_args_map->n_bits
1922 && TEST_BIT (stored_args_map, i + k))
1923 return 1;
1925 return 0;
1928 /* Scan all subexpressions. */
1929 fmt = GET_RTX_FORMAT (code);
1930 for (i = 0; i < GET_RTX_LENGTH (code); i++, fmt++)
1932 if (*fmt == 'e')
1934 if (check_sibcall_argument_overlap_1 (XEXP (x, i)))
1935 return 1;
1937 else if (*fmt == 'E')
1939 for (j = 0; j < XVECLEN (x, i); j++)
1940 if (check_sibcall_argument_overlap_1 (XVECEXP (x, i, j)))
1941 return 1;
1944 return 0;
1947 /* Scan sequence after INSN if it does not dereference any argument slots
1948 we already clobbered by tail call arguments (as noted in stored_args_map
1949 bitmap). If MARK_STORED_ARGS_MAP, add stack slots for ARG to
1950 stored_args_map bitmap afterwards (when ARG is a register MARK_STORED_ARGS_MAP
1951 should be 0). Return nonzero if sequence after INSN dereferences such argument
1952 slots, zero otherwise. */
1954 static int
1955 check_sibcall_argument_overlap (rtx insn, struct arg_data *arg, int mark_stored_args_map)
1957 int low, high;
1959 if (insn == NULL_RTX)
1960 insn = get_insns ();
1961 else
1962 insn = NEXT_INSN (insn);
1964 for (; insn; insn = NEXT_INSN (insn))
1965 if (INSN_P (insn)
1966 && check_sibcall_argument_overlap_1 (PATTERN (insn)))
1967 break;
1969 if (mark_stored_args_map)
1971 #ifdef ARGS_GROW_DOWNWARD
1972 low = -arg->locate.slot_offset.constant - arg->locate.size.constant;
1973 #else
1974 low = arg->locate.slot_offset.constant;
1975 #endif
1977 for (high = low + arg->locate.size.constant; low < high; low++)
1978 SET_BIT (stored_args_map, low);
1980 return insn != NULL_RTX;
1983 static tree
1984 fix_unsafe_tree (tree t)
1986 switch (unsafe_for_reeval (t))
1988 case 0: /* Safe. */
1989 break;
1991 case 1: /* Mildly unsafe. */
1992 t = unsave_expr (t);
1993 break;
1995 case 2: /* Wildly unsafe. */
1997 tree var = build_decl (VAR_DECL, NULL_TREE,
1998 TREE_TYPE (t));
1999 SET_DECL_RTL (var,
2000 expand_expr (t, NULL_RTX, VOIDmode, EXPAND_NORMAL));
2001 t = var;
2003 break;
2005 default:
2006 abort ();
2008 return t;
2011 /* Generate all the code for a function call
2012 and return an rtx for its value.
2013 Store the value in TARGET (specified as an rtx) if convenient.
2014 If the value is stored in TARGET then TARGET is returned.
2015 If IGNORE is nonzero, then we ignore the value of the function call. */
2018 expand_call (tree exp, rtx target, int ignore)
2020 /* Nonzero if we are currently expanding a call. */
2021 static int currently_expanding_call = 0;
2023 /* List of actual parameters. */
2024 tree actparms = TREE_OPERAND (exp, 1);
2025 /* RTX for the function to be called. */
2026 rtx funexp;
2027 /* Sequence of insns to perform a tail recursive "call". */
2028 rtx tail_recursion_insns = NULL_RTX;
2029 /* Sequence of insns to perform a normal "call". */
2030 rtx normal_call_insns = NULL_RTX;
2031 /* Sequence of insns to perform a tail recursive "call". */
2032 rtx tail_call_insns = NULL_RTX;
2033 /* Data type of the function. */
2034 tree funtype;
2035 tree type_arg_types;
2036 /* Declaration of the function being called,
2037 or 0 if the function is computed (not known by name). */
2038 tree fndecl = 0;
2039 rtx insn;
2040 int try_tail_call = 1;
2041 int try_tail_recursion = 1;
2042 int pass;
2044 /* Register in which non-BLKmode value will be returned,
2045 or 0 if no value or if value is BLKmode. */
2046 rtx valreg;
2047 /* Address where we should return a BLKmode value;
2048 0 if value not BLKmode. */
2049 rtx structure_value_addr = 0;
2050 /* Nonzero if that address is being passed by treating it as
2051 an extra, implicit first parameter. Otherwise,
2052 it is passed by being copied directly into struct_value_rtx. */
2053 int structure_value_addr_parm = 0;
2054 /* Size of aggregate value wanted, or zero if none wanted
2055 or if we are using the non-reentrant PCC calling convention
2056 or expecting the value in registers. */
2057 HOST_WIDE_INT struct_value_size = 0;
2058 /* Nonzero if called function returns an aggregate in memory PCC style,
2059 by returning the address of where to find it. */
2060 int pcc_struct_value = 0;
2061 rtx struct_value = 0;
2063 /* Number of actual parameters in this call, including struct value addr. */
2064 int num_actuals;
2065 /* Number of named args. Args after this are anonymous ones
2066 and they must all go on the stack. */
2067 int n_named_args;
2069 /* Vector of information about each argument.
2070 Arguments are numbered in the order they will be pushed,
2071 not the order they are written. */
2072 struct arg_data *args;
2074 /* Total size in bytes of all the stack-parms scanned so far. */
2075 struct args_size args_size;
2076 struct args_size adjusted_args_size;
2077 /* Size of arguments before any adjustments (such as rounding). */
2078 int unadjusted_args_size;
2079 /* Data on reg parms scanned so far. */
2080 CUMULATIVE_ARGS args_so_far;
2081 /* Nonzero if a reg parm has been scanned. */
2082 int reg_parm_seen;
2083 /* Nonzero if this is an indirect function call. */
2085 /* Nonzero if we must avoid push-insns in the args for this call.
2086 If stack space is allocated for register parameters, but not by the
2087 caller, then it is preallocated in the fixed part of the stack frame.
2088 So the entire argument block must then be preallocated (i.e., we
2089 ignore PUSH_ROUNDING in that case). */
2091 int must_preallocate = !PUSH_ARGS;
2093 /* Size of the stack reserved for parameter registers. */
2094 int reg_parm_stack_space = 0;
2096 /* Address of space preallocated for stack parms
2097 (on machines that lack push insns), or 0 if space not preallocated. */
2098 rtx argblock = 0;
2100 /* Mask of ECF_ flags. */
2101 int flags = 0;
2102 /* Nonzero if this is a call to an inline function. */
2103 int is_integrable = 0;
2104 #ifdef REG_PARM_STACK_SPACE
2105 /* Define the boundary of the register parm stack space that needs to be
2106 saved, if any. */
2107 int low_to_save, high_to_save;
2108 rtx save_area = 0; /* Place that it is saved */
2109 #endif
2111 int initial_highest_arg_in_use = highest_outgoing_arg_in_use;
2112 char *initial_stack_usage_map = stack_usage_map;
2114 int old_stack_allocated;
2116 /* State variables to track stack modifications. */
2117 rtx old_stack_level = 0;
2118 int old_stack_arg_under_construction = 0;
2119 int old_pending_adj = 0;
2120 int old_inhibit_defer_pop = inhibit_defer_pop;
2122 /* Some stack pointer alterations we make are performed via
2123 allocate_dynamic_stack_space. This modifies the stack_pointer_delta,
2124 which we then also need to save/restore along the way. */
2125 int old_stack_pointer_delta = 0;
2127 rtx call_fusage;
2128 tree p = TREE_OPERAND (exp, 0);
2129 tree addr = TREE_OPERAND (exp, 0);
2130 int i;
2131 /* The alignment of the stack, in bits. */
2132 HOST_WIDE_INT preferred_stack_boundary;
2133 /* The alignment of the stack, in bytes. */
2134 HOST_WIDE_INT preferred_unit_stack_boundary;
2136 /* See if this is "nothrow" function call. */
2137 if (TREE_NOTHROW (exp))
2138 flags |= ECF_NOTHROW;
2140 /* See if we can find a DECL-node for the actual function.
2141 As a result, decide whether this is a call to an integrable function. */
2143 fndecl = get_callee_fndecl (exp);
2144 if (fndecl)
2146 if (!flag_no_inline
2147 && fndecl != current_function_decl
2148 && DECL_INLINE (fndecl)
2149 && DECL_SAVED_INSNS (fndecl)
2150 && DECL_SAVED_INSNS (fndecl)->inlinable)
2151 is_integrable = 1;
2152 else if (! TREE_ADDRESSABLE (fndecl))
2154 /* In case this function later becomes inlinable,
2155 record that there was already a non-inline call to it.
2157 Use abstraction instead of setting TREE_ADDRESSABLE
2158 directly. */
2159 if (DECL_INLINE (fndecl) && warn_inline && !flag_no_inline
2160 && optimize > 0)
2162 warning ("%Jcan't inline call to '%F'", fndecl, fndecl);
2163 warning ("called from here");
2165 (*lang_hooks.mark_addressable) (fndecl);
2168 if (ignore
2169 && lookup_attribute ("warn_unused_result",
2170 TYPE_ATTRIBUTES (TREE_TYPE (fndecl))))
2171 warning ("ignoring return value of `%D', "
2172 "declared with attribute warn_unused_result", fndecl);
2174 flags |= flags_from_decl_or_type (fndecl);
2177 /* If we don't have specific function to call, see if we have a
2178 attributes set in the type. */
2179 else
2181 if (ignore
2182 && lookup_attribute ("warn_unused_result",
2183 TYPE_ATTRIBUTES (TREE_TYPE (TREE_TYPE (p)))))
2184 warning ("ignoring return value of function "
2185 "declared with attribute warn_unused_result");
2186 flags |= flags_from_decl_or_type (TREE_TYPE (TREE_TYPE (p)));
2189 struct_value = targetm.calls.struct_value_rtx (fndecl ? TREE_TYPE (fndecl) : 0, 0);
2191 /* Warn if this value is an aggregate type,
2192 regardless of which calling convention we are using for it. */
2193 if (warn_aggregate_return && AGGREGATE_TYPE_P (TREE_TYPE (exp)))
2194 warning ("function call has aggregate value");
2196 /* If the result of a pure or const function call is ignored (or void),
2197 and none of its arguments are volatile, we can avoid expanding the
2198 call and just evaluate the arguments for side-effects. */
2199 if ((flags & (ECF_CONST | ECF_PURE))
2200 && (ignore || target == const0_rtx
2201 || TYPE_MODE (TREE_TYPE (exp)) == VOIDmode))
2203 bool volatilep = false;
2204 tree arg;
2206 for (arg = actparms; arg; arg = TREE_CHAIN (arg))
2207 if (TREE_THIS_VOLATILE (TREE_VALUE (arg)))
2209 volatilep = true;
2210 break;
2213 if (! volatilep)
2215 for (arg = actparms; arg; arg = TREE_CHAIN (arg))
2216 expand_expr (TREE_VALUE (arg), const0_rtx,
2217 VOIDmode, EXPAND_NORMAL);
2218 return const0_rtx;
2222 #ifdef REG_PARM_STACK_SPACE
2223 #ifdef MAYBE_REG_PARM_STACK_SPACE
2224 reg_parm_stack_space = MAYBE_REG_PARM_STACK_SPACE;
2225 #else
2226 reg_parm_stack_space = REG_PARM_STACK_SPACE (fndecl);
2227 #endif
2228 #endif
2230 #ifndef OUTGOING_REG_PARM_STACK_SPACE
2231 if (reg_parm_stack_space > 0 && PUSH_ARGS)
2232 must_preallocate = 1;
2233 #endif
2235 /* Set up a place to return a structure. */
2237 /* Cater to broken compilers. */
2238 if (aggregate_value_p (exp, fndecl))
2240 /* This call returns a big structure. */
2241 flags &= ~(ECF_CONST | ECF_PURE | ECF_LIBCALL_BLOCK);
2243 #ifdef PCC_STATIC_STRUCT_RETURN
2245 pcc_struct_value = 1;
2246 /* Easier than making that case work right. */
2247 if (is_integrable)
2249 /* In case this is a static function, note that it has been
2250 used. */
2251 if (! TREE_ADDRESSABLE (fndecl))
2252 (*lang_hooks.mark_addressable) (fndecl);
2253 is_integrable = 0;
2256 #else /* not PCC_STATIC_STRUCT_RETURN */
2258 struct_value_size = int_size_in_bytes (TREE_TYPE (exp));
2260 if (CALL_EXPR_HAS_RETURN_SLOT_ADDR (exp))
2262 /* The structure value address arg is already in actparms.
2263 Pull it out. It might be nice to just leave it there, but
2264 we need to set structure_value_addr. */
2265 tree return_arg = TREE_VALUE (actparms);
2266 actparms = TREE_CHAIN (actparms);
2267 structure_value_addr = expand_expr (return_arg, NULL_RTX,
2268 VOIDmode, EXPAND_NORMAL);
2270 else if (target && GET_CODE (target) == MEM)
2271 structure_value_addr = XEXP (target, 0);
2272 else
2274 /* For variable-sized objects, we must be called with a target
2275 specified. If we were to allocate space on the stack here,
2276 we would have no way of knowing when to free it. */
2277 rtx d = assign_temp (TREE_TYPE (exp), 1, 1, 1);
2279 mark_temp_addr_taken (d);
2280 structure_value_addr = XEXP (d, 0);
2281 target = 0;
2284 #endif /* not PCC_STATIC_STRUCT_RETURN */
2287 /* If called function is inline, try to integrate it. */
2289 if (is_integrable)
2291 rtx temp = try_to_integrate (fndecl, actparms, target,
2292 ignore, TREE_TYPE (exp),
2293 structure_value_addr);
2294 if (temp != (rtx) (size_t) - 1)
2295 return temp;
2298 /* Figure out the amount to which the stack should be aligned. */
2299 preferred_stack_boundary = PREFERRED_STACK_BOUNDARY;
2300 if (fndecl)
2302 struct cgraph_rtl_info *i = cgraph_rtl_info (fndecl);
2303 if (i && i->preferred_incoming_stack_boundary)
2304 preferred_stack_boundary = i->preferred_incoming_stack_boundary;
2307 /* Operand 0 is a pointer-to-function; get the type of the function. */
2308 funtype = TREE_TYPE (addr);
2309 if (! POINTER_TYPE_P (funtype))
2310 abort ();
2311 funtype = TREE_TYPE (funtype);
2313 /* Munge the tree to split complex arguments into their imaginary
2314 and real parts. */
2315 if (SPLIT_COMPLEX_ARGS)
2317 type_arg_types = split_complex_types (TYPE_ARG_TYPES (funtype));
2318 actparms = split_complex_values (actparms);
2320 else
2321 type_arg_types = TYPE_ARG_TYPES (funtype);
2323 /* See if this is a call to a function that can return more than once
2324 or a call to longjmp or malloc. */
2325 flags |= special_function_p (fndecl, flags);
2327 if (flags & ECF_MAY_BE_ALLOCA)
2328 current_function_calls_alloca = 1;
2330 /* If struct_value_rtx is 0, it means pass the address
2331 as if it were an extra parameter. */
2332 if (structure_value_addr && struct_value == 0)
2334 /* If structure_value_addr is a REG other than
2335 virtual_outgoing_args_rtx, we can use always use it. If it
2336 is not a REG, we must always copy it into a register.
2337 If it is virtual_outgoing_args_rtx, we must copy it to another
2338 register in some cases. */
2339 rtx temp = (GET_CODE (structure_value_addr) != REG
2340 || (ACCUMULATE_OUTGOING_ARGS
2341 && stack_arg_under_construction
2342 && structure_value_addr == virtual_outgoing_args_rtx)
2343 ? copy_addr_to_reg (structure_value_addr)
2344 : structure_value_addr);
2346 actparms
2347 = tree_cons (error_mark_node,
2348 make_tree (build_pointer_type (TREE_TYPE (funtype)),
2349 temp),
2350 actparms);
2351 structure_value_addr_parm = 1;
2354 /* Count the arguments and set NUM_ACTUALS. */
2355 for (p = actparms, num_actuals = 0; p; p = TREE_CHAIN (p))
2356 num_actuals++;
2358 /* Start updating where the next arg would go.
2360 On some machines (such as the PA) indirect calls have a difuferent
2361 calling convention than normal calls. The last argument in
2362 INIT_CUMULATIVE_ARGS tells the backend if this is an indirect call
2363 or not. */
2364 INIT_CUMULATIVE_ARGS (args_so_far, funtype, NULL_RTX, fndecl);
2366 /* Compute number of named args.
2367 Normally, don't include the last named arg if anonymous args follow.
2368 We do include the last named arg if STRICT_ARGUMENT_NAMING is nonzero.
2369 (If no anonymous args follow, the result of list_length is actually
2370 one too large. This is harmless.)
2372 If PRETEND_OUTGOING_VARARGS_NAMED is set and STRICT_ARGUMENT_NAMING is
2373 zero, this machine will be able to place unnamed args that were
2374 passed in registers into the stack. So treat all args as named.
2375 This allows the insns emitting for a specific argument list to be
2376 independent of the function declaration.
2378 If PRETEND_OUTGOING_VARARGS_NAMED is not set, we do not have any
2379 reliable way to pass unnamed args in registers, so we must force
2380 them into memory. */
2382 if ((targetm.calls.strict_argument_naming (&args_so_far)
2383 || ! targetm.calls.pretend_outgoing_varargs_named (&args_so_far))
2384 && type_arg_types != 0)
2385 n_named_args
2386 = (list_length (type_arg_types)
2387 /* Don't include the last named arg. */
2388 - (targetm.calls.strict_argument_naming (&args_so_far) ? 0 : 1)
2389 /* Count the struct value address, if it is passed as a parm. */
2390 + structure_value_addr_parm);
2391 else
2392 /* If we know nothing, treat all args as named. */
2393 n_named_args = num_actuals;
2395 /* Make a vector to hold all the information about each arg. */
2396 args = alloca (num_actuals * sizeof (struct arg_data));
2397 memset (args, 0, num_actuals * sizeof (struct arg_data));
2399 /* Build up entries in the ARGS array, compute the size of the
2400 arguments into ARGS_SIZE, etc. */
2401 initialize_argument_information (num_actuals, args, &args_size,
2402 n_named_args, actparms, fndecl,
2403 &args_so_far, reg_parm_stack_space,
2404 &old_stack_level, &old_pending_adj,
2405 &must_preallocate, &flags);
2407 if (args_size.var)
2409 /* If this function requires a variable-sized argument list, don't
2410 try to make a cse'able block for this call. We may be able to
2411 do this eventually, but it is too complicated to keep track of
2412 what insns go in the cse'able block and which don't. */
2414 flags &= ~ECF_LIBCALL_BLOCK;
2415 must_preallocate = 1;
2418 /* Now make final decision about preallocating stack space. */
2419 must_preallocate = finalize_must_preallocate (must_preallocate,
2420 num_actuals, args,
2421 &args_size);
2423 /* If the structure value address will reference the stack pointer, we
2424 must stabilize it. We don't need to do this if we know that we are
2425 not going to adjust the stack pointer in processing this call. */
2427 if (structure_value_addr
2428 && (reg_mentioned_p (virtual_stack_dynamic_rtx, structure_value_addr)
2429 || reg_mentioned_p (virtual_outgoing_args_rtx,
2430 structure_value_addr))
2431 && (args_size.var
2432 || (!ACCUMULATE_OUTGOING_ARGS && args_size.constant)))
2433 structure_value_addr = copy_to_reg (structure_value_addr);
2435 /* Tail calls can make things harder to debug, and we're traditionally
2436 pushed these optimizations into -O2. Don't try if we're already
2437 expanding a call, as that means we're an argument. Don't try if
2438 there's cleanups, as we know there's code to follow the call.
2440 If rtx_equal_function_value_matters is false, that means we've
2441 finished with regular parsing. Which means that some of the
2442 machinery we use to generate tail-calls is no longer in place.
2443 This is most often true of sjlj-exceptions, which we couldn't
2444 tail-call to anyway. */
2446 if (currently_expanding_call++ != 0
2447 || !flag_optimize_sibling_calls
2448 || !rtx_equal_function_value_matters
2449 || any_pending_cleanups ()
2450 || args_size.var)
2451 try_tail_call = try_tail_recursion = 0;
2453 /* Tail recursion fails, when we are not dealing with recursive calls. */
2454 if (!try_tail_recursion
2455 || TREE_CODE (addr) != ADDR_EXPR
2456 || TREE_OPERAND (addr, 0) != current_function_decl)
2457 try_tail_recursion = 0;
2459 /* Rest of purposes for tail call optimizations to fail. */
2460 if (
2461 #ifdef HAVE_sibcall_epilogue
2462 !HAVE_sibcall_epilogue
2463 #else
2465 #endif
2466 || !try_tail_call
2467 /* Doing sibling call optimization needs some work, since
2468 structure_value_addr can be allocated on the stack.
2469 It does not seem worth the effort since few optimizable
2470 sibling calls will return a structure. */
2471 || structure_value_addr != NULL_RTX
2472 /* Check whether the target is able to optimize the call
2473 into a sibcall. */
2474 || !(*targetm.function_ok_for_sibcall) (fndecl, exp)
2475 /* Functions that do not return exactly once may not be sibcall
2476 optimized. */
2477 || (flags & (ECF_RETURNS_TWICE | ECF_LONGJMP | ECF_NORETURN))
2478 || TYPE_VOLATILE (TREE_TYPE (TREE_TYPE (addr)))
2479 /* If the called function is nested in the current one, it might access
2480 some of the caller's arguments, but could clobber them beforehand if
2481 the argument areas are shared. */
2482 || (fndecl && decl_function_context (fndecl) == current_function_decl)
2483 /* If this function requires more stack slots than the current
2484 function, we cannot change it into a sibling call. */
2485 || args_size.constant > current_function_args_size
2486 /* If the callee pops its own arguments, then it must pop exactly
2487 the same number of arguments as the current function. */
2488 || (RETURN_POPS_ARGS (fndecl, funtype, args_size.constant)
2489 != RETURN_POPS_ARGS (current_function_decl,
2490 TREE_TYPE (current_function_decl),
2491 current_function_args_size))
2492 || !(*lang_hooks.decls.ok_for_sibcall) (fndecl))
2493 try_tail_call = 0;
2495 if (try_tail_call || try_tail_recursion)
2497 int end, inc;
2498 actparms = NULL_TREE;
2499 /* Ok, we're going to give the tail call the old college try.
2500 This means we're going to evaluate the function arguments
2501 up to three times. There are two degrees of badness we can
2502 encounter, those that can be unsaved and those that can't.
2503 (See unsafe_for_reeval commentary for details.)
2505 Generate a new argument list. Pass safe arguments through
2506 unchanged. For the easy badness wrap them in UNSAVE_EXPRs.
2507 For hard badness, evaluate them now and put their resulting
2508 rtx in a temporary VAR_DECL.
2510 initialize_argument_information has ordered the array for the
2511 order to be pushed, and we must remember this when reconstructing
2512 the original argument order. */
2514 if (PUSH_ARGS_REVERSED)
2516 inc = 1;
2517 i = 0;
2518 end = num_actuals;
2520 else
2522 inc = -1;
2523 i = num_actuals - 1;
2524 end = -1;
2527 for (; i != end; i += inc)
2529 args[i].tree_value = fix_unsafe_tree (args[i].tree_value);
2530 /* We need to build actparms for optimize_tail_recursion. We can
2531 safely trash away TREE_PURPOSE, since it is unused by this
2532 function. */
2533 if (try_tail_recursion)
2534 actparms = tree_cons (NULL_TREE, args[i].tree_value, actparms);
2536 /* Do the same for the function address if it is an expression. */
2537 if (!fndecl)
2538 addr = fix_unsafe_tree (addr);
2539 /* Expanding one of those dangerous arguments could have added
2540 cleanups, but otherwise give it a whirl. */
2541 if (any_pending_cleanups ())
2542 try_tail_call = try_tail_recursion = 0;
2545 /* Generate a tail recursion sequence when calling ourselves. */
2547 if (try_tail_recursion)
2549 /* We want to emit any pending stack adjustments before the tail
2550 recursion "call". That way we know any adjustment after the tail
2551 recursion call can be ignored if we indeed use the tail recursion
2552 call expansion. */
2553 int save_pending_stack_adjust = pending_stack_adjust;
2554 int save_stack_pointer_delta = stack_pointer_delta;
2556 /* Emit any queued insns now; otherwise they would end up in
2557 only one of the alternates. */
2558 emit_queue ();
2560 /* Use a new sequence to hold any RTL we generate. We do not even
2561 know if we will use this RTL yet. The final decision can not be
2562 made until after RTL generation for the entire function is
2563 complete. */
2564 start_sequence ();
2565 /* If expanding any of the arguments creates cleanups, we can't
2566 do a tailcall. So, we'll need to pop the pending cleanups
2567 list. If, however, all goes well, and there are no cleanups
2568 then the call to expand_start_target_temps will have no
2569 effect. */
2570 expand_start_target_temps ();
2571 if (optimize_tail_recursion (actparms, get_last_insn ()))
2573 if (any_pending_cleanups ())
2574 try_tail_call = try_tail_recursion = 0;
2575 else
2576 tail_recursion_insns = get_insns ();
2578 expand_end_target_temps ();
2579 end_sequence ();
2581 /* Restore the original pending stack adjustment for the sibling and
2582 normal call cases below. */
2583 pending_stack_adjust = save_pending_stack_adjust;
2584 stack_pointer_delta = save_stack_pointer_delta;
2587 if (profile_arc_flag && (flags & ECF_FORK_OR_EXEC))
2589 /* A fork duplicates the profile information, and an exec discards
2590 it. We can't rely on fork/exec to be paired. So write out the
2591 profile information we have gathered so far, and clear it. */
2592 /* ??? When Linux's __clone is called with CLONE_VM set, profiling
2593 is subject to race conditions, just as with multithreaded
2594 programs. */
2596 emit_library_call (gcov_flush_libfunc, LCT_ALWAYS_RETURN, VOIDmode, 0);
2599 /* Ensure current function's preferred stack boundary is at least
2600 what we need. We don't have to increase alignment for recursive
2601 functions. */
2602 if (cfun->preferred_stack_boundary < preferred_stack_boundary
2603 && fndecl != current_function_decl)
2604 cfun->preferred_stack_boundary = preferred_stack_boundary;
2605 if (fndecl == current_function_decl)
2606 cfun->recursive_call_emit = true;
2608 preferred_unit_stack_boundary = preferred_stack_boundary / BITS_PER_UNIT;
2610 function_call_count++;
2612 /* We want to make two insn chains; one for a sibling call, the other
2613 for a normal call. We will select one of the two chains after
2614 initial RTL generation is complete. */
2615 for (pass = try_tail_call ? 0 : 1; pass < 2; pass++)
2617 int sibcall_failure = 0;
2618 /* We want to emit any pending stack adjustments before the tail
2619 recursion "call". That way we know any adjustment after the tail
2620 recursion call can be ignored if we indeed use the tail recursion
2621 call expansion. */
2622 int save_pending_stack_adjust = 0;
2623 int save_stack_pointer_delta = 0;
2624 rtx insns;
2625 rtx before_call, next_arg_reg;
2627 if (pass == 0)
2629 /* Emit any queued insns now; otherwise they would end up in
2630 only one of the alternates. */
2631 emit_queue ();
2633 /* State variables we need to save and restore between
2634 iterations. */
2635 save_pending_stack_adjust = pending_stack_adjust;
2636 save_stack_pointer_delta = stack_pointer_delta;
2638 if (pass)
2639 flags &= ~ECF_SIBCALL;
2640 else
2641 flags |= ECF_SIBCALL;
2643 /* Other state variables that we must reinitialize each time
2644 through the loop (that are not initialized by the loop itself). */
2645 argblock = 0;
2646 call_fusage = 0;
2648 /* Start a new sequence for the normal call case.
2650 From this point on, if the sibling call fails, we want to set
2651 sibcall_failure instead of continuing the loop. */
2652 start_sequence ();
2654 if (pass == 0)
2656 /* We know at this point that there are not currently any
2657 pending cleanups. If, however, in the process of evaluating
2658 the arguments we were to create some, we'll need to be
2659 able to get rid of them. */
2660 expand_start_target_temps ();
2663 /* Don't let pending stack adjusts add up to too much.
2664 Also, do all pending adjustments now if there is any chance
2665 this might be a call to alloca or if we are expanding a sibling
2666 call sequence or if we are calling a function that is to return
2667 with stack pointer depressed. */
2668 if (pending_stack_adjust >= 32
2669 || (pending_stack_adjust > 0
2670 && (flags & (ECF_MAY_BE_ALLOCA | ECF_SP_DEPRESSED)))
2671 || pass == 0)
2672 do_pending_stack_adjust ();
2674 /* When calling a const function, we must pop the stack args right away,
2675 so that the pop is deleted or moved with the call. */
2676 if (pass && (flags & ECF_LIBCALL_BLOCK))
2677 NO_DEFER_POP;
2679 #ifdef FINAL_REG_PARM_STACK_SPACE
2680 reg_parm_stack_space = FINAL_REG_PARM_STACK_SPACE (args_size.constant,
2681 args_size.var);
2682 #endif
2683 /* Precompute any arguments as needed. */
2684 if (pass)
2685 precompute_arguments (flags, num_actuals, args);
2687 /* Now we are about to start emitting insns that can be deleted
2688 if a libcall is deleted. */
2689 if (pass && (flags & (ECF_LIBCALL_BLOCK | ECF_MALLOC)))
2690 start_sequence ();
2692 adjusted_args_size = args_size;
2693 /* Compute the actual size of the argument block required. The variable
2694 and constant sizes must be combined, the size may have to be rounded,
2695 and there may be a minimum required size. When generating a sibcall
2696 pattern, do not round up, since we'll be re-using whatever space our
2697 caller provided. */
2698 unadjusted_args_size
2699 = compute_argument_block_size (reg_parm_stack_space,
2700 &adjusted_args_size,
2701 (pass == 0 ? 0
2702 : preferred_stack_boundary));
2704 old_stack_allocated = stack_pointer_delta - pending_stack_adjust;
2706 /* The argument block when performing a sibling call is the
2707 incoming argument block. */
2708 if (pass == 0)
2710 argblock = virtual_incoming_args_rtx;
2711 argblock
2712 #ifdef STACK_GROWS_DOWNWARD
2713 = plus_constant (argblock, current_function_pretend_args_size);
2714 #else
2715 = plus_constant (argblock, -current_function_pretend_args_size);
2716 #endif
2717 stored_args_map = sbitmap_alloc (args_size.constant);
2718 sbitmap_zero (stored_args_map);
2721 /* If we have no actual push instructions, or shouldn't use them,
2722 make space for all args right now. */
2723 else if (adjusted_args_size.var != 0)
2725 if (old_stack_level == 0)
2727 emit_stack_save (SAVE_BLOCK, &old_stack_level, NULL_RTX);
2728 old_stack_pointer_delta = stack_pointer_delta;
2729 old_pending_adj = pending_stack_adjust;
2730 pending_stack_adjust = 0;
2731 /* stack_arg_under_construction says whether a stack arg is
2732 being constructed at the old stack level. Pushing the stack
2733 gets a clean outgoing argument block. */
2734 old_stack_arg_under_construction = stack_arg_under_construction;
2735 stack_arg_under_construction = 0;
2737 argblock = push_block (ARGS_SIZE_RTX (adjusted_args_size), 0, 0);
2739 else
2741 /* Note that we must go through the motions of allocating an argument
2742 block even if the size is zero because we may be storing args
2743 in the area reserved for register arguments, which may be part of
2744 the stack frame. */
2746 int needed = adjusted_args_size.constant;
2748 /* Store the maximum argument space used. It will be pushed by
2749 the prologue (if ACCUMULATE_OUTGOING_ARGS, or stack overflow
2750 checking). */
2752 if (needed > current_function_outgoing_args_size)
2753 current_function_outgoing_args_size = needed;
2755 if (must_preallocate)
2757 if (ACCUMULATE_OUTGOING_ARGS)
2759 /* Since the stack pointer will never be pushed, it is
2760 possible for the evaluation of a parm to clobber
2761 something we have already written to the stack.
2762 Since most function calls on RISC machines do not use
2763 the stack, this is uncommon, but must work correctly.
2765 Therefore, we save any area of the stack that was already
2766 written and that we are using. Here we set up to do this
2767 by making a new stack usage map from the old one. The
2768 actual save will be done by store_one_arg.
2770 Another approach might be to try to reorder the argument
2771 evaluations to avoid this conflicting stack usage. */
2773 #ifndef OUTGOING_REG_PARM_STACK_SPACE
2774 /* Since we will be writing into the entire argument area,
2775 the map must be allocated for its entire size, not just
2776 the part that is the responsibility of the caller. */
2777 needed += reg_parm_stack_space;
2778 #endif
2780 #ifdef ARGS_GROW_DOWNWARD
2781 highest_outgoing_arg_in_use = MAX (initial_highest_arg_in_use,
2782 needed + 1);
2783 #else
2784 highest_outgoing_arg_in_use = MAX (initial_highest_arg_in_use,
2785 needed);
2786 #endif
2787 stack_usage_map = alloca (highest_outgoing_arg_in_use);
2789 if (initial_highest_arg_in_use)
2790 memcpy (stack_usage_map, initial_stack_usage_map,
2791 initial_highest_arg_in_use);
2793 if (initial_highest_arg_in_use != highest_outgoing_arg_in_use)
2794 memset (&stack_usage_map[initial_highest_arg_in_use], 0,
2795 (highest_outgoing_arg_in_use
2796 - initial_highest_arg_in_use));
2797 needed = 0;
2799 /* The address of the outgoing argument list must not be
2800 copied to a register here, because argblock would be left
2801 pointing to the wrong place after the call to
2802 allocate_dynamic_stack_space below. */
2804 argblock = virtual_outgoing_args_rtx;
2806 else
2808 if (inhibit_defer_pop == 0)
2810 /* Try to reuse some or all of the pending_stack_adjust
2811 to get this space. */
2812 needed
2813 = (combine_pending_stack_adjustment_and_call
2814 (unadjusted_args_size,
2815 &adjusted_args_size,
2816 preferred_unit_stack_boundary));
2818 /* combine_pending_stack_adjustment_and_call computes
2819 an adjustment before the arguments are allocated.
2820 Account for them and see whether or not the stack
2821 needs to go up or down. */
2822 needed = unadjusted_args_size - needed;
2824 if (needed < 0)
2826 /* We're releasing stack space. */
2827 /* ??? We can avoid any adjustment at all if we're
2828 already aligned. FIXME. */
2829 pending_stack_adjust = -needed;
2830 do_pending_stack_adjust ();
2831 needed = 0;
2833 else
2834 /* We need to allocate space. We'll do that in
2835 push_block below. */
2836 pending_stack_adjust = 0;
2839 /* Special case this because overhead of `push_block' in
2840 this case is non-trivial. */
2841 if (needed == 0)
2842 argblock = virtual_outgoing_args_rtx;
2843 else
2845 argblock = push_block (GEN_INT (needed), 0, 0);
2846 #ifdef ARGS_GROW_DOWNWARD
2847 argblock = plus_constant (argblock, needed);
2848 #endif
2851 /* We only really need to call `copy_to_reg' in the case
2852 where push insns are going to be used to pass ARGBLOCK
2853 to a function call in ARGS. In that case, the stack
2854 pointer changes value from the allocation point to the
2855 call point, and hence the value of
2856 VIRTUAL_OUTGOING_ARGS_RTX changes as well. But might
2857 as well always do it. */
2858 argblock = copy_to_reg (argblock);
2863 if (ACCUMULATE_OUTGOING_ARGS)
2865 /* The save/restore code in store_one_arg handles all
2866 cases except one: a constructor call (including a C
2867 function returning a BLKmode struct) to initialize
2868 an argument. */
2869 if (stack_arg_under_construction)
2871 #ifndef OUTGOING_REG_PARM_STACK_SPACE
2872 rtx push_size = GEN_INT (reg_parm_stack_space
2873 + adjusted_args_size.constant);
2874 #else
2875 rtx push_size = GEN_INT (adjusted_args_size.constant);
2876 #endif
2877 if (old_stack_level == 0)
2879 emit_stack_save (SAVE_BLOCK, &old_stack_level,
2880 NULL_RTX);
2881 old_stack_pointer_delta = stack_pointer_delta;
2882 old_pending_adj = pending_stack_adjust;
2883 pending_stack_adjust = 0;
2884 /* stack_arg_under_construction says whether a stack
2885 arg is being constructed at the old stack level.
2886 Pushing the stack gets a clean outgoing argument
2887 block. */
2888 old_stack_arg_under_construction
2889 = stack_arg_under_construction;
2890 stack_arg_under_construction = 0;
2891 /* Make a new map for the new argument list. */
2892 stack_usage_map = alloca (highest_outgoing_arg_in_use);
2893 memset (stack_usage_map, 0, highest_outgoing_arg_in_use);
2894 highest_outgoing_arg_in_use = 0;
2896 allocate_dynamic_stack_space (push_size, NULL_RTX,
2897 BITS_PER_UNIT);
2900 /* If argument evaluation might modify the stack pointer,
2901 copy the address of the argument list to a register. */
2902 for (i = 0; i < num_actuals; i++)
2903 if (args[i].pass_on_stack)
2905 argblock = copy_addr_to_reg (argblock);
2906 break;
2910 compute_argument_addresses (args, argblock, num_actuals);
2912 /* If we push args individually in reverse order, perform stack alignment
2913 before the first push (the last arg). */
2914 if (PUSH_ARGS_REVERSED && argblock == 0
2915 && adjusted_args_size.constant != unadjusted_args_size)
2917 /* When the stack adjustment is pending, we get better code
2918 by combining the adjustments. */
2919 if (pending_stack_adjust
2920 && ! (flags & ECF_LIBCALL_BLOCK)
2921 && ! inhibit_defer_pop)
2923 pending_stack_adjust
2924 = (combine_pending_stack_adjustment_and_call
2925 (unadjusted_args_size,
2926 &adjusted_args_size,
2927 preferred_unit_stack_boundary));
2928 do_pending_stack_adjust ();
2930 else if (argblock == 0)
2931 anti_adjust_stack (GEN_INT (adjusted_args_size.constant
2932 - unadjusted_args_size));
2934 /* Now that the stack is properly aligned, pops can't safely
2935 be deferred during the evaluation of the arguments. */
2936 NO_DEFER_POP;
2938 funexp = rtx_for_function_call (fndecl, addr);
2940 /* Figure out the register where the value, if any, will come back. */
2941 valreg = 0;
2942 if (TYPE_MODE (TREE_TYPE (exp)) != VOIDmode
2943 && ! structure_value_addr)
2945 if (pcc_struct_value)
2946 valreg = hard_function_value (build_pointer_type (TREE_TYPE (exp)),
2947 fndecl, (pass == 0));
2948 else
2949 valreg = hard_function_value (TREE_TYPE (exp), fndecl, (pass == 0));
2952 /* Precompute all register parameters. It isn't safe to compute anything
2953 once we have started filling any specific hard regs. */
2954 precompute_register_parameters (num_actuals, args, &reg_parm_seen);
2956 #ifdef REG_PARM_STACK_SPACE
2957 /* Save the fixed argument area if it's part of the caller's frame and
2958 is clobbered by argument setup for this call. */
2959 if (ACCUMULATE_OUTGOING_ARGS && pass)
2960 save_area = save_fixed_argument_area (reg_parm_stack_space, argblock,
2961 &low_to_save, &high_to_save);
2962 #endif
2964 /* Now store (and compute if necessary) all non-register parms.
2965 These come before register parms, since they can require block-moves,
2966 which could clobber the registers used for register parms.
2967 Parms which have partial registers are not stored here,
2968 but we do preallocate space here if they want that. */
2970 for (i = 0; i < num_actuals; i++)
2971 if (args[i].reg == 0 || args[i].pass_on_stack)
2973 rtx before_arg = get_last_insn ();
2975 if (store_one_arg (&args[i], argblock, flags,
2976 adjusted_args_size.var != 0,
2977 reg_parm_stack_space)
2978 || (pass == 0
2979 && check_sibcall_argument_overlap (before_arg,
2980 &args[i], 1)))
2981 sibcall_failure = 1;
2984 /* If we have a parm that is passed in registers but not in memory
2985 and whose alignment does not permit a direct copy into registers,
2986 make a group of pseudos that correspond to each register that we
2987 will later fill. */
2988 if (STRICT_ALIGNMENT)
2989 store_unaligned_arguments_into_pseudos (args, num_actuals);
2991 /* Now store any partially-in-registers parm.
2992 This is the last place a block-move can happen. */
2993 if (reg_parm_seen)
2994 for (i = 0; i < num_actuals; i++)
2995 if (args[i].partial != 0 && ! args[i].pass_on_stack)
2997 rtx before_arg = get_last_insn ();
2999 if (store_one_arg (&args[i], argblock, flags,
3000 adjusted_args_size.var != 0,
3001 reg_parm_stack_space)
3002 || (pass == 0
3003 && check_sibcall_argument_overlap (before_arg,
3004 &args[i], 1)))
3005 sibcall_failure = 1;
3008 /* If we pushed args in forward order, perform stack alignment
3009 after pushing the last arg. */
3010 if (!PUSH_ARGS_REVERSED && argblock == 0)
3011 anti_adjust_stack (GEN_INT (adjusted_args_size.constant
3012 - unadjusted_args_size));
3014 /* If register arguments require space on the stack and stack space
3015 was not preallocated, allocate stack space here for arguments
3016 passed in registers. */
3017 #ifdef OUTGOING_REG_PARM_STACK_SPACE
3018 if (!ACCUMULATE_OUTGOING_ARGS
3019 && must_preallocate == 0 && reg_parm_stack_space > 0)
3020 anti_adjust_stack (GEN_INT (reg_parm_stack_space));
3021 #endif
3023 /* Pass the function the address in which to return a
3024 structure value. */
3025 if (pass != 0 && structure_value_addr && ! structure_value_addr_parm)
3027 structure_value_addr
3028 = convert_memory_address (Pmode, structure_value_addr);
3029 emit_move_insn (struct_value,
3030 force_reg (Pmode,
3031 force_operand (structure_value_addr,
3032 NULL_RTX)));
3034 if (GET_CODE (struct_value) == REG)
3035 use_reg (&call_fusage, struct_value);
3038 funexp = prepare_call_address (funexp, fndecl, &call_fusage,
3039 reg_parm_seen, pass == 0);
3041 load_register_parameters (args, num_actuals, &call_fusage, flags,
3042 pass == 0, &sibcall_failure);
3044 /* Perform postincrements before actually calling the function. */
3045 emit_queue ();
3047 /* Save a pointer to the last insn before the call, so that we can
3048 later safely search backwards to find the CALL_INSN. */
3049 before_call = get_last_insn ();
3051 /* Set up next argument register. For sibling calls on machines
3052 with register windows this should be the incoming register. */
3053 #ifdef FUNCTION_INCOMING_ARG
3054 if (pass == 0)
3055 next_arg_reg = FUNCTION_INCOMING_ARG (args_so_far, VOIDmode,
3056 void_type_node, 1);
3057 else
3058 #endif
3059 next_arg_reg = FUNCTION_ARG (args_so_far, VOIDmode,
3060 void_type_node, 1);
3062 /* All arguments and registers used for the call must be set up by
3063 now! */
3065 /* Stack must be properly aligned now. */
3066 if (pass && stack_pointer_delta % preferred_unit_stack_boundary)
3067 abort ();
3069 /* Generate the actual call instruction. */
3070 emit_call_1 (funexp, fndecl, funtype, unadjusted_args_size,
3071 adjusted_args_size.constant, struct_value_size,
3072 next_arg_reg, valreg, old_inhibit_defer_pop, call_fusage,
3073 flags, & args_so_far);
3075 /* If call is cse'able, make appropriate pair of reg-notes around it.
3076 Test valreg so we don't crash; may safely ignore `const'
3077 if return type is void. Disable for PARALLEL return values, because
3078 we have no way to move such values into a pseudo register. */
3079 if (pass && (flags & ECF_LIBCALL_BLOCK))
3081 rtx insns;
3082 rtx insn;
3083 bool failed = valreg == 0 || GET_CODE (valreg) == PARALLEL;
3085 insns = get_insns ();
3087 /* Expansion of block moves possibly introduced a loop that may
3088 not appear inside libcall block. */
3089 for (insn = insns; insn; insn = NEXT_INSN (insn))
3090 if (GET_CODE (insn) == JUMP_INSN)
3091 failed = true;
3093 if (failed)
3095 end_sequence ();
3096 emit_insn (insns);
3098 else
3100 rtx note = 0;
3101 rtx temp = gen_reg_rtx (GET_MODE (valreg));
3103 /* Mark the return value as a pointer if needed. */
3104 if (TREE_CODE (TREE_TYPE (exp)) == POINTER_TYPE)
3105 mark_reg_pointer (temp,
3106 TYPE_ALIGN (TREE_TYPE (TREE_TYPE (exp))));
3108 /* Construct an "equal form" for the value which mentions all the
3109 arguments in order as well as the function name. */
3110 for (i = 0; i < num_actuals; i++)
3111 note = gen_rtx_EXPR_LIST (VOIDmode,
3112 args[i].initial_value, note);
3113 note = gen_rtx_EXPR_LIST (VOIDmode, funexp, note);
3115 end_sequence ();
3117 if (flags & ECF_PURE)
3118 note = gen_rtx_EXPR_LIST (VOIDmode,
3119 gen_rtx_USE (VOIDmode,
3120 gen_rtx_MEM (BLKmode,
3121 gen_rtx_SCRATCH (VOIDmode))),
3122 note);
3124 emit_libcall_block (insns, temp, valreg, note);
3126 valreg = temp;
3129 else if (pass && (flags & ECF_MALLOC))
3131 rtx temp = gen_reg_rtx (GET_MODE (valreg));
3132 rtx last, insns;
3134 /* The return value from a malloc-like function is a pointer. */
3135 if (TREE_CODE (TREE_TYPE (exp)) == POINTER_TYPE)
3136 mark_reg_pointer (temp, BIGGEST_ALIGNMENT);
3138 emit_move_insn (temp, valreg);
3140 /* The return value from a malloc-like function can not alias
3141 anything else. */
3142 last = get_last_insn ();
3143 REG_NOTES (last) =
3144 gen_rtx_EXPR_LIST (REG_NOALIAS, temp, REG_NOTES (last));
3146 /* Write out the sequence. */
3147 insns = get_insns ();
3148 end_sequence ();
3149 emit_insn (insns);
3150 valreg = temp;
3153 /* For calls to `setjmp', etc., inform flow.c it should complain
3154 if nonvolatile values are live. For functions that cannot return,
3155 inform flow that control does not fall through. */
3157 if ((flags & (ECF_NORETURN | ECF_LONGJMP)) || pass == 0)
3159 /* The barrier must be emitted
3160 immediately after the CALL_INSN. Some ports emit more
3161 than just a CALL_INSN above, so we must search for it here. */
3163 rtx last = get_last_insn ();
3164 while (GET_CODE (last) != CALL_INSN)
3166 last = PREV_INSN (last);
3167 /* There was no CALL_INSN? */
3168 if (last == before_call)
3169 abort ();
3172 emit_barrier_after (last);
3174 /* Stack adjustments after a noreturn call are dead code. */
3175 stack_pointer_delta = old_stack_allocated;
3176 pending_stack_adjust = 0;
3179 if (flags & ECF_LONGJMP)
3180 current_function_calls_longjmp = 1;
3182 /* If value type not void, return an rtx for the value. */
3184 /* If there are cleanups to be called, don't use a hard reg as target.
3185 We need to double check this and see if it matters anymore. */
3186 if (any_pending_cleanups ())
3188 if (target && REG_P (target)
3189 && REGNO (target) < FIRST_PSEUDO_REGISTER)
3190 target = 0;
3191 sibcall_failure = 1;
3194 if (TYPE_MODE (TREE_TYPE (exp)) == VOIDmode
3195 || ignore)
3196 target = const0_rtx;
3197 else if (structure_value_addr)
3199 if (target == 0 || GET_CODE (target) != MEM)
3201 target
3202 = gen_rtx_MEM (TYPE_MODE (TREE_TYPE (exp)),
3203 memory_address (TYPE_MODE (TREE_TYPE (exp)),
3204 structure_value_addr));
3205 set_mem_attributes (target, exp, 1);
3208 else if (pcc_struct_value)
3210 /* This is the special C++ case where we need to
3211 know what the true target was. We take care to
3212 never use this value more than once in one expression. */
3213 target = gen_rtx_MEM (TYPE_MODE (TREE_TYPE (exp)),
3214 copy_to_reg (valreg));
3215 set_mem_attributes (target, exp, 1);
3217 /* Handle calls that return values in multiple non-contiguous locations.
3218 The Irix 6 ABI has examples of this. */
3219 else if (GET_CODE (valreg) == PARALLEL)
3221 if (target == 0)
3223 /* This will only be assigned once, so it can be readonly. */
3224 tree nt = build_qualified_type (TREE_TYPE (exp),
3225 (TYPE_QUALS (TREE_TYPE (exp))
3226 | TYPE_QUAL_CONST));
3228 target = assign_temp (nt, 0, 1, 1);
3229 preserve_temp_slots (target);
3232 if (! rtx_equal_p (target, valreg))
3233 emit_group_store (target, valreg, TREE_TYPE (exp),
3234 int_size_in_bytes (TREE_TYPE (exp)));
3236 /* We can not support sibling calls for this case. */
3237 sibcall_failure = 1;
3239 else if (target
3240 && GET_MODE (target) == TYPE_MODE (TREE_TYPE (exp))
3241 && GET_MODE (target) == GET_MODE (valreg))
3243 /* TARGET and VALREG cannot be equal at this point because the
3244 latter would not have REG_FUNCTION_VALUE_P true, while the
3245 former would if it were referring to the same register.
3247 If they refer to the same register, this move will be a no-op,
3248 except when function inlining is being done. */
3249 emit_move_insn (target, valreg);
3251 /* If we are setting a MEM, this code must be executed. Since it is
3252 emitted after the call insn, sibcall optimization cannot be
3253 performed in that case. */
3254 if (GET_CODE (target) == MEM)
3255 sibcall_failure = 1;
3257 else if (TYPE_MODE (TREE_TYPE (exp)) == BLKmode)
3259 target = copy_blkmode_from_reg (target, valreg, TREE_TYPE (exp));
3261 /* We can not support sibling calls for this case. */
3262 sibcall_failure = 1;
3264 else
3265 target = copy_to_reg (valreg);
3267 if (targetm.calls.promote_function_return(funtype))
3269 /* If we promoted this return value, make the proper SUBREG. TARGET
3270 might be const0_rtx here, so be careful. */
3271 if (GET_CODE (target) == REG
3272 && TYPE_MODE (TREE_TYPE (exp)) != BLKmode
3273 && GET_MODE (target) != TYPE_MODE (TREE_TYPE (exp)))
3275 tree type = TREE_TYPE (exp);
3276 int unsignedp = TREE_UNSIGNED (type);
3277 int offset = 0;
3279 /* If we don't promote as expected, something is wrong. */
3280 if (GET_MODE (target)
3281 != promote_mode (type, TYPE_MODE (type), &unsignedp, 1))
3282 abort ();
3284 if ((WORDS_BIG_ENDIAN || BYTES_BIG_ENDIAN)
3285 && GET_MODE_SIZE (GET_MODE (target))
3286 > GET_MODE_SIZE (TYPE_MODE (type)))
3288 offset = GET_MODE_SIZE (GET_MODE (target))
3289 - GET_MODE_SIZE (TYPE_MODE (type));
3290 if (! BYTES_BIG_ENDIAN)
3291 offset = (offset / UNITS_PER_WORD) * UNITS_PER_WORD;
3292 else if (! WORDS_BIG_ENDIAN)
3293 offset %= UNITS_PER_WORD;
3295 target = gen_rtx_SUBREG (TYPE_MODE (type), target, offset);
3296 SUBREG_PROMOTED_VAR_P (target) = 1;
3297 SUBREG_PROMOTED_UNSIGNED_SET (target, unsignedp);
3301 /* If size of args is variable or this was a constructor call for a stack
3302 argument, restore saved stack-pointer value. */
3304 if (old_stack_level && ! (flags & ECF_SP_DEPRESSED))
3306 emit_stack_restore (SAVE_BLOCK, old_stack_level, NULL_RTX);
3307 stack_pointer_delta = old_stack_pointer_delta;
3308 pending_stack_adjust = old_pending_adj;
3309 stack_arg_under_construction = old_stack_arg_under_construction;
3310 highest_outgoing_arg_in_use = initial_highest_arg_in_use;
3311 stack_usage_map = initial_stack_usage_map;
3312 sibcall_failure = 1;
3314 else if (ACCUMULATE_OUTGOING_ARGS && pass)
3316 #ifdef REG_PARM_STACK_SPACE
3317 if (save_area)
3318 restore_fixed_argument_area (save_area, argblock,
3319 high_to_save, low_to_save);
3320 #endif
3322 /* If we saved any argument areas, restore them. */
3323 for (i = 0; i < num_actuals; i++)
3324 if (args[i].save_area)
3326 enum machine_mode save_mode = GET_MODE (args[i].save_area);
3327 rtx stack_area
3328 = gen_rtx_MEM (save_mode,
3329 memory_address (save_mode,
3330 XEXP (args[i].stack_slot, 0)));
3332 if (save_mode != BLKmode)
3333 emit_move_insn (stack_area, args[i].save_area);
3334 else
3335 emit_block_move (stack_area, args[i].save_area,
3336 GEN_INT (args[i].locate.size.constant),
3337 BLOCK_OP_CALL_PARM);
3340 highest_outgoing_arg_in_use = initial_highest_arg_in_use;
3341 stack_usage_map = initial_stack_usage_map;
3344 /* If this was alloca, record the new stack level for nonlocal gotos.
3345 Check for the handler slots since we might not have a save area
3346 for non-local gotos. */
3348 if ((flags & ECF_MAY_BE_ALLOCA) && nonlocal_goto_handler_slots != 0)
3349 emit_stack_save (SAVE_NONLOCAL, &nonlocal_goto_stack_level, NULL_RTX);
3351 /* Free up storage we no longer need. */
3352 for (i = 0; i < num_actuals; ++i)
3353 if (args[i].aligned_regs)
3354 free (args[i].aligned_regs);
3356 if (pass == 0)
3358 /* Undo the fake expand_start_target_temps we did earlier. If
3359 there had been any cleanups created, we've already set
3360 sibcall_failure. */
3361 expand_end_target_temps ();
3364 /* If this function is returning into a memory location marked as
3365 readonly, it means it is initializing that location. We normally treat
3366 functions as not clobbering such locations, so we need to specify that
3367 this one does. We do this by adding the appropriate CLOBBER to the
3368 CALL_INSN function usage list. This cannot be done by emitting a
3369 standalone CLOBBER after the call because the latter would be ignored
3370 by at least the delay slot scheduling pass. We do this now instead of
3371 adding to call_fusage before the call to emit_call_1 because TARGET
3372 may be modified in the meantime. */
3373 if (structure_value_addr != 0 && target != 0
3374 && GET_CODE (target) == MEM && RTX_UNCHANGING_P (target))
3375 add_function_usage_to
3376 (last_call_insn (),
3377 gen_rtx_EXPR_LIST (VOIDmode, gen_rtx_CLOBBER (VOIDmode, target),
3378 NULL_RTX));
3380 insns = get_insns ();
3381 end_sequence ();
3383 if (pass == 0)
3385 tail_call_insns = insns;
3387 /* Restore the pending stack adjustment now that we have
3388 finished generating the sibling call sequence. */
3390 pending_stack_adjust = save_pending_stack_adjust;
3391 stack_pointer_delta = save_stack_pointer_delta;
3393 /* Prepare arg structure for next iteration. */
3394 for (i = 0; i < num_actuals; i++)
3396 args[i].value = 0;
3397 args[i].aligned_regs = 0;
3398 args[i].stack = 0;
3401 sbitmap_free (stored_args_map);
3403 else
3405 normal_call_insns = insns;
3407 /* Verify that we've deallocated all the stack we used. */
3408 if (! (flags & (ECF_NORETURN | ECF_LONGJMP))
3409 && old_stack_allocated != stack_pointer_delta
3410 - pending_stack_adjust)
3411 abort ();
3414 /* If something prevents making this a sibling call,
3415 zero out the sequence. */
3416 if (sibcall_failure)
3417 tail_call_insns = NULL_RTX;
3420 /* The function optimize_sibling_and_tail_recursive_calls doesn't
3421 handle CALL_PLACEHOLDERs inside other CALL_PLACEHOLDERs. This
3422 can happen if the arguments to this function call an inline
3423 function who's expansion contains another CALL_PLACEHOLDER.
3425 If there are any C_Ps in any of these sequences, replace them
3426 with their normal call. */
3428 for (insn = normal_call_insns; insn; insn = NEXT_INSN (insn))
3429 if (GET_CODE (insn) == CALL_INSN
3430 && GET_CODE (PATTERN (insn)) == CALL_PLACEHOLDER)
3431 replace_call_placeholder (insn, sibcall_use_normal);
3433 for (insn = tail_call_insns; insn; insn = NEXT_INSN (insn))
3434 if (GET_CODE (insn) == CALL_INSN
3435 && GET_CODE (PATTERN (insn)) == CALL_PLACEHOLDER)
3436 replace_call_placeholder (insn, sibcall_use_normal);
3438 for (insn = tail_recursion_insns; insn; insn = NEXT_INSN (insn))
3439 if (GET_CODE (insn) == CALL_INSN
3440 && GET_CODE (PATTERN (insn)) == CALL_PLACEHOLDER)
3441 replace_call_placeholder (insn, sibcall_use_normal);
3443 /* If this was a potential tail recursion site, then emit a
3444 CALL_PLACEHOLDER with the normal and the tail recursion streams.
3445 One of them will be selected later. */
3446 if (tail_recursion_insns || tail_call_insns)
3448 /* The tail recursion label must be kept around. We could expose
3449 its use in the CALL_PLACEHOLDER, but that creates unwanted edges
3450 and makes determining true tail recursion sites difficult.
3452 So we set LABEL_PRESERVE_P here, then clear it when we select
3453 one of the call sequences after rtl generation is complete. */
3454 if (tail_recursion_insns)
3455 LABEL_PRESERVE_P (tail_recursion_label) = 1;
3456 emit_call_insn (gen_rtx_CALL_PLACEHOLDER (VOIDmode, normal_call_insns,
3457 tail_call_insns,
3458 tail_recursion_insns,
3459 tail_recursion_label));
3461 else
3462 emit_insn (normal_call_insns);
3464 currently_expanding_call--;
3466 /* If this function returns with the stack pointer depressed, ensure
3467 this block saves and restores the stack pointer, show it was
3468 changed, and adjust for any outgoing arg space. */
3469 if (flags & ECF_SP_DEPRESSED)
3471 clear_pending_stack_adjust ();
3472 emit_insn (gen_rtx (CLOBBER, VOIDmode, stack_pointer_rtx));
3473 emit_move_insn (virtual_stack_dynamic_rtx, stack_pointer_rtx);
3474 save_stack_pointer ();
3477 return target;
3480 /* Traverse an argument list in VALUES and expand all complex
3481 arguments into their components. */
3482 tree
3483 split_complex_values (tree values)
3485 tree p;
3487 values = copy_list (values);
3489 for (p = values; p; p = TREE_CHAIN (p))
3491 tree complex_value = TREE_VALUE (p);
3492 tree complex_type;
3494 complex_type = TREE_TYPE (complex_value);
3495 if (!complex_type)
3496 continue;
3498 if (TREE_CODE (complex_type) == COMPLEX_TYPE)
3500 tree subtype;
3501 tree real, imag, next;
3503 subtype = TREE_TYPE (complex_type);
3504 complex_value = save_expr (complex_value);
3505 real = build1 (REALPART_EXPR, subtype, complex_value);
3506 imag = build1 (IMAGPART_EXPR, subtype, complex_value);
3508 TREE_VALUE (p) = real;
3509 next = TREE_CHAIN (p);
3510 imag = build_tree_list (NULL_TREE, imag);
3511 TREE_CHAIN (p) = imag;
3512 TREE_CHAIN (imag) = next;
3514 /* Skip the newly created node. */
3515 p = TREE_CHAIN (p);
3519 return values;
3522 /* Traverse a list of TYPES and expand all complex types into their
3523 components. */
3524 tree
3525 split_complex_types (tree types)
3527 tree p;
3529 types = copy_list (types);
3531 for (p = types; p; p = TREE_CHAIN (p))
3533 tree complex_type = TREE_VALUE (p);
3535 if (TREE_CODE (complex_type) == COMPLEX_TYPE)
3537 tree next, imag;
3539 /* Rewrite complex type with component type. */
3540 TREE_VALUE (p) = TREE_TYPE (complex_type);
3541 next = TREE_CHAIN (p);
3543 /* Add another component type for the imaginary part. */
3544 imag = build_tree_list (NULL_TREE, TREE_VALUE (p));
3545 TREE_CHAIN (p) = imag;
3546 TREE_CHAIN (imag) = next;
3548 /* Skip the newly created node. */
3549 p = TREE_CHAIN (p);
3553 return types;
3556 /* Output a library call to function FUN (a SYMBOL_REF rtx).
3557 The RETVAL parameter specifies whether return value needs to be saved, other
3558 parameters are documented in the emit_library_call function below. */
3560 static rtx
3561 emit_library_call_value_1 (int retval, rtx orgfun, rtx value,
3562 enum libcall_type fn_type,
3563 enum machine_mode outmode, int nargs, va_list p)
3565 /* Total size in bytes of all the stack-parms scanned so far. */
3566 struct args_size args_size;
3567 /* Size of arguments before any adjustments (such as rounding). */
3568 struct args_size original_args_size;
3569 int argnum;
3570 rtx fun;
3571 int inc;
3572 int count;
3573 rtx argblock = 0;
3574 CUMULATIVE_ARGS args_so_far;
3575 struct arg
3577 rtx value;
3578 enum machine_mode mode;
3579 rtx reg;
3580 int partial;
3581 struct locate_and_pad_arg_data locate;
3582 rtx save_area;
3584 struct arg *argvec;
3585 int old_inhibit_defer_pop = inhibit_defer_pop;
3586 rtx call_fusage = 0;
3587 rtx mem_value = 0;
3588 rtx valreg;
3589 int pcc_struct_value = 0;
3590 int struct_value_size = 0;
3591 int flags;
3592 int reg_parm_stack_space = 0;
3593 int needed;
3594 rtx before_call;
3595 tree tfom; /* type_for_mode (outmode, 0) */
3597 #ifdef REG_PARM_STACK_SPACE
3598 /* Define the boundary of the register parm stack space that needs to be
3599 save, if any. */
3600 int low_to_save, high_to_save;
3601 rtx save_area = 0; /* Place that it is saved. */
3602 #endif
3604 /* Size of the stack reserved for parameter registers. */
3605 int initial_highest_arg_in_use = highest_outgoing_arg_in_use;
3606 char *initial_stack_usage_map = stack_usage_map;
3608 rtx struct_value = targetm.calls.struct_value_rtx (0, 0);
3610 #ifdef REG_PARM_STACK_SPACE
3611 #ifdef MAYBE_REG_PARM_STACK_SPACE
3612 reg_parm_stack_space = MAYBE_REG_PARM_STACK_SPACE;
3613 #else
3614 reg_parm_stack_space = REG_PARM_STACK_SPACE ((tree) 0);
3615 #endif
3616 #endif
3618 /* By default, library functions can not throw. */
3619 flags = ECF_NOTHROW;
3621 switch (fn_type)
3623 case LCT_NORMAL:
3624 break;
3625 case LCT_CONST:
3626 flags |= ECF_CONST;
3627 break;
3628 case LCT_PURE:
3629 flags |= ECF_PURE;
3630 break;
3631 case LCT_CONST_MAKE_BLOCK:
3632 flags |= ECF_CONST | ECF_LIBCALL_BLOCK;
3633 break;
3634 case LCT_PURE_MAKE_BLOCK:
3635 flags |= ECF_PURE | ECF_LIBCALL_BLOCK;
3636 break;
3637 case LCT_NORETURN:
3638 flags |= ECF_NORETURN;
3639 break;
3640 case LCT_THROW:
3641 flags = ECF_NORETURN;
3642 break;
3643 case LCT_ALWAYS_RETURN:
3644 flags = ECF_ALWAYS_RETURN;
3645 break;
3646 case LCT_RETURNS_TWICE:
3647 flags = ECF_RETURNS_TWICE;
3648 break;
3650 fun = orgfun;
3652 /* Ensure current function's preferred stack boundary is at least
3653 what we need. */
3654 if (cfun->preferred_stack_boundary < PREFERRED_STACK_BOUNDARY)
3655 cfun->preferred_stack_boundary = PREFERRED_STACK_BOUNDARY;
3657 /* If this kind of value comes back in memory,
3658 decide where in memory it should come back. */
3659 if (outmode != VOIDmode)
3661 tfom = (*lang_hooks.types.type_for_mode) (outmode, 0);
3662 if (aggregate_value_p (tfom, 0))
3664 #ifdef PCC_STATIC_STRUCT_RETURN
3665 rtx pointer_reg
3666 = hard_function_value (build_pointer_type (tfom), 0, 0);
3667 mem_value = gen_rtx_MEM (outmode, pointer_reg);
3668 pcc_struct_value = 1;
3669 if (value == 0)
3670 value = gen_reg_rtx (outmode);
3671 #else /* not PCC_STATIC_STRUCT_RETURN */
3672 struct_value_size = GET_MODE_SIZE (outmode);
3673 if (value != 0 && GET_CODE (value) == MEM)
3674 mem_value = value;
3675 else
3676 mem_value = assign_temp (tfom, 0, 1, 1);
3677 #endif
3678 /* This call returns a big structure. */
3679 flags &= ~(ECF_CONST | ECF_PURE | ECF_LIBCALL_BLOCK);
3682 else
3683 tfom = void_type_node;
3685 /* ??? Unfinished: must pass the memory address as an argument. */
3687 /* Copy all the libcall-arguments out of the varargs data
3688 and into a vector ARGVEC.
3690 Compute how to pass each argument. We only support a very small subset
3691 of the full argument passing conventions to limit complexity here since
3692 library functions shouldn't have many args. */
3694 argvec = alloca ((nargs + 1) * sizeof (struct arg));
3695 memset (argvec, 0, (nargs + 1) * sizeof (struct arg));
3697 #ifdef INIT_CUMULATIVE_LIBCALL_ARGS
3698 INIT_CUMULATIVE_LIBCALL_ARGS (args_so_far, outmode, fun);
3699 #else
3700 INIT_CUMULATIVE_ARGS (args_so_far, NULL_TREE, fun, 0);
3701 #endif
3703 args_size.constant = 0;
3704 args_size.var = 0;
3706 count = 0;
3708 /* Now we are about to start emitting insns that can be deleted
3709 if a libcall is deleted. */
3710 if (flags & ECF_LIBCALL_BLOCK)
3711 start_sequence ();
3713 push_temp_slots ();
3715 /* If there's a structure value address to be passed,
3716 either pass it in the special place, or pass it as an extra argument. */
3717 if (mem_value && struct_value == 0 && ! pcc_struct_value)
3719 rtx addr = XEXP (mem_value, 0);
3720 nargs++;
3722 /* Make sure it is a reasonable operand for a move or push insn. */
3723 if (GET_CODE (addr) != REG && GET_CODE (addr) != MEM
3724 && ! (CONSTANT_P (addr) && LEGITIMATE_CONSTANT_P (addr)))
3725 addr = force_operand (addr, NULL_RTX);
3727 argvec[count].value = addr;
3728 argvec[count].mode = Pmode;
3729 argvec[count].partial = 0;
3731 argvec[count].reg = FUNCTION_ARG (args_so_far, Pmode, NULL_TREE, 1);
3732 #ifdef FUNCTION_ARG_PARTIAL_NREGS
3733 if (FUNCTION_ARG_PARTIAL_NREGS (args_so_far, Pmode, NULL_TREE, 1))
3734 abort ();
3735 #endif
3737 locate_and_pad_parm (Pmode, NULL_TREE,
3738 #ifdef STACK_PARMS_IN_REG_PARM_AREA
3740 #else
3741 argvec[count].reg != 0,
3742 #endif
3743 0, NULL_TREE, &args_size, &argvec[count].locate);
3745 if (argvec[count].reg == 0 || argvec[count].partial != 0
3746 || reg_parm_stack_space > 0)
3747 args_size.constant += argvec[count].locate.size.constant;
3749 FUNCTION_ARG_ADVANCE (args_so_far, Pmode, (tree) 0, 1);
3751 count++;
3754 for (; count < nargs; count++)
3756 rtx val = va_arg (p, rtx);
3757 enum machine_mode mode = va_arg (p, enum machine_mode);
3759 /* We cannot convert the arg value to the mode the library wants here;
3760 must do it earlier where we know the signedness of the arg. */
3761 if (mode == BLKmode
3762 || (GET_MODE (val) != mode && GET_MODE (val) != VOIDmode))
3763 abort ();
3765 /* There's no need to call protect_from_queue, because
3766 either emit_move_insn or emit_push_insn will do that. */
3768 /* Make sure it is a reasonable operand for a move or push insn. */
3769 if (GET_CODE (val) != REG && GET_CODE (val) != MEM
3770 && ! (CONSTANT_P (val) && LEGITIMATE_CONSTANT_P (val)))
3771 val = force_operand (val, NULL_RTX);
3773 #ifdef FUNCTION_ARG_PASS_BY_REFERENCE
3774 if (FUNCTION_ARG_PASS_BY_REFERENCE (args_so_far, mode, NULL_TREE, 1))
3776 rtx slot;
3777 int must_copy = 1
3778 #ifdef FUNCTION_ARG_CALLEE_COPIES
3779 && ! FUNCTION_ARG_CALLEE_COPIES (args_so_far, mode,
3780 NULL_TREE, 1)
3781 #endif
3784 /* loop.c won't look at CALL_INSN_FUNCTION_USAGE of const/pure
3785 functions, so we have to pretend this isn't such a function. */
3786 if (flags & ECF_LIBCALL_BLOCK)
3788 rtx insns = get_insns ();
3789 end_sequence ();
3790 emit_insn (insns);
3792 flags &= ~(ECF_CONST | ECF_PURE | ECF_LIBCALL_BLOCK);
3794 /* If this was a CONST function, it is now PURE since
3795 it now reads memory. */
3796 if (flags & ECF_CONST)
3798 flags &= ~ECF_CONST;
3799 flags |= ECF_PURE;
3802 if (GET_MODE (val) == MEM && ! must_copy)
3803 slot = val;
3804 else if (must_copy)
3806 slot = assign_temp ((*lang_hooks.types.type_for_mode) (mode, 0),
3807 0, 1, 1);
3808 emit_move_insn (slot, val);
3810 else
3812 tree type = (*lang_hooks.types.type_for_mode) (mode, 0);
3814 slot
3815 = gen_rtx_MEM (mode,
3816 expand_expr (build1 (ADDR_EXPR,
3817 build_pointer_type (type),
3818 make_tree (type, val)),
3819 NULL_RTX, VOIDmode, 0));
3822 call_fusage = gen_rtx_EXPR_LIST (VOIDmode,
3823 gen_rtx_USE (VOIDmode, slot),
3824 call_fusage);
3825 if (must_copy)
3826 call_fusage = gen_rtx_EXPR_LIST (VOIDmode,
3827 gen_rtx_CLOBBER (VOIDmode,
3828 slot),
3829 call_fusage);
3831 mode = Pmode;
3832 val = force_operand (XEXP (slot, 0), NULL_RTX);
3834 #endif
3836 argvec[count].value = val;
3837 argvec[count].mode = mode;
3839 argvec[count].reg = FUNCTION_ARG (args_so_far, mode, NULL_TREE, 1);
3841 #ifdef FUNCTION_ARG_PARTIAL_NREGS
3842 argvec[count].partial
3843 = FUNCTION_ARG_PARTIAL_NREGS (args_so_far, mode, NULL_TREE, 1);
3844 #else
3845 argvec[count].partial = 0;
3846 #endif
3848 locate_and_pad_parm (mode, NULL_TREE,
3849 #ifdef STACK_PARMS_IN_REG_PARM_AREA
3851 #else
3852 argvec[count].reg != 0,
3853 #endif
3854 argvec[count].partial,
3855 NULL_TREE, &args_size, &argvec[count].locate);
3857 if (argvec[count].locate.size.var)
3858 abort ();
3860 if (argvec[count].reg == 0 || argvec[count].partial != 0
3861 || reg_parm_stack_space > 0)
3862 args_size.constant += argvec[count].locate.size.constant;
3864 FUNCTION_ARG_ADVANCE (args_so_far, mode, (tree) 0, 1);
3867 #ifdef FINAL_REG_PARM_STACK_SPACE
3868 reg_parm_stack_space = FINAL_REG_PARM_STACK_SPACE (args_size.constant,
3869 args_size.var);
3870 #endif
3871 /* If this machine requires an external definition for library
3872 functions, write one out. */
3873 assemble_external_libcall (fun);
3875 original_args_size = args_size;
3876 args_size.constant = (((args_size.constant
3877 + stack_pointer_delta
3878 + STACK_BYTES - 1)
3879 / STACK_BYTES
3880 * STACK_BYTES)
3881 - stack_pointer_delta);
3883 args_size.constant = MAX (args_size.constant,
3884 reg_parm_stack_space);
3886 #ifndef OUTGOING_REG_PARM_STACK_SPACE
3887 args_size.constant -= reg_parm_stack_space;
3888 #endif
3890 if (args_size.constant > current_function_outgoing_args_size)
3891 current_function_outgoing_args_size = args_size.constant;
3893 if (ACCUMULATE_OUTGOING_ARGS)
3895 /* Since the stack pointer will never be pushed, it is possible for
3896 the evaluation of a parm to clobber something we have already
3897 written to the stack. Since most function calls on RISC machines
3898 do not use the stack, this is uncommon, but must work correctly.
3900 Therefore, we save any area of the stack that was already written
3901 and that we are using. Here we set up to do this by making a new
3902 stack usage map from the old one.
3904 Another approach might be to try to reorder the argument
3905 evaluations to avoid this conflicting stack usage. */
3907 needed = args_size.constant;
3909 #ifndef OUTGOING_REG_PARM_STACK_SPACE
3910 /* Since we will be writing into the entire argument area, the
3911 map must be allocated for its entire size, not just the part that
3912 is the responsibility of the caller. */
3913 needed += reg_parm_stack_space;
3914 #endif
3916 #ifdef ARGS_GROW_DOWNWARD
3917 highest_outgoing_arg_in_use = MAX (initial_highest_arg_in_use,
3918 needed + 1);
3919 #else
3920 highest_outgoing_arg_in_use = MAX (initial_highest_arg_in_use,
3921 needed);
3922 #endif
3923 stack_usage_map = alloca (highest_outgoing_arg_in_use);
3925 if (initial_highest_arg_in_use)
3926 memcpy (stack_usage_map, initial_stack_usage_map,
3927 initial_highest_arg_in_use);
3929 if (initial_highest_arg_in_use != highest_outgoing_arg_in_use)
3930 memset (&stack_usage_map[initial_highest_arg_in_use], 0,
3931 highest_outgoing_arg_in_use - initial_highest_arg_in_use);
3932 needed = 0;
3934 /* We must be careful to use virtual regs before they're instantiated,
3935 and real regs afterwards. Loop optimization, for example, can create
3936 new libcalls after we've instantiated the virtual regs, and if we
3937 use virtuals anyway, they won't match the rtl patterns. */
3939 if (virtuals_instantiated)
3940 argblock = plus_constant (stack_pointer_rtx, STACK_POINTER_OFFSET);
3941 else
3942 argblock = virtual_outgoing_args_rtx;
3944 else
3946 if (!PUSH_ARGS)
3947 argblock = push_block (GEN_INT (args_size.constant), 0, 0);
3950 /* If we push args individually in reverse order, perform stack alignment
3951 before the first push (the last arg). */
3952 if (argblock == 0 && PUSH_ARGS_REVERSED)
3953 anti_adjust_stack (GEN_INT (args_size.constant
3954 - original_args_size.constant));
3956 if (PUSH_ARGS_REVERSED)
3958 inc = -1;
3959 argnum = nargs - 1;
3961 else
3963 inc = 1;
3964 argnum = 0;
3967 #ifdef REG_PARM_STACK_SPACE
3968 if (ACCUMULATE_OUTGOING_ARGS)
3970 /* The argument list is the property of the called routine and it
3971 may clobber it. If the fixed area has been used for previous
3972 parameters, we must save and restore it. */
3973 save_area = save_fixed_argument_area (reg_parm_stack_space, argblock,
3974 &low_to_save, &high_to_save);
3976 #endif
3978 /* Push the args that need to be pushed. */
3980 /* ARGNUM indexes the ARGVEC array in the order in which the arguments
3981 are to be pushed. */
3982 for (count = 0; count < nargs; count++, argnum += inc)
3984 enum machine_mode mode = argvec[argnum].mode;
3985 rtx val = argvec[argnum].value;
3986 rtx reg = argvec[argnum].reg;
3987 int partial = argvec[argnum].partial;
3988 int lower_bound = 0, upper_bound = 0, i;
3990 if (! (reg != 0 && partial == 0))
3992 if (ACCUMULATE_OUTGOING_ARGS)
3994 /* If this is being stored into a pre-allocated, fixed-size,
3995 stack area, save any previous data at that location. */
3997 #ifdef ARGS_GROW_DOWNWARD
3998 /* stack_slot is negative, but we want to index stack_usage_map
3999 with positive values. */
4000 upper_bound = -argvec[argnum].locate.offset.constant + 1;
4001 lower_bound = upper_bound - argvec[argnum].locate.size.constant;
4002 #else
4003 lower_bound = argvec[argnum].locate.offset.constant;
4004 upper_bound = lower_bound + argvec[argnum].locate.size.constant;
4005 #endif
4007 i = lower_bound;
4008 /* Don't worry about things in the fixed argument area;
4009 it has already been saved. */
4010 if (i < reg_parm_stack_space)
4011 i = reg_parm_stack_space;
4012 while (i < upper_bound && stack_usage_map[i] == 0)
4013 i++;
4015 if (i < upper_bound)
4017 /* We need to make a save area. */
4018 unsigned int size
4019 = argvec[argnum].locate.size.constant * BITS_PER_UNIT;
4020 enum machine_mode save_mode
4021 = mode_for_size (size, MODE_INT, 1);
4022 rtx adr
4023 = plus_constant (argblock,
4024 argvec[argnum].locate.offset.constant);
4025 rtx stack_area
4026 = gen_rtx_MEM (save_mode, memory_address (save_mode, adr));
4028 if (save_mode == BLKmode)
4030 argvec[argnum].save_area
4031 = assign_stack_temp (BLKmode,
4032 argvec[argnum].locate.size.constant,
4035 emit_block_move (validize_mem (argvec[argnum].save_area),
4036 stack_area,
4037 GEN_INT (argvec[argnum].locate.size.constant),
4038 BLOCK_OP_CALL_PARM);
4040 else
4042 argvec[argnum].save_area = gen_reg_rtx (save_mode);
4044 emit_move_insn (argvec[argnum].save_area, stack_area);
4049 emit_push_insn (val, mode, NULL_TREE, NULL_RTX, PARM_BOUNDARY,
4050 partial, reg, 0, argblock,
4051 GEN_INT (argvec[argnum].locate.offset.constant),
4052 reg_parm_stack_space,
4053 ARGS_SIZE_RTX (argvec[argnum].locate.alignment_pad));
4055 /* Now mark the segment we just used. */
4056 if (ACCUMULATE_OUTGOING_ARGS)
4057 for (i = lower_bound; i < upper_bound; i++)
4058 stack_usage_map[i] = 1;
4060 NO_DEFER_POP;
4064 /* If we pushed args in forward order, perform stack alignment
4065 after pushing the last arg. */
4066 if (argblock == 0 && !PUSH_ARGS_REVERSED)
4067 anti_adjust_stack (GEN_INT (args_size.constant
4068 - original_args_size.constant));
4070 if (PUSH_ARGS_REVERSED)
4071 argnum = nargs - 1;
4072 else
4073 argnum = 0;
4075 fun = prepare_call_address (fun, NULL_TREE, &call_fusage, 0, 0);
4077 /* Now load any reg parms into their regs. */
4079 /* ARGNUM indexes the ARGVEC array in the order in which the arguments
4080 are to be pushed. */
4081 for (count = 0; count < nargs; count++, argnum += inc)
4083 rtx val = argvec[argnum].value;
4084 rtx reg = argvec[argnum].reg;
4085 int partial = argvec[argnum].partial;
4087 /* Handle calls that pass values in multiple non-contiguous
4088 locations. The PA64 has examples of this for library calls. */
4089 if (reg != 0 && GET_CODE (reg) == PARALLEL)
4090 emit_group_load (reg, val, NULL_TREE, GET_MODE_SIZE (GET_MODE (val)));
4091 else if (reg != 0 && partial == 0)
4092 emit_move_insn (reg, val);
4094 NO_DEFER_POP;
4097 /* Any regs containing parms remain in use through the call. */
4098 for (count = 0; count < nargs; count++)
4100 rtx reg = argvec[count].reg;
4101 if (reg != 0 && GET_CODE (reg) == PARALLEL)
4102 use_group_regs (&call_fusage, reg);
4103 else if (reg != 0)
4104 use_reg (&call_fusage, reg);
4107 /* Pass the function the address in which to return a structure value. */
4108 if (mem_value != 0 && struct_value != 0 && ! pcc_struct_value)
4110 emit_move_insn (struct_value,
4111 force_reg (Pmode,
4112 force_operand (XEXP (mem_value, 0),
4113 NULL_RTX)));
4114 if (GET_CODE (struct_value) == REG)
4115 use_reg (&call_fusage, struct_value);
4118 /* Don't allow popping to be deferred, since then
4119 cse'ing of library calls could delete a call and leave the pop. */
4120 NO_DEFER_POP;
4121 valreg = (mem_value == 0 && outmode != VOIDmode
4122 ? hard_libcall_value (outmode) : NULL_RTX);
4124 /* Stack must be properly aligned now. */
4125 if (stack_pointer_delta & (PREFERRED_STACK_BOUNDARY / BITS_PER_UNIT - 1))
4126 abort ();
4128 before_call = get_last_insn ();
4130 /* We pass the old value of inhibit_defer_pop + 1 to emit_call_1, which
4131 will set inhibit_defer_pop to that value. */
4132 /* The return type is needed to decide how many bytes the function pops.
4133 Signedness plays no role in that, so for simplicity, we pretend it's
4134 always signed. We also assume that the list of arguments passed has
4135 no impact, so we pretend it is unknown. */
4137 emit_call_1 (fun,
4138 get_identifier (XSTR (orgfun, 0)),
4139 build_function_type (tfom, NULL_TREE),
4140 original_args_size.constant, args_size.constant,
4141 struct_value_size,
4142 FUNCTION_ARG (args_so_far, VOIDmode, void_type_node, 1),
4143 valreg,
4144 old_inhibit_defer_pop + 1, call_fusage, flags, & args_so_far);
4146 /* For calls to `setjmp', etc., inform flow.c it should complain
4147 if nonvolatile values are live. For functions that cannot return,
4148 inform flow that control does not fall through. */
4150 if (flags & (ECF_NORETURN | ECF_LONGJMP))
4152 /* The barrier note must be emitted
4153 immediately after the CALL_INSN. Some ports emit more than
4154 just a CALL_INSN above, so we must search for it here. */
4156 rtx last = get_last_insn ();
4157 while (GET_CODE (last) != CALL_INSN)
4159 last = PREV_INSN (last);
4160 /* There was no CALL_INSN? */
4161 if (last == before_call)
4162 abort ();
4165 emit_barrier_after (last);
4168 /* Now restore inhibit_defer_pop to its actual original value. */
4169 OK_DEFER_POP;
4171 /* If call is cse'able, make appropriate pair of reg-notes around it.
4172 Test valreg so we don't crash; may safely ignore `const'
4173 if return type is void. Disable for PARALLEL return values, because
4174 we have no way to move such values into a pseudo register. */
4175 if (flags & ECF_LIBCALL_BLOCK)
4177 rtx insns;
4179 if (valreg == 0)
4181 insns = get_insns ();
4182 end_sequence ();
4183 emit_insn (insns);
4185 else
4187 rtx note = 0;
4188 rtx temp;
4189 int i;
4191 if (GET_CODE (valreg) == PARALLEL)
4193 temp = gen_reg_rtx (outmode);
4194 emit_group_store (temp, valreg, NULL_TREE,
4195 GET_MODE_SIZE (outmode));
4196 valreg = temp;
4199 temp = gen_reg_rtx (GET_MODE (valreg));
4201 /* Construct an "equal form" for the value which mentions all the
4202 arguments in order as well as the function name. */
4203 for (i = 0; i < nargs; i++)
4204 note = gen_rtx_EXPR_LIST (VOIDmode, argvec[i].value, note);
4205 note = gen_rtx_EXPR_LIST (VOIDmode, fun, note);
4207 insns = get_insns ();
4208 end_sequence ();
4210 if (flags & ECF_PURE)
4211 note = gen_rtx_EXPR_LIST (VOIDmode,
4212 gen_rtx_USE (VOIDmode,
4213 gen_rtx_MEM (BLKmode,
4214 gen_rtx_SCRATCH (VOIDmode))),
4215 note);
4217 emit_libcall_block (insns, temp, valreg, note);
4219 valreg = temp;
4222 pop_temp_slots ();
4224 /* Copy the value to the right place. */
4225 if (outmode != VOIDmode && retval)
4227 if (mem_value)
4229 if (value == 0)
4230 value = mem_value;
4231 if (value != mem_value)
4232 emit_move_insn (value, mem_value);
4234 else if (GET_CODE (valreg) == PARALLEL)
4236 if (value == 0)
4237 value = gen_reg_rtx (outmode);
4238 emit_group_store (value, valreg, NULL_TREE, GET_MODE_SIZE (outmode));
4240 else if (value != 0)
4241 emit_move_insn (value, valreg);
4242 else
4243 value = valreg;
4246 if (ACCUMULATE_OUTGOING_ARGS)
4248 #ifdef REG_PARM_STACK_SPACE
4249 if (save_area)
4250 restore_fixed_argument_area (save_area, argblock,
4251 high_to_save, low_to_save);
4252 #endif
4254 /* If we saved any argument areas, restore them. */
4255 for (count = 0; count < nargs; count++)
4256 if (argvec[count].save_area)
4258 enum machine_mode save_mode = GET_MODE (argvec[count].save_area);
4259 rtx adr = plus_constant (argblock,
4260 argvec[count].locate.offset.constant);
4261 rtx stack_area = gen_rtx_MEM (save_mode,
4262 memory_address (save_mode, adr));
4264 if (save_mode == BLKmode)
4265 emit_block_move (stack_area,
4266 validize_mem (argvec[count].save_area),
4267 GEN_INT (argvec[count].locate.size.constant),
4268 BLOCK_OP_CALL_PARM);
4269 else
4270 emit_move_insn (stack_area, argvec[count].save_area);
4273 highest_outgoing_arg_in_use = initial_highest_arg_in_use;
4274 stack_usage_map = initial_stack_usage_map;
4277 return value;
4281 /* Output a library call to function FUN (a SYMBOL_REF rtx)
4282 (emitting the queue unless NO_QUEUE is nonzero),
4283 for a value of mode OUTMODE,
4284 with NARGS different arguments, passed as alternating rtx values
4285 and machine_modes to convert them to.
4286 The rtx values should have been passed through protect_from_queue already.
4288 FN_TYPE should be LCT_NORMAL for `normal' calls, LCT_CONST for `const'
4289 calls, LCT_PURE for `pure' calls, LCT_CONST_MAKE_BLOCK for `const' calls
4290 which should be enclosed in REG_LIBCALL/REG_RETVAL notes,
4291 LCT_PURE_MAKE_BLOCK for `purep' calls which should be enclosed in
4292 REG_LIBCALL/REG_RETVAL notes with extra (use (memory (scratch)),
4293 or other LCT_ value for other types of library calls. */
4295 void
4296 emit_library_call (rtx orgfun, enum libcall_type fn_type,
4297 enum machine_mode outmode, int nargs, ...)
4299 va_list p;
4301 va_start (p, nargs);
4302 emit_library_call_value_1 (0, orgfun, NULL_RTX, fn_type, outmode, nargs, p);
4303 va_end (p);
4306 /* Like emit_library_call except that an extra argument, VALUE,
4307 comes second and says where to store the result.
4308 (If VALUE is zero, this function chooses a convenient way
4309 to return the value.
4311 This function returns an rtx for where the value is to be found.
4312 If VALUE is nonzero, VALUE is returned. */
4315 emit_library_call_value (rtx orgfun, rtx value,
4316 enum libcall_type fn_type,
4317 enum machine_mode outmode, int nargs, ...)
4319 rtx result;
4320 va_list p;
4322 va_start (p, nargs);
4323 result = emit_library_call_value_1 (1, orgfun, value, fn_type, outmode,
4324 nargs, p);
4325 va_end (p);
4327 return result;
4330 /* Store a single argument for a function call
4331 into the register or memory area where it must be passed.
4332 *ARG describes the argument value and where to pass it.
4334 ARGBLOCK is the address of the stack-block for all the arguments,
4335 or 0 on a machine where arguments are pushed individually.
4337 MAY_BE_ALLOCA nonzero says this could be a call to `alloca'
4338 so must be careful about how the stack is used.
4340 VARIABLE_SIZE nonzero says that this was a variable-sized outgoing
4341 argument stack. This is used if ACCUMULATE_OUTGOING_ARGS to indicate
4342 that we need not worry about saving and restoring the stack.
4344 FNDECL is the declaration of the function we are calling.
4346 Return nonzero if this arg should cause sibcall failure,
4347 zero otherwise. */
4349 static int
4350 store_one_arg (struct arg_data *arg, rtx argblock, int flags,
4351 int variable_size ATTRIBUTE_UNUSED, int reg_parm_stack_space)
4353 tree pval = arg->tree_value;
4354 rtx reg = 0;
4355 int partial = 0;
4356 int used = 0;
4357 int i, lower_bound = 0, upper_bound = 0;
4358 int sibcall_failure = 0;
4360 if (TREE_CODE (pval) == ERROR_MARK)
4361 return 1;
4363 /* Push a new temporary level for any temporaries we make for
4364 this argument. */
4365 push_temp_slots ();
4367 if (ACCUMULATE_OUTGOING_ARGS && !(flags & ECF_SIBCALL))
4369 /* If this is being stored into a pre-allocated, fixed-size, stack area,
4370 save any previous data at that location. */
4371 if (argblock && ! variable_size && arg->stack)
4373 #ifdef ARGS_GROW_DOWNWARD
4374 /* stack_slot is negative, but we want to index stack_usage_map
4375 with positive values. */
4376 if (GET_CODE (XEXP (arg->stack_slot, 0)) == PLUS)
4377 upper_bound = -INTVAL (XEXP (XEXP (arg->stack_slot, 0), 1)) + 1;
4378 else
4379 upper_bound = 0;
4381 lower_bound = upper_bound - arg->locate.size.constant;
4382 #else
4383 if (GET_CODE (XEXP (arg->stack_slot, 0)) == PLUS)
4384 lower_bound = INTVAL (XEXP (XEXP (arg->stack_slot, 0), 1));
4385 else
4386 lower_bound = 0;
4388 upper_bound = lower_bound + arg->locate.size.constant;
4389 #endif
4391 i = lower_bound;
4392 /* Don't worry about things in the fixed argument area;
4393 it has already been saved. */
4394 if (i < reg_parm_stack_space)
4395 i = reg_parm_stack_space;
4396 while (i < upper_bound && stack_usage_map[i] == 0)
4397 i++;
4399 if (i < upper_bound)
4401 /* We need to make a save area. */
4402 unsigned int size = arg->locate.size.constant * BITS_PER_UNIT;
4403 enum machine_mode save_mode = mode_for_size (size, MODE_INT, 1);
4404 rtx adr = memory_address (save_mode, XEXP (arg->stack_slot, 0));
4405 rtx stack_area = gen_rtx_MEM (save_mode, adr);
4407 if (save_mode == BLKmode)
4409 tree ot = TREE_TYPE (arg->tree_value);
4410 tree nt = build_qualified_type (ot, (TYPE_QUALS (ot)
4411 | TYPE_QUAL_CONST));
4413 arg->save_area = assign_temp (nt, 0, 1, 1);
4414 preserve_temp_slots (arg->save_area);
4415 emit_block_move (validize_mem (arg->save_area), stack_area,
4416 expr_size (arg->tree_value),
4417 BLOCK_OP_CALL_PARM);
4419 else
4421 arg->save_area = gen_reg_rtx (save_mode);
4422 emit_move_insn (arg->save_area, stack_area);
4428 /* If this isn't going to be placed on both the stack and in registers,
4429 set up the register and number of words. */
4430 if (! arg->pass_on_stack)
4432 if (flags & ECF_SIBCALL)
4433 reg = arg->tail_call_reg;
4434 else
4435 reg = arg->reg;
4436 partial = arg->partial;
4439 if (reg != 0 && partial == 0)
4440 /* Being passed entirely in a register. We shouldn't be called in
4441 this case. */
4442 abort ();
4444 /* If this arg needs special alignment, don't load the registers
4445 here. */
4446 if (arg->n_aligned_regs != 0)
4447 reg = 0;
4449 /* If this is being passed partially in a register, we can't evaluate
4450 it directly into its stack slot. Otherwise, we can. */
4451 if (arg->value == 0)
4453 /* stack_arg_under_construction is nonzero if a function argument is
4454 being evaluated directly into the outgoing argument list and
4455 expand_call must take special action to preserve the argument list
4456 if it is called recursively.
4458 For scalar function arguments stack_usage_map is sufficient to
4459 determine which stack slots must be saved and restored. Scalar
4460 arguments in general have pass_on_stack == 0.
4462 If this argument is initialized by a function which takes the
4463 address of the argument (a C++ constructor or a C function
4464 returning a BLKmode structure), then stack_usage_map is
4465 insufficient and expand_call must push the stack around the
4466 function call. Such arguments have pass_on_stack == 1.
4468 Note that it is always safe to set stack_arg_under_construction,
4469 but this generates suboptimal code if set when not needed. */
4471 if (arg->pass_on_stack)
4472 stack_arg_under_construction++;
4474 arg->value = expand_expr (pval,
4475 (partial
4476 || TYPE_MODE (TREE_TYPE (pval)) != arg->mode)
4477 ? NULL_RTX : arg->stack,
4478 VOIDmode, EXPAND_STACK_PARM);
4480 /* If we are promoting object (or for any other reason) the mode
4481 doesn't agree, convert the mode. */
4483 if (arg->mode != TYPE_MODE (TREE_TYPE (pval)))
4484 arg->value = convert_modes (arg->mode, TYPE_MODE (TREE_TYPE (pval)),
4485 arg->value, arg->unsignedp);
4487 if (arg->pass_on_stack)
4488 stack_arg_under_construction--;
4491 /* Don't allow anything left on stack from computation
4492 of argument to alloca. */
4493 if (flags & ECF_MAY_BE_ALLOCA)
4494 do_pending_stack_adjust ();
4496 if (arg->value == arg->stack)
4497 /* If the value is already in the stack slot, we are done. */
4499 else if (arg->mode != BLKmode)
4501 int size;
4503 /* Argument is a scalar, not entirely passed in registers.
4504 (If part is passed in registers, arg->partial says how much
4505 and emit_push_insn will take care of putting it there.)
4507 Push it, and if its size is less than the
4508 amount of space allocated to it,
4509 also bump stack pointer by the additional space.
4510 Note that in C the default argument promotions
4511 will prevent such mismatches. */
4513 size = GET_MODE_SIZE (arg->mode);
4514 /* Compute how much space the push instruction will push.
4515 On many machines, pushing a byte will advance the stack
4516 pointer by a halfword. */
4517 #ifdef PUSH_ROUNDING
4518 size = PUSH_ROUNDING (size);
4519 #endif
4520 used = size;
4522 /* Compute how much space the argument should get:
4523 round up to a multiple of the alignment for arguments. */
4524 if (none != FUNCTION_ARG_PADDING (arg->mode, TREE_TYPE (pval)))
4525 used = (((size + PARM_BOUNDARY / BITS_PER_UNIT - 1)
4526 / (PARM_BOUNDARY / BITS_PER_UNIT))
4527 * (PARM_BOUNDARY / BITS_PER_UNIT));
4529 /* This isn't already where we want it on the stack, so put it there.
4530 This can either be done with push or copy insns. */
4531 emit_push_insn (arg->value, arg->mode, TREE_TYPE (pval), NULL_RTX,
4532 PARM_BOUNDARY, partial, reg, used - size, argblock,
4533 ARGS_SIZE_RTX (arg->locate.offset), reg_parm_stack_space,
4534 ARGS_SIZE_RTX (arg->locate.alignment_pad));
4536 /* Unless this is a partially-in-register argument, the argument is now
4537 in the stack. */
4538 if (partial == 0)
4539 arg->value = arg->stack;
4541 else
4543 /* BLKmode, at least partly to be pushed. */
4545 unsigned int parm_align;
4546 int excess;
4547 rtx size_rtx;
4549 /* Pushing a nonscalar.
4550 If part is passed in registers, PARTIAL says how much
4551 and emit_push_insn will take care of putting it there. */
4553 /* Round its size up to a multiple
4554 of the allocation unit for arguments. */
4556 if (arg->locate.size.var != 0)
4558 excess = 0;
4559 size_rtx = ARGS_SIZE_RTX (arg->locate.size);
4561 else
4563 /* PUSH_ROUNDING has no effect on us, because
4564 emit_push_insn for BLKmode is careful to avoid it. */
4565 excess = (arg->locate.size.constant
4566 - int_size_in_bytes (TREE_TYPE (pval))
4567 + partial * UNITS_PER_WORD);
4568 size_rtx = expand_expr (size_in_bytes (TREE_TYPE (pval)),
4569 NULL_RTX, TYPE_MODE (sizetype), 0);
4572 /* Some types will require stricter alignment, which will be
4573 provided for elsewhere in argument layout. */
4574 parm_align = MAX (PARM_BOUNDARY, TYPE_ALIGN (TREE_TYPE (pval)));
4576 /* When an argument is padded down, the block is aligned to
4577 PARM_BOUNDARY, but the actual argument isn't. */
4578 if (FUNCTION_ARG_PADDING (arg->mode, TREE_TYPE (pval)) == downward)
4580 if (arg->locate.size.var)
4581 parm_align = BITS_PER_UNIT;
4582 else if (excess)
4584 unsigned int excess_align = (excess & -excess) * BITS_PER_UNIT;
4585 parm_align = MIN (parm_align, excess_align);
4589 if ((flags & ECF_SIBCALL) && GET_CODE (arg->value) == MEM)
4591 /* emit_push_insn might not work properly if arg->value and
4592 argblock + arg->locate.offset areas overlap. */
4593 rtx x = arg->value;
4594 int i = 0;
4596 if (XEXP (x, 0) == current_function_internal_arg_pointer
4597 || (GET_CODE (XEXP (x, 0)) == PLUS
4598 && XEXP (XEXP (x, 0), 0) ==
4599 current_function_internal_arg_pointer
4600 && GET_CODE (XEXP (XEXP (x, 0), 1)) == CONST_INT))
4602 if (XEXP (x, 0) != current_function_internal_arg_pointer)
4603 i = INTVAL (XEXP (XEXP (x, 0), 1));
4605 /* expand_call should ensure this */
4606 if (arg->locate.offset.var || GET_CODE (size_rtx) != CONST_INT)
4607 abort ();
4609 if (arg->locate.offset.constant > i)
4611 if (arg->locate.offset.constant < i + INTVAL (size_rtx))
4612 sibcall_failure = 1;
4614 else if (arg->locate.offset.constant < i)
4616 if (i < arg->locate.offset.constant + INTVAL (size_rtx))
4617 sibcall_failure = 1;
4622 emit_push_insn (arg->value, arg->mode, TREE_TYPE (pval), size_rtx,
4623 parm_align, partial, reg, excess, argblock,
4624 ARGS_SIZE_RTX (arg->locate.offset), reg_parm_stack_space,
4625 ARGS_SIZE_RTX (arg->locate.alignment_pad));
4627 /* Unless this is a partially-in-register argument, the argument is now
4628 in the stack.
4630 ??? Unlike the case above, in which we want the actual
4631 address of the data, so that we can load it directly into a
4632 register, here we want the address of the stack slot, so that
4633 it's properly aligned for word-by-word copying or something
4634 like that. It's not clear that this is always correct. */
4635 if (partial == 0)
4636 arg->value = arg->stack_slot;
4639 /* Mark all slots this store used. */
4640 if (ACCUMULATE_OUTGOING_ARGS && !(flags & ECF_SIBCALL)
4641 && argblock && ! variable_size && arg->stack)
4642 for (i = lower_bound; i < upper_bound; i++)
4643 stack_usage_map[i] = 1;
4645 /* Once we have pushed something, pops can't safely
4646 be deferred during the rest of the arguments. */
4647 NO_DEFER_POP;
4649 /* ANSI doesn't require a sequence point here,
4650 but PCC has one, so this will avoid some problems. */
4651 emit_queue ();
4653 /* Free any temporary slots made in processing this argument. Show
4654 that we might have taken the address of something and pushed that
4655 as an operand. */
4656 preserve_temp_slots (NULL_RTX);
4657 free_temp_slots ();
4658 pop_temp_slots ();
4660 return sibcall_failure;
4663 /* Nonzero if we do not know how to pass TYPE solely in registers.
4664 We cannot do so in the following cases:
4666 - if the type has variable size
4667 - if the type is marked as addressable (it is required to be constructed
4668 into the stack)
4669 - if the padding and mode of the type is such that a copy into a register
4670 would put it into the wrong part of the register.
4672 Which padding can't be supported depends on the byte endianness.
4674 A value in a register is implicitly padded at the most significant end.
4675 On a big-endian machine, that is the lower end in memory.
4676 So a value padded in memory at the upper end can't go in a register.
4677 For a little-endian machine, the reverse is true. */
4679 bool
4680 default_must_pass_in_stack (enum machine_mode mode, tree type)
4682 if (!type)
4683 return false;
4685 /* If the type has variable size... */
4686 if (TREE_CODE (TYPE_SIZE (type)) != INTEGER_CST)
4687 return true;
4689 /* If the type is marked as addressable (it is required
4690 to be constructed into the stack)... */
4691 if (TREE_ADDRESSABLE (type))
4692 return true;
4694 /* If the padding and mode of the type is such that a copy into
4695 a register would put it into the wrong part of the register. */
4696 if (mode == BLKmode
4697 && int_size_in_bytes (type) % (PARM_BOUNDARY / BITS_PER_UNIT)
4698 && (FUNCTION_ARG_PADDING (mode, type)
4699 == (BYTES_BIG_ENDIAN ? upward : downward)))
4700 return true;
4702 return false;