* config/mips/mips.md (any_shift): New code macro.
[official-gcc.git] / gcc / stmt.c
blob02e6664b82c2f13b8300a51fa93b7032d2d4e129
1 /* Expands front end tree to back end RTL for GCC
2 Copyright (C) 1987, 1988, 1989, 1992, 1993, 1994, 1995, 1996, 1997,
3 1998, 1999, 2000, 2001, 2002, 2003, 2004 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 /* This file handles the generation of rtl code from tree structure
23 above the level of expressions, using subroutines in exp*.c and emit-rtl.c.
24 The functions whose names start with `expand_' are called by the
25 expander to generate RTL instructions for various kinds of constructs. */
27 #include "config.h"
28 #include "system.h"
29 #include "coretypes.h"
30 #include "tm.h"
32 #include "rtl.h"
33 #include "tree.h"
34 #include "tm_p.h"
35 #include "flags.h"
36 #include "except.h"
37 #include "function.h"
38 #include "insn-config.h"
39 #include "expr.h"
40 #include "libfuncs.h"
41 #include "hard-reg-set.h"
42 #include "loop.h"
43 #include "recog.h"
44 #include "machmode.h"
45 #include "toplev.h"
46 #include "output.h"
47 #include "ggc.h"
48 #include "langhooks.h"
49 #include "predict.h"
50 #include "optabs.h"
51 #include "target.h"
52 #include "regs.h"
54 /* Functions and data structures for expanding case statements. */
56 /* Case label structure, used to hold info on labels within case
57 statements. We handle "range" labels; for a single-value label
58 as in C, the high and low limits are the same.
60 We start with a vector of case nodes sorted in ascending order, and
61 the default label as the last element in the vector. Before expanding
62 to RTL, we transform this vector into a list linked via the RIGHT
63 fields in the case_node struct. Nodes with higher case values are
64 later in the list.
66 Switch statements can be output in three forms. A branch table is
67 used if there are more than a few labels and the labels are dense
68 within the range between the smallest and largest case value. If a
69 branch table is used, no further manipulations are done with the case
70 node chain.
72 The alternative to the use of a branch table is to generate a series
73 of compare and jump insns. When that is done, we use the LEFT, RIGHT,
74 and PARENT fields to hold a binary tree. Initially the tree is
75 totally unbalanced, with everything on the right. We balance the tree
76 with nodes on the left having lower case values than the parent
77 and nodes on the right having higher values. We then output the tree
78 in order.
80 For very small, suitable switch statements, we can generate a series
81 of simple bit test and branches instead. */
83 struct case_node GTY(())
85 struct case_node *left; /* Left son in binary tree */
86 struct case_node *right; /* Right son in binary tree; also node chain */
87 struct case_node *parent; /* Parent of node in binary tree */
88 tree low; /* Lowest index value for this label */
89 tree high; /* Highest index value for this label */
90 tree code_label; /* Label to jump to when node matches */
93 typedef struct case_node case_node;
94 typedef struct case_node *case_node_ptr;
96 /* These are used by estimate_case_costs and balance_case_nodes. */
98 /* This must be a signed type, and non-ANSI compilers lack signed char. */
99 static short cost_table_[129];
100 static int use_cost_table;
101 static int cost_table_initialized;
103 /* Special care is needed because we allow -1, but TREE_INT_CST_LOW
104 is unsigned. */
105 #define COST_TABLE(I) cost_table_[(unsigned HOST_WIDE_INT) ((I) + 1)]
107 static int n_occurrences (int, const char *);
108 static bool decl_conflicts_with_clobbers_p (tree, const HARD_REG_SET);
109 static void expand_nl_goto_receiver (void);
110 static bool check_operand_nalternatives (tree, tree);
111 static bool check_unique_operand_names (tree, tree);
112 static char *resolve_operand_name_1 (char *, tree, tree);
113 static void expand_null_return_1 (void);
114 static rtx shift_return_value (rtx);
115 static void expand_value_return (rtx);
116 static void do_jump_if_equal (rtx, rtx, rtx, int);
117 static int estimate_case_costs (case_node_ptr);
118 static bool lshift_cheap_p (void);
119 static int case_bit_test_cmp (const void *, const void *);
120 static void emit_case_bit_tests (tree, tree, tree, tree, case_node_ptr, rtx);
121 static void balance_case_nodes (case_node_ptr *, case_node_ptr);
122 static int node_has_low_bound (case_node_ptr, tree);
123 static int node_has_high_bound (case_node_ptr, tree);
124 static int node_is_bounded (case_node_ptr, tree);
125 static void emit_case_nodes (rtx, case_node_ptr, rtx, tree);
126 static struct case_node *add_case_node (struct case_node *, tree, tree, tree);
129 /* Return the rtx-label that corresponds to a LABEL_DECL,
130 creating it if necessary. */
133 label_rtx (tree label)
135 if (TREE_CODE (label) != LABEL_DECL)
136 abort ();
138 if (!DECL_RTL_SET_P (label))
140 rtx r = gen_label_rtx ();
141 SET_DECL_RTL (label, r);
142 if (FORCED_LABEL (label) || DECL_NONLOCAL (label))
143 LABEL_PRESERVE_P (r) = 1;
146 return DECL_RTL (label);
149 /* As above, but also put it on the forced-reference list of the
150 function that contains it. */
152 force_label_rtx (tree label)
154 rtx ref = label_rtx (label);
155 tree function = decl_function_context (label);
156 struct function *p;
158 if (!function)
159 abort ();
161 if (function != current_function_decl)
162 p = find_function_data (function);
163 else
164 p = cfun;
166 p->expr->x_forced_labels = gen_rtx_EXPR_LIST (VOIDmode, ref,
167 p->expr->x_forced_labels);
168 return ref;
171 /* Add an unconditional jump to LABEL as the next sequential instruction. */
173 void
174 emit_jump (rtx label)
176 do_pending_stack_adjust ();
177 emit_jump_insn (gen_jump (label));
178 emit_barrier ();
181 /* Emit code to jump to the address
182 specified by the pointer expression EXP. */
184 void
185 expand_computed_goto (tree exp)
187 rtx x = expand_expr (exp, NULL_RTX, VOIDmode, 0);
189 x = convert_memory_address (Pmode, x);
191 do_pending_stack_adjust ();
192 emit_indirect_jump (x);
195 /* Handle goto statements and the labels that they can go to. */
197 /* Specify the location in the RTL code of a label LABEL,
198 which is a LABEL_DECL tree node.
200 This is used for the kind of label that the user can jump to with a
201 goto statement, and for alternatives of a switch or case statement.
202 RTL labels generated for loops and conditionals don't go through here;
203 they are generated directly at the RTL level, by other functions below.
205 Note that this has nothing to do with defining label *names*.
206 Languages vary in how they do that and what that even means. */
208 void
209 expand_label (tree label)
211 rtx label_r = label_rtx (label);
213 do_pending_stack_adjust ();
214 emit_label (label_r);
215 if (DECL_NAME (label))
216 LABEL_NAME (DECL_RTL (label)) = IDENTIFIER_POINTER (DECL_NAME (label));
218 if (DECL_NONLOCAL (label))
220 expand_nl_goto_receiver ();
221 nonlocal_goto_handler_labels
222 = gen_rtx_EXPR_LIST (VOIDmode, label_r,
223 nonlocal_goto_handler_labels);
226 if (FORCED_LABEL (label))
227 forced_labels = gen_rtx_EXPR_LIST (VOIDmode, label_r, forced_labels);
229 if (DECL_NONLOCAL (label) || FORCED_LABEL (label))
230 maybe_set_first_label_num (label_r);
233 /* Generate RTL code for a `goto' statement with target label LABEL.
234 LABEL should be a LABEL_DECL tree node that was or will later be
235 defined with `expand_label'. */
237 void
238 expand_goto (tree label)
240 #ifdef ENABLE_CHECKING
241 /* Check for a nonlocal goto to a containing function. Should have
242 gotten translated to __builtin_nonlocal_goto. */
243 tree context = decl_function_context (label);
244 if (context != 0 && context != current_function_decl)
245 abort ();
246 #endif
248 emit_jump (label_rtx (label));
251 /* Return the number of times character C occurs in string S. */
252 static int
253 n_occurrences (int c, const char *s)
255 int n = 0;
256 while (*s)
257 n += (*s++ == c);
258 return n;
261 /* Generate RTL for an asm statement (explicit assembler code).
262 STRING is a STRING_CST node containing the assembler code text,
263 or an ADDR_EXPR containing a STRING_CST. VOL nonzero means the
264 insn is volatile; don't optimize it. */
266 void
267 expand_asm (tree string, int vol)
269 rtx body;
271 if (TREE_CODE (string) == ADDR_EXPR)
272 string = TREE_OPERAND (string, 0);
274 body = gen_rtx_ASM_INPUT (VOIDmode, TREE_STRING_POINTER (string));
276 MEM_VOLATILE_P (body) = vol;
278 emit_insn (body);
281 /* Parse the output constraint pointed to by *CONSTRAINT_P. It is the
282 OPERAND_NUMth output operand, indexed from zero. There are NINPUTS
283 inputs and NOUTPUTS outputs to this extended-asm. Upon return,
284 *ALLOWS_MEM will be TRUE iff the constraint allows the use of a
285 memory operand. Similarly, *ALLOWS_REG will be TRUE iff the
286 constraint allows the use of a register operand. And, *IS_INOUT
287 will be true if the operand is read-write, i.e., if it is used as
288 an input as well as an output. If *CONSTRAINT_P is not in
289 canonical form, it will be made canonical. (Note that `+' will be
290 replaced with `=' as part of this process.)
292 Returns TRUE if all went well; FALSE if an error occurred. */
294 bool
295 parse_output_constraint (const char **constraint_p, int operand_num,
296 int ninputs, int noutputs, bool *allows_mem,
297 bool *allows_reg, bool *is_inout)
299 const char *constraint = *constraint_p;
300 const char *p;
302 /* Assume the constraint doesn't allow the use of either a register
303 or memory. */
304 *allows_mem = false;
305 *allows_reg = false;
307 /* Allow the `=' or `+' to not be at the beginning of the string,
308 since it wasn't explicitly documented that way, and there is a
309 large body of code that puts it last. Swap the character to
310 the front, so as not to uglify any place else. */
311 p = strchr (constraint, '=');
312 if (!p)
313 p = strchr (constraint, '+');
315 /* If the string doesn't contain an `=', issue an error
316 message. */
317 if (!p)
319 error ("output operand constraint lacks `='");
320 return false;
323 /* If the constraint begins with `+', then the operand is both read
324 from and written to. */
325 *is_inout = (*p == '+');
327 /* Canonicalize the output constraint so that it begins with `='. */
328 if (p != constraint || is_inout)
330 char *buf;
331 size_t c_len = strlen (constraint);
333 if (p != constraint)
334 warning ("output constraint `%c' for operand %d is not at the beginning",
335 *p, operand_num);
337 /* Make a copy of the constraint. */
338 buf = alloca (c_len + 1);
339 strcpy (buf, constraint);
340 /* Swap the first character and the `=' or `+'. */
341 buf[p - constraint] = buf[0];
342 /* Make sure the first character is an `='. (Until we do this,
343 it might be a `+'.) */
344 buf[0] = '=';
345 /* Replace the constraint with the canonicalized string. */
346 *constraint_p = ggc_alloc_string (buf, c_len);
347 constraint = *constraint_p;
350 /* Loop through the constraint string. */
351 for (p = constraint + 1; *p; p += CONSTRAINT_LEN (*p, p))
352 switch (*p)
354 case '+':
355 case '=':
356 error ("operand constraint contains incorrectly positioned '+' or '='");
357 return false;
359 case '%':
360 if (operand_num + 1 == ninputs + noutputs)
362 error ("`%%' constraint used with last operand");
363 return false;
365 break;
367 case 'V': case 'm': case 'o':
368 *allows_mem = true;
369 break;
371 case '?': case '!': case '*': case '&': case '#':
372 case 'E': case 'F': case 'G': case 'H':
373 case 's': case 'i': case 'n':
374 case 'I': case 'J': case 'K': case 'L': case 'M':
375 case 'N': case 'O': case 'P': case ',':
376 break;
378 case '0': case '1': case '2': case '3': case '4':
379 case '5': case '6': case '7': case '8': case '9':
380 case '[':
381 error ("matching constraint not valid in output operand");
382 return false;
384 case '<': case '>':
385 /* ??? Before flow, auto inc/dec insns are not supposed to exist,
386 excepting those that expand_call created. So match memory
387 and hope. */
388 *allows_mem = true;
389 break;
391 case 'g': case 'X':
392 *allows_reg = true;
393 *allows_mem = true;
394 break;
396 case 'p': case 'r':
397 *allows_reg = true;
398 break;
400 default:
401 if (!ISALPHA (*p))
402 break;
403 if (REG_CLASS_FROM_CONSTRAINT (*p, p) != NO_REGS)
404 *allows_reg = true;
405 #ifdef EXTRA_CONSTRAINT_STR
406 else if (EXTRA_ADDRESS_CONSTRAINT (*p, p))
407 *allows_reg = true;
408 else if (EXTRA_MEMORY_CONSTRAINT (*p, p))
409 *allows_mem = true;
410 else
412 /* Otherwise we can't assume anything about the nature of
413 the constraint except that it isn't purely registers.
414 Treat it like "g" and hope for the best. */
415 *allows_reg = true;
416 *allows_mem = true;
418 #endif
419 break;
422 return true;
425 /* Similar, but for input constraints. */
427 bool
428 parse_input_constraint (const char **constraint_p, int input_num,
429 int ninputs, int noutputs, int ninout,
430 const char * const * constraints,
431 bool *allows_mem, bool *allows_reg)
433 const char *constraint = *constraint_p;
434 const char *orig_constraint = constraint;
435 size_t c_len = strlen (constraint);
436 size_t j;
437 bool saw_match = false;
439 /* Assume the constraint doesn't allow the use of either
440 a register or memory. */
441 *allows_mem = false;
442 *allows_reg = false;
444 /* Make sure constraint has neither `=', `+', nor '&'. */
446 for (j = 0; j < c_len; j += CONSTRAINT_LEN (constraint[j], constraint+j))
447 switch (constraint[j])
449 case '+': case '=': case '&':
450 if (constraint == orig_constraint)
452 error ("input operand constraint contains `%c'", constraint[j]);
453 return false;
455 break;
457 case '%':
458 if (constraint == orig_constraint
459 && input_num + 1 == ninputs - ninout)
461 error ("`%%' constraint used with last operand");
462 return false;
464 break;
466 case 'V': case 'm': case 'o':
467 *allows_mem = true;
468 break;
470 case '<': case '>':
471 case '?': case '!': case '*': case '#':
472 case 'E': case 'F': case 'G': case 'H':
473 case 's': case 'i': case 'n':
474 case 'I': case 'J': case 'K': case 'L': case 'M':
475 case 'N': case 'O': case 'P': case ',':
476 break;
478 /* Whether or not a numeric constraint allows a register is
479 decided by the matching constraint, and so there is no need
480 to do anything special with them. We must handle them in
481 the default case, so that we don't unnecessarily force
482 operands to memory. */
483 case '0': case '1': case '2': case '3': case '4':
484 case '5': case '6': case '7': case '8': case '9':
486 char *end;
487 unsigned long match;
489 saw_match = true;
491 match = strtoul (constraint + j, &end, 10);
492 if (match >= (unsigned long) noutputs)
494 error ("matching constraint references invalid operand number");
495 return false;
498 /* Try and find the real constraint for this dup. Only do this
499 if the matching constraint is the only alternative. */
500 if (*end == '\0'
501 && (j == 0 || (j == 1 && constraint[0] == '%')))
503 constraint = constraints[match];
504 *constraint_p = constraint;
505 c_len = strlen (constraint);
506 j = 0;
507 /* ??? At the end of the loop, we will skip the first part of
508 the matched constraint. This assumes not only that the
509 other constraint is an output constraint, but also that
510 the '=' or '+' come first. */
511 break;
513 else
514 j = end - constraint;
515 /* Anticipate increment at end of loop. */
516 j--;
518 /* Fall through. */
520 case 'p': case 'r':
521 *allows_reg = true;
522 break;
524 case 'g': case 'X':
525 *allows_reg = true;
526 *allows_mem = true;
527 break;
529 default:
530 if (! ISALPHA (constraint[j]))
532 error ("invalid punctuation `%c' in constraint", constraint[j]);
533 return false;
535 if (REG_CLASS_FROM_CONSTRAINT (constraint[j], constraint + j)
536 != NO_REGS)
537 *allows_reg = true;
538 #ifdef EXTRA_CONSTRAINT_STR
539 else if (EXTRA_ADDRESS_CONSTRAINT (constraint[j], constraint + j))
540 *allows_reg = true;
541 else if (EXTRA_MEMORY_CONSTRAINT (constraint[j], constraint + j))
542 *allows_mem = true;
543 else
545 /* Otherwise we can't assume anything about the nature of
546 the constraint except that it isn't purely registers.
547 Treat it like "g" and hope for the best. */
548 *allows_reg = true;
549 *allows_mem = true;
551 #endif
552 break;
555 if (saw_match && !*allows_reg)
556 warning ("matching constraint does not allow a register");
558 return true;
561 /* INPUT is one of the input operands from EXPR, an ASM_EXPR. Returns true
562 if it is an operand which must be passed in memory (i.e. an "m"
563 constraint), false otherwise. */
565 bool
566 asm_op_is_mem_input (tree input, tree expr)
568 const char *constraint = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (input)));
569 tree outputs = ASM_OUTPUTS (expr);
570 int noutputs = list_length (outputs);
571 const char **constraints
572 = (const char **) alloca ((noutputs) * sizeof (const char *));
573 int i = 0;
574 bool allows_mem, allows_reg;
575 tree t;
577 /* Collect output constraints. */
578 for (t = outputs; t ; t = TREE_CHAIN (t), i++)
579 constraints[i] = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (t)));
581 /* We pass 0 for input_num, ninputs and ninout; they are only used for
582 error checking which will be done at expand time. */
583 parse_input_constraint (&constraint, 0, 0, noutputs, 0, constraints,
584 &allows_mem, &allows_reg);
585 return (!allows_reg && allows_mem);
588 /* Check for overlap between registers marked in CLOBBERED_REGS and
589 anything inappropriate in DECL. Emit error and return TRUE for error,
590 FALSE for ok. */
592 static bool
593 decl_conflicts_with_clobbers_p (tree decl, const HARD_REG_SET clobbered_regs)
595 /* Conflicts between asm-declared register variables and the clobber
596 list are not allowed. */
597 if ((TREE_CODE (decl) == VAR_DECL || TREE_CODE (decl) == PARM_DECL)
598 && DECL_REGISTER (decl)
599 && REG_P (DECL_RTL (decl))
600 && REGNO (DECL_RTL (decl)) < FIRST_PSEUDO_REGISTER)
602 rtx reg = DECL_RTL (decl);
603 unsigned int regno;
605 for (regno = REGNO (reg);
606 regno < (REGNO (reg)
607 + hard_regno_nregs[REGNO (reg)][GET_MODE (reg)]);
608 regno++)
609 if (TEST_HARD_REG_BIT (clobbered_regs, regno))
611 error ("asm-specifier for variable `%s' conflicts with asm clobber list",
612 IDENTIFIER_POINTER (DECL_NAME (decl)));
614 /* Reset registerness to stop multiple errors emitted for a
615 single variable. */
616 DECL_REGISTER (decl) = 0;
617 return true;
620 return false;
623 /* Generate RTL for an asm statement with arguments.
624 STRING is the instruction template.
625 OUTPUTS is a list of output arguments (lvalues); INPUTS a list of inputs.
626 Each output or input has an expression in the TREE_VALUE and
627 and a tree list in TREE_PURPOSE which in turn contains a constraint
628 name in TREE_VALUE (or NULL_TREE) and a constraint string
629 in TREE_PURPOSE.
630 CLOBBERS is a list of STRING_CST nodes each naming a hard register
631 that is clobbered by this insn.
633 Not all kinds of lvalue that may appear in OUTPUTS can be stored directly.
634 Some elements of OUTPUTS may be replaced with trees representing temporary
635 values. The caller should copy those temporary values to the originally
636 specified lvalues.
638 VOL nonzero means the insn is volatile; don't optimize it. */
640 void
641 expand_asm_operands (tree string, tree outputs, tree inputs,
642 tree clobbers, int vol, location_t locus)
644 rtvec argvec, constraintvec;
645 rtx body;
646 int ninputs = list_length (inputs);
647 int noutputs = list_length (outputs);
648 int ninout;
649 int nclobbers;
650 HARD_REG_SET clobbered_regs;
651 int clobber_conflict_found = 0;
652 tree tail;
653 tree t;
654 int i;
655 /* Vector of RTX's of evaluated output operands. */
656 rtx *output_rtx = alloca (noutputs * sizeof (rtx));
657 int *inout_opnum = alloca (noutputs * sizeof (int));
658 rtx *real_output_rtx = alloca (noutputs * sizeof (rtx));
659 enum machine_mode *inout_mode
660 = alloca (noutputs * sizeof (enum machine_mode));
661 const char **constraints
662 = alloca ((noutputs + ninputs) * sizeof (const char *));
663 int old_generating_concat_p = generating_concat_p;
665 /* An ASM with no outputs needs to be treated as volatile, for now. */
666 if (noutputs == 0)
667 vol = 1;
669 if (! check_operand_nalternatives (outputs, inputs))
670 return;
672 string = resolve_asm_operand_names (string, outputs, inputs);
674 /* Collect constraints. */
675 i = 0;
676 for (t = outputs; t ; t = TREE_CHAIN (t), i++)
677 constraints[i] = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (t)));
678 for (t = inputs; t ; t = TREE_CHAIN (t), i++)
679 constraints[i] = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (t)));
681 /* Sometimes we wish to automatically clobber registers across an asm.
682 Case in point is when the i386 backend moved from cc0 to a hard reg --
683 maintaining source-level compatibility means automatically clobbering
684 the flags register. */
685 clobbers = targetm.md_asm_clobbers (clobbers);
687 /* Count the number of meaningful clobbered registers, ignoring what
688 we would ignore later. */
689 nclobbers = 0;
690 CLEAR_HARD_REG_SET (clobbered_regs);
691 for (tail = clobbers; tail; tail = TREE_CHAIN (tail))
693 const char *regname = TREE_STRING_POINTER (TREE_VALUE (tail));
695 i = decode_reg_name (regname);
696 if (i >= 0 || i == -4)
697 ++nclobbers;
698 else if (i == -2)
699 error ("unknown register name `%s' in `asm'", regname);
701 /* Mark clobbered registers. */
702 if (i >= 0)
704 /* Clobbering the PIC register is an error */
705 if (i == (int) PIC_OFFSET_TABLE_REGNUM)
707 error ("PIC register `%s' clobbered in `asm'", regname);
708 return;
711 SET_HARD_REG_BIT (clobbered_regs, i);
715 /* First pass over inputs and outputs checks validity and sets
716 mark_addressable if needed. */
718 ninout = 0;
719 for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++)
721 tree val = TREE_VALUE (tail);
722 tree type = TREE_TYPE (val);
723 const char *constraint;
724 bool is_inout;
725 bool allows_reg;
726 bool allows_mem;
728 /* If there's an erroneous arg, emit no insn. */
729 if (type == error_mark_node)
730 return;
732 /* Try to parse the output constraint. If that fails, there's
733 no point in going further. */
734 constraint = constraints[i];
735 if (!parse_output_constraint (&constraint, i, ninputs, noutputs,
736 &allows_mem, &allows_reg, &is_inout))
737 return;
739 if (! allows_reg
740 && (allows_mem
741 || is_inout
742 || (DECL_P (val)
743 && REG_P (DECL_RTL (val))
744 && GET_MODE (DECL_RTL (val)) != TYPE_MODE (type))))
745 lang_hooks.mark_addressable (val);
747 if (is_inout)
748 ninout++;
751 ninputs += ninout;
752 if (ninputs + noutputs > MAX_RECOG_OPERANDS)
754 error ("more than %d operands in `asm'", MAX_RECOG_OPERANDS);
755 return;
758 for (i = 0, tail = inputs; tail; i++, tail = TREE_CHAIN (tail))
760 bool allows_reg, allows_mem;
761 const char *constraint;
763 /* If there's an erroneous arg, emit no insn, because the ASM_INPUT
764 would get VOIDmode and that could cause a crash in reload. */
765 if (TREE_TYPE (TREE_VALUE (tail)) == error_mark_node)
766 return;
768 constraint = constraints[i + noutputs];
769 if (! parse_input_constraint (&constraint, i, ninputs, noutputs, ninout,
770 constraints, &allows_mem, &allows_reg))
771 return;
773 if (! allows_reg && allows_mem)
774 lang_hooks.mark_addressable (TREE_VALUE (tail));
777 /* Second pass evaluates arguments. */
779 ninout = 0;
780 for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++)
782 tree val = TREE_VALUE (tail);
783 tree type = TREE_TYPE (val);
784 bool is_inout;
785 bool allows_reg;
786 bool allows_mem;
787 rtx op;
789 if (!parse_output_constraint (&constraints[i], i, ninputs,
790 noutputs, &allows_mem, &allows_reg,
791 &is_inout))
792 abort ();
794 /* If an output operand is not a decl or indirect ref and our constraint
795 allows a register, make a temporary to act as an intermediate.
796 Make the asm insn write into that, then our caller will copy it to
797 the real output operand. Likewise for promoted variables. */
799 generating_concat_p = 0;
801 real_output_rtx[i] = NULL_RTX;
802 if ((TREE_CODE (val) == INDIRECT_REF
803 && allows_mem)
804 || (DECL_P (val)
805 && (allows_mem || REG_P (DECL_RTL (val)))
806 && ! (REG_P (DECL_RTL (val))
807 && GET_MODE (DECL_RTL (val)) != TYPE_MODE (type)))
808 || ! allows_reg
809 || is_inout)
811 op = expand_expr (val, NULL_RTX, VOIDmode, EXPAND_WRITE);
812 if (MEM_P (op))
813 op = validize_mem (op);
815 if (! allows_reg && !MEM_P (op))
816 error ("output number %d not directly addressable", i);
817 if ((! allows_mem && MEM_P (op))
818 || GET_CODE (op) == CONCAT)
820 real_output_rtx[i] = op;
821 op = gen_reg_rtx (GET_MODE (op));
822 if (is_inout)
823 emit_move_insn (op, real_output_rtx[i]);
826 else
828 op = assign_temp (type, 0, 0, 1);
829 op = validize_mem (op);
830 TREE_VALUE (tail) = make_tree (type, op);
832 output_rtx[i] = op;
834 generating_concat_p = old_generating_concat_p;
836 if (is_inout)
838 inout_mode[ninout] = TYPE_MODE (type);
839 inout_opnum[ninout++] = i;
842 if (decl_conflicts_with_clobbers_p (val, clobbered_regs))
843 clobber_conflict_found = 1;
846 /* Make vectors for the expression-rtx, constraint strings,
847 and named operands. */
849 argvec = rtvec_alloc (ninputs);
850 constraintvec = rtvec_alloc (ninputs);
852 body = gen_rtx_ASM_OPERANDS ((noutputs == 0 ? VOIDmode
853 : GET_MODE (output_rtx[0])),
854 TREE_STRING_POINTER (string),
855 empty_string, 0, argvec, constraintvec,
856 locus);
858 MEM_VOLATILE_P (body) = vol;
860 /* Eval the inputs and put them into ARGVEC.
861 Put their constraints into ASM_INPUTs and store in CONSTRAINTS. */
863 for (i = 0, tail = inputs; tail; tail = TREE_CHAIN (tail), ++i)
865 bool allows_reg, allows_mem;
866 const char *constraint;
867 tree val, type;
868 rtx op;
870 constraint = constraints[i + noutputs];
871 if (! parse_input_constraint (&constraint, i, ninputs, noutputs, ninout,
872 constraints, &allows_mem, &allows_reg))
873 abort ();
875 generating_concat_p = 0;
877 val = TREE_VALUE (tail);
878 type = TREE_TYPE (val);
879 op = expand_expr (val, NULL_RTX, VOIDmode,
880 (allows_mem && !allows_reg
881 ? EXPAND_MEMORY : EXPAND_NORMAL));
883 /* Never pass a CONCAT to an ASM. */
884 if (GET_CODE (op) == CONCAT)
885 op = force_reg (GET_MODE (op), op);
886 else if (MEM_P (op))
887 op = validize_mem (op);
889 if (asm_operand_ok (op, constraint) <= 0)
891 if (allows_reg)
892 op = force_reg (TYPE_MODE (type), op);
893 else if (!allows_mem)
894 warning ("asm operand %d probably doesn't match constraints",
895 i + noutputs);
896 else if (MEM_P (op))
898 /* We won't recognize either volatile memory or memory
899 with a queued address as available a memory_operand
900 at this point. Ignore it: clearly this *is* a memory. */
902 else
904 warning ("use of memory input without lvalue in "
905 "asm operand %d is deprecated", i + noutputs);
907 if (CONSTANT_P (op))
909 rtx mem = force_const_mem (TYPE_MODE (type), op);
910 if (mem)
911 op = validize_mem (mem);
912 else
913 op = force_reg (TYPE_MODE (type), op);
915 if (REG_P (op)
916 || GET_CODE (op) == SUBREG
917 || GET_CODE (op) == CONCAT)
919 tree qual_type = build_qualified_type (type,
920 (TYPE_QUALS (type)
921 | TYPE_QUAL_CONST));
922 rtx memloc = assign_temp (qual_type, 1, 1, 1);
923 memloc = validize_mem (memloc);
924 emit_move_insn (memloc, op);
925 op = memloc;
930 generating_concat_p = old_generating_concat_p;
931 ASM_OPERANDS_INPUT (body, i) = op;
933 ASM_OPERANDS_INPUT_CONSTRAINT_EXP (body, i)
934 = gen_rtx_ASM_INPUT (TYPE_MODE (type), constraints[i + noutputs]);
936 if (decl_conflicts_with_clobbers_p (val, clobbered_regs))
937 clobber_conflict_found = 1;
940 /* Protect all the operands from the queue now that they have all been
941 evaluated. */
943 generating_concat_p = 0;
945 /* For in-out operands, copy output rtx to input rtx. */
946 for (i = 0; i < ninout; i++)
948 int j = inout_opnum[i];
949 char buffer[16];
951 ASM_OPERANDS_INPUT (body, ninputs - ninout + i)
952 = output_rtx[j];
954 sprintf (buffer, "%d", j);
955 ASM_OPERANDS_INPUT_CONSTRAINT_EXP (body, ninputs - ninout + i)
956 = gen_rtx_ASM_INPUT (inout_mode[i], ggc_strdup (buffer));
959 generating_concat_p = old_generating_concat_p;
961 /* Now, for each output, construct an rtx
962 (set OUTPUT (asm_operands INSN OUTPUTCONSTRAINT OUTPUTNUMBER
963 ARGVEC CONSTRAINTS OPNAMES))
964 If there is more than one, put them inside a PARALLEL. */
966 if (noutputs == 1 && nclobbers == 0)
968 ASM_OPERANDS_OUTPUT_CONSTRAINT (body) = constraints[0];
969 emit_insn (gen_rtx_SET (VOIDmode, output_rtx[0], body));
972 else if (noutputs == 0 && nclobbers == 0)
974 /* No output operands: put in a raw ASM_OPERANDS rtx. */
975 emit_insn (body);
978 else
980 rtx obody = body;
981 int num = noutputs;
983 if (num == 0)
984 num = 1;
986 body = gen_rtx_PARALLEL (VOIDmode, rtvec_alloc (num + nclobbers));
988 /* For each output operand, store a SET. */
989 for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++)
991 XVECEXP (body, 0, i)
992 = gen_rtx_SET (VOIDmode,
993 output_rtx[i],
994 gen_rtx_ASM_OPERANDS
995 (GET_MODE (output_rtx[i]),
996 TREE_STRING_POINTER (string),
997 constraints[i], i, argvec, constraintvec,
998 locus));
1000 MEM_VOLATILE_P (SET_SRC (XVECEXP (body, 0, i))) = vol;
1003 /* If there are no outputs (but there are some clobbers)
1004 store the bare ASM_OPERANDS into the PARALLEL. */
1006 if (i == 0)
1007 XVECEXP (body, 0, i++) = obody;
1009 /* Store (clobber REG) for each clobbered register specified. */
1011 for (tail = clobbers; tail; tail = TREE_CHAIN (tail))
1013 const char *regname = TREE_STRING_POINTER (TREE_VALUE (tail));
1014 int j = decode_reg_name (regname);
1015 rtx clobbered_reg;
1017 if (j < 0)
1019 if (j == -3) /* `cc', which is not a register */
1020 continue;
1022 if (j == -4) /* `memory', don't cache memory across asm */
1024 XVECEXP (body, 0, i++)
1025 = gen_rtx_CLOBBER (VOIDmode,
1026 gen_rtx_MEM
1027 (BLKmode,
1028 gen_rtx_SCRATCH (VOIDmode)));
1029 continue;
1032 /* Ignore unknown register, error already signaled. */
1033 continue;
1036 /* Use QImode since that's guaranteed to clobber just one reg. */
1037 clobbered_reg = gen_rtx_REG (QImode, j);
1039 /* Do sanity check for overlap between clobbers and respectively
1040 input and outputs that hasn't been handled. Such overlap
1041 should have been detected and reported above. */
1042 if (!clobber_conflict_found)
1044 int opno;
1046 /* We test the old body (obody) contents to avoid tripping
1047 over the under-construction body. */
1048 for (opno = 0; opno < noutputs; opno++)
1049 if (reg_overlap_mentioned_p (clobbered_reg, output_rtx[opno]))
1050 internal_error ("asm clobber conflict with output operand");
1052 for (opno = 0; opno < ninputs - ninout; opno++)
1053 if (reg_overlap_mentioned_p (clobbered_reg,
1054 ASM_OPERANDS_INPUT (obody, opno)))
1055 internal_error ("asm clobber conflict with input operand");
1058 XVECEXP (body, 0, i++)
1059 = gen_rtx_CLOBBER (VOIDmode, clobbered_reg);
1062 emit_insn (body);
1065 /* For any outputs that needed reloading into registers, spill them
1066 back to where they belong. */
1067 for (i = 0; i < noutputs; ++i)
1068 if (real_output_rtx[i])
1069 emit_move_insn (real_output_rtx[i], output_rtx[i]);
1071 free_temp_slots ();
1074 void
1075 expand_asm_expr (tree exp)
1077 int noutputs, i;
1078 tree outputs, tail;
1079 tree *o;
1081 if (ASM_INPUT_P (exp))
1083 expand_asm (ASM_STRING (exp), ASM_VOLATILE_P (exp));
1084 return;
1087 outputs = ASM_OUTPUTS (exp);
1088 noutputs = list_length (outputs);
1089 /* o[I] is the place that output number I should be written. */
1090 o = (tree *) alloca (noutputs * sizeof (tree));
1092 /* Record the contents of OUTPUTS before it is modified. */
1093 for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++)
1094 o[i] = TREE_VALUE (tail);
1096 /* Generate the ASM_OPERANDS insn; store into the TREE_VALUEs of
1097 OUTPUTS some trees for where the values were actually stored. */
1098 expand_asm_operands (ASM_STRING (exp), outputs, ASM_INPUTS (exp),
1099 ASM_CLOBBERS (exp), ASM_VOLATILE_P (exp),
1100 input_location);
1102 /* Copy all the intermediate outputs into the specified outputs. */
1103 for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++)
1105 if (o[i] != TREE_VALUE (tail))
1107 expand_assignment (o[i], TREE_VALUE (tail), 0);
1108 free_temp_slots ();
1110 /* Restore the original value so that it's correct the next
1111 time we expand this function. */
1112 TREE_VALUE (tail) = o[i];
1117 /* A subroutine of expand_asm_operands. Check that all operands have
1118 the same number of alternatives. Return true if so. */
1120 static bool
1121 check_operand_nalternatives (tree outputs, tree inputs)
1123 if (outputs || inputs)
1125 tree tmp = TREE_PURPOSE (outputs ? outputs : inputs);
1126 int nalternatives
1127 = n_occurrences (',', TREE_STRING_POINTER (TREE_VALUE (tmp)));
1128 tree next = inputs;
1130 if (nalternatives + 1 > MAX_RECOG_ALTERNATIVES)
1132 error ("too many alternatives in `asm'");
1133 return false;
1136 tmp = outputs;
1137 while (tmp)
1139 const char *constraint
1140 = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (tmp)));
1142 if (n_occurrences (',', constraint) != nalternatives)
1144 error ("operand constraints for `asm' differ in number of alternatives");
1145 return false;
1148 if (TREE_CHAIN (tmp))
1149 tmp = TREE_CHAIN (tmp);
1150 else
1151 tmp = next, next = 0;
1155 return true;
1158 /* A subroutine of expand_asm_operands. Check that all operand names
1159 are unique. Return true if so. We rely on the fact that these names
1160 are identifiers, and so have been canonicalized by get_identifier,
1161 so all we need are pointer comparisons. */
1163 static bool
1164 check_unique_operand_names (tree outputs, tree inputs)
1166 tree i, j;
1168 for (i = outputs; i ; i = TREE_CHAIN (i))
1170 tree i_name = TREE_PURPOSE (TREE_PURPOSE (i));
1171 if (! i_name)
1172 continue;
1174 for (j = TREE_CHAIN (i); j ; j = TREE_CHAIN (j))
1175 if (simple_cst_equal (i_name, TREE_PURPOSE (TREE_PURPOSE (j))))
1176 goto failure;
1179 for (i = inputs; i ; i = TREE_CHAIN (i))
1181 tree i_name = TREE_PURPOSE (TREE_PURPOSE (i));
1182 if (! i_name)
1183 continue;
1185 for (j = TREE_CHAIN (i); j ; j = TREE_CHAIN (j))
1186 if (simple_cst_equal (i_name, TREE_PURPOSE (TREE_PURPOSE (j))))
1187 goto failure;
1188 for (j = outputs; j ; j = TREE_CHAIN (j))
1189 if (simple_cst_equal (i_name, TREE_PURPOSE (TREE_PURPOSE (j))))
1190 goto failure;
1193 return true;
1195 failure:
1196 error ("duplicate asm operand name '%s'",
1197 TREE_STRING_POINTER (TREE_PURPOSE (TREE_PURPOSE (i))));
1198 return false;
1201 /* A subroutine of expand_asm_operands. Resolve the names of the operands
1202 in *POUTPUTS and *PINPUTS to numbers, and replace the name expansions in
1203 STRING and in the constraints to those numbers. */
1205 tree
1206 resolve_asm_operand_names (tree string, tree outputs, tree inputs)
1208 char *buffer;
1209 char *p;
1210 const char *c;
1211 tree t;
1213 check_unique_operand_names (outputs, inputs);
1215 /* Substitute [<name>] in input constraint strings. There should be no
1216 named operands in output constraints. */
1217 for (t = inputs; t ; t = TREE_CHAIN (t))
1219 c = TREE_STRING_POINTER (TREE_VALUE (TREE_PURPOSE (t)));
1220 if (strchr (c, '[') != NULL)
1222 p = buffer = xstrdup (c);
1223 while ((p = strchr (p, '[')) != NULL)
1224 p = resolve_operand_name_1 (p, outputs, inputs);
1225 TREE_VALUE (TREE_PURPOSE (t))
1226 = build_string (strlen (buffer), buffer);
1227 free (buffer);
1231 /* Now check for any needed substitutions in the template. */
1232 c = TREE_STRING_POINTER (string);
1233 while ((c = strchr (c, '%')) != NULL)
1235 if (c[1] == '[')
1236 break;
1237 else if (ISALPHA (c[1]) && c[2] == '[')
1238 break;
1239 else
1241 c += 1;
1242 continue;
1246 if (c)
1248 /* OK, we need to make a copy so we can perform the substitutions.
1249 Assume that we will not need extra space--we get to remove '['
1250 and ']', which means we cannot have a problem until we have more
1251 than 999 operands. */
1252 buffer = xstrdup (TREE_STRING_POINTER (string));
1253 p = buffer + (c - TREE_STRING_POINTER (string));
1255 while ((p = strchr (p, '%')) != NULL)
1257 if (p[1] == '[')
1258 p += 1;
1259 else if (ISALPHA (p[1]) && p[2] == '[')
1260 p += 2;
1261 else
1263 p += 1;
1264 continue;
1267 p = resolve_operand_name_1 (p, outputs, inputs);
1270 string = build_string (strlen (buffer), buffer);
1271 free (buffer);
1274 return string;
1277 /* A subroutine of resolve_operand_names. P points to the '[' for a
1278 potential named operand of the form [<name>]. In place, replace
1279 the name and brackets with a number. Return a pointer to the
1280 balance of the string after substitution. */
1282 static char *
1283 resolve_operand_name_1 (char *p, tree outputs, tree inputs)
1285 char *q;
1286 int op;
1287 tree t;
1288 size_t len;
1290 /* Collect the operand name. */
1291 q = strchr (p, ']');
1292 if (!q)
1294 error ("missing close brace for named operand");
1295 return strchr (p, '\0');
1297 len = q - p - 1;
1299 /* Resolve the name to a number. */
1300 for (op = 0, t = outputs; t ; t = TREE_CHAIN (t), op++)
1302 tree name = TREE_PURPOSE (TREE_PURPOSE (t));
1303 if (name)
1305 const char *c = TREE_STRING_POINTER (name);
1306 if (strncmp (c, p + 1, len) == 0 && c[len] == '\0')
1307 goto found;
1310 for (t = inputs; t ; t = TREE_CHAIN (t), op++)
1312 tree name = TREE_PURPOSE (TREE_PURPOSE (t));
1313 if (name)
1315 const char *c = TREE_STRING_POINTER (name);
1316 if (strncmp (c, p + 1, len) == 0 && c[len] == '\0')
1317 goto found;
1321 *q = '\0';
1322 error ("undefined named operand '%s'", p + 1);
1323 op = 0;
1324 found:
1326 /* Replace the name with the number. Unfortunately, not all libraries
1327 get the return value of sprintf correct, so search for the end of the
1328 generated string by hand. */
1329 sprintf (p, "%d", op);
1330 p = strchr (p, '\0');
1332 /* Verify the no extra buffer space assumption. */
1333 if (p > q)
1334 abort ();
1336 /* Shift the rest of the buffer down to fill the gap. */
1337 memmove (p, q + 1, strlen (q + 1) + 1);
1339 return p;
1342 /* Generate RTL to evaluate the expression EXP. */
1344 void
1345 expand_expr_stmt (tree exp)
1347 rtx value;
1348 tree type;
1350 value = expand_expr (exp, const0_rtx, VOIDmode, 0);
1351 type = TREE_TYPE (exp);
1353 /* If all we do is reference a volatile value in memory,
1354 copy it to a register to be sure it is actually touched. */
1355 if (value && MEM_P (value) && TREE_THIS_VOLATILE (exp))
1357 if (TYPE_MODE (type) == VOIDmode)
1359 else if (TYPE_MODE (type) != BLKmode)
1360 value = copy_to_reg (value);
1361 else
1363 rtx lab = gen_label_rtx ();
1365 /* Compare the value with itself to reference it. */
1366 emit_cmp_and_jump_insns (value, value, EQ,
1367 expand_expr (TYPE_SIZE (type),
1368 NULL_RTX, VOIDmode, 0),
1369 BLKmode, 0, lab);
1370 emit_label (lab);
1374 /* Free any temporaries used to evaluate this expression. */
1375 free_temp_slots ();
1378 /* Warn if EXP contains any computations whose results are not used.
1379 Return 1 if a warning is printed; 0 otherwise. LOCUS is the
1380 (potential) location of the expression. */
1383 warn_if_unused_value (tree exp, location_t locus)
1385 restart:
1386 if (TREE_USED (exp))
1387 return 0;
1389 /* Don't warn about void constructs. This includes casting to void,
1390 void function calls, and statement expressions with a final cast
1391 to void. */
1392 if (VOID_TYPE_P (TREE_TYPE (exp)))
1393 return 0;
1395 if (EXPR_HAS_LOCATION (exp))
1396 locus = EXPR_LOCATION (exp);
1398 switch (TREE_CODE (exp))
1400 case PREINCREMENT_EXPR:
1401 case POSTINCREMENT_EXPR:
1402 case PREDECREMENT_EXPR:
1403 case POSTDECREMENT_EXPR:
1404 case MODIFY_EXPR:
1405 case INIT_EXPR:
1406 case TARGET_EXPR:
1407 case CALL_EXPR:
1408 case TRY_CATCH_EXPR:
1409 case WITH_CLEANUP_EXPR:
1410 case EXIT_EXPR:
1411 return 0;
1413 case BIND_EXPR:
1414 /* For a binding, warn if no side effect within it. */
1415 exp = BIND_EXPR_BODY (exp);
1416 goto restart;
1418 case SAVE_EXPR:
1419 exp = TREE_OPERAND (exp, 0);
1420 goto restart;
1422 case TRUTH_ORIF_EXPR:
1423 case TRUTH_ANDIF_EXPR:
1424 /* In && or ||, warn if 2nd operand has no side effect. */
1425 exp = TREE_OPERAND (exp, 1);
1426 goto restart;
1428 case COMPOUND_EXPR:
1429 if (TREE_NO_WARNING (exp))
1430 return 0;
1431 if (warn_if_unused_value (TREE_OPERAND (exp, 0), locus))
1432 return 1;
1433 /* Let people do `(foo (), 0)' without a warning. */
1434 if (TREE_CONSTANT (TREE_OPERAND (exp, 1)))
1435 return 0;
1436 exp = TREE_OPERAND (exp, 1);
1437 goto restart;
1439 case NOP_EXPR:
1440 case CONVERT_EXPR:
1441 case NON_LVALUE_EXPR:
1442 /* Don't warn about conversions not explicit in the user's program. */
1443 if (TREE_NO_WARNING (exp))
1444 return 0;
1445 /* Assignment to a cast usually results in a cast of a modify.
1446 Don't complain about that. There can be an arbitrary number of
1447 casts before the modify, so we must loop until we find the first
1448 non-cast expression and then test to see if that is a modify. */
1450 tree tem = TREE_OPERAND (exp, 0);
1452 while (TREE_CODE (tem) == CONVERT_EXPR || TREE_CODE (tem) == NOP_EXPR)
1453 tem = TREE_OPERAND (tem, 0);
1455 if (TREE_CODE (tem) == MODIFY_EXPR || TREE_CODE (tem) == INIT_EXPR
1456 || TREE_CODE (tem) == CALL_EXPR)
1457 return 0;
1459 goto maybe_warn;
1461 case INDIRECT_REF:
1462 /* Don't warn about automatic dereferencing of references, since
1463 the user cannot control it. */
1464 if (TREE_CODE (TREE_TYPE (TREE_OPERAND (exp, 0))) == REFERENCE_TYPE)
1466 exp = TREE_OPERAND (exp, 0);
1467 goto restart;
1469 /* Fall through. */
1471 default:
1472 /* Referencing a volatile value is a side effect, so don't warn. */
1473 if ((DECL_P (exp)
1474 || TREE_CODE_CLASS (TREE_CODE (exp)) == 'r')
1475 && TREE_THIS_VOLATILE (exp))
1476 return 0;
1478 /* If this is an expression which has no operands, there is no value
1479 to be unused. There are no such language-independent codes,
1480 but front ends may define such. */
1481 if (TREE_CODE_CLASS (TREE_CODE (exp)) == 'e'
1482 && TREE_CODE_LENGTH (TREE_CODE (exp)) == 0)
1483 return 0;
1485 maybe_warn:
1486 /* If this is an expression with side effects, don't warn. */
1487 if (TREE_SIDE_EFFECTS (exp))
1488 return 0;
1490 warning ("%Hvalue computed is not used", &locus);
1491 return 1;
1496 /* Generate RTL to return from the current function, with no value.
1497 (That is, we do not do anything about returning any value.) */
1499 void
1500 expand_null_return (void)
1502 /* If this function was declared to return a value, but we
1503 didn't, clobber the return registers so that they are not
1504 propagated live to the rest of the function. */
1505 clobber_return_register ();
1507 expand_null_return_1 ();
1510 /* Generate RTL to return directly from the current function.
1511 (That is, we bypass any return value.) */
1513 void
1514 expand_naked_return (void)
1516 rtx end_label;
1518 clear_pending_stack_adjust ();
1519 do_pending_stack_adjust ();
1521 end_label = naked_return_label;
1522 if (end_label == 0)
1523 end_label = naked_return_label = gen_label_rtx ();
1525 emit_jump (end_label);
1528 /* If the current function returns values in the most significant part
1529 of a register, shift return value VAL appropriately. The mode of
1530 the function's return type is known not to be BLKmode. */
1532 static rtx
1533 shift_return_value (rtx val)
1535 tree type;
1537 type = TREE_TYPE (DECL_RESULT (current_function_decl));
1538 if (targetm.calls.return_in_msb (type))
1540 rtx target;
1541 HOST_WIDE_INT shift;
1543 target = DECL_RTL (DECL_RESULT (current_function_decl));
1544 shift = (GET_MODE_BITSIZE (GET_MODE (target))
1545 - BITS_PER_UNIT * int_size_in_bytes (type));
1546 if (shift > 0)
1547 val = expand_shift (LSHIFT_EXPR, GET_MODE (target),
1548 gen_lowpart (GET_MODE (target), val),
1549 build_int_cst (NULL_TREE, shift), target, 1);
1551 return val;
1555 /* Generate RTL to return from the current function, with value VAL. */
1557 static void
1558 expand_value_return (rtx val)
1560 /* Copy the value to the return location
1561 unless it's already there. */
1563 rtx return_reg = DECL_RTL (DECL_RESULT (current_function_decl));
1564 if (return_reg != val)
1566 tree type = TREE_TYPE (DECL_RESULT (current_function_decl));
1567 if (targetm.calls.promote_function_return (TREE_TYPE (current_function_decl)))
1569 int unsignedp = TYPE_UNSIGNED (type);
1570 enum machine_mode old_mode
1571 = DECL_MODE (DECL_RESULT (current_function_decl));
1572 enum machine_mode mode
1573 = promote_mode (type, old_mode, &unsignedp, 1);
1575 if (mode != old_mode)
1576 val = convert_modes (mode, old_mode, val, unsignedp);
1578 if (GET_CODE (return_reg) == PARALLEL)
1579 emit_group_load (return_reg, val, type, int_size_in_bytes (type));
1580 else
1581 emit_move_insn (return_reg, val);
1584 expand_null_return_1 ();
1587 /* Output a return with no value. */
1589 static void
1590 expand_null_return_1 (void)
1592 rtx end_label;
1594 clear_pending_stack_adjust ();
1595 do_pending_stack_adjust ();
1597 end_label = return_label;
1598 if (end_label == 0)
1599 end_label = return_label = gen_label_rtx ();
1600 emit_jump (end_label);
1603 /* Generate RTL to evaluate the expression RETVAL and return it
1604 from the current function. */
1606 void
1607 expand_return (tree retval)
1609 rtx result_rtl;
1610 rtx val = 0;
1611 tree retval_rhs;
1613 /* If function wants no value, give it none. */
1614 if (TREE_CODE (TREE_TYPE (TREE_TYPE (current_function_decl))) == VOID_TYPE)
1616 expand_expr (retval, NULL_RTX, VOIDmode, 0);
1617 expand_null_return ();
1618 return;
1621 if (retval == error_mark_node)
1623 /* Treat this like a return of no value from a function that
1624 returns a value. */
1625 expand_null_return ();
1626 return;
1628 else if ((TREE_CODE (retval) == MODIFY_EXPR
1629 || TREE_CODE (retval) == INIT_EXPR)
1630 && TREE_CODE (TREE_OPERAND (retval, 0)) == RESULT_DECL)
1631 retval_rhs = TREE_OPERAND (retval, 1);
1632 else
1633 retval_rhs = retval;
1635 result_rtl = DECL_RTL (DECL_RESULT (current_function_decl));
1637 /* If we are returning the RESULT_DECL, then the value has already
1638 been stored into it, so we don't have to do anything special. */
1639 if (TREE_CODE (retval_rhs) == RESULT_DECL)
1640 expand_value_return (result_rtl);
1642 /* If the result is an aggregate that is being returned in one (or more)
1643 registers, load the registers here. The compiler currently can't handle
1644 copying a BLKmode value into registers. We could put this code in a
1645 more general area (for use by everyone instead of just function
1646 call/return), but until this feature is generally usable it is kept here
1647 (and in expand_call). */
1649 else if (retval_rhs != 0
1650 && TYPE_MODE (TREE_TYPE (retval_rhs)) == BLKmode
1651 && REG_P (result_rtl))
1653 int i;
1654 unsigned HOST_WIDE_INT bitpos, xbitpos;
1655 unsigned HOST_WIDE_INT padding_correction = 0;
1656 unsigned HOST_WIDE_INT bytes
1657 = int_size_in_bytes (TREE_TYPE (retval_rhs));
1658 int n_regs = (bytes + UNITS_PER_WORD - 1) / UNITS_PER_WORD;
1659 unsigned int bitsize
1660 = MIN (TYPE_ALIGN (TREE_TYPE (retval_rhs)), BITS_PER_WORD);
1661 rtx *result_pseudos = alloca (sizeof (rtx) * n_regs);
1662 rtx result_reg, src = NULL_RTX, dst = NULL_RTX;
1663 rtx result_val = expand_expr (retval_rhs, NULL_RTX, VOIDmode, 0);
1664 enum machine_mode tmpmode, result_reg_mode;
1666 if (bytes == 0)
1668 expand_null_return ();
1669 return;
1672 /* If the structure doesn't take up a whole number of words, see
1673 whether the register value should be padded on the left or on
1674 the right. Set PADDING_CORRECTION to the number of padding
1675 bits needed on the left side.
1677 In most ABIs, the structure will be returned at the least end of
1678 the register, which translates to right padding on little-endian
1679 targets and left padding on big-endian targets. The opposite
1680 holds if the structure is returned at the most significant
1681 end of the register. */
1682 if (bytes % UNITS_PER_WORD != 0
1683 && (targetm.calls.return_in_msb (TREE_TYPE (retval_rhs))
1684 ? !BYTES_BIG_ENDIAN
1685 : BYTES_BIG_ENDIAN))
1686 padding_correction = (BITS_PER_WORD - ((bytes % UNITS_PER_WORD)
1687 * BITS_PER_UNIT));
1689 /* Copy the structure BITSIZE bits at a time. */
1690 for (bitpos = 0, xbitpos = padding_correction;
1691 bitpos < bytes * BITS_PER_UNIT;
1692 bitpos += bitsize, xbitpos += bitsize)
1694 /* We need a new destination pseudo each time xbitpos is
1695 on a word boundary and when xbitpos == padding_correction
1696 (the first time through). */
1697 if (xbitpos % BITS_PER_WORD == 0
1698 || xbitpos == padding_correction)
1700 /* Generate an appropriate register. */
1701 dst = gen_reg_rtx (word_mode);
1702 result_pseudos[xbitpos / BITS_PER_WORD] = dst;
1704 /* Clear the destination before we move anything into it. */
1705 emit_move_insn (dst, CONST0_RTX (GET_MODE (dst)));
1708 /* We need a new source operand each time bitpos is on a word
1709 boundary. */
1710 if (bitpos % BITS_PER_WORD == 0)
1711 src = operand_subword_force (result_val,
1712 bitpos / BITS_PER_WORD,
1713 BLKmode);
1715 /* Use bitpos for the source extraction (left justified) and
1716 xbitpos for the destination store (right justified). */
1717 store_bit_field (dst, bitsize, xbitpos % BITS_PER_WORD, word_mode,
1718 extract_bit_field (src, bitsize,
1719 bitpos % BITS_PER_WORD, 1,
1720 NULL_RTX, word_mode, word_mode));
1723 tmpmode = GET_MODE (result_rtl);
1724 if (tmpmode == BLKmode)
1726 /* Find the smallest integer mode large enough to hold the
1727 entire structure and use that mode instead of BLKmode
1728 on the USE insn for the return register. */
1729 for (tmpmode = GET_CLASS_NARROWEST_MODE (MODE_INT);
1730 tmpmode != VOIDmode;
1731 tmpmode = GET_MODE_WIDER_MODE (tmpmode))
1732 /* Have we found a large enough mode? */
1733 if (GET_MODE_SIZE (tmpmode) >= bytes)
1734 break;
1736 /* No suitable mode found. */
1737 if (tmpmode == VOIDmode)
1738 abort ();
1740 PUT_MODE (result_rtl, tmpmode);
1743 if (GET_MODE_SIZE (tmpmode) < GET_MODE_SIZE (word_mode))
1744 result_reg_mode = word_mode;
1745 else
1746 result_reg_mode = tmpmode;
1747 result_reg = gen_reg_rtx (result_reg_mode);
1749 for (i = 0; i < n_regs; i++)
1750 emit_move_insn (operand_subword (result_reg, i, 0, result_reg_mode),
1751 result_pseudos[i]);
1753 if (tmpmode != result_reg_mode)
1754 result_reg = gen_lowpart (tmpmode, result_reg);
1756 expand_value_return (result_reg);
1758 else if (retval_rhs != 0
1759 && !VOID_TYPE_P (TREE_TYPE (retval_rhs))
1760 && (REG_P (result_rtl)
1761 || (GET_CODE (result_rtl) == PARALLEL)))
1763 /* Calculate the return value into a temporary (usually a pseudo
1764 reg). */
1765 tree ot = TREE_TYPE (DECL_RESULT (current_function_decl));
1766 tree nt = build_qualified_type (ot, TYPE_QUALS (ot) | TYPE_QUAL_CONST);
1768 val = assign_temp (nt, 0, 0, 1);
1769 val = expand_expr (retval_rhs, val, GET_MODE (val), 0);
1770 val = force_not_mem (val);
1771 /* Return the calculated value. */
1772 expand_value_return (shift_return_value (val));
1774 else
1776 /* No hard reg used; calculate value into hard return reg. */
1777 expand_expr (retval, const0_rtx, VOIDmode, 0);
1778 expand_value_return (result_rtl);
1782 /* Given a pointer to a BLOCK node return nonzero if (and only if) the node
1783 in question represents the outermost pair of curly braces (i.e. the "body
1784 block") of a function or method.
1786 For any BLOCK node representing a "body block" of a function or method, the
1787 BLOCK_SUPERCONTEXT of the node will point to another BLOCK node which
1788 represents the outermost (function) scope for the function or method (i.e.
1789 the one which includes the formal parameters). The BLOCK_SUPERCONTEXT of
1790 *that* node in turn will point to the relevant FUNCTION_DECL node. */
1793 is_body_block (tree stmt)
1795 if (lang_hooks.no_body_blocks)
1796 return 0;
1798 if (TREE_CODE (stmt) == BLOCK)
1800 tree parent = BLOCK_SUPERCONTEXT (stmt);
1802 if (parent && TREE_CODE (parent) == BLOCK)
1804 tree grandparent = BLOCK_SUPERCONTEXT (parent);
1806 if (grandparent && TREE_CODE (grandparent) == FUNCTION_DECL)
1807 return 1;
1811 return 0;
1814 /* Emit code to restore vital registers at the beginning of a nonlocal goto
1815 handler. */
1816 static void
1817 expand_nl_goto_receiver (void)
1819 /* Clobber the FP when we get here, so we have to make sure it's
1820 marked as used by this function. */
1821 emit_insn (gen_rtx_USE (VOIDmode, hard_frame_pointer_rtx));
1823 /* Mark the static chain as clobbered here so life information
1824 doesn't get messed up for it. */
1825 emit_insn (gen_rtx_CLOBBER (VOIDmode, static_chain_rtx));
1827 #ifdef HAVE_nonlocal_goto
1828 if (! HAVE_nonlocal_goto)
1829 #endif
1830 /* First adjust our frame pointer to its actual value. It was
1831 previously set to the start of the virtual area corresponding to
1832 the stacked variables when we branched here and now needs to be
1833 adjusted to the actual hardware fp value.
1835 Assignments are to virtual registers are converted by
1836 instantiate_virtual_regs into the corresponding assignment
1837 to the underlying register (fp in this case) that makes
1838 the original assignment true.
1839 So the following insn will actually be
1840 decrementing fp by STARTING_FRAME_OFFSET. */
1841 emit_move_insn (virtual_stack_vars_rtx, hard_frame_pointer_rtx);
1843 #if ARG_POINTER_REGNUM != HARD_FRAME_POINTER_REGNUM
1844 if (fixed_regs[ARG_POINTER_REGNUM])
1846 #ifdef ELIMINABLE_REGS
1847 /* If the argument pointer can be eliminated in favor of the
1848 frame pointer, we don't need to restore it. We assume here
1849 that if such an elimination is present, it can always be used.
1850 This is the case on all known machines; if we don't make this
1851 assumption, we do unnecessary saving on many machines. */
1852 static const struct elims {const int from, to;} elim_regs[] = ELIMINABLE_REGS;
1853 size_t i;
1855 for (i = 0; i < ARRAY_SIZE (elim_regs); i++)
1856 if (elim_regs[i].from == ARG_POINTER_REGNUM
1857 && elim_regs[i].to == HARD_FRAME_POINTER_REGNUM)
1858 break;
1860 if (i == ARRAY_SIZE (elim_regs))
1861 #endif
1863 /* Now restore our arg pointer from the address at which it
1864 was saved in our stack frame. */
1865 emit_move_insn (virtual_incoming_args_rtx,
1866 copy_to_reg (get_arg_pointer_save_area (cfun)));
1869 #endif
1871 #ifdef HAVE_nonlocal_goto_receiver
1872 if (HAVE_nonlocal_goto_receiver)
1873 emit_insn (gen_nonlocal_goto_receiver ());
1874 #endif
1876 /* @@@ This is a kludge. Not all machine descriptions define a blockage
1877 insn, but we must not allow the code we just generated to be reordered
1878 by scheduling. Specifically, the update of the frame pointer must
1879 happen immediately, not later. So emit an ASM_INPUT to act as blockage
1880 insn. */
1881 emit_insn (gen_rtx_ASM_INPUT (VOIDmode, ""));
1884 /* Generate RTL for the automatic variable declaration DECL.
1885 (Other kinds of declarations are simply ignored if seen here.) */
1887 void
1888 expand_decl (tree decl)
1890 tree type;
1892 type = TREE_TYPE (decl);
1894 /* For a CONST_DECL, set mode, alignment, and sizes from those of the
1895 type in case this node is used in a reference. */
1896 if (TREE_CODE (decl) == CONST_DECL)
1898 DECL_MODE (decl) = TYPE_MODE (type);
1899 DECL_ALIGN (decl) = TYPE_ALIGN (type);
1900 DECL_SIZE (decl) = TYPE_SIZE (type);
1901 DECL_SIZE_UNIT (decl) = TYPE_SIZE_UNIT (type);
1902 return;
1905 /* Otherwise, only automatic variables need any expansion done. Static and
1906 external variables, and external functions, will be handled by
1907 `assemble_variable' (called from finish_decl). TYPE_DECL requires
1908 nothing. PARM_DECLs are handled in `assign_parms'. */
1909 if (TREE_CODE (decl) != VAR_DECL)
1910 return;
1912 if (TREE_STATIC (decl) || DECL_EXTERNAL (decl))
1913 return;
1915 /* Create the RTL representation for the variable. */
1917 if (type == error_mark_node)
1918 SET_DECL_RTL (decl, gen_rtx_MEM (BLKmode, const0_rtx));
1920 else if (DECL_SIZE (decl) == 0)
1921 /* Variable with incomplete type. */
1923 rtx x;
1924 if (DECL_INITIAL (decl) == 0)
1925 /* Error message was already done; now avoid a crash. */
1926 x = gen_rtx_MEM (BLKmode, const0_rtx);
1927 else
1928 /* An initializer is going to decide the size of this array.
1929 Until we know the size, represent its address with a reg. */
1930 x = gen_rtx_MEM (BLKmode, gen_reg_rtx (Pmode));
1932 set_mem_attributes (x, decl, 1);
1933 SET_DECL_RTL (decl, x);
1935 else if (use_register_for_decl (decl))
1937 /* Automatic variable that can go in a register. */
1938 int unsignedp = TYPE_UNSIGNED (type);
1939 enum machine_mode reg_mode
1940 = promote_mode (type, DECL_MODE (decl), &unsignedp, 0);
1942 SET_DECL_RTL (decl, gen_reg_rtx (reg_mode));
1944 /* Note if the object is a user variable. */
1945 if (!DECL_ARTIFICIAL (decl))
1947 mark_user_reg (DECL_RTL (decl));
1949 /* Trust user variables which have a pointer type to really
1950 be pointers. Do not trust compiler generated temporaries
1951 as our type system is totally busted as it relates to
1952 pointer arithmetic which translates into lots of compiler
1953 generated objects with pointer types, but which are not really
1954 pointers. */
1955 if (POINTER_TYPE_P (type))
1956 mark_reg_pointer (DECL_RTL (decl),
1957 TYPE_ALIGN (TREE_TYPE (TREE_TYPE (decl))));
1961 else if (TREE_CODE (DECL_SIZE_UNIT (decl)) == INTEGER_CST
1962 && ! (flag_stack_check && ! STACK_CHECK_BUILTIN
1963 && 0 < compare_tree_int (DECL_SIZE_UNIT (decl),
1964 STACK_CHECK_MAX_VAR_SIZE)))
1966 /* Variable of fixed size that goes on the stack. */
1967 rtx oldaddr = 0;
1968 rtx addr;
1969 rtx x;
1971 /* If we previously made RTL for this decl, it must be an array
1972 whose size was determined by the initializer.
1973 The old address was a register; set that register now
1974 to the proper address. */
1975 if (DECL_RTL_SET_P (decl))
1977 if (!MEM_P (DECL_RTL (decl))
1978 || !REG_P (XEXP (DECL_RTL (decl), 0)))
1979 abort ();
1980 oldaddr = XEXP (DECL_RTL (decl), 0);
1983 /* Set alignment we actually gave this decl. */
1984 DECL_ALIGN (decl) = (DECL_MODE (decl) == BLKmode ? BIGGEST_ALIGNMENT
1985 : GET_MODE_BITSIZE (DECL_MODE (decl)));
1986 DECL_USER_ALIGN (decl) = 0;
1988 x = assign_temp (decl, 1, 1, 1);
1989 set_mem_attributes (x, decl, 1);
1990 SET_DECL_RTL (decl, x);
1992 if (oldaddr)
1994 addr = force_operand (XEXP (DECL_RTL (decl), 0), oldaddr);
1995 if (addr != oldaddr)
1996 emit_move_insn (oldaddr, addr);
1999 else
2000 /* Dynamic-size object: must push space on the stack. */
2002 rtx address, size, x;
2004 /* Record the stack pointer on entry to block, if have
2005 not already done so. */
2006 do_pending_stack_adjust ();
2008 /* Compute the variable's size, in bytes. This will expand any
2009 needed SAVE_EXPRs for the first time. */
2010 size = expand_expr (DECL_SIZE_UNIT (decl), NULL_RTX, VOIDmode, 0);
2011 free_temp_slots ();
2013 /* Allocate space on the stack for the variable. Note that
2014 DECL_ALIGN says how the variable is to be aligned and we
2015 cannot use it to conclude anything about the alignment of
2016 the size. */
2017 address = allocate_dynamic_stack_space (size, NULL_RTX,
2018 TYPE_ALIGN (TREE_TYPE (decl)));
2020 /* Reference the variable indirect through that rtx. */
2021 x = gen_rtx_MEM (DECL_MODE (decl), address);
2022 set_mem_attributes (x, decl, 1);
2023 SET_DECL_RTL (decl, x);
2026 /* Indicate the alignment we actually gave this variable. */
2027 #ifdef STACK_BOUNDARY
2028 DECL_ALIGN (decl) = STACK_BOUNDARY;
2029 #else
2030 DECL_ALIGN (decl) = BIGGEST_ALIGNMENT;
2031 #endif
2032 DECL_USER_ALIGN (decl) = 0;
2036 /* Emit code to save the current value of stack. */
2038 expand_stack_save (void)
2040 rtx ret = NULL_RTX;
2042 do_pending_stack_adjust ();
2043 emit_stack_save (SAVE_BLOCK, &ret, NULL_RTX);
2044 return ret;
2047 /* Emit code to restore the current value of stack. */
2048 void
2049 expand_stack_restore (tree var)
2051 rtx sa = DECL_RTL (var);
2053 emit_stack_restore (SAVE_BLOCK, sa, NULL_RTX);
2056 /* Emit code to perform the initialization of a declaration DECL. */
2058 void
2059 expand_decl_init (tree decl)
2061 int was_used = TREE_USED (decl);
2063 /* If this is a CONST_DECL, we don't have to generate any code. Likewise
2064 for static decls. */
2065 if (TREE_CODE (decl) == CONST_DECL
2066 || TREE_STATIC (decl))
2067 return;
2069 /* Compute and store the initial value now. */
2071 push_temp_slots ();
2073 if (DECL_INITIAL (decl) == error_mark_node)
2075 enum tree_code code = TREE_CODE (TREE_TYPE (decl));
2077 if (code == INTEGER_TYPE || code == REAL_TYPE || code == ENUMERAL_TYPE
2078 || code == POINTER_TYPE || code == REFERENCE_TYPE)
2079 expand_assignment (decl, convert (TREE_TYPE (decl), integer_zero_node),
2082 else if (DECL_INITIAL (decl) && TREE_CODE (DECL_INITIAL (decl)) != TREE_LIST)
2084 emit_line_note (DECL_SOURCE_LOCATION (decl));
2085 expand_assignment (decl, DECL_INITIAL (decl), 0);
2088 /* Don't let the initialization count as "using" the variable. */
2089 TREE_USED (decl) = was_used;
2091 /* Free any temporaries we made while initializing the decl. */
2092 preserve_temp_slots (NULL_RTX);
2093 free_temp_slots ();
2094 pop_temp_slots ();
2098 /* DECL is an anonymous union. CLEANUP is a cleanup for DECL.
2099 DECL_ELTS is the list of elements that belong to DECL's type.
2100 In each, the TREE_VALUE is a VAR_DECL, and the TREE_PURPOSE a cleanup. */
2102 void
2103 expand_anon_union_decl (tree decl, tree cleanup ATTRIBUTE_UNUSED,
2104 tree decl_elts)
2106 rtx x;
2107 tree t;
2109 /* If any of the elements are addressable, so is the entire union. */
2110 for (t = decl_elts; t; t = TREE_CHAIN (t))
2111 if (TREE_ADDRESSABLE (TREE_VALUE (t)))
2113 TREE_ADDRESSABLE (decl) = 1;
2114 break;
2117 expand_decl (decl);
2118 x = DECL_RTL (decl);
2120 /* Go through the elements, assigning RTL to each. */
2121 for (t = decl_elts; t; t = TREE_CHAIN (t))
2123 tree decl_elt = TREE_VALUE (t);
2124 enum machine_mode mode = TYPE_MODE (TREE_TYPE (decl_elt));
2126 /* If any of the elements are addressable, so is the entire
2127 union. */
2128 if (TREE_USED (decl_elt))
2129 TREE_USED (decl) = 1;
2131 /* Propagate the union's alignment to the elements. */
2132 DECL_ALIGN (decl_elt) = DECL_ALIGN (decl);
2133 DECL_USER_ALIGN (decl_elt) = DECL_USER_ALIGN (decl);
2135 /* If the element has BLKmode and the union doesn't, the union is
2136 aligned such that the element doesn't need to have BLKmode, so
2137 change the element's mode to the appropriate one for its size. */
2138 if (mode == BLKmode && DECL_MODE (decl) != BLKmode)
2139 DECL_MODE (decl_elt) = mode
2140 = mode_for_size_tree (DECL_SIZE (decl_elt), MODE_INT, 1);
2142 /* (SUBREG (MEM ...)) at RTL generation time is invalid, so we
2143 instead create a new MEM rtx with the proper mode. */
2144 if (MEM_P (x))
2146 if (mode == GET_MODE (x))
2147 SET_DECL_RTL (decl_elt, x);
2148 else
2149 SET_DECL_RTL (decl_elt, adjust_address_nv (x, mode, 0));
2151 else if (REG_P (x))
2153 if (mode == GET_MODE (x))
2154 SET_DECL_RTL (decl_elt, x);
2155 else
2156 SET_DECL_RTL (decl_elt, gen_lowpart_SUBREG (mode, x));
2158 else
2159 abort ();
2163 /* Do the insertion of a case label into case_list. The labels are
2164 fed to us in descending order from the sorted vector of case labels used
2165 in the tree part of the middle end. So the list we construct is
2166 sorted in ascending order. */
2168 struct case_node *
2169 add_case_node (struct case_node *head, tree low, tree high, tree label)
2171 struct case_node *r;
2173 /* If there's no HIGH value, then this is not a case range; it's
2174 just a simple case label. But that's just a degenerate case
2175 range.
2176 If the bounds are equal, turn this into the one-value case. */
2177 if (!high || tree_int_cst_equal (low, high))
2178 high = low;
2180 /* Add this label to the chain. */
2181 r = ggc_alloc (sizeof (struct case_node));
2182 r->low = low;
2183 r->high = high;
2184 r->code_label = label;
2185 r->parent = r->left = NULL;
2186 r->right = head;
2187 return r;
2190 /* Maximum number of case bit tests. */
2191 #define MAX_CASE_BIT_TESTS 3
2193 /* By default, enable case bit tests on targets with ashlsi3. */
2194 #ifndef CASE_USE_BIT_TESTS
2195 #define CASE_USE_BIT_TESTS (ashl_optab->handlers[word_mode].insn_code \
2196 != CODE_FOR_nothing)
2197 #endif
2200 /* A case_bit_test represents a set of case nodes that may be
2201 selected from using a bit-wise comparison. HI and LO hold
2202 the integer to be tested against, LABEL contains the label
2203 to jump to upon success and BITS counts the number of case
2204 nodes handled by this test, typically the number of bits
2205 set in HI:LO. */
2207 struct case_bit_test
2209 HOST_WIDE_INT hi;
2210 HOST_WIDE_INT lo;
2211 rtx label;
2212 int bits;
2215 /* Determine whether "1 << x" is relatively cheap in word_mode. */
2217 static
2218 bool lshift_cheap_p (void)
2220 static bool init = false;
2221 static bool cheap = true;
2223 if (!init)
2225 rtx reg = gen_rtx_REG (word_mode, 10000);
2226 int cost = rtx_cost (gen_rtx_ASHIFT (word_mode, const1_rtx, reg), SET);
2227 cheap = cost < COSTS_N_INSNS (3);
2228 init = true;
2231 return cheap;
2234 /* Comparison function for qsort to order bit tests by decreasing
2235 number of case nodes, i.e. the node with the most cases gets
2236 tested first. */
2238 static int
2239 case_bit_test_cmp (const void *p1, const void *p2)
2241 const struct case_bit_test *d1 = p1;
2242 const struct case_bit_test *d2 = p2;
2244 return d2->bits - d1->bits;
2247 /* Expand a switch statement by a short sequence of bit-wise
2248 comparisons. "switch(x)" is effectively converted into
2249 "if ((1 << (x-MINVAL)) & CST)" where CST and MINVAL are
2250 integer constants.
2252 INDEX_EXPR is the value being switched on, which is of
2253 type INDEX_TYPE. MINVAL is the lowest case value of in
2254 the case nodes, of INDEX_TYPE type, and RANGE is highest
2255 value minus MINVAL, also of type INDEX_TYPE. NODES is
2256 the set of case nodes, and DEFAULT_LABEL is the label to
2257 branch to should none of the cases match.
2259 There *MUST* be MAX_CASE_BIT_TESTS or less unique case
2260 node targets. */
2262 static void
2263 emit_case_bit_tests (tree index_type, tree index_expr, tree minval,
2264 tree range, case_node_ptr nodes, rtx default_label)
2266 struct case_bit_test test[MAX_CASE_BIT_TESTS];
2267 enum machine_mode mode;
2268 rtx expr, index, label;
2269 unsigned int i,j,lo,hi;
2270 struct case_node *n;
2271 unsigned int count;
2273 count = 0;
2274 for (n = nodes; n; n = n->right)
2276 label = label_rtx (n->code_label);
2277 for (i = 0; i < count; i++)
2278 if (label == test[i].label)
2279 break;
2281 if (i == count)
2283 if (count >= MAX_CASE_BIT_TESTS)
2284 abort ();
2285 test[i].hi = 0;
2286 test[i].lo = 0;
2287 test[i].label = label;
2288 test[i].bits = 1;
2289 count++;
2291 else
2292 test[i].bits++;
2294 lo = tree_low_cst (fold (build2 (MINUS_EXPR, index_type,
2295 n->low, minval)), 1);
2296 hi = tree_low_cst (fold (build2 (MINUS_EXPR, index_type,
2297 n->high, minval)), 1);
2298 for (j = lo; j <= hi; j++)
2299 if (j >= HOST_BITS_PER_WIDE_INT)
2300 test[i].hi |= (HOST_WIDE_INT) 1 << (j - HOST_BITS_PER_INT);
2301 else
2302 test[i].lo |= (HOST_WIDE_INT) 1 << j;
2305 qsort (test, count, sizeof(*test), case_bit_test_cmp);
2307 index_expr = fold (build2 (MINUS_EXPR, index_type,
2308 convert (index_type, index_expr),
2309 convert (index_type, minval)));
2310 index = expand_expr (index_expr, NULL_RTX, VOIDmode, 0);
2311 do_pending_stack_adjust ();
2313 mode = TYPE_MODE (index_type);
2314 expr = expand_expr (range, NULL_RTX, VOIDmode, 0);
2315 emit_cmp_and_jump_insns (index, expr, GTU, NULL_RTX, mode, 1,
2316 default_label);
2318 index = convert_to_mode (word_mode, index, 0);
2319 index = expand_binop (word_mode, ashl_optab, const1_rtx,
2320 index, NULL_RTX, 1, OPTAB_WIDEN);
2322 for (i = 0; i < count; i++)
2324 expr = immed_double_const (test[i].lo, test[i].hi, word_mode);
2325 expr = expand_binop (word_mode, and_optab, index, expr,
2326 NULL_RTX, 1, OPTAB_WIDEN);
2327 emit_cmp_and_jump_insns (expr, const0_rtx, NE, NULL_RTX,
2328 word_mode, 1, test[i].label);
2331 emit_jump (default_label);
2334 #ifndef HAVE_casesi
2335 #define HAVE_casesi 0
2336 #endif
2338 #ifndef HAVE_tablejump
2339 #define HAVE_tablejump 0
2340 #endif
2342 /* Terminate a case (Pascal) or switch (C) statement
2343 in which ORIG_INDEX is the expression to be tested.
2344 If ORIG_TYPE is not NULL, it is the original ORIG_INDEX
2345 type as given in the source before any compiler conversions.
2346 Generate the code to test it and jump to the right place. */
2348 void
2349 expand_case (tree exp)
2351 tree minval = NULL_TREE, maxval = NULL_TREE, range = NULL_TREE;
2352 rtx default_label = 0;
2353 struct case_node *n, *m;
2354 unsigned int count, uniq;
2355 rtx index;
2356 rtx table_label;
2357 int ncases;
2358 rtx *labelvec;
2359 int i;
2360 rtx before_case, end, lab;
2362 tree vec = SWITCH_LABELS (exp);
2363 tree orig_type = TREE_TYPE (exp);
2364 tree index_expr = SWITCH_COND (exp);
2365 tree index_type = TREE_TYPE (index_expr);
2366 int unsignedp = TYPE_UNSIGNED (index_type);
2368 /* The insn after which the case dispatch should finally
2369 be emitted. Zero for a dummy. */
2370 rtx start;
2372 /* A list of case labels; it is first built as a list and it may then
2373 be rearranged into a nearly balanced binary tree. */
2374 struct case_node *case_list = 0;
2376 /* Label to jump to if no case matches. */
2377 tree default_label_decl = 0;
2379 /* The switch body is lowered in gimplify.c, we should never have
2380 switches with a non-NULL SWITCH_BODY here. */
2381 if (SWITCH_BODY (exp) || !SWITCH_LABELS (exp))
2382 abort ();
2384 for (i = TREE_VEC_LENGTH (vec); --i >= 0; )
2386 tree elt = TREE_VEC_ELT (vec, i);
2388 /* Handle default labels specially. */
2389 if (!CASE_HIGH (elt) && !CASE_LOW (elt))
2391 #ifdef ENABLE_CHECKING
2392 if (default_label_decl != 0)
2393 abort ();
2394 #endif
2395 default_label_decl = CASE_LABEL (elt);
2397 else
2398 case_list = add_case_node (case_list, CASE_LOW (elt), CASE_HIGH (elt),
2399 CASE_LABEL (elt));
2402 do_pending_stack_adjust ();
2404 /* Make sure start points to something that won't need any transformation
2405 before the end of this function. */
2406 if (!NOTE_P (get_last_insn ()))
2407 emit_note (NOTE_INSN_DELETED);
2409 start = get_last_insn ();
2411 /* An ERROR_MARK occurs for various reasons including invalid data type. */
2412 if (index_type != error_mark_node)
2414 /* If we don't have a default-label, create one here,
2415 after the body of the switch. */
2416 if (default_label_decl == 0)
2418 default_label_decl
2419 = build_decl (LABEL_DECL, NULL_TREE, NULL_TREE);
2420 expand_label (default_label_decl);
2422 default_label = label_rtx (default_label_decl);
2424 before_case = get_last_insn ();
2426 /* Get upper and lower bounds of case values.
2427 Also convert all the case values to the index expr's data type. */
2429 uniq = 0;
2430 count = 0;
2431 for (n = case_list; n; n = n->right)
2433 /* Check low and high label values are integers. */
2434 if (TREE_CODE (n->low) != INTEGER_CST)
2435 abort ();
2436 if (TREE_CODE (n->high) != INTEGER_CST)
2437 abort ();
2439 n->low = convert (index_type, n->low);
2440 n->high = convert (index_type, n->high);
2442 /* Count the elements and track the largest and smallest
2443 of them (treating them as signed even if they are not). */
2444 if (count++ == 0)
2446 minval = n->low;
2447 maxval = n->high;
2449 else
2451 if (INT_CST_LT (n->low, minval))
2452 minval = n->low;
2453 if (INT_CST_LT (maxval, n->high))
2454 maxval = n->high;
2456 /* A range counts double, since it requires two compares. */
2457 if (! tree_int_cst_equal (n->low, n->high))
2458 count++;
2460 /* Count the number of unique case node targets. */
2461 uniq++;
2462 lab = label_rtx (n->code_label);
2463 for (m = case_list; m != n; m = m->right)
2464 if (label_rtx (m->code_label) == lab)
2466 uniq--;
2467 break;
2471 /* Compute span of values. */
2472 if (count != 0)
2473 range = fold (build2 (MINUS_EXPR, index_type, maxval, minval));
2475 if (count == 0)
2477 expand_expr (index_expr, const0_rtx, VOIDmode, 0);
2478 emit_jump (default_label);
2481 /* Try implementing this switch statement by a short sequence of
2482 bit-wise comparisons. However, we let the binary-tree case
2483 below handle constant index expressions. */
2484 else if (CASE_USE_BIT_TESTS
2485 && ! TREE_CONSTANT (index_expr)
2486 && compare_tree_int (range, GET_MODE_BITSIZE (word_mode)) < 0
2487 && compare_tree_int (range, 0) > 0
2488 && lshift_cheap_p ()
2489 && ((uniq == 1 && count >= 3)
2490 || (uniq == 2 && count >= 5)
2491 || (uniq == 3 && count >= 6)))
2493 /* Optimize the case where all the case values fit in a
2494 word without having to subtract MINVAL. In this case,
2495 we can optimize away the subtraction. */
2496 if (compare_tree_int (minval, 0) > 0
2497 && compare_tree_int (maxval, GET_MODE_BITSIZE (word_mode)) < 0)
2499 minval = integer_zero_node;
2500 range = maxval;
2502 emit_case_bit_tests (index_type, index_expr, minval, range,
2503 case_list, default_label);
2506 /* If range of values is much bigger than number of values,
2507 make a sequence of conditional branches instead of a dispatch.
2508 If the switch-index is a constant, do it this way
2509 because we can optimize it. */
2511 else if (count < case_values_threshold ()
2512 || compare_tree_int (range,
2513 (optimize_size ? 3 : 10) * count) > 0
2514 /* RANGE may be signed, and really large ranges will show up
2515 as negative numbers. */
2516 || compare_tree_int (range, 0) < 0
2517 #ifndef ASM_OUTPUT_ADDR_DIFF_ELT
2518 || flag_pic
2519 #endif
2520 || TREE_CONSTANT (index_expr)
2521 /* If neither casesi or tablejump is available, we can
2522 only go this way. */
2523 || (!HAVE_casesi && !HAVE_tablejump))
2525 index = expand_expr (index_expr, NULL_RTX, VOIDmode, 0);
2527 /* If the index is a short or char that we do not have
2528 an insn to handle comparisons directly, convert it to
2529 a full integer now, rather than letting each comparison
2530 generate the conversion. */
2532 if (GET_MODE_CLASS (GET_MODE (index)) == MODE_INT
2533 && ! have_insn_for (COMPARE, GET_MODE (index)))
2535 enum machine_mode wider_mode;
2536 for (wider_mode = GET_MODE (index); wider_mode != VOIDmode;
2537 wider_mode = GET_MODE_WIDER_MODE (wider_mode))
2538 if (have_insn_for (COMPARE, wider_mode))
2540 index = convert_to_mode (wider_mode, index, unsignedp);
2541 break;
2545 do_pending_stack_adjust ();
2547 if (MEM_P (index))
2548 index = copy_to_reg (index);
2549 if (GET_CODE (index) == CONST_INT
2550 || TREE_CODE (index_expr) == INTEGER_CST)
2552 /* Make a tree node with the proper constant value
2553 if we don't already have one. */
2554 if (TREE_CODE (index_expr) != INTEGER_CST)
2556 index_expr
2557 = build_int_cst_wide (NULL_TREE, INTVAL (index),
2558 unsignedp || INTVAL (index) >= 0
2559 ? 0 : -1);
2560 index_expr = convert (index_type, index_expr);
2563 /* For constant index expressions we need only
2564 issue an unconditional branch to the appropriate
2565 target code. The job of removing any unreachable
2566 code is left to the optimization phase if the
2567 "-O" option is specified. */
2568 for (n = case_list; n; n = n->right)
2569 if (! tree_int_cst_lt (index_expr, n->low)
2570 && ! tree_int_cst_lt (n->high, index_expr))
2571 break;
2573 if (n)
2574 emit_jump (label_rtx (n->code_label));
2575 else
2576 emit_jump (default_label);
2578 else
2580 /* If the index expression is not constant we generate
2581 a binary decision tree to select the appropriate
2582 target code. This is done as follows:
2584 The list of cases is rearranged into a binary tree,
2585 nearly optimal assuming equal probability for each case.
2587 The tree is transformed into RTL, eliminating
2588 redundant test conditions at the same time.
2590 If program flow could reach the end of the
2591 decision tree an unconditional jump to the
2592 default code is emitted. */
2594 use_cost_table
2595 = (TREE_CODE (orig_type) != ENUMERAL_TYPE
2596 && estimate_case_costs (case_list));
2597 balance_case_nodes (&case_list, NULL);
2598 emit_case_nodes (index, case_list, default_label, index_type);
2599 emit_jump (default_label);
2602 else
2604 table_label = gen_label_rtx ();
2605 if (! try_casesi (index_type, index_expr, minval, range,
2606 table_label, default_label))
2608 index_type = integer_type_node;
2610 /* Index jumptables from zero for suitable values of
2611 minval to avoid a subtraction. */
2612 if (! optimize_size
2613 && compare_tree_int (minval, 0) > 0
2614 && compare_tree_int (minval, 3) < 0)
2616 minval = integer_zero_node;
2617 range = maxval;
2620 if (! try_tablejump (index_type, index_expr, minval, range,
2621 table_label, default_label))
2622 abort ();
2625 /* Get table of labels to jump to, in order of case index. */
2627 ncases = tree_low_cst (range, 0) + 1;
2628 labelvec = alloca (ncases * sizeof (rtx));
2629 memset (labelvec, 0, ncases * sizeof (rtx));
2631 for (n = case_list; n; n = n->right)
2633 /* Compute the low and high bounds relative to the minimum
2634 value since that should fit in a HOST_WIDE_INT while the
2635 actual values may not. */
2636 HOST_WIDE_INT i_low
2637 = tree_low_cst (fold (build2 (MINUS_EXPR, index_type,
2638 n->low, minval)), 1);
2639 HOST_WIDE_INT i_high
2640 = tree_low_cst (fold (build2 (MINUS_EXPR, index_type,
2641 n->high, minval)), 1);
2642 HOST_WIDE_INT i;
2644 for (i = i_low; i <= i_high; i ++)
2645 labelvec[i]
2646 = gen_rtx_LABEL_REF (Pmode, label_rtx (n->code_label));
2649 /* Fill in the gaps with the default. */
2650 for (i = 0; i < ncases; i++)
2651 if (labelvec[i] == 0)
2652 labelvec[i] = gen_rtx_LABEL_REF (Pmode, default_label);
2654 /* Output the table. */
2655 emit_label (table_label);
2657 if (CASE_VECTOR_PC_RELATIVE || flag_pic)
2658 emit_jump_insn (gen_rtx_ADDR_DIFF_VEC (CASE_VECTOR_MODE,
2659 gen_rtx_LABEL_REF (Pmode, table_label),
2660 gen_rtvec_v (ncases, labelvec),
2661 const0_rtx, const0_rtx));
2662 else
2663 emit_jump_insn (gen_rtx_ADDR_VEC (CASE_VECTOR_MODE,
2664 gen_rtvec_v (ncases, labelvec)));
2666 /* If the case insn drops through the table,
2667 after the table we must jump to the default-label.
2668 Otherwise record no drop-through after the table. */
2669 #ifdef CASE_DROPS_THROUGH
2670 emit_jump (default_label);
2671 #else
2672 emit_barrier ();
2673 #endif
2676 before_case = NEXT_INSN (before_case);
2677 end = get_last_insn ();
2678 if (squeeze_notes (&before_case, &end))
2679 abort ();
2680 reorder_insns (before_case, end, start);
2683 free_temp_slots ();
2686 /* Generate code to jump to LABEL if OP1 and OP2 are equal. */
2688 static void
2689 do_jump_if_equal (rtx op1, rtx op2, rtx label, int unsignedp)
2691 if (GET_CODE (op1) == CONST_INT && GET_CODE (op2) == CONST_INT)
2693 if (op1 == op2)
2694 emit_jump (label);
2696 else
2697 emit_cmp_and_jump_insns (op1, op2, EQ, NULL_RTX,
2698 (GET_MODE (op1) == VOIDmode
2699 ? GET_MODE (op2) : GET_MODE (op1)),
2700 unsignedp, label);
2703 /* Not all case values are encountered equally. This function
2704 uses a heuristic to weight case labels, in cases where that
2705 looks like a reasonable thing to do.
2707 Right now, all we try to guess is text, and we establish the
2708 following weights:
2710 chars above space: 16
2711 digits: 16
2712 default: 12
2713 space, punct: 8
2714 tab: 4
2715 newline: 2
2716 other "\" chars: 1
2717 remaining chars: 0
2719 If we find any cases in the switch that are not either -1 or in the range
2720 of valid ASCII characters, or are control characters other than those
2721 commonly used with "\", don't treat this switch scanning text.
2723 Return 1 if these nodes are suitable for cost estimation, otherwise
2724 return 0. */
2726 static int
2727 estimate_case_costs (case_node_ptr node)
2729 tree min_ascii = integer_minus_one_node;
2730 tree max_ascii = convert (TREE_TYPE (node->high),
2731 build_int_cst (NULL_TREE, 127));
2732 case_node_ptr n;
2733 int i;
2735 /* If we haven't already made the cost table, make it now. Note that the
2736 lower bound of the table is -1, not zero. */
2738 if (! cost_table_initialized)
2740 cost_table_initialized = 1;
2742 for (i = 0; i < 128; i++)
2744 if (ISALNUM (i))
2745 COST_TABLE (i) = 16;
2746 else if (ISPUNCT (i))
2747 COST_TABLE (i) = 8;
2748 else if (ISCNTRL (i))
2749 COST_TABLE (i) = -1;
2752 COST_TABLE (' ') = 8;
2753 COST_TABLE ('\t') = 4;
2754 COST_TABLE ('\0') = 4;
2755 COST_TABLE ('\n') = 2;
2756 COST_TABLE ('\f') = 1;
2757 COST_TABLE ('\v') = 1;
2758 COST_TABLE ('\b') = 1;
2761 /* See if all the case expressions look like text. It is text if the
2762 constant is >= -1 and the highest constant is <= 127. Do all comparisons
2763 as signed arithmetic since we don't want to ever access cost_table with a
2764 value less than -1. Also check that none of the constants in a range
2765 are strange control characters. */
2767 for (n = node; n; n = n->right)
2769 if ((INT_CST_LT (n->low, min_ascii)) || INT_CST_LT (max_ascii, n->high))
2770 return 0;
2772 for (i = (HOST_WIDE_INT) TREE_INT_CST_LOW (n->low);
2773 i <= (HOST_WIDE_INT) TREE_INT_CST_LOW (n->high); i++)
2774 if (COST_TABLE (i) < 0)
2775 return 0;
2778 /* All interesting values are within the range of interesting
2779 ASCII characters. */
2780 return 1;
2783 /* Take an ordered list of case nodes
2784 and transform them into a near optimal binary tree,
2785 on the assumption that any target code selection value is as
2786 likely as any other.
2788 The transformation is performed by splitting the ordered
2789 list into two equal sections plus a pivot. The parts are
2790 then attached to the pivot as left and right branches. Each
2791 branch is then transformed recursively. */
2793 static void
2794 balance_case_nodes (case_node_ptr *head, case_node_ptr parent)
2796 case_node_ptr np;
2798 np = *head;
2799 if (np)
2801 int cost = 0;
2802 int i = 0;
2803 int ranges = 0;
2804 case_node_ptr *npp;
2805 case_node_ptr left;
2807 /* Count the number of entries on branch. Also count the ranges. */
2809 while (np)
2811 if (!tree_int_cst_equal (np->low, np->high))
2813 ranges++;
2814 if (use_cost_table)
2815 cost += COST_TABLE (TREE_INT_CST_LOW (np->high));
2818 if (use_cost_table)
2819 cost += COST_TABLE (TREE_INT_CST_LOW (np->low));
2821 i++;
2822 np = np->right;
2825 if (i > 2)
2827 /* Split this list if it is long enough for that to help. */
2828 npp = head;
2829 left = *npp;
2830 if (use_cost_table)
2832 /* Find the place in the list that bisects the list's total cost,
2833 Here I gets half the total cost. */
2834 int n_moved = 0;
2835 i = (cost + 1) / 2;
2836 while (1)
2838 /* Skip nodes while their cost does not reach that amount. */
2839 if (!tree_int_cst_equal ((*npp)->low, (*npp)->high))
2840 i -= COST_TABLE (TREE_INT_CST_LOW ((*npp)->high));
2841 i -= COST_TABLE (TREE_INT_CST_LOW ((*npp)->low));
2842 if (i <= 0)
2843 break;
2844 npp = &(*npp)->right;
2845 n_moved += 1;
2847 if (n_moved == 0)
2849 /* Leave this branch lopsided, but optimize left-hand
2850 side and fill in `parent' fields for right-hand side. */
2851 np = *head;
2852 np->parent = parent;
2853 balance_case_nodes (&np->left, np);
2854 for (; np->right; np = np->right)
2855 np->right->parent = np;
2856 return;
2859 /* If there are just three nodes, split at the middle one. */
2860 else if (i == 3)
2861 npp = &(*npp)->right;
2862 else
2864 /* Find the place in the list that bisects the list's total cost,
2865 where ranges count as 2.
2866 Here I gets half the total cost. */
2867 i = (i + ranges + 1) / 2;
2868 while (1)
2870 /* Skip nodes while their cost does not reach that amount. */
2871 if (!tree_int_cst_equal ((*npp)->low, (*npp)->high))
2872 i--;
2873 i--;
2874 if (i <= 0)
2875 break;
2876 npp = &(*npp)->right;
2879 *head = np = *npp;
2880 *npp = 0;
2881 np->parent = parent;
2882 np->left = left;
2884 /* Optimize each of the two split parts. */
2885 balance_case_nodes (&np->left, np);
2886 balance_case_nodes (&np->right, np);
2888 else
2890 /* Else leave this branch as one level,
2891 but fill in `parent' fields. */
2892 np = *head;
2893 np->parent = parent;
2894 for (; np->right; np = np->right)
2895 np->right->parent = np;
2900 /* Search the parent sections of the case node tree
2901 to see if a test for the lower bound of NODE would be redundant.
2902 INDEX_TYPE is the type of the index expression.
2904 The instructions to generate the case decision tree are
2905 output in the same order as nodes are processed so it is
2906 known that if a parent node checks the range of the current
2907 node minus one that the current node is bounded at its lower
2908 span. Thus the test would be redundant. */
2910 static int
2911 node_has_low_bound (case_node_ptr node, tree index_type)
2913 tree low_minus_one;
2914 case_node_ptr pnode;
2916 /* If the lower bound of this node is the lowest value in the index type,
2917 we need not test it. */
2919 if (tree_int_cst_equal (node->low, TYPE_MIN_VALUE (index_type)))
2920 return 1;
2922 /* If this node has a left branch, the value at the left must be less
2923 than that at this node, so it cannot be bounded at the bottom and
2924 we need not bother testing any further. */
2926 if (node->left)
2927 return 0;
2929 low_minus_one = fold (build2 (MINUS_EXPR, TREE_TYPE (node->low),
2930 node->low, integer_one_node));
2932 /* If the subtraction above overflowed, we can't verify anything.
2933 Otherwise, look for a parent that tests our value - 1. */
2935 if (! tree_int_cst_lt (low_minus_one, node->low))
2936 return 0;
2938 for (pnode = node->parent; pnode; pnode = pnode->parent)
2939 if (tree_int_cst_equal (low_minus_one, pnode->high))
2940 return 1;
2942 return 0;
2945 /* Search the parent sections of the case node tree
2946 to see if a test for the upper bound of NODE would be redundant.
2947 INDEX_TYPE is the type of the index expression.
2949 The instructions to generate the case decision tree are
2950 output in the same order as nodes are processed so it is
2951 known that if a parent node checks the range of the current
2952 node plus one that the current node is bounded at its upper
2953 span. Thus the test would be redundant. */
2955 static int
2956 node_has_high_bound (case_node_ptr node, tree index_type)
2958 tree high_plus_one;
2959 case_node_ptr pnode;
2961 /* If there is no upper bound, obviously no test is needed. */
2963 if (TYPE_MAX_VALUE (index_type) == NULL)
2964 return 1;
2966 /* If the upper bound of this node is the highest value in the type
2967 of the index expression, we need not test against it. */
2969 if (tree_int_cst_equal (node->high, TYPE_MAX_VALUE (index_type)))
2970 return 1;
2972 /* If this node has a right branch, the value at the right must be greater
2973 than that at this node, so it cannot be bounded at the top and
2974 we need not bother testing any further. */
2976 if (node->right)
2977 return 0;
2979 high_plus_one = fold (build2 (PLUS_EXPR, TREE_TYPE (node->high),
2980 node->high, integer_one_node));
2982 /* If the addition above overflowed, we can't verify anything.
2983 Otherwise, look for a parent that tests our value + 1. */
2985 if (! tree_int_cst_lt (node->high, high_plus_one))
2986 return 0;
2988 for (pnode = node->parent; pnode; pnode = pnode->parent)
2989 if (tree_int_cst_equal (high_plus_one, pnode->low))
2990 return 1;
2992 return 0;
2995 /* Search the parent sections of the
2996 case node tree to see if both tests for the upper and lower
2997 bounds of NODE would be redundant. */
2999 static int
3000 node_is_bounded (case_node_ptr node, tree index_type)
3002 return (node_has_low_bound (node, index_type)
3003 && node_has_high_bound (node, index_type));
3006 /* Emit step-by-step code to select a case for the value of INDEX.
3007 The thus generated decision tree follows the form of the
3008 case-node binary tree NODE, whose nodes represent test conditions.
3009 INDEX_TYPE is the type of the index of the switch.
3011 Care is taken to prune redundant tests from the decision tree
3012 by detecting any boundary conditions already checked by
3013 emitted rtx. (See node_has_high_bound, node_has_low_bound
3014 and node_is_bounded, above.)
3016 Where the test conditions can be shown to be redundant we emit
3017 an unconditional jump to the target code. As a further
3018 optimization, the subordinates of a tree node are examined to
3019 check for bounded nodes. In this case conditional and/or
3020 unconditional jumps as a result of the boundary check for the
3021 current node are arranged to target the subordinates associated
3022 code for out of bound conditions on the current node.
3024 We can assume that when control reaches the code generated here,
3025 the index value has already been compared with the parents
3026 of this node, and determined to be on the same side of each parent
3027 as this node is. Thus, if this node tests for the value 51,
3028 and a parent tested for 52, we don't need to consider
3029 the possibility of a value greater than 51. If another parent
3030 tests for the value 50, then this node need not test anything. */
3032 static void
3033 emit_case_nodes (rtx index, case_node_ptr node, rtx default_label,
3034 tree index_type)
3036 /* If INDEX has an unsigned type, we must make unsigned branches. */
3037 int unsignedp = TYPE_UNSIGNED (index_type);
3038 enum machine_mode mode = GET_MODE (index);
3039 enum machine_mode imode = TYPE_MODE (index_type);
3041 /* See if our parents have already tested everything for us.
3042 If they have, emit an unconditional jump for this node. */
3043 if (node_is_bounded (node, index_type))
3044 emit_jump (label_rtx (node->code_label));
3046 else if (tree_int_cst_equal (node->low, node->high))
3048 /* Node is single valued. First see if the index expression matches
3049 this node and then check our children, if any. */
3051 do_jump_if_equal (index,
3052 convert_modes (mode, imode,
3053 expand_expr (node->low, NULL_RTX,
3054 VOIDmode, 0),
3055 unsignedp),
3056 label_rtx (node->code_label), unsignedp);
3058 if (node->right != 0 && node->left != 0)
3060 /* This node has children on both sides.
3061 Dispatch to one side or the other
3062 by comparing the index value with this node's value.
3063 If one subtree is bounded, check that one first,
3064 so we can avoid real branches in the tree. */
3066 if (node_is_bounded (node->right, index_type))
3068 emit_cmp_and_jump_insns (index,
3069 convert_modes
3070 (mode, imode,
3071 expand_expr (node->high, NULL_RTX,
3072 VOIDmode, 0),
3073 unsignedp),
3074 GT, NULL_RTX, mode, unsignedp,
3075 label_rtx (node->right->code_label));
3076 emit_case_nodes (index, node->left, default_label, index_type);
3079 else if (node_is_bounded (node->left, index_type))
3081 emit_cmp_and_jump_insns (index,
3082 convert_modes
3083 (mode, imode,
3084 expand_expr (node->high, NULL_RTX,
3085 VOIDmode, 0),
3086 unsignedp),
3087 LT, NULL_RTX, mode, unsignedp,
3088 label_rtx (node->left->code_label));
3089 emit_case_nodes (index, node->right, default_label, index_type);
3092 /* If both children are single-valued cases with no
3093 children, finish up all the work. This way, we can save
3094 one ordered comparison. */
3095 else if (tree_int_cst_equal (node->right->low, node->right->high)
3096 && node->right->left == 0
3097 && node->right->right == 0
3098 && tree_int_cst_equal (node->left->low, node->left->high)
3099 && node->left->left == 0
3100 && node->left->right == 0)
3102 /* Neither node is bounded. First distinguish the two sides;
3103 then emit the code for one side at a time. */
3105 /* See if the value matches what the right hand side
3106 wants. */
3107 do_jump_if_equal (index,
3108 convert_modes (mode, imode,
3109 expand_expr (node->right->low,
3110 NULL_RTX,
3111 VOIDmode, 0),
3112 unsignedp),
3113 label_rtx (node->right->code_label),
3114 unsignedp);
3116 /* See if the value matches what the left hand side
3117 wants. */
3118 do_jump_if_equal (index,
3119 convert_modes (mode, imode,
3120 expand_expr (node->left->low,
3121 NULL_RTX,
3122 VOIDmode, 0),
3123 unsignedp),
3124 label_rtx (node->left->code_label),
3125 unsignedp);
3128 else
3130 /* Neither node is bounded. First distinguish the two sides;
3131 then emit the code for one side at a time. */
3133 tree test_label = build_decl (LABEL_DECL, NULL_TREE, NULL_TREE);
3135 /* See if the value is on the right. */
3136 emit_cmp_and_jump_insns (index,
3137 convert_modes
3138 (mode, imode,
3139 expand_expr (node->high, NULL_RTX,
3140 VOIDmode, 0),
3141 unsignedp),
3142 GT, NULL_RTX, mode, unsignedp,
3143 label_rtx (test_label));
3145 /* Value must be on the left.
3146 Handle the left-hand subtree. */
3147 emit_case_nodes (index, node->left, default_label, index_type);
3148 /* If left-hand subtree does nothing,
3149 go to default. */
3150 emit_jump (default_label);
3152 /* Code branches here for the right-hand subtree. */
3153 expand_label (test_label);
3154 emit_case_nodes (index, node->right, default_label, index_type);
3158 else if (node->right != 0 && node->left == 0)
3160 /* Here we have a right child but no left so we issue conditional
3161 branch to default and process the right child.
3163 Omit the conditional branch to default if we it avoid only one
3164 right child; it costs too much space to save so little time. */
3166 if (node->right->right || node->right->left
3167 || !tree_int_cst_equal (node->right->low, node->right->high))
3169 if (!node_has_low_bound (node, index_type))
3171 emit_cmp_and_jump_insns (index,
3172 convert_modes
3173 (mode, imode,
3174 expand_expr (node->high, NULL_RTX,
3175 VOIDmode, 0),
3176 unsignedp),
3177 LT, NULL_RTX, mode, unsignedp,
3178 default_label);
3181 emit_case_nodes (index, node->right, default_label, index_type);
3183 else
3184 /* We cannot process node->right normally
3185 since we haven't ruled out the numbers less than
3186 this node's value. So handle node->right explicitly. */
3187 do_jump_if_equal (index,
3188 convert_modes
3189 (mode, imode,
3190 expand_expr (node->right->low, NULL_RTX,
3191 VOIDmode, 0),
3192 unsignedp),
3193 label_rtx (node->right->code_label), unsignedp);
3196 else if (node->right == 0 && node->left != 0)
3198 /* Just one subtree, on the left. */
3199 if (node->left->left || node->left->right
3200 || !tree_int_cst_equal (node->left->low, node->left->high))
3202 if (!node_has_high_bound (node, index_type))
3204 emit_cmp_and_jump_insns (index,
3205 convert_modes
3206 (mode, imode,
3207 expand_expr (node->high, NULL_RTX,
3208 VOIDmode, 0),
3209 unsignedp),
3210 GT, NULL_RTX, mode, unsignedp,
3211 default_label);
3214 emit_case_nodes (index, node->left, default_label, index_type);
3216 else
3217 /* We cannot process node->left normally
3218 since we haven't ruled out the numbers less than
3219 this node's value. So handle node->left explicitly. */
3220 do_jump_if_equal (index,
3221 convert_modes
3222 (mode, imode,
3223 expand_expr (node->left->low, NULL_RTX,
3224 VOIDmode, 0),
3225 unsignedp),
3226 label_rtx (node->left->code_label), unsignedp);
3229 else
3231 /* Node is a range. These cases are very similar to those for a single
3232 value, except that we do not start by testing whether this node
3233 is the one to branch to. */
3235 if (node->right != 0 && node->left != 0)
3237 /* Node has subtrees on both sides.
3238 If the right-hand subtree is bounded,
3239 test for it first, since we can go straight there.
3240 Otherwise, we need to make a branch in the control structure,
3241 then handle the two subtrees. */
3242 tree test_label = 0;
3244 if (node_is_bounded (node->right, index_type))
3245 /* Right hand node is fully bounded so we can eliminate any
3246 testing and branch directly to the target code. */
3247 emit_cmp_and_jump_insns (index,
3248 convert_modes
3249 (mode, imode,
3250 expand_expr (node->high, NULL_RTX,
3251 VOIDmode, 0),
3252 unsignedp),
3253 GT, NULL_RTX, mode, unsignedp,
3254 label_rtx (node->right->code_label));
3255 else
3257 /* Right hand node requires testing.
3258 Branch to a label where we will handle it later. */
3260 test_label = build_decl (LABEL_DECL, NULL_TREE, NULL_TREE);
3261 emit_cmp_and_jump_insns (index,
3262 convert_modes
3263 (mode, imode,
3264 expand_expr (node->high, NULL_RTX,
3265 VOIDmode, 0),
3266 unsignedp),
3267 GT, NULL_RTX, mode, unsignedp,
3268 label_rtx (test_label));
3271 /* Value belongs to this node or to the left-hand subtree. */
3273 emit_cmp_and_jump_insns (index,
3274 convert_modes
3275 (mode, imode,
3276 expand_expr (node->low, NULL_RTX,
3277 VOIDmode, 0),
3278 unsignedp),
3279 GE, NULL_RTX, mode, unsignedp,
3280 label_rtx (node->code_label));
3282 /* Handle the left-hand subtree. */
3283 emit_case_nodes (index, node->left, default_label, index_type);
3285 /* If right node had to be handled later, do that now. */
3287 if (test_label)
3289 /* If the left-hand subtree fell through,
3290 don't let it fall into the right-hand subtree. */
3291 emit_jump (default_label);
3293 expand_label (test_label);
3294 emit_case_nodes (index, node->right, default_label, index_type);
3298 else if (node->right != 0 && node->left == 0)
3300 /* Deal with values to the left of this node,
3301 if they are possible. */
3302 if (!node_has_low_bound (node, index_type))
3304 emit_cmp_and_jump_insns (index,
3305 convert_modes
3306 (mode, imode,
3307 expand_expr (node->low, NULL_RTX,
3308 VOIDmode, 0),
3309 unsignedp),
3310 LT, NULL_RTX, mode, unsignedp,
3311 default_label);
3314 /* Value belongs to this node or to the right-hand subtree. */
3316 emit_cmp_and_jump_insns (index,
3317 convert_modes
3318 (mode, imode,
3319 expand_expr (node->high, NULL_RTX,
3320 VOIDmode, 0),
3321 unsignedp),
3322 LE, NULL_RTX, mode, unsignedp,
3323 label_rtx (node->code_label));
3325 emit_case_nodes (index, node->right, default_label, index_type);
3328 else if (node->right == 0 && node->left != 0)
3330 /* Deal with values to the right of this node,
3331 if they are possible. */
3332 if (!node_has_high_bound (node, index_type))
3334 emit_cmp_and_jump_insns (index,
3335 convert_modes
3336 (mode, imode,
3337 expand_expr (node->high, NULL_RTX,
3338 VOIDmode, 0),
3339 unsignedp),
3340 GT, NULL_RTX, mode, unsignedp,
3341 default_label);
3344 /* Value belongs to this node or to the left-hand subtree. */
3346 emit_cmp_and_jump_insns (index,
3347 convert_modes
3348 (mode, imode,
3349 expand_expr (node->low, NULL_RTX,
3350 VOIDmode, 0),
3351 unsignedp),
3352 GE, NULL_RTX, mode, unsignedp,
3353 label_rtx (node->code_label));
3355 emit_case_nodes (index, node->left, default_label, index_type);
3358 else
3360 /* Node has no children so we check low and high bounds to remove
3361 redundant tests. Only one of the bounds can exist,
3362 since otherwise this node is bounded--a case tested already. */
3363 int high_bound = node_has_high_bound (node, index_type);
3364 int low_bound = node_has_low_bound (node, index_type);
3366 if (!high_bound && low_bound)
3368 emit_cmp_and_jump_insns (index,
3369 convert_modes
3370 (mode, imode,
3371 expand_expr (node->high, NULL_RTX,
3372 VOIDmode, 0),
3373 unsignedp),
3374 GT, NULL_RTX, mode, unsignedp,
3375 default_label);
3378 else if (!low_bound && high_bound)
3380 emit_cmp_and_jump_insns (index,
3381 convert_modes
3382 (mode, imode,
3383 expand_expr (node->low, NULL_RTX,
3384 VOIDmode, 0),
3385 unsignedp),
3386 LT, NULL_RTX, mode, unsignedp,
3387 default_label);
3389 else if (!low_bound && !high_bound)
3391 /* Widen LOW and HIGH to the same width as INDEX. */
3392 tree type = lang_hooks.types.type_for_mode (mode, unsignedp);
3393 tree low = build1 (CONVERT_EXPR, type, node->low);
3394 tree high = build1 (CONVERT_EXPR, type, node->high);
3395 rtx low_rtx, new_index, new_bound;
3397 /* Instead of doing two branches, emit one unsigned branch for
3398 (index-low) > (high-low). */
3399 low_rtx = expand_expr (low, NULL_RTX, mode, 0);
3400 new_index = expand_simple_binop (mode, MINUS, index, low_rtx,
3401 NULL_RTX, unsignedp,
3402 OPTAB_WIDEN);
3403 new_bound = expand_expr (fold (build2 (MINUS_EXPR, type,
3404 high, low)),
3405 NULL_RTX, mode, 0);
3407 emit_cmp_and_jump_insns (new_index, new_bound, GT, NULL_RTX,
3408 mode, 1, default_label);
3411 emit_jump (label_rtx (node->code_label));