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1.1 ! root 1: /* Expands front end tree to back end RTL for GNU C-Compiler ! 2: Copyright (C) 1987, 1988, 1989, 1992 Free Software Foundation, Inc. ! 3: ! 4: This file is part of GNU CC. ! 5: ! 6: GNU CC is free software; you can redistribute it and/or modify ! 7: it under the terms of the GNU General Public License as published by ! 8: the Free Software Foundation; either version 2, or (at your option) ! 9: any later version. ! 10: ! 11: GNU CC is distributed in the hope that it will be useful, ! 12: but WITHOUT ANY WARRANTY; without even the implied warranty of ! 13: MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the ! 14: GNU General Public License for more details. ! 15: ! 16: You should have received a copy of the GNU General Public License ! 17: along with GNU CC; see the file COPYING. If not, write to ! 18: the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA. */ ! 19: ! 20: ! 21: /* This file handles the generation of rtl code from tree structure ! 22: above the level of expressions, using subroutines in exp*.c and emit-rtl.c. ! 23: It also creates the rtl expressions for parameters and auto variables ! 24: and has full responsibility for allocating stack slots. ! 25: ! 26: The functions whose names start with `expand_' are called by the ! 27: parser to generate RTL instructions for various kinds of constructs. ! 28: ! 29: Some control and binding constructs require calling several such ! 30: functions at different times. For example, a simple if-then ! 31: is expanded by calling `expand_start_cond' (with the condition-expression ! 32: as argument) before parsing the then-clause and calling `expand_end_cond' ! 33: after parsing the then-clause. */ ! 34: ! 35: #include "config.h" ! 36: ! 37: #include <stdio.h> ! 38: #include <ctype.h> ! 39: ! 40: #include "rtl.h" ! 41: #include "tree.h" ! 42: #include "flags.h" ! 43: #include "function.h" ! 44: #include "insn-flags.h" ! 45: #include "insn-config.h" ! 46: #include "insn-codes.h" ! 47: #include "expr.h" ! 48: #include "hard-reg-set.h" ! 49: #include "obstack.h" ! 50: #include "loop.h" ! 51: #include "recog.h" ! 52: ! 53: #define obstack_chunk_alloc xmalloc ! 54: #define obstack_chunk_free free ! 55: struct obstack stmt_obstack; ! 56: ! 57: extern int xmalloc (); ! 58: extern void free (); ! 59: ! 60: /* Filename and line number of last line-number note, ! 61: whether we actually emitted it or not. */ ! 62: char *emit_filename; ! 63: int emit_lineno; ! 64: ! 65: /* Nonzero if within a ({...}) grouping, in which case we must ! 66: always compute a value for each expr-stmt in case it is the last one. */ ! 67: ! 68: int expr_stmts_for_value; ! 69: ! 70: /* Each time we expand an expression-statement, ! 71: record the expr's type and its RTL value here. */ ! 72: ! 73: static tree last_expr_type; ! 74: static rtx last_expr_value; ! 75: ! 76: /* Number of binding contours started so far in this function. */ ! 77: ! 78: int block_start_count; ! 79: ! 80: /* Nonzero if function being compiled needs to ! 81: return the address of where it has put a structure value. */ ! 82: ! 83: extern int current_function_returns_pcc_struct; ! 84: ! 85: /* Label that will go on parm cleanup code, if any. ! 86: Jumping to this label runs cleanup code for parameters, if ! 87: such code must be run. Following this code is the logical return label. */ ! 88: ! 89: extern rtx cleanup_label; ! 90: ! 91: /* Label that will go on function epilogue. ! 92: Jumping to this label serves as a "return" instruction ! 93: on machines which require execution of the epilogue on all returns. */ ! 94: ! 95: extern rtx return_label; ! 96: ! 97: /* List (chain of EXPR_LISTs) of pseudo-regs of SAVE_EXPRs. ! 98: So we can mark them all live at the end of the function, if nonopt. */ ! 99: extern rtx save_expr_regs; ! 100: ! 101: /* Offset to end of allocated area of stack frame. ! 102: If stack grows down, this is the address of the last stack slot allocated. ! 103: If stack grows up, this is the address for the next slot. */ ! 104: extern int frame_offset; ! 105: ! 106: /* Label to jump back to for tail recursion, or 0 if we have ! 107: not yet needed one for this function. */ ! 108: extern rtx tail_recursion_label; ! 109: ! 110: /* Place after which to insert the tail_recursion_label if we need one. */ ! 111: extern rtx tail_recursion_reentry; ! 112: ! 113: /* Location at which to save the argument pointer if it will need to be ! 114: referenced. There are two cases where this is done: if nonlocal gotos ! 115: exist, or if vars whose is an offset from the argument pointer will be ! 116: needed by inner routines. */ ! 117: ! 118: extern rtx arg_pointer_save_area; ! 119: ! 120: /* Chain of all RTL_EXPRs that have insns in them. */ ! 121: extern tree rtl_expr_chain; ! 122: ! 123: #if 0 /* Turned off because 0 seems to work just as well. */ ! 124: /* Cleanup lists are required for binding levels regardless of whether ! 125: that binding level has cleanups or not. This node serves as the ! 126: cleanup list whenever an empty list is required. */ ! 127: static tree empty_cleanup_list; ! 128: #endif ! 129: ! 130: /* Functions and data structures for expanding case statements. */ ! 131: ! 132: /* Case label structure, used to hold info on labels within case ! 133: statements. We handle "range" labels; for a single-value label ! 134: as in C, the high and low limits are the same. ! 135: ! 136: A chain of case nodes is initially maintained via the RIGHT fields ! 137: in the nodes. Nodes with higher case values are later in the list. ! 138: ! 139: Switch statements can be output in one of two forms. A branch table ! 140: is used if there are more than a few labels and the labels are dense ! 141: within the range between the smallest and largest case value. If a ! 142: branch table is used, no further manipulations are done with the case ! 143: node chain. ! 144: ! 145: The alternative to the use of a branch table is to generate a series ! 146: of compare and jump insns. When that is done, we use the LEFT, RIGHT, ! 147: and PARENT fields to hold a binary tree. Initially the tree is ! 148: totally unbalanced, with everything on the right. We balance the tree ! 149: with nodes on the left having lower case values than the parent ! 150: and nodes on the right having higher values. We then output the tree ! 151: in order. */ ! 152: ! 153: struct case_node ! 154: { ! 155: struct case_node *left; /* Left son in binary tree */ ! 156: struct case_node *right; /* Right son in binary tree; also node chain */ ! 157: struct case_node *parent; /* Parent of node in binary tree */ ! 158: tree low; /* Lowest index value for this label */ ! 159: tree high; /* Highest index value for this label */ ! 160: tree code_label; /* Label to jump to when node matches */ ! 161: }; ! 162: ! 163: typedef struct case_node case_node; ! 164: typedef struct case_node *case_node_ptr; ! 165: ! 166: /* These are used by estimate_case_costs and balance_case_nodes. */ ! 167: ! 168: /* This must be a signed type, and non-ANSI compilers lack signed char. */ ! 169: static short *cost_table; ! 170: static int use_cost_table; ! 171: ! 172: static int estimate_case_costs (); ! 173: static void balance_case_nodes (); ! 174: static void emit_case_nodes (); ! 175: static void group_case_nodes (); ! 176: static void emit_jump_if_reachable (); ! 177: ! 178: static int warn_if_unused_value (); ! 179: static void expand_goto_internal (); ! 180: static int expand_fixup (); ! 181: void fixup_gotos (); ! 182: void free_temp_slots (); ! 183: static void expand_cleanups (); ! 184: static void fixup_cleanups (); ! 185: static void expand_null_return_1 (); ! 186: static int tail_recursion_args (); ! 187: static void do_jump_if_equal (); ! 188: ! 189: /* Stack of control and binding constructs we are currently inside. ! 190: ! 191: These constructs begin when you call `expand_start_WHATEVER' ! 192: and end when you call `expand_end_WHATEVER'. This stack records ! 193: info about how the construct began that tells the end-function ! 194: what to do. It also may provide information about the construct ! 195: to alter the behavior of other constructs within the body. ! 196: For example, they may affect the behavior of C `break' and `continue'. ! 197: ! 198: Each construct gets one `struct nesting' object. ! 199: All of these objects are chained through the `all' field. ! 200: `nesting_stack' points to the first object (innermost construct). ! 201: The position of an entry on `nesting_stack' is in its `depth' field. ! 202: ! 203: Each type of construct has its own individual stack. ! 204: For example, loops have `loop_stack'. Each object points to the ! 205: next object of the same type through the `next' field. ! 206: ! 207: Some constructs are visible to `break' exit-statements and others ! 208: are not. Which constructs are visible depends on the language. ! 209: Therefore, the data structure allows each construct to be visible ! 210: or not, according to the args given when the construct is started. ! 211: The construct is visible if the `exit_label' field is non-null. ! 212: In that case, the value should be a CODE_LABEL rtx. */ ! 213: ! 214: struct nesting ! 215: { ! 216: struct nesting *all; ! 217: struct nesting *next; ! 218: int depth; ! 219: rtx exit_label; ! 220: union ! 221: { ! 222: /* For conds (if-then and if-then-else statements). */ ! 223: struct ! 224: { ! 225: /* Label for the end of the if construct. ! 226: There is none if EXITFLAG was not set ! 227: and no `else' has been seen yet. */ ! 228: rtx endif_label; ! 229: /* Label for the end of this alternative. ! 230: This may be the end of the if or the next else/elseif. */ ! 231: rtx next_label; ! 232: } cond; ! 233: /* For loops. */ ! 234: struct ! 235: { ! 236: /* Label at the top of the loop; place to loop back to. */ ! 237: rtx start_label; ! 238: /* Label at the end of the whole construct. */ ! 239: rtx end_label; ! 240: /* Label for `continue' statement to jump to; ! 241: this is in front of the stepper of the loop. */ ! 242: rtx continue_label; ! 243: } loop; ! 244: /* For variable binding contours. */ ! 245: struct ! 246: { ! 247: /* Sequence number of this binding contour within the function, ! 248: in order of entry. */ ! 249: int block_start_count; ! 250: /* Nonzero => value to restore stack to on exit. */ ! 251: rtx stack_level; ! 252: /* The NOTE that starts this contour. ! 253: Used by expand_goto to check whether the destination ! 254: is within each contour or not. */ ! 255: rtx first_insn; ! 256: /* Innermost containing binding contour that has a stack level. */ ! 257: struct nesting *innermost_stack_block; ! 258: /* List of cleanups to be run on exit from this contour. ! 259: This is a list of expressions to be evaluated. ! 260: The TREE_PURPOSE of each link is the ..._DECL node ! 261: which the cleanup pertains to. */ ! 262: tree cleanups; ! 263: /* List of cleanup-lists of blocks containing this block, ! 264: as they were at the locus where this block appears. ! 265: There is an element for each containing block, ! 266: ordered innermost containing block first. ! 267: The tail of this list can be 0 (was empty_cleanup_list), ! 268: if all remaining elements would be empty lists. ! 269: The element's TREE_VALUE is the cleanup-list of that block, ! 270: which may be null. */ ! 271: tree outer_cleanups; ! 272: /* Chain of labels defined inside this binding contour. ! 273: For contours that have stack levels or cleanups. */ ! 274: struct label_chain *label_chain; ! 275: /* Number of function calls seen, as of start of this block. */ ! 276: int function_call_count; ! 277: } block; ! 278: /* For switch (C) or case (Pascal) statements, ! 279: and also for dummies (see `expand_start_case_dummy'). */ ! 280: struct ! 281: { ! 282: /* The insn after which the case dispatch should finally ! 283: be emitted. Zero for a dummy. */ ! 284: rtx start; ! 285: /* A list of case labels, kept in ascending order by value ! 286: as the list is built. ! 287: During expand_end_case, this list may be rearranged into a ! 288: nearly balanced binary tree. */ ! 289: struct case_node *case_list; ! 290: /* Label to jump to if no case matches. */ ! 291: tree default_label; ! 292: /* The expression to be dispatched on. */ ! 293: tree index_expr; ! 294: /* Type that INDEX_EXPR should be converted to. */ ! 295: tree nominal_type; ! 296: /* Number of range exprs in case statement. */ ! 297: int num_ranges; ! 298: /* Name of this kind of statement, for warnings. */ ! 299: char *printname; ! 300: /* Nonzero if a case label has been seen in this case stmt. */ ! 301: char seenlabel; ! 302: } case_stmt; ! 303: /* For exception contours. */ ! 304: struct ! 305: { ! 306: /* List of exceptions raised. This is a TREE_LIST ! 307: of whatever you want. */ ! 308: tree raised; ! 309: /* List of exceptions caught. This is also a TREE_LIST ! 310: of whatever you want. As a special case, it has the ! 311: value `void_type_node' if it handles default exceptions. */ ! 312: tree handled; ! 313: ! 314: /* First insn of TRY block, in case resumptive model is needed. */ ! 315: rtx first_insn; ! 316: /* Label for the catch clauses. */ ! 317: rtx except_label; ! 318: /* Label for unhandled exceptions. */ ! 319: rtx unhandled_label; ! 320: /* Label at the end of whole construct. */ ! 321: rtx after_label; ! 322: /* Label which "escapes" the exception construct. ! 323: Like EXIT_LABEL for BREAK construct, but for exceptions. */ ! 324: rtx escape_label; ! 325: } except_stmt; ! 326: } data; ! 327: }; ! 328: ! 329: /* Chain of all pending binding contours. */ ! 330: struct nesting *block_stack; ! 331: ! 332: /* Chain of all pending binding contours that restore stack levels ! 333: or have cleanups. */ ! 334: struct nesting *stack_block_stack; ! 335: ! 336: /* Chain of all pending conditional statements. */ ! 337: struct nesting *cond_stack; ! 338: ! 339: /* Chain of all pending loops. */ ! 340: struct nesting *loop_stack; ! 341: ! 342: /* Chain of all pending case or switch statements. */ ! 343: struct nesting *case_stack; ! 344: ! 345: /* Chain of all pending exception contours. */ ! 346: struct nesting *except_stack; ! 347: ! 348: /* Separate chain including all of the above, ! 349: chained through the `all' field. */ ! 350: struct nesting *nesting_stack; ! 351: ! 352: /* Number of entries on nesting_stack now. */ ! 353: int nesting_depth; ! 354: ! 355: /* Allocate and return a new `struct nesting'. */ ! 356: ! 357: #define ALLOC_NESTING() \ ! 358: (struct nesting *) obstack_alloc (&stmt_obstack, sizeof (struct nesting)) ! 359: ! 360: /* Pop one of the sub-stacks, such as `loop_stack' or `cond_stack'; ! 361: and pop off `nesting_stack' down to the same level. */ ! 362: ! 363: #define POPSTACK(STACK) \ ! 364: do { int initial_depth = nesting_stack->depth; \ ! 365: do { struct nesting *this = STACK; \ ! 366: STACK = this->next; \ ! 367: nesting_stack = this->all; \ ! 368: nesting_depth = this->depth; \ ! 369: obstack_free (&stmt_obstack, this); } \ ! 370: while (nesting_depth > initial_depth); } while (0) ! 371: ! 372: /* In some cases it is impossible to generate code for a forward goto ! 373: until the label definition is seen. This happens when it may be necessary ! 374: for the goto to reset the stack pointer: we don't yet know how to do that. ! 375: So expand_goto puts an entry on this fixup list. ! 376: Each time a binding contour that resets the stack is exited, ! 377: we check each fixup. ! 378: If the target label has now been defined, we can insert the proper code. */ ! 379: ! 380: struct goto_fixup ! 381: { ! 382: /* Points to following fixup. */ ! 383: struct goto_fixup *next; ! 384: /* Points to the insn before the jump insn. ! 385: If more code must be inserted, it goes after this insn. */ ! 386: rtx before_jump; ! 387: /* The LABEL_DECL that this jump is jumping to, or 0 ! 388: for break, continue or return. */ ! 389: tree target; ! 390: /* The CODE_LABEL rtx that this is jumping to. */ ! 391: rtx target_rtl; ! 392: /* Number of binding contours started in current function ! 393: before the label reference. */ ! 394: int block_start_count; ! 395: /* The outermost stack level that should be restored for this jump. ! 396: Each time a binding contour that resets the stack is exited, ! 397: if the target label is *not* yet defined, this slot is updated. */ ! 398: rtx stack_level; ! 399: /* List of lists of cleanup expressions to be run by this goto. ! 400: There is one element for each block that this goto is within. ! 401: The tail of this list can be 0 (was empty_cleanup_list), ! 402: if all remaining elements would be empty. ! 403: The TREE_VALUE contains the cleanup list of that block as of the ! 404: time this goto was seen. ! 405: The TREE_ADDRESSABLE flag is 1 for a block that has been exited. */ ! 406: tree cleanup_list_list; ! 407: }; ! 408: ! 409: static struct goto_fixup *goto_fixup_chain; ! 410: ! 411: /* Within any binding contour that must restore a stack level, ! 412: all labels are recorded with a chain of these structures. */ ! 413: ! 414: struct label_chain ! 415: { ! 416: /* Points to following fixup. */ ! 417: struct label_chain *next; ! 418: tree label; ! 419: }; ! 420: ! 421: void ! 422: init_stmt () ! 423: { ! 424: gcc_obstack_init (&stmt_obstack); ! 425: #if 0 ! 426: empty_cleanup_list = build_tree_list (NULL_TREE, NULL_TREE); ! 427: #endif ! 428: } ! 429: ! 430: void ! 431: init_stmt_for_function () ! 432: { ! 433: /* We are not currently within any block, conditional, loop or case. */ ! 434: block_stack = 0; ! 435: loop_stack = 0; ! 436: case_stack = 0; ! 437: cond_stack = 0; ! 438: nesting_stack = 0; ! 439: nesting_depth = 0; ! 440: ! 441: block_start_count = 0; ! 442: ! 443: /* No gotos have been expanded yet. */ ! 444: goto_fixup_chain = 0; ! 445: ! 446: /* We are not processing a ({...}) grouping. */ ! 447: expr_stmts_for_value = 0; ! 448: last_expr_type = 0; ! 449: } ! 450: ! 451: void ! 452: save_stmt_status (p) ! 453: struct function *p; ! 454: { ! 455: p->block_stack = block_stack; ! 456: p->stack_block_stack = stack_block_stack; ! 457: p->cond_stack = cond_stack; ! 458: p->loop_stack = loop_stack; ! 459: p->case_stack = case_stack; ! 460: p->nesting_stack = nesting_stack; ! 461: p->nesting_depth = nesting_depth; ! 462: p->block_start_count = block_start_count; ! 463: p->last_expr_type = last_expr_type; ! 464: p->last_expr_value = last_expr_value; ! 465: p->expr_stmts_for_value = expr_stmts_for_value; ! 466: p->emit_filename = emit_filename; ! 467: p->emit_lineno = emit_lineno; ! 468: p->goto_fixup_chain = goto_fixup_chain; ! 469: } ! 470: ! 471: void ! 472: restore_stmt_status (p) ! 473: struct function *p; ! 474: { ! 475: block_stack = p->block_stack; ! 476: stack_block_stack = p->stack_block_stack; ! 477: cond_stack = p->cond_stack; ! 478: loop_stack = p->loop_stack; ! 479: case_stack = p->case_stack; ! 480: nesting_stack = p->nesting_stack; ! 481: nesting_depth = p->nesting_depth; ! 482: block_start_count = p->block_start_count; ! 483: last_expr_type = p->last_expr_type; ! 484: last_expr_value = p->last_expr_value; ! 485: expr_stmts_for_value = p->expr_stmts_for_value; ! 486: emit_filename = p->emit_filename; ! 487: emit_lineno = p->emit_lineno; ! 488: goto_fixup_chain = p->goto_fixup_chain; ! 489: } ! 490: ! 491: /* Emit a no-op instruction. */ ! 492: ! 493: void ! 494: emit_nop () ! 495: { ! 496: rtx last_insn = get_last_insn (); ! 497: if (!optimize ! 498: && (GET_CODE (last_insn) == CODE_LABEL ! 499: || prev_real_insn (last_insn) == 0)) ! 500: emit_insn (gen_nop ()); ! 501: } ! 502: ! 503: /* Return the rtx-label that corresponds to a LABEL_DECL, ! 504: creating it if necessary. */ ! 505: ! 506: rtx ! 507: label_rtx (label) ! 508: tree label; ! 509: { ! 510: if (TREE_CODE (label) != LABEL_DECL) ! 511: abort (); ! 512: ! 513: if (DECL_RTL (label)) ! 514: return DECL_RTL (label); ! 515: ! 516: return DECL_RTL (label) = gen_label_rtx (); ! 517: } ! 518: ! 519: /* Add an unconditional jump to LABEL as the next sequential instruction. */ ! 520: ! 521: void ! 522: emit_jump (label) ! 523: rtx label; ! 524: { ! 525: do_pending_stack_adjust (); ! 526: emit_jump_insn (gen_jump (label)); ! 527: emit_barrier (); ! 528: } ! 529: ! 530: /* Emit code to jump to the address ! 531: specified by the pointer expression EXP. */ ! 532: ! 533: void ! 534: expand_computed_goto (exp) ! 535: tree exp; ! 536: { ! 537: rtx x = expand_expr (exp, 0, VOIDmode, 0); ! 538: emit_indirect_jump (x); ! 539: emit_barrier (); ! 540: } ! 541: ! 542: /* Handle goto statements and the labels that they can go to. */ ! 543: ! 544: /* Specify the location in the RTL code of a label LABEL, ! 545: which is a LABEL_DECL tree node. ! 546: ! 547: This is used for the kind of label that the user can jump to with a ! 548: goto statement, and for alternatives of a switch or case statement. ! 549: RTL labels generated for loops and conditionals don't go through here; ! 550: they are generated directly at the RTL level, by other functions below. ! 551: ! 552: Note that this has nothing to do with defining label *names*. ! 553: Languages vary in how they do that and what that even means. */ ! 554: ! 555: void ! 556: expand_label (label) ! 557: tree label; ! 558: { ! 559: struct label_chain *p; ! 560: ! 561: do_pending_stack_adjust (); ! 562: emit_label (label_rtx (label)); ! 563: if (DECL_NAME (label)) ! 564: LABEL_NAME (DECL_RTL (label)) = IDENTIFIER_POINTER (DECL_NAME (label)); ! 565: ! 566: if (stack_block_stack != 0) ! 567: { ! 568: p = (struct label_chain *) oballoc (sizeof (struct label_chain)); ! 569: p->next = stack_block_stack->data.block.label_chain; ! 570: stack_block_stack->data.block.label_chain = p; ! 571: p->label = label; ! 572: } ! 573: } ! 574: ! 575: /* Declare that LABEL (a LABEL_DECL) may be used for nonlocal gotos ! 576: from nested functions. */ ! 577: ! 578: void ! 579: declare_nonlocal_label (label) ! 580: tree label; ! 581: { ! 582: nonlocal_labels = tree_cons (NULL_TREE, label, nonlocal_labels); ! 583: LABEL_PRESERVE_P (label_rtx (label)) = 1; ! 584: if (nonlocal_goto_handler_slot == 0) ! 585: { ! 586: nonlocal_goto_handler_slot ! 587: = assign_stack_local (Pmode, GET_MODE_SIZE (Pmode), 0); ! 588: nonlocal_goto_stack_level ! 589: = assign_stack_local (Pmode, GET_MODE_SIZE (Pmode), 0); ! 590: emit_insn_before (gen_move_insn (nonlocal_goto_stack_level, ! 591: stack_pointer_rtx), ! 592: tail_recursion_reentry); ! 593: } ! 594: } ! 595: ! 596: /* Generate RTL code for a `goto' statement with target label LABEL. ! 597: LABEL should be a LABEL_DECL tree node that was or will later be ! 598: defined with `expand_label'. */ ! 599: ! 600: void ! 601: expand_goto (label) ! 602: tree label; ! 603: { ! 604: /* Check for a nonlocal goto to a containing function. */ ! 605: tree context = decl_function_context (label); ! 606: if (context != 0 && context != current_function_decl) ! 607: { ! 608: struct function *p = find_function_data (context); ! 609: rtx temp; ! 610: p->has_nonlocal_label = 1; ! 611: #if HAVE_nonlocal_goto ! 612: if (HAVE_nonlocal_goto) ! 613: emit_insn (gen_nonlocal_goto (lookup_static_chain (label), ! 614: p->nonlocal_goto_handler_slot, ! 615: p->nonlocal_goto_stack_level, ! 616: gen_rtx (LABEL_REF, Pmode, ! 617: label_rtx (label)))); ! 618: else ! 619: #endif ! 620: { ! 621: /* Restore frame pointer for containing function. ! 622: This sets the actual hard register used for the frame pointer ! 623: to the location of the function's incoming static chain info. ! 624: The non-local goto handler will then adjust it to contain the ! 625: proper value and reload the argument pointer, if needed. */ ! 626: emit_move_insn (frame_pointer_rtx, lookup_static_chain (label)); ! 627: /* Get addr of containing function's current nonlocal goto handler, ! 628: which will do any cleanups and then jump to the label. */ ! 629: temp = copy_to_reg (p->nonlocal_goto_handler_slot); ! 630: /* Restore the stack pointer. Note this uses fp just restored. */ ! 631: emit_move_insn (stack_pointer_rtx, p->nonlocal_goto_stack_level); ! 632: /* Put in the static chain register the nonlocal label address. */ ! 633: emit_move_insn (static_chain_rtx, ! 634: gen_rtx (LABEL_REF, Pmode, label_rtx (label))); ! 635: /* USE of frame_pointer_rtx added for consistency; not clear if ! 636: really needed. */ ! 637: emit_insn (gen_rtx (USE, VOIDmode, frame_pointer_rtx)); ! 638: emit_insn (gen_rtx (USE, VOIDmode, stack_pointer_rtx)); ! 639: emit_insn (gen_rtx (USE, VOIDmode, static_chain_rtx)); ! 640: emit_indirect_jump (temp); ! 641: } ! 642: } ! 643: else ! 644: expand_goto_internal (label, label_rtx (label), 0); ! 645: } ! 646: ! 647: /* Generate RTL code for a `goto' statement with target label BODY. ! 648: LABEL should be a LABEL_REF. ! 649: LAST_INSN, if non-0, is the rtx we should consider as the last ! 650: insn emitted (for the purposes of cleaning up a return). */ ! 651: ! 652: static void ! 653: expand_goto_internal (body, label, last_insn) ! 654: tree body; ! 655: rtx label; ! 656: rtx last_insn; ! 657: { ! 658: struct nesting *block; ! 659: rtx stack_level = 0; ! 660: ! 661: if (GET_CODE (label) != CODE_LABEL) ! 662: abort (); ! 663: ! 664: /* If label has already been defined, we can tell now ! 665: whether and how we must alter the stack level. */ ! 666: ! 667: if (PREV_INSN (label) != 0) ! 668: { ! 669: /* Find the innermost pending block that contains the label. ! 670: (Check containment by comparing insn-uids.) ! 671: Then restore the outermost stack level within that block, ! 672: and do cleanups of all blocks contained in it. */ ! 673: for (block = block_stack; block; block = block->next) ! 674: { ! 675: if (INSN_UID (block->data.block.first_insn) < INSN_UID (label)) ! 676: break; ! 677: if (block->data.block.stack_level != 0) ! 678: stack_level = block->data.block.stack_level; ! 679: /* Execute the cleanups for blocks we are exiting. */ ! 680: if (block->data.block.cleanups != 0) ! 681: { ! 682: expand_cleanups (block->data.block.cleanups, 0); ! 683: do_pending_stack_adjust (); ! 684: } ! 685: } ! 686: ! 687: if (stack_level) ! 688: { ! 689: /* Ensure stack adjust isn't done by emit_jump, as this would clobber ! 690: the stack pointer. This one should be deleted as dead by flow. */ ! 691: clear_pending_stack_adjust (); ! 692: do_pending_stack_adjust (); ! 693: emit_move_insn (stack_pointer_rtx, stack_level); ! 694: } ! 695: ! 696: if (body != 0 && DECL_TOO_LATE (body)) ! 697: error ("jump to `%s' invalidly jumps into binding contour", ! 698: IDENTIFIER_POINTER (DECL_NAME (body))); ! 699: } ! 700: /* Label not yet defined: may need to put this goto ! 701: on the fixup list. */ ! 702: else if (! expand_fixup (body, label, last_insn)) ! 703: { ! 704: /* No fixup needed. Record that the label is the target ! 705: of at least one goto that has no fixup. */ ! 706: if (body != 0) ! 707: TREE_ADDRESSABLE (body) = 1; ! 708: } ! 709: ! 710: emit_jump (label); ! 711: } ! 712: ! 713: /* Generate if necessary a fixup for a goto ! 714: whose target label in tree structure (if any) is TREE_LABEL ! 715: and whose target in rtl is RTL_LABEL. ! 716: ! 717: If LAST_INSN is nonzero, we pretend that the jump appears ! 718: after insn LAST_INSN instead of at the current point in the insn stream. ! 719: ! 720: The fixup will be used later to insert insns at this point ! 721: to restore the stack level as appropriate for the target label. ! 722: ! 723: Value is nonzero if a fixup is made. */ ! 724: ! 725: static int ! 726: expand_fixup (tree_label, rtl_label, last_insn) ! 727: tree tree_label; ! 728: rtx rtl_label; ! 729: rtx last_insn; ! 730: { ! 731: struct nesting *block, *end_block; ! 732: ! 733: /* See if we can recognize which block the label will be output in. ! 734: This is possible in some very common cases. ! 735: If we succeed, set END_BLOCK to that block. ! 736: Otherwise, set it to 0. */ ! 737: ! 738: if (cond_stack ! 739: && (rtl_label == cond_stack->data.cond.endif_label ! 740: || rtl_label == cond_stack->data.cond.next_label)) ! 741: end_block = cond_stack; ! 742: /* If we are in a loop, recognize certain labels which ! 743: are likely targets. This reduces the number of fixups ! 744: we need to create. */ ! 745: else if (loop_stack ! 746: && (rtl_label == loop_stack->data.loop.start_label ! 747: || rtl_label == loop_stack->data.loop.end_label ! 748: || rtl_label == loop_stack->data.loop.continue_label)) ! 749: end_block = loop_stack; ! 750: else ! 751: end_block = 0; ! 752: ! 753: /* Now set END_BLOCK to the binding level to which we will return. */ ! 754: ! 755: if (end_block) ! 756: { ! 757: struct nesting *next_block = end_block->all; ! 758: block = block_stack; ! 759: ! 760: /* First see if the END_BLOCK is inside the innermost binding level. ! 761: If so, then no cleanups or stack levels are relevant. */ ! 762: while (next_block && next_block != block) ! 763: next_block = next_block->all; ! 764: ! 765: if (next_block) ! 766: return 0; ! 767: ! 768: /* Otherwise, set END_BLOCK to the innermost binding level ! 769: which is outside the relevant control-structure nesting. */ ! 770: next_block = block_stack->next; ! 771: for (block = block_stack; block != end_block; block = block->all) ! 772: if (block == next_block) ! 773: next_block = next_block->next; ! 774: end_block = next_block; ! 775: } ! 776: ! 777: /* Does any containing block have a stack level or cleanups? ! 778: If not, no fixup is needed, and that is the normal case ! 779: (the only case, for standard C). */ ! 780: for (block = block_stack; block != end_block; block = block->next) ! 781: if (block->data.block.stack_level != 0 ! 782: || block->data.block.cleanups != 0) ! 783: break; ! 784: ! 785: if (block != end_block) ! 786: { ! 787: /* Ok, a fixup is needed. Add a fixup to the list of such. */ ! 788: struct goto_fixup *fixup ! 789: = (struct goto_fixup *) oballoc (sizeof (struct goto_fixup)); ! 790: /* In case an old stack level is restored, make sure that comes ! 791: after any pending stack adjust. */ ! 792: /* ?? If the fixup isn't to come at the present position, ! 793: doing the stack adjust here isn't useful. Doing it with our ! 794: settings at that location isn't useful either. Let's hope ! 795: someone does it! */ ! 796: if (last_insn == 0) ! 797: do_pending_stack_adjust (); ! 798: fixup->before_jump = last_insn ? last_insn : get_last_insn (); ! 799: fixup->target = tree_label; ! 800: fixup->target_rtl = rtl_label; ! 801: fixup->block_start_count = block_start_count; ! 802: fixup->stack_level = 0; ! 803: fixup->cleanup_list_list ! 804: = (((block->data.block.outer_cleanups ! 805: #if 0 ! 806: && block->data.block.outer_cleanups != empty_cleanup_list ! 807: #endif ! 808: ) ! 809: || block->data.block.cleanups) ! 810: ? tree_cons (0, block->data.block.cleanups, ! 811: block->data.block.outer_cleanups) ! 812: : 0); ! 813: fixup->next = goto_fixup_chain; ! 814: goto_fixup_chain = fixup; ! 815: } ! 816: ! 817: return block != 0; ! 818: } ! 819: ! 820: /* When exiting a binding contour, process all pending gotos requiring fixups. ! 821: THISBLOCK is the structure that describes the block being exited. ! 822: STACK_LEVEL is the rtx for the stack level to restore exiting this contour. ! 823: CLEANUP_LIST is a list of expressions to evaluate on exiting this contour. ! 824: FIRST_INSN is the insn that began this contour. ! 825: ! 826: Gotos that jump out of this contour must restore the ! 827: stack level and do the cleanups before actually jumping. ! 828: ! 829: DONT_JUMP_IN nonzero means report error there is a jump into this ! 830: contour from before the beginning of the contour. ! 831: This is also done if STACK_LEVEL is nonzero. */ ! 832: ! 833: void ! 834: fixup_gotos (thisblock, stack_level, cleanup_list, first_insn, dont_jump_in) ! 835: struct nesting *thisblock; ! 836: rtx stack_level; ! 837: tree cleanup_list; ! 838: rtx first_insn; ! 839: int dont_jump_in; ! 840: { ! 841: register struct goto_fixup *f, *prev; ! 842: ! 843: /* F is the fixup we are considering; PREV is the previous one. */ ! 844: /* We run this loop in two passes so that cleanups of exited blocks ! 845: are run first, and blocks that are exited are marked so ! 846: afterwards. */ ! 847: ! 848: for (prev = 0, f = goto_fixup_chain; f; prev = f, f = f->next) ! 849: { ! 850: /* Test for a fixup that is inactive because it is already handled. */ ! 851: if (f->before_jump == 0) ! 852: { ! 853: /* Delete inactive fixup from the chain, if that is easy to do. */ ! 854: if (prev != 0) ! 855: prev->next = f->next; ! 856: } ! 857: /* Has this fixup's target label been defined? ! 858: If so, we can finalize it. */ ! 859: else if (PREV_INSN (f->target_rtl) != 0) ! 860: { ! 861: /* Get the first non-label after the label ! 862: this goto jumps to. If that's before this scope begins, ! 863: we don't have a jump into the scope. */ ! 864: rtx after_label = f->target_rtl; ! 865: while (after_label != 0 && GET_CODE (after_label) == CODE_LABEL) ! 866: after_label = NEXT_INSN (after_label); ! 867: ! 868: /* If this fixup jumped into this contour from before the beginning ! 869: of this contour, report an error. */ ! 870: /* ??? Bug: this does not detect jumping in through intermediate ! 871: blocks that have stack levels or cleanups. ! 872: It detects only a problem with the innermost block ! 873: around the label. */ ! 874: if (f->target != 0 ! 875: && (dont_jump_in || stack_level || cleanup_list) ! 876: /* If AFTER_LABEL is 0, it means the jump goes to the end ! 877: of the rtl, which means it jumps into this scope. */ ! 878: && (after_label == 0 ! 879: || INSN_UID (first_insn) < INSN_UID (after_label)) ! 880: && INSN_UID (first_insn) > INSN_UID (f->before_jump) ! 881: && ! TREE_REGDECL (f->target)) ! 882: { ! 883: error_with_decl (f->target, ! 884: "label `%s' used before containing binding contour"); ! 885: /* Prevent multiple errors for one label. */ ! 886: TREE_REGDECL (f->target) = 1; ! 887: } ! 888: ! 889: /* Execute cleanups for blocks this jump exits. */ ! 890: if (f->cleanup_list_list) ! 891: { ! 892: tree lists; ! 893: for (lists = f->cleanup_list_list; lists; lists = TREE_CHAIN (lists)) ! 894: /* Marked elements correspond to blocks that have been closed. ! 895: Do their cleanups. */ ! 896: if (TREE_ADDRESSABLE (lists) ! 897: && TREE_VALUE (lists) != 0) ! 898: fixup_cleanups (TREE_VALUE (lists), &f->before_jump); ! 899: } ! 900: ! 901: /* Restore stack level for the biggest contour that this ! 902: jump jumps out of. */ ! 903: if (f->stack_level) ! 904: emit_insn_after (gen_move_insn (stack_pointer_rtx, f->stack_level), ! 905: f->before_jump); ! 906: f->before_jump = 0; ! 907: } ! 908: } ! 909: ! 910: /* Mark the cleanups of exited blocks so that they are executed ! 911: by the code above. */ ! 912: for (prev = 0, f = goto_fixup_chain; f; prev = f, f = f->next) ! 913: if (f->before_jump != 0 ! 914: && PREV_INSN (f->target_rtl) == 0 ! 915: /* Label has still not appeared. If we are exiting a block with ! 916: a stack level to restore, that started before the fixup, ! 917: mark this stack level as needing restoration ! 918: when the fixup is later finalized. ! 919: Also mark the cleanup_list_list element for F ! 920: that corresponds to this block, so that ultimately ! 921: this block's cleanups will be executed by the code above. */ ! 922: && thisblock != 0 ! 923: /* Note: if THISBLOCK == 0 and we have a label that hasn't appeared, ! 924: it means the label is undefined. That's erroneous, but possible. */ ! 925: && (thisblock->data.block.block_start_count ! 926: <= f->block_start_count)) ! 927: { ! 928: tree lists = f->cleanup_list_list; ! 929: for (; lists; lists = TREE_CHAIN (lists)) ! 930: /* If the following elt. corresponds to our containing block ! 931: then the elt. must be for this block. */ ! 932: if (TREE_CHAIN (lists) == thisblock->data.block.outer_cleanups) ! 933: TREE_ADDRESSABLE (lists) = 1; ! 934: ! 935: if (stack_level) ! 936: f->stack_level = stack_level; ! 937: } ! 938: } ! 939: ! 940: /* Generate RTL for an asm statement (explicit assembler code). ! 941: BODY is a STRING_CST node containing the assembler code text, ! 942: or an ADDR_EXPR containing a STRING_CST. */ ! 943: ! 944: void ! 945: expand_asm (body) ! 946: tree body; ! 947: { ! 948: if (TREE_CODE (body) == ADDR_EXPR) ! 949: body = TREE_OPERAND (body, 0); ! 950: ! 951: emit_insn (gen_rtx (ASM_INPUT, VOIDmode, ! 952: TREE_STRING_POINTER (body))); ! 953: last_expr_type = 0; ! 954: } ! 955: ! 956: /* Generate RTL for an asm statement with arguments. ! 957: STRING is the instruction template. ! 958: OUTPUTS is a list of output arguments (lvalues); INPUTS a list of inputs. ! 959: Each output or input has an expression in the TREE_VALUE and ! 960: a constraint-string in the TREE_PURPOSE. ! 961: CLOBBERS is a list of STRING_CST nodes each naming a hard register ! 962: that is clobbered by this insn. ! 963: ! 964: Not all kinds of lvalue that may appear in OUTPUTS can be stored directly. ! 965: Some elements of OUTPUTS may be replaced with trees representing temporary ! 966: values. The caller should copy those temporary values to the originally ! 967: specified lvalues. ! 968: ! 969: VOL nonzero means the insn is volatile; don't optimize it. */ ! 970: ! 971: void ! 972: expand_asm_operands (string, outputs, inputs, clobbers, vol, filename, line) ! 973: tree string, outputs, inputs, clobbers; ! 974: int vol; ! 975: char *filename; ! 976: int line; ! 977: { ! 978: rtvec argvec, constraints; ! 979: rtx body; ! 980: int ninputs = list_length (inputs); ! 981: int noutputs = list_length (outputs); ! 982: int nclobbers = list_length (clobbers); ! 983: tree tail; ! 984: register int i; ! 985: /* Vector of RTX's of evaluated output operands. */ ! 986: rtx *output_rtx = (rtx *) alloca (noutputs * sizeof (rtx)); ! 987: /* The insn we have emitted. */ ! 988: rtx insn; ! 989: ! 990: last_expr_type = 0; ! 991: ! 992: for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++) ! 993: { ! 994: tree val = TREE_VALUE (tail); ! 995: tree val1; ! 996: int j; ! 997: int found_equal; ! 998: ! 999: /* If there's an erroneous arg, emit no insn. */ ! 1000: if (TREE_TYPE (val) == error_mark_node) ! 1001: return; ! 1002: ! 1003: /* Make sure constraint has `=' and does not have `+'. */ ! 1004: ! 1005: found_equal = 0; ! 1006: for (j = 0; j < TREE_STRING_LENGTH (TREE_PURPOSE (tail)); j++) ! 1007: { ! 1008: if (TREE_STRING_POINTER (TREE_PURPOSE (tail))[j] == '+') ! 1009: { ! 1010: error ("output operand constraint contains `+'"); ! 1011: return; ! 1012: } ! 1013: if (TREE_STRING_POINTER (TREE_PURPOSE (tail))[j] == '=') ! 1014: found_equal = 1; ! 1015: } ! 1016: if (! found_equal) ! 1017: { ! 1018: error ("output operand constraint lacks `='"); ! 1019: return; ! 1020: } ! 1021: ! 1022: /* If an output operand is not a variable or indirect ref, ! 1023: or a part of one, ! 1024: create a SAVE_EXPR which is a pseudo-reg ! 1025: to act as an intermediate temporary. ! 1026: Make the asm insn write into that, then copy it to ! 1027: the real output operand. */ ! 1028: ! 1029: while (TREE_CODE (val) == COMPONENT_REF ! 1030: || TREE_CODE (val) == ARRAY_REF) ! 1031: val = TREE_OPERAND (val, 0); ! 1032: ! 1033: if (TREE_CODE (val) != VAR_DECL ! 1034: && TREE_CODE (val) != PARM_DECL ! 1035: && TREE_CODE (val) != INDIRECT_REF) ! 1036: TREE_VALUE (tail) = save_expr (TREE_VALUE (tail)); ! 1037: ! 1038: output_rtx[i] = expand_expr (TREE_VALUE (tail), 0, VOIDmode, 0); ! 1039: } ! 1040: ! 1041: if (ninputs + noutputs > MAX_RECOG_OPERANDS) ! 1042: { ! 1043: error ("more than %d operands in `asm'", MAX_RECOG_OPERANDS); ! 1044: return; ! 1045: } ! 1046: ! 1047: /* Make vectors for the expression-rtx and constraint strings. */ ! 1048: ! 1049: argvec = rtvec_alloc (ninputs); ! 1050: constraints = rtvec_alloc (ninputs); ! 1051: ! 1052: body = gen_rtx (ASM_OPERANDS, VOIDmode, ! 1053: TREE_STRING_POINTER (string), "", 0, argvec, constraints, ! 1054: filename, line); ! 1055: MEM_VOLATILE_P (body) = vol; ! 1056: ! 1057: /* Eval the inputs and put them into ARGVEC. ! 1058: Put their constraints into ASM_INPUTs and store in CONSTRAINTS. */ ! 1059: ! 1060: i = 0; ! 1061: for (tail = inputs; tail; tail = TREE_CHAIN (tail)) ! 1062: { ! 1063: int j; ! 1064: ! 1065: /* If there's an erroneous arg, emit no insn, ! 1066: because the ASM_INPUT would get VOIDmode ! 1067: and that could cause a crash in reload. */ ! 1068: if (TREE_TYPE (TREE_VALUE (tail)) == error_mark_node) ! 1069: return; ! 1070: if (TREE_PURPOSE (tail) == NULL_TREE) ! 1071: { ! 1072: error ("hard register `%s' listed as input operand to `asm'", ! 1073: TREE_STRING_POINTER (TREE_VALUE (tail)) ); ! 1074: return; ! 1075: } ! 1076: ! 1077: /* Make sure constraint has neither `=' nor `+'. */ ! 1078: ! 1079: for (j = 0; j < TREE_STRING_LENGTH (TREE_PURPOSE (tail)); j++) ! 1080: if (TREE_STRING_POINTER (TREE_PURPOSE (tail))[j] == '=' ! 1081: || TREE_STRING_POINTER (TREE_PURPOSE (tail))[j] == '+') ! 1082: { ! 1083: error ("input operand constraint contains `%c'", ! 1084: TREE_STRING_POINTER (TREE_PURPOSE (tail))[j]); ! 1085: return; ! 1086: } ! 1087: ! 1088: XVECEXP (body, 3, i) /* argvec */ ! 1089: = expand_expr (TREE_VALUE (tail), 0, VOIDmode, 0); ! 1090: XVECEXP (body, 4, i) /* constraints */ ! 1091: = gen_rtx (ASM_INPUT, TYPE_MODE (TREE_TYPE (TREE_VALUE (tail))), ! 1092: TREE_STRING_POINTER (TREE_PURPOSE (tail))); ! 1093: i++; ! 1094: } ! 1095: ! 1096: /* Protect all the operands from the queue, ! 1097: now that they have all been evaluated. */ ! 1098: ! 1099: for (i = 0; i < ninputs; i++) ! 1100: XVECEXP (body, 3, i) = protect_from_queue (XVECEXP (body, 3, i), 0); ! 1101: ! 1102: for (i = 0; i < noutputs; i++) ! 1103: output_rtx[i] = protect_from_queue (output_rtx[i], 1); ! 1104: ! 1105: /* Now, for each output, construct an rtx ! 1106: (set OUTPUT (asm_operands INSN OUTPUTNUMBER OUTPUTCONSTRAINT ! 1107: ARGVEC CONSTRAINTS)) ! 1108: If there is more than one, put them inside a PARALLEL. */ ! 1109: ! 1110: if (noutputs == 1 && nclobbers == 0) ! 1111: { ! 1112: XSTR (body, 1) = TREE_STRING_POINTER (TREE_PURPOSE (outputs)); ! 1113: insn = emit_insn (gen_rtx (SET, VOIDmode, output_rtx[0], body)); ! 1114: } ! 1115: else if (noutputs == 0 && nclobbers == 0) ! 1116: { ! 1117: /* No output operands: put in a raw ASM_OPERANDS rtx. */ ! 1118: insn = emit_insn (body); ! 1119: } ! 1120: else ! 1121: { ! 1122: rtx obody = body; ! 1123: int num = noutputs; ! 1124: if (num == 0) num = 1; ! 1125: body = gen_rtx (PARALLEL, VOIDmode, rtvec_alloc (num + nclobbers)); ! 1126: ! 1127: /* For each output operand, store a SET. */ ! 1128: ! 1129: for (i = 0, tail = outputs; tail; tail = TREE_CHAIN (tail), i++) ! 1130: { ! 1131: XVECEXP (body, 0, i) ! 1132: = gen_rtx (SET, VOIDmode, ! 1133: output_rtx[i], ! 1134: gen_rtx (ASM_OPERANDS, VOIDmode, ! 1135: TREE_STRING_POINTER (string), ! 1136: TREE_STRING_POINTER (TREE_PURPOSE (tail)), ! 1137: i, argvec, constraints, ! 1138: filename, line)); ! 1139: MEM_VOLATILE_P (SET_SRC (XVECEXP (body, 0, i))) = vol; ! 1140: } ! 1141: ! 1142: /* If there are no outputs (but there are some clobbers) ! 1143: store the bare ASM_OPERANDS into the PARALLEL. */ ! 1144: ! 1145: if (i == 0) ! 1146: XVECEXP (body, 0, i++) = obody; ! 1147: ! 1148: /* Store (clobber REG) for each clobbered register specified. */ ! 1149: ! 1150: for (tail = clobbers; tail; tail = TREE_CHAIN (tail), i++) ! 1151: { ! 1152: int j; ! 1153: char *regname = TREE_STRING_POINTER (TREE_VALUE (tail)); ! 1154: ! 1155: for (j = 0; j < FIRST_PSEUDO_REGISTER; j++) ! 1156: if (!strcmp (regname, reg_names[j])) ! 1157: break; ! 1158: ! 1159: if (j == FIRST_PSEUDO_REGISTER) ! 1160: { ! 1161: error ("unknown register name `%s' in `asm'", regname); ! 1162: return; ! 1163: } ! 1164: ! 1165: /* Use QImode since that's guaranteed to clobber just one reg. */ ! 1166: XVECEXP (body, 0, i) ! 1167: = gen_rtx (CLOBBER, VOIDmode, gen_rtx (REG, QImode, j)); ! 1168: } ! 1169: ! 1170: insn = emit_insn (body); ! 1171: } ! 1172: ! 1173: free_temp_slots (); ! 1174: } ! 1175: ! 1176: /* Generate RTL to evaluate the expression EXP ! 1177: and remember it in case this is the VALUE in a ({... VALUE; }) constr. */ ! 1178: ! 1179: void ! 1180: expand_expr_stmt (exp) ! 1181: tree exp; ! 1182: { ! 1183: /* If -W, warn about statements with no side effects, ! 1184: except for an explicit cast to void (e.g. for assert()), and ! 1185: except inside a ({...}) where they may be useful. */ ! 1186: if (expr_stmts_for_value == 0 && exp != error_mark_node) ! 1187: { ! 1188: if (! TREE_SIDE_EFFECTS (exp) && (extra_warnings || warn_unused) ! 1189: && !(TREE_CODE (exp) == CONVERT_EXPR ! 1190: && TREE_TYPE (exp) == void_type_node)) ! 1191: warning_with_file_and_line (emit_filename, emit_lineno, ! 1192: "statement with no effect"); ! 1193: else if (warn_unused) ! 1194: warn_if_unused_value (exp); ! 1195: } ! 1196: last_expr_type = TREE_TYPE (exp); ! 1197: if (! flag_syntax_only) ! 1198: last_expr_value = expand_expr (exp, expr_stmts_for_value ? 0 : const0_rtx, ! 1199: VOIDmode, 0); ! 1200: ! 1201: /* If all we do is reference a volatile value in memory, ! 1202: copy it to a register to be sure it is actually touched. */ ! 1203: if (last_expr_value != 0 && GET_CODE (last_expr_value) == MEM ! 1204: && TREE_THIS_VOLATILE (exp)) ! 1205: { ! 1206: if (TYPE_MODE (TREE_TYPE (exp)) != BLKmode) ! 1207: copy_to_reg (last_expr_value); ! 1208: else ! 1209: /* This case needs to be written. */ ! 1210: abort (); ! 1211: } ! 1212: ! 1213: /* If this expression is part of a ({...}) and is in memory, we may have ! 1214: to preserve temporaries. */ ! 1215: preserve_temp_slots (last_expr_value); ! 1216: ! 1217: /* Free any temporaries used to evaluate this expression. Any temporary ! 1218: used as a result of this expression will already have been preserved ! 1219: above. */ ! 1220: free_temp_slots (); ! 1221: ! 1222: emit_queue (); ! 1223: } ! 1224: ! 1225: /* Warn if EXP contains any computations whose results are not used. ! 1226: Return 1 if a warning is printed; 0 otherwise. */ ! 1227: ! 1228: static int ! 1229: warn_if_unused_value (exp) ! 1230: tree exp; ! 1231: { ! 1232: if (TREE_USED (exp)) ! 1233: return 0; ! 1234: ! 1235: switch (TREE_CODE (exp)) ! 1236: { ! 1237: case PREINCREMENT_EXPR: ! 1238: case POSTINCREMENT_EXPR: ! 1239: case PREDECREMENT_EXPR: ! 1240: case POSTDECREMENT_EXPR: ! 1241: case MODIFY_EXPR: ! 1242: case INIT_EXPR: ! 1243: case TARGET_EXPR: ! 1244: case CALL_EXPR: ! 1245: case METHOD_CALL_EXPR: ! 1246: case RTL_EXPR: ! 1247: case WRAPPER_EXPR: ! 1248: case ANTI_WRAPPER_EXPR: ! 1249: case WITH_CLEANUP_EXPR: ! 1250: case EXIT_EXPR: ! 1251: /* We don't warn about COND_EXPR because it may be a useful ! 1252: construct if either arm contains a side effect. */ ! 1253: case COND_EXPR: ! 1254: return 0; ! 1255: ! 1256: case BIND_EXPR: ! 1257: /* For a binding, warn if no side effect within it. */ ! 1258: return warn_if_unused_value (TREE_OPERAND (exp, 1)); ! 1259: ! 1260: case TRUTH_ORIF_EXPR: ! 1261: case TRUTH_ANDIF_EXPR: ! 1262: /* In && or ||, warn if 2nd operand has no side effect. */ ! 1263: return warn_if_unused_value (TREE_OPERAND (exp, 1)); ! 1264: ! 1265: case COMPOUND_EXPR: ! 1266: if (warn_if_unused_value (TREE_OPERAND (exp, 0))) ! 1267: return 1; ! 1268: return warn_if_unused_value (TREE_OPERAND (exp, 1)); ! 1269: ! 1270: case NOP_EXPR: ! 1271: case CONVERT_EXPR: ! 1272: /* Don't warn about values cast to void. */ ! 1273: if (TREE_TYPE (exp) == void_type_node) ! 1274: return 0; ! 1275: /* Don't warn about conversions not explicit in the user's program. */ ! 1276: if (TREE_NO_UNUSED_WARNING (exp)) ! 1277: return 0; ! 1278: /* Assignment to a cast usually results in a cast of a modify. ! 1279: Don't complain about that. */ ! 1280: if (TREE_CODE (TREE_OPERAND (exp, 0)) == MODIFY_EXPR) ! 1281: return 0; ! 1282: /* Sometimes it results in a cast of a cast of a modify. ! 1283: Don't complain about that. */ ! 1284: if ((TREE_CODE (TREE_OPERAND (exp, 0)) == CONVERT_EXPR ! 1285: || TREE_CODE (TREE_OPERAND (exp, 0)) == NOP_EXPR) ! 1286: && TREE_CODE (TREE_OPERAND (TREE_OPERAND (exp, 0), 0)) == MODIFY_EXPR) ! 1287: return 0; ! 1288: ! 1289: default: ! 1290: warning_with_file_and_line (emit_filename, emit_lineno, ! 1291: "value computed is not used"); ! 1292: return 1; ! 1293: } ! 1294: } ! 1295: ! 1296: /* Clear out the memory of the last expression evaluated. */ ! 1297: ! 1298: void ! 1299: clear_last_expr () ! 1300: { ! 1301: last_expr_type = 0; ! 1302: } ! 1303: ! 1304: /* Begin a statement which will return a value. ! 1305: Return the RTL_EXPR for this statement expr. ! 1306: The caller must save that value and pass it to expand_end_stmt_expr. */ ! 1307: ! 1308: tree ! 1309: expand_start_stmt_expr () ! 1310: { ! 1311: /* Make the RTL_EXPR node temporary, not momentary, ! 1312: so that rtl_expr_chain doesn't become garbage. */ ! 1313: int momentary = suspend_momentary (); ! 1314: tree t = make_node (RTL_EXPR); ! 1315: resume_momentary (momentary); ! 1316: start_sequence (); ! 1317: NO_DEFER_POP; ! 1318: expr_stmts_for_value++; ! 1319: return t; ! 1320: } ! 1321: ! 1322: /* Restore the previous state at the end of a statement that returns a value. ! 1323: Returns a tree node representing the statement's value and the ! 1324: insns to compute the value. ! 1325: ! 1326: The nodes of that expression have been freed by now, so we cannot use them. ! 1327: But we don't want to do that anyway; the expression has already been ! 1328: evaluated and now we just want to use the value. So generate a RTL_EXPR ! 1329: with the proper type and RTL value. ! 1330: ! 1331: If the last substatement was not an expression, ! 1332: return something with type `void'. */ ! 1333: ! 1334: tree ! 1335: expand_end_stmt_expr (t) ! 1336: tree t; ! 1337: { ! 1338: OK_DEFER_POP; ! 1339: ! 1340: if (last_expr_type == 0) ! 1341: { ! 1342: last_expr_type = void_type_node; ! 1343: last_expr_value = const0_rtx; ! 1344: } ! 1345: else if (last_expr_value == 0) ! 1346: /* There are some cases where this can happen, such as when the ! 1347: statement is void type. */ ! 1348: last_expr_value = const0_rtx; ! 1349: else if (GET_CODE (last_expr_value) != REG && ! CONSTANT_P (last_expr_value)) ! 1350: /* Remove any possible QUEUED. */ ! 1351: last_expr_value = protect_from_queue (last_expr_value, 0); ! 1352: ! 1353: emit_queue (); ! 1354: ! 1355: TREE_TYPE (t) = last_expr_type; ! 1356: RTL_EXPR_RTL (t) = last_expr_value; ! 1357: RTL_EXPR_SEQUENCE (t) = get_insns (); ! 1358: ! 1359: rtl_expr_chain = tree_cons (NULL_TREE, t, rtl_expr_chain); ! 1360: ! 1361: end_sequence (); ! 1362: ! 1363: /* Don't consider deleting this expr or containing exprs at tree level. */ ! 1364: TREE_SIDE_EFFECTS (t) = 1; ! 1365: /* Propagate volatility of the actual RTL expr. */ ! 1366: TREE_THIS_VOLATILE (t) = volatile_refs_p (last_expr_value); ! 1367: ! 1368: last_expr_type = 0; ! 1369: expr_stmts_for_value--; ! 1370: ! 1371: return t; ! 1372: } ! 1373: ! 1374: /* The exception handling nesting looks like this: ! 1375: ! 1376: <-- Level N-1 ! 1377: { <-- exception handler block ! 1378: <-- Level N ! 1379: <-- in an exception handler ! 1380: { <-- try block ! 1381: : <-- in a TRY block ! 1382: : <-- in an exception handler ! 1383: : ! 1384: } ! 1385: ! 1386: { <-- except block ! 1387: : <-- in an except block ! 1388: : <-- in an exception handler ! 1389: : ! 1390: } ! 1391: ! 1392: } ! 1393: ! 1394: /* Return nonzero iff in a try block at level LEVEL. */ ! 1395: ! 1396: int ! 1397: in_try_block (level) ! 1398: int level; ! 1399: { ! 1400: struct nesting *n = except_stack; ! 1401: while (1) ! 1402: { ! 1403: while (n && n->data.except_stmt.after_label != 0) ! 1404: n = n->next; ! 1405: if (n == 0) ! 1406: return 0; ! 1407: if (level == 0) ! 1408: return n != 0; ! 1409: level--; ! 1410: n = n->next; ! 1411: } ! 1412: } ! 1413: ! 1414: /* Return nonzero iff in an except block at level LEVEL. */ ! 1415: ! 1416: int ! 1417: in_except_block (level) ! 1418: int level; ! 1419: { ! 1420: struct nesting *n = except_stack; ! 1421: while (1) ! 1422: { ! 1423: while (n && n->data.except_stmt.after_label == 0) ! 1424: n = n->next; ! 1425: if (n == 0) ! 1426: return 0; ! 1427: if (level == 0) ! 1428: return n != 0; ! 1429: level--; ! 1430: n = n->next; ! 1431: } ! 1432: } ! 1433: ! 1434: /* Return nonzero iff in an exception handler at level LEVEL. */ ! 1435: ! 1436: int ! 1437: in_exception_handler (level) ! 1438: int level; ! 1439: { ! 1440: struct nesting *n = except_stack; ! 1441: while (n && level--) ! 1442: n = n->next; ! 1443: return n != 0; ! 1444: } ! 1445: ! 1446: /* Record the fact that the current exception nesting raises ! 1447: exception EX. If not in an exception handler, return 0. */ ! 1448: int ! 1449: expand_raise (ex) ! 1450: tree ex; ! 1451: { ! 1452: tree *raises_ptr; ! 1453: ! 1454: if (except_stack == 0) ! 1455: return 0; ! 1456: raises_ptr = &except_stack->data.except_stmt.raised; ! 1457: if (! value_member (ex, *raises_ptr)) ! 1458: *raises_ptr = tree_cons (NULL_TREE, ex, *raises_ptr); ! 1459: return 1; ! 1460: } ! 1461: ! 1462: /* Generate RTL for the start of a try block. ! 1463: ! 1464: TRY_CLAUSE is the condition to test to enter the try block. */ ! 1465: ! 1466: void ! 1467: expand_start_try (try_clause, exitflag, escapeflag) ! 1468: tree try_clause; ! 1469: int exitflag; ! 1470: int escapeflag; ! 1471: { ! 1472: struct nesting *thishandler = ALLOC_NESTING (); ! 1473: ! 1474: /* Make an entry on cond_stack for the cond we are entering. */ ! 1475: ! 1476: thishandler->next = except_stack; ! 1477: thishandler->all = nesting_stack; ! 1478: thishandler->depth = ++nesting_depth; ! 1479: thishandler->data.except_stmt.raised = 0; ! 1480: thishandler->data.except_stmt.handled = 0; ! 1481: thishandler->data.except_stmt.first_insn = get_insns (); ! 1482: thishandler->data.except_stmt.except_label = gen_label_rtx (); ! 1483: thishandler->data.except_stmt.unhandled_label = 0; ! 1484: thishandler->data.except_stmt.after_label = 0; ! 1485: thishandler->data.except_stmt.escape_label ! 1486: = escapeflag ? thishandler->data.except_stmt.except_label : 0; ! 1487: thishandler->exit_label = exitflag ? gen_label_rtx () : 0; ! 1488: except_stack = thishandler; ! 1489: nesting_stack = thishandler; ! 1490: ! 1491: do_jump (try_clause, thishandler->data.except_stmt.except_label, NULL); ! 1492: } ! 1493: ! 1494: /* End of a TRY block. Nothing to do for now. */ ! 1495: ! 1496: void ! 1497: expand_end_try () ! 1498: { ! 1499: except_stack->data.except_stmt.after_label = gen_label_rtx (); ! 1500: expand_goto_internal (NULL, except_stack->data.except_stmt.after_label, 0); ! 1501: } ! 1502: ! 1503: /* Start an `except' nesting contour. ! 1504: EXITFLAG says whether this contour should be able to `exit' something. ! 1505: ESCAPEFLAG says whether this contour should be escapable. */ ! 1506: ! 1507: void ! 1508: expand_start_except (exitflag, escapeflag) ! 1509: int exitflag; ! 1510: int escapeflag; ! 1511: { ! 1512: if (exitflag) ! 1513: { ! 1514: struct nesting *n; ! 1515: /* An `exit' from catch clauses goes out to next exit level, ! 1516: if there is one. Otherwise, it just goes to the end ! 1517: of the construct. */ ! 1518: for (n = except_stack->next; n; n = n->next) ! 1519: if (n->exit_label != 0) ! 1520: { ! 1521: except_stack->exit_label = n->exit_label; ! 1522: break; ! 1523: } ! 1524: if (n == 0) ! 1525: except_stack->exit_label = except_stack->data.except_stmt.after_label; ! 1526: } ! 1527: if (escapeflag) ! 1528: { ! 1529: struct nesting *n; ! 1530: /* An `escape' from catch clauses goes out to next escape level, ! 1531: if there is one. Otherwise, it just goes to the end ! 1532: of the construct. */ ! 1533: for (n = except_stack->next; n; n = n->next) ! 1534: if (n->data.except_stmt.escape_label != 0) ! 1535: { ! 1536: except_stack->data.except_stmt.escape_label ! 1537: = n->data.except_stmt.escape_label; ! 1538: break; ! 1539: } ! 1540: if (n == 0) ! 1541: except_stack->data.except_stmt.escape_label ! 1542: = except_stack->data.except_stmt.after_label; ! 1543: } ! 1544: do_pending_stack_adjust (); ! 1545: emit_label (except_stack->data.except_stmt.except_label); ! 1546: } ! 1547: ! 1548: /* Generate code to `escape' from an exception contour. This ! 1549: is like `exiting', but does not conflict with constructs which ! 1550: use `exit_label'. ! 1551: ! 1552: Return nonzero if this contour is escapable, otherwise ! 1553: return zero, and language-specific code will emit the ! 1554: appropriate error message. */ ! 1555: int ! 1556: expand_escape_except () ! 1557: { ! 1558: struct nesting *n; ! 1559: last_expr_type = 0; ! 1560: for (n = except_stack; n; n = n->next) ! 1561: if (n->data.except_stmt.escape_label != 0) ! 1562: { ! 1563: expand_goto_internal (0, n->data.except_stmt.escape_label, 0); ! 1564: return 1; ! 1565: } ! 1566: ! 1567: return 0; ! 1568: } ! 1569: ! 1570: /* Finish processing and `except' contour. ! 1571: Culls out all exceptions which might be raise but not ! 1572: handled, and returns the list to the caller. ! 1573: Language-specific code is responsible for dealing with these ! 1574: exceptions. */ ! 1575: ! 1576: tree ! 1577: expand_end_except () ! 1578: { ! 1579: struct nesting *n; ! 1580: tree raised = NULL_TREE; ! 1581: ! 1582: do_pending_stack_adjust (); ! 1583: emit_label (except_stack->data.except_stmt.after_label); ! 1584: ! 1585: n = except_stack->next; ! 1586: if (n) ! 1587: { ! 1588: /* Propagate exceptions raised but not handled to next ! 1589: highest level. */ ! 1590: tree handled = except_stack->data.except_stmt.raised; ! 1591: if (handled != void_type_node) ! 1592: { ! 1593: tree prev = NULL_TREE; ! 1594: raised = except_stack->data.except_stmt.raised; ! 1595: while (handled) ! 1596: { ! 1597: tree this_raise; ! 1598: for (this_raise = raised, prev = 0; this_raise; ! 1599: this_raise = TREE_CHAIN (this_raise)) ! 1600: { ! 1601: if (value_member (TREE_VALUE (this_raise), handled)) ! 1602: { ! 1603: if (prev) ! 1604: TREE_CHAIN (prev) = TREE_CHAIN (this_raise); ! 1605: else ! 1606: { ! 1607: raised = TREE_CHAIN (raised); ! 1608: if (raised == NULL_TREE) ! 1609: goto nada; ! 1610: } ! 1611: } ! 1612: else ! 1613: prev = this_raise; ! 1614: } ! 1615: handled = TREE_CHAIN (handled); ! 1616: } ! 1617: if (prev == NULL_TREE) ! 1618: prev = raised; ! 1619: if (prev) ! 1620: TREE_CHAIN (prev) = n->data.except_stmt.raised; ! 1621: nada: ! 1622: n->data.except_stmt.raised = raised; ! 1623: } ! 1624: } ! 1625: ! 1626: POPSTACK (except_stack); ! 1627: last_expr_type = 0; ! 1628: return raised; ! 1629: } ! 1630: ! 1631: /* Record that exception EX is caught by this exception handler. ! 1632: Return nonzero if in exception handling construct, otherwise return 0. */ ! 1633: int ! 1634: expand_catch (ex) ! 1635: tree ex; ! 1636: { ! 1637: tree *raises_ptr; ! 1638: ! 1639: if (except_stack == 0) ! 1640: return 0; ! 1641: raises_ptr = &except_stack->data.except_stmt.handled; ! 1642: if (*raises_ptr != void_type_node ! 1643: && ex != NULL_TREE ! 1644: && ! value_member (ex, *raises_ptr)) ! 1645: *raises_ptr = tree_cons (NULL_TREE, ex, *raises_ptr); ! 1646: return 1; ! 1647: } ! 1648: ! 1649: /* Record that this exception handler catches all exceptions. ! 1650: Return nonzero if in exception handling construct, otherwise return 0. */ ! 1651: ! 1652: int ! 1653: expand_catch_default () ! 1654: { ! 1655: if (except_stack == 0) ! 1656: return 0; ! 1657: except_stack->data.except_stmt.handled = void_type_node; ! 1658: return 1; ! 1659: } ! 1660: ! 1661: int ! 1662: expand_end_catch () ! 1663: { ! 1664: if (except_stack == 0 || except_stack->data.except_stmt.after_label == 0) ! 1665: return 0; ! 1666: expand_goto_internal (0, except_stack->data.except_stmt.after_label, 0); ! 1667: return 1; ! 1668: } ! 1669: ! 1670: /* Generate RTL for the start of an if-then. COND is the expression ! 1671: whose truth should be tested. ! 1672: ! 1673: If EXITFLAG is nonzero, this conditional is visible to ! 1674: `exit_something'. */ ! 1675: ! 1676: void ! 1677: expand_start_cond (cond, exitflag) ! 1678: tree cond; ! 1679: int exitflag; ! 1680: { ! 1681: struct nesting *thiscond = ALLOC_NESTING (); ! 1682: ! 1683: /* Make an entry on cond_stack for the cond we are entering. */ ! 1684: ! 1685: thiscond->next = cond_stack; ! 1686: thiscond->all = nesting_stack; ! 1687: thiscond->depth = ++nesting_depth; ! 1688: thiscond->data.cond.next_label = gen_label_rtx (); ! 1689: /* Before we encounter an `else', we don't need a separate exit label ! 1690: unless there are supposed to be exit statements ! 1691: to exit this conditional. */ ! 1692: thiscond->exit_label = exitflag ? gen_label_rtx () : 0; ! 1693: thiscond->data.cond.endif_label = thiscond->exit_label; ! 1694: cond_stack = thiscond; ! 1695: nesting_stack = thiscond; ! 1696: ! 1697: do_jump (cond, thiscond->data.cond.next_label, NULL); ! 1698: } ! 1699: ! 1700: /* Generate RTL between then-clause and the elseif-clause ! 1701: of an if-then-elseif-.... */ ! 1702: ! 1703: void ! 1704: expand_start_elseif (cond) ! 1705: tree cond; ! 1706: { ! 1707: if (cond_stack->data.cond.endif_label == 0) ! 1708: cond_stack->data.cond.endif_label = gen_label_rtx (); ! 1709: emit_jump (cond_stack->data.cond.endif_label); ! 1710: emit_label (cond_stack->data.cond.next_label); ! 1711: cond_stack->data.cond.next_label = gen_label_rtx (); ! 1712: do_jump (cond, cond_stack->data.cond.next_label, NULL); ! 1713: } ! 1714: ! 1715: /* Generate RTL between the then-clause and the else-clause ! 1716: of an if-then-else. */ ! 1717: ! 1718: void ! 1719: expand_start_else () ! 1720: { ! 1721: if (cond_stack->data.cond.endif_label == 0) ! 1722: cond_stack->data.cond.endif_label = gen_label_rtx (); ! 1723: emit_jump (cond_stack->data.cond.endif_label); ! 1724: emit_label (cond_stack->data.cond.next_label); ! 1725: cond_stack->data.cond.next_label = 0; /* No more _else or _elseif calls. */ ! 1726: } ! 1727: ! 1728: /* Generate RTL for the end of an if-then. ! 1729: Pop the record for it off of cond_stack. */ ! 1730: ! 1731: void ! 1732: expand_end_cond () ! 1733: { ! 1734: struct nesting *thiscond = cond_stack; ! 1735: ! 1736: do_pending_stack_adjust (); ! 1737: if (thiscond->data.cond.next_label) ! 1738: emit_label (thiscond->data.cond.next_label); ! 1739: if (thiscond->data.cond.endif_label) ! 1740: emit_label (thiscond->data.cond.endif_label); ! 1741: ! 1742: POPSTACK (cond_stack); ! 1743: last_expr_type = 0; ! 1744: } ! 1745: ! 1746: /* Generate RTL for the start of a loop. EXIT_FLAG is nonzero if this ! 1747: loop should be exited by `exit_something'. This is a loop for which ! 1748: `expand_continue' will jump to the top of the loop. ! 1749: ! 1750: Make an entry on loop_stack to record the labels associated with ! 1751: this loop. */ ! 1752: ! 1753: struct nesting * ! 1754: expand_start_loop (exit_flag) ! 1755: int exit_flag; ! 1756: { ! 1757: register struct nesting *thisloop = ALLOC_NESTING (); ! 1758: ! 1759: /* Make an entry on loop_stack for the loop we are entering. */ ! 1760: ! 1761: thisloop->next = loop_stack; ! 1762: thisloop->all = nesting_stack; ! 1763: thisloop->depth = ++nesting_depth; ! 1764: thisloop->data.loop.start_label = gen_label_rtx (); ! 1765: thisloop->data.loop.end_label = gen_label_rtx (); ! 1766: thisloop->data.loop.continue_label = thisloop->data.loop.start_label; ! 1767: thisloop->exit_label = exit_flag ? thisloop->data.loop.end_label : 0; ! 1768: loop_stack = thisloop; ! 1769: nesting_stack = thisloop; ! 1770: ! 1771: do_pending_stack_adjust (); ! 1772: emit_queue (); ! 1773: emit_note (0, NOTE_INSN_LOOP_BEG); ! 1774: emit_label (thisloop->data.loop.start_label); ! 1775: ! 1776: return thisloop; ! 1777: } ! 1778: ! 1779: /* Like expand_start_loop but for a loop where the continuation point ! 1780: (for expand_continue_loop) will be specified explicitly. */ ! 1781: ! 1782: struct nesting * ! 1783: expand_start_loop_continue_elsewhere (exit_flag) ! 1784: int exit_flag; ! 1785: { ! 1786: struct nesting *thisloop = expand_start_loop (exit_flag); ! 1787: loop_stack->data.loop.continue_label = gen_label_rtx (); ! 1788: return thisloop; ! 1789: } ! 1790: ! 1791: /* Specify the continuation point for a loop started with ! 1792: expand_start_loop_continue_elsewhere. ! 1793: Use this at the point in the code to which a continue statement ! 1794: should jump. */ ! 1795: ! 1796: void ! 1797: expand_loop_continue_here () ! 1798: { ! 1799: do_pending_stack_adjust (); ! 1800: emit_note (0, NOTE_INSN_LOOP_CONT); ! 1801: emit_label (loop_stack->data.loop.continue_label); ! 1802: } ! 1803: ! 1804: /* Finish a loop. Generate a jump back to the top and the loop-exit label. ! 1805: Pop the block off of loop_stack. */ ! 1806: ! 1807: void ! 1808: expand_end_loop () ! 1809: { ! 1810: register rtx insn = get_last_insn (); ! 1811: register rtx start_label = loop_stack->data.loop.start_label; ! 1812: rtx last_test_insn = 0; ! 1813: int num_insns = 0; ! 1814: ! 1815: /* Mark the continue-point at the top of the loop if none elsewhere. */ ! 1816: if (start_label == loop_stack->data.loop.continue_label) ! 1817: emit_note_before (NOTE_INSN_LOOP_CONT, start_label); ! 1818: ! 1819: do_pending_stack_adjust (); ! 1820: ! 1821: /* If optimizing, perhaps reorder the loop. If the loop ! 1822: starts with a conditional exit, roll that to the end ! 1823: where it will optimize together with the jump back. ! 1824: ! 1825: We look for the last conditional branch to the exit that we encounter ! 1826: before hitting 30 insns or a CALL_INSN. If we see an unconditional ! 1827: branch to the exit first, use it. ! 1828: ! 1829: We must also stop at NOTE_INSN_BLOCK_BEG and NOTE_INSN_BLOCK_END notes ! 1830: because moving them is not valid. */ ! 1831: ! 1832: if (optimize ! 1833: && ! 1834: ! (GET_CODE (insn) == JUMP_INSN ! 1835: && GET_CODE (PATTERN (insn)) == SET ! 1836: && SET_DEST (PATTERN (insn)) == pc_rtx ! 1837: && GET_CODE (SET_SRC (PATTERN (insn))) == IF_THEN_ELSE)) ! 1838: { ! 1839: /* Scan insns from the top of the loop looking for a qualified ! 1840: conditional exit. */ ! 1841: for (insn = NEXT_INSN (loop_stack->data.loop.start_label); insn; ! 1842: insn = NEXT_INSN (insn)) ! 1843: { ! 1844: if (GET_CODE (insn) == CALL_INSN || GET_CODE (insn) == CODE_LABEL) ! 1845: break; ! 1846: ! 1847: if (GET_CODE (insn) == NOTE ! 1848: && (NOTE_LINE_NUMBER (insn) == NOTE_INSN_BLOCK_BEG ! 1849: || NOTE_LINE_NUMBER (insn) == NOTE_INSN_BLOCK_END)) ! 1850: break; ! 1851: ! 1852: if (GET_CODE (insn) == JUMP_INSN || GET_CODE (insn) == INSN) ! 1853: num_insns++; ! 1854: ! 1855: if (last_test_insn && num_insns > 30) ! 1856: break; ! 1857: ! 1858: if (GET_CODE (insn) == JUMP_INSN && GET_CODE (PATTERN (insn)) == SET ! 1859: && SET_DEST (PATTERN (insn)) == pc_rtx ! 1860: && GET_CODE (SET_SRC (PATTERN (insn))) == IF_THEN_ELSE ! 1861: && ((GET_CODE (XEXP (SET_SRC (PATTERN (insn)), 1)) == LABEL_REF ! 1862: && (XEXP (XEXP (SET_SRC (PATTERN (insn)), 1), 0) ! 1863: == loop_stack->data.loop.end_label)) ! 1864: || (GET_CODE (XEXP (SET_SRC (PATTERN (insn)), 2)) == LABEL_REF ! 1865: && (XEXP (XEXP (SET_SRC (PATTERN (insn)), 2), 0) ! 1866: == loop_stack->data.loop.end_label)))) ! 1867: last_test_insn = insn; ! 1868: ! 1869: if (last_test_insn == 0 && GET_CODE (insn) == JUMP_INSN ! 1870: && GET_CODE (PATTERN (insn)) == SET ! 1871: && SET_DEST (PATTERN (insn)) == pc_rtx ! 1872: && GET_CODE (SET_SRC (PATTERN (insn))) == LABEL_REF ! 1873: && (XEXP (SET_SRC (PATTERN (insn)), 0) ! 1874: == loop_stack->data.loop.end_label)) ! 1875: /* Include BARRIER. */ ! 1876: last_test_insn = NEXT_INSN (insn); ! 1877: } ! 1878: ! 1879: if (last_test_insn != 0 && last_test_insn != get_last_insn ()) ! 1880: { ! 1881: /* We found one. Move everything from there up ! 1882: to the end of the loop, and add a jump into the loop ! 1883: to jump to there. */ ! 1884: register rtx newstart_label = gen_label_rtx (); ! 1885: register rtx start_move = start_label; ! 1886: ! 1887: /* If the start label is preceeded by a NOTE_INSN_LOOP_CONT note, ! 1888: then we want to move this note also. */ ! 1889: if (GET_CODE (PREV_INSN (start_move)) == NOTE ! 1890: && (NOTE_LINE_NUMBER (PREV_INSN (start_move)) ! 1891: == NOTE_INSN_LOOP_CONT)) ! 1892: start_move = PREV_INSN (start_move); ! 1893: ! 1894: emit_label_after (newstart_label, PREV_INSN (start_move)); ! 1895: reorder_insns (start_move, last_test_insn, get_last_insn ()); ! 1896: emit_jump_insn_after (gen_jump (start_label), ! 1897: PREV_INSN (newstart_label)); ! 1898: emit_barrier_after (PREV_INSN (newstart_label)); ! 1899: start_label = newstart_label; ! 1900: } ! 1901: } ! 1902: ! 1903: emit_jump (start_label); ! 1904: emit_note (0, NOTE_INSN_LOOP_END); ! 1905: emit_label (loop_stack->data.loop.end_label); ! 1906: ! 1907: POPSTACK (loop_stack); ! 1908: ! 1909: last_expr_type = 0; ! 1910: } ! 1911: ! 1912: /* Generate a jump to the current loop's continue-point. ! 1913: This is usually the top of the loop, but may be specified ! 1914: explicitly elsewhere. If not currently inside a loop, ! 1915: return 0 and do nothing; caller will print an error message. */ ! 1916: ! 1917: int ! 1918: expand_continue_loop (whichloop) ! 1919: struct nesting *whichloop; ! 1920: { ! 1921: last_expr_type = 0; ! 1922: if (whichloop == 0) ! 1923: whichloop = loop_stack; ! 1924: if (whichloop == 0) ! 1925: return 0; ! 1926: expand_goto_internal (0, whichloop->data.loop.continue_label, 0); ! 1927: return 1; ! 1928: } ! 1929: ! 1930: /* Generate a jump to exit the current loop. If not currently inside a loop, ! 1931: return 0 and do nothing; caller will print an error message. */ ! 1932: ! 1933: int ! 1934: expand_exit_loop (whichloop) ! 1935: struct nesting *whichloop; ! 1936: { ! 1937: last_expr_type = 0; ! 1938: if (whichloop == 0) ! 1939: whichloop = loop_stack; ! 1940: if (whichloop == 0) ! 1941: return 0; ! 1942: expand_goto_internal (0, whichloop->data.loop.end_label, 0); ! 1943: return 1; ! 1944: } ! 1945: ! 1946: /* Generate a conditional jump to exit the current loop if COND ! 1947: evaluates to zero. If not currently inside a loop, ! 1948: return 0 and do nothing; caller will print an error message. */ ! 1949: ! 1950: int ! 1951: expand_exit_loop_if_false (whichloop, cond) ! 1952: struct nesting *whichloop; ! 1953: tree cond; ! 1954: { ! 1955: last_expr_type = 0; ! 1956: if (whichloop == 0) ! 1957: whichloop = loop_stack; ! 1958: if (whichloop == 0) ! 1959: return 0; ! 1960: do_jump (cond, whichloop->data.loop.end_label, NULL); ! 1961: return 1; ! 1962: } ! 1963: ! 1964: /* Return non-zero if we should preserve sub-expressions as separate ! 1965: pseudos. We never do so if we aren't optimizing. We always do so ! 1966: if -fexpensive-optimizations. ! 1967: ! 1968: Otherwise, we only do so if we are in the "early" part of a loop. I.e., ! 1969: the loop may still be a small one. */ ! 1970: ! 1971: int ! 1972: preserve_subexpressions_p () ! 1973: { ! 1974: rtx insn; ! 1975: ! 1976: if (flag_expensive_optimizations) ! 1977: return 1; ! 1978: ! 1979: if (optimize == 0 || loop_stack == 0) ! 1980: return 0; ! 1981: ! 1982: insn = get_last_insn_anywhere (); ! 1983: ! 1984: return (insn ! 1985: && (INSN_UID (insn) - INSN_UID (loop_stack->data.loop.start_label) ! 1986: < n_non_fixed_regs * 3)); ! 1987: ! 1988: } ! 1989: ! 1990: /* Generate a jump to exit the current loop, conditional, binding contour ! 1991: or case statement. Not all such constructs are visible to this function, ! 1992: only those started with EXIT_FLAG nonzero. Individual languages use ! 1993: the EXIT_FLAG parameter to control which kinds of constructs you can ! 1994: exit this way. ! 1995: ! 1996: If not currently inside anything that can be exited, ! 1997: return 0 and do nothing; caller will print an error message. */ ! 1998: ! 1999: int ! 2000: expand_exit_something () ! 2001: { ! 2002: struct nesting *n; ! 2003: last_expr_type = 0; ! 2004: for (n = nesting_stack; n; n = n->all) ! 2005: if (n->exit_label != 0) ! 2006: { ! 2007: expand_goto_internal (0, n->exit_label, 0); ! 2008: return 1; ! 2009: } ! 2010: ! 2011: return 0; ! 2012: } ! 2013: ! 2014: /* Generate RTL to return from the current function, with no value. ! 2015: (That is, we do not do anything about returning any value.) */ ! 2016: ! 2017: void ! 2018: expand_null_return () ! 2019: { ! 2020: struct nesting *block = block_stack; ! 2021: rtx last_insn = 0; ! 2022: ! 2023: /* Does any pending block have cleanups? */ ! 2024: ! 2025: while (block && block->data.block.cleanups == 0) ! 2026: block = block->next; ! 2027: ! 2028: /* If yes, use a goto to return, since that runs cleanups. */ ! 2029: ! 2030: expand_null_return_1 (last_insn, block != 0); ! 2031: } ! 2032: ! 2033: /* Generate RTL to return from the current function, with value VAL. */ ! 2034: ! 2035: void ! 2036: expand_value_return (val) ! 2037: rtx val; ! 2038: { ! 2039: struct nesting *block = block_stack; ! 2040: rtx last_insn = get_last_insn (); ! 2041: rtx return_reg = DECL_RTL (DECL_RESULT (current_function_decl)); ! 2042: ! 2043: /* Copy the value to the return location ! 2044: unless it's already there. */ ! 2045: ! 2046: if (return_reg != val) ! 2047: emit_move_insn (return_reg, val); ! 2048: if (GET_CODE (return_reg) == REG ! 2049: && REGNO (return_reg) < FIRST_PSEUDO_REGISTER) ! 2050: emit_insn (gen_rtx (USE, VOIDmode, return_reg)); ! 2051: ! 2052: /* Does any pending block have cleanups? */ ! 2053: ! 2054: while (block && block->data.block.cleanups == 0) ! 2055: block = block->next; ! 2056: ! 2057: /* If yes, use a goto to return, since that runs cleanups. ! 2058: Use LAST_INSN to put cleanups *before* the move insn emitted above. */ ! 2059: ! 2060: expand_null_return_1 (last_insn, block != 0); ! 2061: } ! 2062: ! 2063: /* Output a return with no value. If LAST_INSN is nonzero, ! 2064: pretend that the return takes place after LAST_INSN. ! 2065: If USE_GOTO is nonzero then don't use a return instruction; ! 2066: go to the return label instead. This causes any cleanups ! 2067: of pending blocks to be executed normally. */ ! 2068: ! 2069: static void ! 2070: expand_null_return_1 (last_insn, use_goto) ! 2071: rtx last_insn; ! 2072: int use_goto; ! 2073: { ! 2074: rtx end_label = cleanup_label ? cleanup_label : return_label; ! 2075: ! 2076: clear_pending_stack_adjust (); ! 2077: do_pending_stack_adjust (); ! 2078: last_expr_type = 0; ! 2079: ! 2080: /* PCC-struct return always uses an epilogue. */ ! 2081: if (current_function_returns_pcc_struct || use_goto) ! 2082: { ! 2083: if (end_label == 0) ! 2084: end_label = return_label = gen_label_rtx (); ! 2085: expand_goto_internal (0, end_label, last_insn); ! 2086: return; ! 2087: } ! 2088: ! 2089: /* Otherwise output a simple return-insn if one is available, ! 2090: unless it won't do the job. */ ! 2091: #ifdef HAVE_return ! 2092: if (HAVE_return && use_goto == 0 && cleanup_label == 0) ! 2093: { ! 2094: emit_jump_insn (gen_return ()); ! 2095: emit_barrier (); ! 2096: return; ! 2097: } ! 2098: #endif ! 2099: ! 2100: /* Otherwise jump to the epilogue. */ ! 2101: expand_goto_internal (0, end_label, last_insn); ! 2102: } ! 2103: ! 2104: /* Generate RTL to evaluate the expression RETVAL and return it ! 2105: from the current function. */ ! 2106: ! 2107: void ! 2108: expand_return (retval) ! 2109: tree retval; ! 2110: { ! 2111: /* If there are any cleanups to be performed, then they will ! 2112: be inserted following LAST_INSN. It is desirable ! 2113: that the last_insn, for such purposes, should be the ! 2114: last insn before computing the return value. Otherwise, cleanups ! 2115: which call functions can clobber the return value. */ ! 2116: /* ??? rms: I think that is erroneous, because in C++ it would ! 2117: run destructors on variables that might be used in the subsequent ! 2118: computation of the return value. */ ! 2119: rtx last_insn = 0; ! 2120: register rtx val = 0; ! 2121: register rtx op0; ! 2122: tree retval_rhs; ! 2123: int cleanups; ! 2124: struct nesting *block; ! 2125: ! 2126: /* If function wants no value, give it none. */ ! 2127: if (TREE_CODE (TREE_TYPE (TREE_TYPE (current_function_decl))) == VOID_TYPE) ! 2128: { ! 2129: expand_expr (retval, 0, VOIDmode, 0); ! 2130: expand_null_return (); ! 2131: return; ! 2132: } ! 2133: ! 2134: /* Are any cleanups needed? E.g. C++ destructors to be run? */ ! 2135: cleanups = any_pending_cleanups (1); ! 2136: ! 2137: if (TREE_CODE (retval) == RESULT_DECL) ! 2138: retval_rhs = retval; ! 2139: else if ((TREE_CODE (retval) == MODIFY_EXPR || TREE_CODE (retval) == INIT_EXPR) ! 2140: && TREE_CODE (TREE_OPERAND (retval, 0)) == RESULT_DECL) ! 2141: retval_rhs = TREE_OPERAND (retval, 1); ! 2142: else if (TREE_TYPE (retval) == void_type_node) ! 2143: /* Recognize tail-recursive call to void function. */ ! 2144: retval_rhs = retval; ! 2145: else ! 2146: retval_rhs = NULL_TREE; ! 2147: ! 2148: /* Only use `last_insn' if there are cleanups which must be run. */ ! 2149: if (cleanups || cleanup_label != 0) ! 2150: last_insn = get_last_insn (); ! 2151: ! 2152: /* Distribute return down conditional expr if either of the sides ! 2153: may involve tail recursion (see test below). This enhances the number ! 2154: of tail recursions we see. Don't do this always since it can produce ! 2155: sub-optimal code in some cases and we distribute assignments into ! 2156: conditional expressions when it would help. */ ! 2157: ! 2158: if (optimize && retval_rhs != 0 ! 2159: && frame_offset == 0 ! 2160: && TREE_CODE (retval_rhs) == COND_EXPR ! 2161: && (TREE_CODE (TREE_OPERAND (retval_rhs, 1)) == CALL_EXPR ! 2162: || TREE_CODE (TREE_OPERAND (retval_rhs, 2)) == CALL_EXPR)) ! 2163: { ! 2164: rtx label = gen_label_rtx (); ! 2165: do_jump (TREE_OPERAND (retval_rhs, 0), label, 0); ! 2166: expand_return (build (MODIFY_EXPR, TREE_TYPE (current_function_decl), ! 2167: DECL_RESULT (current_function_decl), ! 2168: TREE_OPERAND (retval_rhs, 1))); ! 2169: emit_label (label); ! 2170: expand_return (build (MODIFY_EXPR, TREE_TYPE (current_function_decl), ! 2171: DECL_RESULT (current_function_decl), ! 2172: TREE_OPERAND (retval_rhs, 2))); ! 2173: return; ! 2174: } ! 2175: ! 2176: /* For tail-recursive call to current function, ! 2177: just jump back to the beginning. ! 2178: It's unsafe if any auto variable in this function ! 2179: has its address taken; for simplicity, ! 2180: require stack frame to be empty. */ ! 2181: if (optimize && retval_rhs != 0 ! 2182: && frame_offset == 0 ! 2183: && TREE_CODE (retval_rhs) == CALL_EXPR ! 2184: && TREE_CODE (TREE_OPERAND (retval_rhs, 0)) == ADDR_EXPR ! 2185: && TREE_OPERAND (TREE_OPERAND (retval_rhs, 0), 0) == current_function_decl ! 2186: /* Finish checking validity, and if valid emit code ! 2187: to set the argument variables for the new call. */ ! 2188: && tail_recursion_args (TREE_OPERAND (retval_rhs, 1), ! 2189: DECL_ARGUMENTS (current_function_decl))) ! 2190: { ! 2191: if (tail_recursion_label == 0) ! 2192: { ! 2193: tail_recursion_label = gen_label_rtx (); ! 2194: emit_label_after (tail_recursion_label, ! 2195: tail_recursion_reentry); ! 2196: } ! 2197: expand_goto_internal (0, tail_recursion_label, last_insn); ! 2198: emit_barrier (); ! 2199: return; ! 2200: } ! 2201: #ifdef HAVE_return ! 2202: /* This optimization is safe if there are local cleanups ! 2203: because expand_null_return takes care of them. ! 2204: ??? I think it should also be safe when there is a cleanup label, ! 2205: because expand_null_return takes care of them, too. ! 2206: Any reason why not? */ ! 2207: if (HAVE_return && cleanup_label == 0 ! 2208: && ! current_function_returns_pcc_struct) ! 2209: { ! 2210: /* If this is return x == y; then generate ! 2211: if (x == y) return 1; else return 0; ! 2212: if we can do it with explicit return insns. */ ! 2213: if (retval_rhs) ! 2214: switch (TREE_CODE (retval_rhs)) ! 2215: { ! 2216: case EQ_EXPR: ! 2217: case NE_EXPR: ! 2218: case GT_EXPR: ! 2219: case GE_EXPR: ! 2220: case LT_EXPR: ! 2221: case LE_EXPR: ! 2222: case TRUTH_ANDIF_EXPR: ! 2223: case TRUTH_ORIF_EXPR: ! 2224: case TRUTH_AND_EXPR: ! 2225: case TRUTH_OR_EXPR: ! 2226: case TRUTH_NOT_EXPR: ! 2227: op0 = gen_label_rtx (); ! 2228: jumpifnot (retval_rhs, op0); ! 2229: expand_value_return (const1_rtx); ! 2230: emit_label (op0); ! 2231: expand_value_return (const0_rtx); ! 2232: return; ! 2233: } ! 2234: } ! 2235: #endif /* HAVE_return */ ! 2236: ! 2237: if (cleanups ! 2238: && retval_rhs != 0 ! 2239: && TREE_TYPE (retval_rhs) != void_type_node ! 2240: && GET_CODE (DECL_RTL (DECL_RESULT (current_function_decl))) == REG) ! 2241: { ! 2242: /* Calculate the return value into a pseudo reg. */ ! 2243: val = expand_expr (retval_rhs, 0, VOIDmode, 0); ! 2244: emit_queue (); ! 2245: /* All temporaries have now been used. */ ! 2246: free_temp_slots (); ! 2247: /* Return the calculated value, doing cleanups first. */ ! 2248: expand_value_return (val); ! 2249: } ! 2250: else ! 2251: { ! 2252: /* No cleanups or no hard reg used; ! 2253: calculate value into hard return reg. */ ! 2254: expand_expr (retval, 0, VOIDmode, 0); ! 2255: emit_queue (); ! 2256: free_temp_slots (); ! 2257: expand_value_return (DECL_RTL (DECL_RESULT (current_function_decl))); ! 2258: } ! 2259: } ! 2260: ! 2261: /* Return 1 if the end of the generated RTX is not a barrier. ! 2262: This means code already compiled can drop through. */ ! 2263: ! 2264: int ! 2265: drop_through_at_end_p () ! 2266: { ! 2267: rtx insn = get_last_insn (); ! 2268: while (insn && GET_CODE (insn) == NOTE) ! 2269: insn = PREV_INSN (insn); ! 2270: return insn && GET_CODE (insn) != BARRIER; ! 2271: } ! 2272: ! 2273: /* Emit code to alter this function's formal parms for a tail-recursive call. ! 2274: ACTUALS is a list of actual parameter expressions (chain of TREE_LISTs). ! 2275: FORMALS is the chain of decls of formals. ! 2276: Return 1 if this can be done; ! 2277: otherwise return 0 and do not emit any code. */ ! 2278: ! 2279: static int ! 2280: tail_recursion_args (actuals, formals) ! 2281: tree actuals, formals; ! 2282: { ! 2283: register tree a = actuals, f = formals; ! 2284: register int i; ! 2285: register rtx *argvec; ! 2286: ! 2287: /* Check that number and types of actuals are compatible ! 2288: with the formals. This is not always true in valid C code. ! 2289: Also check that no formal needs to be addressable ! 2290: and that all formals are scalars. */ ! 2291: ! 2292: /* Also count the args. */ ! 2293: ! 2294: for (a = actuals, f = formals, i = 0; a && f; a = TREE_CHAIN (a), f = TREE_CHAIN (f), i++) ! 2295: { ! 2296: if (TREE_TYPE (TREE_VALUE (a)) != TREE_TYPE (f)) ! 2297: return 0; ! 2298: if (GET_CODE (DECL_RTL (f)) != REG || DECL_MODE (f) == BLKmode) ! 2299: return 0; ! 2300: } ! 2301: if (a != 0 || f != 0) ! 2302: return 0; ! 2303: ! 2304: /* Compute all the actuals. */ ! 2305: ! 2306: argvec = (rtx *) alloca (i * sizeof (rtx)); ! 2307: ! 2308: for (a = actuals, i = 0; a; a = TREE_CHAIN (a), i++) ! 2309: argvec[i] = expand_expr (TREE_VALUE (a), 0, VOIDmode, 0); ! 2310: ! 2311: /* Find which actual values refer to current values of previous formals. ! 2312: Copy each of them now, before any formal is changed. */ ! 2313: ! 2314: for (a = actuals, i = 0; a; a = TREE_CHAIN (a), i++) ! 2315: { ! 2316: int copy = 0; ! 2317: register int j; ! 2318: for (f = formals, j = 0; j < i; f = TREE_CHAIN (f), j++) ! 2319: if (reg_mentioned_p (DECL_RTL (f), argvec[i])) ! 2320: { copy = 1; break; } ! 2321: if (copy) ! 2322: argvec[i] = copy_to_reg (argvec[i]); ! 2323: } ! 2324: ! 2325: /* Store the values of the actuals into the formals. */ ! 2326: ! 2327: for (f = formals, a = actuals, i = 0; f; ! 2328: f = TREE_CHAIN (f), a = TREE_CHAIN (a), i++) ! 2329: { ! 2330: if (DECL_MODE (f) == GET_MODE (argvec[i])) ! 2331: emit_move_insn (DECL_RTL (f), argvec[i]); ! 2332: else ! 2333: convert_move (DECL_RTL (f), argvec[i], ! 2334: TREE_UNSIGNED (TREE_TYPE (TREE_VALUE (a)))); ! 2335: } ! 2336: ! 2337: free_temp_slots (); ! 2338: return 1; ! 2339: } ! 2340: ! 2341: /* Generate the RTL code for entering a binding contour. ! 2342: The variables are declared one by one, by calls to `expand_decl'. ! 2343: ! 2344: EXIT_FLAG is nonzero if this construct should be visible to ! 2345: `exit_something'. */ ! 2346: ! 2347: void ! 2348: expand_start_bindings (exit_flag) ! 2349: int exit_flag; ! 2350: { ! 2351: struct nesting *thisblock = ALLOC_NESTING (); ! 2352: ! 2353: rtx note = emit_note (0, NOTE_INSN_BLOCK_BEG); ! 2354: ! 2355: /* Make an entry on block_stack for the block we are entering. */ ! 2356: ! 2357: thisblock->next = block_stack; ! 2358: thisblock->all = nesting_stack; ! 2359: thisblock->depth = ++nesting_depth; ! 2360: thisblock->data.block.stack_level = 0; ! 2361: thisblock->data.block.cleanups = 0; ! 2362: thisblock->data.block.function_call_count = 0; ! 2363: #if 0 ! 2364: if (block_stack) ! 2365: { ! 2366: if (block_stack->data.block.cleanups == NULL_TREE ! 2367: && (block_stack->data.block.outer_cleanups == NULL_TREE ! 2368: || block_stack->data.block.outer_cleanups == empty_cleanup_list)) ! 2369: thisblock->data.block.outer_cleanups = empty_cleanup_list; ! 2370: else ! 2371: thisblock->data.block.outer_cleanups ! 2372: = tree_cons (NULL_TREE, block_stack->data.block.cleanups, ! 2373: block_stack->data.block.outer_cleanups); ! 2374: } ! 2375: else ! 2376: thisblock->data.block.outer_cleanups = 0; ! 2377: #endif ! 2378: #if 1 ! 2379: if (block_stack ! 2380: && !(block_stack->data.block.cleanups == NULL_TREE ! 2381: && block_stack->data.block.outer_cleanups == NULL_TREE)) ! 2382: thisblock->data.block.outer_cleanups ! 2383: = tree_cons (NULL_TREE, block_stack->data.block.cleanups, ! 2384: block_stack->data.block.outer_cleanups); ! 2385: else ! 2386: thisblock->data.block.outer_cleanups = 0; ! 2387: #endif ! 2388: thisblock->data.block.label_chain = 0; ! 2389: thisblock->data.block.innermost_stack_block = stack_block_stack; ! 2390: thisblock->data.block.first_insn = note; ! 2391: thisblock->data.block.block_start_count = ++block_start_count; ! 2392: thisblock->exit_label = exit_flag ? gen_label_rtx () : 0; ! 2393: block_stack = thisblock; ! 2394: nesting_stack = thisblock; ! 2395: ! 2396: /* Make a new level for allocating stack slots. */ ! 2397: push_temp_slots (); ! 2398: } ! 2399: ! 2400: /* Generate RTL code to terminate a binding contour. ! 2401: VARS is the chain of VAR_DECL nodes ! 2402: for the variables bound in this contour. ! 2403: MARK_ENDS is nonzero if we should put a note at the beginning ! 2404: and end of this binding contour. ! 2405: ! 2406: DONT_JUMP_IN is nonzero if it is not valid to jump into this contour. ! 2407: (That is true automatically if the contour has a saved stack level.) */ ! 2408: ! 2409: void ! 2410: expand_end_bindings (vars, mark_ends, dont_jump_in) ! 2411: tree vars; ! 2412: int mark_ends; ! 2413: int dont_jump_in; ! 2414: { ! 2415: register struct nesting *thisblock = block_stack; ! 2416: register tree decl; ! 2417: ! 2418: if (warn_unused) ! 2419: for (decl = vars; decl; decl = TREE_CHAIN (decl)) ! 2420: if (! TREE_USED (decl) && TREE_CODE (decl) == VAR_DECL) ! 2421: warning_with_decl (decl, "unused variable `%s'"); ! 2422: ! 2423: /* Mark the beginning and end of the scope if requested. */ ! 2424: ! 2425: if (mark_ends) ! 2426: emit_note (0, NOTE_INSN_BLOCK_END); ! 2427: else ! 2428: /* Get rid of the beginning-mark if we don't make an end-mark. */ ! 2429: NOTE_LINE_NUMBER (thisblock->data.block.first_insn) = NOTE_INSN_DELETED; ! 2430: ! 2431: if (thisblock->exit_label) ! 2432: { ! 2433: do_pending_stack_adjust (); ! 2434: emit_label (thisblock->exit_label); ! 2435: } ! 2436: ! 2437: /* If necessary, make a handler for nonlocal gotos taking ! 2438: place in the function calls in this block. */ ! 2439: if (function_call_count != thisblock->data.block.function_call_count ! 2440: && nonlocal_labels ! 2441: /* Make handler for outermost block ! 2442: if there were any nonlocal gotos to this function. */ ! 2443: && (thisblock->next == 0 ? current_function_has_nonlocal_label ! 2444: /* Make handler for inner block if it has something ! 2445: special to do when you jump out of it. */ ! 2446: : (thisblock->data.block.cleanups != 0 ! 2447: || thisblock->data.block.stack_level != 0))) ! 2448: { ! 2449: tree link; ! 2450: rtx afterward = gen_label_rtx (); ! 2451: rtx handler_label = gen_label_rtx (); ! 2452: rtx save_receiver = gen_reg_rtx (Pmode); ! 2453: ! 2454: /* Don't let jump_optimize delete the handler. */ ! 2455: LABEL_PRESERVE_P (handler_label) = 1; ! 2456: ! 2457: /* Record the handler address in the stack slot for that purpose, ! 2458: during this block, saving and restoring the outer value. */ ! 2459: if (thisblock->next != 0) ! 2460: { ! 2461: emit_move_insn (nonlocal_goto_handler_slot, save_receiver); ! 2462: emit_insn_before (gen_move_insn (save_receiver, ! 2463: nonlocal_goto_handler_slot), ! 2464: thisblock->data.block.first_insn); ! 2465: } ! 2466: emit_insn_before (gen_move_insn (nonlocal_goto_handler_slot, ! 2467: gen_rtx (LABEL_REF, Pmode, ! 2468: handler_label)), ! 2469: thisblock->data.block.first_insn); ! 2470: ! 2471: /* Jump around the handler; it runs only when specially invoked. */ ! 2472: emit_jump (afterward); ! 2473: emit_label (handler_label); ! 2474: ! 2475: #ifdef HAVE_nonlocal_goto ! 2476: if (! HAVE_nonlocal_goto) ! 2477: #endif ! 2478: /* First adjust our frame pointer to its actual value. It was ! 2479: previously set to the start of the virtual area corresponding to ! 2480: the stacked variables when we branched here and now needs to be ! 2481: adjusted to the actual hardware fp value. ! 2482: ! 2483: Assignments are to virtual registers are converted by ! 2484: instantiate_virtual_regs into the corresponding assignment ! 2485: to the underlying register (fp in this case) that makes ! 2486: the original assignment true. ! 2487: So the following insn will actually be ! 2488: decrementing fp by STARTING_FRAME_OFFSET. */ ! 2489: emit_move_insn (virtual_stack_vars_rtx, frame_pointer_rtx); ! 2490: ! 2491: #if ARG_POINTER_REGNUM != FRAME_POINTER_REGNUM ! 2492: if (fixed_regs[ARG_POINTER_REGNUM]) ! 2493: { ! 2494: /* Now restore our arg pointer from the address at which it was saved ! 2495: in our stack frame. ! 2496: If there hasn't be space allocated for it yet, make some now. */ ! 2497: if (arg_pointer_save_area == 0) ! 2498: arg_pointer_save_area ! 2499: = assign_stack_local (Pmode, GET_MODE_SIZE (Pmode), 0); ! 2500: emit_move_insn (virtual_incoming_args_rtx, arg_pointer_save_area); ! 2501: } ! 2502: #endif ! 2503: ! 2504: /* The handler expects the desired label address in the static chain ! 2505: register. It tests the address and does an appropriate jump ! 2506: to whatever label is desired. */ ! 2507: for (link = nonlocal_labels; link; link = TREE_CHAIN (link)) ! 2508: /* Skip any labels we shouldn't be able to jump to from here. */ ! 2509: if (! DECL_TOO_LATE (TREE_VALUE (link))) ! 2510: { ! 2511: rtx not_this = gen_label_rtx (); ! 2512: rtx this = gen_label_rtx (); ! 2513: do_jump_if_equal (static_chain_rtx, ! 2514: gen_rtx (LABEL_REF, Pmode, DECL_RTL (TREE_VALUE (link))), ! 2515: this, 0); ! 2516: emit_jump (not_this); ! 2517: emit_label (this); ! 2518: expand_goto (TREE_VALUE (link)); ! 2519: emit_label (not_this); ! 2520: } ! 2521: /* If label is not recognized, abort. */ ! 2522: emit_library_call (gen_rtx (SYMBOL_REF, Pmode, "abort"), 0, ! 2523: VOIDmode, 0); ! 2524: emit_label (afterward); ! 2525: } ! 2526: ! 2527: /* Don't allow jumping into a block that has cleanups or a stack level. */ ! 2528: if (dont_jump_in ! 2529: || thisblock->data.block.stack_level != 0 ! 2530: || thisblock->data.block.cleanups != 0) ! 2531: { ! 2532: struct label_chain *chain; ! 2533: ! 2534: /* Any labels in this block are no longer valid to go to. ! 2535: Mark them to cause an error message. */ ! 2536: for (chain = thisblock->data.block.label_chain; chain; chain = chain->next) ! 2537: { ! 2538: DECL_TOO_LATE (chain->label) = 1; ! 2539: /* If any goto without a fixup came to this label, ! 2540: that must be an error, because gotos without fixups ! 2541: come from outside all saved stack-levels and all cleanups. */ ! 2542: if (TREE_ADDRESSABLE (chain->label)) ! 2543: error_with_decl (chain->label, ! 2544: "label `%s' used before containing binding contour"); ! 2545: } ! 2546: } ! 2547: ! 2548: /* Restore stack level in effect before the block ! 2549: (only if variable-size objects allocated). */ ! 2550: /* Perform any cleanups associated with the block. */ ! 2551: ! 2552: if (thisblock->data.block.stack_level != 0 ! 2553: || thisblock->data.block.cleanups != 0) ! 2554: { ! 2555: /* Don't let cleanups affect ({...}) constructs. */ ! 2556: int old_expr_stmts_for_value = expr_stmts_for_value; ! 2557: rtx old_last_expr_value = last_expr_value; ! 2558: tree old_last_expr_type = last_expr_type; ! 2559: expr_stmts_for_value = 0; ! 2560: ! 2561: /* Do the cleanups. */ ! 2562: expand_cleanups (thisblock->data.block.cleanups, 0); ! 2563: do_pending_stack_adjust (); ! 2564: ! 2565: expr_stmts_for_value = old_expr_stmts_for_value; ! 2566: last_expr_value = old_last_expr_value; ! 2567: last_expr_type = old_last_expr_type; ! 2568: ! 2569: /* Restore the stack level. */ ! 2570: ! 2571: if (thisblock->data.block.stack_level != 0) ! 2572: { ! 2573: emit_move_insn (stack_pointer_rtx, ! 2574: thisblock->data.block.stack_level); ! 2575: if (nonlocal_goto_stack_level != 0) ! 2576: emit_move_insn (nonlocal_goto_stack_level, stack_pointer_rtx); ! 2577: } ! 2578: ! 2579: /* Any gotos out of this block must also do these things. ! 2580: Also report any gotos with fixups that came to labels in this level. */ ! 2581: fixup_gotos (thisblock, ! 2582: thisblock->data.block.stack_level, ! 2583: thisblock->data.block.cleanups, ! 2584: thisblock->data.block.first_insn, ! 2585: dont_jump_in); ! 2586: } ! 2587: ! 2588: /* If doing stupid register allocation, make sure lives of all ! 2589: register variables declared here extend thru end of scope. */ ! 2590: ! 2591: if (obey_regdecls) ! 2592: for (decl = vars; decl; decl = TREE_CHAIN (decl)) ! 2593: { ! 2594: rtx rtl = DECL_RTL (decl); ! 2595: if (TREE_CODE (decl) == VAR_DECL && rtl != 0) ! 2596: use_variable (rtl); ! 2597: } ! 2598: ! 2599: /* Restore block_stack level for containing block. */ ! 2600: ! 2601: stack_block_stack = thisblock->data.block.innermost_stack_block; ! 2602: POPSTACK (block_stack); ! 2603: ! 2604: /* Pop the stack slot nesting and free any slots at this level. */ ! 2605: pop_temp_slots (); ! 2606: } ! 2607: ! 2608: /* Generate RTL for the automatic variable declaration DECL. ! 2609: (Other kinds of declarations are simply ignored if seen here.) ! 2610: CLEANUP is an expression to be executed at exit from this binding contour; ! 2611: for example, in C++, it might call the destructor for this variable. ! 2612: ! 2613: If CLEANUP contains any SAVE_EXPRs, then you must preevaluate them ! 2614: either before or after calling `expand_decl' but before compiling ! 2615: any subsequent expressions. This is because CLEANUP may be expanded ! 2616: more than once, on different branches of execution. ! 2617: For the same reason, CLEANUP may not contain a CALL_EXPR ! 2618: except as its topmost node--else `preexpand_calls' would get confused. ! 2619: ! 2620: If CLEANUP is nonzero and DECL is zero, we record a cleanup ! 2621: that is not associated with any particular variable. ! 2622: ! 2623: There is no special support here for C++ constructors. ! 2624: They should be handled by the proper code in DECL_INITIAL. */ ! 2625: ! 2626: void ! 2627: expand_decl (decl) ! 2628: register tree decl; ! 2629: { ! 2630: struct nesting *thisblock = block_stack; ! 2631: tree type = TREE_TYPE (decl); ! 2632: ! 2633: /* Only automatic variables need any expansion done. ! 2634: Static and external variables, and external functions, ! 2635: will be handled by `assemble_variable' (called from finish_decl). ! 2636: TYPE_DECL and CONST_DECL require nothing. ! 2637: PARM_DECLs are handled in `assign_parms'. */ ! 2638: ! 2639: if (TREE_CODE (decl) != VAR_DECL) ! 2640: return; ! 2641: if (TREE_STATIC (decl) || TREE_EXTERNAL (decl)) ! 2642: return; ! 2643: ! 2644: /* Create the RTL representation for the variable. */ ! 2645: ! 2646: if (type == error_mark_node) ! 2647: DECL_RTL (decl) = gen_rtx (MEM, BLKmode, const0_rtx); ! 2648: else if (DECL_SIZE (decl) == 0) ! 2649: /* Variable with incomplete type. */ ! 2650: { ! 2651: if (DECL_INITIAL (decl) == 0) ! 2652: /* Error message was already done; now avoid a crash. */ ! 2653: DECL_RTL (decl) = assign_stack_temp (DECL_MODE (decl), 0, 1); ! 2654: else ! 2655: /* An initializer is going to decide the size of this array. ! 2656: Until we know the size, represent its address with a reg. */ ! 2657: DECL_RTL (decl) = gen_rtx (MEM, BLKmode, gen_reg_rtx (Pmode)); ! 2658: } ! 2659: else if (DECL_MODE (decl) != BLKmode ! 2660: /* If -ffloat-store, don't put explicit float vars ! 2661: into regs. */ ! 2662: && !(flag_float_store ! 2663: && TREE_CODE (type) == REAL_TYPE) ! 2664: && ! TREE_THIS_VOLATILE (decl) ! 2665: && ! TREE_ADDRESSABLE (decl) ! 2666: && (TREE_REGDECL (decl) || ! obey_regdecls)) ! 2667: { ! 2668: /* Automatic variable that can go in a register. */ ! 2669: DECL_RTL (decl) = gen_reg_rtx (DECL_MODE (decl)); ! 2670: if (TREE_CODE (type) == POINTER_TYPE) ! 2671: mark_reg_pointer (DECL_RTL (decl)); ! 2672: REG_USERVAR_P (DECL_RTL (decl)) = 1; ! 2673: } ! 2674: else if (TREE_CODE (DECL_SIZE (decl)) == INTEGER_CST) ! 2675: { ! 2676: /* Variable of fixed size that goes on the stack. */ ! 2677: rtx oldaddr = 0; ! 2678: rtx addr; ! 2679: ! 2680: /* If we previously made RTL for this decl, it must be an array ! 2681: whose size was determined by the initializer. ! 2682: The old address was a register; set that register now ! 2683: to the proper address. */ ! 2684: if (DECL_RTL (decl) != 0) ! 2685: { ! 2686: if (GET_CODE (DECL_RTL (decl)) != MEM ! 2687: || GET_CODE (XEXP (DECL_RTL (decl), 0)) != REG) ! 2688: abort (); ! 2689: oldaddr = XEXP (DECL_RTL (decl), 0); ! 2690: } ! 2691: ! 2692: DECL_RTL (decl) ! 2693: = assign_stack_temp (DECL_MODE (decl), ! 2694: ((TREE_INT_CST_LOW (DECL_SIZE (decl)) ! 2695: + BITS_PER_UNIT - 1) ! 2696: / BITS_PER_UNIT), ! 2697: 1); ! 2698: ! 2699: /* Set alignment we actually gave this decl. */ ! 2700: DECL_ALIGN (decl) = (DECL_MODE (decl) == BLKmode ? BIGGEST_ALIGNMENT ! 2701: : GET_MODE_BITSIZE (DECL_MODE (decl))); ! 2702: ! 2703: if (oldaddr) ! 2704: { ! 2705: addr = force_operand (XEXP (DECL_RTL (decl), 0), oldaddr); ! 2706: if (addr != oldaddr) ! 2707: emit_move_insn (oldaddr, addr); ! 2708: } ! 2709: ! 2710: /* If this is a memory ref that contains aggregate components, ! 2711: mark it as such for cse and loop optimize. */ ! 2712: MEM_IN_STRUCT_P (DECL_RTL (decl)) ! 2713: = (TREE_CODE (TREE_TYPE (decl)) == ARRAY_TYPE ! 2714: || TREE_CODE (TREE_TYPE (decl)) == RECORD_TYPE ! 2715: || TREE_CODE (TREE_TYPE (decl)) == UNION_TYPE); ! 2716: #if 0 ! 2717: /* If this is in memory because of -ffloat-store, ! 2718: set the volatile bit, to prevent optimizations from ! 2719: undoing the effects. */ ! 2720: if (flag_float_store && TREE_CODE (type) == REAL_TYPE) ! 2721: MEM_VOLATILE_P (DECL_RTL (decl)) = 1; ! 2722: #endif ! 2723: } ! 2724: else ! 2725: /* Dynamic-size object: must push space on the stack. */ ! 2726: { ! 2727: rtx address, size; ! 2728: ! 2729: /* Record the stack pointer on entry to block, if have ! 2730: not already done so. */ ! 2731: if (thisblock->data.block.stack_level == 0) ! 2732: { ! 2733: do_pending_stack_adjust (); ! 2734: thisblock->data.block.stack_level ! 2735: = copy_to_reg (stack_pointer_rtx); ! 2736: stack_block_stack = thisblock; ! 2737: } ! 2738: ! 2739: /* Compute the variable's size, in bytes. */ ! 2740: size = expand_expr (size_binop (CEIL_DIV_EXPR, ! 2741: DECL_SIZE (decl), ! 2742: size_int (BITS_PER_UNIT)), ! 2743: 0, VOIDmode, 0); ! 2744: free_temp_slots (); ! 2745: ! 2746: /* Allocate space on the stack for the variable. */ ! 2747: address = allocate_dynamic_stack_space (size, 0); ! 2748: ! 2749: if (nonlocal_goto_stack_level != 0) ! 2750: emit_move_insn (nonlocal_goto_stack_level, stack_pointer_rtx); ! 2751: ! 2752: /* Reference the variable indirect through that rtx. */ ! 2753: DECL_RTL (decl) = gen_rtx (MEM, DECL_MODE (decl), address); ! 2754: ! 2755: /* Indicate the alignment we actually gave this variable. */ ! 2756: #ifdef STACK_BOUNDARY ! 2757: DECL_ALIGN (decl) = STACK_BOUNDARY; ! 2758: #else ! 2759: DECL_ALIGN (decl) = BIGGEST_ALIGNMENT; ! 2760: #endif ! 2761: } ! 2762: ! 2763: if (TREE_THIS_VOLATILE (decl)) ! 2764: MEM_VOLATILE_P (DECL_RTL (decl)) = 1; ! 2765: if (TREE_READONLY (decl)) ! 2766: RTX_UNCHANGING_P (DECL_RTL (decl)) = 1; ! 2767: ! 2768: /* If doing stupid register allocation, make sure life of any ! 2769: register variable starts here, at the start of its scope. */ ! 2770: ! 2771: if (obey_regdecls) ! 2772: use_variable (DECL_RTL (decl)); ! 2773: } ! 2774: ! 2775: /* Emit code to perform the initialization of a declaration DECL. */ ! 2776: ! 2777: void ! 2778: expand_decl_init (decl) ! 2779: tree decl; ! 2780: { ! 2781: if (TREE_STATIC (decl)) ! 2782: return; ! 2783: ! 2784: /* Compute and store the initial value now. */ ! 2785: ! 2786: if (DECL_INITIAL (decl) == error_mark_node) ! 2787: { ! 2788: enum tree_code code = TREE_CODE (TREE_TYPE (decl)); ! 2789: if (code == INTEGER_TYPE || code == REAL_TYPE || code == ENUMERAL_TYPE ! 2790: || code == POINTER_TYPE) ! 2791: expand_assignment (decl, convert (TREE_TYPE (decl), integer_zero_node), ! 2792: 0, 0); ! 2793: emit_queue (); ! 2794: } ! 2795: else if (DECL_INITIAL (decl) && TREE_CODE (DECL_INITIAL (decl)) != TREE_LIST) ! 2796: { ! 2797: emit_line_note (DECL_SOURCE_FILE (decl), DECL_SOURCE_LINE (decl)); ! 2798: expand_assignment (decl, DECL_INITIAL (decl), 0, 0); ! 2799: emit_queue (); ! 2800: } ! 2801: ! 2802: /* Free any temporaries we made while initializing the decl. */ ! 2803: free_temp_slots (); ! 2804: } ! 2805: ! 2806: /* CLEANUP is an expression to be executed at exit from this binding contour; ! 2807: for example, in C++, it might call the destructor for this variable. ! 2808: ! 2809: If CLEANUP contains any SAVE_EXPRs, then you must preevaluate them ! 2810: either before or after calling `expand_decl' but before compiling ! 2811: any subsequent expressions. This is because CLEANUP may be expanded ! 2812: more than once, on different branches of execution. ! 2813: For the same reason, CLEANUP may not contain a CALL_EXPR ! 2814: except as its topmost node--else `preexpand_calls' would get confused. ! 2815: ! 2816: If CLEANUP is nonzero and DECL is zero, we record a cleanup ! 2817: that is not associated with any particular variable. */ ! 2818: ! 2819: int ! 2820: expand_decl_cleanup (decl, cleanup) ! 2821: tree decl, cleanup; ! 2822: { ! 2823: struct nesting *thisblock = block_stack; ! 2824: ! 2825: /* Error if we are not in any block. */ ! 2826: if (thisblock == 0) ! 2827: return 0; ! 2828: ! 2829: /* Record the cleanup if there is one. */ ! 2830: ! 2831: if (cleanup != 0) ! 2832: { ! 2833: thisblock->data.block.cleanups ! 2834: = temp_tree_cons (decl, cleanup, thisblock->data.block.cleanups); ! 2835: /* If this block has a cleanup, it belongs in stack_block_stack. */ ! 2836: stack_block_stack = thisblock; ! 2837: } ! 2838: return 1; ! 2839: } ! 2840: ! 2841: /* DECL is an anonymous union. CLEANUP is a cleanup for DECL. ! 2842: DECL_ELTS is the list of elements that belong to DECL's type. ! 2843: In each, the TREE_VALUE is a VAR_DECL, and the TREE_PURPOSE a cleanup. */ ! 2844: ! 2845: void ! 2846: expand_anon_union_decl (decl, cleanup, decl_elts) ! 2847: tree decl, cleanup, decl_elts; ! 2848: { ! 2849: struct nesting *thisblock = block_stack; ! 2850: rtx x; ! 2851: ! 2852: expand_decl (decl, cleanup); ! 2853: x = DECL_RTL (decl); ! 2854: ! 2855: while (decl_elts) ! 2856: { ! 2857: tree decl_elt = TREE_VALUE (decl_elts); ! 2858: tree cleanup_elt = TREE_PURPOSE (decl_elts); ! 2859: enum machine_mode mode = TYPE_MODE (TREE_TYPE (decl_elt)); ! 2860: ! 2861: /* (SUBREG (MEM ...)) at RTL generation time is invalid, so we ! 2862: instead create a new MEM rtx with the proper mode. */ ! 2863: if (GET_CODE (x) == MEM) ! 2864: { ! 2865: if (mode == GET_MODE (x)) ! 2866: DECL_RTL (decl_elt) = x; ! 2867: else ! 2868: { ! 2869: DECL_RTL (decl_elt) = gen_rtx (MEM, mode, copy_rtx (XEXP (x, 0))); ! 2870: MEM_IN_STRUCT_P (DECL_RTL (decl_elt)) = MEM_IN_STRUCT_P (x); ! 2871: RTX_UNCHANGING_P (DECL_RTL (decl_elt)) = RTX_UNCHANGING_P (x); ! 2872: } ! 2873: } ! 2874: else if (GET_CODE (x) == REG) ! 2875: { ! 2876: if (mode == GET_MODE (x)) ! 2877: DECL_RTL (decl_elt) = x; ! 2878: else ! 2879: DECL_RTL (decl_elt) = gen_rtx (SUBREG, mode, x, 0); ! 2880: } ! 2881: else ! 2882: abort (); ! 2883: ! 2884: /* Record the cleanup if there is one. */ ! 2885: ! 2886: if (cleanup != 0) ! 2887: thisblock->data.block.cleanups ! 2888: = temp_tree_cons (decl_elt, cleanup_elt, ! 2889: thisblock->data.block.cleanups); ! 2890: ! 2891: decl_elts = TREE_CHAIN (decl_elts); ! 2892: } ! 2893: } ! 2894: ! 2895: /* Expand a list of cleanups LIST. ! 2896: Elements may be expressions or may be nested lists. ! 2897: ! 2898: If DONT_DO is nonnull, then any list-element ! 2899: whose TREE_PURPOSE matches DONT_DO is omitted. ! 2900: This is sometimes used to avoid a cleanup associated with ! 2901: a value that is being returned out of the scope. */ ! 2902: ! 2903: static void ! 2904: expand_cleanups (list, dont_do) ! 2905: tree list; ! 2906: tree dont_do; ! 2907: { ! 2908: tree tail; ! 2909: for (tail = list; tail; tail = TREE_CHAIN (tail)) ! 2910: if (dont_do == 0 || TREE_PURPOSE (tail) != dont_do) ! 2911: { ! 2912: if (TREE_CODE (TREE_VALUE (tail)) == TREE_LIST) ! 2913: expand_cleanups (TREE_VALUE (tail), dont_do); ! 2914: else ! 2915: { ! 2916: /* Cleanups may be run multiple times. For example, ! 2917: when exiting a binding contour, we expand the ! 2918: cleanups associated with that contour. When a goto ! 2919: within that binding contour has a target outside that ! 2920: contour, it will expand all cleanups from its scope to ! 2921: the target. Though the cleanups are expanded multiple ! 2922: times, the control paths are non-overlapping so the ! 2923: cleanups will not be executed twice. */ ! 2924: expand_expr (TREE_VALUE (tail), const0_rtx, VOIDmode, 0); ! 2925: free_temp_slots (); ! 2926: } ! 2927: } ! 2928: } ! 2929: ! 2930: /* Expand a list of cleanups for a goto fixup. ! 2931: The expansion is put into the insn chain after the insn *BEFORE_JUMP ! 2932: and *BEFORE_JUMP is set to the insn that now comes before the jump. */ ! 2933: ! 2934: static void ! 2935: fixup_cleanups (list, before_jump) ! 2936: tree list; ! 2937: rtx *before_jump; ! 2938: { ! 2939: rtx beyond_jump = get_last_insn (); ! 2940: rtx new_before_jump; ! 2941: ! 2942: expand_cleanups (list, 0); ! 2943: /* Pop any pushes done in the cleanups, ! 2944: in case function is about to return. */ ! 2945: do_pending_stack_adjust (); ! 2946: ! 2947: new_before_jump = get_last_insn (); ! 2948: ! 2949: if (beyond_jump != new_before_jump) ! 2950: { ! 2951: /* If cleanups expand to nothing, don't reorder. */ ! 2952: reorder_insns (NEXT_INSN (beyond_jump), new_before_jump, *before_jump); ! 2953: *before_jump = new_before_jump; ! 2954: } ! 2955: } ! 2956: ! 2957: /* Move all cleanups from the current block_stack ! 2958: to the containing block_stack, where they are assumed to ! 2959: have been created. If anything can cause a temporary to ! 2960: be created, but not expanded for more than one level of ! 2961: block_stacks, then this code will have to change. */ ! 2962: ! 2963: void ! 2964: move_cleanups_up () ! 2965: { ! 2966: struct nesting *block = block_stack; ! 2967: struct nesting *outer = block->next; ! 2968: ! 2969: outer->data.block.cleanups ! 2970: = chainon (block->data.block.cleanups, ! 2971: outer->data.block.cleanups); ! 2972: block->data.block.cleanups = 0; ! 2973: } ! 2974: ! 2975: tree ! 2976: last_cleanup_this_contour () ! 2977: { ! 2978: if (block_stack == 0) ! 2979: return 0; ! 2980: ! 2981: return block_stack->data.block.cleanups; ! 2982: } ! 2983: ! 2984: /* Return 1 if there are any pending cleanups at this point. ! 2985: If THIS_CONTOUR is nonzero, check the current contour as well. ! 2986: Otherwise, look only at the contours that enclose this one. */ ! 2987: ! 2988: int ! 2989: any_pending_cleanups (this_contour) ! 2990: int this_contour; ! 2991: { ! 2992: struct nesting *block; ! 2993: ! 2994: if (block_stack == 0) ! 2995: return 0; ! 2996: ! 2997: if (this_contour && block_stack->data.block.cleanups != NULL) ! 2998: return 1; ! 2999: if (block_stack->data.block.cleanups == 0 ! 3000: && (block_stack->data.block.outer_cleanups == 0 ! 3001: #if 0 ! 3002: || block_stack->data.block.outer_cleanups == empty_cleanup_list ! 3003: #endif ! 3004: )) ! 3005: return 0; ! 3006: ! 3007: for (block = block_stack->next; block; block = block->next) ! 3008: if (block->data.block.cleanups != 0) ! 3009: return 1; ! 3010: ! 3011: return 0; ! 3012: } ! 3013: ! 3014: /* Enter a case (Pascal) or switch (C) statement. ! 3015: Push a block onto case_stack and nesting_stack ! 3016: to accumulate the case-labels that are seen ! 3017: and to record the labels generated for the statement. ! 3018: ! 3019: EXIT_FLAG is nonzero if `exit_something' should exit this case stmt. ! 3020: Otherwise, this construct is transparent for `exit_something'. ! 3021: ! 3022: EXPR is the index-expression to be dispatched on. ! 3023: TYPE is its nominal type. We could simply convert EXPR to this type, ! 3024: but instead we take short cuts. */ ! 3025: ! 3026: void ! 3027: expand_start_case (exit_flag, expr, type, printname) ! 3028: int exit_flag; ! 3029: tree expr; ! 3030: tree type; ! 3031: char *printname; ! 3032: { ! 3033: register struct nesting *thiscase = ALLOC_NESTING (); ! 3034: ! 3035: /* Make an entry on case_stack for the case we are entering. */ ! 3036: ! 3037: thiscase->next = case_stack; ! 3038: thiscase->all = nesting_stack; ! 3039: thiscase->depth = ++nesting_depth; ! 3040: thiscase->exit_label = exit_flag ? gen_label_rtx () : 0; ! 3041: thiscase->data.case_stmt.case_list = 0; ! 3042: thiscase->data.case_stmt.index_expr = expr; ! 3043: thiscase->data.case_stmt.nominal_type = type; ! 3044: thiscase->data.case_stmt.default_label = 0; ! 3045: thiscase->data.case_stmt.num_ranges = 0; ! 3046: thiscase->data.case_stmt.printname = printname; ! 3047: thiscase->data.case_stmt.seenlabel = 0; ! 3048: case_stack = thiscase; ! 3049: nesting_stack = thiscase; ! 3050: ! 3051: do_pending_stack_adjust (); ! 3052: ! 3053: /* Make sure case_stmt.start points to something that won't ! 3054: need any transformation before expand_end_case. */ ! 3055: if (GET_CODE (get_last_insn ()) != NOTE) ! 3056: emit_note (0, NOTE_INSN_DELETED); ! 3057: ! 3058: thiscase->data.case_stmt.start = get_last_insn (); ! 3059: } ! 3060: ! 3061: /* Start a "dummy case statement" within which case labels are invalid ! 3062: and are not connected to any larger real case statement. ! 3063: This can be used if you don't want to let a case statement jump ! 3064: into the middle of certain kinds of constructs. */ ! 3065: ! 3066: void ! 3067: expand_start_case_dummy () ! 3068: { ! 3069: register struct nesting *thiscase = ALLOC_NESTING (); ! 3070: ! 3071: /* Make an entry on case_stack for the dummy. */ ! 3072: ! 3073: thiscase->next = case_stack; ! 3074: thiscase->all = nesting_stack; ! 3075: thiscase->depth = ++nesting_depth; ! 3076: thiscase->exit_label = 0; ! 3077: thiscase->data.case_stmt.case_list = 0; ! 3078: thiscase->data.case_stmt.start = 0; ! 3079: thiscase->data.case_stmt.nominal_type = 0; ! 3080: thiscase->data.case_stmt.default_label = 0; ! 3081: thiscase->data.case_stmt.num_ranges = 0; ! 3082: case_stack = thiscase; ! 3083: nesting_stack = thiscase; ! 3084: } ! 3085: ! 3086: /* End a dummy case statement. */ ! 3087: ! 3088: void ! 3089: expand_end_case_dummy () ! 3090: { ! 3091: POPSTACK (case_stack); ! 3092: } ! 3093: ! 3094: /* Return the data type of the index-expression ! 3095: of the innermost case statement, or null if none. */ ! 3096: ! 3097: tree ! 3098: case_index_expr_type () ! 3099: { ! 3100: if (case_stack) ! 3101: return TREE_TYPE (case_stack->data.case_stmt.index_expr); ! 3102: return 0; ! 3103: } ! 3104: ! 3105: /* Accumulate one case or default label inside a case or switch statement. ! 3106: VALUE is the value of the case (a null pointer, for a default label). ! 3107: ! 3108: If not currently inside a case or switch statement, return 1 and do ! 3109: nothing. The caller will print a language-specific error message. ! 3110: If VALUE is a duplicate or overlaps, return 2 and do nothing ! 3111: except store the (first) duplicate node in *DUPLICATE. ! 3112: If VALUE is out of range, return 3 and do nothing. ! 3113: If we are jumping into the scope of a cleaup or var-sized array, return 5. ! 3114: Return 0 on success. ! 3115: ! 3116: Extended to handle range statements. */ ! 3117: ! 3118: int ! 3119: pushcase (value, label, duplicate) ! 3120: register tree value; ! 3121: register tree label; ! 3122: tree *duplicate; ! 3123: { ! 3124: register struct case_node **l; ! 3125: register struct case_node *n; ! 3126: tree index_type; ! 3127: tree nominal_type; ! 3128: ! 3129: /* Fail if not inside a real case statement. */ ! 3130: if (! (case_stack && case_stack->data.case_stmt.start)) ! 3131: return 1; ! 3132: ! 3133: if (stack_block_stack ! 3134: && stack_block_stack->depth > case_stack->depth) ! 3135: return 5; ! 3136: ! 3137: index_type = TREE_TYPE (case_stack->data.case_stmt.index_expr); ! 3138: nominal_type = case_stack->data.case_stmt.nominal_type; ! 3139: ! 3140: /* If the index is erroneous, avoid more problems: pretend to succeed. */ ! 3141: if (index_type == error_mark_node) ! 3142: return 0; ! 3143: ! 3144: /* Convert VALUE to the type in which the comparisons are nominally done. */ ! 3145: if (value != 0) ! 3146: value = convert (nominal_type, value); ! 3147: ! 3148: /* If this is the first label, warn if any insns have been emitted. */ ! 3149: if (case_stack->data.case_stmt.seenlabel == 0) ! 3150: { ! 3151: rtx insn; ! 3152: for (insn = case_stack->data.case_stmt.start; ! 3153: insn; ! 3154: insn = NEXT_INSN (insn)) ! 3155: { ! 3156: if (GET_CODE (insn) == CODE_LABEL) ! 3157: break; ! 3158: if (GET_CODE (insn) != NOTE ! 3159: && (GET_CODE (insn) != INSN || GET_CODE (PATTERN (insn)) != USE)) ! 3160: { ! 3161: warning ("unreachable code at beginning of %s", ! 3162: case_stack->data.case_stmt.printname); ! 3163: break; ! 3164: } ! 3165: } ! 3166: } ! 3167: case_stack->data.case_stmt.seenlabel = 1; ! 3168: ! 3169: /* Fail if this value is out of range for the actual type of the index ! 3170: (which may be narrower than NOMINAL_TYPE). */ ! 3171: if (value != 0 && ! int_fits_type_p (value, index_type)) ! 3172: return 3; ! 3173: ! 3174: /* Fail if this is a duplicate or overlaps another entry. */ ! 3175: if (value == 0) ! 3176: { ! 3177: if (case_stack->data.case_stmt.default_label != 0) ! 3178: { ! 3179: *duplicate = case_stack->data.case_stmt.default_label; ! 3180: return 2; ! 3181: } ! 3182: case_stack->data.case_stmt.default_label = label; ! 3183: } ! 3184: else ! 3185: { ! 3186: /* Find the elt in the chain before which to insert the new value, ! 3187: to keep the chain sorted in increasing order. ! 3188: But report an error if this element is a duplicate. */ ! 3189: for (l = &case_stack->data.case_stmt.case_list; ! 3190: /* Keep going past elements distinctly less than VALUE. */ ! 3191: *l != 0 && tree_int_cst_lt ((*l)->high, value); ! 3192: l = &(*l)->right) ! 3193: ; ! 3194: if (*l) ! 3195: { ! 3196: /* Element we will insert before must be distinctly greater; ! 3197: overlap means error. */ ! 3198: if (! tree_int_cst_lt (value, (*l)->low)) ! 3199: { ! 3200: *duplicate = (*l)->code_label; ! 3201: return 2; ! 3202: } ! 3203: } ! 3204: ! 3205: /* Add this label to the chain, and succeed. ! 3206: Copy VALUE so it is on temporary rather than momentary ! 3207: obstack and will thus survive till the end of the case statement. */ ! 3208: n = (struct case_node *) oballoc (sizeof (struct case_node)); ! 3209: n->left = 0; ! 3210: n->right = *l; ! 3211: n->high = n->low = copy_node (value); ! 3212: n->code_label = label; ! 3213: *l = n; ! 3214: } ! 3215: ! 3216: expand_label (label); ! 3217: return 0; ! 3218: } ! 3219: ! 3220: /* Like pushcase but this case applies to all values ! 3221: between VALUE1 and VALUE2 (inclusive). ! 3222: The return value is the same as that of pushcase ! 3223: but there is one additional error code: ! 3224: 4 means the specified range was empty. */ ! 3225: ! 3226: int ! 3227: pushcase_range (value1, value2, label, duplicate) ! 3228: register tree value1, value2; ! 3229: register tree label; ! 3230: tree *duplicate; ! 3231: { ! 3232: register struct case_node **l; ! 3233: register struct case_node *n; ! 3234: tree index_type; ! 3235: tree nominal_type; ! 3236: ! 3237: /* Fail if not inside a real case statement. */ ! 3238: if (! (case_stack && case_stack->data.case_stmt.start)) ! 3239: return 1; ! 3240: ! 3241: if (stack_block_stack ! 3242: && stack_block_stack->depth > case_stack->depth) ! 3243: return 5; ! 3244: ! 3245: index_type = TREE_TYPE (case_stack->data.case_stmt.index_expr); ! 3246: nominal_type = case_stack->data.case_stmt.nominal_type; ! 3247: ! 3248: /* If the index is erroneous, avoid more problems: pretend to succeed. */ ! 3249: if (index_type == error_mark_node) ! 3250: return 0; ! 3251: ! 3252: /* If this is the first label, warn if any insns have been emitted. */ ! 3253: if (case_stack->data.case_stmt.seenlabel == 0) ! 3254: { ! 3255: rtx insn; ! 3256: for (insn = case_stack->data.case_stmt.start; ! 3257: insn; ! 3258: insn = NEXT_INSN (insn)) ! 3259: { ! 3260: if (GET_CODE (insn) == CODE_LABEL) ! 3261: break; ! 3262: if (GET_CODE (insn) != NOTE ! 3263: && (GET_CODE (insn) != INSN || GET_CODE (PATTERN (insn)) != USE)) ! 3264: { ! 3265: warning ("unreachable code at beginning of %s", ! 3266: case_stack->data.case_stmt.printname); ! 3267: break; ! 3268: } ! 3269: } ! 3270: } ! 3271: case_stack->data.case_stmt.seenlabel = 1; ! 3272: ! 3273: /* Convert VALUEs to type in which the comparisons are nominally done. */ ! 3274: if (value1 == 0) /* Negative infinity. */ ! 3275: value1 = TYPE_MIN_VALUE(index_type); ! 3276: value1 = convert (nominal_type, value1); ! 3277: ! 3278: if (value2 == 0) /* Positive infinity. */ ! 3279: value2 = TYPE_MAX_VALUE(index_type); ! 3280: value2 = convert (nominal_type, value2); ! 3281: ! 3282: /* Fail if these values are out of range. */ ! 3283: if (! int_fits_type_p (value1, index_type)) ! 3284: return 3; ! 3285: ! 3286: if (! int_fits_type_p (value2, index_type)) ! 3287: return 3; ! 3288: ! 3289: /* Fail if the range is empty. */ ! 3290: if (tree_int_cst_lt (value2, value1)) ! 3291: return 4; ! 3292: ! 3293: /* If the bounds are equal, turn this into the one-value case. */ ! 3294: if (tree_int_cst_equal (value1, value2)) ! 3295: return pushcase (value1, label, duplicate); ! 3296: ! 3297: /* Find the elt in the chain before which to insert the new value, ! 3298: to keep the chain sorted in increasing order. ! 3299: But report an error if this element is a duplicate. */ ! 3300: for (l = &case_stack->data.case_stmt.case_list; ! 3301: /* Keep going past elements distinctly less than this range. */ ! 3302: *l != 0 && tree_int_cst_lt ((*l)->high, value1); ! 3303: l = &(*l)->right) ! 3304: ; ! 3305: if (*l) ! 3306: { ! 3307: /* Element we will insert before must be distinctly greater; ! 3308: overlap means error. */ ! 3309: if (! tree_int_cst_lt (value2, (*l)->low)) ! 3310: { ! 3311: *duplicate = (*l)->code_label; ! 3312: return 2; ! 3313: } ! 3314: } ! 3315: ! 3316: /* Add this label to the chain, and succeed. ! 3317: Copy VALUE1, VALUE2 so they are on temporary rather than momentary ! 3318: obstack and will thus survive till the end of the case statement. */ ! 3319: ! 3320: n = (struct case_node *) oballoc (sizeof (struct case_node)); ! 3321: n->left = 0; ! 3322: n->right = *l; ! 3323: n->low = copy_node (value1); ! 3324: n->high = copy_node (value2); ! 3325: n->code_label = label; ! 3326: *l = n; ! 3327: ! 3328: expand_label (label); ! 3329: ! 3330: case_stack->data.case_stmt.num_ranges++; ! 3331: ! 3332: return 0; ! 3333: } ! 3334: ! 3335: /* Called when the index of a switch statement is an enumerated type ! 3336: and there is no default label. ! 3337: ! 3338: Checks that all enumeration literals are covered by the case ! 3339: expressions of a switch. Also, warn if there are any extra ! 3340: switch cases that are *not* elements of the enumerated type. ! 3341: ! 3342: If all enumeration literals were covered by the case expressions, ! 3343: turn one of the expressions into the default expression since it should ! 3344: not be possible to fall through such a switch. */ ! 3345: ! 3346: void ! 3347: check_for_full_enumeration_handling (type) ! 3348: tree type; ! 3349: { ! 3350: register struct case_node *n; ! 3351: register struct case_node **l; ! 3352: register tree chain; ! 3353: int all_values = 1; ! 3354: ! 3355: /* The time complexity of this loop is currently O(N * M), with ! 3356: N being the number of enumerals in the enumerated type, and ! 3357: M being the number of case expressions in the switch. */ ! 3358: ! 3359: for (chain = TYPE_VALUES (type); ! 3360: chain; ! 3361: chain = TREE_CHAIN (chain)) ! 3362: { ! 3363: /* Find a match between enumeral and case expression, if possible. ! 3364: Quit looking when we've gone too far (since case expressions ! 3365: are kept sorted in ascending order). Warn about enumerals not ! 3366: handled in the switch statement case expression list. */ ! 3367: ! 3368: for (n = case_stack->data.case_stmt.case_list; ! 3369: n && tree_int_cst_lt (n->high, TREE_VALUE (chain)); ! 3370: n = n->right) ! 3371: ; ! 3372: ! 3373: if (!(n && tree_int_cst_equal (n->low, TREE_VALUE (chain)))) ! 3374: { ! 3375: if (warn_switch) ! 3376: warning ("enumerated value `%s' not handled in switch", ! 3377: IDENTIFIER_POINTER (TREE_PURPOSE (chain))); ! 3378: all_values = 0; ! 3379: } ! 3380: } ! 3381: ! 3382: /* Now we go the other way around; we warn if there are case ! 3383: expressions that don't correspond to enumerals. This can ! 3384: occur since C and C++ don't enforce type-checking of ! 3385: assignments to enumeration variables. */ ! 3386: ! 3387: if (warn_switch) ! 3388: for (n = case_stack->data.case_stmt.case_list; n; n = n->right) ! 3389: { ! 3390: for (chain = TYPE_VALUES (type); ! 3391: chain && !tree_int_cst_equal (n->low, TREE_VALUE (chain)); ! 3392: chain = TREE_CHAIN (chain)) ! 3393: ; ! 3394: ! 3395: if (!chain) ! 3396: warning ("case value `%d' not in enumerated type `%s'", ! 3397: TREE_INT_CST_LOW (n->low), ! 3398: IDENTIFIER_POINTER ((TREE_CODE (TYPE_NAME (type)) ! 3399: == IDENTIFIER_NODE) ! 3400: ? TYPE_NAME (type) ! 3401: : DECL_NAME (TYPE_NAME (type)))); ! 3402: } ! 3403: ! 3404: /* If all values were found as case labels, make one of them the default ! 3405: label. Thus, this switch will never fall through. We arbitrarily pick ! 3406: the last one to make the default since this is likely the most ! 3407: efficient choice. */ ! 3408: ! 3409: if (all_values) ! 3410: { ! 3411: for (l = &case_stack->data.case_stmt.case_list; ! 3412: (*l)->right != 0; ! 3413: l = &(*l)->right) ! 3414: ; ! 3415: ! 3416: case_stack->data.case_stmt.default_label = (*l)->code_label; ! 3417: *l = 0; ! 3418: } ! 3419: } ! 3420: ! 3421: /* Terminate a case (Pascal) or switch (C) statement ! 3422: in which CASE_INDEX is the expression to be tested. ! 3423: Generate the code to test it and jump to the right place. */ ! 3424: ! 3425: void ! 3426: expand_end_case (orig_index) ! 3427: tree orig_index; ! 3428: { ! 3429: tree minval, maxval, range; ! 3430: rtx default_label = 0; ! 3431: register struct case_node *n; ! 3432: int count; ! 3433: rtx index; ! 3434: rtx table_label = gen_label_rtx (); ! 3435: int ncases; ! 3436: rtx *labelvec; ! 3437: register int i; ! 3438: rtx before_case; ! 3439: register struct nesting *thiscase = case_stack; ! 3440: tree index_expr = thiscase->data.case_stmt.index_expr; ! 3441: int unsignedp = TREE_UNSIGNED (TREE_TYPE (index_expr)); ! 3442: ! 3443: do_pending_stack_adjust (); ! 3444: ! 3445: /* An ERROR_MARK occurs for various reasons including invalid data type. */ ! 3446: if (TREE_TYPE (index_expr) != error_mark_node) ! 3447: { ! 3448: /* If switch expression was an enumerated type, check that all ! 3449: enumeration literals are covered by the cases. ! 3450: No sense trying this if there's a default case, however. */ ! 3451: ! 3452: if (!thiscase->data.case_stmt.default_label ! 3453: && TREE_CODE (TREE_TYPE (orig_index)) == ENUMERAL_TYPE ! 3454: && TREE_CODE (index_expr) != INTEGER_CST) ! 3455: check_for_full_enumeration_handling (TREE_TYPE (orig_index)); ! 3456: ! 3457: /* If this is the first label, warn if any insns have been emitted. */ ! 3458: if (thiscase->data.case_stmt.seenlabel == 0) ! 3459: { ! 3460: rtx insn; ! 3461: for (insn = get_last_insn (); ! 3462: insn != case_stack->data.case_stmt.start; ! 3463: insn = PREV_INSN (insn)) ! 3464: if (GET_CODE (insn) != NOTE ! 3465: && (GET_CODE (insn) != INSN || GET_CODE (PATTERN (insn))!= USE)) ! 3466: { ! 3467: warning ("unreachable code at beginning of %s", ! 3468: case_stack->data.case_stmt.printname); ! 3469: break; ! 3470: } ! 3471: } ! 3472: ! 3473: /* If we don't have a default-label, create one here, ! 3474: after the body of the switch. */ ! 3475: if (thiscase->data.case_stmt.default_label == 0) ! 3476: { ! 3477: thiscase->data.case_stmt.default_label ! 3478: = build_decl (LABEL_DECL, NULL_TREE, NULL_TREE); ! 3479: expand_label (thiscase->data.case_stmt.default_label); ! 3480: } ! 3481: default_label = label_rtx (thiscase->data.case_stmt.default_label); ! 3482: ! 3483: before_case = get_last_insn (); ! 3484: ! 3485: /* Simplify the case-list before we count it. */ ! 3486: group_case_nodes (thiscase->data.case_stmt.case_list); ! 3487: ! 3488: /* Get upper and lower bounds of case values. ! 3489: Also convert all the case values to the index expr's data type. */ ! 3490: ! 3491: count = 0; ! 3492: for (n = thiscase->data.case_stmt.case_list; n; n = n->right) ! 3493: { ! 3494: /* Check low and high label values are integers. */ ! 3495: if (TREE_CODE (n->low) != INTEGER_CST) ! 3496: abort (); ! 3497: if (TREE_CODE (n->high) != INTEGER_CST) ! 3498: abort (); ! 3499: ! 3500: n->low = convert (TREE_TYPE (index_expr), n->low); ! 3501: n->high = convert (TREE_TYPE (index_expr), n->high); ! 3502: ! 3503: /* Count the elements and track the largest and smallest ! 3504: of them (treating them as signed even if they are not). */ ! 3505: if (count++ == 0) ! 3506: { ! 3507: minval = n->low; ! 3508: maxval = n->high; ! 3509: } ! 3510: else ! 3511: { ! 3512: if (INT_CST_LT (n->low, minval)) ! 3513: minval = n->low; ! 3514: if (INT_CST_LT (maxval, n->high)) ! 3515: maxval = n->high; ! 3516: } ! 3517: /* A range counts double, since it requires two compares. */ ! 3518: if (! tree_int_cst_equal (n->low, n->high)) ! 3519: count++; ! 3520: } ! 3521: ! 3522: /* Compute span of values. */ ! 3523: if (count != 0) ! 3524: range = fold (build (MINUS_EXPR, TREE_TYPE (index_expr), ! 3525: maxval, minval)); ! 3526: ! 3527: if (count == 0 || TREE_CODE (TREE_TYPE (index_expr)) == ERROR_MARK) ! 3528: { ! 3529: expand_expr (index_expr, const0_rtx, VOIDmode, 0); ! 3530: emit_queue (); ! 3531: emit_jump (default_label); ! 3532: } ! 3533: /* If range of values is much bigger than number of values, ! 3534: make a sequence of conditional branches instead of a dispatch. ! 3535: If the switch-index is a constant, do it this way ! 3536: because we can optimize it. */ ! 3537: else if (TREE_INT_CST_HIGH (range) != 0 ! 3538: #ifdef HAVE_casesi ! 3539: || (HAVE_casesi ? count < 4 : count < 5) ! 3540: #else ! 3541: /* If machine does not have a case insn that compares the ! 3542: bounds, this means extra overhead for dispatch tables ! 3543: which raises the threshold for using them. */ ! 3544: || count < 5 ! 3545: #endif ! 3546: || (unsigned) (TREE_INT_CST_LOW (range)) > 10 * count ! 3547: || TREE_CODE (index_expr) == INTEGER_CST ! 3548: /* This will reduce to a constant. */ ! 3549: || (TREE_CODE (index_expr) == CALL_EXPR ! 3550: && TREE_CODE (TREE_OPERAND (index_expr, 0)) == ADDR_EXPR ! 3551: && TREE_CODE (TREE_OPERAND (TREE_OPERAND (index_expr, 0), 0)) == FUNCTION_DECL ! 3552: && DECL_FUNCTION_CODE (TREE_OPERAND (TREE_OPERAND (index_expr, 0), 0)) == BUILT_IN_CLASSIFY_TYPE)) ! 3553: { ! 3554: index = expand_expr (index_expr, 0, VOIDmode, 0); ! 3555: ! 3556: /* If the index is a short or char that we do not have ! 3557: an insn to handle comparisons directly, convert it to ! 3558: a full integer now, rather than letting each comparison ! 3559: generate the conversion. */ ! 3560: ! 3561: if (GET_MODE_CLASS (GET_MODE (index)) == MODE_INT ! 3562: && (cmp_optab->handlers[(int) GET_MODE(index)].insn_code ! 3563: == CODE_FOR_nothing)) ! 3564: { ! 3565: enum machine_mode wider_mode; ! 3566: for (wider_mode = GET_MODE (index); wider_mode != VOIDmode; ! 3567: wider_mode = GET_MODE_WIDER_MODE (wider_mode)) ! 3568: if (cmp_optab->handlers[(int) wider_mode].insn_code ! 3569: != CODE_FOR_nothing) ! 3570: { ! 3571: index = convert_to_mode (wider_mode, index, unsignedp); ! 3572: break; ! 3573: } ! 3574: } ! 3575: ! 3576: emit_queue (); ! 3577: do_pending_stack_adjust (); ! 3578: ! 3579: index = protect_from_queue (index, 0); ! 3580: if (GET_CODE (index) == MEM) ! 3581: index = copy_to_reg (index); ! 3582: if (GET_CODE (index) == CONST_INT ! 3583: || TREE_CODE (index_expr) == INTEGER_CST) ! 3584: { ! 3585: /* Make a tree node with the proper constant value ! 3586: if we don't already have one. */ ! 3587: if (TREE_CODE (index_expr) != INTEGER_CST) ! 3588: { ! 3589: index_expr ! 3590: = build_int_2 (INTVAL (index), ! 3591: !unsignedp && INTVAL (index) >= 0 ? 0 : -1); ! 3592: index_expr = convert (TREE_TYPE (index_expr), index_expr); ! 3593: } ! 3594: ! 3595: /* For constant index expressions we need only ! 3596: issue a unconditional branch to the appropriate ! 3597: target code. The job of removing any unreachable ! 3598: code is left to the optimisation phase if the ! 3599: "-O" option is specified. */ ! 3600: for (n = thiscase->data.case_stmt.case_list; ! 3601: n; ! 3602: n = n->right) ! 3603: { ! 3604: if (! tree_int_cst_lt (index_expr, n->low) ! 3605: && ! tree_int_cst_lt (n->high, index_expr)) ! 3606: break; ! 3607: } ! 3608: if (n) ! 3609: emit_jump (label_rtx (n->code_label)); ! 3610: else ! 3611: emit_jump (default_label); ! 3612: } ! 3613: else ! 3614: { ! 3615: /* If the index expression is not constant we generate ! 3616: a binary decision tree to select the appropriate ! 3617: target code. This is done as follows: ! 3618: ! 3619: The list of cases is rearranged into a binary tree, ! 3620: nearly optimal assuming equal probability for each case. ! 3621: ! 3622: The tree is transformed into RTL, eliminating ! 3623: redundant test conditions at the same time. ! 3624: ! 3625: If program flow could reach the end of the ! 3626: decision tree an unconditional jump to the ! 3627: default code is emitted. */ ! 3628: ! 3629: use_cost_table ! 3630: = (TREE_CODE (TREE_TYPE (orig_index)) != ENUMERAL_TYPE ! 3631: && default_label != 0 ! 3632: && estimate_case_costs (thiscase->data.case_stmt.case_list)); ! 3633: balance_case_nodes (&thiscase->data.case_stmt.case_list, 0); ! 3634: emit_case_nodes (index, thiscase->data.case_stmt.case_list, ! 3635: default_label, TREE_TYPE (index_expr)); ! 3636: emit_jump_if_reachable (default_label); ! 3637: } ! 3638: } ! 3639: else ! 3640: { ! 3641: int win = 0; ! 3642: #ifdef HAVE_casesi ! 3643: if (HAVE_casesi) ! 3644: { ! 3645: /* Convert the index to SImode. */ ! 3646: if (TYPE_MODE (TREE_TYPE (index_expr)) == DImode) ! 3647: { ! 3648: index_expr = build (MINUS_EXPR, TREE_TYPE (index_expr), ! 3649: index_expr, minval); ! 3650: minval = integer_zero_node; ! 3651: } ! 3652: if (TYPE_MODE (TREE_TYPE (index_expr)) != SImode) ! 3653: index_expr = convert (type_for_size (GET_MODE_BITSIZE (SImode), 0), ! 3654: index_expr); ! 3655: index = expand_expr (index_expr, 0, VOIDmode, 0); ! 3656: emit_queue (); ! 3657: index = protect_from_queue (index, 0); ! 3658: do_pending_stack_adjust (); ! 3659: ! 3660: emit_jump_insn (gen_casesi (index, expand_expr (minval, 0, VOIDmode, 0), ! 3661: expand_expr (range, 0, VOIDmode, 0), ! 3662: table_label, default_label)); ! 3663: win = 1; ! 3664: } ! 3665: #endif ! 3666: #ifdef HAVE_tablejump ! 3667: if (! win && HAVE_tablejump) ! 3668: { ! 3669: index_expr = convert (thiscase->data.case_stmt.nominal_type, ! 3670: build (MINUS_EXPR, TREE_TYPE (index_expr), ! 3671: index_expr, minval)); ! 3672: index = expand_expr (index_expr, 0, VOIDmode, 0); ! 3673: emit_queue (); ! 3674: index = protect_from_queue (index, 0); ! 3675: do_pending_stack_adjust (); ! 3676: ! 3677: do_tablejump (index, ! 3678: gen_rtx (CONST_INT, VOIDmode, ! 3679: TREE_INT_CST_LOW (range)), ! 3680: table_label, default_label); ! 3681: win = 1; ! 3682: } ! 3683: #endif ! 3684: if (! win) ! 3685: abort (); ! 3686: ! 3687: /* Get table of labels to jump to, in order of case index. */ ! 3688: ! 3689: ncases = TREE_INT_CST_LOW (range) + 1; ! 3690: labelvec = (rtx *) alloca (ncases * sizeof (rtx)); ! 3691: bzero (labelvec, ncases * sizeof (rtx)); ! 3692: ! 3693: for (n = thiscase->data.case_stmt.case_list; n; n = n->right) ! 3694: { ! 3695: register int i ! 3696: = TREE_INT_CST_LOW (n->low) - TREE_INT_CST_LOW (minval); ! 3697: ! 3698: while (1) ! 3699: { ! 3700: labelvec[i] ! 3701: = gen_rtx (LABEL_REF, Pmode, label_rtx (n->code_label)); ! 3702: if (i + TREE_INT_CST_LOW (minval) ! 3703: == TREE_INT_CST_LOW (n->high)) ! 3704: break; ! 3705: i++; ! 3706: } ! 3707: } ! 3708: ! 3709: /* Fill in the gaps with the default. */ ! 3710: for (i = 0; i < ncases; i++) ! 3711: if (labelvec[i] == 0) ! 3712: labelvec[i] = gen_rtx (LABEL_REF, Pmode, default_label); ! 3713: ! 3714: /* Output the table */ ! 3715: emit_label (table_label); ! 3716: ! 3717: /* This would be a lot nicer if CASE_VECTOR_PC_RELATIVE ! 3718: were an expression, instead of a an #ifdef/#ifndef. */ ! 3719: if ( ! 3720: #ifdef CASE_VECTOR_PC_RELATIVE ! 3721: 1 || ! 3722: #endif ! 3723: flag_pic) ! 3724: emit_jump_insn (gen_rtx (ADDR_DIFF_VEC, CASE_VECTOR_MODE, ! 3725: gen_rtx (LABEL_REF, Pmode, table_label), ! 3726: gen_rtvec_v (ncases, labelvec))); ! 3727: else ! 3728: emit_jump_insn (gen_rtx (ADDR_VEC, CASE_VECTOR_MODE, ! 3729: gen_rtvec_v (ncases, labelvec))); ! 3730: ! 3731: /* If the case insn drops through the table, ! 3732: after the table we must jump to the default-label. ! 3733: Otherwise record no drop-through after the table. */ ! 3734: #ifdef CASE_DROPS_THROUGH ! 3735: emit_jump (default_label); ! 3736: #else ! 3737: emit_barrier (); ! 3738: #endif ! 3739: } ! 3740: ! 3741: reorder_insns (NEXT_INSN (before_case), get_last_insn (), ! 3742: thiscase->data.case_stmt.start); ! 3743: } ! 3744: if (thiscase->exit_label) ! 3745: emit_label (thiscase->exit_label); ! 3746: ! 3747: POPSTACK (case_stack); ! 3748: ! 3749: free_temp_slots (); ! 3750: } ! 3751: ! 3752: /* Generate code to jump to LABEL if OP1 and OP2 are equal. */ ! 3753: ! 3754: static void ! 3755: do_jump_if_equal (op1, op2, label, unsignedp) ! 3756: rtx op1, op2, label; ! 3757: int unsignedp; ! 3758: { ! 3759: if (GET_CODE (op1) == CONST_INT ! 3760: && GET_CODE (op2) == CONST_INT) ! 3761: { ! 3762: if (INTVAL (op1) == INTVAL (op2)) ! 3763: emit_jump (label); ! 3764: } ! 3765: else ! 3766: { ! 3767: enum machine_mode mode = GET_MODE (op1); ! 3768: if (mode == VOIDmode) ! 3769: mode = GET_MODE (op2); ! 3770: emit_cmp_insn (op1, op2, EQ, 0, mode, unsignedp, 0); ! 3771: emit_jump_insn (gen_beq (label)); ! 3772: } ! 3773: } ! 3774: ! 3775: /* Not all case values are encountered equally. This function ! 3776: uses a heuristic to weight case labels, in cases where that ! 3777: looks like a reasonable thing to do. ! 3778: ! 3779: Right now, all we try to guess is text, and we establish the ! 3780: following weights: ! 3781: ! 3782: chars above space: 16 ! 3783: digits: 16 ! 3784: default: 12 ! 3785: space, punct: 8 ! 3786: tab: 4 ! 3787: newline: 2 ! 3788: other "\" chars: 1 ! 3789: remaining chars: 0 ! 3790: ! 3791: If we find any cases in the switch that are not either -1 or in the range ! 3792: of valid ASCII characters, or are control characters other than those ! 3793: commonly used with "\", don't treat this switch scanning text. ! 3794: ! 3795: Return 1 if these nodes are suitable for cost estimation, otherwise ! 3796: return 0. */ ! 3797: ! 3798: static int ! 3799: estimate_case_costs (node) ! 3800: case_node_ptr node; ! 3801: { ! 3802: tree min_ascii = build_int_2 (-1, -1); ! 3803: tree max_ascii = convert (TREE_TYPE (node->high), build_int_2 (127, 0)); ! 3804: case_node_ptr n; ! 3805: int i; ! 3806: ! 3807: /* If we haven't already made the cost table, make it now. Note that the ! 3808: lower bound of the table is -1, not zero. */ ! 3809: ! 3810: if (cost_table == NULL) ! 3811: { ! 3812: cost_table = ((short *) xmalloc (129 * sizeof (short))) + 1; ! 3813: bzero (cost_table - 1, 129 * sizeof (short)); ! 3814: ! 3815: for (i = 0; i < 128; i++) ! 3816: { ! 3817: if (isalnum (i)) ! 3818: cost_table[i] = 16; ! 3819: else if (ispunct (i)) ! 3820: cost_table[i] = 8; ! 3821: else if (iscntrl (i)) ! 3822: cost_table[i] = -1; ! 3823: } ! 3824: ! 3825: cost_table[' '] = 8; ! 3826: cost_table['\t'] = 4; ! 3827: cost_table['\0'] = 4; ! 3828: cost_table['\n'] = 2; ! 3829: cost_table['\f'] = 1; ! 3830: cost_table['\v'] = 1; ! 3831: cost_table['\b'] = 1; ! 3832: } ! 3833: ! 3834: /* See if all the case expressions look like text. It is text if the ! 3835: constant is >= -1 and the highest constant is <= 127. Do all comparisons ! 3836: as signed arithmetic since we don't want to ever access cost_table with a ! 3837: value less than -1. Also check that none of the constants in a range ! 3838: are strange control characters. */ ! 3839: ! 3840: for (n = node; n; n = n->right) ! 3841: { ! 3842: if ((INT_CST_LT (n->low, min_ascii)) || INT_CST_LT (max_ascii, n->high)) ! 3843: return 0; ! 3844: ! 3845: for (i = TREE_INT_CST_LOW (n->low); i <= TREE_INT_CST_LOW (n->high); i++) ! 3846: if (cost_table[i] < 0) ! 3847: return 0; ! 3848: } ! 3849: ! 3850: /* All interesting values are within the range of interesting ! 3851: ASCII characters. */ ! 3852: return 1; ! 3853: } ! 3854: ! 3855: /* Scan an ordered list of case nodes ! 3856: combining those with consecutive values or ranges. ! 3857: ! 3858: Eg. three separate entries 1: 2: 3: become one entry 1..3: */ ! 3859: ! 3860: static void ! 3861: group_case_nodes (head) ! 3862: case_node_ptr head; ! 3863: { ! 3864: case_node_ptr node = head; ! 3865: ! 3866: while (node) ! 3867: { ! 3868: rtx lb = next_real_insn (label_rtx (node->code_label)); ! 3869: case_node_ptr np = node; ! 3870: ! 3871: /* Try to group the successors of NODE with NODE. */ ! 3872: while (((np = np->right) != 0) ! 3873: /* Do they jump to the same place? */ ! 3874: && next_real_insn (label_rtx (np->code_label)) == lb ! 3875: /* Are their ranges consecutive? */ ! 3876: && tree_int_cst_equal (np->low, ! 3877: fold (build (PLUS_EXPR, ! 3878: TREE_TYPE (node->high), ! 3879: node->high, ! 3880: integer_one_node))) ! 3881: /* An overflow is not consecutive. */ ! 3882: && tree_int_cst_lt (node->high, ! 3883: fold (build (PLUS_EXPR, ! 3884: TREE_TYPE (node->high), ! 3885: node->high, ! 3886: integer_one_node)))) ! 3887: { ! 3888: node->high = np->high; ! 3889: } ! 3890: /* NP is the first node after NODE which can't be grouped with it. ! 3891: Delete the nodes in between, and move on to that node. */ ! 3892: node->right = np; ! 3893: node = np; ! 3894: } ! 3895: } ! 3896: ! 3897: /* Take an ordered list of case nodes ! 3898: and transform them into a near optimal binary tree, ! 3899: on the assumtion that any target code selection value is as ! 3900: likely as any other. ! 3901: ! 3902: The transformation is performed by splitting the ordered ! 3903: list into two equal sections plus a pivot. The parts are ! 3904: then attached to the pivot as left and right branches. Each ! 3905: branch is is then transformed recursively. */ ! 3906: ! 3907: static void ! 3908: balance_case_nodes (head, parent) ! 3909: case_node_ptr *head; ! 3910: case_node_ptr parent; ! 3911: { ! 3912: register case_node_ptr np; ! 3913: ! 3914: np = *head; ! 3915: if (np) ! 3916: { ! 3917: int cost = 0; ! 3918: int i = 0; ! 3919: int ranges = 0; ! 3920: register case_node_ptr *npp; ! 3921: case_node_ptr left; ! 3922: ! 3923: /* Count the number of entries on branch. Also count the ranges. */ ! 3924: ! 3925: while (np) ! 3926: { ! 3927: if (!tree_int_cst_equal (np->low, np->high)) ! 3928: { ! 3929: ranges++; ! 3930: if (use_cost_table) ! 3931: cost += cost_table[TREE_INT_CST_LOW (np->high)]; ! 3932: } ! 3933: ! 3934: if (use_cost_table) ! 3935: cost += cost_table[TREE_INT_CST_LOW (np->low)]; ! 3936: ! 3937: i++; ! 3938: np = np->right; ! 3939: } ! 3940: ! 3941: if (i > 2) ! 3942: { ! 3943: /* Split this list if it is long enough for that to help. */ ! 3944: npp = head; ! 3945: left = *npp; ! 3946: if (use_cost_table) ! 3947: { ! 3948: /* Find the place in the list that bisects the list's total cost, ! 3949: Here I gets half the total cost. */ ! 3950: int n_moved = 0; ! 3951: i = (cost + 1) / 2; ! 3952: while (1) ! 3953: { ! 3954: /* Skip nodes while their cost does not reach that amount. */ ! 3955: if (!tree_int_cst_equal ((*npp)->low, (*npp)->high)) ! 3956: i -= cost_table[TREE_INT_CST_LOW ((*npp)->high)]; ! 3957: i -= cost_table[TREE_INT_CST_LOW ((*npp)->low)]; ! 3958: if (i <= 0) ! 3959: break; ! 3960: npp = &(*npp)->right; ! 3961: n_moved += 1; ! 3962: } ! 3963: if (n_moved == 0) ! 3964: { ! 3965: /* Leave this branch lopsided, but optimize left-hand ! 3966: side and fill in `parent' fields for right-hand side. */ ! 3967: np = *head; ! 3968: np->parent = parent; ! 3969: balance_case_nodes (&np->left, np); ! 3970: for (; np->right; np = np->right) ! 3971: np->right->parent = np; ! 3972: return; ! 3973: } ! 3974: } ! 3975: /* If there are just three nodes, split at the middle one. */ ! 3976: else if (i == 3) ! 3977: npp = &(*npp)->right; ! 3978: else ! 3979: { ! 3980: /* Find the place in the list that bisects the list's total cost, ! 3981: where ranges count as 2. ! 3982: Here I gets half the total cost. */ ! 3983: i = (i + ranges + 1) / 2; ! 3984: while (1) ! 3985: { ! 3986: /* Skip nodes while their cost does not reach that amount. */ ! 3987: if (!tree_int_cst_equal ((*npp)->low, (*npp)->high)) ! 3988: i--; ! 3989: i--; ! 3990: if (i <= 0) ! 3991: break; ! 3992: npp = &(*npp)->right; ! 3993: } ! 3994: } ! 3995: *head = np = *npp; ! 3996: *npp = 0; ! 3997: np->parent = parent; ! 3998: np->left = left; ! 3999: ! 4000: /* Optimize each of the two split parts. */ ! 4001: balance_case_nodes (&np->left, np); ! 4002: balance_case_nodes (&np->right, np); ! 4003: } ! 4004: else ! 4005: { ! 4006: /* Else leave this branch as one level, ! 4007: but fill in `parent' fields. */ ! 4008: np = *head; ! 4009: np->parent = parent; ! 4010: for (; np->right; np = np->right) ! 4011: np->right->parent = np; ! 4012: } ! 4013: } ! 4014: } ! 4015: ! 4016: /* Search the parent sections of the case node tree ! 4017: to see if a test for the lower bound of NODE would be redundant. ! 4018: INDEX_TYPE is the type of the index expression. ! 4019: ! 4020: The instructions to generate the case decision tree are ! 4021: output in the same order as nodes are processed so it is ! 4022: known that if a parent node checks the range of the current ! 4023: node minus one that the current node is bounded at its lower ! 4024: span. Thus the test would be redundant. */ ! 4025: ! 4026: static int ! 4027: node_has_low_bound (node, index_type) ! 4028: case_node_ptr node; ! 4029: tree index_type; ! 4030: { ! 4031: tree low_minus_one; ! 4032: case_node_ptr pnode; ! 4033: ! 4034: /* If the lower bound of this node is the lowest value in the index type, ! 4035: we need not test it. */ ! 4036: ! 4037: if (tree_int_cst_equal (node->low, TYPE_MIN_VALUE (index_type))) ! 4038: return 1; ! 4039: ! 4040: /* If this node has a left branch, the value at the left must be less ! 4041: than that at this node, so it cannot be bounded at the bottom and ! 4042: we need not bother testing any further. */ ! 4043: ! 4044: if (node->left) ! 4045: return 0; ! 4046: ! 4047: low_minus_one = fold (build (MINUS_EXPR, TREE_TYPE (node->low), ! 4048: node->low, integer_one_node)); ! 4049: ! 4050: /* If the subtraction above overflowed, we can't verify anything. ! 4051: Otherwise, look for a parent that tests our value - 1. */ ! 4052: ! 4053: if (! tree_int_cst_lt (low_minus_one, node->low)) ! 4054: return 0; ! 4055: ! 4056: for (pnode = node->parent; pnode; pnode = pnode->parent) ! 4057: if (tree_int_cst_equal (low_minus_one, pnode->high)) ! 4058: return 1; ! 4059: ! 4060: return 0; ! 4061: } ! 4062: ! 4063: /* Search the parent sections of the case node tree ! 4064: to see if a test for the upper bound of NODE would be redundant. ! 4065: INDEX_TYPE is the type of the index expression. ! 4066: ! 4067: The instructions to generate the case decision tree are ! 4068: output in the same order as nodes are processed so it is ! 4069: known that if a parent node checks the range of the current ! 4070: node plus one that the current node is bounded at its upper ! 4071: span. Thus the test would be redundant. */ ! 4072: ! 4073: static int ! 4074: node_has_high_bound (node, index_type) ! 4075: case_node_ptr node; ! 4076: tree index_type; ! 4077: { ! 4078: tree high_plus_one; ! 4079: case_node_ptr pnode; ! 4080: ! 4081: /* If the upper bound of this node is the highest value in the type ! 4082: of the index expression, we need not test against it. */ ! 4083: ! 4084: if (tree_int_cst_equal (node->high, TYPE_MAX_VALUE (index_type))) ! 4085: return 1; ! 4086: ! 4087: /* If this node has a right branch, the value at the right must be greater ! 4088: than that at this node, so it cannot be bounded at the top and ! 4089: we need not bother testing any further. */ ! 4090: ! 4091: if (node->right) ! 4092: return 0; ! 4093: ! 4094: high_plus_one = fold (build (PLUS_EXPR, TREE_TYPE (node->high), ! 4095: node->high, integer_one_node)); ! 4096: ! 4097: /* If the addition above overflowed, we can't verify anything. ! 4098: Otherwise, look for a parent that tests our value + 1. */ ! 4099: ! 4100: if (! tree_int_cst_lt (node->high, high_plus_one)) ! 4101: return 0; ! 4102: ! 4103: for (pnode = node->parent; pnode; pnode = pnode->parent) ! 4104: if (tree_int_cst_equal (high_plus_one, pnode->low)) ! 4105: return 1; ! 4106: ! 4107: return 0; ! 4108: } ! 4109: ! 4110: /* Search the parent sections of the ! 4111: case node tree to see if both tests for the upper and lower ! 4112: bounds of NODE would be redundant. */ ! 4113: ! 4114: static int ! 4115: node_is_bounded (node, index_type) ! 4116: case_node_ptr node; ! 4117: tree index_type; ! 4118: { ! 4119: return (node_has_low_bound (node, index_type) ! 4120: && node_has_high_bound (node, index_type)); ! 4121: } ! 4122: ! 4123: /* Emit an unconditional jump to LABEL unless it would be dead code. */ ! 4124: ! 4125: static void ! 4126: emit_jump_if_reachable (label) ! 4127: rtx label; ! 4128: { ! 4129: if (GET_CODE (get_last_insn ()) != BARRIER) ! 4130: emit_jump (label); ! 4131: } ! 4132: ! 4133: /* Emit step-by-step code to select a case for the value of INDEX. ! 4134: The thus generated decision tree follows the form of the ! 4135: case-node binary tree NODE, whose nodes represent test conditions. ! 4136: INDEX_TYPE is the type of the index of the switch. ! 4137: ! 4138: Care is taken to prune redundant tests from the decision tree ! 4139: by detecting any boundary conditions already checked by ! 4140: emitted rtx. (See node_has_high_bound, node_has_low_bound ! 4141: and node_is_bounded, above.) ! 4142: ! 4143: Where the test conditions can be shown to be redundant we emit ! 4144: an unconditional jump to the target code. As a further ! 4145: optimization, the subordinates of a tree node are examined to ! 4146: check for bounded nodes. In this case conditional and/or ! 4147: unconditional jumps as a result of the boundary check for the ! 4148: current node are arranged to target the subordinates associated ! 4149: code for out of bound conditions on the current node node. ! 4150: ! 4151: We can asume that when control reaches the code generated here, ! 4152: the index value has already been compared with the parents ! 4153: of this node, and determined to be on the same side of each parent ! 4154: as this node is. Thus, if this node tests for the value 51, ! 4155: and a parent tested for 52, we don't need to consider ! 4156: the possibility of a value greater than 51. If another parent ! 4157: tests for the value 50, then this node need not test anything. */ ! 4158: ! 4159: static void ! 4160: emit_case_nodes (index, node, default_label, index_type) ! 4161: rtx index; ! 4162: case_node_ptr node; ! 4163: rtx default_label; ! 4164: tree index_type; ! 4165: { ! 4166: /* If INDEX has an unsigned type, we must make unsigned branches. */ ! 4167: int unsignedp = TREE_UNSIGNED (index_type); ! 4168: typedef rtx rtx_function (); ! 4169: rtx_function *gen_bgt_pat = unsignedp ? gen_bgtu : gen_bgt; ! 4170: rtx_function *gen_bge_pat = unsignedp ? gen_bgeu : gen_bge; ! 4171: rtx_function *gen_blt_pat = unsignedp ? gen_bltu : gen_blt; ! 4172: rtx_function *gen_ble_pat = unsignedp ? gen_bleu : gen_ble; ! 4173: enum machine_mode mode = GET_MODE (index); ! 4174: ! 4175: /* See if our parents have already tested everything for us. ! 4176: If they have, emit an unconditional jump for this node. */ ! 4177: if (node_is_bounded (node, index_type)) ! 4178: emit_jump (label_rtx (node->code_label)); ! 4179: ! 4180: else if (tree_int_cst_equal (node->low, node->high)) ! 4181: { ! 4182: /* Node is single valued. First see if the index expression matches ! 4183: this node and then check our children, if any. */ ! 4184: ! 4185: do_jump_if_equal (index, expand_expr (node->low, 0, VOIDmode, 0), ! 4186: label_rtx (node->code_label), unsignedp); ! 4187: ! 4188: if (node->right != 0 && node->left != 0) ! 4189: { ! 4190: /* This node has children on both sides. ! 4191: Dispatch to one side or the other ! 4192: by comparing the index value with this node's value. ! 4193: If one subtree is bounded, check that one first, ! 4194: so we can avoid real branches in the tree. */ ! 4195: ! 4196: if (node_is_bounded (node->right, index_type)) ! 4197: { ! 4198: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4199: GT, 0, mode, unsignedp, 0); ! 4200: ! 4201: emit_jump_insn ((*gen_bgt_pat) (label_rtx (node->right->code_label))); ! 4202: emit_case_nodes (index, node->left, default_label, index_type); ! 4203: } ! 4204: ! 4205: else if (node_is_bounded (node->left, index_type)) ! 4206: { ! 4207: emit_cmp_insn (index, expand_expr (node->high, 0, ! 4208: VOIDmode, 0), ! 4209: LT, 0, mode, unsignedp, 0); ! 4210: emit_jump_insn ((*gen_blt_pat) (label_rtx (node->left->code_label))); ! 4211: emit_case_nodes (index, node->right, default_label, index_type); ! 4212: } ! 4213: ! 4214: else ! 4215: { ! 4216: /* Neither node is bounded. First distinguish the two sides; ! 4217: then emit the code for one side at a time. */ ! 4218: ! 4219: tree test_label ! 4220: = build_decl (LABEL_DECL, NULL_TREE, NULL_TREE); ! 4221: ! 4222: /* See if the value is on the right. */ ! 4223: emit_cmp_insn (index, expand_expr (node->high, 0, ! 4224: VOIDmode, 0), ! 4225: GT, 0, mode, unsignedp, 0); ! 4226: emit_jump_insn ((*gen_bgt_pat) (label_rtx (test_label))); ! 4227: ! 4228: /* Value must be on the left. ! 4229: Handle the left-hand subtree. */ ! 4230: emit_case_nodes (index, node->left, default_label, index_type); ! 4231: /* If left-hand subtree does nothing, ! 4232: go to default. */ ! 4233: emit_jump_if_reachable (default_label); ! 4234: ! 4235: /* Code branches here for the right-hand subtree. */ ! 4236: expand_label (test_label); ! 4237: emit_case_nodes (index, node->right, default_label, index_type); ! 4238: } ! 4239: } ! 4240: ! 4241: else if (node->right != 0 && node->left == 0) ! 4242: { ! 4243: /* Here we have a right child but no left so we issue conditional ! 4244: branch to default and process the right child. ! 4245: ! 4246: Omit the conditional branch to default if we it avoid only one ! 4247: right child; it costs too much space to save so little time. */ ! 4248: ! 4249: if (node->right->right || node->right->left ! 4250: || !tree_int_cst_equal (node->right->low, node->right->high)) ! 4251: { ! 4252: if (!node_has_low_bound (node, index_type)) ! 4253: { ! 4254: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4255: LT, 0, mode, unsignedp, 0); ! 4256: emit_jump_insn ((*gen_blt_pat) (default_label)); ! 4257: } ! 4258: ! 4259: emit_case_nodes (index, node->right, default_label, index_type); ! 4260: } ! 4261: else ! 4262: /* We cannot process node->right normally ! 4263: since we haven't ruled out the numbers less than ! 4264: this node's value. So handle node->right explicitly. */ ! 4265: do_jump_if_equal (index, ! 4266: expand_expr (node->right->low, 0, VOIDmode, 0), ! 4267: label_rtx (node->right->code_label), unsignedp); ! 4268: } ! 4269: ! 4270: else if (node->right == 0 && node->left != 0) ! 4271: { ! 4272: /* Just one subtree, on the left. */ ! 4273: ! 4274: #if 0 /* The following code and comment were formerly part ! 4275: of the condition here, but they didn't work ! 4276: and I don't understand what the idea was. -- rms. */ ! 4277: /* If our "most probable entry" is less probable ! 4278: than the default label, emit a jump to ! 4279: the default label using condition codes ! 4280: already lying around. With no right branch, ! 4281: a branch-greater-than will get us to the default ! 4282: label correctly. */ ! 4283: if (use_cost_table ! 4284: && cost_table[TREE_INT_CST_LOW (node->high)] < 12) ! 4285: ; ! 4286: #endif /* 0 */ ! 4287: if (node->left->left || node->left->right ! 4288: || !tree_int_cst_equal (node->left->low, node->left->high)) ! 4289: { ! 4290: if (!node_has_high_bound (node, index_type)) ! 4291: { ! 4292: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4293: GT, 0, mode, unsignedp, 0); ! 4294: emit_jump_insn ((*gen_bgt_pat) (default_label)); ! 4295: } ! 4296: ! 4297: emit_case_nodes (index, node->left, default_label, index_type); ! 4298: } ! 4299: else ! 4300: /* We cannot process node->left normally ! 4301: since we haven't ruled out the numbers less than ! 4302: this node's value. So handle node->left explicitly. */ ! 4303: do_jump_if_equal (index, ! 4304: expand_expr (node->left->low, 0, VOIDmode, 0), ! 4305: label_rtx (node->left->code_label), unsignedp); ! 4306: } ! 4307: } ! 4308: else ! 4309: { ! 4310: /* Node is a range. These cases are very similar to those for a single ! 4311: value, except that we do not start by testing whether this node ! 4312: is the one to branch to. */ ! 4313: ! 4314: if (node->right != 0 && node->left != 0) ! 4315: { ! 4316: /* Node has subtrees on both sides. ! 4317: If the right-hand subtree is bounded, ! 4318: test for it first, since we can go straight there. ! 4319: Otherwise, we need to make a branch in the control structure, ! 4320: then handle the two subtrees. */ ! 4321: tree test_label = 0; ! 4322: ! 4323: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4324: GT, 0, mode, unsignedp, 0); ! 4325: ! 4326: if (node_is_bounded (node->right, index_type)) ! 4327: /* Right hand node is fully bounded so we can eliminate any ! 4328: testing and branch directly to the target code. */ ! 4329: emit_jump_insn ((*gen_bgt_pat) (label_rtx (node->right->code_label))); ! 4330: else ! 4331: { ! 4332: /* Right hand node requires testing. ! 4333: Branch to a label where we will handle it later. */ ! 4334: ! 4335: test_label = build_decl (LABEL_DECL, NULL_TREE, NULL_TREE); ! 4336: emit_jump_insn ((*gen_bgt_pat) (label_rtx (test_label))); ! 4337: } ! 4338: ! 4339: /* Value belongs to this node or to the left-hand subtree. */ ! 4340: ! 4341: emit_cmp_insn (index, expand_expr (node->low, 0, VOIDmode, 0), ! 4342: GE, 0, mode, unsignedp, 0); ! 4343: emit_jump_insn ((*gen_bge_pat) (label_rtx (node->code_label))); ! 4344: ! 4345: /* Handle the left-hand subtree. */ ! 4346: emit_case_nodes (index, node->left, default_label, index_type); ! 4347: ! 4348: /* If right node had to be handled later, do that now. */ ! 4349: ! 4350: if (test_label) ! 4351: { ! 4352: /* If the left-hand subtree fell through, ! 4353: don't let it fall into the right-hand subtree. */ ! 4354: emit_jump_if_reachable (default_label); ! 4355: ! 4356: expand_label (test_label); ! 4357: emit_case_nodes (index, node->right, default_label, index_type); ! 4358: } ! 4359: } ! 4360: ! 4361: else if (node->right != 0 && node->left == 0) ! 4362: { ! 4363: /* Deal with values to the left of this node, ! 4364: if they are possible. */ ! 4365: if (!node_has_low_bound (node, index_type)) ! 4366: { ! 4367: emit_cmp_insn (index, expand_expr (node->low, 0, VOIDmode, 0), ! 4368: LT, 0, mode, unsignedp, 0); ! 4369: emit_jump_insn ((*gen_blt_pat) (default_label)); ! 4370: } ! 4371: ! 4372: /* Value belongs to this node or to the right-hand subtree. */ ! 4373: ! 4374: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4375: LE, 0, mode, unsignedp, 0); ! 4376: emit_jump_insn ((*gen_ble_pat) (label_rtx (node->code_label))); ! 4377: ! 4378: emit_case_nodes (index, node->right, default_label, index_type); ! 4379: } ! 4380: ! 4381: else if (node->right == 0 && node->left != 0) ! 4382: { ! 4383: /* Deal with values to the right of this node, ! 4384: if they are possible. */ ! 4385: if (!node_has_high_bound (node, index_type)) ! 4386: { ! 4387: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4388: GT, 0, mode, unsignedp, 0); ! 4389: emit_jump_insn ((*gen_bgt_pat) (default_label)); ! 4390: } ! 4391: ! 4392: /* Value belongs to this node or to the left-hand subtree. */ ! 4393: ! 4394: emit_cmp_insn (index, expand_expr (node->low, 0, VOIDmode, 0), ! 4395: GE, 0, mode, unsignedp, 0); ! 4396: emit_jump_insn ((*gen_bge_pat) (label_rtx (node->code_label))); ! 4397: ! 4398: emit_case_nodes (index, node->left, default_label, index_type); ! 4399: } ! 4400: ! 4401: else ! 4402: { ! 4403: /* Node has no children so we check low and high bounds to remove ! 4404: redundant tests. Only one of the bounds can exist, ! 4405: since otherwise this node is bounded--a case tested already. */ ! 4406: ! 4407: if (!node_has_high_bound (node, index_type)) ! 4408: { ! 4409: emit_cmp_insn (index, expand_expr (node->high, 0, VOIDmode, 0), ! 4410: GT, 0, mode, unsignedp, 0); ! 4411: emit_jump_insn ((*gen_bgt_pat) (default_label)); ! 4412: } ! 4413: ! 4414: if (!node_has_low_bound (node, index_type)) ! 4415: { ! 4416: emit_cmp_insn (index, expand_expr (node->low, 0, VOIDmode, 0), ! 4417: LT, 0, mode, unsignedp, 0); ! 4418: emit_jump_insn ((*gen_blt_pat) (default_label)); ! 4419: } ! 4420: ! 4421: emit_jump (label_rtx (node->code_label)); ! 4422: } ! 4423: } ! 4424: } ! 4425: ! 4426: /* These routines are used by the loop unrolling code. They copy BLOCK trees ! 4427: so that the debugging info will be correct for the unrolled loop. */ ! 4428: ! 4429: /* Indexed by loop number, contains pointer to the first block in the loop, ! 4430: or zero if none. Only valid if doing loop unrolling and outputting debugger ! 4431: info. */ ! 4432: ! 4433: tree *loop_number_first_block; ! 4434: ! 4435: /* Indexed by loop number, contains pointer to the last block in the loop, ! 4436: only valid if loop_number_first_block is nonzero. */ ! 4437: ! 4438: tree *loop_number_last_block; ! 4439: ! 4440: /* Indexed by loop number, contains nesting level of first block in the ! 4441: loop, if any. Only valid if doing loop unrolling and outputting debugger ! 4442: info. */ ! 4443: ! 4444: int *loop_number_block_level; ! 4445: ! 4446: /* Scan the function looking for loops, and walk the BLOCK tree at the ! 4447: same time. Record the first and last BLOCK tree corresponding to each ! 4448: loop. This function is similar to find_and_verify_loops in loop.c. */ ! 4449: ! 4450: void ! 4451: find_loop_tree_blocks (f) ! 4452: rtx f; ! 4453: { ! 4454: rtx insn; ! 4455: int current_loop = -1; ! 4456: int next_loop = -1; ! 4457: int loop; ! 4458: int block_level, tree_level; ! 4459: tree tree_block, parent_tree_block; ! 4460: ! 4461: tree_block = DECL_INITIAL (current_function_decl); ! 4462: parent_tree_block = 0; ! 4463: block_level = 0; ! 4464: tree_level = -1; ! 4465: ! 4466: /* Find boundaries of loops, and save the first and last BLOCK tree ! 4467: corresponding to each loop. */ ! 4468: ! 4469: for (insn = f; insn; insn = NEXT_INSN (insn)) ! 4470: { ! 4471: if (GET_CODE (insn) == NOTE) ! 4472: switch (NOTE_LINE_NUMBER (insn)) ! 4473: { ! 4474: case NOTE_INSN_LOOP_BEG: ! 4475: loop_number_block_level[++next_loop] = block_level; ! 4476: loop_number_first_block[next_loop] = 0; ! 4477: current_loop = next_loop; ! 4478: break; ! 4479: ! 4480: case NOTE_INSN_LOOP_END: ! 4481: if (current_loop == -1) ! 4482: abort (); ! 4483: ! 4484: current_loop = loop_outer_loop[current_loop]; ! 4485: break; ! 4486: ! 4487: case NOTE_INSN_BLOCK_BEG: ! 4488: if (tree_level < block_level) ! 4489: { ! 4490: /* We have seen two NOTE_INSN_BLOCK_BEG notes in a row, so ! 4491: we must now visit the subtree of the current block. */ ! 4492: parent_tree_block = tree_block; ! 4493: tree_block = BLOCK_SUBBLOCKS (tree_block); ! 4494: tree_level++; ! 4495: } ! 4496: else if (tree_level > block_level) ! 4497: abort (); ! 4498: ! 4499: /* Save this block tree here for all nested loops for which ! 4500: this is the topmost block. */ ! 4501: for (loop = current_loop; ! 4502: loop != -1 && block_level == loop_number_block_level[loop]; ! 4503: loop = loop_outer_loop[loop]) ! 4504: { ! 4505: if (loop_number_first_block[loop] == 0) ! 4506: loop_number_first_block[loop] = tree_block; ! 4507: loop_number_last_block[loop] = tree_block; ! 4508: } ! 4509: ! 4510: block_level++; ! 4511: break; ! 4512: ! 4513: case NOTE_INSN_BLOCK_END: ! 4514: block_level--; ! 4515: if (tree_level > block_level) ! 4516: { ! 4517: /* We have seen two NOTE_INSN_BLOCK_END notes in a row, so ! 4518: we must now visit the parent of the current tree. */ ! 4519: if (tree_block != 0 || parent_tree_block == 0) ! 4520: abort (); ! 4521: tree_block = parent_tree_block; ! 4522: parent_tree_block = BLOCK_SUPERCONTEXT (parent_tree_block); ! 4523: tree_level--; ! 4524: } ! 4525: tree_block = BLOCK_CHAIN (tree_block); ! 4526: break; ! 4527: } ! 4528: } ! 4529: } ! 4530: ! 4531: /* This routine will make COPIES-1 copies of all BLOCK trees that correspond ! 4532: to BLOCK_BEG notes inside the loop LOOP_NUMBER. ! 4533: ! 4534: Note that we only copy the topmost level of tree nodes; they will share ! 4535: pointers to the same subblocks. */ ! 4536: ! 4537: void ! 4538: unroll_block_trees (loop_number, copies) ! 4539: int loop_number; ! 4540: int copies; ! 4541: { ! 4542: int i; ! 4543: ! 4544: /* First check whether there are any blocks that need to be copied. */ ! 4545: if (loop_number_first_block[loop_number]) ! 4546: { ! 4547: tree first_block = loop_number_first_block[loop_number]; ! 4548: tree last_block = loop_number_last_block[loop_number]; ! 4549: tree last_block_created = 0; ! 4550: ! 4551: for (i = 0; i < copies - 1; i++) ! 4552: { ! 4553: tree block = first_block; ! 4554: tree insert_after = last_block; ! 4555: tree copied_block; ! 4556: ! 4557: /* Copy every block between first_block and last_block inclusive, ! 4558: inserting the new blocks after last_block. */ ! 4559: do ! 4560: { ! 4561: tree new_block = make_node (BLOCK); ! 4562: BLOCK_VARS (new_block) = BLOCK_VARS (block); ! 4563: BLOCK_TYPE_TAGS (new_block) = BLOCK_TYPE_TAGS (block); ! 4564: BLOCK_SUBBLOCKS (new_block) = BLOCK_SUBBLOCKS (block); ! 4565: BLOCK_SUPERCONTEXT (new_block) = BLOCK_SUPERCONTEXT (block); ! 4566: TREE_USED (new_block) = TREE_USED (block); ! 4567: ! 4568: /* Insert the new block after the insertion point, and move ! 4569: the insertion point to the new block. This ensures that ! 4570: the copies are inserted in the right order. */ ! 4571: BLOCK_CHAIN (new_block) = BLOCK_CHAIN (insert_after); ! 4572: BLOCK_CHAIN (insert_after) = new_block; ! 4573: insert_after = new_block; ! 4574: ! 4575: copied_block = block; ! 4576: block = BLOCK_CHAIN (block); ! 4577: } ! 4578: while (copied_block != last_block); ! 4579: ! 4580: /* Remember the last block created, so that we can update the ! 4581: info in the tables. */ ! 4582: if (last_block_created == 0) ! 4583: last_block_created = insert_after; ! 4584: } ! 4585: ! 4586: /* For all nested loops for which LAST_BLOCK was originally the last ! 4587: block, update the tables to indicate that LAST_BLOCK_CREATED is ! 4588: now the last block in the loop. */ ! 4589: for (i = loop_number; last_block == loop_number_last_block[i]; ! 4590: i = loop_outer_loop[i]) ! 4591: loop_number_last_block[i] = last_block_created; ! 4592: } ! 4593: }
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