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2017-05-17 Martin Liska <mliska@suse.cz> * class.c (dump_class_hierarchy): Introduce dump_flags_t type and use it instead of int type. (dump_vtable): Likewise. (dump_vtt): Likewise. * decl2.c (dump_tu): Likewise. 2017-05-17 Martin Liska <mliska@suse.cz> * c-common.h: Introduce dump_flags_t type and use it instead of int type. * c-gimplify.c (c_genericize): Likewise. * c-opts.c: Likewise. 2017-05-17 Martin Liska <mliska@suse.cz> * c-decl.c (c_parse_final_cleanups): Introduce dump_flags_t type and use it instead of int type. 2017-05-17 Martin Liska <mliska@suse.cz> * cfg.c: Introduce dump_flags_t type and use it instead of int type. * cfg.h: Likewise. * cfghooks.c: Likewise. * cfghooks.h (struct cfg_hooks): Likewise. * cfgrtl.c: Likewise. * cfgrtl.h: Likewise. * cgraph.c (cgraph_node::get_body): Likewise. * coretypes.h: Likewise. * domwalk.c: Likewise. * domwalk.h: Likewise. * dumpfile.c (struct dump_option_value_info): Likewise. (dump_enable_all): Likewise. (dump_switch_p_1): Likewise. (opt_info_switch_p): Likewise. * dumpfile.h (enum tree_dump_index): Likewise. (struct dump_file_info): Likewise. * genemit.c: Likewise. * generic-match-head.c: Likewise. * gengtype.c (open_base_files): Likewise. * gimple-pretty-print.c: Likewise. * gimple-pretty-print.h: Likewise. * graph.c (print_graph_cfg): Likewise. * graphite-scop-detection.c (dot_all_sese): Likewise. * ipa-devirt.c (build_type_inheritance_graph): Likewise. * loop-unroll.c (report_unroll): Likewise. * passes.c (pass_manager::register_one_dump_file): Likewise. * print-tree.c: Likewise. * statistics.c: Likewise. * tree-cfg.c: Likewise. * tree-cfg.h: Likewise. * tree-dfa.c: Likewise. * tree-dfa.h: Likewise. * tree-dump.c (dump_function): Likewise. * tree-dump.h (struct dump_info): Likewise. * tree-pretty-print.c: Likewise. * tree-pretty-print.h: Likewise. * tree-ssa-live.c: Likewise. * tree-ssa-live.h: Likewise. * tree-ssa-loop-ivcanon.c (try_unroll_loop_completely): Likewise. * tree-vect-loop.c: Likewise. * tree-vect-slp.c: Likewise. From-SVN: r248140
839 lines
22 KiB
C
839 lines
22 KiB
C
/* Generate code from machine description to emit insns as rtl.
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Copyright (C) 1987-2017 Free Software Foundation, Inc.
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This file is part of GCC.
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GCC is free software; you can redistribute it and/or modify it under
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the terms of the GNU General Public License as published by the Free
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Software Foundation; either version 3, or (at your option) any later
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version.
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GCC is distributed in the hope that it will be useful, but WITHOUT ANY
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WARRANTY; without even the implied warranty of MERCHANTABILITY or
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FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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for more details.
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You should have received a copy of the GNU General Public License
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along with GCC; see the file COPYING3. If not see
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<http://www.gnu.org/licenses/>. */
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#include "bconfig.h"
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#include "system.h"
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#include "coretypes.h"
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#include "tm.h"
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#include "rtl.h"
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#include "errors.h"
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#include "read-md.h"
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#include "gensupport.h"
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/* Data structure for recording the patterns of insns that have CLOBBERs.
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We use this to output a function that adds these CLOBBERs to a
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previously-allocated PARALLEL expression. */
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struct clobber_pat
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{
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struct clobber_ent *insns;
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rtx pattern;
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int first_clobber;
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struct clobber_pat *next;
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int has_hard_reg;
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} *clobber_list;
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/* Records one insn that uses the clobber list. */
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struct clobber_ent
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{
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int code_number; /* Counts only insns. */
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struct clobber_ent *next;
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};
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static void output_peephole2_scratches (rtx);
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/* True for <X>_optab if that optab isn't allowed to fail. */
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static bool nofail_optabs[NUM_OPTABS];
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static void
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print_code (RTX_CODE code)
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{
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const char *p1;
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for (p1 = GET_RTX_NAME (code); *p1; p1++)
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putchar (TOUPPER (*p1));
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}
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static void
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gen_rtx_scratch (rtx x, enum rtx_code subroutine_type)
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{
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if (subroutine_type == DEFINE_PEEPHOLE2)
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{
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printf ("operand%d", XINT (x, 0));
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}
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else
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{
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printf ("gen_rtx_SCRATCH (%smode)", GET_MODE_NAME (GET_MODE (x)));
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}
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}
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/* Print a C expression to construct an RTX just like X,
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substituting any operand references appearing within. */
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static void
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gen_exp (rtx x, enum rtx_code subroutine_type, char *used)
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{
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RTX_CODE code;
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int i;
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int len;
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const char *fmt;
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const char *sep = "";
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if (x == 0)
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{
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printf ("NULL_RTX");
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return;
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}
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code = GET_CODE (x);
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switch (code)
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{
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case MATCH_OPERAND:
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case MATCH_DUP:
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if (used)
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{
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if (used[XINT (x, 0)])
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{
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printf ("copy_rtx (operand%d)", XINT (x, 0));
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return;
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}
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used[XINT (x, 0)] = 1;
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}
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printf ("operand%d", XINT (x, 0));
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return;
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case MATCH_OP_DUP:
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printf ("gen_rtx_fmt_");
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for (i = 0; i < XVECLEN (x, 1); i++)
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printf ("e");
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printf (" (GET_CODE (operand%d), ", XINT (x, 0));
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if (GET_MODE (x) == VOIDmode)
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printf ("GET_MODE (operand%d)", XINT (x, 0));
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else
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printf ("%smode", GET_MODE_NAME (GET_MODE (x)));
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for (i = 0; i < XVECLEN (x, 1); i++)
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{
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printf (",\n\t\t");
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gen_exp (XVECEXP (x, 1, i), subroutine_type, used);
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}
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printf (")");
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return;
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case MATCH_OPERATOR:
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printf ("gen_rtx_fmt_");
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for (i = 0; i < XVECLEN (x, 2); i++)
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printf ("e");
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printf (" (GET_CODE (operand%d)", XINT (x, 0));
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printf (", %smode", GET_MODE_NAME (GET_MODE (x)));
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for (i = 0; i < XVECLEN (x, 2); i++)
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{
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printf (",\n\t\t");
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gen_exp (XVECEXP (x, 2, i), subroutine_type, used);
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}
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printf (")");
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return;
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case MATCH_PARALLEL:
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case MATCH_PAR_DUP:
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printf ("operand%d", XINT (x, 0));
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return;
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case MATCH_SCRATCH:
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gen_rtx_scratch (x, subroutine_type);
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return;
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case PC:
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printf ("pc_rtx");
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return;
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case RETURN:
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printf ("ret_rtx");
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return;
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case SIMPLE_RETURN:
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printf ("simple_return_rtx");
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return;
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case CLOBBER:
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if (REG_P (XEXP (x, 0)))
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{
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printf ("gen_hard_reg_clobber (%smode, %i)", GET_MODE_NAME (GET_MODE (XEXP (x, 0))),
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REGNO (XEXP (x, 0)));
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return;
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}
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break;
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case CC0:
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printf ("cc0_rtx");
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return;
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case CONST_INT:
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if (INTVAL (x) == 0)
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printf ("const0_rtx");
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else if (INTVAL (x) == 1)
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printf ("const1_rtx");
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else if (INTVAL (x) == -1)
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printf ("constm1_rtx");
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else if (-MAX_SAVED_CONST_INT <= INTVAL (x)
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&& INTVAL (x) <= MAX_SAVED_CONST_INT)
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printf ("const_int_rtx[MAX_SAVED_CONST_INT + (%d)]",
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(int) INTVAL (x));
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else if (INTVAL (x) == STORE_FLAG_VALUE)
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printf ("const_true_rtx");
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else
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{
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printf ("GEN_INT (");
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printf (HOST_WIDE_INT_PRINT_DEC_C, INTVAL (x));
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printf (")");
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}
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return;
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case CONST_DOUBLE:
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case CONST_FIXED:
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case CONST_WIDE_INT:
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/* These shouldn't be written in MD files. Instead, the appropriate
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routines in varasm.c should be called. */
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gcc_unreachable ();
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default:
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break;
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}
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printf ("gen_rtx_");
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print_code (code);
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printf (" (");
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if (!always_void_p (code))
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{
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printf ("%smode", GET_MODE_NAME (GET_MODE (x)));
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sep = ",\n\t";
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}
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fmt = GET_RTX_FORMAT (code);
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len = GET_RTX_LENGTH (code);
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for (i = 0; i < len; i++)
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{
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if (fmt[i] == '0')
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break;
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fputs (sep, stdout);
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switch (fmt[i])
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{
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case 'e': case 'u':
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gen_exp (XEXP (x, i), subroutine_type, used);
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break;
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case 'i':
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printf ("%u", XINT (x, i));
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break;
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case 'r':
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printf ("%u", REGNO (x));
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break;
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case 's':
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printf ("\"%s\"", XSTR (x, i));
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break;
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case 'E':
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{
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int j;
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printf ("gen_rtvec (%d", XVECLEN (x, i));
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for (j = 0; j < XVECLEN (x, i); j++)
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{
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printf (",\n\t\t");
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gen_exp (XVECEXP (x, i, j), subroutine_type, used);
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}
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printf (")");
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break;
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}
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default:
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gcc_unreachable ();
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}
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sep = ",\n\t";
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}
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printf (")");
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}
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/* Output code to emit the instruction patterns in VEC, with each element
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becoming a separate instruction. USED is as for gen_exp. */
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static void
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gen_emit_seq (rtvec vec, char *used)
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{
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for (int i = 0, len = GET_NUM_ELEM (vec); i < len; ++i)
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{
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bool last_p = (i == len - 1);
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rtx next = RTVEC_ELT (vec, i);
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if (const char *name = get_emit_function (next))
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{
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printf (" %s (", name);
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gen_exp (next, DEFINE_EXPAND, used);
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printf (");\n");
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if (!last_p && needs_barrier_p (next))
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printf (" emit_barrier ();");
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}
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else
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{
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printf (" emit (");
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gen_exp (next, DEFINE_EXPAND, used);
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printf (", %s);\n", last_p ? "false" : "true");
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}
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}
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}
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/* Emit the given C code to the output file. The code is allowed to
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fail if CAN_FAIL_P. NAME describes what we're generating,
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for use in error messages. */
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static void
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emit_c_code (const char *code, bool can_fail_p, const char *name)
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{
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if (can_fail_p)
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printf ("#define FAIL return (end_sequence (), _val)\n");
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else
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printf ("#define FAIL _Pragma (\"GCC error \\\"%s cannot FAIL\\\"\")"
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" (void)0\n", name);
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printf ("#define DONE return (_val = get_insns (),"
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"end_sequence (), _val)\n");
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rtx_reader_ptr->print_md_ptr_loc (code);
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printf ("%s\n", code);
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printf ("#undef DONE\n");
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printf ("#undef FAIL\n");
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}
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/* Generate the `gen_...' function for a DEFINE_INSN. */
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static void
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gen_insn (md_rtx_info *info)
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{
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struct pattern_stats stats;
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int i;
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/* See if the pattern for this insn ends with a group of CLOBBERs of (hard)
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registers or MATCH_SCRATCHes. If so, store away the information for
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later. */
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rtx insn = info->def;
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if (XVEC (insn, 1))
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{
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int has_hard_reg = 0;
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for (i = XVECLEN (insn, 1) - 1; i > 0; i--)
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{
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if (GET_CODE (XVECEXP (insn, 1, i)) != CLOBBER)
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break;
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if (REG_P (XEXP (XVECEXP (insn, 1, i), 0)))
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has_hard_reg = 1;
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else if (GET_CODE (XEXP (XVECEXP (insn, 1, i), 0)) != MATCH_SCRATCH)
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break;
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}
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if (i != XVECLEN (insn, 1) - 1)
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{
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struct clobber_pat *p;
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struct clobber_ent *link = XNEW (struct clobber_ent);
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int j;
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link->code_number = info->index;
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/* See if any previous CLOBBER_LIST entry is the same as this
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one. */
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for (p = clobber_list; p; p = p->next)
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{
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if (p->first_clobber != i + 1
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|| XVECLEN (p->pattern, 1) != XVECLEN (insn, 1))
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continue;
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for (j = i + 1; j < XVECLEN (insn, 1); j++)
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{
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rtx old_rtx = XEXP (XVECEXP (p->pattern, 1, j), 0);
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rtx new_rtx = XEXP (XVECEXP (insn, 1, j), 0);
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/* OLD and NEW_INSN are the same if both are to be a SCRATCH
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of the same mode,
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or if both are registers of the same mode and number. */
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if (! (GET_MODE (old_rtx) == GET_MODE (new_rtx)
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&& ((GET_CODE (old_rtx) == MATCH_SCRATCH
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&& GET_CODE (new_rtx) == MATCH_SCRATCH)
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|| (REG_P (old_rtx) && REG_P (new_rtx)
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&& REGNO (old_rtx) == REGNO (new_rtx)))))
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break;
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}
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if (j == XVECLEN (insn, 1))
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break;
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}
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if (p == 0)
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{
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p = XNEW (struct clobber_pat);
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p->insns = 0;
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p->pattern = insn;
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p->first_clobber = i + 1;
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p->next = clobber_list;
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p->has_hard_reg = has_hard_reg;
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clobber_list = p;
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}
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link->next = p->insns;
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p->insns = link;
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}
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}
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/* Don't mention instructions whose names are the null string
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or begin with '*'. They are in the machine description just
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to be recognized. */
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if (XSTR (insn, 0)[0] == 0 || XSTR (insn, 0)[0] == '*')
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return;
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printf ("/* %s:%d */\n", info->loc.filename, info->loc.lineno);
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/* Find out how many operands this function has. */
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get_pattern_stats (&stats, XVEC (insn, 1));
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if (stats.max_dup_opno > stats.max_opno)
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fatal_at (info->loc, "match_dup operand number has no match_operand");
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/* Output the function name and argument declarations. */
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printf ("rtx\ngen_%s (", XSTR (insn, 0));
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if (stats.num_generator_args)
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for (i = 0; i < stats.num_generator_args; i++)
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if (i)
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printf (",\n\trtx operand%d ATTRIBUTE_UNUSED", i);
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else
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printf ("rtx operand%d ATTRIBUTE_UNUSED", i);
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else
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printf ("void");
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printf (")\n");
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printf ("{\n");
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|
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/* Output code to construct and return the rtl for the instruction body. */
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rtx pattern = add_implicit_parallel (XVEC (insn, 1));
|
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/* ??? This is the traditional behavior, but seems suspect. */
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char *used = (XVECLEN (insn, 1) == 1
|
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? NULL
|
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: XCNEWVEC (char, stats.num_generator_args));
|
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printf (" return ");
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gen_exp (pattern, DEFINE_INSN, used);
|
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printf (";\n}\n\n");
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XDELETEVEC (used);
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}
|
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|
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/* Generate the `gen_...' function for a DEFINE_EXPAND. */
|
||
|
||
static void
|
||
gen_expand (md_rtx_info *info)
|
||
{
|
||
struct pattern_stats stats;
|
||
int i;
|
||
char *used;
|
||
|
||
rtx expand = info->def;
|
||
if (strlen (XSTR (expand, 0)) == 0)
|
||
fatal_at (info->loc, "define_expand lacks a name");
|
||
if (XVEC (expand, 1) == 0)
|
||
fatal_at (info->loc, "define_expand for %s lacks a pattern",
|
||
XSTR (expand, 0));
|
||
|
||
/* Find out how many operands this function has. */
|
||
get_pattern_stats (&stats, XVEC (expand, 1));
|
||
if (stats.min_scratch_opno != -1
|
||
&& stats.min_scratch_opno <= MAX (stats.max_opno, stats.max_dup_opno))
|
||
fatal_at (info->loc, "define_expand for %s needs to have match_scratch "
|
||
"numbers above all other operands", XSTR (expand, 0));
|
||
|
||
/* Output the function name and argument declarations. */
|
||
printf ("rtx\ngen_%s (", XSTR (expand, 0));
|
||
if (stats.num_generator_args)
|
||
for (i = 0; i < stats.num_generator_args; i++)
|
||
if (i)
|
||
printf (",\n\trtx operand%d", i);
|
||
else
|
||
printf ("rtx operand%d", i);
|
||
else
|
||
printf ("void");
|
||
printf (")\n");
|
||
printf ("{\n");
|
||
|
||
/* If we don't have any C code to write, only one insn is being written,
|
||
and no MATCH_DUPs are present, we can just return the desired insn
|
||
like we do for a DEFINE_INSN. This saves memory. */
|
||
if ((XSTR (expand, 3) == 0 || *XSTR (expand, 3) == '\0')
|
||
&& stats.max_opno >= stats.max_dup_opno
|
||
&& XVECLEN (expand, 1) == 1)
|
||
{
|
||
printf (" return ");
|
||
gen_exp (XVECEXP (expand, 1, 0), DEFINE_EXPAND, NULL);
|
||
printf (";\n}\n\n");
|
||
return;
|
||
}
|
||
|
||
/* For each operand referred to only with MATCH_DUPs,
|
||
make a local variable. */
|
||
for (i = stats.num_generator_args; i <= stats.max_dup_opno; i++)
|
||
printf (" rtx operand%d;\n", i);
|
||
printf (" rtx_insn *_val = 0;\n");
|
||
printf (" start_sequence ();\n");
|
||
|
||
/* The fourth operand of DEFINE_EXPAND is some code to be executed
|
||
before the actual construction.
|
||
This code expects to refer to `operands'
|
||
just as the output-code in a DEFINE_INSN does,
|
||
but here `operands' is an automatic array.
|
||
So copy the operand values there before executing it. */
|
||
if (XSTR (expand, 3) && *XSTR (expand, 3))
|
||
{
|
||
printf (" {\n");
|
||
if (stats.num_operand_vars > 0)
|
||
printf (" rtx operands[%d];\n", stats.num_operand_vars);
|
||
|
||
/* Output code to copy the arguments into `operands'. */
|
||
for (i = 0; i < stats.num_generator_args; i++)
|
||
printf (" operands[%d] = operand%d;\n", i, i);
|
||
|
||
/* Output the special code to be executed before the sequence
|
||
is generated. */
|
||
optab_pattern p;
|
||
bool can_fail_p = true;
|
||
if (find_optab (&p, XSTR (expand, 0)))
|
||
{
|
||
gcc_assert (p.op < NUM_OPTABS);
|
||
if (nofail_optabs[p.op])
|
||
can_fail_p = false;
|
||
}
|
||
emit_c_code (XSTR (expand, 3), can_fail_p, XSTR (expand, 0));
|
||
|
||
/* Output code to copy the arguments back out of `operands'
|
||
(unless we aren't going to use them at all). */
|
||
if (XVEC (expand, 1) != 0)
|
||
{
|
||
for (i = 0; i <= MAX (stats.max_opno, stats.max_dup_opno); i++)
|
||
{
|
||
printf (" operand%d = operands[%d];\n", i, i);
|
||
printf (" (void) operand%d;\n", i);
|
||
}
|
||
}
|
||
printf (" }\n");
|
||
}
|
||
|
||
used = XCNEWVEC (char, stats.num_operand_vars);
|
||
gen_emit_seq (XVEC (expand, 1), used);
|
||
XDELETEVEC (used);
|
||
|
||
/* Call `get_insns' to extract the list of all the
|
||
insns emitted within this gen_... function. */
|
||
|
||
printf (" _val = get_insns ();\n");
|
||
printf (" end_sequence ();\n");
|
||
printf (" return _val;\n}\n\n");
|
||
}
|
||
|
||
/* Like gen_expand, but generates insns resulting from splitting SPLIT. */
|
||
|
||
static void
|
||
gen_split (md_rtx_info *info)
|
||
{
|
||
struct pattern_stats stats;
|
||
int i;
|
||
rtx split = info->def;
|
||
const char *const name =
|
||
((GET_CODE (split) == DEFINE_PEEPHOLE2) ? "peephole2" : "split");
|
||
const char *unused;
|
||
char *used;
|
||
|
||
if (XVEC (split, 0) == 0)
|
||
fatal_at (info->loc, "%s lacks a pattern",
|
||
GET_RTX_NAME (GET_CODE (split)));
|
||
else if (XVEC (split, 2) == 0)
|
||
fatal_at (info->loc, "%s lacks a replacement pattern",
|
||
GET_RTX_NAME (GET_CODE (split)));
|
||
|
||
/* Find out how many operands this function has. */
|
||
|
||
get_pattern_stats (&stats, XVEC (split, 2));
|
||
unused = (stats.num_operand_vars == 0 ? " ATTRIBUTE_UNUSED" : "");
|
||
used = XCNEWVEC (char, stats.num_operand_vars);
|
||
|
||
/* Output the prototype, function name and argument declarations. */
|
||
if (GET_CODE (split) == DEFINE_PEEPHOLE2)
|
||
{
|
||
printf ("extern rtx_insn *gen_%s_%d (rtx_insn *, rtx *);\n",
|
||
name, info->index);
|
||
printf ("rtx_insn *\ngen_%s_%d (rtx_insn *curr_insn ATTRIBUTE_UNUSED,"
|
||
" rtx *operands%s)\n",
|
||
name, info->index, unused);
|
||
}
|
||
else
|
||
{
|
||
printf ("extern rtx_insn *gen_split_%d (rtx_insn *, rtx *);\n",
|
||
info->index);
|
||
printf ("rtx_insn *\ngen_split_%d "
|
||
"(rtx_insn *curr_insn ATTRIBUTE_UNUSED, rtx *operands%s)\n",
|
||
info->index, unused);
|
||
}
|
||
printf ("{\n");
|
||
|
||
/* Declare all local variables. */
|
||
for (i = 0; i < stats.num_operand_vars; i++)
|
||
printf (" rtx operand%d;\n", i);
|
||
printf (" rtx_insn *_val = NULL;\n");
|
||
|
||
if (GET_CODE (split) == DEFINE_PEEPHOLE2)
|
||
output_peephole2_scratches (split);
|
||
|
||
printf (" if (dump_file)\n");
|
||
printf (" fprintf (dump_file, \"Splitting with gen_%s_%d\\n\");\n",
|
||
name, info->index);
|
||
|
||
printf (" start_sequence ();\n");
|
||
|
||
/* The fourth operand of DEFINE_SPLIT is some code to be executed
|
||
before the actual construction. */
|
||
|
||
if (XSTR (split, 3))
|
||
emit_c_code (XSTR (split, 3), true, name);
|
||
|
||
/* Output code to copy the arguments back out of `operands' */
|
||
for (i = 0; i < stats.num_operand_vars; i++)
|
||
{
|
||
printf (" operand%d = operands[%d];\n", i, i);
|
||
printf (" (void) operand%d;\n", i);
|
||
}
|
||
|
||
gen_emit_seq (XVEC (split, 2), used);
|
||
|
||
/* Call `get_insns' to make a list of all the
|
||
insns emitted within this gen_... function. */
|
||
|
||
printf (" _val = get_insns ();\n");
|
||
printf (" end_sequence ();\n");
|
||
printf (" return _val;\n}\n\n");
|
||
|
||
free (used);
|
||
}
|
||
|
||
/* Write a function, `add_clobbers', that is given a PARALLEL of sufficient
|
||
size for the insn and an INSN_CODE, and inserts the required CLOBBERs at
|
||
the end of the vector. */
|
||
|
||
static void
|
||
output_add_clobbers (void)
|
||
{
|
||
struct clobber_pat *clobber;
|
||
struct clobber_ent *ent;
|
||
int i;
|
||
|
||
printf ("\n\nvoid\nadd_clobbers (rtx pattern ATTRIBUTE_UNUSED, int insn_code_number)\n");
|
||
printf ("{\n");
|
||
printf (" switch (insn_code_number)\n");
|
||
printf (" {\n");
|
||
|
||
for (clobber = clobber_list; clobber; clobber = clobber->next)
|
||
{
|
||
for (ent = clobber->insns; ent; ent = ent->next)
|
||
printf (" case %d:\n", ent->code_number);
|
||
|
||
for (i = clobber->first_clobber; i < XVECLEN (clobber->pattern, 1); i++)
|
||
{
|
||
printf (" XVECEXP (pattern, 0, %d) = ", i);
|
||
gen_exp (XVECEXP (clobber->pattern, 1, i),
|
||
GET_CODE (clobber->pattern), NULL);
|
||
printf (";\n");
|
||
}
|
||
|
||
printf (" break;\n\n");
|
||
}
|
||
|
||
printf (" default:\n");
|
||
printf (" gcc_unreachable ();\n");
|
||
printf (" }\n");
|
||
printf ("}\n");
|
||
}
|
||
|
||
/* Write a function, `added_clobbers_hard_reg_p' that is given an insn_code
|
||
number that will have clobbers added (as indicated by `recog') and returns
|
||
1 if those include a clobber of a hard reg or 0 if all of them just clobber
|
||
SCRATCH. */
|
||
|
||
static void
|
||
output_added_clobbers_hard_reg_p (void)
|
||
{
|
||
struct clobber_pat *clobber;
|
||
struct clobber_ent *ent;
|
||
int clobber_p, used;
|
||
|
||
printf ("\n\nint\nadded_clobbers_hard_reg_p (int insn_code_number)\n");
|
||
printf ("{\n");
|
||
printf (" switch (insn_code_number)\n");
|
||
printf (" {\n");
|
||
|
||
for (clobber_p = 0; clobber_p <= 1; clobber_p++)
|
||
{
|
||
used = 0;
|
||
for (clobber = clobber_list; clobber; clobber = clobber->next)
|
||
if (clobber->has_hard_reg == clobber_p)
|
||
for (ent = clobber->insns; ent; ent = ent->next)
|
||
{
|
||
printf (" case %d:\n", ent->code_number);
|
||
used++;
|
||
}
|
||
|
||
if (used)
|
||
printf (" return %d;\n\n", clobber_p);
|
||
}
|
||
|
||
printf (" default:\n");
|
||
printf (" gcc_unreachable ();\n");
|
||
printf (" }\n");
|
||
printf ("}\n");
|
||
}
|
||
|
||
/* Generate code to invoke find_free_register () as needed for the
|
||
scratch registers used by the peephole2 pattern in SPLIT. */
|
||
|
||
static void
|
||
output_peephole2_scratches (rtx split)
|
||
{
|
||
int i;
|
||
int insn_nr = 0;
|
||
bool first = true;
|
||
|
||
for (i = 0; i < XVECLEN (split, 0); i++)
|
||
{
|
||
rtx elt = XVECEXP (split, 0, i);
|
||
if (GET_CODE (elt) == MATCH_SCRATCH)
|
||
{
|
||
int last_insn_nr = insn_nr;
|
||
int cur_insn_nr = insn_nr;
|
||
int j;
|
||
for (j = i + 1; j < XVECLEN (split, 0); j++)
|
||
if (GET_CODE (XVECEXP (split, 0, j)) == MATCH_DUP)
|
||
{
|
||
if (XINT (XVECEXP (split, 0, j), 0) == XINT (elt, 0))
|
||
last_insn_nr = cur_insn_nr;
|
||
}
|
||
else if (GET_CODE (XVECEXP (split, 0, j)) != MATCH_SCRATCH)
|
||
cur_insn_nr++;
|
||
|
||
if (first)
|
||
{
|
||
printf (" HARD_REG_SET _regs_allocated;\n");
|
||
printf (" CLEAR_HARD_REG_SET (_regs_allocated);\n");
|
||
first = false;
|
||
}
|
||
|
||
printf (" if ((operands[%d] = peep2_find_free_register (%d, %d, \"%s\", %smode, &_regs_allocated)) == NULL_RTX)\n\
|
||
return NULL;\n",
|
||
XINT (elt, 0),
|
||
insn_nr, last_insn_nr,
|
||
XSTR (elt, 1),
|
||
GET_MODE_NAME (GET_MODE (elt)));
|
||
|
||
}
|
||
else if (GET_CODE (elt) != MATCH_DUP)
|
||
insn_nr++;
|
||
}
|
||
}
|
||
|
||
int
|
||
main (int argc, const char **argv)
|
||
{
|
||
progname = "genemit";
|
||
|
||
if (!init_rtx_reader_args (argc, argv))
|
||
return (FATAL_EXIT_CODE);
|
||
|
||
#define DEF_INTERNAL_OPTAB_FN(NAME, FLAGS, OPTAB, TYPE) \
|
||
nofail_optabs[OPTAB##_optab] = true;
|
||
#include "internal-fn.def"
|
||
|
||
/* Assign sequential codes to all entries in the machine description
|
||
in parallel with the tables in insn-output.c. */
|
||
|
||
printf ("/* Generated automatically by the program `genemit'\n\
|
||
from the machine description file `md'. */\n\n");
|
||
|
||
printf ("#include \"config.h\"\n");
|
||
printf ("#include \"system.h\"\n");
|
||
printf ("#include \"coretypes.h\"\n");
|
||
printf ("#include \"backend.h\"\n");
|
||
printf ("#include \"predict.h\"\n");
|
||
printf ("#include \"tree.h\"\n");
|
||
printf ("#include \"rtl.h\"\n");
|
||
printf ("#include \"alias.h\"\n");
|
||
printf ("#include \"varasm.h\"\n");
|
||
printf ("#include \"stor-layout.h\"\n");
|
||
printf ("#include \"calls.h\"\n");
|
||
printf ("#include \"memmodel.h\"\n");
|
||
printf ("#include \"tm_p.h\"\n");
|
||
printf ("#include \"flags.h\"\n");
|
||
printf ("#include \"insn-config.h\"\n");
|
||
printf ("#include \"expmed.h\"\n");
|
||
printf ("#include \"dojump.h\"\n");
|
||
printf ("#include \"explow.h\"\n");
|
||
printf ("#include \"emit-rtl.h\"\n");
|
||
printf ("#include \"stmt.h\"\n");
|
||
printf ("#include \"expr.h\"\n");
|
||
printf ("#include \"insn-codes.h\"\n");
|
||
printf ("#include \"optabs.h\"\n");
|
||
printf ("#include \"dfp.h\"\n");
|
||
printf ("#include \"output.h\"\n");
|
||
printf ("#include \"recog.h\"\n");
|
||
printf ("#include \"df.h\"\n");
|
||
printf ("#include \"resource.h\"\n");
|
||
printf ("#include \"reload.h\"\n");
|
||
printf ("#include \"diagnostic-core.h\"\n");
|
||
printf ("#include \"regs.h\"\n");
|
||
printf ("#include \"tm-constrs.h\"\n");
|
||
printf ("#include \"ggc.h\"\n");
|
||
printf ("#include \"target.h\"\n\n");
|
||
|
||
/* Read the machine description. */
|
||
|
||
md_rtx_info info;
|
||
while (read_md_rtx (&info))
|
||
switch (GET_CODE (info.def))
|
||
{
|
||
case DEFINE_INSN:
|
||
gen_insn (&info);
|
||
break;
|
||
|
||
case DEFINE_EXPAND:
|
||
printf ("/* %s:%d */\n", info.loc.filename, info.loc.lineno);
|
||
gen_expand (&info);
|
||
break;
|
||
|
||
case DEFINE_SPLIT:
|
||
printf ("/* %s:%d */\n", info.loc.filename, info.loc.lineno);
|
||
gen_split (&info);
|
||
break;
|
||
|
||
case DEFINE_PEEPHOLE2:
|
||
printf ("/* %s:%d */\n", info.loc.filename, info.loc.lineno);
|
||
gen_split (&info);
|
||
break;
|
||
|
||
default:
|
||
break;
|
||
}
|
||
|
||
/* Write out the routines to add CLOBBERs to a pattern and say whether they
|
||
clobber a hard reg. */
|
||
output_add_clobbers ();
|
||
output_added_clobbers_hard_reg_p ();
|
||
|
||
fflush (stdout);
|
||
return (ferror (stdout) != 0 ? FATAL_EXIT_CODE : SUCCESS_EXIT_CODE);
|
||
}
|