mirror of
https://github.com/autc04/Retro68.git
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330 lines
9.4 KiB
C++
330 lines
9.4 KiB
C++
/* Unit tests for RTL-handling.
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Copyright (C) 2015-2022 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 "config.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 "opts.h"
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#include "hash-set.h"
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#include "fixed-value.h"
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#include "alias.h"
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#include "flags.h"
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#include "symtab.h"
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#include "tree-core.h"
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#include "stor-layout.h"
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#include "tree.h"
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#include "stringpool.h"
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#include "stor-layout.h"
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#include "rtl.h"
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#include "pretty-print.h"
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#include "cfgbuild.h"
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#include "print-rtl.h"
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#include "selftest.h"
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#include "selftest-rtl.h"
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#include "function.h"
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#include "memmodel.h"
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#include "emit-rtl.h"
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#if CHECKING_P
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namespace selftest {
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/* Verify that PAT is printed as EXPECTED. Helper function for
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selftests. */
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static void
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verify_print_pattern (const char *expected, rtx pat)
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{
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pretty_printer pp;
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print_pattern (&pp, pat, 1);
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ASSERT_STREQ (expected, pp_formatted_text (&pp));
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}
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/* Verify that X is dumped as EXPECTED_DUMP, using compact mode.
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Use LOC as the effective location when reporting errors. */
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void
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assert_rtl_dump_eq (const location &loc, const char *expected_dump, rtx x,
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rtx_reuse_manager *reuse_manager)
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{
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named_temp_file tmp_out (".rtl");
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FILE *outfile = fopen (tmp_out.get_filename (), "w");
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rtx_writer w (outfile, 0, false, true, reuse_manager);
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w.print_rtl (x);
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fclose (outfile);
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char *dump = read_file (SELFTEST_LOCATION, tmp_out.get_filename ());
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ASSERT_STREQ_AT (loc, expected_dump, dump);
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free (dump);
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}
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/* Verify that regs are dumped as expected (in compact mode). */
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static void
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test_dumping_regs ()
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{
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/* Dumps of hard regs contain a target-specific name, so we don't test
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it here; this can be tested in target-specific selftests. */
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/* Test dumping of virtual regs. The various virtual regs are inited as
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Pmode, so this is target-specific. The tests below assume DImode, so
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only run the tests for targets where Pmode is DImode. */
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if (Pmode == DImode)
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{
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ASSERT_RTL_DUMP_EQ ("(reg:DI virtual-incoming-args)",
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virtual_incoming_args_rtx);
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ASSERT_RTL_DUMP_EQ ("(reg:DI virtual-stack-vars)",
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virtual_stack_vars_rtx);
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ASSERT_RTL_DUMP_EQ ("(reg:DI virtual-stack-dynamic)",
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virtual_stack_dynamic_rtx);
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ASSERT_RTL_DUMP_EQ ("(reg:DI virtual-outgoing-args)",
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virtual_outgoing_args_rtx);
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ASSERT_RTL_DUMP_EQ ("(reg:DI virtual-cfa)",
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virtual_cfa_rtx);
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ASSERT_RTL_DUMP_EQ ("(reg:DI virtual-preferred-stack-boundary)",
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virtual_preferred_stack_boundary_rtx);
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}
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/* Test dumping of non-virtual pseudos. */
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ASSERT_RTL_DUMP_EQ ("(reg:SI <0>)",
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gen_raw_REG (SImode, LAST_VIRTUAL_REGISTER + 1));
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ASSERT_RTL_DUMP_EQ ("(reg:SI <1>)",
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gen_raw_REG (SImode, LAST_VIRTUAL_REGISTER + 2));
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}
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/* Verify that insns are dumped as expected (in compact mode). */
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static void
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test_dumping_insns ()
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{
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/* Barriers. */
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rtx_barrier *barrier = as_a <rtx_barrier *> (rtx_alloc (BARRIER));
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SET_NEXT_INSN (barrier) = NULL;
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ASSERT_RTL_DUMP_EQ ("(cbarrier 0)\n", barrier);
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/* Labels. */
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rtx_insn *label = gen_label_rtx ();
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CODE_LABEL_NUMBER (label) = 42;
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ASSERT_RTL_DUMP_EQ ("(clabel 0 42)\n", label);
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LABEL_NAME (label)= "some_label";
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ASSERT_RTL_DUMP_EQ ("(clabel 0 42 (\"some_label\"))\n", label);
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}
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/* Manually exercise the rtx_reuse_manager code. */
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static void
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test_dumping_rtx_reuse ()
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{
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rtx_reuse_manager r;
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rtx x = rtx_alloc (SCRATCH);
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rtx y = rtx_alloc (SCRATCH);
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rtx z = rtx_alloc (SCRATCH);
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/* x and y will be seen more than once. */
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r.preprocess (x);
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r.preprocess (x);
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r.preprocess (y);
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r.preprocess (y);
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/* z will be only seen once. */
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r.preprocess (z);
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/* Verify that x and y have been assigned reuse IDs. */
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int reuse_id_for_x;
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ASSERT_TRUE (r.has_reuse_id (x, &reuse_id_for_x));
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ASSERT_EQ (0, reuse_id_for_x);
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int reuse_id_for_y;
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ASSERT_TRUE (r.has_reuse_id (y, &reuse_id_for_y));
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ASSERT_EQ (1, reuse_id_for_y);
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/* z is only seen once and thus shouldn't get a reuse ID. */
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ASSERT_FALSE (r.has_reuse_id (z, NULL));
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/* The first dumps of x and y should be prefixed by reuse ID;
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all subsequent dumps of them should show up as "reuse_rtx". */
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(0|scratch)", x, &r);
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(reuse_rtx 0)", x, &r);
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(reuse_rtx 0)", x, &r);
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(1|scratch)", y, &r);
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(reuse_rtx 1)", y, &r);
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(reuse_rtx 1)", y, &r);
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/* z only appears once and thus shouldn't be prefixed with a
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reuse ID. */
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ASSERT_RTL_DUMP_EQ_WITH_REUSE ("(scratch)", z, &r);
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}
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/* Unit testing of "single_set". */
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static void
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test_single_set ()
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{
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/* A label is not a SET. */
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ASSERT_EQ (NULL_RTX, single_set (gen_label_rtx ()));
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/* An unconditional jump insn is a single SET. */
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rtx set_pc = gen_rtx_SET (pc_rtx,
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gen_rtx_LABEL_REF (VOIDmode,
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gen_label_rtx ()));
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rtx_insn *jump_insn = emit_jump_insn (set_pc);
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ASSERT_EQ (set_pc, single_set (jump_insn));
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/* etc */
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}
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/* Construct an unconditional jump to a label, and verify that
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various properties of it are sane. */
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static void
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test_uncond_jump ()
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{
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set_new_first_and_last_insn (NULL, NULL);
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rtx_insn *label = gen_label_rtx ();
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rtx jump_pat = gen_rtx_SET (pc_rtx,
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gen_rtx_LABEL_REF (VOIDmode,
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label));
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ASSERT_EQ (SET, jump_pat->code);
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ASSERT_EQ (LABEL_REF, SET_SRC (jump_pat)->code);
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ASSERT_EQ (label, label_ref_label (SET_SRC (jump_pat)));
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ASSERT_EQ (PC, SET_DEST (jump_pat)->code);
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verify_print_pattern ("pc=L0", jump_pat);
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ASSERT_RTL_DUMP_EQ ("(set (pc)\n"
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" (label_ref 0))",
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jump_pat);
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rtx_insn *jump_insn = emit_jump_insn (jump_pat);
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ASSERT_FALSE (any_condjump_p (jump_insn));
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ASSERT_TRUE (any_uncondjump_p (jump_insn));
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ASSERT_TRUE (pc_set (jump_insn));
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ASSERT_TRUE (simplejump_p (jump_insn));
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ASSERT_TRUE (onlyjump_p (jump_insn));
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ASSERT_TRUE (control_flow_insn_p (jump_insn));
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ASSERT_RTL_DUMP_EQ ("(cjump_insn 1 (set (pc)\n"
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" (label_ref 0)))\n",
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jump_insn);
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}
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template<unsigned int N>
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struct const_poly_int_tests
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{
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static void run ();
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};
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template<>
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struct const_poly_int_tests<1>
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{
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static void run () {}
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};
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/* Test various CONST_POLY_INT properties. */
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template<unsigned int N>
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void
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const_poly_int_tests<N>::run ()
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{
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rtx x1 = gen_int_mode (poly_int64 (1, 1), QImode);
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rtx x255 = gen_int_mode (poly_int64 (1, 255), QImode);
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/* Test that constants are unique. */
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ASSERT_EQ (x1, gen_int_mode (poly_int64 (1, 1), QImode));
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ASSERT_NE (x1, gen_int_mode (poly_int64 (1, 1), HImode));
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ASSERT_NE (x1, x255);
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/* Test const_poly_int_value. */
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ASSERT_KNOWN_EQ (const_poly_int_value (x1), poly_int64 (1, 1));
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ASSERT_KNOWN_EQ (const_poly_int_value (x255), poly_int64 (1, -1));
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/* Test rtx_to_poly_int64. */
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ASSERT_KNOWN_EQ (rtx_to_poly_int64 (x1), poly_int64 (1, 1));
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ASSERT_KNOWN_EQ (rtx_to_poly_int64 (x255), poly_int64 (1, -1));
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ASSERT_MAYBE_NE (rtx_to_poly_int64 (x255), poly_int64 (1, 255));
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/* Test plus_constant of a symbol. */
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rtx symbol = gen_rtx_SYMBOL_REF (Pmode, "foo");
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rtx offset1 = gen_int_mode (poly_int64 (9, 11), Pmode);
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rtx sum1 = gen_rtx_CONST (Pmode, gen_rtx_PLUS (Pmode, symbol, offset1));
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ASSERT_RTX_EQ (plus_constant (Pmode, symbol, poly_int64 (9, 11)), sum1);
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/* Test plus_constant of a CONST. */
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rtx offset2 = gen_int_mode (poly_int64 (12, 20), Pmode);
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rtx sum2 = gen_rtx_CONST (Pmode, gen_rtx_PLUS (Pmode, symbol, offset2));
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ASSERT_RTX_EQ (plus_constant (Pmode, sum1, poly_int64 (3, 9)), sum2);
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/* Test a cancelling plus_constant. */
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ASSERT_EQ (plus_constant (Pmode, sum2, poly_int64 (-12, -20)), symbol);
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/* Test plus_constant on integer constants. */
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ASSERT_EQ (plus_constant (QImode, const1_rtx, poly_int64 (4, -2)),
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gen_int_mode (poly_int64 (5, -2), QImode));
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ASSERT_EQ (plus_constant (QImode, x1, poly_int64 (4, -2)),
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gen_int_mode (poly_int64 (5, -1), QImode));
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}
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/* Check dumping of repeated RTL vectors. */
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static void
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test_dumping_repeat ()
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{
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rtx p = gen_rtx_PARALLEL (VOIDmode, rtvec_alloc (3));
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XVECEXP (p, 0, 0) = const0_rtx;
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XVECEXP (p, 0, 1) = const0_rtx;
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XVECEXP (p, 0, 2) = const0_rtx;
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ASSERT_RTL_DUMP_EQ ("(parallel [\n"
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" (const_int 0) repeated x3\n"
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" ])",
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p);
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XVECEXP (p, 0, 1) = const1_rtx;
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ASSERT_RTL_DUMP_EQ ("(parallel [\n"
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" (const_int 0)\n"
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" (const_int 1)\n"
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" (const_int 0)\n"
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" ])",
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p);
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}
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/* Run all of the selftests within this file. */
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void
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rtl_tests_cc_tests ()
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{
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test_dumping_regs ();
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test_dumping_insns ();
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test_dumping_rtx_reuse ();
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test_single_set ();
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test_uncond_jump ();
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const_poly_int_tests<NUM_POLY_INT_COEFFS>::run ();
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test_dumping_repeat ();
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/* Purge state. */
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set_first_insn (NULL);
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set_last_insn (NULL);
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}
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} // namespace selftest
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#endif /* #if CHECKING_P */
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