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206 lines
6.6 KiB
Java
206 lines
6.6 KiB
Java
/*
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* Copyright (c) 2024, 2025, Oracle and/or its affiliates. All rights reserved.
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
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*
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* This code is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License version 2 only, as
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* published by the Free Software Foundation.
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*
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* This code is distributed in the hope that it will be useful, but WITHOUT
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* ANY 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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* version 2 for more details (a copy is included in the LICENSE file that
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* accompanied this code).
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*
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* You should have received a copy of the GNU General Public License version
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* 2 along with this work; if not, write to the Free Software Foundation,
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
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*
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* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
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* or visit www.oracle.com if you need additional information or have any
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* questions.
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*/
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package compiler.c2.irTests;
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import jdk.test.lib.Asserts;
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import jdk.test.lib.Utils;
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import compiler.lib.ir_framework.*;
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/*
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* @test
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* @bug 8345766
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* @key randomness
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* @summary Test that Ideal transformations of ModDNode are being performed as expected.
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* @library /test/lib /
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* @run driver compiler.c2.irTests.ModDNodeTests
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*/
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public class ModDNodeTests {
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public static final double q = Utils.getRandomInstance().nextDouble() * 100.0d;
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public static void main(String[] args) {
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TestFramework.run();
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}
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@Run(test = {"constant", "notConstant", "veryNotConstant",
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"unusedResult",
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"repeatedlyUnused",
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"unusedResultAfterLoopOpt1",
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"unusedResultAfterLoopOpt2",
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"unusedResultAfterLoopOpt3",
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})
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public void runMethod() {
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Asserts.assertEQ(constant(), q % 72.0d % 30.0d);
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Asserts.assertEQ(alsoConstant(), q % 31.432d);
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Asserts.assertTrue(Double.isNaN(nanLeftConstant()));
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Asserts.assertTrue(Double.isNaN(nanRightConstant()));
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Asserts.assertEQ(notConstant(37.5d), 37.5d % 32.0d);
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Asserts.assertEQ(veryNotConstant(531.25d, 14.5d), 531.25d % 32.0d % 14.5d);
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unusedResult(1.1d, 2.2d);
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repeatedlyUnused(1.1d, 2.2d);
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Asserts.assertEQ(unusedResultAfterLoopOpt1(1.1d, 2.2d), 0.d);
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Asserts.assertEQ(unusedResultAfterLoopOpt2(1.1d, 2.2d), 0.d);
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Asserts.assertEQ(unusedResultAfterLoopOpt3(1.1d, 2.2d), 0.d);
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}
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@Test
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@IR(failOn = {"drem"}, phase = CompilePhase.BEFORE_MATCHING)
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@IR(counts = {IRNode.CON_D, "1"})
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public double constant() {
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// All constants available during parsing
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return q % 72.0d % 30.0d;
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}
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@Test
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@IR(failOn = {"drem"}, phase = CompilePhase.BEFORE_MATCHING)
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@IR(counts = {IRNode.CON_D, "1"})
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public double alsoConstant() {
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// Make sure value is only available after second loop opts round
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double val = 0;
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for (int i = 0; i < 4; i++) {
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if ((i % 2) == 0) {
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val = q;
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}
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}
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return val % 31.432d;
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}
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@Test
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@IR(failOn = {"drem"}, phase = CompilePhase.BEFORE_MATCHING)
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@IR(counts = {IRNode.CON_D, "1"})
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public double nanLeftConstant() {
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// Make sure value is only available after second loop opts round
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double val = 134.18d;
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for (int i = 0; i < 4; i++) {
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if ((i % 2) == 0) {
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val = Double.NaN;
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}
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}
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return 56.234d % (val % 31.432d);
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}
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@Test
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@IR(failOn = {"drem"}, phase = CompilePhase.BEFORE_MATCHING)
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@IR(counts = {IRNode.CON_D, "1"})
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public double nanRightConstant() {
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// Make sure value is only available after second loop opts round
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double val = 134.18d;
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for (int i = 0; i < 4; i++) {
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if ((i % 2) == 0) {
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val = Double.NaN;
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}
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}
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return 56.234d % (31.432d % val);
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}
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@Test
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@IR(counts = {"drem", "1"}, phase = CompilePhase.BEFORE_MATCHING)
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@IR(counts = {IRNode.CON_D, "1"})
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public double notConstant(double x) {
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return x % 32.0d;
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}
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@Test
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@IR(counts = {"drem", "2"}, phase = CompilePhase.BEFORE_MATCHING)
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@IR(counts = {IRNode.CON_D, "1"})
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public double veryNotConstant(double x, double y) {
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return x % 32.0d % y;
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}
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@Test
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@IR(failOn = IRNode.MOD_D, phase = CompilePhase.ITER_GVN1)
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@IR(counts = {IRNode.MOD_D, "1"}, phase = CompilePhase.AFTER_PARSING)
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public void unusedResult(double x, double y) {
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double unused = x % y;
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}
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@Test
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@IR(failOn = IRNode.MOD_D, phase = CompilePhase.ITER_GVN1)
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@IR(counts = {IRNode.MOD_D, "1"}, phase = CompilePhase.AFTER_PARSING)
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public void repeatedlyUnused(double x, double y) {
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double unused = 1.d;
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for (int i = 0; i < 100_000; i++) {
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unused = x % y;
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}
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}
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// The difference between unusedResultAfterLoopOpt1 and unusedResultAfterLoopOpt2
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// is that they exercise a slightly different reason why the node is being removed,
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// and thus a different execution path. In unusedResultAfterLoopOpt1 the modulo is
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// used in the traps of the parse predicates. In unusedResultAfterLoopOpt2, it is not.
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@Test
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@IR(counts = {IRNode.MOD_D, "1"}, phase = CompilePhase.ITER_GVN2)
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@IR(failOn = IRNode.MOD_D, phase = CompilePhase.BEFORE_MACRO_EXPANSION)
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public double unusedResultAfterLoopOpt1(double x, double y) {
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double unused = x % y;
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int a = 77;
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int b = 0;
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do {
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a--;
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b++;
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} while (a > 0);
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if (b == 78) { // dead
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return unused;
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}
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return 0.d;
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}
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@Test
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@IR(counts = {IRNode.MOD_D, "1"}, phase = CompilePhase.AFTER_CLOOPS)
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@IR(failOn = IRNode.MOD_D, phase = CompilePhase.PHASEIDEALLOOP1)
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public double unusedResultAfterLoopOpt2(double x, double y) {
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int a = 77;
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int b = 0;
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do {
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a--;
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b++;
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} while (a > 0);
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double unused = x % y;
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if (b == 78) { // dead
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return unused;
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}
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return 0.d;
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}
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@Test
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@IR(counts = {IRNode.MOD_D, "2"}, phase = CompilePhase.AFTER_CLOOPS)
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@IR(failOn = IRNode.MOD_D, phase = CompilePhase.PHASEIDEALLOOP1)
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public double unusedResultAfterLoopOpt3(double x, double y) {
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double unused = x % y;
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int a = 77;
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int b = 0;
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do {
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a--;
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b++;
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} while (a > 0);
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int other = (b - 77) * (int)(x % y % 1.d);
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return (double)other;
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}
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}
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