273 lines
10 KiB
C++
273 lines
10 KiB
C++
//===-- TestLoongArchEmulator.cpp -----------------------------------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#include "lldb/Core/Address.h"
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#include "lldb/Core/Disassembler.h"
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#include "lldb/Core/PluginManager.h"
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#include "lldb/Target/ExecutionContext.h"
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#include "lldb/Utility/ArchSpec.h"
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#include "lldb/Utility/RegisterValue.h"
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#include "gtest/gtest.h"
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#include "Plugins/Instruction/LoongArch/EmulateInstructionLoongArch.h"
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#include "Plugins/Process/Utility/RegisterInfoPOSIX_loongarch64.h"
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#include "Plugins/Process/Utility/lldb-loongarch-register-enums.h"
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using namespace llvm;
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using namespace lldb;
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using namespace lldb_private;
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#define GEN_BCOND_TEST(bit, name, rj_val, rd_val_branched, rd_val_continued) \
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TEST_F(LoongArch##bit##EmulatorTester, test##name##branched) { \
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testBcondBranch(this, name, true, rj_val, rd_val_branched); \
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} \
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TEST_F(LoongArch##bit##EmulatorTester, test##name##continued) { \
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testBcondBranch(this, name, false, rj_val, rd_val_continued); \
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}
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#define GEN_BZCOND_TEST(bit, name, rj_val_branched, rj_val_continued) \
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TEST_F(LoongArch##bit##EmulatorTester, test##name##branched) { \
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testBZcondBranch(this, name, true, rj_val_branched); \
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} \
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TEST_F(LoongArch##bit##EmulatorTester, test##name##continued) { \
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testBZcondBranch(this, name, false, rj_val_continued); \
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}
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#define GEN_BCZCOND_TEST(bit, name, cj_val_branched, cj_val_continued) \
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TEST_F(LoongArch##bit##EmulatorTester, test##name##branched) { \
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testBCZcondBranch(this, name, true, cj_val_branched); \
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} \
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TEST_F(LoongArch##bit##EmulatorTester, test##name##continued) { \
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testBCZcondBranch(this, name, false, cj_val_continued); \
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}
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struct LoongArch64EmulatorTester : public EmulateInstructionLoongArch,
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testing::Test {
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RegisterInfoPOSIX_loongarch64::GPR gpr;
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RegisterInfoPOSIX_loongarch64::FPR fpr;
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LoongArch64EmulatorTester(
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std::string triple = "loongarch64-unknown-linux-gnu")
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: EmulateInstructionLoongArch(ArchSpec(triple)) {
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EmulateInstruction::SetReadRegCallback(ReadRegisterCallback);
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EmulateInstruction::SetWriteRegCallback(WriteRegisterCallback);
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}
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static bool ReadRegisterCallback(EmulateInstruction *instruction, void *baton,
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const RegisterInfo *reg_info,
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RegisterValue ®_value) {
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LoongArch64EmulatorTester *tester =
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(LoongArch64EmulatorTester *)instruction;
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uint32_t reg = reg_info->kinds[eRegisterKindLLDB];
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if (reg >= gpr_r0_loongarch && reg <= gpr_r31_loongarch)
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reg_value.SetUInt(tester->gpr.gpr[reg], reg_info->byte_size);
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else if (reg == gpr_orig_a0_loongarch)
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reg_value.SetUInt(tester->gpr.orig_a0, reg_info->byte_size);
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else if (reg == gpr_pc_loongarch)
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reg_value.SetUInt(tester->gpr.csr_era, reg_info->byte_size);
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else if (reg == gpr_badv_loongarch)
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reg_value.SetUInt(tester->gpr.csr_badv, reg_info->byte_size);
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else if (reg == fpr_first_loongarch + 32)
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// fcc0
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reg_value.SetUInt(tester->fpr.fcc, reg_info->byte_size);
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return true;
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}
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static bool WriteRegisterCallback(EmulateInstruction *instruction,
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void *baton, const Context &context,
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const RegisterInfo *reg_info,
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const RegisterValue ®_value) {
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LoongArch64EmulatorTester *tester =
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(LoongArch64EmulatorTester *)instruction;
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uint32_t reg = reg_info->kinds[eRegisterKindLLDB];
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if (reg >= gpr_r0_loongarch && reg <= gpr_r31_loongarch)
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tester->gpr.gpr[reg] = reg_value.GetAsUInt64();
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else if (reg == gpr_orig_a0_loongarch)
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tester->gpr.orig_a0 = reg_value.GetAsUInt64();
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else if (reg == gpr_pc_loongarch)
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tester->gpr.csr_era = reg_value.GetAsUInt64();
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else if (reg == gpr_badv_loongarch)
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tester->gpr.csr_badv = reg_value.GetAsUInt64();
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return true;
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}
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};
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// BEQ BNE BLT BGE BLTU BGEU
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static uint32_t EncodeBcondType(uint32_t opcode, uint32_t rj, uint32_t rd,
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uint32_t offs16) {
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offs16 = offs16 & 0x0000ffff;
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return opcode << 26 | offs16 << 10 | rj << 5 | rd;
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}
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static uint32_t BEQ(uint32_t rj, uint32_t rd, int32_t offs16) {
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return EncodeBcondType(0b010110, rj, rd, uint32_t(offs16));
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}
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static uint32_t BNE(uint32_t rj, uint32_t rd, int32_t offs16) {
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return EncodeBcondType(0b010111, rj, rd, uint32_t(offs16));
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}
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static uint32_t BLT(uint32_t rj, uint32_t rd, int32_t offs16) {
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return EncodeBcondType(0b011000, rj, rd, uint32_t(offs16));
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}
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static uint32_t BGE(uint32_t rj, uint32_t rd, int32_t offs16) {
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return EncodeBcondType(0b011001, rj, rd, uint32_t(offs16));
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}
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static uint32_t BLTU(uint32_t rj, uint32_t rd, int32_t offs16) {
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return EncodeBcondType(0b011010, rj, rd, uint32_t(offs16));
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}
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static uint32_t BGEU(uint32_t rj, uint32_t rd, int32_t offs16) {
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return EncodeBcondType(0b011011, rj, rd, uint32_t(offs16));
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}
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// BEQZ BNEZ
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static uint32_t EncodeBZcondType(uint32_t opcode, uint32_t rj,
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uint32_t offs21) {
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uint32_t offs20_16 = (offs21 & 0x001f0000) >> 16;
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uint32_t offs15_0 = offs21 & 0x0000ffff;
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return opcode << 26 | offs15_0 << 10 | rj << 5 | offs20_16;
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}
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static uint32_t BEQZ(uint32_t rj, int32_t offs21) {
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return EncodeBZcondType(0b010000, rj, uint32_t(offs21));
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}
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static uint32_t BNEZ(uint32_t rj, int32_t offs21) {
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return EncodeBZcondType(0b010001, rj, uint32_t(offs21));
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}
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// BCEQZ BCNEZ
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static uint32_t EncodeBCZcondType(uint32_t opcode, uint8_t cj,
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uint32_t offs21) {
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uint32_t offs20_16 = (offs21 & 0x001f0000) >> 16;
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uint32_t offs15_0 = offs21 & 0x0000ffff;
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return (opcode >> 2) << 26 | offs15_0 << 10 | (opcode & 0b11) << 8 | cj << 5 |
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offs20_16;
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}
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static uint32_t BCEQZ(uint8_t cj, int32_t offs21) {
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return EncodeBCZcondType(0b01001000, cj, uint32_t(offs21));
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}
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static uint32_t BCNEZ(uint8_t cj, int32_t offs21) {
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return EncodeBCZcondType(0b01001001, cj, uint32_t(offs21));
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}
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using EncoderBcond = uint32_t (*)(uint32_t rj, uint32_t rd, int32_t offs16);
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using EncoderBZcond = uint32_t (*)(uint32_t rj, int32_t offs21);
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using EncoderBCZcond = uint32_t (*)(uint8_t cj, int32_t offs21);
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TEST_F(LoongArch64EmulatorTester, testJIRL) {
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bool success = false;
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addr_t old_pc = 0x12000600;
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WritePC(old_pc);
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// JIRL r1, r12, 0x10
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// | 31 26 | 25 10 | 9 5 | 4 0 |
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// | 0 1 0 0 1 1 | 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 | 0 1 1 0 0 | 0 0 0 0 1 |
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uint32_t inst = 0b01001100000000000100000110000001;
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uint32_t offs16 = 0x10;
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gpr.gpr[12] = 0x12000400;
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ASSERT_TRUE(TestExecute(inst));
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auto r1 = gpr.gpr[1];
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auto pc = ReadPC(&success);
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ASSERT_TRUE(success);
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ASSERT_EQ(r1, old_pc + 4);
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ASSERT_EQ(pc, gpr.gpr[12] + (offs16 * 4));
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}
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TEST_F(LoongArch64EmulatorTester, testB) {
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bool success = false;
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addr_t old_pc = 0x12000600;
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WritePC(old_pc);
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// B 0x10010
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// | 31 26 | 25 10 | 9 0 |
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// | 0 1 0 1 0 0 | 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 | 0 0 0 0 0 0 0 0 0 1 |
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uint32_t inst = 0b01010000000000000100000000000001;
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uint32_t offs26 = 0x10010;
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ASSERT_TRUE(TestExecute(inst));
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auto pc = ReadPC(&success);
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ASSERT_TRUE(success);
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ASSERT_EQ(pc, old_pc + (offs26 * 4));
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}
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TEST_F(LoongArch64EmulatorTester, testBL) {
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bool success = false;
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addr_t old_pc = 0x12000600;
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WritePC(old_pc);
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// BL 0x10010
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// | 31 26 | 25 10 | 9 0 |
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// | 0 1 0 1 0 1 | 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 0 | 0 0 0 0 0 0 0 0 0 1 |
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uint32_t inst = 0b01010100000000000100000000000001;
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uint32_t offs26 = 0x10010;
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ASSERT_TRUE(TestExecute(inst));
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auto r1 = gpr.gpr[1];
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auto pc = ReadPC(&success);
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ASSERT_TRUE(success);
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ASSERT_EQ(r1, old_pc + 4);
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ASSERT_EQ(pc, old_pc + (offs26 * 4));
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}
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static void testBcondBranch(LoongArch64EmulatorTester *tester,
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EncoderBcond encoder, bool branched,
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uint64_t rj_val, uint64_t rd_val) {
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bool success = false;
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addr_t old_pc = 0x12000600;
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tester->WritePC(old_pc);
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tester->gpr.gpr[12] = rj_val;
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tester->gpr.gpr[13] = rd_val;
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// b<cmp> r12, r13, (-256)
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uint32_t inst = encoder(12, 13, -256);
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ASSERT_TRUE(tester->TestExecute(inst));
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auto pc = tester->ReadPC(&success);
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ASSERT_TRUE(success);
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ASSERT_EQ(pc, old_pc + (branched ? (-256 * 4) : 4));
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}
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static void testBZcondBranch(LoongArch64EmulatorTester *tester,
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EncoderBZcond encoder, bool branched,
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uint64_t rj_val) {
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bool success = false;
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addr_t old_pc = 0x12000600;
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tester->WritePC(old_pc);
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tester->gpr.gpr[4] = rj_val;
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// b<cmp>z r4, (-256)
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uint32_t inst = encoder(4, -256);
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ASSERT_TRUE(tester->TestExecute(inst));
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auto pc = tester->ReadPC(&success);
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ASSERT_TRUE(success);
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ASSERT_EQ(pc, old_pc + (branched ? (-256 * 4) : 4));
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}
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static void testBCZcondBranch(LoongArch64EmulatorTester *tester,
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EncoderBCZcond encoder, bool branched,
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uint32_t cj_val) {
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bool success = false;
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addr_t old_pc = 0x12000600;
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tester->WritePC(old_pc);
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tester->fpr.fcc = cj_val;
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// bc<cmp>z fcc0, 256
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uint32_t inst = encoder(0, 256);
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ASSERT_TRUE(tester->TestExecute(inst));
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auto pc = tester->ReadPC(&success);
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ASSERT_TRUE(success);
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ASSERT_EQ(pc, old_pc + (branched ? (256 * 4) : 4));
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}
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GEN_BCOND_TEST(64, BEQ, 1, 1, 0)
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GEN_BCOND_TEST(64, BNE, 1, 0, 1)
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GEN_BCOND_TEST(64, BLT, -2, 1, -3)
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GEN_BCOND_TEST(64, BGE, -2, -3, 1)
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GEN_BCOND_TEST(64, BLTU, -2, -1, 1)
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GEN_BCOND_TEST(64, BGEU, -2, 1, -1)
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GEN_BZCOND_TEST(64, BEQZ, 0, 1)
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GEN_BZCOND_TEST(64, BNEZ, 1, 0)
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GEN_BCZCOND_TEST(64, BCEQZ, 0, 1)
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GEN_BCZCOND_TEST(64, BCNEZ, 1, 0)
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