Files
ppsspp/unittest/TestIRPassSimplify.cpp
T
Henrik RydgårdandClaude Opus 5.5 7eb371b231 IR interpreter: Merge a conditional exit with the ExitToConst after it
Blocks ending in a branch dispatch a conditional exit and then the
fallthrough ExitToConst. One op now returns either target, reading the
second from the ExitToConst, which stays behind unexecuted.

Co-Authored-By: Claude Opus 5.5 (1M context) <[email protected]>
2026-09-25 11:47:17 -06:00

539 lines
17 KiB
C++

// Copyright (c) 2022- PPSSPP Project.
// This program is free software: you can redistribute it and/or modify
// it under the terms of the GNU General Public License as published by
// the Free Software Foundation, version 2.0 or later versions.
// This program is distributed in the hope that it will be useful,
// but WITHOUT ANY WARRANTY; without even the implied warranty of
// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
// GNU General Public License 2.0 for more details.
// A copy of the GPL 2.0 should have been included with the program.
// If not, see http://www.gnu.org/licenses/
// Official git repository and contact information can be found at
// https://github.com/hrydgard/ppsspp and http://www.ppsspp.org/.
#include <cstdio>
#include <cstring>
#include "Core/MIPS/IR/IRInst.h"
#include "Core/Config.h"
#include "Core/MIPS/IR/IRPassSimplify.h"
struct IRVerification {
const char *name;
const std::vector<IRInst> input;
const std::vector<IRInst> expected;
const std::vector<IRPassFunc> passes;
// Leaves lwl/lwr halves alone, among other things.
bool optimizeForInterpreter = false;
// ApplyMemoryValidation only runs without fast memory.
bool slowMemory = false;
};
static void LogInstructions(const std::vector<IRInst> &insts) {
for (size_t i = 0; i < insts.size(); ++i) {
char buf[256];
DisassembleIR(buf, sizeof(buf), insts[i]);
printf(" %s\n", buf);
}
}
static bool VerifyPass(const IRVerification &v) {
IRWriter in, out;
IROptions opts{};
opts.unalignedLoadStore = true;
opts.optimizeForInterpreter = v.optimizeForInterpreter;
for (const auto &inst : v.input)
in.Write(inst);
const bool fastMemory = g_Config.bFastMemory;
g_Config.bFastMemory = !v.slowMemory;
bool logged = IRApplyPasses(v.passes.data(), v.passes.size(), in, out, opts);
g_Config.bFastMemory = fastMemory;
if (logged) {
printf("%s FAILED: Unable to apply passes (or wanted to log)\n", v.name);
return false;
}
const std::vector<IRInst> actual = out.GetInstructions();
if (actual.size() != v.expected.size()) {
printf("%s FAILED: produced %d instructions, expected %d\n", v.name, (int)actual.size(), (int)v.expected.size());
printf("Actual:\n");
LogInstructions(actual);
printf("Expected:\n");
LogInstructions(v.expected);
return false;
}
for (size_t i = 0; i < actual.size(); ++i) {
if (memcmp(&v.expected[i], &actual[i], sizeof(IRInst)) != 0) {
char actualBuf[256];
DisassembleIR(actualBuf, sizeof(actualBuf), actual[i]);
char expectedBuf[256];
DisassembleIR(expectedBuf, sizeof(expectedBuf), v.expected[i]);
if (strcmp(expectedBuf, actualBuf) == 0) {
// This means a field (like src2) was left set but isn't relevant. Ignore.
continue;
}
printf("%s FAILED: #%d expected '%s' but was '%s'\n", v.name, (int)i, expectedBuf, actualBuf);
printf("Actual:\n");
LogInstructions(actual);
return false;
}
}
return true;
}
static const IRVerification tests[] = {
{
"SimplePurgeTemps",
{
{ IROp::Add, { IRTEMP_0 }, MIPS_REG_A0, MIPS_REG_A1 },
{ IROp::Mov, { MIPS_REG_V0 }, IRTEMP_0 },
{ IROp::Add, { IRTEMP_0 }, MIPS_REG_A2, MIPS_REG_A3 },
{ IROp::Mov, { MIPS_REG_V1 }, IRTEMP_0 },
},
{
{ IROp::Add, { MIPS_REG_V0 }, MIPS_REG_A0, MIPS_REG_A1 },
{ IROp::Add, { MIPS_REG_V1 }, MIPS_REG_A2, MIPS_REG_A3 },
},
{ &PurgeTemps },
},
{
"Load32LeftPurgeTemps",
{
{ IROp::Mov, { IRTEMP_LR_ADDR }, MIPS_REG_A0 },
{ IROp::AndConst, { IRTEMP_LR_ADDR }, IRTEMP_LR_ADDR, 0, 0xFFFFFFFC },
{ IROp::Load32, { MIPS_REG_V0 }, IRTEMP_LR_ADDR, 0, 0 },
},
{
{ IROp::AndConst, { IRTEMP_LR_ADDR }, MIPS_REG_A0, 0, 0xFFFFFFFC },
{ IROp::Load32, { MIPS_REG_V0 }, IRTEMP_LR_ADDR, 0, 0 },
},
{ &PurgeTemps },
},
{
"SwapClobberTemp",
{
{ IROp::Sub, { MIPS_REG_A0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::Mov, { MIPS_REG_S0 }, MIPS_REG_A0 },
{ IROp::Slt, { MIPS_REG_A0 }, MIPS_REG_V0, MIPS_REG_V1 },
},
{
{ IROp::Sub, { MIPS_REG_S0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::Slt, { MIPS_REG_A0 }, MIPS_REG_V0, MIPS_REG_V1 },
},
{ &PurgeTemps },
},
{
"DoubleClobberTemp",
{
{ IROp::Add, { MIPS_REG_A0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::Mov, { MIPS_REG_S0 }, MIPS_REG_A0 },
{ IROp::Mov, { MIPS_REG_S0 }, MIPS_REG_A1 },
},
{
{ IROp::Add, { MIPS_REG_S0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::Mov, { MIPS_REG_A0 }, MIPS_REG_S0 },
{ IROp::Mov, { MIPS_REG_S0 }, MIPS_REG_A1 },
},
{ &PurgeTemps },
},
{
"SimplePropagateConstants",
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 0x12340000 },
{ IROp::OrConst, { MIPS_REG_A0 }, MIPS_REG_A0, 0, 0x00005678 },
{ IROp::AddConst, { MIPS_REG_A1 }, MIPS_REG_A0, 0, 0 },
{ IROp::AddConst, { MIPS_REG_A2 }, MIPS_REG_A0, 0, 0x00001111 },
},
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 0x12345678 },
{ IROp::SetConst, { MIPS_REG_A1 }, 0, 0, 0x12345678 },
{ IROp::SetConst, { MIPS_REG_A2 }, 0, 0, 0x12346789 },
},
{ &PropagateConstants },
},
{
// Needed for PurgeTemps optimizations to work.
"OrToMov",
{
{ IROp::Sub, { MIPS_REG_A0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::Or, { MIPS_REG_S0 }, MIPS_REG_A0, MIPS_REG_ZERO },
{ IROp::Add, { MIPS_REG_S1 }, MIPS_REG_A0, MIPS_REG_ZERO },
{ IROp::OrConst, { MIPS_REG_S2 }, MIPS_REG_A0, 0, 0 },
{ IROp::AddConst, { MIPS_REG_S3 }, MIPS_REG_A0, 0, 0 },
},
{
{ IROp::Sub, { MIPS_REG_A0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::Mov, { MIPS_REG_S0 }, MIPS_REG_A0 },
{ IROp::Mov, { MIPS_REG_S1 }, MIPS_REG_A0 },
{ IROp::Mov, { MIPS_REG_S2 }, MIPS_REG_A0 },
{ IROp::Mov, { MIPS_REG_S3 }, MIPS_REG_A0 },
},
{ &PropagateConstants },
},
{
// The FNeg reads the temp and overwrites it, so the FAdd must see the negation.
"PurgeTempsFPRRewrittenInPlace",
{
{ IROp::FMov, { IRVTEMP_PFX_S }, 5 },
{ IROp::FNeg, { IRVTEMP_PFX_S }, IRVTEMP_PFX_S },
{ IROp::FAdd, { 0 }, IRVTEMP_PFX_S, 1 },
},
{
{ IROp::FNeg, { IRVTEMP_PFX_S }, 5 },
{ IROp::FAdd, { 0 }, IRVTEMP_PFX_S, 1 },
},
{ &PurgeTemps },
},
{
"PurgeTempsFPRReadTwice",
{
{ IROp::FMov, { IRVTEMP_PFX_S }, 5 },
{ IROp::FMul, { 0 }, IRVTEMP_PFX_S, IRVTEMP_PFX_S },
},
{
{ IROp::FMul, { 0 }, 5, 5 },
},
{ &PurgeTemps },
},
{
// The FPR temp has the same number as IRTEMP_0, which is the address here.
"PurgeTempsFPRStoreSrc3",
{
{ IROp::FMov, { IRVTEMP_PFX_S }, 5 },
{ IROp::StoreFloat, { IRVTEMP_PFX_S }, IRTEMP_0, 0, 0x10 },
},
{
{ IROp::StoreFloat, { 5 }, IRTEMP_0, 0, 0x10 },
},
{ &PurgeTemps },
},
{
// The FMov writes lane 1 of the temp between its write and the Vec4Mov.
"PurgeTempsVec4LaneWrite",
{
{ IROp::Vec4Add, { IRVTEMP_0 }, 32, 36 },
{ IROp::FMov, { IRVTEMP_0 + 1 }, 20 },
{ IROp::Vec4Mov, { 48 }, IRVTEMP_0 },
},
{
{ IROp::Vec4Add, { IRVTEMP_0 }, 32, 36 },
{ IROp::FMov, { IRVTEMP_0 + 1 }, 20 },
{ IROp::Vec4Mov, { 48 }, IRVTEMP_0 },
},
{ &PurgeTemps },
},
{
// The Vec4Scale reads 48 before the Vec4Mov writes it.
"PurgeTempsVec4ScaleRead",
{
{ IROp::Vec4Add, { IRVTEMP_0 }, 32, 36 },
{ IROp::Vec4Scale, { 40 }, 48, 1 },
{ IROp::Vec4Mov, { 48 }, IRVTEMP_0 },
},
{
{ IROp::Vec4Add, { IRVTEMP_0 }, 32, 36 },
{ IROp::Vec4Scale, { 40 }, 48, 1 },
{ IROp::Vec4Mov, { 48 }, IRVTEMP_0 },
},
{ &PurgeTemps },
},
{
// Writing 48 before the exit would change it on the path that exits.
"PurgeTempsSwapAcrossExit",
{
{ IROp::Vec4Add, { IRVTEMP_0 }, 32, 36 },
{ IROp::ExitToConstIfEq, { 0 }, MIPS_REG_A0, MIPS_REG_A1, 0x08804000 },
{ IROp::Vec4Mov, { 48 }, IRVTEMP_0 },
},
{
{ IROp::Vec4Add, { IRVTEMP_0 }, 32, 36 },
{ IROp::ExitToConstIfEq, { 0 }, MIPS_REG_A0, MIPS_REG_A1, 0x08804000 },
{ IROp::Vec4Mov, { 48 }, IRVTEMP_0 },
},
{ &PurgeTemps },
},
{
// sc stores and ll sets LLBIT, so neither goes away when the reg is overwritten.
"PurgeTempsKeepsLLSC",
{
{ IROp::Load32Linked, { MIPS_REG_V1 }, MIPS_REG_A0, 0, 0 },
{ IROp::SetConst, { MIPS_REG_V1 }, 0, 0, 1 },
{ IROp::Store32Conditional, { MIPS_REG_V0 }, MIPS_REG_A0, 0, 0 },
{ IROp::SetConst, { MIPS_REG_V0 }, 0, 0, 1 },
},
{
{ IROp::Load32Linked, { MIPS_REG_V1 }, MIPS_REG_A0, 0, 0 },
{ IROp::SetConst, { MIPS_REG_V1 }, 0, 0, 1 },
{ IROp::Store32Conditional, { MIPS_REG_V0 }, MIPS_REG_A0, 0, 0 },
{ IROp::SetConst, { MIPS_REG_V0 }, 0, 0, 1 },
},
{ &PurgeTemps },
},
{
"CombineLoadLeftRight",
{
{ IROp::Load32Left, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 3 },
{ IROp::Load32Right, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 0 },
},
{
{ IROp::Load32, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 0 },
},
{ &RemoveLoadStoreLeftRight },
true,
},
{
// The lwl changes a0, so the lwr reads from a different address.
"NoCombineLoadLeftRightIntoBase",
{
{ IROp::Load32Left, { MIPS_REG_A0 }, MIPS_REG_A0, 0, 3 },
{ IROp::Load32Right, { MIPS_REG_A0 }, MIPS_REG_A0, 0, 0 },
},
{
{ IROp::Load32Left, { MIPS_REG_A0 }, MIPS_REG_A0, 0, 3 },
{ IROp::Load32Right, { MIPS_REG_A0 }, MIPS_REG_A0, 0, 0 },
},
{ &RemoveLoadStoreLeftRight },
true,
},
{
// The sp accesses share one validation, but not across something that may change sp.
"ValidateSPAcrossInterpret",
{
{ IROp::Load32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0 },
{ IROp::Interpret, { 0 }, 0, 0, 0 },
{ IROp::Load32, { MIPS_REG_A1 }, MIPS_REG_SP, 0, 8 },
},
{
{ IROp::ValidateAddress32, { 0 }, MIPS_REG_SP, 0, 0 },
{ IROp::Load32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0 },
{ IROp::Interpret, { 0 }, 0, 0, 0 },
{ IROp::ValidateAddress32, { 0 }, MIPS_REG_SP, 0, 8 },
{ IROp::Load32, { MIPS_REG_A1 }, MIPS_REG_SP, 0, 8 },
},
{ &ApplyMemoryValidation },
false,
true,
},
{
"PropagateConstantsPastFSat",
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 0x100 },
{ IROp::FSat0_1, { 1 }, 1 },
{ IROp::Add, { MIPS_REG_A1 }, MIPS_REG_A0, MIPS_REG_A0 },
},
{
{ IROp::FSat0_1, { 1 }, 1 },
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 0x100 },
{ IROp::SetConst, { MIPS_REG_A1 }, 0, 0, 0x200 },
},
{ &PropagateConstants },
},
{
// lui v0, hi; lw v0, lo(v0)
"PropagateConstantsLoadIntoBase",
{
{ IROp::SetConst, { MIPS_REG_V0 }, 0, 0, 0x08810000 },
{ IROp::Load32, { MIPS_REG_V0 }, MIPS_REG_V0, 0, 0x20 },
},
{
{ IROp::Load32, { MIPS_REG_V0 }, MIPS_REG_ZERO, 0, 0x08810020 },
},
{ &PropagateConstants },
},
{
// The store writes a0 out, and it stays known.
"PropagateConstantsPastStore",
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0 },
{ IROp::AddConst, { MIPS_REG_A1 }, MIPS_REG_A0, 0, 0x20 },
},
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0 },
{ IROp::SetConst, { MIPS_REG_A1 }, 0, 0, 0x25 },
},
{ &PropagateConstants },
},
{
"PropagateConstantsPastCondExit",
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::ExitToConstIfEq, { 0 }, MIPS_REG_A1, MIPS_REG_A2, 0x08804000 },
{ IROp::AddConst, { MIPS_REG_A3 }, MIPS_REG_A0, 0, 1 },
},
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::ExitToConstIfEq, { 0 }, MIPS_REG_A1, MIPS_REG_A2, 0x08804000 },
{ IROp::SetConst, { MIPS_REG_A3 }, 0, 0, 6 },
},
{ &PropagateConstants },
},
{
// Each of these may change a0 after reading it.
"PropagateConstantsReadThenWritten",
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::MovZ, { MIPS_REG_A0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::AddConst, { MIPS_REG_T0 }, MIPS_REG_A0, 0, 1 },
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::Store32Conditional, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 0 },
{ IROp::AddConst, { MIPS_REG_T1 }, MIPS_REG_A0, 0, 1 },
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::Load32Left, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 3 },
{ IROp::AddConst, { MIPS_REG_T2 }, MIPS_REG_A0, 0, 1 },
},
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::MovZ, { MIPS_REG_A0 }, MIPS_REG_A1, MIPS_REG_A2 },
{ IROp::AddConst, { MIPS_REG_T0 }, MIPS_REG_A0, 0, 1 },
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::Store32Conditional, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 0 },
{ IROp::AddConst, { MIPS_REG_T1 }, MIPS_REG_A0, 0, 1 },
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 5 },
{ IROp::Load32Left, { MIPS_REG_A0 }, MIPS_REG_A1, 0, 3 },
{ IROp::AddConst, { MIPS_REG_T2 }, MIPS_REG_A0, 0, 1 },
},
{ &PropagateConstants },
},
{
// The exit is always taken, so nothing after it runs.
"PropagateConstantsTakenExit",
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 0 },
{ IROp::ExitToConstIfEq, { 0 }, MIPS_REG_A0, MIPS_REG_ZERO, 0x08804000 },
{ IROp::Downcount, { 0 }, 0, 0, 4 },
{ IROp::ExitToConst, { 0 }, 0, 0, 0x08804100 },
},
{
{ IROp::SetConst, { MIPS_REG_A0 }, 0, 0, 0 },
{ IROp::ExitToConst, { 0 }, 0, 0, 0x08804000 },
},
{ &PropagateConstants },
},
{
"ForwardStoresToLoads",
{
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0x10 },
{ IROp::Add, { MIPS_REG_T0 }, MIPS_REG_T1, MIPS_REG_T2 },
{ IROp::Load32, { MIPS_REG_A1 }, MIPS_REG_SP, 0, 0x10 },
{ IROp::StoreFloat, { 1 }, MIPS_REG_SP, 0, 0x20 },
{ IROp::LoadFloat, { 2 }, MIPS_REG_SP, 0, 0x20 },
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0x30 },
{ IROp::LoadFloat, { 3 }, MIPS_REG_SP, 0, 0x30 },
{ IROp::Store8, { MIPS_REG_A2 }, MIPS_REG_SP, 0, 0x40 },
{ IROp::Load8Ext, { MIPS_REG_A3 }, MIPS_REG_SP, 0, 0x40 },
{ IROp::StoreVec4, { 32 }, MIPS_REG_SP, 0, 0x50 },
{ IROp::LoadVec4, { 36 }, MIPS_REG_SP, 0, 0x50 },
{ IROp::Load32, { MIPS_REG_T3 }, MIPS_REG_GP, 0, 0x100 },
{ IROp::Load32, { MIPS_REG_T4 }, MIPS_REG_GP, 0, 0x100 },
// Disjoint on the same base, so the first is still known.
{ IROp::Store32, { MIPS_REG_S0 }, MIPS_REG_S1, 0, 0x20 },
{ IROp::Store32, { MIPS_REG_S2 }, MIPS_REG_S1, 0, 0x24 },
{ IROp::Load32, { MIPS_REG_S3 }, MIPS_REG_S1, 0, 0x20 },
// Already in the reg.
{ IROp::Load32, { MIPS_REG_S2 }, MIPS_REG_S1, 0, 0x24 },
},
{
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0x10 },
{ IROp::Add, { MIPS_REG_T0 }, MIPS_REG_T1, MIPS_REG_T2 },
{ IROp::Mov, { MIPS_REG_A1 }, MIPS_REG_A0 },
{ IROp::StoreFloat, { 1 }, MIPS_REG_SP, 0, 0x20 },
{ IROp::FMov, { 2 }, 1 },
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0x30 },
{ IROp::FMovFromGPR, { 3 }, MIPS_REG_A0 },
{ IROp::Store8, { MIPS_REG_A2 }, MIPS_REG_SP, 0, 0x40 },
{ IROp::Ext8to32, { MIPS_REG_A3 }, MIPS_REG_A2 },
{ IROp::StoreVec4, { 32 }, MIPS_REG_SP, 0, 0x50 },
{ IROp::Vec4Mov, { 36 }, 32 },
{ IROp::Load32, { MIPS_REG_T3 }, MIPS_REG_GP, 0, 0x100 },
{ IROp::Mov, { MIPS_REG_T4 }, MIPS_REG_T3 },
{ IROp::Store32, { MIPS_REG_S0 }, MIPS_REG_S1, 0, 0x20 },
{ IROp::Store32, { MIPS_REG_S2 }, MIPS_REG_S1, 0, 0x24 },
{ IROp::Mov, { MIPS_REG_S3 }, MIPS_REG_S0 },
},
{ &OptimizeLoadsAfterStores },
},
{
"NoForwardStoresToLoads",
{
// A store through another base may alias.
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0 },
{ IROp::Store32, { MIPS_REG_A1 }, MIPS_REG_A2, 0, 0 },
{ IROp::Load32, { MIPS_REG_A3 }, MIPS_REG_SP, 0, 0 },
// The value reg changed.
{ IROp::Store32, { MIPS_REG_T0 }, MIPS_REG_SP, 0, 4 },
{ IROp::AddConst, { MIPS_REG_T0 }, MIPS_REG_T0, 0, 1 },
{ IROp::Load32, { MIPS_REG_T1 }, MIPS_REG_SP, 0, 4 },
// An overlapping narrow store.
{ IROp::Store32, { MIPS_REG_T2 }, MIPS_REG_SP, 0, 0x10 },
{ IROp::Store16, { MIPS_REG_T3 }, MIPS_REG_SP, 0, 0x12 },
{ IROp::Load32, { MIPS_REG_T4 }, MIPS_REG_SP, 0, 0x10 },
// The Interpret may do anything.
{ IROp::Store32, { MIPS_REG_S0 }, MIPS_REG_SP, 0, 0x20 },
{ IROp::Interpret, { 0 }, 0, 0, 0 },
{ IROp::Load32, { MIPS_REG_S1 }, MIPS_REG_SP, 0, 0x20 },
// Not RAM, so maybe a hardware register.
{ IROp::Store32, { MIPS_REG_S2 }, MIPS_REG_ZERO, 0, 0xBC100000 },
{ IROp::Load32, { MIPS_REG_S3 }, MIPS_REG_ZERO, 0, 0xBC100000 },
// The base reg changed.
{ IROp::Store32, { MIPS_REG_S4 }, MIPS_REG_SP, 0, 0x30 },
{ IROp::AddConst, { MIPS_REG_SP }, MIPS_REG_SP, 0, 0xFFFFFFF0 },
{ IROp::Load32, { MIPS_REG_S5 }, MIPS_REG_SP, 0, 0x30 },
},
{
{ IROp::Store32, { MIPS_REG_A0 }, MIPS_REG_SP, 0, 0 },
{ IROp::Store32, { MIPS_REG_A1 }, MIPS_REG_A2, 0, 0 },
{ IROp::Load32, { MIPS_REG_A3 }, MIPS_REG_SP, 0, 0 },
{ IROp::Store32, { MIPS_REG_T0 }, MIPS_REG_SP, 0, 4 },
{ IROp::AddConst, { MIPS_REG_T0 }, MIPS_REG_T0, 0, 1 },
{ IROp::Load32, { MIPS_REG_T1 }, MIPS_REG_SP, 0, 4 },
{ IROp::Store32, { MIPS_REG_T2 }, MIPS_REG_SP, 0, 0x10 },
{ IROp::Store16, { MIPS_REG_T3 }, MIPS_REG_SP, 0, 0x12 },
{ IROp::Load32, { MIPS_REG_T4 }, MIPS_REG_SP, 0, 0x10 },
{ IROp::Store32, { MIPS_REG_S0 }, MIPS_REG_SP, 0, 0x20 },
{ IROp::Interpret, { 0 }, 0, 0, 0 },
{ IROp::Load32, { MIPS_REG_S1 }, MIPS_REG_SP, 0, 0x20 },
{ IROp::Store32, { MIPS_REG_S2 }, MIPS_REG_ZERO, 0, 0xBC100000 },
{ IROp::Load32, { MIPS_REG_S3 }, MIPS_REG_ZERO, 0, 0xBC100000 },
{ IROp::Store32, { MIPS_REG_S4 }, MIPS_REG_SP, 0, 0x30 },
{ IROp::AddConst, { MIPS_REG_SP }, MIPS_REG_SP, 0, 0xFFFFFFF0 },
{ IROp::Load32, { MIPS_REG_S5 }, MIPS_REG_SP, 0, 0x30 },
},
{ &OptimizeLoadsAfterStores },
},
{
"InterpreterExitElse",
{
{ IROp::ExitToConstIfLtZ, { 0 }, MIPS_REG_A0, 0, 0x08804000 },
{ IROp::ExitToConst, { 0 }, 0, 0, 0x08804100 },
},
{
{ IROp::Downcount, { 0 }, 0, 0, 0 },
{ IROp::OptExitToConstIfLtZElse, { 0 }, MIPS_REG_A0, 0, 0x08804000 },
{ IROp::ExitToConst, { 0 }, 0, 0, 0x08804100 },
},
{ &OptimizeForInterpreter },
},
};
bool TestIRPassSimplify() {
InitIR();
bool success = true;
for (const auto &test : tests) {
if (!VerifyPass(test))
success = false;
}
return success;
}