Adds the ability to load a plugin to control the inline order. This allows developing and distributing inlining heuristics outside of tree. And together with the inline advisor plugins allows for fine grained control of the inliner. The PluginInlineOrderAnalysis class serves as the entry point for dynamic advisors. Plugins must register instances of this class to provide their own InlineOrder. Reviewed By: kazu Differential Revision: https://reviews.llvm.org/D140637
252 lines
6.0 KiB
C++
252 lines
6.0 KiB
C++
#include "llvm/Analysis/CallGraph.h"
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#include "llvm/AsmParser/Parser.h"
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#include "llvm/Config/config.h"
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#include "llvm/Passes/PassBuilder.h"
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#include "llvm/Passes/PassPlugin.h"
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#include "llvm/Support/CommandLine.h"
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#include "llvm/Support/raw_ostream.h"
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#include "llvm/Testing/Support/Error.h"
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#include "gtest/gtest.h"
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#include "llvm/Analysis/InlineOrder.h"
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namespace llvm {
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namespace {
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void anchor() {}
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std::string libPath(const std::string Name = "InlineOrderPlugin") {
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const auto &Argvs = testing::internal::GetArgvs();
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const char *Argv0 =
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Argvs.size() > 0 ? Argvs[0].c_str() : "PluginInlineOrderAnalysisTest";
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void *Ptr = (void *)(intptr_t)anchor;
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std::string Path = sys::fs::getMainExecutable(Argv0, Ptr);
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llvm::SmallString<256> Buf{sys::path::parent_path(Path)};
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sys::path::append(Buf, (Name + LLVM_PLUGIN_EXT).c_str());
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return std::string(Buf.str());
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}
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struct CompilerInstance {
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LLVMContext Ctx;
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ModulePassManager MPM;
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InlineParams IP;
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PassBuilder PB;
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LoopAnalysisManager LAM;
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FunctionAnalysisManager FAM;
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CGSCCAnalysisManager CGAM;
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ModuleAnalysisManager MAM;
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SMDiagnostic Error;
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// Connect the plugin to our compiler instance.
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void setupPlugin() {
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auto PluginPath = libPath();
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ASSERT_NE("", PluginPath);
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Expected<PassPlugin> Plugin = PassPlugin::Load(PluginPath);
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ASSERT_TRUE(!!Plugin) << "Plugin path: " << PluginPath;
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Plugin->registerPassBuilderCallbacks(PB);
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}
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CompilerInstance() {
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IP = getInlineParams(3, 0);
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PB.registerModuleAnalyses(MAM);
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PB.registerCGSCCAnalyses(CGAM);
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PB.registerFunctionAnalyses(FAM);
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PB.registerLoopAnalyses(LAM);
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PB.crossRegisterProxies(LAM, FAM, CGAM, MAM);
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MPM.addPass(ModuleInlinerPass(IP, InliningAdvisorMode::Default,
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ThinOrFullLTOPhase::None));
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}
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~CompilerInstance() {
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// Reset the static variable that tracks if the plugin has been registered.
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// This is needed to allow the test to run multiple times.
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PluginInlineOrderAnalysis::unregister();
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}
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std::string Output;
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std::unique_ptr<Module> OutputM;
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// Run with the dynamic inline order.
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auto run(StringRef IR) {
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OutputM = parseAssemblyString(IR, Error, Ctx);
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MPM.run(*OutputM, MAM);
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ASSERT_TRUE(OutputM);
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Output.clear();
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raw_string_ostream OStream{Output};
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OutputM->print(OStream, nullptr);
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ASSERT_TRUE(true);
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}
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};
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StringRef TestIRS[] = {
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// Simple 3 function inline case.
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R"(
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define void @f1() {
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call void @foo()
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ret void
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}
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define void @foo() {
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call void @f3()
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ret void
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}
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define void @f3() {
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ret void
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}
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)",
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// Test that has 5 functions of which 2 are recursive.
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R"(
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define void @f1() {
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call void @foo()
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ret void
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}
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define void @f2() {
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call void @foo()
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ret void
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}
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define void @foo() {
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call void @f4()
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call void @f5()
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ret void
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}
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define void @f4() {
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ret void
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}
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define void @f5() {
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call void @foo()
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ret void
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}
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)",
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// Test with 2 mutually recursive functions and 1 function with a loop.
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R"(
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define void @f1() {
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call void @f2()
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ret void
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}
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define void @f2() {
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call void @foo()
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ret void
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}
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define void @foo() {
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call void @f1()
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ret void
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}
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define void @f4() {
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br label %loop
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loop:
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call void @f5()
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br label %loop
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}
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define void @f5() {
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ret void
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}
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)",
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// Test that has a function that computes fibonacci in a loop, one in a
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// recursive manner, and one that calls both and compares them.
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R"(
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define i32 @fib_loop(i32 %n){
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%curr = alloca i32
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%last = alloca i32
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%i = alloca i32
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store i32 1, i32* %curr
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store i32 1, i32* %last
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store i32 2, i32* %i
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br label %loop_cond
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loop_cond:
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%i_val = load i32, i32* %i
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%cmp = icmp slt i32 %i_val, %n
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br i1 %cmp, label %loop_body, label %loop_end
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loop_body:
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%curr_val = load i32, i32* %curr
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%last_val = load i32, i32* %last
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%add = add i32 %curr_val, %last_val
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store i32 %add, i32* %last
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store i32 %curr_val, i32* %curr
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%i_val2 = load i32, i32* %i
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%add2 = add i32 %i_val2, 1
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store i32 %add2, i32* %i
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br label %loop_cond
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loop_end:
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%curr_val3 = load i32, i32* %curr
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ret i32 %curr_val3
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}
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define i32 @foo(i32 %n){
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%cmp = icmp eq i32 %n, 0
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%cmp2 = icmp eq i32 %n, 1
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%or = or i1 %cmp, %cmp2
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br i1 %or, label %if_true, label %if_false
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if_true:
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ret i32 1
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if_false:
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%sub = sub i32 %n, 1
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%call = call i32 @foo(i32 %sub)
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%sub2 = sub i32 %n, 2
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%call2 = call i32 @foo(i32 %sub2)
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%add = add i32 %call, %call2
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ret i32 %add
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}
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define i32 @fib_check(){
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%correct = alloca i32
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%i = alloca i32
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store i32 1, i32* %correct
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store i32 0, i32* %i
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br label %loop_cond
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loop_cond:
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%i_val = load i32, i32* %i
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%cmp = icmp slt i32 %i_val, 10
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br i1 %cmp, label %loop_body, label %loop_end
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loop_body:
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%i_val2 = load i32, i32* %i
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%call = call i32 @fib_loop(i32 %i_val2)
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%i_val3 = load i32, i32* %i
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%call2 = call i32 @foo(i32 %i_val3)
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%cmp2 = icmp ne i32 %call, %call2
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br i1 %cmp2, label %if_true, label %if_false
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if_true:
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store i32 0, i32* %correct
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br label %if_end
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if_false:
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br label %if_end
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if_end:
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%i_val4 = load i32, i32* %i
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%add = add i32 %i_val4, 1
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store i32 %add, i32* %i
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br label %loop_cond
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loop_end:
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%correct_val = load i32, i32* %correct
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ret i32 %correct_val
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}
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)"};
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} // namespace
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// Check that the behaviour of a custom inline order is correct.
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// The custom order drops any functions named "foo" so all tests
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// should contain at least one function named foo.
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TEST(PluginInlineOrderTest, NoInlineFoo) {
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#if !defined(LLVM_ENABLE_PLUGINS)
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// Skip the test if plugins are disabled.
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GTEST_SKIP();
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#endif
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CompilerInstance CI{};
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CI.setupPlugin();
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for (StringRef IR : TestIRS) {
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bool FoundFoo = false;
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CI.run(IR);
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CallGraph CGraph = CallGraph(*CI.OutputM);
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for (auto &Node : CGraph) {
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for (auto &Edge : *Node.second) {
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FoundFoo |= Edge.second->getFunction()->getName() == "foo";
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}
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}
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ASSERT_TRUE(FoundFoo);
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}
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}
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} // namespace llvm
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