River Riddle a5ef51d786 [mlir] Add support for "promised" interfaces
Promised interfaces allow for a dialect to "promise" the implementation of an interface, i.e.
declare that it supports an interface, but have the interface defined in an extension in a library
separate from the dialect itself. A promised interface is powerful in that it alerts the user when
the interface is attempted to be used (e.g. via cast/dyn_cast/etc.) and the implementation has
not yet been provided. This makes the system much more robust against misconfiguration,
and ensures that we do not lose the benefit we currently have of defining the interface in
the dialect library.

Differential Revision: https://reviews.llvm.org/D120368
2023-06-09 11:30:13 -07:00

201 lines
6.5 KiB
C++

//===- toyc.cpp - The Toy Compiler ----------------------------------------===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
//
// This file implements the entry point for the Toy compiler.
//
//===----------------------------------------------------------------------===//
#include "mlir/Dialect/Func/Extensions/AllExtensions.h"
#include "toy/Dialect.h"
#include "toy/MLIRGen.h"
#include "toy/Parser.h"
#include "toy/Passes.h"
#include "mlir/Dialect/Affine/Passes.h"
#include "mlir/IR/AsmState.h"
#include "mlir/IR/BuiltinOps.h"
#include "mlir/IR/MLIRContext.h"
#include "mlir/IR/Verifier.h"
#include "mlir/InitAllDialects.h"
#include "mlir/Parser/Parser.h"
#include "mlir/Pass/Pass.h"
#include "mlir/Pass/PassManager.h"
#include "mlir/Transforms/Passes.h"
#include "llvm/ADT/StringRef.h"
#include "llvm/Support/CommandLine.h"
#include "llvm/Support/ErrorOr.h"
#include "llvm/Support/MemoryBuffer.h"
#include "llvm/Support/SourceMgr.h"
#include "llvm/Support/raw_ostream.h"
using namespace toy;
namespace cl = llvm::cl;
static cl::opt<std::string> inputFilename(cl::Positional,
cl::desc("<input toy file>"),
cl::init("-"),
cl::value_desc("filename"));
namespace {
enum InputType { Toy, MLIR };
} // namespace
static cl::opt<enum InputType> inputType(
"x", cl::init(Toy), cl::desc("Decided the kind of output desired"),
cl::values(clEnumValN(Toy, "toy", "load the input file as a Toy source.")),
cl::values(clEnumValN(MLIR, "mlir",
"load the input file as an MLIR file")));
namespace {
enum Action { None, DumpAST, DumpMLIR, DumpMLIRAffine };
} // namespace
static cl::opt<enum Action> emitAction(
"emit", cl::desc("Select the kind of output desired"),
cl::values(clEnumValN(DumpAST, "ast", "output the AST dump")),
cl::values(clEnumValN(DumpMLIR, "mlir", "output the MLIR dump")),
cl::values(clEnumValN(DumpMLIRAffine, "mlir-affine",
"output the MLIR dump after affine lowering")));
static cl::opt<bool> enableOpt("opt", cl::desc("Enable optimizations"));
/// Returns a Toy AST resulting from parsing the file or a nullptr on error.
std::unique_ptr<toy::ModuleAST> parseInputFile(llvm::StringRef filename) {
llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> fileOrErr =
llvm::MemoryBuffer::getFileOrSTDIN(filename);
if (std::error_code ec = fileOrErr.getError()) {
llvm::errs() << "Could not open input file: " << ec.message() << "\n";
return nullptr;
}
auto buffer = fileOrErr.get()->getBuffer();
LexerBuffer lexer(buffer.begin(), buffer.end(), std::string(filename));
Parser parser(lexer);
return parser.parseModule();
}
int loadMLIR(llvm::SourceMgr &sourceMgr, mlir::MLIRContext &context,
mlir::OwningOpRef<mlir::ModuleOp> &module) {
// Handle '.toy' input to the compiler.
if (inputType != InputType::MLIR &&
!llvm::StringRef(inputFilename).endswith(".mlir")) {
auto moduleAST = parseInputFile(inputFilename);
if (!moduleAST)
return 6;
module = mlirGen(context, *moduleAST);
return !module ? 1 : 0;
}
// Otherwise, the input is '.mlir'.
llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> fileOrErr =
llvm::MemoryBuffer::getFileOrSTDIN(inputFilename);
if (std::error_code ec = fileOrErr.getError()) {
llvm::errs() << "Could not open input file: " << ec.message() << "\n";
return -1;
}
// Parse the input mlir.
sourceMgr.AddNewSourceBuffer(std::move(*fileOrErr), llvm::SMLoc());
module = mlir::parseSourceFile<mlir::ModuleOp>(sourceMgr, &context);
if (!module) {
llvm::errs() << "Error can't load file " << inputFilename << "\n";
return 3;
}
return 0;
}
int dumpMLIR() {
mlir::DialectRegistry registry;
mlir::func::registerAllExtensions(registry);
mlir::MLIRContext context(registry);
// Load our Dialect in this MLIR Context.
context.getOrLoadDialect<mlir::toy::ToyDialect>();
mlir::OwningOpRef<mlir::ModuleOp> module;
llvm::SourceMgr sourceMgr;
mlir::SourceMgrDiagnosticHandler sourceMgrHandler(sourceMgr, &context);
if (int error = loadMLIR(sourceMgr, context, module))
return error;
mlir::PassManager pm(module.get()->getName());
// Apply any generic pass manager command line options and run the pipeline.
if (mlir::failed(mlir::applyPassManagerCLOptions(pm)))
return 4;
// Check to see what granularity of MLIR we are compiling to.
bool isLoweringToAffine = emitAction >= Action::DumpMLIRAffine;
if (enableOpt || isLoweringToAffine) {
// Inline all functions into main and then delete them.
pm.addPass(mlir::createInlinerPass());
// Now that there is only one function, we can infer the shapes of each of
// the operations.
mlir::OpPassManager &optPM = pm.nest<mlir::toy::FuncOp>();
optPM.addPass(mlir::toy::createShapeInferencePass());
optPM.addPass(mlir::createCanonicalizerPass());
optPM.addPass(mlir::createCSEPass());
}
if (isLoweringToAffine) {
// Partially lower the toy dialect.
pm.addPass(mlir::toy::createLowerToAffinePass());
// Add a few cleanups post lowering.
mlir::OpPassManager &optPM = pm.nest<mlir::func::FuncOp>();
optPM.addPass(mlir::createCanonicalizerPass());
optPM.addPass(mlir::createCSEPass());
// Add optimizations if enabled.
if (enableOpt) {
optPM.addPass(mlir::affine::createLoopFusionPass());
optPM.addPass(mlir::affine::createAffineScalarReplacementPass());
}
}
if (mlir::failed(pm.run(*module)))
return 4;
module->dump();
return 0;
}
int dumpAST() {
if (inputType == InputType::MLIR) {
llvm::errs() << "Can't dump a Toy AST when the input is MLIR\n";
return 5;
}
auto moduleAST = parseInputFile(inputFilename);
if (!moduleAST)
return 1;
dump(*moduleAST);
return 0;
}
int main(int argc, char **argv) {
// Register any command line options.
mlir::registerAsmPrinterCLOptions();
mlir::registerMLIRContextCLOptions();
mlir::registerPassManagerCLOptions();
cl::ParseCommandLineOptions(argc, argv, "toy compiler\n");
switch (emitAction) {
case Action::DumpAST:
return dumpAST();
case Action::DumpMLIR:
case Action::DumpMLIRAffine:
return dumpMLIR();
default:
llvm::errs() << "No action specified (parsing only?), use -emit=<action>\n";
}
return 0;
}