xref: /llvm-project/llvm/lib/Target/WebAssembly/WebAssemblyTargetMachine.cpp (revision a1ae9566ea9ce46bf7f2af9ab1253eed05b5b622)
1 //===- WebAssemblyTargetMachine.cpp - Define TargetMachine for WebAssembly -==//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 ///
9 /// \file
10 /// This file defines the WebAssembly-specific subclass of TargetMachine.
11 ///
12 //===----------------------------------------------------------------------===//
13 
14 #include "WebAssemblyTargetMachine.h"
15 #include "MCTargetDesc/WebAssemblyMCTargetDesc.h"
16 #include "TargetInfo/WebAssemblyTargetInfo.h"
17 #include "WebAssembly.h"
18 #include "WebAssemblyMachineFunctionInfo.h"
19 #include "WebAssemblyTargetObjectFile.h"
20 #include "WebAssemblyTargetTransformInfo.h"
21 #include "llvm/CodeGen/MIRParser/MIParser.h"
22 #include "llvm/CodeGen/MachineFunctionPass.h"
23 #include "llvm/CodeGen/Passes.h"
24 #include "llvm/CodeGen/RegAllocRegistry.h"
25 #include "llvm/CodeGen/TargetPassConfig.h"
26 #include "llvm/IR/Function.h"
27 #include "llvm/Support/TargetRegistry.h"
28 #include "llvm/Target/TargetOptions.h"
29 #include "llvm/Transforms/Scalar.h"
30 #include "llvm/Transforms/Scalar/LowerAtomic.h"
31 #include "llvm/Transforms/Utils.h"
32 using namespace llvm;
33 
34 #define DEBUG_TYPE "wasm"
35 
36 // Emscripten's asm.js-style exception handling
37 static cl::opt<bool> EnableEmException(
38     "enable-emscripten-cxx-exceptions",
39     cl::desc("WebAssembly Emscripten-style exception handling"),
40     cl::init(false));
41 
42 // Emscripten's asm.js-style setjmp/longjmp handling
43 static cl::opt<bool> EnableEmSjLj(
44     "enable-emscripten-sjlj",
45     cl::desc("WebAssembly Emscripten-style setjmp/longjmp handling"),
46     cl::init(false));
47 
48 extern "C" LLVM_EXTERNAL_VISIBILITY void LLVMInitializeWebAssemblyTarget() {
49   // Register the target.
50   RegisterTargetMachine<WebAssemblyTargetMachine> X(
51       getTheWebAssemblyTarget32());
52   RegisterTargetMachine<WebAssemblyTargetMachine> Y(
53       getTheWebAssemblyTarget64());
54 
55   // Register backend passes
56   auto &PR = *PassRegistry::getPassRegistry();
57   initializeWebAssemblyAddMissingPrototypesPass(PR);
58   initializeWebAssemblyLowerEmscriptenEHSjLjPass(PR);
59   initializeLowerGlobalDtorsPass(PR);
60   initializeFixFunctionBitcastsPass(PR);
61   initializeOptimizeReturnedPass(PR);
62   initializeWebAssemblyArgumentMovePass(PR);
63   initializeWebAssemblySetP2AlignOperandsPass(PR);
64   initializeWebAssemblyReplacePhysRegsPass(PR);
65   initializeWebAssemblyPrepareForLiveIntervalsPass(PR);
66   initializeWebAssemblyOptimizeLiveIntervalsPass(PR);
67   initializeWebAssemblyMemIntrinsicResultsPass(PR);
68   initializeWebAssemblyRegStackifyPass(PR);
69   initializeWebAssemblyRegColoringPass(PR);
70   initializeWebAssemblyFixIrreducibleControlFlowPass(PR);
71   initializeWebAssemblyLateEHPreparePass(PR);
72   initializeWebAssemblyExceptionInfoPass(PR);
73   initializeWebAssemblyCFGSortPass(PR);
74   initializeWebAssemblyCFGStackifyPass(PR);
75   initializeWebAssemblyExplicitLocalsPass(PR);
76   initializeWebAssemblyLowerBrUnlessPass(PR);
77   initializeWebAssemblyRegNumberingPass(PR);
78   initializeWebAssemblyPeepholePass(PR);
79 }
80 
81 //===----------------------------------------------------------------------===//
82 // WebAssembly Lowering public interface.
83 //===----------------------------------------------------------------------===//
84 
85 static Reloc::Model getEffectiveRelocModel(Optional<Reloc::Model> RM,
86                                            const Triple &TT) {
87   if (!RM.hasValue()) {
88     // Default to static relocation model.  This should always be more optimial
89     // than PIC since the static linker can determine all global addresses and
90     // assume direct function calls.
91     return Reloc::Static;
92   }
93 
94   if (!TT.isOSEmscripten()) {
95     // Relocation modes other than static are currently implemented in a way
96     // that only works for Emscripten, so disable them if we aren't targeting
97     // Emscripten.
98     return Reloc::Static;
99   }
100 
101   return *RM;
102 }
103 
104 /// Create an WebAssembly architecture model.
105 ///
106 WebAssemblyTargetMachine::WebAssemblyTargetMachine(
107     const Target &T, const Triple &TT, StringRef CPU, StringRef FS,
108     const TargetOptions &Options, Optional<Reloc::Model> RM,
109     Optional<CodeModel::Model> CM, CodeGenOpt::Level OL, bool JIT)
110     : LLVMTargetMachine(T,
111                         TT.isArch64Bit() ? "e-m:e-p:64:64-i64:64-n32:64-S128"
112                                          : "e-m:e-p:32:32-i64:64-n32:64-S128",
113                         TT, CPU, FS, Options, getEffectiveRelocModel(RM, TT),
114                         getEffectiveCodeModel(CM, CodeModel::Large), OL),
115       TLOF(new WebAssemblyTargetObjectFile()) {
116   // WebAssembly type-checks instructions, but a noreturn function with a return
117   // type that doesn't match the context will cause a check failure. So we lower
118   // LLVM 'unreachable' to ISD::TRAP and then lower that to WebAssembly's
119   // 'unreachable' instructions which is meant for that case.
120   this->Options.TrapUnreachable = true;
121 
122   // WebAssembly treats each function as an independent unit. Force
123   // -ffunction-sections, effectively, so that we can emit them independently.
124   this->Options.FunctionSections = true;
125   this->Options.DataSections = true;
126   this->Options.UniqueSectionNames = true;
127 
128   initAsmInfo();
129 
130   // Note that we don't use setRequiresStructuredCFG(true). It disables
131   // optimizations than we're ok with, and want, such as critical edge
132   // splitting and tail merging.
133 }
134 
135 WebAssemblyTargetMachine::~WebAssemblyTargetMachine() = default; // anchor.
136 
137 const WebAssemblySubtarget *
138 WebAssemblyTargetMachine::getSubtargetImpl(std::string CPU,
139                                            std::string FS) const {
140   auto &I = SubtargetMap[CPU + FS];
141   if (!I) {
142     I = std::make_unique<WebAssemblySubtarget>(TargetTriple, CPU, FS, *this);
143   }
144   return I.get();
145 }
146 
147 const WebAssemblySubtarget *
148 WebAssemblyTargetMachine::getSubtargetImpl(const Function &F) const {
149   Attribute CPUAttr = F.getFnAttribute("target-cpu");
150   Attribute FSAttr = F.getFnAttribute("target-features");
151 
152   std::string CPU = !CPUAttr.hasAttribute(Attribute::None)
153                         ? CPUAttr.getValueAsString().str()
154                         : TargetCPU;
155   std::string FS = !FSAttr.hasAttribute(Attribute::None)
156                        ? FSAttr.getValueAsString().str()
157                        : TargetFS;
158 
159   // This needs to be done before we create a new subtarget since any
160   // creation will depend on the TM and the code generation flags on the
161   // function that reside in TargetOptions.
162   resetTargetOptions(F);
163 
164   return getSubtargetImpl(CPU, FS);
165 }
166 
167 namespace {
168 
169 class CoalesceFeaturesAndStripAtomics final : public ModulePass {
170   // Take the union of all features used in the module and use it for each
171   // function individually, since having multiple feature sets in one module
172   // currently does not make sense for WebAssembly. If atomics are not enabled,
173   // also strip atomic operations and thread local storage.
174   static char ID;
175   WebAssemblyTargetMachine *WasmTM;
176 
177 public:
178   CoalesceFeaturesAndStripAtomics(WebAssemblyTargetMachine *WasmTM)
179       : ModulePass(ID), WasmTM(WasmTM) {}
180 
181   bool runOnModule(Module &M) override {
182     FeatureBitset Features = coalesceFeatures(M);
183 
184     std::string FeatureStr = getFeatureString(Features);
185     for (auto &F : M)
186       replaceFeatures(F, FeatureStr);
187 
188     bool StrippedAtomics = false;
189     bool StrippedTLS = false;
190 
191     if (!Features[WebAssembly::FeatureAtomics])
192       StrippedAtomics = stripAtomics(M);
193 
194     if (!Features[WebAssembly::FeatureBulkMemory])
195       StrippedTLS = stripThreadLocals(M);
196 
197     if (StrippedAtomics && !StrippedTLS)
198       stripThreadLocals(M);
199     else if (StrippedTLS && !StrippedAtomics)
200       stripAtomics(M);
201 
202     recordFeatures(M, Features, StrippedAtomics || StrippedTLS);
203 
204     // Conservatively assume we have made some change
205     return true;
206   }
207 
208 private:
209   FeatureBitset coalesceFeatures(const Module &M) {
210     FeatureBitset Features =
211         WasmTM
212             ->getSubtargetImpl(std::string(WasmTM->getTargetCPU()),
213                                std::string(WasmTM->getTargetFeatureString()))
214             ->getFeatureBits();
215     for (auto &F : M)
216       Features |= WasmTM->getSubtargetImpl(F)->getFeatureBits();
217     return Features;
218   }
219 
220   std::string getFeatureString(const FeatureBitset &Features) {
221     std::string Ret;
222     for (const SubtargetFeatureKV &KV : WebAssemblyFeatureKV) {
223       if (Features[KV.Value])
224         Ret += (StringRef("+") + KV.Key + ",").str();
225     }
226     return Ret;
227   }
228 
229   void replaceFeatures(Function &F, const std::string &Features) {
230     F.removeFnAttr("target-features");
231     F.removeFnAttr("target-cpu");
232     F.addFnAttr("target-features", Features);
233   }
234 
235   bool stripAtomics(Module &M) {
236     // Detect whether any atomics will be lowered, since there is no way to tell
237     // whether the LowerAtomic pass lowers e.g. stores.
238     bool Stripped = false;
239     for (auto &F : M) {
240       for (auto &B : F) {
241         for (auto &I : B) {
242           if (I.isAtomic()) {
243             Stripped = true;
244             goto done;
245           }
246         }
247       }
248     }
249 
250   done:
251     if (!Stripped)
252       return false;
253 
254     LowerAtomicPass Lowerer;
255     FunctionAnalysisManager FAM;
256     for (auto &F : M)
257       Lowerer.run(F, FAM);
258 
259     return true;
260   }
261 
262   bool stripThreadLocals(Module &M) {
263     bool Stripped = false;
264     for (auto &GV : M.globals()) {
265       if (GV.getThreadLocalMode() !=
266           GlobalValue::ThreadLocalMode::NotThreadLocal) {
267         Stripped = true;
268         GV.setThreadLocalMode(GlobalValue::ThreadLocalMode::NotThreadLocal);
269       }
270     }
271     return Stripped;
272   }
273 
274   void recordFeatures(Module &M, const FeatureBitset &Features, bool Stripped) {
275     for (const SubtargetFeatureKV &KV : WebAssemblyFeatureKV) {
276       if (Features[KV.Value]) {
277         // Mark features as used
278         std::string MDKey = (StringRef("wasm-feature-") + KV.Key).str();
279         M.addModuleFlag(Module::ModFlagBehavior::Error, MDKey,
280                         wasm::WASM_FEATURE_PREFIX_USED);
281       }
282     }
283     // Code compiled without atomics or bulk-memory may have had its atomics or
284     // thread-local data lowered to nonatomic operations or non-thread-local
285     // data. In that case, we mark the pseudo-feature "shared-mem" as disallowed
286     // to tell the linker that it would be unsafe to allow this code ot be used
287     // in a module with shared memory.
288     if (Stripped) {
289       M.addModuleFlag(Module::ModFlagBehavior::Error, "wasm-feature-shared-mem",
290                       wasm::WASM_FEATURE_PREFIX_DISALLOWED);
291     }
292   }
293 };
294 char CoalesceFeaturesAndStripAtomics::ID = 0;
295 
296 /// WebAssembly Code Generator Pass Configuration Options.
297 class WebAssemblyPassConfig final : public TargetPassConfig {
298 public:
299   WebAssemblyPassConfig(WebAssemblyTargetMachine &TM, PassManagerBase &PM)
300       : TargetPassConfig(TM, PM) {}
301 
302   WebAssemblyTargetMachine &getWebAssemblyTargetMachine() const {
303     return getTM<WebAssemblyTargetMachine>();
304   }
305 
306   FunctionPass *createTargetRegisterAllocator(bool) override;
307 
308   void addIRPasses() override;
309   bool addInstSelector() override;
310   void addPostRegAlloc() override;
311   bool addGCPasses() override { return false; }
312   void addPreEmitPass() override;
313 
314   // No reg alloc
315   bool addRegAssignmentFast() override { return false; }
316 
317   // No reg alloc
318   bool addRegAssignmentOptimized() override { return false; }
319 };
320 } // end anonymous namespace
321 
322 TargetTransformInfo
323 WebAssemblyTargetMachine::getTargetTransformInfo(const Function &F) {
324   return TargetTransformInfo(WebAssemblyTTIImpl(this, F));
325 }
326 
327 TargetPassConfig *
328 WebAssemblyTargetMachine::createPassConfig(PassManagerBase &PM) {
329   return new WebAssemblyPassConfig(*this, PM);
330 }
331 
332 FunctionPass *WebAssemblyPassConfig::createTargetRegisterAllocator(bool) {
333   return nullptr; // No reg alloc
334 }
335 
336 //===----------------------------------------------------------------------===//
337 // The following functions are called from lib/CodeGen/Passes.cpp to modify
338 // the CodeGen pass sequence.
339 //===----------------------------------------------------------------------===//
340 
341 void WebAssemblyPassConfig::addIRPasses() {
342   // Runs LowerAtomicPass if necessary
343   addPass(new CoalesceFeaturesAndStripAtomics(&getWebAssemblyTargetMachine()));
344 
345   // This is a no-op if atomics are not used in the module
346   addPass(createAtomicExpandPass());
347 
348   // Add signatures to prototype-less function declarations
349   addPass(createWebAssemblyAddMissingPrototypes());
350 
351   // Lower .llvm.global_dtors into .llvm_global_ctors with __cxa_atexit calls.
352   addPass(createWebAssemblyLowerGlobalDtors());
353 
354   // Fix function bitcasts, as WebAssembly requires caller and callee signatures
355   // to match.
356   addPass(createWebAssemblyFixFunctionBitcasts());
357 
358   // Optimize "returned" function attributes.
359   if (getOptLevel() != CodeGenOpt::None)
360     addPass(createWebAssemblyOptimizeReturned());
361 
362   // If exception handling is not enabled and setjmp/longjmp handling is
363   // enabled, we lower invokes into calls and delete unreachable landingpad
364   // blocks. Lowering invokes when there is no EH support is done in
365   // TargetPassConfig::addPassesToHandleExceptions, but this runs after this
366   // function and SjLj handling expects all invokes to be lowered before.
367   if (!EnableEmException &&
368       TM->Options.ExceptionModel == ExceptionHandling::None) {
369     addPass(createLowerInvokePass());
370     // The lower invoke pass may create unreachable code. Remove it in order not
371     // to process dead blocks in setjmp/longjmp handling.
372     addPass(createUnreachableBlockEliminationPass());
373   }
374 
375   // Handle exceptions and setjmp/longjmp if enabled.
376   if (EnableEmException || EnableEmSjLj)
377     addPass(createWebAssemblyLowerEmscriptenEHSjLj(EnableEmException,
378                                                    EnableEmSjLj));
379 
380   // Expand indirectbr instructions to switches.
381   addPass(createIndirectBrExpandPass());
382 
383   TargetPassConfig::addIRPasses();
384 }
385 
386 bool WebAssemblyPassConfig::addInstSelector() {
387   (void)TargetPassConfig::addInstSelector();
388   addPass(
389       createWebAssemblyISelDag(getWebAssemblyTargetMachine(), getOptLevel()));
390   // Run the argument-move pass immediately after the ScheduleDAG scheduler
391   // so that we can fix up the ARGUMENT instructions before anything else
392   // sees them in the wrong place.
393   addPass(createWebAssemblyArgumentMove());
394   // Set the p2align operands. This information is present during ISel, however
395   // it's inconvenient to collect. Collect it now, and update the immediate
396   // operands.
397   addPass(createWebAssemblySetP2AlignOperands());
398   return false;
399 }
400 
401 void WebAssemblyPassConfig::addPostRegAlloc() {
402   // TODO: The following CodeGen passes don't currently support code containing
403   // virtual registers. Consider removing their restrictions and re-enabling
404   // them.
405 
406   // These functions all require the NoVRegs property.
407   disablePass(&MachineCopyPropagationID);
408   disablePass(&PostRAMachineSinkingID);
409   disablePass(&PostRASchedulerID);
410   disablePass(&FuncletLayoutID);
411   disablePass(&StackMapLivenessID);
412   disablePass(&LiveDebugValuesID);
413   disablePass(&PatchableFunctionID);
414   disablePass(&ShrinkWrapID);
415 
416   // This pass hurts code size for wasm because it can generate irreducible
417   // control flow.
418   disablePass(&MachineBlockPlacementID);
419 
420   TargetPassConfig::addPostRegAlloc();
421 }
422 
423 void WebAssemblyPassConfig::addPreEmitPass() {
424   TargetPassConfig::addPreEmitPass();
425 
426   // Eliminate multiple-entry loops.
427   addPass(createWebAssemblyFixIrreducibleControlFlow());
428 
429   // Do various transformations for exception handling.
430   // Every CFG-changing optimizations should come before this.
431   addPass(createWebAssemblyLateEHPrepare());
432 
433   // Now that we have a prologue and epilogue and all frame indices are
434   // rewritten, eliminate SP and FP. This allows them to be stackified,
435   // colored, and numbered with the rest of the registers.
436   addPass(createWebAssemblyReplacePhysRegs());
437 
438   // Preparations and optimizations related to register stackification.
439   if (getOptLevel() != CodeGenOpt::None) {
440     // LiveIntervals isn't commonly run this late. Re-establish preconditions.
441     addPass(createWebAssemblyPrepareForLiveIntervals());
442 
443     // Depend on LiveIntervals and perform some optimizations on it.
444     addPass(createWebAssemblyOptimizeLiveIntervals());
445 
446     // Prepare memory intrinsic calls for register stackifying.
447     addPass(createWebAssemblyMemIntrinsicResults());
448 
449     // Mark registers as representing wasm's value stack. This is a key
450     // code-compression technique in WebAssembly. We run this pass (and
451     // MemIntrinsicResults above) very late, so that it sees as much code as
452     // possible, including code emitted by PEI and expanded by late tail
453     // duplication.
454     addPass(createWebAssemblyRegStackify());
455 
456     // Run the register coloring pass to reduce the total number of registers.
457     // This runs after stackification so that it doesn't consider registers
458     // that become stackified.
459     addPass(createWebAssemblyRegColoring());
460   }
461 
462   // Sort the blocks of the CFG into topological order, a prerequisite for
463   // BLOCK and LOOP markers.
464   addPass(createWebAssemblyCFGSort());
465 
466   // Insert BLOCK and LOOP markers.
467   addPass(createWebAssemblyCFGStackify());
468 
469   // Insert explicit local.get and local.set operators.
470   addPass(createWebAssemblyExplicitLocals());
471 
472   // Lower br_unless into br_if.
473   addPass(createWebAssemblyLowerBrUnless());
474 
475   // Perform the very last peephole optimizations on the code.
476   if (getOptLevel() != CodeGenOpt::None)
477     addPass(createWebAssemblyPeephole());
478 
479   // Create a mapping from LLVM CodeGen virtual registers to wasm registers.
480   addPass(createWebAssemblyRegNumbering());
481 }
482 
483 yaml::MachineFunctionInfo *
484 WebAssemblyTargetMachine::createDefaultFuncInfoYAML() const {
485   return new yaml::WebAssemblyFunctionInfo();
486 }
487 
488 yaml::MachineFunctionInfo *WebAssemblyTargetMachine::convertFuncInfoToYAML(
489     const MachineFunction &MF) const {
490   const auto *MFI = MF.getInfo<WebAssemblyFunctionInfo>();
491   return new yaml::WebAssemblyFunctionInfo(*MFI);
492 }
493 
494 bool WebAssemblyTargetMachine::parseMachineFunctionInfo(
495     const yaml::MachineFunctionInfo &MFI, PerFunctionMIParsingState &PFS,
496     SMDiagnostic &Error, SMRange &SourceRange) const {
497   const auto &YamlMFI =
498       reinterpret_cast<const yaml::WebAssemblyFunctionInfo &>(MFI);
499   MachineFunction &MF = PFS.MF;
500   MF.getInfo<WebAssemblyFunctionInfo>()->initializeBaseYamlFields(YamlMFI);
501   return false;
502 }
503