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Peter Collingbournead9841e2014-11-27 00:06:42 +00001//===- ssa.go - IR generation from go/ssa ---------------------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file implements the top-level LLVM IR generation from go/ssa form.
11//
12//===----------------------------------------------------------------------===//
13
14package irgen
15
16import (
17 "fmt"
18 "go/ast"
19 "go/token"
20 "os"
21 "sort"
22
23 "llvm.org/llgo/ssaopt"
24 "llvm.org/llgo/third_party/go.tools/go/ssa"
25 "llvm.org/llgo/third_party/go.tools/go/ssa/ssautil"
26 "llvm.org/llgo/third_party/go.tools/go/types"
27 "llvm.org/llvm/bindings/go/llvm"
28)
29
30// A globalInit is used to temporarily store a global's initializer until
31// we are ready to build it.
32type globalInit struct {
33 val llvm.Value
34 elems []globalInit
35}
36
37func (gi *globalInit) update(typ llvm.Type, indices []uint32, val llvm.Value) {
38 if len(indices) == 0 {
39 gi.val = val
40 return
41 }
42
43 if gi.val.C != nil {
44 gi.val = llvm.ConstInsertValue(gi.val, val, indices)
45 }
46
47 tk := typ.TypeKind()
48
49 if len(gi.elems) == 0 {
50 switch tk {
51 case llvm.StructTypeKind:
52 gi.elems = make([]globalInit, typ.StructElementTypesCount())
53 case llvm.ArrayTypeKind:
54 gi.elems = make([]globalInit, typ.ArrayLength())
55 default:
56 panic("unexpected type")
57 }
58 }
59
60 var eltyp llvm.Type
61 switch tk {
62 case llvm.StructTypeKind:
63 eltyp = typ.StructElementTypes()[indices[0]]
64 case llvm.ArrayTypeKind:
65 eltyp = typ.ElementType()
66 default:
67 panic("unexpected type")
68 }
69
70 gi.elems[indices[0]].update(eltyp, indices[1:], val)
71}
72
73func (gi *globalInit) build(typ llvm.Type) llvm.Value {
74 if gi.val.C != nil {
75 return gi.val
76 }
77 if len(gi.elems) == 0 {
78 return llvm.ConstNull(typ)
79 }
80
81 switch typ.TypeKind() {
82 case llvm.StructTypeKind:
83 eltypes := typ.StructElementTypes()
84 elems := make([]llvm.Value, len(eltypes))
85 for i, eltyp := range eltypes {
86 elems[i] = gi.elems[i].build(eltyp)
87 }
88 return llvm.ConstStruct(elems, false)
89 case llvm.ArrayTypeKind:
90 eltyp := typ.ElementType()
91 elems := make([]llvm.Value, len(gi.elems))
92 for i := range gi.elems {
93 elems[i] = gi.elems[i].build(eltyp)
94 }
95 return llvm.ConstArray(eltyp, elems)
96 default:
97 panic("unexpected type")
98 }
99}
100
101type unit struct {
102 *compiler
103 pkg *ssa.Package
104 globals map[ssa.Value]llvm.Value
105 globalInits map[llvm.Value]*globalInit
106
107 // funcDescriptors maps *ssa.Functions to function descriptors,
108 // the first-class representation of functions.
109 funcDescriptors map[*ssa.Function]llvm.Value
110
111 // undefinedFuncs contains functions that have been resolved
112 // (declared) but not defined.
113 undefinedFuncs map[*ssa.Function]bool
114
115 gcRoots []llvm.Value
116}
117
118func newUnit(c *compiler, pkg *ssa.Package) *unit {
119 u := &unit{
120 compiler: c,
121 pkg: pkg,
122 globals: make(map[ssa.Value]llvm.Value),
123 globalInits: make(map[llvm.Value]*globalInit),
124 funcDescriptors: make(map[*ssa.Function]llvm.Value),
125 undefinedFuncs: make(map[*ssa.Function]bool),
126 }
127 return u
128}
129
130type byMemberName []ssa.Member
131
132func (ms byMemberName) Len() int { return len(ms) }
133func (ms byMemberName) Swap(i, j int) {
134 ms[i], ms[j] = ms[j], ms[i]
135}
136func (ms byMemberName) Less(i, j int) bool {
137 return ms[i].Name() < ms[j].Name()
138}
139
140type byFunctionString []*ssa.Function
141
142func (fns byFunctionString) Len() int { return len(fns) }
143func (fns byFunctionString) Swap(i, j int) {
144 fns[i], fns[j] = fns[j], fns[i]
145}
146func (fns byFunctionString) Less(i, j int) bool {
147 return fns[i].String() < fns[j].String()
148}
149
150// Emit functions in order of their fully qualified names. This is so that a
151// bootstrap build can be verified by comparing the stage2 and stage3 binaries.
152func (u *unit) defineFunctionsInOrder(functions map[*ssa.Function]bool) {
153 fns := []*ssa.Function{}
154 for f, _ := range functions {
155 fns = append(fns, f)
156 }
157 sort.Sort(byFunctionString(fns))
158 for _, f := range fns {
159 u.defineFunction(f)
160 }
161}
162
163// translatePackage translates an *ssa.Package into an LLVM module, and returns
164// the translation unit information.
165func (u *unit) translatePackage(pkg *ssa.Package) {
166 ms := make([]ssa.Member, len(pkg.Members))
167 i := 0
168 for _, m := range pkg.Members {
169 ms[i] = m
170 i++
171 }
172
173 sort.Sort(byMemberName(ms))
174
175 // Initialize global storage and type descriptors for this package.
176 // We must create globals regardless of whether they're referenced,
177 // hence the duplication in frame.value.
178 for _, m := range ms {
179 switch v := m.(type) {
180 case *ssa.Global:
181 elemtyp := deref(v.Type())
182 llelemtyp := u.llvmtypes.ToLLVM(elemtyp)
183 vname := u.types.mc.mangleGlobalName(v)
184 global := llvm.AddGlobal(u.module.Module, llelemtyp, vname)
185 if !v.Object().Exported() {
186 global.SetLinkage(llvm.InternalLinkage)
187 }
188 u.addGlobal(global, elemtyp)
189 global = llvm.ConstBitCast(global, u.llvmtypes.ToLLVM(v.Type()))
190 u.globals[v] = global
191 case *ssa.Type:
192 u.types.getTypeDescriptorPointer(v.Type())
193 }
194 }
195
196 // Define functions.
197 u.defineFunctionsInOrder(ssautil.AllFunctions(pkg.Prog))
198
199 // Emit initializers for type descriptors, which may trigger
200 // the resolution of additional functions.
201 u.types.emitTypeDescInitializers()
202
203 // Define remaining functions that were resolved during
204 // runtime type mapping, but not defined.
205 u.defineFunctionsInOrder(u.undefinedFuncs)
206
207 // Set initializers for globals.
208 for global, init := range u.globalInits {
209 initval := init.build(global.Type().ElementType())
210 global.SetInitializer(initval)
211 }
212}
213
214func (u *unit) addGlobal(global llvm.Value, ty types.Type) {
215 u.globalInits[global] = new(globalInit)
216
217 if hasPointers(ty) {
218 global = llvm.ConstBitCast(global, llvm.PointerType(llvm.Int8Type(), 0))
219 size := llvm.ConstInt(u.types.inttype, uint64(u.types.Sizeof(ty)), false)
220 root := llvm.ConstStruct([]llvm.Value{global, size}, false)
221 u.gcRoots = append(u.gcRoots, root)
222 }
223}
224
225// ResolveMethod implements MethodResolver.ResolveMethod.
226func (u *unit) ResolveMethod(s *types.Selection) *govalue {
227 m := u.pkg.Prog.Method(s)
228 llfn := u.resolveFunctionGlobal(m)
229 llfn = llvm.ConstBitCast(llfn, llvm.PointerType(llvm.Int8Type(), 0))
230 return newValue(llfn, m.Signature)
231}
232
233// resolveFunctionDescriptorGlobal returns a reference to the LLVM global
234// storing the function's descriptor.
235func (u *unit) resolveFunctionDescriptorGlobal(f *ssa.Function) llvm.Value {
236 llfd, ok := u.funcDescriptors[f]
237 if !ok {
238 name := u.types.mc.mangleFunctionName(f) + "$descriptor"
239 llfd = llvm.AddGlobal(u.module.Module, llvm.PointerType(llvm.Int8Type(), 0), name)
240 llfd.SetGlobalConstant(true)
241 u.funcDescriptors[f] = llfd
242 }
243 return llfd
244}
245
246// resolveFunctionDescriptor returns a function's
247// first-class value representation.
248func (u *unit) resolveFunctionDescriptor(f *ssa.Function) *govalue {
249 llfd := u.resolveFunctionDescriptorGlobal(f)
250 llfd = llvm.ConstBitCast(llfd, llvm.PointerType(llvm.Int8Type(), 0))
251 return newValue(llfd, f.Signature)
252}
253
254// resolveFunctionGlobal returns an llvm.Value for a function global.
255func (u *unit) resolveFunctionGlobal(f *ssa.Function) llvm.Value {
256 if v, ok := u.globals[f]; ok {
257 return v
258 }
259 name := u.types.mc.mangleFunctionName(f)
260 // It's possible that the function already exists in the module;
261 // for example, if it's a runtime intrinsic that the compiler
262 // has already referenced.
263 llvmFunction := u.module.Module.NamedFunction(name)
264 if llvmFunction.IsNil() {
265 fti := u.llvmtypes.getSignatureInfo(f.Signature)
266 llvmFunction = fti.declare(u.module.Module, name)
267 u.undefinedFuncs[f] = true
268 }
269 u.globals[f] = llvmFunction
270 return llvmFunction
271}
272
273func (u *unit) getFunctionLinkage(f *ssa.Function) llvm.Linkage {
274 switch {
275 case f.Pkg == nil:
276 // Synthetic functions outside packages may appear in multiple packages.
277 return llvm.LinkOnceODRLinkage
278
279 case f.Parent() != nil:
280 // Anonymous.
281 return llvm.InternalLinkage
282
283 case f.Signature.Recv() == nil && !ast.IsExported(f.Name()) &&
284 !(f.Name() == "main" && f.Pkg.Object.Path() == "main") &&
285 f.Name() != "init":
286 // Unexported methods may be referenced as part of an interface method
287 // table in another package. TODO(pcc): detect when this cannot happen.
288 return llvm.InternalLinkage
289
290 default:
291 return llvm.ExternalLinkage
292 }
293}
294
295func (u *unit) defineFunction(f *ssa.Function) {
296 // Only define functions from this package, or synthetic
297 // wrappers (which do not have a package).
298 if f.Pkg != nil && f.Pkg != u.pkg {
299 return
300 }
301
302 llfn := u.resolveFunctionGlobal(f)
303 linkage := u.getFunctionLinkage(f)
304
305 isMethod := f.Signature.Recv() != nil
306
307 // Methods cannot be referred to via a descriptor.
308 if !isMethod {
309 llfd := u.resolveFunctionDescriptorGlobal(f)
310 llfd.SetInitializer(llvm.ConstBitCast(llfn, llvm.PointerType(llvm.Int8Type(), 0)))
311 llfd.SetLinkage(linkage)
312 }
313
314 // We only need to emit a descriptor for functions without bodies.
315 if len(f.Blocks) == 0 {
316 return
317 }
318
319 ssaopt.LowerAllocsToStack(f)
320
321 if u.DumpSSA {
322 f.WriteTo(os.Stderr)
323 }
324
325 fr := newFrame(u, llfn)
326 defer fr.dispose()
327 fr.addCommonFunctionAttrs(fr.function)
328 fr.function.SetLinkage(linkage)
329
330 fr.logf("Define function: %s", f.String())
331 fti := u.llvmtypes.getSignatureInfo(f.Signature)
332 delete(u.undefinedFuncs, f)
333 fr.retInf = fti.retInf
334
335 // Push the compile unit and function onto the debug context.
336 if u.GenerateDebug {
337 u.debug.PushFunction(fr.function, f.Signature, f.Pos())
338 defer u.debug.PopFunction()
339 u.debug.SetLocation(fr.builder, f.Pos())
340 }
341
342 // If a function calls recover, we create a separate function to
343 // hold the real function, and this function calls __go_can_recover
344 // and bridges to it.
345 if callsRecover(f) {
346 fr = fr.bridgeRecoverFunc(fr.function, fti)
347 }
348
349 fr.blocks = make([]llvm.BasicBlock, len(f.Blocks))
350 fr.lastBlocks = make([]llvm.BasicBlock, len(f.Blocks))
351 for i, block := range f.Blocks {
352 fr.blocks[i] = llvm.AddBasicBlock(fr.function, fmt.Sprintf(".%d.%s", i, block.Comment))
353 }
354 fr.builder.SetInsertPointAtEnd(fr.blocks[0])
355
356 prologueBlock := llvm.InsertBasicBlock(fr.blocks[0], "prologue")
357 fr.builder.SetInsertPointAtEnd(prologueBlock)
358
359 // Map parameter positions to indices. We use this
360 // when processing locals to map back to parameters
361 // when generating debug metadata.
362 paramPos := make(map[token.Pos]int)
363 for i, param := range f.Params {
364 paramPos[param.Pos()] = i
365 llparam := fti.argInfos[i].decode(llvm.GlobalContext(), fr.builder, fr.builder)
366 if isMethod && i == 0 {
367 if _, ok := param.Type().Underlying().(*types.Pointer); !ok {
368 llparam = fr.builder.CreateBitCast(llparam, llvm.PointerType(fr.types.ToLLVM(param.Type()), 0), "")
369 llparam = fr.builder.CreateLoad(llparam, "")
370 }
371 }
372 fr.env[param] = newValue(llparam, param.Type())
373 }
374
375 // Load closure, extract free vars.
376 if len(f.FreeVars) > 0 {
377 for _, fv := range f.FreeVars {
378 fr.env[fv] = newValue(llvm.ConstNull(u.llvmtypes.ToLLVM(fv.Type())), fv.Type())
379 }
380 elemTypes := make([]llvm.Type, len(f.FreeVars)+1)
381 elemTypes[0] = llvm.PointerType(llvm.Int8Type(), 0) // function pointer
382 for i, fv := range f.FreeVars {
383 elemTypes[i+1] = u.llvmtypes.ToLLVM(fv.Type())
384 }
385 structType := llvm.StructType(elemTypes, false)
386 closure := fr.runtime.getClosure.call(fr)[0]
387 closure = fr.builder.CreateBitCast(closure, llvm.PointerType(structType, 0), "")
388 for i, fv := range f.FreeVars {
389 ptr := fr.builder.CreateStructGEP(closure, i+1, "")
390 ptr = fr.builder.CreateLoad(ptr, "")
391 fr.env[fv] = newValue(ptr, fv.Type())
392 }
393 }
394
395 // Allocate stack space for locals in the prologue block.
396 for _, local := range f.Locals {
397 typ := fr.llvmtypes.ToLLVM(deref(local.Type()))
398 alloca := fr.builder.CreateAlloca(typ, local.Comment)
399 fr.memsetZero(alloca, llvm.SizeOf(typ))
400 bcalloca := fr.builder.CreateBitCast(alloca, llvm.PointerType(llvm.Int8Type(), 0), "")
401 value := newValue(bcalloca, local.Type())
402 fr.env[local] = value
403 if fr.GenerateDebug {
404 paramIndex, ok := paramPos[local.Pos()]
405 if !ok {
406 paramIndex = -1
407 }
408 fr.debug.Declare(fr.builder, local, alloca, paramIndex)
409 }
410 }
411
Peter Collingbournead9841e2014-11-27 00:06:42 +0000412 // If the function contains any defers, we must first create
413 // an unwind block. We can short-circuit the check for defers with
414 // f.Recover != nil.
415 if f.Recover != nil || hasDefer(f) {
416 fr.unwindBlock = llvm.AddBasicBlock(fr.function, "")
417 fr.frameptr = fr.builder.CreateAlloca(llvm.Int8Type(), "")
418 }
419
Peter Collingbourned34d92f2014-12-31 00:25:39 +0000420 // Keep track of the block into which we need to insert the call
421 // to __go_register_gc_roots. This needs to be inserted after the
422 // init guard check under the llgo ABI.
423 var registerGcBlock llvm.BasicBlock
424
425 // If this is the "init" function, emit the init guard check and
426 // enable init-specific optimizations.
427 if !isMethod && f.Name() == "init" {
428 registerGcBlock = fr.emitInitPrologue()
429 fr.isInit = true
430 }
431
432 fr.builder.CreateBr(fr.blocks[0])
433 fr.allocaBuilder.SetInsertPointBefore(prologueBlock.FirstInstruction())
Peter Collingbournead9841e2014-11-27 00:06:42 +0000434
435 for _, block := range f.DomPreorder() {
436 fr.translateBlock(block, fr.blocks[block.Index])
437 }
438
439 fr.fixupPhis()
440
441 if !fr.unwindBlock.IsNil() {
442 fr.setupUnwindBlock(f.Recover, f.Signature.Results())
443 }
444
445 // The init function needs to register the GC roots first. We do this
446 // after generating code for it because allocations may have caused
447 // additional GC roots to be created.
448 if fr.isInit {
Peter Collingbourned34d92f2014-12-31 00:25:39 +0000449 fr.builder.SetInsertPointBefore(registerGcBlock.FirstInstruction())
Peter Collingbournead9841e2014-11-27 00:06:42 +0000450 fr.registerGcRoots()
451 }
452}
453
454type pendingPhi struct {
455 ssa *ssa.Phi
456 llvm llvm.Value
457}
458
459type frame struct {
460 *unit
461 function llvm.Value
462 builder, allocaBuilder llvm.Builder
463 retInf retInfo
464 blocks []llvm.BasicBlock
465 lastBlocks []llvm.BasicBlock
466 runtimeErrorBlocks [gccgoRuntimeErrorCount]llvm.BasicBlock
467 unwindBlock llvm.BasicBlock
468 frameptr llvm.Value
469 env map[ssa.Value]*govalue
470 ptr map[ssa.Value]llvm.Value
471 tuples map[ssa.Value][]*govalue
472 phis []pendingPhi
473 canRecover llvm.Value
474 isInit bool
475}
476
477func newFrame(u *unit, fn llvm.Value) *frame {
478 return &frame{
479 unit: u,
480 function: fn,
481 builder: llvm.GlobalContext().NewBuilder(),
482 allocaBuilder: llvm.GlobalContext().NewBuilder(),
483 env: make(map[ssa.Value]*govalue),
484 ptr: make(map[ssa.Value]llvm.Value),
485 tuples: make(map[ssa.Value][]*govalue),
486 }
487}
488
489func (fr *frame) dispose() {
490 fr.builder.Dispose()
491 fr.allocaBuilder.Dispose()
492}
493
Peter Collingbourned34d92f2014-12-31 00:25:39 +0000494// emitInitPrologue emits the init-specific function prologue (guard check and
495// initialization of dependent packages under the llgo native ABI), and returns
496// the basic block into which the GC registration call should be emitted.
497func (fr *frame) emitInitPrologue() llvm.BasicBlock {
498 if fr.GccgoABI {
499 return fr.builder.GetInsertBlock()
500 }
501
502 initGuard := llvm.AddGlobal(fr.module.Module, llvm.Int1Type(), "init$guard")
503 initGuard.SetLinkage(llvm.InternalLinkage)
504 initGuard.SetInitializer(llvm.ConstNull(llvm.Int1Type()))
505
506 returnBlock := llvm.AddBasicBlock(fr.function, "")
507 initBlock := llvm.AddBasicBlock(fr.function, "")
508
509 initGuardVal := fr.builder.CreateLoad(initGuard, "")
510 fr.builder.CreateCondBr(initGuardVal, returnBlock, initBlock)
511
512 fr.builder.SetInsertPointAtEnd(returnBlock)
513 fr.builder.CreateRetVoid()
514
515 fr.builder.SetInsertPointAtEnd(initBlock)
516 fr.builder.CreateStore(llvm.ConstInt(llvm.Int1Type(), 1, false), initGuard)
517 ftyp := llvm.FunctionType(llvm.VoidType(), nil, false)
518 for _, pkg := range fr.pkg.Object.Imports() {
519 initname := ManglePackagePath(pkg.Path()) + "..import"
520 initfn := fr.module.Module.NamedFunction(initname)
521 if initfn.IsNil() {
522 initfn = llvm.AddFunction(fr.module.Module, initname, ftyp)
523 }
524 fr.builder.CreateCall(initfn, nil, "")
525 }
526
527 return initBlock
528}
529
Peter Collingbournead9841e2014-11-27 00:06:42 +0000530// bridgeRecoverFunc creates a function that may call recover(), and creates
531// a call to it from the current frame. The created function will be called
532// with a boolean parameter that indicates whether it may call recover().
533//
534// The created function will have the same name as the current frame's function
535// with "$recover" appended, having the same return types and parameters with
536// an additional boolean parameter appended.
537//
538// A new frame will be returned for the newly created function.
539func (fr *frame) bridgeRecoverFunc(llfn llvm.Value, fti functionTypeInfo) *frame {
540 // The bridging function must not be inlined, or the return address
541 // may not correspond to the source function.
542 llfn.AddFunctionAttr(llvm.NoInlineAttribute)
543
544 // Call __go_can_recover, passing in the function's return address.
545 entry := llvm.AddBasicBlock(llfn, "entry")
546 fr.builder.SetInsertPointAtEnd(entry)
547 canRecover := fr.runtime.canRecover.call(fr, fr.returnAddress(0))[0]
548 returnType := fti.functionType.ReturnType()
549 argTypes := fti.functionType.ParamTypes()
550 argTypes = append(argTypes, canRecover.Type())
551
552 // Create and call the $recover function.
553 ftiRecover := fti
554 ftiRecover.functionType = llvm.FunctionType(returnType, argTypes, false)
555 llfnRecover := ftiRecover.declare(fr.module.Module, llfn.Name()+"$recover")
556 fr.addCommonFunctionAttrs(llfnRecover)
557 llfnRecover.SetLinkage(llvm.InternalLinkage)
558 args := make([]llvm.Value, len(argTypes)-1, len(argTypes))
559 for i := range args {
560 args[i] = llfn.Param(i)
561 }
562 args = append(args, canRecover)
563 result := fr.builder.CreateCall(llfnRecover, args, "")
564 if returnType.TypeKind() == llvm.VoidTypeKind {
565 fr.builder.CreateRetVoid()
566 } else {
567 fr.builder.CreateRet(result)
568 }
569
570 // The $recover function must condition calls to __go_recover on
571 // the result of __go_can_recover passed in as an argument.
572 fr = newFrame(fr.unit, llfnRecover)
573 fr.retInf = ftiRecover.retInf
574 fr.canRecover = fr.function.Param(len(argTypes) - 1)
575 return fr
576}
577
578func (fr *frame) registerGcRoots() {
579 if len(fr.gcRoots) != 0 {
580 rootty := fr.gcRoots[0].Type()
581 roots := append(fr.gcRoots, llvm.ConstNull(rootty))
582 rootsarr := llvm.ConstArray(rootty, roots)
583 rootsstruct := llvm.ConstStruct([]llvm.Value{llvm.ConstNull(llvm.PointerType(llvm.Int8Type(), 0)), rootsarr}, false)
584
585 rootsglobal := llvm.AddGlobal(fr.module.Module, rootsstruct.Type(), "")
586 rootsglobal.SetInitializer(rootsstruct)
587 rootsglobal.SetLinkage(llvm.InternalLinkage)
588 fr.runtime.registerGcRoots.callOnly(fr, llvm.ConstBitCast(rootsglobal, llvm.PointerType(llvm.Int8Type(), 0)))
589 }
590}
591
592func (fr *frame) fixupPhis() {
593 for _, phi := range fr.phis {
594 values := make([]llvm.Value, len(phi.ssa.Edges))
595 blocks := make([]llvm.BasicBlock, len(phi.ssa.Edges))
596 block := phi.ssa.Block()
597 for i, edge := range phi.ssa.Edges {
598 values[i] = fr.llvmvalue(edge)
599 blocks[i] = fr.lastBlock(block.Preds[i])
600 }
601 phi.llvm.AddIncoming(values, blocks)
602 }
603}
604
605func (fr *frame) createLandingPad(cleanup bool) llvm.Value {
606 lp := fr.builder.CreateLandingPad(fr.runtime.gccgoExceptionType, fr.runtime.gccgoPersonality, 0, "")
607 if cleanup {
608 lp.SetCleanup(true)
609 } else {
610 lp.AddClause(llvm.ConstNull(llvm.PointerType(llvm.Int8Type(), 0)))
611 }
612 return lp
613}
614
615// Runs defers. If a defer panics, check for recovers in later defers.
616func (fr *frame) runDefers() {
617 loopbb := llvm.AddBasicBlock(fr.function, "")
618 fr.builder.CreateBr(loopbb)
619
620 retrylpad := llvm.AddBasicBlock(fr.function, "")
621 fr.builder.SetInsertPointAtEnd(retrylpad)
622 fr.createLandingPad(false)
623 fr.runtime.checkDefer.callOnly(fr, fr.frameptr)
624 fr.builder.CreateBr(loopbb)
625
626 fr.builder.SetInsertPointAtEnd(loopbb)
627 fr.runtime.undefer.invoke(fr, retrylpad, fr.frameptr)
628}
629
630func (fr *frame) setupUnwindBlock(rec *ssa.BasicBlock, results *types.Tuple) {
631 recoverbb := llvm.AddBasicBlock(fr.function, "")
632 if rec != nil {
633 fr.translateBlock(rec, recoverbb)
634 } else if results.Len() == 0 || results.At(0).Anonymous() {
635 // TODO(pcc): Remove this code after https://codereview.appspot.com/87210044/ lands
636 fr.builder.SetInsertPointAtEnd(recoverbb)
637 values := make([]llvm.Value, results.Len())
638 for i := range values {
639 values[i] = llvm.ConstNull(fr.llvmtypes.ToLLVM(results.At(i).Type()))
640 }
641 fr.retInf.encode(llvm.GlobalContext(), fr.allocaBuilder, fr.builder, values)
642 } else {
643 fr.builder.SetInsertPointAtEnd(recoverbb)
644 fr.builder.CreateUnreachable()
645 }
646
647 checkunwindbb := llvm.AddBasicBlock(fr.function, "")
648 fr.builder.SetInsertPointAtEnd(checkunwindbb)
649 exc := fr.createLandingPad(true)
650 fr.runDefers()
651
652 frame := fr.builder.CreateLoad(fr.frameptr, "")
653 shouldresume := fr.builder.CreateIsNull(frame, "")
654
655 resumebb := llvm.AddBasicBlock(fr.function, "")
656 fr.builder.CreateCondBr(shouldresume, resumebb, recoverbb)
657
658 fr.builder.SetInsertPointAtEnd(resumebb)
659 fr.builder.CreateResume(exc)
660
661 fr.builder.SetInsertPointAtEnd(fr.unwindBlock)
662 fr.createLandingPad(false)
663 fr.runtime.checkDefer.invoke(fr, checkunwindbb, fr.frameptr)
664 fr.runDefers()
665 fr.builder.CreateBr(recoverbb)
666}
667
668func (fr *frame) translateBlock(b *ssa.BasicBlock, llb llvm.BasicBlock) {
669 fr.builder.SetInsertPointAtEnd(llb)
670 for _, instr := range b.Instrs {
671 fr.instruction(instr)
672 }
673 fr.lastBlocks[b.Index] = fr.builder.GetInsertBlock()
674}
675
676func (fr *frame) block(b *ssa.BasicBlock) llvm.BasicBlock {
677 return fr.blocks[b.Index]
678}
679
680func (fr *frame) lastBlock(b *ssa.BasicBlock) llvm.BasicBlock {
681 return fr.lastBlocks[b.Index]
682}
683
684func (fr *frame) value(v ssa.Value) (result *govalue) {
685 switch v := v.(type) {
686 case nil:
687 return nil
688 case *ssa.Function:
689 return fr.resolveFunctionDescriptor(v)
690 case *ssa.Const:
691 return fr.newValueFromConst(v.Value, v.Type())
692 case *ssa.Global:
693 if g, ok := fr.globals[v]; ok {
694 return newValue(g, v.Type())
695 }
696 // Create an external global. Globals for this package are defined
697 // on entry to translatePackage, and have initialisers.
698 llelemtyp := fr.llvmtypes.ToLLVM(deref(v.Type()))
699 vname := fr.types.mc.mangleGlobalName(v)
700 llglobal := llvm.AddGlobal(fr.module.Module, llelemtyp, vname)
701 llglobal = llvm.ConstBitCast(llglobal, fr.llvmtypes.ToLLVM(v.Type()))
702 fr.globals[v] = llglobal
703 return newValue(llglobal, v.Type())
704 }
705 if value, ok := fr.env[v]; ok {
706 return value
707 }
708
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +0000709 panic(fmt.Errorf("Instruction %q not visited yet", v.Name()))
Peter Collingbournead9841e2014-11-27 00:06:42 +0000710}
711
712func (fr *frame) llvmvalue(v ssa.Value) llvm.Value {
713 if gv := fr.value(v); gv != nil {
714 return gv.value
715 } else {
716 return llvm.Value{nil}
717 }
718}
719
720func (fr *frame) isNonNull(v ssa.Value) bool {
721 switch v.(type) {
722 case
723 // Globals have a fixed (non-nil) address.
724 *ssa.Global,
725 // The language does not specify what happens if an allocation fails.
726 *ssa.Alloc,
727 // These have already been nil checked.
728 *ssa.FieldAddr, *ssa.IndexAddr:
729 return true
730 default:
731 return false
732 }
733}
734
735func (fr *frame) nilCheck(v ssa.Value, llptr llvm.Value) {
736 if !fr.isNonNull(v) {
737 ptrnull := fr.builder.CreateIsNull(llptr, "")
738 fr.condBrRuntimeError(ptrnull, gccgoRuntimeErrorNIL_DEREFERENCE)
739 }
740}
741
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +0000742func (fr *frame) canAvoidElementLoad(ptr ssa.Value) bool {
743 for _, ref := range *ptr.Referrers() {
744 switch ref := ref.(type) {
745 case *ssa.Field:
746 case *ssa.Index:
747 if ref.X != ptr {
748 return false
749 }
Peter Collingbournead9841e2014-11-27 00:06:42 +0000750 // ok
751 default:
752 return false
753 }
754 }
755
756 return true
757}
758
759// If this value is sufficiently large, look through referrers to see if we can
760// avoid a load.
761func (fr *frame) canAvoidLoad(instr *ssa.UnOp, op llvm.Value) bool {
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +0000762 if fr.types.Sizeof(instr.Type()) < 2*fr.types.Sizeof(types.Typ[types.Int]) {
Peter Collingbournead9841e2014-11-27 00:06:42 +0000763 // Don't bother with small values.
764 return false
765 }
766
767 // Keep track of whether our pointer may escape. We conservatively assume
768 // that MakeInterfaces will escape.
769 esc := false
770
771 // We only know how to avoid loads if they are used to create an interface
772 // or read an element of the structure. If we see any other referrer, abort.
773 for _, ref := range *instr.Referrers() {
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +0000774 switch ref := ref.(type) {
Peter Collingbournead9841e2014-11-27 00:06:42 +0000775 case *ssa.MakeInterface:
776 esc = true
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +0000777 case *ssa.Field:
778 case *ssa.Index:
779 if ref.X != instr {
780 // This should never happen, as indices are always of type int
781 // and we don't bother with values smaller than 2*sizeof(int).
782 panic("impossible")
783 }
Peter Collingbournead9841e2014-11-27 00:06:42 +0000784 // ok
785 default:
786 return false
787 }
788 }
789
790 var opcopy llvm.Value
791 if esc {
792 opcopy = fr.createTypeMalloc(instr.Type())
793 } else {
794 opcopy = fr.allocaBuilder.CreateAlloca(fr.types.ToLLVM(instr.Type()), "")
795 }
796 fr.memcpy(opcopy, op, llvm.ConstInt(fr.types.inttype, uint64(fr.types.Sizeof(instr.Type())), false))
797
798 fr.ptr[instr] = opcopy
799 return true
800}
801
802// Return true iff we think it might be beneficial to turn this alloc instruction
803// into a statically allocated global.
804// Precondition: we are compiling the init function.
805func (fr *frame) shouldStaticallyAllocate(alloc *ssa.Alloc) bool {
806 // First, see if the allocated type is an array or struct, and if so determine
807 // the number of elements in the type. If the type is anything else, we
808 // statically allocate unconditionally.
809 var numElems int64
810 switch ty := deref(alloc.Type()).Underlying().(type) {
811 case *types.Array:
812 numElems = ty.Len()
813 case *types.Struct:
814 numElems = int64(ty.NumFields())
815 default:
816 return true
817 }
818
819 // We treat the number of referrers to the alloc instruction as a rough
820 // proxy for the number of elements initialized. If the data structure
821 // is densely initialized (> 1/4 elements initialized), enable the
822 // optimization.
823 return int64(len(*alloc.Referrers()))*4 > numElems
824}
825
826// If val is a constant and addr refers to a global variable which is defined in
827// this module or an element thereof, simulate the effect of storing val at addr
828// in the global variable's initializer and return true, otherwise return false.
829// Precondition: we are compiling the init function.
830func (fr *frame) maybeStoreInInitializer(val, addr llvm.Value) bool {
831 if val.IsAConstant().IsNil() {
832 return false
833 }
834
835 if !addr.IsAConstantExpr().IsNil() && addr.OperandsCount() >= 2 &&
836 // TODO(pcc): Explicitly check that this is a constant GEP.
837 // I don't think there are any other kinds of constantexpr which
838 // satisfy the conditions we test for here, so this is probably safe.
839 !addr.Operand(0).IsAGlobalVariable().IsNil() &&
840 addr.Operand(1).IsNull() {
841 gv := addr.Operand(0)
842 globalInit, ok := fr.globalInits[gv]
843 if !ok {
844 return false
845 }
846 indices := make([]uint32, addr.OperandsCount()-2)
847 for i := range indices {
848 op := addr.Operand(i + 2)
849 if op.IsAConstantInt().IsNil() {
850 return false
851 }
852 indices[i] = uint32(op.ZExtValue())
853 }
854 globalInit.update(gv.Type().ElementType(), indices, val)
855 return true
856 } else if !addr.IsAGlobalVariable().IsNil() {
857 if globalInit, ok := fr.globalInits[addr]; ok {
858 globalInit.update(addr.Type().ElementType(), nil, val)
859 return true
860 }
861 return false
862 } else {
863 return false
864 }
865}
866
867func (fr *frame) instruction(instr ssa.Instruction) {
868 fr.logf("[%T] %v @ %s\n", instr, instr, fr.pkg.Prog.Fset.Position(instr.Pos()))
869 if fr.GenerateDebug {
870 fr.debug.SetLocation(fr.builder, instr.Pos())
871 }
872
873 switch instr := instr.(type) {
874 case *ssa.Alloc:
875 typ := deref(instr.Type())
876 llvmtyp := fr.llvmtypes.ToLLVM(typ)
877 var value llvm.Value
878 if !instr.Heap {
879 value = fr.env[instr].value
880 fr.memsetZero(value, llvm.SizeOf(llvmtyp))
881 } else if fr.isInit && fr.shouldStaticallyAllocate(instr) {
882 // If this is the init function and we think it may be beneficial,
883 // allocate memory statically in the object file rather than on the
884 // heap. This allows us to optimize constant stores into such
885 // variables as static initializations.
886 global := llvm.AddGlobal(fr.module.Module, llvmtyp, "")
887 global.SetLinkage(llvm.InternalLinkage)
888 fr.addGlobal(global, typ)
889 ptr := llvm.ConstBitCast(global, llvm.PointerType(llvm.Int8Type(), 0))
890 fr.env[instr] = newValue(ptr, instr.Type())
891 } else {
892 value = fr.createTypeMalloc(typ)
893 value.SetName(instr.Comment)
894 value = fr.builder.CreateBitCast(value, llvm.PointerType(llvm.Int8Type(), 0), "")
895 fr.env[instr] = newValue(value, instr.Type())
896 }
897
898 case *ssa.BinOp:
899 lhs, rhs := fr.value(instr.X), fr.value(instr.Y)
900 fr.env[instr] = fr.binaryOp(lhs, instr.Op, rhs)
901
902 case *ssa.Call:
903 tuple := fr.callInstruction(instr)
904 if len(tuple) == 1 {
905 fr.env[instr] = tuple[0]
906 } else {
907 fr.tuples[instr] = tuple
908 }
909
910 case *ssa.ChangeInterface:
911 x := fr.value(instr.X)
912 // The source type must be a non-empty interface,
913 // as ChangeInterface cannot fail (E2I may fail).
914 if instr.Type().Underlying().(*types.Interface).NumMethods() > 0 {
915 x = fr.changeInterface(x, instr.Type(), false)
916 } else {
917 x = fr.convertI2E(x)
918 }
919 fr.env[instr] = x
920
921 case *ssa.ChangeType:
922 value := fr.llvmvalue(instr.X)
923 if _, ok := instr.Type().Underlying().(*types.Pointer); ok {
924 value = fr.builder.CreateBitCast(value, fr.llvmtypes.ToLLVM(instr.Type()), "")
925 }
926 fr.env[instr] = newValue(value, instr.Type())
927
928 case *ssa.Convert:
929 v := fr.value(instr.X)
930 fr.env[instr] = fr.convert(v, instr.Type())
931
932 case *ssa.Defer:
933 fn, arg := fr.createThunk(instr)
934 fr.runtime.Defer.call(fr, fr.frameptr, fn, arg)
935
936 case *ssa.Extract:
937 var elem llvm.Value
938 if t, ok := fr.tuples[instr.Tuple]; ok {
939 elem = t[instr.Index].value
940 } else {
941 tuple := fr.llvmvalue(instr.Tuple)
942 elem = fr.builder.CreateExtractValue(tuple, instr.Index, instr.Name())
943 }
944 elemtyp := instr.Type()
945 fr.env[instr] = newValue(elem, elemtyp)
946
947 case *ssa.Field:
948 fieldtyp := instr.Type()
949 if p, ok := fr.ptr[instr.X]; ok {
950 field := fr.builder.CreateStructGEP(p, instr.Field, instr.Name())
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +0000951 if fr.canAvoidElementLoad(instr) {
Peter Collingbournead9841e2014-11-27 00:06:42 +0000952 fr.ptr[instr] = field
953 } else {
954 fr.env[instr] = newValue(fr.builder.CreateLoad(field, ""), fieldtyp)
955 }
956 } else {
957 value := fr.llvmvalue(instr.X)
958 field := fr.builder.CreateExtractValue(value, instr.Field, instr.Name())
959 fr.env[instr] = newValue(field, fieldtyp)
960 }
961
962 case *ssa.FieldAddr:
963 ptr := fr.llvmvalue(instr.X)
964 fr.nilCheck(instr.X, ptr)
965 xtyp := instr.X.Type().Underlying().(*types.Pointer).Elem()
966 ptrtyp := llvm.PointerType(fr.llvmtypes.ToLLVM(xtyp), 0)
967 ptr = fr.builder.CreateBitCast(ptr, ptrtyp, "")
968 fieldptr := fr.builder.CreateStructGEP(ptr, instr.Field, instr.Name())
969 fieldptr = fr.builder.CreateBitCast(fieldptr, llvm.PointerType(llvm.Int8Type(), 0), "")
970 fieldptrtyp := instr.Type()
971 fr.env[instr] = newValue(fieldptr, fieldptrtyp)
972
973 case *ssa.Go:
974 fn, arg := fr.createThunk(instr)
975 fr.runtime.Go.call(fr, fn, arg)
976
977 case *ssa.If:
978 cond := fr.llvmvalue(instr.Cond)
979 block := instr.Block()
980 trueBlock := fr.block(block.Succs[0])
981 falseBlock := fr.block(block.Succs[1])
982 cond = fr.builder.CreateTrunc(cond, llvm.Int1Type(), "")
983 fr.builder.CreateCondBr(cond, trueBlock, falseBlock)
984
985 case *ssa.Index:
986 var arrayptr llvm.Value
987
988 if ptr, ok := fr.ptr[instr.X]; ok {
989 arrayptr = ptr
990 } else {
991 array := fr.llvmvalue(instr.X)
992 arrayptr = fr.allocaBuilder.CreateAlloca(array.Type(), "")
993
994 fr.builder.CreateStore(array, arrayptr)
995 }
996 index := fr.llvmvalue(instr.Index)
997
998 arraytyp := instr.X.Type().Underlying().(*types.Array)
999 arraylen := llvm.ConstInt(fr.llvmtypes.inttype, uint64(arraytyp.Len()), false)
1000
1001 // The index may not have been promoted to int (for example, if it
1002 // came from a composite literal).
1003 index = fr.createZExtOrTrunc(index, fr.types.inttype, "")
1004
1005 // Bounds checking: 0 <= index < len
1006 zero := llvm.ConstNull(fr.types.inttype)
1007 i0 := fr.builder.CreateICmp(llvm.IntSLT, index, zero, "")
1008 li := fr.builder.CreateICmp(llvm.IntSLE, arraylen, index, "")
1009
1010 cond := fr.builder.CreateOr(i0, li, "")
1011
1012 fr.condBrRuntimeError(cond, gccgoRuntimeErrorARRAY_INDEX_OUT_OF_BOUNDS)
1013
1014 addr := fr.builder.CreateGEP(arrayptr, []llvm.Value{zero, index}, "")
Peter Collingbourne1f89ffd2014-12-17 09:45:05 +00001015 if fr.canAvoidElementLoad(instr) {
Peter Collingbournead9841e2014-11-27 00:06:42 +00001016 fr.ptr[instr] = addr
1017 } else {
1018 fr.env[instr] = newValue(fr.builder.CreateLoad(addr, ""), instr.Type())
1019 }
1020
1021 case *ssa.IndexAddr:
1022 x := fr.llvmvalue(instr.X)
1023 index := fr.llvmvalue(instr.Index)
1024 var arrayptr, arraylen llvm.Value
1025 var elemtyp types.Type
1026 var errcode uint64
1027 switch typ := instr.X.Type().Underlying().(type) {
1028 case *types.Slice:
1029 elemtyp = typ.Elem()
1030 arrayptr = fr.builder.CreateExtractValue(x, 0, "")
1031 arraylen = fr.builder.CreateExtractValue(x, 1, "")
1032 errcode = gccgoRuntimeErrorSLICE_INDEX_OUT_OF_BOUNDS
1033 case *types.Pointer: // *array
1034 arraytyp := typ.Elem().Underlying().(*types.Array)
1035 elemtyp = arraytyp.Elem()
1036 fr.nilCheck(instr.X, x)
1037 arrayptr = x
1038 arraylen = llvm.ConstInt(fr.llvmtypes.inttype, uint64(arraytyp.Len()), false)
1039 errcode = gccgoRuntimeErrorARRAY_INDEX_OUT_OF_BOUNDS
1040 }
1041
1042 // The index may not have been promoted to int (for example, if it
1043 // came from a composite literal).
1044 index = fr.createZExtOrTrunc(index, fr.types.inttype, "")
1045
1046 // Bounds checking: 0 <= index < len
1047 zero := llvm.ConstNull(fr.types.inttype)
1048 i0 := fr.builder.CreateICmp(llvm.IntSLT, index, zero, "")
1049 li := fr.builder.CreateICmp(llvm.IntSLE, arraylen, index, "")
1050
1051 cond := fr.builder.CreateOr(i0, li, "")
1052
1053 fr.condBrRuntimeError(cond, errcode)
1054
1055 ptrtyp := llvm.PointerType(fr.llvmtypes.ToLLVM(elemtyp), 0)
1056 arrayptr = fr.builder.CreateBitCast(arrayptr, ptrtyp, "")
1057 addr := fr.builder.CreateGEP(arrayptr, []llvm.Value{index}, "")
1058 addr = fr.builder.CreateBitCast(addr, llvm.PointerType(llvm.Int8Type(), 0), "")
1059 fr.env[instr] = newValue(addr, types.NewPointer(elemtyp))
1060
1061 case *ssa.Jump:
1062 succ := instr.Block().Succs[0]
1063 fr.builder.CreateBr(fr.block(succ))
1064
1065 case *ssa.Lookup:
1066 x := fr.value(instr.X)
1067 index := fr.value(instr.Index)
1068 if isString(x.Type().Underlying()) {
1069 fr.env[instr] = fr.stringIndex(x, index)
1070 } else {
1071 v, ok := fr.mapLookup(x, index)
1072 if instr.CommaOk {
1073 fr.tuples[instr] = []*govalue{v, ok}
1074 } else {
1075 fr.env[instr] = v
1076 }
1077 }
1078
1079 case *ssa.MakeChan:
1080 fr.env[instr] = fr.makeChan(instr.Type(), fr.value(instr.Size))
1081
1082 case *ssa.MakeClosure:
1083 llfn := fr.resolveFunctionGlobal(instr.Fn.(*ssa.Function))
1084 llfn = llvm.ConstBitCast(llfn, llvm.PointerType(llvm.Int8Type(), 0))
1085 fn := newValue(llfn, instr.Fn.(*ssa.Function).Signature)
1086 bindings := make([]*govalue, len(instr.Bindings))
1087 for i, binding := range instr.Bindings {
1088 bindings[i] = fr.value(binding)
1089 }
1090 fr.env[instr] = fr.makeClosure(fn, bindings)
1091
1092 case *ssa.MakeInterface:
1093 // fr.ptr[instr.X] will be set if a pointer load was elided by canAvoidLoad
1094 if ptr, ok := fr.ptr[instr.X]; ok {
1095 fr.env[instr] = fr.makeInterfaceFromPointer(ptr, instr.X.Type(), instr.Type())
1096 } else {
1097 receiver := fr.llvmvalue(instr.X)
1098 fr.env[instr] = fr.makeInterface(receiver, instr.X.Type(), instr.Type())
1099 }
1100
1101 case *ssa.MakeMap:
1102 fr.env[instr] = fr.makeMap(instr.Type(), fr.value(instr.Reserve))
1103
1104 case *ssa.MakeSlice:
1105 length := fr.value(instr.Len)
1106 capacity := fr.value(instr.Cap)
1107 fr.env[instr] = fr.makeSlice(instr.Type(), length, capacity)
1108
1109 case *ssa.MapUpdate:
1110 m := fr.value(instr.Map)
1111 k := fr.value(instr.Key)
1112 v := fr.value(instr.Value)
1113 fr.mapUpdate(m, k, v)
1114
1115 case *ssa.Next:
1116 iter := fr.tuples[instr.Iter]
1117 if instr.IsString {
1118 fr.tuples[instr] = fr.stringIterNext(iter)
1119 } else {
1120 fr.tuples[instr] = fr.mapIterNext(iter)
1121 }
1122
1123 case *ssa.Panic:
1124 arg := fr.value(instr.X)
Peter Collingbourneb6edff92014-12-28 22:39:01 +00001125 fr.callPanic(arg, true)
Peter Collingbournead9841e2014-11-27 00:06:42 +00001126
1127 case *ssa.Phi:
1128 typ := instr.Type()
1129 phi := fr.builder.CreatePHI(fr.llvmtypes.ToLLVM(typ), instr.Comment)
1130 fr.env[instr] = newValue(phi, typ)
1131 fr.phis = append(fr.phis, pendingPhi{instr, phi})
1132
1133 case *ssa.Range:
1134 x := fr.value(instr.X)
1135 switch x.Type().Underlying().(type) {
1136 case *types.Map:
1137 fr.tuples[instr] = fr.mapIterInit(x)
1138 case *types.Basic: // string
1139 fr.tuples[instr] = fr.stringIterInit(x)
1140 default:
1141 panic(fmt.Sprintf("unhandled range for type %T", x.Type()))
1142 }
1143
1144 case *ssa.Return:
1145 vals := make([]llvm.Value, len(instr.Results))
1146 for i, res := range instr.Results {
1147 vals[i] = fr.llvmvalue(res)
1148 }
1149 fr.retInf.encode(llvm.GlobalContext(), fr.allocaBuilder, fr.builder, vals)
1150
1151 case *ssa.RunDefers:
1152 fr.runDefers()
1153
1154 case *ssa.Select:
Andrew Wilkins75f34af2014-12-31 03:46:49 +00001155 index, recvOk, recvElems := fr.chanSelect(instr)
Peter Collingbournead9841e2014-11-27 00:06:42 +00001156 tuple := append([]*govalue{index, recvOk}, recvElems...)
1157 fr.tuples[instr] = tuple
1158
1159 case *ssa.Send:
1160 fr.chanSend(fr.value(instr.Chan), fr.value(instr.X))
1161
1162 case *ssa.Slice:
1163 x := fr.llvmvalue(instr.X)
1164 low := fr.llvmvalue(instr.Low)
1165 high := fr.llvmvalue(instr.High)
1166 max := fr.llvmvalue(instr.Max)
1167 slice := fr.slice(x, instr.X.Type(), low, high, max)
1168 fr.env[instr] = newValue(slice, instr.Type())
1169
1170 case *ssa.Store:
1171 addr := fr.llvmvalue(instr.Addr)
1172 value := fr.llvmvalue(instr.Val)
1173 addr = fr.builder.CreateBitCast(addr, llvm.PointerType(value.Type(), 0), "")
1174 // If this is the init function, see if we can simulate the effect
1175 // of the store in a global's initializer, in which case we can avoid
1176 // generating code for it.
1177 if !fr.isInit || !fr.maybeStoreInInitializer(value, addr) {
1178 fr.nilCheck(instr.Addr, addr)
1179 fr.builder.CreateStore(value, addr)
1180 }
1181
1182 case *ssa.TypeAssert:
1183 x := fr.value(instr.X)
1184 if instr.CommaOk {
1185 v, ok := fr.interfaceTypeCheck(x, instr.AssertedType)
1186 fr.tuples[instr] = []*govalue{v, ok}
1187 } else {
1188 fr.env[instr] = fr.interfaceTypeAssert(x, instr.AssertedType)
1189 }
1190
1191 case *ssa.UnOp:
1192 operand := fr.value(instr.X)
1193 switch instr.Op {
1194 case token.ARROW:
1195 x, ok := fr.chanRecv(operand, instr.CommaOk)
1196 if instr.CommaOk {
1197 fr.tuples[instr] = []*govalue{x, ok}
1198 } else {
1199 fr.env[instr] = x
1200 }
1201 case token.MUL:
1202 fr.nilCheck(instr.X, operand.value)
1203 if !fr.canAvoidLoad(instr, operand.value) {
1204 // The bitcast is necessary to handle recursive pointer loads.
1205 llptr := fr.builder.CreateBitCast(operand.value, llvm.PointerType(fr.llvmtypes.ToLLVM(instr.Type()), 0), "")
1206 fr.env[instr] = newValue(fr.builder.CreateLoad(llptr, ""), instr.Type())
1207 }
1208 default:
1209 fr.env[instr] = fr.unaryOp(operand, instr.Op)
1210 }
1211
1212 default:
1213 panic(fmt.Sprintf("unhandled: %v", instr))
1214 }
1215}
1216
1217func (fr *frame) callBuiltin(typ types.Type, builtin *ssa.Builtin, args []ssa.Value) []*govalue {
1218 switch builtin.Name() {
1219 case "print", "println":
1220 llargs := make([]*govalue, len(args))
1221 for i, arg := range args {
1222 llargs[i] = fr.value(arg)
1223 }
1224 fr.printValues(builtin.Name() == "println", llargs...)
1225 return nil
1226
1227 case "panic":
Peter Collingbourneb6edff92014-12-28 22:39:01 +00001228 fr.callPanic(fr.value(args[0]), false)
Peter Collingbournead9841e2014-11-27 00:06:42 +00001229 return nil
1230
1231 case "recover":
1232 return []*govalue{fr.callRecover(false)}
1233
1234 case "append":
1235 return []*govalue{fr.callAppend(fr.value(args[0]), fr.value(args[1]))}
1236
1237 case "close":
1238 fr.chanClose(fr.value(args[0]))
1239 return nil
1240
1241 case "cap":
1242 return []*govalue{fr.callCap(fr.value(args[0]))}
1243
1244 case "len":
1245 return []*govalue{fr.callLen(fr.value(args[0]))}
1246
1247 case "copy":
1248 return []*govalue{fr.callCopy(fr.value(args[0]), fr.value(args[1]))}
1249
1250 case "delete":
1251 fr.mapDelete(fr.value(args[0]), fr.value(args[1]))
1252 return nil
1253
1254 case "real":
1255 return []*govalue{fr.extractRealValue(fr.value(args[0]))}
1256
1257 case "imag":
1258 return []*govalue{fr.extractImagValue(fr.value(args[0]))}
1259
1260 case "complex":
1261 r := fr.llvmvalue(args[0])
1262 i := fr.llvmvalue(args[1])
1263 cmplx := llvm.Undef(fr.llvmtypes.ToLLVM(typ))
1264 cmplx = fr.builder.CreateInsertValue(cmplx, r, 0, "")
1265 cmplx = fr.builder.CreateInsertValue(cmplx, i, 1, "")
1266 return []*govalue{newValue(cmplx, typ)}
1267
1268 case "ssa:wrapnilchk":
1269 ptr := fr.value(args[0])
1270 fr.nilCheck(args[0], ptr.value)
1271 return []*govalue{ptr}
1272
1273 default:
1274 panic("unimplemented: " + builtin.Name())
1275 }
1276}
1277
1278// callInstruction translates function call instructions.
1279func (fr *frame) callInstruction(instr ssa.CallInstruction) []*govalue {
1280 call := instr.Common()
1281 if builtin, ok := call.Value.(*ssa.Builtin); ok {
1282 var typ types.Type
1283 if v := instr.Value(); v != nil {
1284 typ = v.Type()
1285 }
1286 return fr.callBuiltin(typ, builtin, call.Args)
1287 }
1288
1289 args := make([]*govalue, len(call.Args))
1290 for i, arg := range call.Args {
1291 args[i] = fr.value(arg)
1292 }
1293
1294 var fn *govalue
1295 if call.IsInvoke() {
1296 var recv *govalue
1297 fn, recv = fr.interfaceMethod(fr.llvmvalue(call.Value), call.Value.Type(), call.Method)
1298 args = append([]*govalue{recv}, args...)
1299 } else {
1300 if ssafn, ok := call.Value.(*ssa.Function); ok {
1301 llfn := fr.resolveFunctionGlobal(ssafn)
1302 llfn = llvm.ConstBitCast(llfn, llvm.PointerType(llvm.Int8Type(), 0))
1303 fn = newValue(llfn, ssafn.Type())
1304 } else {
1305 // First-class function values are stored as *{*fnptr}, so
1306 // we must extract the function pointer. We must also
1307 // call __go_set_closure, in case the function is a closure.
1308 fn = fr.value(call.Value)
1309 fr.runtime.setClosure.call(fr, fn.value)
1310 fnptr := fr.builder.CreateBitCast(fn.value, llvm.PointerType(fn.value.Type(), 0), "")
1311 fnptr = fr.builder.CreateLoad(fnptr, "")
1312 fn = newValue(fnptr, fn.Type())
1313 }
1314 if recv := call.Signature().Recv(); recv != nil {
1315 if _, ok := recv.Type().Underlying().(*types.Pointer); !ok {
1316 recvalloca := fr.allocaBuilder.CreateAlloca(args[0].value.Type(), "")
1317 fr.builder.CreateStore(args[0].value, recvalloca)
1318 args[0] = newValue(recvalloca, types.NewPointer(args[0].Type()))
1319 }
1320 }
1321 }
1322 return fr.createCall(fn, args)
1323}
1324
1325func hasDefer(f *ssa.Function) bool {
1326 for _, b := range f.Blocks {
1327 for _, instr := range b.Instrs {
1328 if _, ok := instr.(*ssa.Defer); ok {
1329 return true
1330 }
1331 }
1332 }
1333 return false
1334}
1335
1336func callsRecover(f *ssa.Function) bool {
1337 for _, b := range f.Blocks {
1338 for _, instr := range b.Instrs {
1339 if instr, ok := instr.(ssa.CallInstruction); ok {
1340 b, ok := instr.Common().Value.(*ssa.Builtin)
1341 if ok && b.Name() == "recover" {
1342 return true
1343 }
1344 }
1345 }
1346 }
1347 return false
1348}