1 //===-- MachineFunction.cpp -----------------------------------------------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file was developed by the LLVM research group and is distributed under
6 // the University of Illinois Open Source License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // Collect native machine code information for a function.  This allows
11 // target-specific information about the generated code to be stored with each
12 // function.
13 //
14 //===----------------------------------------------------------------------===//
15 
16 #include "llvm/CodeGen/MachineFunctionPass.h"
17 #include "llvm/CodeGen/MachineInstr.h"
18 #include "llvm/CodeGen/SSARegMap.h"
19 #include "llvm/CodeGen/MachineFunctionInfo.h"
20 #include "llvm/CodeGen/MachineFrameInfo.h"
21 #include "llvm/CodeGen/MachineConstantPool.h"
22 #include "llvm/CodeGen/Passes.h"
23 #include "llvm/Target/TargetMachine.h"
24 #include "llvm/Target/TargetFrameInfo.h"
25 #include "llvm/Function.h"
26 #include "llvm/Instructions.h"
27 #include "llvm/Type.h"
28 #include "Support/LeakDetector.h"
29 #include "Support/GraphWriter.h"
30 #include <fstream>
31 #include <iostream>
32 #include <sstream>
33 
34 using namespace llvm;
35 
36 static AnnotationID MF_AID(
37                  AnnotationManager::getID("CodeGen::MachineCodeForFunction"));
38 
39 
40 namespace {
41   struct Printer : public MachineFunctionPass {
42     std::ostream *OS;
43     const std::string Banner;
44 
45     Printer (std::ostream *_OS, const std::string &_Banner) :
46       OS (_OS), Banner (_Banner) { }
47 
48     const char *getPassName() const { return "MachineFunction Printer"; }
49 
50     virtual void getAnalysisUsage(AnalysisUsage &AU) const {
51       AU.setPreservesAll();
52     }
53 
54     bool runOnMachineFunction(MachineFunction &MF) {
55       (*OS) << Banner;
56       MF.print (*OS);
57       return false;
58     }
59   };
60 }
61 
62 /// Returns a newly-created MachineFunction Printer pass. The default output
63 /// stream is std::cerr; the default banner is empty.
64 ///
65 FunctionPass *llvm::createMachineFunctionPrinterPass(std::ostream *OS,
66                                                      const std::string &Banner) {
67   return new Printer(OS, Banner);
68 }
69 
70 namespace {
71   struct Deleter : public MachineFunctionPass {
72     const char *getPassName() const { return "Machine Code Deleter"; }
73 
74     bool runOnMachineFunction(MachineFunction &MF) {
75       // Delete the annotation from the function now.
76       MachineFunction::destruct(MF.getFunction());
77       return true;
78     }
79   };
80 }
81 
82 /// MachineCodeDeletion Pass - This pass deletes all of the machine code for
83 /// the current function, which should happen after the function has been
84 /// emitted to a .s file or to memory.
85 FunctionPass *llvm::createMachineCodeDeleter() {
86   return new Deleter();
87 }
88 
89 
90 
91 //===---------------------------------------------------------------------===//
92 // MachineFunction implementation
93 //===---------------------------------------------------------------------===//
94 MachineBasicBlock* ilist_traits<MachineBasicBlock>::createNode()
95 {
96     MachineBasicBlock* dummy = new MachineBasicBlock();
97     LeakDetector::removeGarbageObject(dummy);
98     return dummy;
99 }
100 
101 void ilist_traits<MachineBasicBlock>::transferNodesFromList(
102     iplist<MachineBasicBlock, ilist_traits<MachineBasicBlock> >& toList,
103     ilist_iterator<MachineBasicBlock> first,
104     ilist_iterator<MachineBasicBlock> last)
105 {
106     if (Parent != toList.Parent)
107         for (; first != last; ++first)
108             first->Parent = toList.Parent;
109 }
110 
111 MachineFunction::MachineFunction(const Function *F,
112                                  const TargetMachine &TM)
113   : Annotation(MF_AID), Fn(F), Target(TM) {
114   SSARegMapping = new SSARegMap();
115   MFInfo = new MachineFunctionInfo(*this);
116   FrameInfo = new MachineFrameInfo();
117   ConstantPool = new MachineConstantPool();
118   BasicBlocks.Parent = this;
119 }
120 
121 MachineFunction::~MachineFunction() {
122   BasicBlocks.clear();
123   delete SSARegMapping;
124   delete MFInfo;
125   delete FrameInfo;
126   delete ConstantPool;
127 }
128 
129 void MachineFunction::dump() const { print(std::cerr); }
130 
131 void MachineFunction::print(std::ostream &OS) const {
132   OS << "# Machine code for " << Fn->getName () << "():\n";
133 
134   // Print Frame Information
135   getFrameInfo()->print(*this, OS);
136 
137   // Print Constant Pool
138   getConstantPool()->print(OS);
139 
140   for (const_iterator BB = begin(); BB != end(); ++BB)
141     BB->print(OS);
142 
143   OS << "\n# End machine code for " << Fn->getName () << "().\n\n";
144 }
145 
146 /// CFGOnly flag - This is used to control whether or not the CFG graph printer
147 /// prints out the contents of basic blocks or not.  This is acceptable because
148 /// this code is only really used for debugging purposes.
149 ///
150 static bool CFGOnly = false;
151 
152 namespace llvm {
153 template<>
154 struct DOTGraphTraits<const MachineFunction*> : public DefaultDOTGraphTraits {
155   static std::string getGraphName(const MachineFunction *F) {
156     return "CFG for '" + F->getFunction()->getName() + "' function";
157   }
158 
159   static std::string getNodeLabel(const MachineBasicBlock *Node,
160                                   const MachineFunction *Graph) {
161     if (CFGOnly && Node->getBasicBlock() &&
162         !Node->getBasicBlock()->getName().empty())
163       return Node->getBasicBlock()->getName() + ":";
164 
165     std::ostringstream Out;
166     if (CFGOnly) {
167       Out << Node->getNumber() << ':';
168       return Out.str();
169     }
170 
171     Node->print(Out);
172 
173     std::string OutStr = Out.str();
174     if (OutStr[0] == '\n') OutStr.erase(OutStr.begin());
175 
176     // Process string output to make it nicer...
177     for (unsigned i = 0; i != OutStr.length(); ++i)
178       if (OutStr[i] == '\n') {                            // Left justify
179         OutStr[i] = '\\';
180         OutStr.insert(OutStr.begin()+i+1, 'l');
181       }
182     return OutStr;
183   }
184 };
185 }
186 
187 void MachineFunction::viewCFG() const
188 {
189   std::string Filename = "/tmp/cfg." + getFunction()->getName() + ".dot";
190   std::cerr << "Writing '" << Filename << "'... ";
191   std::ofstream F(Filename.c_str());
192 
193   if (!F) {
194     std::cerr << "  error opening file for writing!\n";
195     return;
196   }
197 
198   WriteGraph(F, this);
199   F.close();
200   std::cerr << "\n";
201 
202   std::cerr << "Running 'dot' program... " << std::flush;
203   if (system(("dot -Tps -Nfontname=Courier -Gsize=7.5,10 " + Filename
204               + " > /tmp/cfg.tempgraph.ps").c_str())) {
205     std::cerr << "Error running dot: 'dot' not in path?\n";
206   } else {
207     std::cerr << "\n";
208     system("gv /tmp/cfg.tempgraph.ps");
209   }
210   system(("rm " + Filename + " /tmp/cfg.tempgraph.ps").c_str());
211 }
212 
213 void MachineFunction::viewCFGOnly() const
214 {
215   CFGOnly = true;
216   viewCFG();
217   CFGOnly = false;
218 }
219 
220 // The next two methods are used to construct and to retrieve
221 // the MachineCodeForFunction object for the given function.
222 // construct() -- Allocates and initializes for a given function and target
223 // get()       -- Returns a handle to the object.
224 //                This should not be called before "construct()"
225 //                for a given Function.
226 //
227 MachineFunction&
228 MachineFunction::construct(const Function *Fn, const TargetMachine &Tar)
229 {
230   assert(Fn->getAnnotation(MF_AID) == 0 &&
231          "Object already exists for this function!");
232   MachineFunction* mcInfo = new MachineFunction(Fn, Tar);
233   Fn->addAnnotation(mcInfo);
234   return *mcInfo;
235 }
236 
237 void MachineFunction::destruct(const Function *Fn) {
238   bool Deleted = Fn->deleteAnnotation(MF_AID);
239   assert(Deleted && "Machine code did not exist for function!");
240 }
241 
242 MachineFunction& MachineFunction::get(const Function *F)
243 {
244   MachineFunction *mc = (MachineFunction*)F->getAnnotation(MF_AID);
245   assert(mc && "Call construct() method first to allocate the object");
246   return *mc;
247 }
248 
249 void MachineFunction::clearSSARegMap() {
250   delete SSARegMapping;
251   SSARegMapping = 0;
252 }
253 
254 //===----------------------------------------------------------------------===//
255 //  MachineFrameInfo implementation
256 //===----------------------------------------------------------------------===//
257 
258 /// CreateStackObject - Create a stack object for a value of the specified type.
259 ///
260 int MachineFrameInfo::CreateStackObject(const Type *Ty, const TargetData &TD) {
261   return CreateStackObject(TD.getTypeSize(Ty), TD.getTypeAlignment(Ty));
262 }
263 
264 int MachineFrameInfo::CreateStackObject(const TargetRegisterClass *RC) {
265   return CreateStackObject(RC->getSize(), RC->getAlignment());
266 }
267 
268 
269 void MachineFrameInfo::print(const MachineFunction &MF, std::ostream &OS) const{
270   int ValOffset = MF.getTarget().getFrameInfo()->getOffsetOfLocalArea();
271 
272   for (unsigned i = 0, e = Objects.size(); i != e; ++i) {
273     const StackObject &SO = Objects[i];
274     OS << "  <fi #" << (int)(i-NumFixedObjects) << "> is ";
275     if (SO.Size == 0)
276       OS << "variable sized";
277     else
278       OS << SO.Size << " byte" << (SO.Size != 1 ? "s" : " ");
279 
280     if (i < NumFixedObjects)
281       OS << " fixed";
282     if (i < NumFixedObjects || SO.SPOffset != -1) {
283       int Off = SO.SPOffset - ValOffset;
284       OS << " at location [SP";
285       if (Off > 0)
286 	OS << "+" << Off;
287       else if (Off < 0)
288 	OS << Off;
289       OS << "]";
290     }
291     OS << "\n";
292   }
293 
294   if (HasVarSizedObjects)
295     OS << "  Stack frame contains variable sized objects\n";
296 }
297 
298 void MachineFrameInfo::dump(const MachineFunction &MF) const {
299   print(MF, std::cerr);
300 }
301 
302 
303 //===----------------------------------------------------------------------===//
304 //  MachineConstantPool implementation
305 //===----------------------------------------------------------------------===//
306 
307 void MachineConstantPool::print(std::ostream &OS) const {
308   for (unsigned i = 0, e = Constants.size(); i != e; ++i)
309     OS << "  <cp #" << i << "> is" << *(Value*)Constants[i] << "\n";
310 }
311 
312 void MachineConstantPool::dump() const { print(std::cerr); }
313 
314 //===----------------------------------------------------------------------===//
315 //  MachineFunctionInfo implementation
316 //===----------------------------------------------------------------------===//
317 
318 static unsigned
319 ComputeMaxOptionalArgsSize(const TargetMachine& target, const Function *F,
320                            unsigned &maxOptionalNumArgs)
321 {
322   const TargetFrameInfo &frameInfo = *target.getFrameInfo();
323 
324   unsigned maxSize = 0;
325 
326   for (Function::const_iterator BB = F->begin(), BBE = F->end(); BB !=BBE; ++BB)
327     for (BasicBlock::const_iterator I = BB->begin(), E = BB->end(); I != E; ++I)
328       if (const CallInst *callInst = dyn_cast<CallInst>(I))
329         {
330           unsigned numOperands = callInst->getNumOperands() - 1;
331           int numExtra = (int)numOperands-frameInfo.getNumFixedOutgoingArgs();
332           if (numExtra <= 0)
333             continue;
334 
335           unsigned sizeForThisCall;
336           if (frameInfo.argsOnStackHaveFixedSize())
337             {
338               int argSize = frameInfo.getSizeOfEachArgOnStack();
339               sizeForThisCall = numExtra * (unsigned) argSize;
340             }
341           else
342             {
343               assert(0 && "UNTESTED CODE: Size per stack argument is not "
344                      "fixed on this architecture: use actual arg sizes to "
345                      "compute MaxOptionalArgsSize");
346               sizeForThisCall = 0;
347               for (unsigned i = 0; i < numOperands; ++i)
348                 sizeForThisCall += target.getTargetData().getTypeSize(callInst->
349                                               getOperand(i)->getType());
350             }
351 
352           if (maxSize < sizeForThisCall)
353             maxSize = sizeForThisCall;
354 
355           if ((int)maxOptionalNumArgs < numExtra)
356             maxOptionalNumArgs = (unsigned) numExtra;
357         }
358 
359   return maxSize;
360 }
361 
362 // Align data larger than one L1 cache line on L1 cache line boundaries.
363 // Align all smaller data on the next higher 2^x boundary (4, 8, ...),
364 // but not higher than the alignment of the largest type we support
365 // (currently a double word). -- see class TargetData).
366 //
367 // This function is similar to the corresponding function in EmitAssembly.cpp
368 // but they are unrelated.  This one does not align at more than a
369 // double-word boundary whereas that one might.
370 //
371 inline unsigned
372 SizeToAlignment(unsigned size, const TargetMachine& target)
373 {
374   const unsigned short cacheLineSize = 16;
375   if (size > (unsigned) cacheLineSize / 2)
376     return cacheLineSize;
377   else
378     for (unsigned sz=1; /*no condition*/; sz *= 2)
379       if (sz >= size || sz >= target.getTargetData().getDoubleAlignment())
380         return sz;
381 }
382 
383 
384 void MachineFunctionInfo::CalculateArgSize() {
385   maxOptionalArgsSize = ComputeMaxOptionalArgsSize(MF.getTarget(),
386 						   MF.getFunction(),
387                                                    maxOptionalNumArgs);
388   staticStackSize = maxOptionalArgsSize
389     + MF.getTarget().getFrameInfo()->getMinStackFrameSize();
390 }
391 
392 int
393 MachineFunctionInfo::computeOffsetforLocalVar(const Value* val,
394 					      unsigned &getPaddedSize,
395 					      unsigned  sizeToUse)
396 {
397   if (sizeToUse == 0) {
398     // All integer types smaller than ints promote to 4 byte integers.
399     if (val->getType()->isIntegral() && val->getType()->getPrimitiveSize() < 4)
400       sizeToUse = 4;
401     else
402       sizeToUse = MF.getTarget().getTargetData().getTypeSize(val->getType());
403   }
404   unsigned align = SizeToAlignment(sizeToUse, MF.getTarget());
405 
406   bool growUp;
407   int firstOffset = MF.getTarget().getFrameInfo()->getFirstAutomaticVarOffset(MF,
408 						 			     growUp);
409   int offset = growUp? firstOffset + getAutomaticVarsSize()
410                      : firstOffset - (getAutomaticVarsSize() + sizeToUse);
411 
412   int aligned = MF.getTarget().getFrameInfo()->adjustAlignment(offset, growUp, align);
413   getPaddedSize = sizeToUse + abs(aligned - offset);
414 
415   return aligned;
416 }
417 
418 
419 int MachineFunctionInfo::allocateLocalVar(const Value* val,
420                                           unsigned sizeToUse) {
421   assert(! automaticVarsAreaFrozen &&
422          "Size of auto vars area has been used to compute an offset so "
423          "no more automatic vars should be allocated!");
424 
425   // Check if we've allocated a stack slot for this value already
426   //
427   hash_map<const Value*, int>::const_iterator pair = offsets.find(val);
428   if (pair != offsets.end())
429     return pair->second;
430 
431   unsigned getPaddedSize;
432   unsigned offset = computeOffsetforLocalVar(val, getPaddedSize, sizeToUse);
433   offsets[val] = offset;
434   incrementAutomaticVarsSize(getPaddedSize);
435   return offset;
436 }
437 
438 int
439 MachineFunctionInfo::allocateSpilledValue(const Type* type)
440 {
441   assert(! spillsAreaFrozen &&
442          "Size of reg spills area has been used to compute an offset so "
443          "no more register spill slots should be allocated!");
444 
445   unsigned size  = MF.getTarget().getTargetData().getTypeSize(type);
446   unsigned char align = MF.getTarget().getTargetData().getTypeAlignment(type);
447 
448   bool growUp;
449   int firstOffset = MF.getTarget().getFrameInfo()->getRegSpillAreaOffset(MF, growUp);
450 
451   int offset = growUp? firstOffset + getRegSpillsSize()
452                      : firstOffset - (getRegSpillsSize() + size);
453 
454   int aligned = MF.getTarget().getFrameInfo()->adjustAlignment(offset, growUp, align);
455   size += abs(aligned - offset); // include alignment padding in size
456 
457   incrementRegSpillsSize(size);  // update size of reg. spills area
458 
459   return aligned;
460 }
461 
462 int
463 MachineFunctionInfo::pushTempValue(unsigned size)
464 {
465   unsigned align = SizeToAlignment(size, MF.getTarget());
466 
467   bool growUp;
468   int firstOffset = MF.getTarget().getFrameInfo()->getTmpAreaOffset(MF, growUp);
469 
470   int offset = growUp? firstOffset + currentTmpValuesSize
471                      : firstOffset - (currentTmpValuesSize + size);
472 
473   int aligned = MF.getTarget().getFrameInfo()->adjustAlignment(offset, growUp,
474 							      align);
475   size += abs(aligned - offset); // include alignment padding in size
476 
477   incrementTmpAreaSize(size);    // update "current" size of tmp area
478 
479   return aligned;
480 }
481 
482 void MachineFunctionInfo::popAllTempValues() {
483   resetTmpAreaSize();            // clear tmp area to reuse
484 }
485