1 //===-- X86VZeroUpper.cpp - AVX vzeroupper instruction inserter -----------===//
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 defines the pass which inserts x86 AVX vzeroupper instructions
11 // before calls to SSE encoded functions. This avoids transition latency
12 // penalty when transferring control between AVX encoded instructions and old
13 // SSE encoding mode.
14 //
15 //===----------------------------------------------------------------------===//
16 
17 #include "X86.h"
18 #include "X86InstrInfo.h"
19 #include "X86Subtarget.h"
20 #include "llvm/ADT/Statistic.h"
21 #include "llvm/CodeGen/MachineFunctionPass.h"
22 #include "llvm/CodeGen/MachineInstrBuilder.h"
23 #include "llvm/CodeGen/MachineRegisterInfo.h"
24 #include "llvm/CodeGen/Passes.h"
25 #include "llvm/Support/Debug.h"
26 #include "llvm/Support/raw_ostream.h"
27 #include "llvm/Target/TargetInstrInfo.h"
28 using namespace llvm;
29 
30 #define DEBUG_TYPE "x86-vzeroupper"
31 
32 STATISTIC(NumVZU, "Number of vzeroupper instructions inserted");
33 
34 namespace {
35 
36   class VZeroUpperInserter : public MachineFunctionPass {
37   public:
38 
39     VZeroUpperInserter() : MachineFunctionPass(ID) {}
40     bool runOnMachineFunction(MachineFunction &MF) override;
41     MachineFunctionProperties getRequiredProperties() const override {
42       return MachineFunctionProperties().set(
43           MachineFunctionProperties::Property::AllVRegsAllocated);
44     }
45     const char *getPassName() const override {return "X86 vzeroupper inserter";}
46 
47   private:
48 
49     void processBasicBlock(MachineBasicBlock &MBB);
50     void insertVZeroUpper(MachineBasicBlock::iterator I,
51                           MachineBasicBlock &MBB);
52     void addDirtySuccessor(MachineBasicBlock &MBB);
53 
54     typedef enum { PASS_THROUGH, EXITS_CLEAN, EXITS_DIRTY } BlockExitState;
55     static const char* getBlockExitStateName(BlockExitState ST);
56 
57     // Core algorithm state:
58     // BlockState - Each block is either:
59     //   - PASS_THROUGH: There are neither YMM dirtying instructions nor
60     //                   vzeroupper instructions in this block.
61     //   - EXITS_CLEAN: There is (or will be) a vzeroupper instruction in this
62     //                  block that will ensure that YMM is clean on exit.
63     //   - EXITS_DIRTY: An instruction in the block dirties YMM and no
64     //                  subsequent vzeroupper in the block clears it.
65     //
66     // AddedToDirtySuccessors - This flag is raised when a block is added to the
67     //                          DirtySuccessors list to ensure that it's not
68     //                          added multiple times.
69     //
70     // FirstUnguardedCall - Records the location of the first unguarded call in
71     //                      each basic block that may need to be guarded by a
72     //                      vzeroupper. We won't know whether it actually needs
73     //                      to be guarded until we discover a predecessor that
74     //                      is DIRTY_OUT.
75     struct BlockState {
76       BlockState() : ExitState(PASS_THROUGH), AddedToDirtySuccessors(false) {}
77       BlockExitState ExitState;
78       bool AddedToDirtySuccessors;
79       MachineBasicBlock::iterator FirstUnguardedCall;
80     };
81     typedef SmallVector<BlockState, 8> BlockStateMap;
82     typedef SmallVector<MachineBasicBlock*, 8> DirtySuccessorsWorkList;
83 
84     BlockStateMap BlockStates;
85     DirtySuccessorsWorkList DirtySuccessors;
86     bool EverMadeChange;
87     bool IsX86INTR;
88     const TargetInstrInfo *TII;
89 
90     static char ID;
91   };
92 
93   char VZeroUpperInserter::ID = 0;
94 }
95 
96 FunctionPass *llvm::createX86IssueVZeroUpperPass() {
97   return new VZeroUpperInserter();
98 }
99 
100 const char* VZeroUpperInserter::getBlockExitStateName(BlockExitState ST) {
101   switch (ST) {
102     case PASS_THROUGH: return "Pass-through";
103     case EXITS_DIRTY: return "Exits-dirty";
104     case EXITS_CLEAN: return "Exits-clean";
105   }
106   llvm_unreachable("Invalid block exit state.");
107 }
108 
109 static bool isYmmReg(unsigned Reg) {
110   return (Reg >= X86::YMM0 && Reg <= X86::YMM15);
111 }
112 
113 static bool checkFnHasLiveInYmm(MachineRegisterInfo &MRI) {
114   for (MachineRegisterInfo::livein_iterator I = MRI.livein_begin(),
115        E = MRI.livein_end(); I != E; ++I)
116     if (isYmmReg(I->first))
117       return true;
118 
119   return false;
120 }
121 
122 static bool clobbersAllYmmRegs(const MachineOperand &MO) {
123   for (unsigned reg = X86::YMM0; reg <= X86::YMM15; ++reg) {
124     if (!MO.clobbersPhysReg(reg))
125       return false;
126   }
127   return true;
128 }
129 
130 static bool hasYmmReg(MachineInstr *MI) {
131   for (const MachineOperand &MO : MI->operands()) {
132     if (MI->isCall() && MO.isRegMask() && !clobbersAllYmmRegs(MO))
133       return true;
134     if (!MO.isReg())
135       continue;
136     if (MO.isDebug())
137       continue;
138     if (isYmmReg(MO.getReg()))
139       return true;
140   }
141   return false;
142 }
143 
144 /// Check if any YMM register will be clobbered by this instruction.
145 static bool callClobbersAnyYmmReg(MachineInstr *MI) {
146   assert(MI->isCall() && "Can only be called on call instructions.");
147   for (const MachineOperand &MO : MI->operands()) {
148     if (!MO.isRegMask())
149       continue;
150     for (unsigned reg = X86::YMM0; reg <= X86::YMM15; ++reg) {
151       if (MO.clobbersPhysReg(reg))
152         return true;
153     }
154   }
155   return false;
156 }
157 
158 /// Insert a vzeroupper instruction before I.
159 void VZeroUpperInserter::insertVZeroUpper(MachineBasicBlock::iterator I,
160                                           MachineBasicBlock &MBB) {
161   DebugLoc dl = I->getDebugLoc();
162   BuildMI(MBB, I, dl, TII->get(X86::VZEROUPPER));
163   ++NumVZU;
164   EverMadeChange = true;
165 }
166 
167 /// Add MBB to the DirtySuccessors list if it hasn't already been added.
168 void VZeroUpperInserter::addDirtySuccessor(MachineBasicBlock &MBB) {
169   if (!BlockStates[MBB.getNumber()].AddedToDirtySuccessors) {
170     DirtySuccessors.push_back(&MBB);
171     BlockStates[MBB.getNumber()].AddedToDirtySuccessors = true;
172   }
173 }
174 
175 /// Loop over all of the instructions in the basic block, inserting vzeroupper
176 /// instructions before function calls.
177 void VZeroUpperInserter::processBasicBlock(MachineBasicBlock &MBB) {
178 
179   // Start by assuming that the block is PASS_THROUGH which implies no unguarded
180   // calls.
181   BlockExitState CurState = PASS_THROUGH;
182   BlockStates[MBB.getNumber()].FirstUnguardedCall = MBB.end();
183 
184   for (MachineBasicBlock::iterator I = MBB.begin(); I != MBB.end(); ++I) {
185     MachineInstr *MI = I;
186     // No need for vzeroupper before iret in interrupt handler function,
187     // epilogue will restore YMM registers if needed.
188     bool IsReturnFromX86INTR = IsX86INTR && MI->isReturn();
189     bool IsControlFlow = MI->isCall() || MI->isReturn();
190 
191     // An existing VZERO* instruction resets the state.
192     if (MI->getOpcode() == X86::VZEROALL ||
193         MI->getOpcode() == X86::VZEROUPPER) {
194       CurState = EXITS_CLEAN;
195       continue;
196     }
197 
198     // Shortcut: don't need to check regular instructions in dirty state.
199     if ((!IsControlFlow || IsReturnFromX86INTR) && CurState == EXITS_DIRTY)
200       continue;
201 
202     if (hasYmmReg(MI)) {
203       // We found a ymm-using instruction; this could be an AVX instruction,
204       // or it could be control flow.
205       CurState = EXITS_DIRTY;
206       continue;
207     }
208 
209     // Check for control-flow out of the current function (which might
210     // indirectly execute SSE instructions).
211     if (!IsControlFlow || IsReturnFromX86INTR)
212       continue;
213 
214     // If the call won't clobber any YMM register, skip it as well. It usually
215     // happens on helper function calls (such as '_chkstk', '_ftol2') where
216     // standard calling convention is not used (RegMask is not used to mark
217     // register clobbered and register usage (def/imp-def/use) is well-defined
218     // and explicitly specified.
219     if (MI->isCall() && !callClobbersAnyYmmReg(MI))
220       continue;
221 
222     // The VZEROUPPER instruction resets the upper 128 bits of all AVX
223     // registers. In addition, the processor changes back to Clean state, after
224     // which execution of SSE instructions or AVX instructions has no transition
225     // penalty. Add the VZEROUPPER instruction before any function call/return
226     // that might execute SSE code.
227     // FIXME: In some cases, we may want to move the VZEROUPPER into a
228     // predecessor block.
229     if (CurState == EXITS_DIRTY) {
230       // After the inserted VZEROUPPER the state becomes clean again, but
231       // other YMM may appear before other subsequent calls or even before
232       // the end of the BB.
233       insertVZeroUpper(I, MBB);
234       CurState = EXITS_CLEAN;
235     } else if (CurState == PASS_THROUGH) {
236       // If this block is currently in pass-through state and we encounter a
237       // call then whether we need a vzeroupper or not depends on whether this
238       // block has successors that exit dirty. Record the location of the call,
239       // and set the state to EXITS_CLEAN, but do not insert the vzeroupper yet.
240       // It will be inserted later if necessary.
241       BlockStates[MBB.getNumber()].FirstUnguardedCall = I;
242       CurState = EXITS_CLEAN;
243     }
244   }
245 
246   DEBUG(dbgs() << "MBB #" << MBB.getNumber() << " exit state: "
247                << getBlockExitStateName(CurState) << '\n');
248 
249   if (CurState == EXITS_DIRTY)
250     for (MachineBasicBlock::succ_iterator SI = MBB.succ_begin(),
251                                           SE = MBB.succ_end();
252          SI != SE; ++SI)
253       addDirtySuccessor(**SI);
254 
255   BlockStates[MBB.getNumber()].ExitState = CurState;
256 }
257 
258 /// Loop over all of the basic blocks, inserting vzeroupper instructions before
259 /// function calls.
260 bool VZeroUpperInserter::runOnMachineFunction(MachineFunction &MF) {
261   const X86Subtarget &ST = MF.getSubtarget<X86Subtarget>();
262   if (!ST.hasAVX() || ST.hasAVX512() || ST.hasFastPartialYMMWrite())
263     return false;
264   TII = ST.getInstrInfo();
265   MachineRegisterInfo &MRI = MF.getRegInfo();
266   EverMadeChange = false;
267   IsX86INTR = MF.getFunction()->getCallingConv() == CallingConv::X86_INTR;
268 
269   bool FnHasLiveInYmm = checkFnHasLiveInYmm(MRI);
270 
271   // Fast check: if the function doesn't use any ymm registers, we don't need
272   // to insert any VZEROUPPER instructions.  This is constant-time, so it is
273   // cheap in the common case of no ymm use.
274   bool YMMUsed = FnHasLiveInYmm;
275   if (!YMMUsed) {
276     const TargetRegisterClass *RC = &X86::VR256RegClass;
277     for (TargetRegisterClass::iterator i = RC->begin(), e = RC->end(); i != e;
278          i++) {
279       if (!MRI.reg_nodbg_empty(*i)) {
280         YMMUsed = true;
281         break;
282       }
283     }
284   }
285   if (!YMMUsed) {
286     return false;
287   }
288 
289   assert(BlockStates.empty() && DirtySuccessors.empty() &&
290          "X86VZeroUpper state should be clear");
291   BlockStates.resize(MF.getNumBlockIDs());
292 
293   // Process all blocks. This will compute block exit states, record the first
294   // unguarded call in each block, and add successors of dirty blocks to the
295   // DirtySuccessors list.
296   for (MachineBasicBlock &MBB : MF)
297     processBasicBlock(MBB);
298 
299   // If any YMM regs are live-in to this function, add the entry block to the
300   // DirtySuccessors list
301   if (FnHasLiveInYmm)
302     addDirtySuccessor(MF.front());
303 
304   // Re-visit all blocks that are successors of EXITS_DIRTY blocks. Add
305   // vzeroupper instructions to unguarded calls, and propagate EXITS_DIRTY
306   // through PASS_THROUGH blocks.
307   while (!DirtySuccessors.empty()) {
308     MachineBasicBlock &MBB = *DirtySuccessors.back();
309     DirtySuccessors.pop_back();
310     BlockState &BBState = BlockStates[MBB.getNumber()];
311 
312     // MBB is a successor of a dirty block, so its first call needs to be
313     // guarded.
314     if (BBState.FirstUnguardedCall != MBB.end())
315       insertVZeroUpper(BBState.FirstUnguardedCall, MBB);
316 
317     // If this successor was a pass-through block, then it is now dirty. Its
318     // successors need to be added to the worklist (if they haven't been
319     // already).
320     if (BBState.ExitState == PASS_THROUGH) {
321       DEBUG(dbgs() << "MBB #" << MBB.getNumber()
322                    << " was Pass-through, is now Dirty-out.\n");
323       for (MachineBasicBlock *Succ : MBB.successors())
324         addDirtySuccessor(*Succ);
325     }
326   }
327 
328   BlockStates.clear();
329   return EverMadeChange;
330 }
331