LLVM 24.0.0git
SelectionDAG.h
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1//===- llvm/CodeGen/SelectionDAG.h - InstSelection DAG ----------*- C++ -*-===//
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// This file declares the SelectionDAG class, and transitively defines the
10// SDNode class and subclasses.
11//
12//===----------------------------------------------------------------------===//
13
14#ifndef LLVM_CODEGEN_SELECTIONDAG_H
15#define LLVM_CODEGEN_SELECTIONDAG_H
16
17#include "llvm/ADT/ArrayRef.h"
18#include "llvm/ADT/DenseMap.h"
19#include "llvm/ADT/DenseSet.h"
20#include "llvm/ADT/FoldingSet.h"
22#include "llvm/ADT/StringMap.h"
23#include "llvm/ADT/ilist.h"
24#include "llvm/ADT/iterator.h"
35#include "llvm/IR/DebugLoc.h"
36#include "llvm/IR/Metadata.h"
46#include <cassert>
47#include <cstdint>
48#include <functional>
49#include <map>
50#include <set>
51#include <string>
52#include <tuple>
53#include <utility>
54#include <vector>
55
56namespace llvm {
57
58class DIExpression;
59class DILabel;
60class DIVariable;
61class Function;
62class Pass;
63class Type;
64template <class GraphType> struct GraphTraits;
65template <typename T, unsigned int N> class SmallSetVector;
66template <typename T, typename Enable> struct FoldingSetTrait;
67class BatchAAResults;
68class BlockAddress;
70class Constant;
71class ConstantFP;
72class ConstantInt;
73class DataLayout;
74struct fltSemantics;
76class FunctionVarLocs;
77class GlobalValue;
78struct KnownBits;
79class LLVMContext;
83class MCSymbol;
86class SDDbgValue;
87class SDDbgOperand;
88class SDDbgLabel;
89class SelectionDAG;
92class TargetLowering;
93class TargetMachine;
95class Value;
96
97template <typename T> class GenericSSAContext;
99template <typename T> class GenericUniformityInfo;
101
103 friend struct FoldingSetTrait<SDVTListNode>;
104
105 /// A reference to an Interned FoldingSetNodeID for this node.
106 /// The Allocator in SelectionDAG holds the data.
107 /// SDVTList contains all types which are frequently accessed in SelectionDAG.
108 /// The size of this list is not expected to be big so it won't introduce
109 /// a memory penalty.
110 FoldingSetNodeIDRef FastID;
111 const EVT *VTs;
112 unsigned int NumVTs;
113
114public:
115 SDVTListNode(const FoldingSetNodeIDRef ID, const EVT *VT, unsigned int Num)
116 : FastID(ID), VTs(VT), NumVTs(Num) {}
117
119 SDVTList result = {VTs, NumVTs};
120 return result;
121 }
122};
123
124/// Specialize FoldingSetTrait for SDVTListNode
125/// to avoid computing temp FoldingSetNodeID.
126template<> struct FoldingSetTrait<SDVTListNode> : DefaultFoldingSetTrait<SDVTListNode> {
127 static void Profile(const SDVTListNode &X, FoldingSetNodeID& ID) {
128 ID = X.FastID;
129 }
130
131 static bool Equals(const SDVTListNode &X, const FoldingSetNodeID &ID,
132 FoldingSetNodeID &TempID) {
133 return ID == X.FastID;
134 }
135};
136
137template <> struct ilist_alloc_traits<SDNode> {
138 static void deleteNode(SDNode *) {
139 llvm_unreachable("ilist_traits<SDNode> shouldn't see a deleteNode call!");
140 }
141};
142
143/// Keeps track of dbg_value information through SDISel. We do
144/// not build SDNodes for these so as not to perturb the generated code;
145/// instead the info is kept off to the side in this structure. Each SDNode may
146/// have one or more associated dbg_value entries. This information is kept in
147/// DbgValMap.
148/// Byval parameters are handled separately because they don't use alloca's,
149/// which busts the normal mechanism. There is good reason for handling all
150/// parameters separately: they may not have code generated for them, they
151/// should always go at the beginning of the function regardless of other code
152/// motion, and debug info for them is potentially useful even if the parameter
153/// is unused. Right now only byval parameters are handled separately.
155 BumpPtrAllocator Alloc;
157 SmallVector<SDDbgValue*, 32> ByvalParmDbgValues;
160 DbgValMapType DbgValMap;
161
162public:
163 SDDbgInfo() = default;
164 SDDbgInfo(const SDDbgInfo &) = delete;
165 SDDbgInfo &operator=(const SDDbgInfo &) = delete;
166
167 LLVM_ABI void add(SDDbgValue *V, bool isParameter);
168
169 void add(SDDbgLabel *L) { DbgLabels.push_back(L); }
170
171 /// Invalidate all DbgValues attached to the node and remove
172 /// it from the Node-to-DbgValues map.
173 LLVM_ABI void erase(const SDNode *Node);
174
175 void clear() {
176 DbgValMap.clear();
177 DbgValues.clear();
178 ByvalParmDbgValues.clear();
179 DbgLabels.clear();
180 Alloc.Reset();
181 }
182
183 BumpPtrAllocator &getAlloc() { return Alloc; }
184
185 bool empty() const {
186 return DbgValues.empty() && ByvalParmDbgValues.empty() && DbgLabels.empty();
187 }
188
190 auto I = DbgValMap.find(Node);
191 if (I != DbgValMap.end())
192 return I->second;
193 return ArrayRef<SDDbgValue*>();
194 }
195
198
199 DbgIterator DbgBegin() { return DbgValues.begin(); }
200 DbgIterator DbgEnd() { return DbgValues.end(); }
201 DbgIterator ByvalParmDbgBegin() { return ByvalParmDbgValues.begin(); }
202 DbgIterator ByvalParmDbgEnd() { return ByvalParmDbgValues.end(); }
203 DbgLabelIterator DbgLabelBegin() { return DbgLabels.begin(); }
204 DbgLabelIterator DbgLabelEnd() { return DbgLabels.end(); }
205};
206
207LLVM_ABI void checkForCycles(const SelectionDAG *DAG, bool force = false);
208
209/// This is used to represent a portion of an LLVM function in a low-level
210/// Data Dependence DAG representation suitable for instruction selection.
211/// This DAG is constructed as the first step of instruction selection in order
212/// to allow implementation of machine specific optimizations
213/// and code simplifications.
214///
215/// The representation used by the SelectionDAG is a target-independent
216/// representation, which has some similarities to the GCC RTL representation,
217/// but is significantly more simple, powerful, and is a graph form instead of a
218/// linear form.
219///
221 const TargetMachine &TM;
222 const SelectionDAGTargetInfo *TSI = nullptr;
223 const TargetLowering *TLI = nullptr;
224 const TargetLibraryInfo *LibInfo = nullptr;
225 const RTLIB::RuntimeLibcallsInfo *RuntimeLibcallInfo = nullptr;
226 const LibcallLoweringInfo *Libcalls = nullptr;
227
228 const FunctionVarLocs *FnVarLocs = nullptr;
229 MachineFunction *MF;
230 MachineFunctionAnalysisManager *MFAM = nullptr;
231 Pass *SDAGISelPass = nullptr;
232 LLVMContext *Context;
233 CodeGenOptLevel OptLevel;
234
235 UniformityInfo *UA = nullptr;
236 FunctionLoweringInfo * FLI = nullptr;
237
238 /// The function-level optimization remark emitter. Used to emit remarks
239 /// whenever manipulating the DAG.
241
242 ProfileSummaryInfo *PSI = nullptr;
243 BlockFrequencyInfo *BFI = nullptr;
244 MachineModuleInfo *MMI = nullptr;
245
246 /// Extended EVTs used for single value VTLists.
247 std::set<EVT, EVT::compareRawBits> EVTs;
248
249 /// List of non-single value types.
250 FoldingSet<SDVTListNode> VTListMap;
251
252 /// Pool allocation for misc. objects that are created once per SelectionDAG.
253 BumpPtrAllocator Allocator;
254
255 /// The starting token.
256 SDNode EntryNode;
257
258 /// The root of the entire DAG.
259 SDValue Root;
260
261 /// A linked list of nodes in the current DAG.
262 ilist<SDNode> AllNodes;
263
264 /// The AllocatorType for allocating SDNodes. We use
265 /// pool allocation with recycling.
266 using NodeAllocatorType = RecyclingAllocator<BumpPtrAllocator, SDNode,
267 sizeof(LargestSDNode),
268 alignof(MostAlignedSDNode)>;
269
270 /// Pool allocation for nodes.
271 NodeAllocatorType NodeAllocator;
272
273 /// This structure is used to memoize nodes, automatically performing
274 /// CSE with existing nodes when a duplicate is requested.
275 FoldingSet<SDNode> CSEMap;
276
277 /// Pool allocation for machine-opcode SDNode operands.
278 BumpPtrAllocator OperandAllocator;
279 ArrayRecycler<SDUse> OperandRecycler;
280
281 /// Tracks dbg_value and dbg_label information through SDISel.
282 SDDbgInfo *DbgInfo;
283
284 using CallSiteInfo = MachineFunction::CallSiteInfo;
285 using CalledGlobalInfo = MachineFunction::CalledGlobalInfo;
286
287 struct NodeExtraInfo {
288 CallSiteInfo CSInfo;
289 MDNode *HeapAllocSite = nullptr;
290 MDNode *PCSections = nullptr;
291 MDNode *MMRA = nullptr;
292 CalledGlobalInfo CalledGlobal{};
293 bool NoMerge = false;
294 };
295 /// Out-of-line extra information for SDNodes.
297
298 /// PersistentId counter to be used when inserting the next
299 /// SDNode to this SelectionDAG. We do not place that under
300 /// `#if LLVM_ENABLE_ABI_BREAKING_CHECKS` intentionally because
301 /// it adds unneeded complexity without noticeable
302 /// benefits (see discussion with @thakis in D120714).
303 uint16_t NextPersistentId = 0;
304
305public:
306 /// Clients of various APIs that cause global effects on
307 /// the DAG can optionally implement this interface. This allows the clients
308 /// to handle the various sorts of updates that happen.
309 ///
310 /// A DAGUpdateListener automatically registers itself with DAG when it is
311 /// constructed, and removes itself when destroyed in RAII fashion.
315
317 : Next(D.UpdateListeners), DAG(D) {
318 DAG.UpdateListeners = this;
319 }
320
322 assert(DAG.UpdateListeners == this &&
323 "DAGUpdateListeners must be destroyed in LIFO order");
324 DAG.UpdateListeners = Next;
325 }
326
327 /// The node N that was deleted and, if E is not null, an
328 /// equivalent node E that replaced it.
329 virtual void NodeDeleted(SDNode *N, SDNode *E);
330
331 /// The node N that was updated.
332 virtual void NodeUpdated(SDNode *N);
333
334 /// The node N that was inserted.
335 virtual void NodeInserted(SDNode *N);
336 };
337
339 std::function<void(SDNode *, SDNode *)> Callback;
340
344
345 void NodeDeleted(SDNode *N, SDNode *E) override { Callback(N, E); }
346
347 private:
348 virtual void anchor();
349 };
350
352 std::function<void(SDNode *)> Callback;
353
357
358 void NodeInserted(SDNode *N) override { Callback(N); }
359
360 private:
361 virtual void anchor();
362 };
363
364 /// Help to insert SDNodeFlags automatically in transforming. Use
365 /// RAII to save and resume flags in current scope.
367 SelectionDAG &DAG;
368 SDNodeFlags Flags;
369 FlagInserter *LastInserter;
370
371 public:
373 : DAG(SDAG), Flags(Flags),
374 LastInserter(SDAG.getFlagInserter()) {
375 SDAG.setFlagInserter(this);
376 }
379
380 FlagInserter(const FlagInserter &) = delete;
382 ~FlagInserter() { DAG.setFlagInserter(LastInserter); }
383
384 SDNodeFlags getFlags() const { return Flags; }
385 };
386
387 /// When true, additional steps are taken to
388 /// ensure that getConstant() and similar functions return DAG nodes that
389 /// have legal types. This is important after type legalization since
390 /// any illegally typed nodes generated after this point will not experience
391 /// type legalization.
393
394private:
395 /// DAGUpdateListener is a friend so it can manipulate the listener stack.
396 friend struct DAGUpdateListener;
397
398 /// Linked list of registered DAGUpdateListener instances.
399 /// This stack is maintained by DAGUpdateListener RAII.
400 DAGUpdateListener *UpdateListeners = nullptr;
401
402 /// Implementation of setSubgraphColor.
403 /// Return whether we had to truncate the search.
404 bool setSubgraphColorHelper(SDNode *N, const char *Color,
405 DenseSet<SDNode *> &visited,
406 int level, bool &printed);
407
408 template <typename SDNodeT, typename... ArgTypes>
409 SDNodeT *newSDNode(ArgTypes &&... Args) {
410 return new (NodeAllocator.template Allocate<SDNodeT>())
411 SDNodeT(std::forward<ArgTypes>(Args)...);
412 }
413
414 /// Build a synthetic SDNodeT with the given args and extract its subclass
415 /// data as an integer (e.g. for use in a folding set).
416 ///
417 /// The args to this function are the same as the args to SDNodeT's
418 /// constructor, except the second arg (assumed to be a const DebugLoc&) is
419 /// omitted.
420 template <typename SDNodeT, typename... ArgTypes>
421 static uint16_t getSyntheticNodeSubclassData(unsigned IROrder,
422 ArgTypes &&... Args) {
423 // The compiler can reduce this expression to a constant iff we pass an
424 // empty DebugLoc. Thankfully, the debug location doesn't have any bearing
425 // on the subclass data.
426 return SDNodeT(IROrder, DebugLoc(), std::forward<ArgTypes>(Args)...)
427 .getRawSubclassData();
428 }
429
430 template <typename SDNodeTy>
431 static uint16_t getSyntheticNodeSubclassData(unsigned Opc, unsigned Order,
432 SDVTList VTs, EVT MemoryVT,
433 MachineMemOperand *MMO) {
434 return SDNodeTy(Opc, Order, DebugLoc(), VTs, MemoryVT, MMO)
435 .getRawSubclassData();
436 }
437
438 template <typename SDNodeTy>
439 static uint16_t getSyntheticNodeSubclassData(
440 unsigned Opc, unsigned Order, SDVTList VTs, EVT MemoryVT,
441 PointerUnion<MachineMemOperand *, MachineMemOperand **> MemRefs) {
442 return SDNodeTy(Opc, Order, DebugLoc(), VTs, MemoryVT, MemRefs)
443 .getRawSubclassData();
444 }
445
446 void createOperands(SDNode *Node, ArrayRef<SDValue> Vals);
447
448 void removeOperands(SDNode *Node) {
449 if (!Node->OperandList)
450 return;
451 OperandRecycler.deallocate(
453 Node->OperandList);
454 Node->NumOperands = 0;
455 Node->OperandList = nullptr;
456 }
457 void CreateTopologicalOrder(std::vector<SDNode*>& Order);
458
459public:
460 // Maximum depth for recursive analysis such as computeKnownBits, etc.
461 static constexpr unsigned MaxRecursionDepth = 6;
462
463 // Returns the maximum steps for SDNode->hasPredecessor() like searches.
464 LLVM_ABI static unsigned getHasPredecessorMaxSteps();
465
467 SelectionDAG(const SelectionDAG &) = delete;
470
471 /// Prepare this SelectionDAG to process code in the given MachineFunction.
473 Pass *PassPtr, const TargetLibraryInfo *LibraryInfo,
474 const LibcallLoweringInfo *LibcallsInfo,
477 FunctionVarLocs const *FnVarLocs);
478
481 const TargetLibraryInfo *LibraryInfo,
482 const LibcallLoweringInfo *LibcallsInfo, UniformityInfo *UA,
484 MachineModuleInfo &MMI, FunctionVarLocs const *FnVarLocs) {
485 init(NewMF, NewORE, nullptr, LibraryInfo, LibcallsInfo, UA, PSIin, BFIin,
486 MMI, FnVarLocs);
487 MFAM = &AM;
488 }
489
491 FLI = FuncInfo;
492 }
493
494 /// Clear state and free memory necessary to make this
495 /// SelectionDAG ready to process a new block.
496 LLVM_ABI void clear();
497
498 MachineFunction &getMachineFunction() const { return *MF; }
499 const Pass *getPass() const { return SDAGISelPass; }
501
502 bool hasSwiftErrorArg() const;
503
504 CodeGenOptLevel getOptLevel() const { return OptLevel; }
505 const DataLayout &getDataLayout() const { return MF->getDataLayout(); }
506 const TargetMachine &getTarget() const { return TM; }
507 const TargetSubtargetInfo &getSubtarget() const { return MF->getSubtarget(); }
508 template <typename STC> const STC &getSubtarget() const {
509 return MF->getSubtarget<STC>();
510 }
511 const TargetLowering &getTargetLoweringInfo() const { return *TLI; }
512 const TargetLibraryInfo &getLibInfo() const { return *LibInfo; }
513
514 const LibcallLoweringInfo &getLibcalls() const { return *Libcalls; }
515
517 return *RuntimeLibcallInfo;
518 }
519
520 const SelectionDAGTargetInfo &getSelectionDAGInfo() const { return *TSI; }
521 const UniformityInfo *getUniformityInfo() const { return UA; }
522 /// Returns the result of the AssignmentTrackingAnalysis pass if it's
523 /// available, otherwise return nullptr.
524 const FunctionVarLocs *getFunctionVarLocs() const { return FnVarLocs; }
525 LLVMContext *getContext() const { return Context; }
526 OptimizationRemarkEmitter &getORE() const { return *ORE; }
527 ProfileSummaryInfo *getPSI() const { return PSI; }
528 BlockFrequencyInfo *getBFI() const { return BFI; }
529 MachineModuleInfo *getMMI() const { return MMI; }
530
531 FlagInserter *getFlagInserter() { return Inserter; }
532 void setFlagInserter(FlagInserter *FI) { Inserter = FI; }
533
534 /// Just dump dot graph to a user-provided path and title.
535 /// This doesn't open the dot viewer program and
536 /// helps visualization when outside debugging session.
537 /// FileName expects absolute path. If provided
538 /// without any path separators then the file
539 /// will be created in the current directory.
540 /// Error will be emitted if the path is insane.
541#if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
542 LLVM_DUMP_METHOD void dumpDotGraph(const Twine &FileName, const Twine &Title);
543#endif
544
545 /// Pop up a GraphViz/gv window with the DAG rendered using 'dot'.
546 LLVM_ABI void viewGraph(const std::string &Title);
547 LLVM_ABI void viewGraph();
548
549#if LLVM_ENABLE_ABI_BREAKING_CHECKS
550 std::map<const SDNode *, std::string> NodeGraphAttrs;
551#endif
552
553 /// Clear all previously defined node graph attributes.
554 /// Intended to be used from a debugging tool (eg. gdb).
556
557 /// Set graph attributes for a node. (eg. "color=red".)
558 LLVM_ABI void setGraphAttrs(const SDNode *N, const char *Attrs);
559
560 /// Get graph attributes for a node. (eg. "color=red".)
561 /// Used from getNodeAttributes.
562 LLVM_ABI std::string getGraphAttrs(const SDNode *N) const;
563
564 /// Convenience for setting node color attribute.
565 LLVM_ABI void setGraphColor(const SDNode *N, const char *Color);
566
567 /// Convenience for setting subgraph color attribute.
568 LLVM_ABI void setSubgraphColor(SDNode *N, const char *Color);
569
571
572 allnodes_const_iterator allnodes_begin() const { return AllNodes.begin(); }
573 allnodes_const_iterator allnodes_end() const { return AllNodes.end(); }
574
576
577 allnodes_iterator allnodes_begin() { return AllNodes.begin(); }
578 allnodes_iterator allnodes_end() { return AllNodes.end(); }
579
581 return AllNodes.size();
582 }
583
590
591 /// Return the root tag of the SelectionDAG.
592 const SDValue &getRoot() const { return Root; }
593
594 /// Return the token chain corresponding to the entry of the function.
596 return SDValue(const_cast<SDNode *>(&EntryNode), 0);
597 }
598
599 /// Set the current root tag of the SelectionDAG.
600 ///
602 assert((!N.getNode() || N.getValueType() == MVT::Other) &&
603 "DAG root value is not a chain!");
604 if (N.getNode())
605 checkForCycles(N.getNode(), this);
606 Root = N;
607 if (N.getNode())
608 checkForCycles(this);
609 return Root;
610 }
611
612#if !defined(NDEBUG) && LLVM_ENABLE_ABI_BREAKING_CHECKS
613 void VerifyDAGDivergence();
614#endif
615
616 /// This iterates over the nodes in the SelectionDAG, folding
617 /// certain types of nodes together, or eliminating superfluous nodes. The
618 /// Level argument controls whether Combine is allowed to produce nodes and
619 /// types that are illegal on the target.
620 LLVM_ABI void Combine(CombineLevel Level, BatchAAResults *BatchAA,
621 CodeGenOptLevel OptLevel);
622
623 /// This transforms the SelectionDAG into a SelectionDAG that
624 /// only uses types natively supported by the target.
625 /// Returns "true" if it made any changes.
626 ///
627 /// Note that this is an involved process that may invalidate pointers into
628 /// the graph.
629 LLVM_ABI bool LegalizeTypes();
630
631 /// This transforms the SelectionDAG into a SelectionDAG that is
632 /// compatible with the target instruction selector, as indicated by the
633 /// TargetLowering object.
634 ///
635 /// Note that this is an involved process that may invalidate pointers into
636 /// the graph.
637 LLVM_ABI void Legalize();
638
639 /// Transforms a SelectionDAG node and any operands to it into a node
640 /// that is compatible with the target instruction selector, as indicated by
641 /// the TargetLowering object.
642 ///
643 /// \returns true if \c N is a valid, legal node after calling this.
644 ///
645 /// This essentially runs a single recursive walk of the \c Legalize process
646 /// over the given node (and its operands). This can be used to incrementally
647 /// legalize the DAG. All of the nodes which are directly replaced,
648 /// potentially including N, are added to the output parameter \c
649 /// UpdatedNodes so that the delta to the DAG can be understood by the
650 /// caller.
651 ///
652 /// When this returns false, N has been legalized in a way that make the
653 /// pointer passed in no longer valid. It may have even been deleted from the
654 /// DAG, and so it shouldn't be used further. When this returns true, the
655 /// N passed in is a legal node, and can be immediately processed as such.
656 /// This may still have done some work on the DAG, and will still populate
657 /// UpdatedNodes with any new nodes replacing those originally in the DAG.
659 SmallSetVector<SDNode *, 16> &UpdatedNodes);
660
661 /// This transforms the SelectionDAG into a SelectionDAG
662 /// that only uses vector math operations supported by the target. This is
663 /// necessary as a separate step from Legalize because unrolling a vector
664 /// operation can introduce illegal types, which requires running
665 /// LegalizeTypes again.
666 ///
667 /// This returns true if it made any changes; in that case, LegalizeTypes
668 /// is called again before Legalize.
669 ///
670 /// Note that this is an involved process that may invalidate pointers into
671 /// the graph.
673
674 /// This method deletes all unreachable nodes in the SelectionDAG.
676
677 /// Remove the specified node from the system. This node must
678 /// have no referrers.
680
681 /// Return an SDVTList that represents the list of values specified.
684 LLVM_ABI SDVTList getVTList(EVT VT1, EVT VT2, EVT VT3);
685 LLVM_ABI SDVTList getVTList(EVT VT1, EVT VT2, EVT VT3, EVT VT4);
687
688 //===--------------------------------------------------------------------===//
689 // Node creation methods.
690
691 /// Create a ConstantSDNode wrapping a constant value.
692 /// If VT is a vector type, the constant is splatted into a BUILD_VECTOR.
693 ///
694 /// If only legal types can be produced, this does the necessary
695 /// transformations (e.g., if the vector element type is illegal).
696 /// @{
698 bool isTarget = false, bool isOpaque = false);
699 LLVM_ABI SDValue getConstant(const APInt &Val, const SDLoc &DL, EVT VT,
700 bool isTarget = false, bool isOpaque = false);
701
702 LLVM_ABI SDValue getSignedConstant(int64_t Val, const SDLoc &DL, EVT VT,
703 bool isTarget = false,
704 bool isOpaque = false);
705
707 bool IsTarget = false,
708 bool IsOpaque = false);
709
710 LLVM_ABI SDValue getConstant(const ConstantInt &Val, const SDLoc &DL, EVT VT,
711 bool isTarget = false, bool isOpaque = false);
713 bool isTarget = false);
715 const SDLoc &DL);
717 const SDLoc &DL);
719 bool isTarget = false);
720
722 bool isOpaque = false) {
723 return getConstant(Val, DL, VT, true, isOpaque);
724 }
725 SDValue getTargetConstant(const APInt &Val, const SDLoc &DL, EVT VT,
726 bool isOpaque = false) {
727 return getConstant(Val, DL, VT, true, isOpaque);
728 }
730 bool isOpaque = false) {
731 return getConstant(Val, DL, VT, true, isOpaque);
732 }
733 SDValue getSignedTargetConstant(int64_t Val, const SDLoc &DL, EVT VT,
734 bool isOpaque = false) {
735 return getSignedConstant(Val, DL, VT, true, isOpaque);
736 }
737
738 /// Create a true or false constant of type \p VT using the target's
739 /// BooleanContent for type \p OpVT.
740 LLVM_ABI SDValue getBoolConstant(bool V, const SDLoc &DL, EVT VT, EVT OpVT);
741 /// @}
742
743 /// Create a ConstantFPSDNode wrapping a constant value.
744 /// If VT is a vector type, the constant is splatted into a BUILD_VECTOR.
745 ///
746 /// If only legal types can be produced, this does the necessary
747 /// transformations (e.g., if the vector element type is illegal).
748 /// The forms that take a double should only be used for simple constants
749 /// that can be exactly represented in VT. No checks are made.
750 /// @{
751 LLVM_ABI SDValue getConstantFP(double Val, const SDLoc &DL, EVT VT,
752 bool isTarget = false);
753 LLVM_ABI SDValue getConstantFP(const APFloat &Val, const SDLoc &DL, EVT VT,
754 bool isTarget = false);
755 LLVM_ABI SDValue getConstantFP(const ConstantFP &V, const SDLoc &DL, EVT VT,
756 bool isTarget = false);
757 SDValue getTargetConstantFP(double Val, const SDLoc &DL, EVT VT) {
758 return getConstantFP(Val, DL, VT, true);
759 }
760 SDValue getTargetConstantFP(const APFloat &Val, const SDLoc &DL, EVT VT) {
761 return getConstantFP(Val, DL, VT, true);
762 }
764 return getConstantFP(Val, DL, VT, true);
765 }
766 /// @}
767
769 EVT VT, int64_t offset = 0,
770 bool isTargetGA = false,
771 unsigned TargetFlags = 0);
773 int64_t offset = 0, unsigned TargetFlags = 0) {
774 return getGlobalAddress(GV, DL, VT, offset, true, TargetFlags);
775 }
777 LLVM_ABI SDValue getFrameIndex(int FI, EVT VT, bool isTarget = false);
779 return getFrameIndex(FI, VT, true);
780 }
781 LLVM_ABI SDValue getJumpTable(int JTI, EVT VT, bool isTarget = false,
782 unsigned TargetFlags = 0);
783 SDValue getTargetJumpTable(int JTI, EVT VT, unsigned TargetFlags = 0) {
784 return getJumpTable(JTI, VT, true, TargetFlags);
785 }
787 const SDLoc &DL);
789 MaybeAlign Align = std::nullopt,
790 int Offs = 0, bool isT = false,
791 unsigned TargetFlags = 0);
793 MaybeAlign Align = std::nullopt, int Offset = 0,
794 unsigned TargetFlags = 0) {
795 return getConstantPool(C, VT, Align, Offset, true, TargetFlags);
796 }
798 MaybeAlign Align = std::nullopt,
799 int Offs = 0, bool isT = false,
800 unsigned TargetFlags = 0);
802 MaybeAlign Align = std::nullopt, int Offset = 0,
803 unsigned TargetFlags = 0) {
804 return getConstantPool(C, VT, Align, Offset, true, TargetFlags);
805 }
806 // When generating a branch to a BB, we don't in general know enough
807 // to provide debug info for the BB at that time, so keep this one around.
809 LLVM_ABI SDValue getExternalSymbol(const char *Sym, EVT VT);
810 LLVM_ABI SDValue getExternalSymbol(RTLIB::LibcallImpl LCImpl, EVT VT);
811 LLVM_ABI SDValue getTargetExternalSymbol(const char *Sym, EVT VT,
812 unsigned TargetFlags = 0);
813 LLVM_ABI SDValue getTargetExternalSymbol(RTLIB::LibcallImpl LCImpl, EVT VT,
814 unsigned TargetFlags = 0);
815
817
821 LLVM_ABI SDValue getEHLabel(const SDLoc &dl, SDValue Root, MCSymbol *Label);
822 LLVM_ABI SDValue getLabelNode(unsigned Opcode, const SDLoc &dl, SDValue Root,
823 MCSymbol *Label);
825 int64_t Offset = 0, bool isTarget = false,
826 unsigned TargetFlags = 0);
828 int64_t Offset = 0, unsigned TargetFlags = 0) {
829 return getBlockAddress(BA, VT, Offset, true, TargetFlags);
830 }
831
833 SDValue N) {
834 return getNode(ISD::CopyToReg, dl, MVT::Other, Chain,
835 getRegister(Reg, N.getValueType()), N);
836 }
837
838 // This version of the getCopyToReg method takes an extra operand, which
839 // indicates that there is potentially an incoming glue value (if Glue is not
840 // null) and that there should be a glue result.
842 SDValue Glue) {
843 SDVTList VTs = getVTList(MVT::Other, MVT::Glue);
844 SDValue Ops[] = { Chain, getRegister(Reg, N.getValueType()), N, Glue };
845 return getNode(ISD::CopyToReg, dl, VTs,
846 ArrayRef(Ops, Glue.getNode() ? 4 : 3));
847 }
848
849 // Similar to last getCopyToReg() except parameter Reg is a SDValue
851 SDValue Glue) {
852 SDVTList VTs = getVTList(MVT::Other, MVT::Glue);
853 SDValue Ops[] = { Chain, Reg, N, Glue };
854 return getNode(ISD::CopyToReg, dl, VTs,
855 ArrayRef(Ops, Glue.getNode() ? 4 : 3));
856 }
857
859 SDVTList VTs = getVTList(VT, MVT::Other);
860 SDValue Ops[] = { Chain, getRegister(Reg, VT) };
861 return getNode(ISD::CopyFromReg, dl, VTs, Ops);
862 }
863
864 // This version of the getCopyFromReg method takes an extra operand, which
865 // indicates that there is potentially an incoming glue value (if Glue is not
866 // null) and that there should be a glue result.
868 SDValue Glue) {
869 SDVTList VTs = getVTList(VT, MVT::Other, MVT::Glue);
870 SDValue Ops[] = { Chain, getRegister(Reg, VT), Glue };
871 return getNode(ISD::CopyFromReg, dl, VTs,
872 ArrayRef(Ops, Glue.getNode() ? 3 : 2));
873 }
874
876
877 /// Return an ISD::VECTOR_SHUFFLE node. The number of elements in VT,
878 /// which must be a vector type, must match the number of mask elements
879 /// NumElts. An integer mask element equal to -1 is treated as undefined.
881 SDValue N2, ArrayRef<int> Mask);
882
883 /// Return an ISD::BUILD_VECTOR node. The number of elements in VT,
884 /// which must be a vector type, must match the number of operands in Ops.
885 /// The operands must have the same type as (or, for integers, a type wider
886 /// than) VT's element type.
888 // VerifySDNode (via InsertNode) checks BUILD_VECTOR later.
889 return getNode(ISD::BUILD_VECTOR, DL, VT, Ops);
890 }
891
892 /// Return an ISD::BUILD_VECTOR node. The number of elements in VT,
893 /// which must be a vector type, must match the number of operands in Ops.
894 /// The operands must have the same type as (or, for integers, a type wider
895 /// than) VT's element type.
897 // VerifySDNode (via InsertNode) checks BUILD_VECTOR later.
898 return getNode(ISD::BUILD_VECTOR, DL, VT, Ops);
899 }
900
901 /// Return a splat ISD::BUILD_VECTOR node, consisting of Op splatted to all
902 /// elements. VT must be a vector type. Op's type must be the same as (or,
903 /// for integers, a type wider than) VT's element type.
905 // VerifySDNode (via InsertNode) checks BUILD_VECTOR later.
906 if (Op.isUndef()) {
907 assert((VT.getVectorElementType() == Op.getValueType() ||
908 (VT.isInteger() &&
909 VT.getVectorElementType().bitsLE(Op.getValueType()))) &&
910 "A splatted value must have a width equal or (for integers) "
911 "greater than the vector element type!");
912 return getNode(ISD::UNDEF, SDLoc(), VT);
913 }
914
916 return getNode(ISD::BUILD_VECTOR, DL, VT, Ops);
917 }
918
919 // Return a splat ISD::SPLAT_VECTOR node, consisting of Op splatted to all
920 // elements.
922 if (Op.isUndef()) {
923 assert((VT.getVectorElementType() == Op.getValueType() ||
924 (VT.isInteger() &&
925 VT.getVectorElementType().bitsLE(Op.getValueType()))) &&
926 "A splatted value must have a width equal or (for integers) "
927 "greater than the vector element type!");
928 return getNode(ISD::UNDEF, SDLoc(), VT);
929 }
930 return getNode(ISD::SPLAT_VECTOR, DL, VT, Op);
931 }
932
933 /// Returns a node representing a splat of one value into all lanes
934 /// of the provided vector type. This is a utility which returns
935 /// either a BUILD_VECTOR or SPLAT_VECTOR depending on the
936 /// scalability of the desired vector type.
938 assert(VT.isVector() && "Can't splat to non-vector type");
939 return VT.isScalableVector() ?
941 }
942
943 /// Returns a vector of type ResVT whose elements contain the linear sequence
944 /// <0, Step, Step * 2, Step * 3, ...>
946 const APInt &StepVal);
947
948 /// Returns a vector of type ResVT whose elements contain the linear sequence
949 /// <0, 1, 2, 3, ...>
950 LLVM_ABI SDValue getStepVector(const SDLoc &DL, EVT ResVT);
951
952 /// Returns an ISD::VECTOR_SHUFFLE node semantically equivalent to
953 /// the shuffle node in input but with swapped operands.
954 ///
955 /// Example: shuffle A, B, <0,5,2,7> -> shuffle B, A, <4,1,6,3>
957
958 /// Extract element at \p Idx from \p Vec. See EXTRACT_VECTOR_ELT
959 /// description for result type handling.
961 unsigned Idx) {
962 return getNode(ISD::EXTRACT_VECTOR_ELT, DL, VT, Vec,
964 }
965
966 /// Insert \p Elt into \p Vec at offset \p Idx. See INSERT_VECTOR_ELT
967 /// description for element type handling.
969 unsigned Idx) {
970 return getNode(ISD::INSERT_VECTOR_ELT, DL, Vec.getValueType(), Vec, Elt,
972 }
973
974 /// Insert \p SubVec at the \p Idx element of \p Vec.
976 unsigned Idx) {
977 return getNode(ISD::INSERT_SUBVECTOR, DL, Vec.getValueType(), Vec, SubVec,
979 }
980
981 /// Return the \p VT typed sub-vector of \p Vec at \p Idx
983 unsigned Idx) {
984 return getNode(ISD::EXTRACT_SUBVECTOR, DL, VT, Vec,
986 }
987
988 /// Convert Op, which must be of float type, to the
989 /// float type VT, by either extending or rounding (by truncation).
991
992 /// Convert Op, which must be a STRICT operation of float type, to the
993 /// float type VT, by either extending or rounding (by truncation).
994 LLVM_ABI std::pair<SDValue, SDValue>
996
997 /// Convert *_EXTEND_VECTOR_INREG to *_EXTEND opcode.
998 static unsigned getOpcode_EXTEND(unsigned Opcode) {
999 switch (Opcode) {
1000 case ISD::ANY_EXTEND:
1002 return ISD::ANY_EXTEND;
1003 case ISD::ZERO_EXTEND:
1005 return ISD::ZERO_EXTEND;
1006 case ISD::SIGN_EXTEND:
1008 return ISD::SIGN_EXTEND;
1009 }
1010 llvm_unreachable("Unknown opcode");
1011 }
1012
1013 /// Convert *_EXTEND to *_EXTEND_VECTOR_INREG opcode.
1014 static unsigned getOpcode_EXTEND_VECTOR_INREG(unsigned Opcode) {
1015 switch (Opcode) {
1016 case ISD::ANY_EXTEND:
1019 case ISD::ZERO_EXTEND:
1022 case ISD::SIGN_EXTEND:
1025 }
1026 llvm_unreachable("Unknown opcode");
1027 }
1028
1029 /// Convert Op, which must be of integer type, to the
1030 /// integer type VT, by either any-extending or truncating it.
1032
1033 /// Convert Op, which must be of integer type, to the
1034 /// integer type VT, by either sign-extending or truncating it.
1036
1037 /// Convert Op, which must be of integer type, to the
1038 /// integer type VT, by either zero-extending or truncating it.
1040
1041 /// Convert Op, which must be of integer type, to the
1042 /// integer type VT, by either any/sign/zero-extending (depending on IsAny /
1043 /// IsSigned) or truncating it.
1045 EVT VT, unsigned Opcode) {
1046 switch(Opcode) {
1047 case ISD::ANY_EXTEND:
1048 return getAnyExtOrTrunc(Op, DL, VT);
1049 case ISD::ZERO_EXTEND:
1050 return getZExtOrTrunc(Op, DL, VT);
1051 case ISD::SIGN_EXTEND:
1052 return getSExtOrTrunc(Op, DL, VT);
1053 }
1054 llvm_unreachable("Unsupported opcode");
1055 }
1056
1057 /// Convert Op, which must be of integer type, to the
1058 /// integer type VT, by either sign/zero-extending (depending on IsSigned) or
1059 /// truncating it.
1060 SDValue getExtOrTrunc(bool IsSigned, SDValue Op, const SDLoc &DL, EVT VT) {
1061 return IsSigned ? getSExtOrTrunc(Op, DL, VT) : getZExtOrTrunc(Op, DL, VT);
1062 }
1063
1064 /// Convert Op, which must be of integer type, to the
1065 /// integer type VT, by first bitcasting (from potential vector) to
1066 /// corresponding scalar type then either any-extending or truncating it.
1068 EVT VT);
1069
1070 /// Convert Op, which must be of integer type, to the
1071 /// integer type VT, by first bitcasting (from potential vector) to
1072 /// corresponding scalar type then either sign-extending or truncating it.
1074
1075 /// Convert Op, which must be of integer type, to the
1076 /// integer type VT, by first bitcasting (from potential vector) to
1077 /// corresponding scalar type then either zero-extending or truncating it.
1079
1080 /// Return the expression required to zero extend the Op
1081 /// value assuming it was the smaller SrcTy value.
1083
1084 /// Convert Op, which must be of integer type, to the integer type VT, by
1085 /// either truncating it or performing either zero or sign extension as
1086 /// appropriate extension for the pointer's semantics.
1088
1089 /// Return the expression required to extend the Op as a pointer value
1090 /// assuming it was the smaller SrcTy value. This may be either a zero extend
1091 /// or a sign extend.
1093
1094 /// Convert Op, which must be of integer type, to the integer type VT,
1095 /// by using an extension appropriate for the target's
1096 /// BooleanContent for type OpVT or truncating it.
1098 EVT OpVT);
1099
1100 /// Create negative operation as (SUB 0, Val).
1101 LLVM_ABI SDValue getNegative(SDValue Val, const SDLoc &DL, EVT VT);
1102
1103 /// Create a bitwise NOT operation as (XOR Val, -1).
1104 LLVM_ABI SDValue getNOT(const SDLoc &DL, SDValue Val, EVT VT);
1105
1106 /// Create a logical NOT operation as (XOR Val, BooleanOne).
1107 LLVM_ABI SDValue getLogicalNOT(const SDLoc &DL, SDValue Val, EVT VT);
1108
1109 /// Returns sum of the base pointer and offset.
1110 /// Unlike getObjectPtrOffset this does not set NoUnsignedWrap and InBounds by
1111 /// default.
1114 const SDNodeFlags Flags = SDNodeFlags());
1117 const SDNodeFlags Flags = SDNodeFlags());
1118
1119 /// Create an add instruction with appropriate flags when used for
1120 /// addressing some offset of an object. i.e. if a load is split into multiple
1121 /// components, create an add nuw (or ptradd nuw inbounds) from the base
1122 /// pointer to the offset.
1127
1129 // The object itself can't wrap around the address space, so it shouldn't be
1130 // possible for the adds of the offsets to the split parts to overflow.
1131 return getMemBasePlusOffset(
1133 }
1134
1135 /// Return a new CALLSEQ_START node, that starts new call frame, in which
1136 /// InSize bytes are set up inside CALLSEQ_START..CALLSEQ_END sequence and
1137 /// OutSize specifies part of the frame set up prior to the sequence.
1139 const SDLoc &DL) {
1140 SDVTList VTs = getVTList(MVT::Other, MVT::Glue);
1141 SDValue Ops[] = { Chain,
1142 getIntPtrConstant(InSize, DL, true),
1143 getIntPtrConstant(OutSize, DL, true) };
1144 return getNode(ISD::CALLSEQ_START, DL, VTs, Ops);
1145 }
1146
1147 /// Return a new CALLSEQ_END node, which always must have a
1148 /// glue result (to ensure it's not CSE'd).
1149 /// CALLSEQ_END does not have a useful SDLoc.
1151 SDValue InGlue, const SDLoc &DL) {
1152 SDVTList NodeTys = getVTList(MVT::Other, MVT::Glue);
1154 Ops.push_back(Chain);
1155 Ops.push_back(Op1);
1156 Ops.push_back(Op2);
1157 if (InGlue.getNode())
1158 Ops.push_back(InGlue);
1159 return getNode(ISD::CALLSEQ_END, DL, NodeTys, Ops);
1160 }
1161
1163 SDValue Glue, const SDLoc &DL) {
1164 return getCALLSEQ_END(
1165 Chain, getIntPtrConstant(Size1, DL, /*isTarget=*/true),
1166 getIntPtrConstant(Size2, DL, /*isTarget=*/true), Glue, DL);
1167 }
1168
1169 /// Return true if the result of this operation is always undefined.
1170 LLVM_ABI bool isUndef(unsigned Opcode, ArrayRef<SDValue> Ops);
1171
1172 /// Return an UNDEF node. UNDEF does not have a useful SDLoc.
1174 return getNode(ISD::UNDEF, SDLoc(), VT);
1175 }
1176
1177 /// Return a POISON node. POISON does not have a useful SDLoc.
1179
1180 /// Return a node that represents the runtime scaling 'MulImm * RuntimeVL'.
1181 LLVM_ABI SDValue getVScale(const SDLoc &DL, EVT VT, APInt MulImm);
1182
1184
1186
1187 /// Return a vector with the first 'Len' lanes set to true and remaining lanes
1188 /// set to false. The mask's ValueType is the same as when comparing vectors
1189 /// of type VT.
1191 ElementCount Len);
1192
1193 /// Return a GLOBAL_OFFSET_TABLE node. This does not have a useful SDLoc.
1197
1198 /// Gets or creates the specified node.
1199 ///
1200 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT,
1202 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT,
1203 ArrayRef<SDValue> Ops, const SDNodeFlags Flags);
1204 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL,
1206 const SDNodeFlags Flags);
1207 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1208 ArrayRef<SDValue> Ops, const SDNodeFlags Flags);
1209
1210 // Use flags from current flag inserter.
1211 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT,
1213 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL,
1215 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1217 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT,
1218 SDValue Operand);
1219 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1220 SDValue N2);
1221 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1222 SDValue N2, SDValue N3);
1223
1224 // Specialize based on number of operands.
1225 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT);
1226 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT,
1227 SDValue Operand, const SDNodeFlags Flags);
1228 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1229 SDValue N2, const SDNodeFlags Flags);
1230 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1231 SDValue N2, SDValue N3, const SDNodeFlags Flags);
1232 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1233 SDValue N2, SDValue N3, SDValue N4);
1234 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1235 SDValue N2, SDValue N3, SDValue N4,
1236 const SDNodeFlags Flags);
1237 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1238 SDValue N2, SDValue N3, SDValue N4, SDValue N5);
1239 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, SDValue N1,
1240 SDValue N2, SDValue N3, SDValue N4, SDValue N5,
1241 const SDNodeFlags Flags);
1242
1243 // Specialize again based on number of operands for nodes with a VTList
1244 // rather than a single VT.
1245 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList);
1246 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1247 SDValue N);
1248 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1249 SDValue N1, SDValue N2);
1250 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1251 SDValue N1, SDValue N2, SDValue N3);
1252 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1253 SDValue N1, SDValue N2, SDValue N3, SDValue N4);
1254 LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, SDVTList VTList,
1255 SDValue N1, SDValue N2, SDValue N3, SDValue N4,
1256 SDValue N5);
1257
1258 /// Compute a TokenFactor to force all the incoming stack arguments to be
1259 /// loaded from the stack. This is used in tail call lowering to protect
1260 /// stack arguments from being clobbered.
1262
1263 /// Lower a memccpy operation into a target library call and return the
1264 /// resulting chain and call result as SelectionDAG SDValues.
1265 LLVM_ABI std::pair<SDValue, SDValue>
1266 getMemccpy(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src,
1267 SDValue C, SDValue Size, const CallInst *CI);
1268
1269 /// Lower a memcmp operation into a target library call and return the
1270 /// resulting chain and call result as SelectionDAG SDValues.
1271 LLVM_ABI std::pair<SDValue, SDValue> getMemcmp(SDValue Chain, const SDLoc &dl,
1272 SDValue Dst, SDValue Src,
1273 SDValue Size,
1274 const CallInst *CI);
1275
1276 /// Lower a strcmp operation into a target library call and return the
1277 /// resulting chain and call result as SelectionDAG SDValues.
1278 LLVM_ABI std::pair<SDValue, SDValue> getStrcmp(SDValue Chain, const SDLoc &dl,
1279 SDValue S0, SDValue S1,
1280 const CallInst *CI);
1281
1282 /// Lower a strcpy operation into a target library call and return the
1283 /// resulting chain and call result as SelectionDAG SDValues.
1284 LLVM_ABI std::pair<SDValue, SDValue> getStrcpy(SDValue Chain, const SDLoc &dl,
1285 SDValue Dst, SDValue Src,
1286 const CallInst *CI);
1287
1288 /// Lower a strlen operation into a target library call and return the
1289 /// resulting chain and call result as SelectionDAG SDValues.
1290 LLVM_ABI std::pair<SDValue, SDValue>
1291 getStrlen(SDValue Chain, const SDLoc &dl, SDValue Src, const CallInst *CI);
1292
1293 /// Lower a strstr operation into a target library call and return the
1294 /// resulting chain and call result as SelectionDAG SDValues.
1295 LLVM_ABI std::pair<SDValue, SDValue> getStrstr(SDValue Chain, const SDLoc &dl,
1296 SDValue S0, SDValue S1,
1297 const CallInst *CI);
1298
1299 /* \p CI if not null is the memset call being lowered.
1300 * \p OverrideTailCall is an optional parameter that can be used to override
1301 * the tail call optimization decision. */
1303 SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size,
1304 Align DstAlign, Align SrcAlign, bool isVol, bool AlwaysInline,
1305 const CallInst *CI, std::optional<bool> OverrideTailCall,
1306 MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo,
1307 const AAMDNodes &AAInfo = AAMDNodes(), BatchAAResults *BatchAA = nullptr);
1308
1309 /* \p CI if not null is the memset call being lowered.
1310 * \p OverrideTailCall is an optional parameter that can be used to override
1311 * the tail call optimization decision. */
1312 LLVM_ABI SDValue getMemmove(SDValue Chain, const SDLoc &dl, SDValue Dst,
1313 SDValue Src, SDValue Size, Align DstAlign,
1314 Align SrcAlign, bool isVol, const CallInst *CI,
1315 std::optional<bool> OverrideTailCall,
1316 MachinePointerInfo DstPtrInfo,
1317 MachinePointerInfo SrcPtrInfo,
1318 const AAMDNodes &AAInfo = AAMDNodes(),
1319 BatchAAResults *BatchAA = nullptr);
1320
1321 LLVM_ABI SDValue getMemset(SDValue Chain, const SDLoc &dl, SDValue Dst,
1322 SDValue Src, SDValue Size, Align Alignment,
1323 bool isVol, bool AlwaysInline, const CallInst *CI,
1324 MachinePointerInfo DstPtrInfo,
1325 const AAMDNodes &AAInfo = AAMDNodes());
1326
1327 LLVM_ABI SDValue getAtomicMemcpy(SDValue Chain, const SDLoc &dl, SDValue Dst,
1328 SDValue Src, SDValue Size, Type *SizeTy,
1329 unsigned ElemSz, bool isTailCall,
1330 MachinePointerInfo DstPtrInfo,
1331 MachinePointerInfo SrcPtrInfo);
1332
1333 LLVM_ABI SDValue getAtomicMemmove(SDValue Chain, const SDLoc &dl, SDValue Dst,
1334 SDValue Src, SDValue Size, Type *SizeTy,
1335 unsigned ElemSz, bool isTailCall,
1336 MachinePointerInfo DstPtrInfo,
1337 MachinePointerInfo SrcPtrInfo);
1338
1339 LLVM_ABI SDValue getAtomicMemset(SDValue Chain, const SDLoc &dl, SDValue Dst,
1340 SDValue Value, SDValue Size, Type *SizeTy,
1341 unsigned ElemSz, bool isTailCall,
1342 MachinePointerInfo DstPtrInfo);
1343
1344 /// Helper function to make it easier to build SetCC's if you just have an
1345 /// ISD::CondCode instead of an SDValue.
1347 ISD::CondCode Cond, SDValue Chain = SDValue(),
1348 bool IsSignaling = false, SDNodeFlags Flags = {}) {
1349 assert(LHS.getValueType().isVector() == RHS.getValueType().isVector() &&
1350 "Vector/scalar operand type mismatch for setcc");
1351 assert(LHS.getValueType().isVector() == VT.isVector() &&
1352 "Vector/scalar result type mismatch for setcc");
1354 "Cannot create a setCC of an invalid node.");
1355 if (Chain)
1356 return getNode(IsSignaling ? ISD::STRICT_FSETCCS : ISD::STRICT_FSETCC, DL,
1357 {VT, MVT::Other}, {Chain, LHS, RHS, getCondCode(Cond)},
1358 Flags);
1359 return getNode(ISD::SETCC, DL, VT, LHS, RHS, getCondCode(Cond), Flags);
1360 }
1361
1362 /// Helper function to make it easier to build Select's if you just have
1363 /// operands and don't want to check for vector.
1365 SDValue RHS, SDNodeFlags Flags = SDNodeFlags()) {
1366 assert(LHS.getValueType() == VT && RHS.getValueType() == VT &&
1367 "Cannot use select on differing types");
1368 auto Opcode = Cond.getValueType().isVector() ? ISD::VSELECT : ISD::SELECT;
1369 return getNode(Opcode, DL, VT, Cond, LHS, RHS, Flags);
1370 }
1371
1372 /// Helper function to make it easier to build SelectCC's if you just have an
1373 /// ISD::CondCode instead of an SDValue.
1375 SDValue False, ISD::CondCode Cond,
1376 SDNodeFlags Flags = SDNodeFlags()) {
1377 return getNode(ISD::SELECT_CC, DL, True.getValueType(), LHS, RHS, True,
1378 False, getCondCode(Cond), Flags);
1379 }
1380
1381 /// Try to simplify a select/vselect into 1 of its operands or a constant.
1383
1384 /// Try to simplify a shift into 1 of its operands or a constant.
1386
1387 /// Try to simplify a floating-point binary operation into 1 of its operands
1388 /// or a constant.
1389 LLVM_ABI SDValue simplifyFPBinop(unsigned Opcode, SDValue X, SDValue Y,
1390 SDNodeFlags Flags);
1391
1392 /// VAArg produces a result and token chain, and takes a pointer
1393 /// and a source value as input.
1394 LLVM_ABI SDValue getVAArg(EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr,
1395 SDValue SV, unsigned Align);
1396
1397 /// Gets a node for an atomic cmpxchg op. There are two
1398 /// valid Opcodes. ISD::ATOMIC_CMO_SWAP produces the value loaded and a
1399 /// chain result. ISD::ATOMIC_CMP_SWAP_WITH_SUCCESS produces the value loaded,
1400 /// a success flag (initially i1), and a chain.
1401 LLVM_ABI SDValue getAtomicCmpSwap(unsigned Opcode, const SDLoc &dl, EVT MemVT,
1402 SDVTList VTs, SDValue Chain, SDValue Ptr,
1403 SDValue Cmp, SDValue Swp,
1404 MachineMemOperand *MMO);
1405
1406 /// Gets a node for an atomic op, produces result (if relevant)
1407 /// and chain and takes 2 operands.
1408 LLVM_ABI SDValue getAtomic(unsigned Opcode, const SDLoc &dl, EVT MemVT,
1409 SDValue Chain, SDValue Ptr, SDValue Val,
1410 MachineMemOperand *MMO);
1411
1412 /// Gets a node for an atomic op, produces result and chain and takes N
1413 /// operands.
1414 LLVM_ABI SDValue getAtomic(unsigned Opcode, const SDLoc &dl, EVT MemVT,
1416 MachineMemOperand *MMO,
1418
1420 EVT MemVT, EVT VT, SDValue Chain, SDValue Ptr,
1421 MachineMemOperand *MMO);
1422
1423 /// Creates a MemIntrinsicNode that may produce a
1424 /// result and takes a list of operands. Opcode may be INTRINSIC_VOID,
1425 /// INTRINSIC_W_CHAIN, or a target-specific memory-referencing opcode
1426 // (see `SelectionDAGTargetInfo::isTargetMemoryOpcode`).
1428 unsigned Opcode, const SDLoc &dl, SDVTList VTList, ArrayRef<SDValue> Ops,
1429 EVT MemVT, MachinePointerInfo PtrInfo, Align Alignment,
1433 const AAMDNodes &AAInfo = AAMDNodes());
1434
1436 unsigned Opcode, const SDLoc &dl, SDVTList VTList, ArrayRef<SDValue> Ops,
1437 EVT MemVT, MachinePointerInfo PtrInfo,
1438 MaybeAlign Alignment = std::nullopt,
1442 const AAMDNodes &AAInfo = AAMDNodes()) {
1443 // Ensure that codegen never sees alignment 0
1444 return getMemIntrinsicNode(Opcode, dl, VTList, Ops, MemVT, PtrInfo,
1445 Alignment.value_or(getEVTAlign(MemVT)), Flags,
1446 Size, AAInfo);
1447 }
1448
1449 LLVM_ABI SDValue getMemIntrinsicNode(unsigned Opcode, const SDLoc &dl,
1451 EVT MemVT, MachineMemOperand *MMO);
1452
1453 /// getMemIntrinsicNode - Creates a MemIntrinsicNode with multiple MMOs.
1454 LLVM_ABI SDValue getMemIntrinsicNode(unsigned Opcode, const SDLoc &dl,
1456 EVT MemVT,
1458
1459 /// Creates a LifetimeSDNode that starts (`IsStart==true`) or ends
1460 /// (`IsStart==false`) the lifetime of the `FrameIndex`.
1461 LLVM_ABI SDValue getLifetimeNode(bool IsStart, const SDLoc &dl, SDValue Chain,
1462 int FrameIndex);
1463
1464 /// Creates a PseudoProbeSDNode with function GUID `Guid` and
1465 /// the index of the block `Index` it is probing, as well as the attributes
1466 /// `attr` of the probe.
1468 uint64_t Guid, uint64_t Index,
1469 uint32_t Attr);
1470
1471 /// Create a MERGE_VALUES node from the given operands.
1473
1474 /// Return poison values for each of \p ResultTypes, substituting \p Chain
1475 /// for any result of type MVT::Other, merged into a single MERGE_VALUES
1476 /// node. Used to salvage a chain when an operation cannot be lowered due
1477 /// to an error, and the program will be discarded.
1479 const SDLoc &dl);
1480
1481 /// Loads are not normal binary operators: their result type is not
1482 /// determined by their operands, and they produce a value AND a token chain.
1483 ///
1484 /// This function will set the MOLoad flag on MMOFlags, but you can set it if
1485 /// you want. The MOStore flag must not be set.
1487 getLoad(EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr,
1488 MachinePointerInfo PtrInfo, MaybeAlign Alignment = MaybeAlign(),
1490 const MMOMetadata &Metadata = MMOMetadata());
1491 LLVM_ABI SDValue getLoad(EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr,
1492 MachineMemOperand *MMO);
1494 getExtLoad(ISD::LoadExtType ExtType, const SDLoc &dl, EVT VT, SDValue Chain,
1495 SDValue Ptr, MachinePointerInfo PtrInfo, EVT MemVT,
1496 MaybeAlign Alignment = MaybeAlign(),
1498 const MMOMetadata &Metadata = MMOMetadata());
1499 LLVM_ABI SDValue getExtLoad(ISD::LoadExtType ExtType, const SDLoc &dl, EVT VT,
1500 SDValue Chain, SDValue Ptr, EVT MemVT,
1501 MachineMemOperand *MMO);
1502 LLVM_ABI SDValue getIndexedLoad(SDValue OrigLoad, const SDLoc &dl,
1507 const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue Offset,
1508 MachinePointerInfo PtrInfo, EVT MemVT, Align Alignment,
1510 const MMOMetadata &Metadata = MMOMetadata());
1511 inline SDValue
1513 const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue Offset,
1514 MachinePointerInfo PtrInfo, EVT MemVT,
1515 MaybeAlign Alignment = MaybeAlign(),
1517 const MMOMetadata &Metadata = MMOMetadata()) {
1518 // Ensures that codegen never sees a None Alignment.
1519 return getLoad(AM, ExtType, VT, dl, Chain, Ptr, Offset, PtrInfo, MemVT,
1520 Alignment.value_or(getEVTAlign(MemVT)), MMOFlags, Metadata);
1521 }
1523 EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr,
1524 SDValue Offset, EVT MemVT, MachineMemOperand *MMO);
1525
1526 /// Helper function to build ISD::STORE nodes.
1527 ///
1528 /// This function will set the MOStore flag on MMOFlags, but you can set it if
1529 /// you want. The MOLoad and MOInvariant flags must not be set.
1530
1532 getStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr,
1533 MachinePointerInfo PtrInfo, Align Alignment,
1535 const MMOMetadata &Metadata = MMOMetadata());
1536 inline SDValue
1537 getStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr,
1538 MachinePointerInfo PtrInfo, MaybeAlign Alignment = MaybeAlign(),
1540 const MMOMetadata &Metadata = MMOMetadata()) {
1541 return getStore(Chain, dl, Val, Ptr, PtrInfo,
1542 Alignment.value_or(getEVTAlign(Val.getValueType())),
1543 MMOFlags, Metadata);
1544 }
1545 LLVM_ABI SDValue getStore(SDValue Chain, const SDLoc &dl, SDValue Val,
1546 SDValue Ptr, MachineMemOperand *MMO);
1548 SDValue Ptr, SDValue Offset,
1549 MachineMemOperand *MMO);
1551 SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, SDValue Offset,
1552 MachinePointerInfo PtrInfo, EVT SVT, Align Alignment,
1554 const MMOMetadata &Metadata = MMOMetadata());
1556 getTruncStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr,
1557 MachinePointerInfo PtrInfo, EVT SVT, Align Alignment,
1559 const MMOMetadata &Metadata = MMOMetadata());
1560 LLVM_ABI SDValue getTruncStore(SDValue Chain, const SDLoc &dl, SDValue Val,
1561 SDValue Ptr, SDValue Offset, EVT SVT,
1562 MachineMemOperand *MMO);
1563
1564 inline SDValue
1565 getTruncStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr,
1566 MachinePointerInfo PtrInfo, EVT SVT,
1567 MaybeAlign Alignment = MaybeAlign(),
1569 const MMOMetadata &Metadata = MMOMetadata()) {
1570 return getTruncStore(Chain, dl, Val, Ptr, PtrInfo, SVT,
1571 Alignment.value_or(getEVTAlign(SVT)), MMOFlags,
1572 Metadata);
1573 }
1574 LLVM_ABI SDValue getTruncStore(SDValue Chain, const SDLoc &dl, SDValue Val,
1575 SDValue Ptr, EVT SVT, MachineMemOperand *MMO);
1576 LLVM_ABI SDValue getIndexedStore(SDValue OrigStore, const SDLoc &dl,
1579 LLVM_ABI SDValue getStore(SDValue Chain, const SDLoc &dl, SDValue Val,
1580 SDValue Ptr, SDValue Offset, EVT SVT,
1582 bool IsTruncating = false);
1583
1585 EVT VT, const SDLoc &dl, SDValue Chain,
1586 SDValue Ptr, SDValue Offset, SDValue Mask,
1587 SDValue EVL, MachinePointerInfo PtrInfo, EVT MemVT,
1588 Align Alignment, MachineMemOperand::Flags MMOFlags,
1589 const AAMDNodes &AAInfo,
1590 const MDNode *Ranges = nullptr,
1591 bool IsExpanding = false);
1592 inline SDValue
1594 const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue Offset,
1595 SDValue Mask, SDValue EVL, MachinePointerInfo PtrInfo, EVT MemVT,
1596 MaybeAlign Alignment = MaybeAlign(),
1598 const AAMDNodes &AAInfo = AAMDNodes(),
1599 const MDNode *Ranges = nullptr, bool IsExpanding = false) {
1600 // Ensures that codegen never sees a None Alignment.
1601 return getLoadVP(AM, ExtType, VT, dl, Chain, Ptr, Offset, Mask, EVL,
1602 PtrInfo, MemVT, Alignment.value_or(getEVTAlign(MemVT)),
1603 MMOFlags, AAInfo, Ranges, IsExpanding);
1604 }
1606 EVT VT, const SDLoc &dl, SDValue Chain,
1607 SDValue Ptr, SDValue Offset, SDValue Mask,
1608 SDValue EVL, EVT MemVT, MachineMemOperand *MMO,
1609 bool IsExpanding = false);
1610 LLVM_ABI SDValue getLoadVP(EVT VT, const SDLoc &dl, SDValue Chain,
1611 SDValue Ptr, SDValue Mask, SDValue EVL,
1612 MachinePointerInfo PtrInfo, MaybeAlign Alignment,
1613 MachineMemOperand::Flags MMOFlags,
1614 const AAMDNodes &AAInfo,
1615 const MDNode *Ranges = nullptr,
1616 bool IsExpanding = false);
1617 LLVM_ABI SDValue getLoadVP(EVT VT, const SDLoc &dl, SDValue Chain,
1618 SDValue Ptr, SDValue Mask, SDValue EVL,
1619 MachineMemOperand *MMO, bool IsExpanding = false);
1621 ISD::LoadExtType ExtType, const SDLoc &dl, EVT VT, SDValue Chain,
1622 SDValue Ptr, SDValue Mask, SDValue EVL, MachinePointerInfo PtrInfo,
1623 EVT MemVT, MaybeAlign Alignment, MachineMemOperand::Flags MMOFlags,
1624 const AAMDNodes &AAInfo, bool IsExpanding = false);
1626 EVT VT, SDValue Chain, SDValue Ptr,
1627 SDValue Mask, SDValue EVL, EVT MemVT,
1628 MachineMemOperand *MMO,
1629 bool IsExpanding = false);
1630 LLVM_ABI SDValue getIndexedLoadVP(SDValue OrigLoad, const SDLoc &dl,
1633 LLVM_ABI SDValue getStoreVP(SDValue Chain, const SDLoc &dl, SDValue Val,
1634 SDValue Ptr, SDValue Offset, SDValue Mask,
1635 SDValue EVL, EVT MemVT, MachineMemOperand *MMO,
1636 ISD::MemIndexedMode AM, bool IsTruncating = false,
1637 bool IsCompressing = false);
1638 LLVM_ABI SDValue getTruncStoreVP(SDValue Chain, const SDLoc &dl, SDValue Val,
1639 SDValue Ptr, SDValue Mask, SDValue EVL,
1640 MachinePointerInfo PtrInfo, EVT SVT,
1641 Align Alignment,
1642 MachineMemOperand::Flags MMOFlags,
1643 const AAMDNodes &AAInfo,
1644 bool IsCompressing = false);
1645 LLVM_ABI SDValue getTruncStoreVP(SDValue Chain, const SDLoc &dl, SDValue Val,
1646 SDValue Ptr, SDValue Mask, SDValue EVL,
1647 EVT SVT, MachineMemOperand *MMO,
1648 bool IsCompressing = false);
1649 LLVM_ABI SDValue getIndexedStoreVP(SDValue OrigStore, const SDLoc &dl,
1652
1654 ISD::MemIndexedMode AM, ISD::LoadExtType ExtType, EVT VT, const SDLoc &DL,
1655 SDValue Chain, SDValue Ptr, SDValue Offset, SDValue Stride, SDValue Mask,
1656 SDValue EVL, EVT MemVT, MachineMemOperand *MMO, bool IsExpanding = false);
1658 SDValue Ptr, SDValue Stride, SDValue Mask,
1659 SDValue EVL, MachineMemOperand *MMO,
1660 bool IsExpanding = false);
1662 const SDLoc &DL, EVT VT, SDValue Chain,
1663 SDValue Ptr, SDValue Stride,
1664 SDValue Mask, SDValue EVL, EVT MemVT,
1665 MachineMemOperand *MMO,
1666 bool IsExpanding = false);
1668 SDValue Val, SDValue Ptr, SDValue Offset,
1669 SDValue Stride, SDValue Mask, SDValue EVL,
1670 EVT MemVT, MachineMemOperand *MMO,
1672 bool IsTruncating = false,
1673 bool IsCompressing = false);
1675 SDValue Val, SDValue Ptr,
1676 SDValue Stride, SDValue Mask,
1677 SDValue EVL, EVT SVT,
1678 MachineMemOperand *MMO,
1679 bool IsCompressing = false);
1680
1681 LLVM_ABI SDValue getGatherVP(SDVTList VTs, EVT VT, const SDLoc &dl,
1683 ISD::MemIndexType IndexType);
1684 LLVM_ABI SDValue getScatterVP(SDVTList VTs, EVT VT, const SDLoc &dl,
1686 ISD::MemIndexType IndexType);
1687
1688 LLVM_ABI SDValue getMaskedLoad(EVT VT, const SDLoc &dl, SDValue Chain,
1690 SDValue Src0, EVT MemVT,
1692 ISD::LoadExtType, bool IsExpanding = false);
1696 LLVM_ABI SDValue getMaskedStore(SDValue Chain, const SDLoc &dl, SDValue Val,
1698 EVT MemVT, MachineMemOperand *MMO,
1700 bool IsTruncating = false,
1701 bool IsCompressing = false);
1702 LLVM_ABI SDValue getIndexedMaskedStore(SDValue OrigStore, const SDLoc &dl,
1705 LLVM_ABI SDValue getMaskedGather(SDVTList VTs, EVT MemVT, const SDLoc &dl,
1707 MachineMemOperand *MMO,
1708 ISD::MemIndexType IndexType,
1709 ISD::LoadExtType ExtTy);
1710 LLVM_ABI SDValue getMaskedScatter(SDVTList VTs, EVT MemVT, const SDLoc &dl,
1712 MachineMemOperand *MMO,
1713 ISD::MemIndexType IndexType,
1714 bool IsTruncating = false);
1715 LLVM_ABI SDValue getMaskedHistogram(SDVTList VTs, EVT MemVT, const SDLoc &dl,
1717 MachineMemOperand *MMO,
1718 ISD::MemIndexType IndexType);
1719 LLVM_ABI SDValue getLoadFFVP(EVT VT, const SDLoc &DL, SDValue Chain,
1720 SDValue Ptr, SDValue Mask, SDValue EVL,
1721 MachineMemOperand *MMO);
1722
1723 LLVM_ABI SDValue getGetFPEnv(SDValue Chain, const SDLoc &dl, SDValue Ptr,
1724 EVT MemVT, MachineMemOperand *MMO);
1725 LLVM_ABI SDValue getSetFPEnv(SDValue Chain, const SDLoc &dl, SDValue Ptr,
1726 EVT MemVT, MachineMemOperand *MMO);
1727
1728 /// Construct a node to track a Value* through the backend.
1730
1731 /// Return an MDNodeSDNode which holds an MDNode.
1732 LLVM_ABI SDValue getMDNode(const MDNode *MD);
1733
1734 /// Return a bitcast using the SDLoc of the value operand, and casting to the
1735 /// provided type. Use getNode to set a custom SDLoc.
1737
1738 /// Return an AddrSpaceCastSDNode.
1739 LLVM_ABI SDValue getAddrSpaceCast(const SDLoc &dl, EVT VT, SDValue Ptr,
1740 unsigned SrcAS, unsigned DestAS);
1741
1742 /// Return a freeze using the SDLoc of the value operand.
1744
1745 /// Return a freeze of V if any of the demanded elts may be undef or poison.
1746 /// \p Kind can be used to selectively freeze poison and/or undef bits only.
1748 getFreeze(SDValue V, const APInt &DemandedElts,
1750
1751 /// Return an AssertAlignSDNode.
1753
1754 /// Swap N1 and N2 if Opcode is a commutative binary opcode
1755 /// and the canonical form expects the opposite order.
1756 LLVM_ABI void canonicalizeCommutativeBinop(unsigned Opcode, SDValue &N1,
1757 SDValue &N2) const;
1758
1759 /// Return the specified value casted to
1760 /// the target's desired shift amount type.
1762
1763 /// Expand the specified \c ISD::VAARG node as the Legalize pass would.
1765
1766 /// Expand the specified \c ISD::VACOPY node as the Legalize pass would.
1768
1769 /// Return a GlobalAddress of the function from the current module with
1770 /// name matching the given ExternalSymbol. Additionally can provide the
1771 /// matched function.
1772 /// Panic if the function doesn't exist.
1774 SDValue Op, Function **TargetFunction = nullptr);
1775
1776 /// *Mutate* the specified node in-place to have the
1777 /// specified operands. If the resultant node already exists in the DAG,
1778 /// this does not modify the specified node, instead it returns the node that
1779 /// already exists. If the resultant node does not exist in the DAG, the
1780 /// input node is returned. As a degenerate case, if you specify the same
1781 /// input operands as the node already has, the input node is returned.
1785 SDValue Op3);
1787 SDValue Op3, SDValue Op4);
1789 SDValue Op3, SDValue Op4, SDValue Op5);
1791
1792 /// Creates a new TokenFactor containing \p Vals. If \p Vals contains 64k
1793 /// values or more, move values into new TokenFactors in 64k-1 blocks, until
1794 /// the final TokenFactor has less than 64k operands.
1797
1798 /// *Mutate* the specified machine node's memory references to the provided
1799 /// list.
1802
1803 // Calculate divergence of node \p N based on its operands.
1805
1806 // Propagates the change in divergence to users
1808
1809 /// These are used for target selectors to *mutate* the
1810 /// specified node to have the specified return type, Target opcode, and
1811 /// operands. Note that target opcodes are stored as
1812 /// ~TargetOpcode in the node opcode field. The resultant node is returned.
1813 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT);
1814 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT,
1815 SDValue Op1);
1816 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT,
1817 SDValue Op1, SDValue Op2);
1818 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT,
1819 SDValue Op1, SDValue Op2, SDValue Op3);
1820 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT,
1822 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT1,
1823 EVT VT2);
1824 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT1,
1826 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT1,
1827 EVT VT2, EVT VT3, ArrayRef<SDValue> Ops);
1828 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT1,
1829 EVT VT2, SDValue Op1, SDValue Op2);
1830 LLVM_ABI SDNode *SelectNodeTo(SDNode *N, unsigned MachineOpc, SDVTList VTs,
1832
1833 /// This *mutates* the specified node to have the specified
1834 /// return type, opcode, and operands.
1835 LLVM_ABI SDNode *MorphNodeTo(SDNode *N, unsigned Opc, SDVTList VTs,
1837
1838 /// Mutate the specified strict FP node to its non-strict equivalent,
1839 /// unlinking the node from its chain and dropping the metadata arguments.
1840 /// The node must be a strict FP node.
1842
1843 /// These are used for target selectors to create a new node
1844 /// with specified return type(s), MachineInstr opcode, and operands.
1845 ///
1846 /// Note that getMachineNode returns the resultant node. If there is already
1847 /// a node of the specified opcode and operands, it returns that node instead
1848 /// of the current one.
1849 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1850 EVT VT);
1851 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1852 EVT VT, SDValue Op1);
1853 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1854 EVT VT, SDValue Op1, SDValue Op2);
1855 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1856 EVT VT, SDValue Op1, SDValue Op2,
1857 SDValue Op3);
1858 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1860 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1861 EVT VT1, EVT VT2, SDValue Op1,
1862 SDValue Op2);
1863 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1864 EVT VT1, EVT VT2, SDValue Op1,
1865 SDValue Op2, SDValue Op3);
1866 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1867 EVT VT1, EVT VT2,
1869 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1870 EVT VT1, EVT VT2, EVT VT3, SDValue Op1,
1871 SDValue Op2);
1872 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1873 EVT VT1, EVT VT2, EVT VT3, SDValue Op1,
1874 SDValue Op2, SDValue Op3);
1875 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1876 EVT VT1, EVT VT2, EVT VT3,
1878 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1879 ArrayRef<EVT> ResultTys,
1881 LLVM_ABI MachineSDNode *getMachineNode(unsigned Opcode, const SDLoc &dl,
1883
1884 /// A convenience function for creating TargetInstrInfo::EXTRACT_SUBREG nodes.
1885 LLVM_ABI SDValue getTargetExtractSubreg(int SRIdx, const SDLoc &DL, EVT VT,
1886 SDValue Operand);
1887
1888 /// A convenience function for creating TargetInstrInfo::INSERT_SUBREG nodes.
1889 LLVM_ABI SDValue getTargetInsertSubreg(int SRIdx, const SDLoc &DL, EVT VT,
1890 SDValue Operand, SDValue Subreg);
1891
1892 /// Get the specified node if it's already available, or else return NULL.
1893 LLVM_ABI SDNode *getNodeIfExists(unsigned Opcode, SDVTList VTList,
1895 const SDNodeFlags Flags,
1896 bool AllowCommute = false);
1897 LLVM_ABI SDNode *getNodeIfExists(unsigned Opcode, SDVTList VTList,
1899 bool AllowCommute = false);
1900
1901 /// Check if a node exists without modifying its flags.
1902 LLVM_ABI bool doesNodeExist(unsigned Opcode, SDVTList VTList,
1904
1905 /// Creates a SDDbgValue node.
1907 SDNode *N, unsigned R, bool IsIndirect,
1908 const DebugLoc &DL, unsigned O);
1909
1910 /// Creates a constant SDDbgValue node.
1912 const Value *C, const DebugLoc &DL,
1913 unsigned O);
1914
1915 /// Creates a FrameIndex SDDbgValue node.
1917 DIExpression *Expr, unsigned FI,
1918 bool IsIndirect,
1919 const DebugLoc &DL, unsigned O);
1920
1921 /// Creates a FrameIndex SDDbgValue node.
1923 DIExpression *Expr, unsigned FI,
1924 ArrayRef<SDNode *> Dependencies,
1925 bool IsIndirect,
1926 const DebugLoc &DL, unsigned O);
1927
1928 /// Creates a VReg SDDbgValue node.
1930 Register VReg, bool IsIndirect,
1931 const DebugLoc &DL, unsigned O);
1932
1933 /// Creates a SDDbgValue node from a list of locations.
1936 ArrayRef<SDNode *> Dependencies,
1937 bool IsIndirect, const DebugLoc &DL,
1938 unsigned O, bool IsVariadic);
1939
1940 /// Creates a SDDbgLabel node.
1942 unsigned O);
1943
1944 /// Transfer debug values from one node to another, while optionally
1945 /// generating fragment expressions for split-up values. If \p InvalidateDbg
1946 /// is set, debug values are invalidated after they are transferred.
1948 unsigned OffsetInBits = 0,
1949 unsigned SizeInBits = 0,
1950 bool InvalidateDbg = true);
1951
1952 /// Remove the specified node from the system. If any of its
1953 /// operands then becomes dead, remove them as well. Inform UpdateListener
1954 /// for each node deleted.
1956
1957 /// This method deletes the unreachable nodes in the
1958 /// given list, and any nodes that become unreachable as a result.
1960
1961 /// Modify anything using 'From' to use 'To' instead.
1962 /// This can cause recursive merging of nodes in the DAG. Use the first
1963 /// version if 'From' is known to have a single result, use the second
1964 /// if you have two nodes with identical results (or if 'To' has a superset
1965 /// of the results of 'From'), use the third otherwise.
1966 ///
1967 /// These methods all take an optional UpdateListener, which (if not null) is
1968 /// informed about nodes that are deleted and modified due to recursive
1969 /// changes in the dag.
1970 ///
1971 /// These functions only replace all existing uses. It's possible that as
1972 /// these replacements are being performed, CSE may cause the From node
1973 /// to be given new uses. These new uses of From are left in place, and
1974 /// not automatically transferred to To.
1975 ///
1977 LLVM_ABI void ReplaceAllUsesWith(SDNode *From, SDNode *To);
1978 LLVM_ABI void ReplaceAllUsesWith(SDNode *From, const SDValue *To);
1979
1980 /// Replace any uses of From with To, leaving
1981 /// uses of other values produced by From.getNode() alone.
1983
1984 /// Like ReplaceAllUsesOfValueWith, but for multiple values at once.
1985 /// This correctly handles the case where
1986 /// there is an overlap between the From values and the To values.
1988 const SDValue *To, unsigned Num);
1989
1990 /// If an existing load has uses of its chain, create a token factor node with
1991 /// that chain and the new memory node's chain and update users of the old
1992 /// chain to the token factor. This ensures that the new memory node will have
1993 /// the same relative memory dependency position as the old load. Returns the
1994 /// new merged load chain.
1996 SDValue NewMemOpChain);
1997
1998 /// If an existing load has uses of its chain, create a token factor node with
1999 /// that chain and the new memory node's chain and update users of the old
2000 /// chain to the token factor. This ensures that the new memory node will have
2001 /// the same relative memory dependency position as the old load. Returns the
2002 /// new merged load chain.
2004 SDValue NewMemOp);
2005
2006 /// Get all the nodes in their topological order without modifying any states.
2008 SmallVectorImpl<const SDNode *> &SortedNodes) const;
2009
2010 /// Topological-sort the AllNodes list and a
2011 /// assign a unique node id for each node in the DAG based on their
2012 /// topological order. Returns the number of nodes.
2014
2015 /// Move node N in the AllNodes list to be immediately
2016 /// before the given iterator Position. This may be used to update the
2017 /// topological ordering when the list of nodes is modified.
2019 AllNodes.insert(Position, AllNodes.remove(N));
2020 }
2021
2022 /// Add a dbg_value SDNode. If SD is non-null that means the
2023 /// value is produced by SD.
2024 LLVM_ABI void AddDbgValue(SDDbgValue *DB, bool isParameter);
2025
2026 /// Add a dbg_label SDNode.
2028
2029 /// Get the debug values which reference the given SDNode.
2031 return DbgInfo->getSDDbgValues(SD);
2032 }
2033
2034public:
2035 /// Return true if there are any SDDbgValue nodes associated
2036 /// with this SelectionDAG.
2037 bool hasDebugValues() const { return !DbgInfo->empty(); }
2038
2039 SDDbgInfo::DbgIterator DbgBegin() const { return DbgInfo->DbgBegin(); }
2040 SDDbgInfo::DbgIterator DbgEnd() const { return DbgInfo->DbgEnd(); }
2041
2043 return DbgInfo->ByvalParmDbgBegin();
2044 }
2046 return DbgInfo->ByvalParmDbgEnd();
2047 }
2048
2050 return DbgInfo->DbgLabelBegin();
2051 }
2053 return DbgInfo->DbgLabelEnd();
2054 }
2055
2056 /// To be invoked on an SDNode that is slated to be erased. This
2057 /// function mirrors \c llvm::salvageDebugInfo.
2059
2060 /// Dump the textual format of this DAG. Nodes are not sorted.
2061 /// Note that we overload it instead of using default value so that it is
2062 /// convenient to be called from debuggers.
2063 LLVM_ABI void dump() const;
2064
2065 /// Dump the textual format of this DAG. Print nodes in sorted orders if \p
2066 /// Sorted is true.
2067 LLVM_ABI void dump(bool Sorted) const;
2068
2069 /// In most cases this function returns the ABI alignment for a given type,
2070 /// except for illegal vector types where the alignment exceeds that of the
2071 /// stack. In such cases we attempt to break the vector down to a legal type
2072 /// and return the ABI alignment for that instead.
2073 LLVM_ABI Align getReducedAlign(EVT VT, bool UseABI);
2074
2075 /// Create a stack temporary based on the size in bytes and the alignment
2077
2078 /// Create a stack temporary, suitable for holding the specified value type.
2079 /// If minAlign is specified, the slot size will have at least that alignment.
2080 LLVM_ABI SDValue CreateStackTemporary(EVT VT, unsigned minAlign = 1);
2081
2082 /// Create a stack temporary suitable for holding either of the specified
2083 /// value types.
2085
2086 LLVM_ABI SDValue FoldSymbolOffset(unsigned Opcode, EVT VT,
2087 const GlobalAddressSDNode *GA,
2088 const SDNode *N2);
2089
2090 LLVM_ABI SDValue FoldConstantArithmetic(unsigned Opcode, const SDLoc &DL,
2092 SDNodeFlags Flags = SDNodeFlags());
2093
2094 /// Fold floating-point operations when all operands are constants and/or
2095 /// undefined.
2096 LLVM_ABI SDValue foldConstantFPMath(unsigned Opcode, const SDLoc &DL, EVT VT,
2098
2099 /// Fold BUILD_VECTOR of constants/undefs to the destination type
2100 /// BUILD_VECTOR of constants/undefs elements.
2102 const SDLoc &DL, EVT DstEltVT);
2103
2104 /// Constant fold a setcc to true or false.
2106 const SDLoc &dl, SDNodeFlags Flags = {});
2107
2108 /// Return true if the sign bit of Op is known to be zero.
2109 /// We use this predicate to simplify operations downstream.
2110 LLVM_ABI bool SignBitIsZero(SDValue Op, unsigned Depth = 0) const;
2111
2112 /// Return true if the sign bit of Op is known to be zero, for a
2113 /// floating-point value.
2114 LLVM_ABI bool SignBitIsZeroFP(SDValue Op, unsigned Depth = 0) const;
2115
2116 /// Return true if 'Op & Mask' is known to be zero. We
2117 /// use this predicate to simplify operations downstream. Op and Mask are
2118 /// known to be the same type.
2119 LLVM_ABI bool MaskedValueIsZero(SDValue Op, const APInt &Mask,
2120 unsigned Depth = 0) const;
2121
2122 /// Return true if 'Op & Mask' is known to be zero in DemandedElts. We
2123 /// use this predicate to simplify operations downstream. Op and Mask are
2124 /// known to be the same type.
2125 LLVM_ABI bool MaskedValueIsZero(SDValue Op, const APInt &Mask,
2126 const APInt &DemandedElts,
2127 unsigned Depth = 0) const;
2128
2129 /// Return true if 'Op' is known to be zero in DemandedElts. We
2130 /// use this predicate to simplify operations downstream.
2131 LLVM_ABI bool MaskedVectorIsZero(SDValue Op, const APInt &DemandedElts,
2132 unsigned Depth = 0) const;
2133
2134 /// Return true if '(Op & Mask) == Mask'.
2135 /// Op and Mask are known to be the same type.
2136 LLVM_ABI bool MaskedValueIsAllOnes(SDValue Op, const APInt &Mask,
2137 unsigned Depth = 0) const;
2138
2139 /// For each demanded element of a vector, see if it is known to be zero.
2141 const APInt &DemandedElts,
2142 unsigned Depth = 0) const;
2143
2144 /// Determine which bits of Op are known to be either zero or one and return
2145 /// them in Known. For vectors, the known bits are those that are shared by
2146 /// every vector element.
2147 /// Targets can implement the computeKnownBitsForTargetNode method in the
2148 /// TargetLowering class to allow target nodes to be understood.
2149 LLVM_ABI KnownBits computeKnownBits(SDValue Op, unsigned Depth = 0) const;
2150
2151 /// Determine which bits of Op are known to be either zero or one and return
2152 /// them in Known. The DemandedElts argument allows us to only collect the
2153 /// known bits that are shared by the requested vector elements.
2154 /// Targets can implement the computeKnownBitsForTargetNode method in the
2155 /// TargetLowering class to allow target nodes to be understood.
2156 LLVM_ABI KnownBits computeKnownBits(SDValue Op, const APInt &DemandedElts,
2157 unsigned Depth = 0) const;
2158
2159 /// Determine the possible constant range of an integer or vector of integers.
2160 LLVM_ABI ConstantRange computeConstantRange(SDValue Op, bool ForSigned,
2161 unsigned Depth = 0) const;
2162
2163 /// Determine the possible constant range of an integer or vector of integers.
2164 /// The DemandedElts argument allows us to only collect the known ranges that
2165 /// are shared by the requested vector elements.
2167 const APInt &DemandedElts,
2168 bool ForSigned,
2169 unsigned Depth = 0) const;
2170
2171 /// Combine constant ranges from computeConstantRange() and
2172 /// computeKnownBits().
2174 SDValue Op, bool ForSigned, unsigned Depth = 0) const;
2175
2176 /// Combine constant ranges from computeConstantRange() and
2177 /// computeKnownBits(). The DemandedElts argument allows us to only collect
2178 /// the known ranges that are shared by the requested vector elements.
2180 SDValue Op, const APInt &DemandedElts, bool ForSigned,
2181 unsigned Depth = 0) const;
2182
2183 /// Used to represent the possible overflow behavior of an operation.
2184 /// Never: the operation cannot overflow.
2185 /// Always: the operation will always overflow.
2186 /// Sometime: the operation may or may not overflow.
2192
2193 /// Determine if the result of the signed addition of 2 nodes can overflow.
2195 SDValue N1) const;
2196
2197 /// Determine if the result of the unsigned addition of 2 nodes can overflow.
2199 SDValue N1) const;
2200
2201 /// Determine if the result of the addition of 2 nodes can overflow.
2203 SDValue N1) const {
2204 return IsSigned ? computeOverflowForSignedAdd(N0, N1)
2206 }
2207
2208 /// Determine if the result of the addition of 2 nodes can never overflow.
2209 bool willNotOverflowAdd(bool IsSigned, SDValue N0, SDValue N1) const {
2210 return computeOverflowForAdd(IsSigned, N0, N1) == OFK_Never;
2211 }
2212
2213 /// Determine if the result of the signed sub of 2 nodes can overflow.
2215 SDValue N1) const;
2216
2217 /// Determine if the result of the unsigned sub of 2 nodes can overflow.
2219 SDValue N1) const;
2220
2221 /// Determine if the result of the sub of 2 nodes can overflow.
2223 SDValue N1) const {
2224 return IsSigned ? computeOverflowForSignedSub(N0, N1)
2226 }
2227
2228 /// Determine if the result of the sub of 2 nodes can never overflow.
2229 bool willNotOverflowSub(bool IsSigned, SDValue N0, SDValue N1) const {
2230 return computeOverflowForSub(IsSigned, N0, N1) == OFK_Never;
2231 }
2232
2233 /// Determine if the result of the signed mul of 2 nodes can overflow.
2235 SDValue N1) const;
2236
2237 /// Determine if the result of the unsigned mul of 2 nodes can overflow.
2239 SDValue N1) const;
2240
2241 /// Determine if the result of the mul of 2 nodes can overflow.
2243 SDValue N1) const {
2244 return IsSigned ? computeOverflowForSignedMul(N0, N1)
2246 }
2247
2248 /// Determine if the result of the mul of 2 nodes can never overflow.
2249 bool willNotOverflowMul(bool IsSigned, SDValue N0, SDValue N1) const {
2250 return computeOverflowForMul(IsSigned, N0, N1) == OFK_Never;
2251 }
2252
2253 /// Returns true if \p V is an identity element of Opc with Flags.
2254 /// When OperandNo is 0, it checks that V is a left identity. Otherwise, it
2255 /// checks that V is a right identity.
2256 LLVM_ABI bool isIdentityElement(unsigned Opc, SDNodeFlags Flags, SDValue V,
2257 unsigned OperandNo, unsigned Depth = 0) const;
2258
2259 /// Returns true if the demanded vector elements of \p V is an identity
2260 /// element of Opc with Flags. When OperandNo is 0, it checks that V is a left
2261 /// identity. Otherwise, it checks that V is a right identity.
2262 LLVM_ABI bool isIdentityElement(unsigned Opc, SDNodeFlags Flags, SDValue V,
2263 const APInt &DemandedElts, unsigned OperandNo,
2264 unsigned Depth = 0) const;
2265
2266 /// Test if the given value is known to have exactly one bit set. This differs
2267 /// from computeKnownBits in that it doesn't necessarily determine which bit
2268 /// is set. If 'OrZero' is set, then return true if the given value is either
2269 /// a power of two or zero.
2270 LLVM_ABI bool isKnownToBeAPowerOfTwo(SDValue Val, bool OrZero = false,
2271 unsigned Depth = 0) const;
2272
2273 /// Test if the given value is known to have exactly one bit set. This differs
2274 /// from computeKnownBits in that it doesn't necessarily determine which bit
2275 /// is set. The DemandedElts argument allows us to only collect the minimum
2276 /// sign bits of the requested vector elements. If 'OrZero' is set, then
2277 /// return true if the given value is either a power of two or zero.
2278 LLVM_ABI bool isKnownToBeAPowerOfTwo(SDValue Val, const APInt &DemandedElts,
2279 bool OrZero = false,
2280 unsigned Depth = 0) const;
2281
2282 /// Test if the given _fp_ value is known to be an integer power-of-2, either
2283 /// positive or negative.
2284 LLVM_ABI bool isKnownToBeAPowerOfTwoFP(SDValue Val, unsigned Depth = 0) const;
2285
2286 /// Return the number of times the sign bit of the register is replicated into
2287 /// the other bits. We know that at least 1 bit is always equal to the sign
2288 /// bit (itself), but other cases can give us information. For example,
2289 /// immediately after an "SRA X, 2", we know that the top 3 bits are all equal
2290 /// to each other, so we return 3. Targets can implement the
2291 /// ComputeNumSignBitsForTarget method in the TargetLowering class to allow
2292 /// target nodes to be understood.
2293 LLVM_ABI unsigned ComputeNumSignBits(SDValue Op, unsigned Depth = 0) const;
2294
2295 /// Return the number of times the sign bit of the register is replicated into
2296 /// the other bits. We know that at least 1 bit is always equal to the sign
2297 /// bit (itself), but other cases can give us information. For example,
2298 /// immediately after an "SRA X, 2", we know that the top 3 bits are all equal
2299 /// to each other, so we return 3. The DemandedElts argument allows
2300 /// us to only collect the minimum sign bits of the requested vector elements.
2301 /// Targets can implement the ComputeNumSignBitsForTarget method in the
2302 /// TargetLowering class to allow target nodes to be understood.
2303 LLVM_ABI unsigned ComputeNumSignBits(SDValue Op, const APInt &DemandedElts,
2304 unsigned Depth = 0) const;
2305
2306 /// Get the upper bound on bit size for this Value \p Op as a signed integer.
2307 /// i.e. x == sext(trunc(x to MaxSignedBits) to bitwidth(x)).
2308 /// Similar to the APInt::getSignificantBits function.
2309 /// Helper wrapper to ComputeNumSignBits.
2311 unsigned Depth = 0) const;
2312
2313 /// Get the upper bound on bit size for this Value \p Op as a signed integer.
2314 /// i.e. x == sext(trunc(x to MaxSignedBits) to bitwidth(x)).
2315 /// Similar to the APInt::getSignificantBits function.
2316 /// Helper wrapper to ComputeNumSignBits.
2318 const APInt &DemandedElts,
2319 unsigned Depth = 0) const;
2320
2321 /// Return true if this function can prove that \p Op is never poison
2322 /// and, \p Kind can be used to track poison and/or undef bits.
2325 unsigned Depth = 0) const;
2326
2327 /// Return true if this function can prove that \p Op is never poison
2328 /// and, \p Kind can be used to track poison and/or undef bits. The
2329 /// DemandedElts argument limits the check to the requested vector elements.
2331 SDValue Op, const APInt &DemandedElts,
2333 unsigned Depth = 0) const;
2334
2335 /// Return true if this function can prove that \p Op is never poison.
2340
2341 /// Return true if this function can prove that \p Op is never poison. The
2342 /// DemandedElts argument limits the check to the requested vector elements.
2343 bool isGuaranteedNotToBePoison(SDValue Op, const APInt &DemandedElts,
2344 unsigned Depth = 0) const {
2345 return isGuaranteedNotToBeUndefOrPoison(Op, DemandedElts,
2347 }
2348
2349 /// Return true if Op can create undef or poison from non-undef & non-poison
2350 /// operands. The DemandedElts argument limits the check to the requested
2351 /// vector elements.
2352 ///
2353 /// \p ConsiderFlags controls whether poison producing flags on the
2354 /// instruction are considered. This can be used to see if the instruction
2355 /// could still introduce undef or poison even without poison generating flags
2356 /// which might be on the instruction. (i.e. could the result of
2357 /// Op->dropPoisonGeneratingFlags() still create poison or undef)
2358 LLVM_ABI bool
2359 canCreateUndefOrPoison(SDValue Op, const APInt &DemandedElts,
2361 bool ConsiderFlags = true, unsigned Depth = 0) const;
2362
2363 /// Return true if Op can create undef or poison from non-undef & non-poison
2364 /// operands.
2365 ///
2366 /// \p ConsiderFlags controls whether poison producing flags on the
2367 /// instruction are considered. This can be used to see if the instruction
2368 /// could still introduce undef or poison even without poison generating flags
2369 /// which might be on the instruction. (i.e. could the result of
2370 /// Op->dropPoisonGeneratingFlags() still create poison or undef)
2371 LLVM_ABI bool
2374 bool ConsiderFlags = true, unsigned Depth = 0) const;
2375
2376 /// Return true if the specified operand is an ISD::OR or ISD::XOR node
2377 /// that can be treated as an ISD::ADD node.
2378 /// or(x,y) == add(x,y) iff haveNoCommonBitsSet(x,y)
2379 /// xor(x,y) == add(x,y) iff isMinSignedConstant(y) && !NoWrap
2380 /// If \p NoWrap is true, this will not match ISD::XOR.
2381 LLVM_ABI bool isADDLike(SDValue Op, bool NoWrap = false) const;
2382
2383 /// Return true if the specified operand is an ISD::ADD with a ConstantSDNode
2384 /// on the right-hand side, or if it is an ISD::OR with a ConstantSDNode that
2385 /// is guaranteed to have the same semantics as an ADD. This handles the
2386 /// equivalence:
2387 /// X|Cst == X+Cst iff X&Cst = 0.
2389
2390 /// Determine floating-point class information about \p Op. For vectors, the
2391 /// known FP classes are those shared by every demanded vector element.
2392 /// \p InterestedClasses is a hint for which FP classes we care about;
2393 /// the implementation may bail out early if it can determine that
2394 /// none of the interested classes are possible.
2396 FPClassTest InterestedClasses,
2397 unsigned Depth = 0) const;
2398
2399 /// Determine floating-point class information about \p Op. The
2400 /// DemandedElts argument allows us to only collect the known FP classes
2401 /// that are shared by the requested vector elements.
2402 /// \p InterestedClasses is a hint for which FP classes we care about.
2404 const APInt &DemandedElts,
2405 FPClassTest InterestedClasses,
2406 unsigned Depth = 0) const;
2407
2408 /// Test whether the given SDValue (or all elements of it, if it is a
2409 /// vector) is known to never be NaN in \p DemandedElts. If \p SNaN is true,
2410 /// returns if \p Op is known to never be a signaling NaN (it may still be a
2411 /// qNaN).
2412 LLVM_ABI bool isKnownNeverNaN(SDValue Op, const APInt &DemandedElts,
2413 bool SNaN = false, unsigned Depth = 0) const;
2414
2415 /// Test whether the given SDValue (or all elements of it, if it is a
2416 /// vector) is known to never be NaN. If \p SNaN is true, returns if \p Op is
2417 /// known to never be a signaling NaN (it may still be a qNaN).
2418 LLVM_ABI bool isKnownNeverNaN(SDValue Op, bool SNaN = false,
2419 unsigned Depth = 0) const;
2420
2421 /// \returns true if \p Op is known to never be a signaling NaN in \p
2422 /// DemandedElts.
2423 bool isKnownNeverSNaN(SDValue Op, const APInt &DemandedElts,
2424 unsigned Depth = 0) const {
2425 return isKnownNeverNaN(Op, DemandedElts, true, Depth);
2426 }
2427
2428 /// \returns true if \p Op is known to never be a signaling NaN.
2429 bool isKnownNeverSNaN(SDValue Op, unsigned Depth = 0) const {
2430 return isKnownNeverNaN(Op, true, Depth);
2431 }
2432
2433 /// Test whether the given floating point SDValue (or all elements of it, if
2434 /// it is a vector) is known to never be interpretable as zero in \p
2435 /// DemandedElts.
2436 LLVM_ABI bool isKnownNeverLogicalZero(SDValue Op, const APInt &DemandedElts,
2437 unsigned Depth = 0) const;
2438
2439 /// Test whether the given floating point SDValue (or all elements of it, if
2440 /// it is a vector) is known to never be interpretable as zero.
2441 LLVM_ABI bool isKnownNeverLogicalZero(SDValue Op, unsigned Depth = 0) const;
2442
2443 /// Test whether the given SDValue is known to contain non-zero value(s).
2444 LLVM_ABI bool isKnownNeverZero(SDValue Op, unsigned Depth = 0) const;
2445
2446 /// Test whether the given SDValue is known to contain non-zero value(s).
2447 /// The DemandedElts argument limits the check to the requested vector
2448 /// elements.
2449 LLVM_ABI bool isKnownNeverZero(SDValue Op, const APInt &DemandedElts,
2450 unsigned Depth = 0) const;
2451
2452 /// Test whether the given float value is known to be positive. +0.0, +inf and
2453 /// +nan are considered positive, -0.0, -inf and -nan are not.
2455
2456 /// Check if a use of a float value is insensitive to signed zeros.
2457 LLVM_ABI bool canIgnoreSignBitOfZero(const SDUse &Use) const;
2458
2459 /// Check if \p Op has no-signed-zeros, or all users (limited to checking two
2460 /// for compile-time performance) are insensitive to signed zeros.
2462
2463 /// Test whether two SDValues are known to compare equal. This
2464 /// is true if they are the same value, or if one is negative zero and the
2465 /// other positive zero.
2466 LLVM_ABI bool isEqualTo(SDValue A, SDValue B) const;
2467
2468 /// Return true if A and B have no common bits set. As an example, this can
2469 /// allow an 'add' to be transformed into an 'or'.
2471
2472 /// Test whether \p V has a splatted value for all the demanded elements.
2473 ///
2474 /// On success \p UndefElts will indicate the elements that have UNDEF
2475 /// values instead of the splat value, this is only guaranteed to be correct
2476 /// for \p DemandedElts.
2477 ///
2478 /// NOTE: The function will return true for a demanded splat of UNDEF values.
2479 LLVM_ABI bool isSplatValue(SDValue V, const APInt &DemandedElts,
2480 APInt &UndefElts, unsigned Depth = 0) const;
2481
2482 /// Test whether \p V has a splatted value.
2483 LLVM_ABI bool isSplatValue(SDValue V, bool AllowUndefs = false) const;
2484
2485 /// If V is a splatted value, return the source vector and its splat index.
2486 LLVM_ABI SDValue getSplatSourceVector(SDValue V, int &SplatIndex);
2487
2488 /// If V is a splat vector, return its scalar source operand by extracting
2489 /// that element from the source vector. If LegalTypes is true, this method
2490 /// may only return a legally-typed splat value. If it cannot legalize the
2491 /// splatted value it will return SDValue().
2492 LLVM_ABI SDValue getSplatValue(SDValue V, bool LegalTypes = false);
2493
2494 /// If a SHL/SRA/SRL node \p V has shift amounts that are all less than the
2495 /// element bit-width of the shift node, return the valid constant range.
2496 LLVM_ABI std::optional<ConstantRange>
2497 getValidShiftAmountRange(SDValue V, const APInt &DemandedElts,
2498 unsigned Depth) const;
2499
2500 /// If a SHL/SRA/SRL node \p V has a uniform shift amount
2501 /// that is less than the element bit-width of the shift node, return it.
2502 LLVM_ABI std::optional<unsigned>
2503 getValidShiftAmount(SDValue V, const APInt &DemandedElts,
2504 unsigned Depth = 0) const;
2505
2506 /// If a SHL/SRA/SRL node \p V has a uniform shift amount
2507 /// that is less than the element bit-width of the shift node, return it.
2508 LLVM_ABI std::optional<unsigned>
2509 getValidShiftAmount(SDValue V, unsigned Depth = 0) const;
2510
2511 /// If a SHL/SRA/SRL node \p V has shift amounts that are all less than the
2512 /// element bit-width of the shift node, return the minimum possible value.
2513 LLVM_ABI std::optional<unsigned>
2514 getValidMinimumShiftAmount(SDValue V, const APInt &DemandedElts,
2515 unsigned Depth = 0) const;
2516
2517 /// If a SHL/SRA/SRL node \p V has shift amounts that are all less than the
2518 /// element bit-width of the shift node, return the minimum possible value.
2519 LLVM_ABI std::optional<unsigned>
2520 getValidMinimumShiftAmount(SDValue V, unsigned Depth = 0) const;
2521
2522 /// If a SHL/SRA/SRL node \p V has shift amounts that are all less than the
2523 /// element bit-width of the shift node, return the maximum possible value.
2524 LLVM_ABI std::optional<unsigned>
2525 getValidMaximumShiftAmount(SDValue V, const APInt &DemandedElts,
2526 unsigned Depth = 0) const;
2527
2528 /// If a SHL/SRA/SRL node \p V has shift amounts that are all less than the
2529 /// element bit-width of the shift node, return the maximum possible value.
2530 LLVM_ABI std::optional<unsigned>
2531 getValidMaximumShiftAmount(SDValue V, unsigned Depth = 0) const;
2532
2533 /// Match a binop + shuffle pyramid that represents a horizontal reduction
2534 /// over the elements of a vector starting from the EXTRACT_VECTOR_ELT node /p
2535 /// Extract. The reduction must use one of the opcodes listed in /p
2536 /// CandidateBinOps and on success /p BinOp will contain the matching opcode.
2537 /// Returns the vector that is being reduced on, or SDValue() if a reduction
2538 /// was not matched. If \p AllowPartials is set then in the case of a
2539 /// reduction pattern that only matches the first few stages, the extracted
2540 /// subvector of the start of the reduction is returned.
2542 ArrayRef<ISD::NodeType> CandidateBinOps,
2543 bool AllowPartials = false);
2544
2545 /// Utility function used by legalize and lowering to
2546 /// "unroll" a vector operation by splitting out the scalars and operating
2547 /// on each element individually. If the ResNE is 0, fully unroll the vector
2548 /// op. If ResNE is less than the width of the vector op, unroll up to ResNE.
2549 /// If the ResNE is greater than the width of the vector op, unroll the
2550 /// vector op and fill the end of the resulting vector with UNDEFS.
2551 LLVM_ABI SDValue UnrollVectorOp(SDNode *N, unsigned ResNE = 0);
2552
2553 /// Like UnrollVectorOp(), but for the [US](ADD|SUB|MUL)O family of opcodes.
2554 /// This is a separate function because those opcodes have two results.
2555 LLVM_ABI std::pair<SDValue, SDValue>
2556 UnrollVectorOverflowOp(SDNode *N, unsigned ResNE = 0);
2557
2558 /// Return true if loads are next to each other and can be
2559 /// merged. Check that both are nonvolatile and if LD is loading
2560 /// 'Bytes' bytes from a location that is 'Dist' units away from the
2561 /// location that the 'Base' load is loading from.
2563 unsigned Bytes, int Dist) const;
2564
2565 /// Infer alignment of a load / store address. Return std::nullopt if it
2566 /// cannot be inferred.
2568
2569 /// Split the scalar node with EXTRACT_ELEMENT using the provided VTs and
2570 /// return the low/high part.
2571 LLVM_ABI std::pair<SDValue, SDValue> SplitScalar(const SDValue &N,
2572 const SDLoc &DL,
2573 const EVT &LoVT,
2574 const EVT &HiVT);
2575
2576 /// Compute the VTs needed for the low/hi parts of a type
2577 /// which is split (or expanded) into two not necessarily identical pieces.
2578 LLVM_ABI std::pair<EVT, EVT> GetSplitDestVTs(const EVT &VT) const;
2579
2580 /// Compute the VTs needed for the low/hi parts of a type, dependent on an
2581 /// enveloping VT that has been split into two identical pieces. Sets the
2582 /// HisIsEmpty flag when hi type has zero storage size.
2583 LLVM_ABI std::pair<EVT, EVT> GetDependentSplitDestVTs(const EVT &VT,
2584 const EVT &EnvVT,
2585 bool *HiIsEmpty) const;
2586
2587 /// Split the vector with EXTRACT_SUBVECTOR using the provided
2588 /// VTs and return the low/high part.
2589 LLVM_ABI std::pair<SDValue, SDValue> SplitVector(const SDValue &N,
2590 const SDLoc &DL,
2591 const EVT &LoVT,
2592 const EVT &HiVT);
2593
2594 /// Split the vector with EXTRACT_SUBVECTOR and return the low/high part.
2595 std::pair<SDValue, SDValue> SplitVector(const SDValue &N, const SDLoc &DL) {
2596 EVT LoVT, HiVT;
2597 std::tie(LoVT, HiVT) = GetSplitDestVTs(N.getValueType());
2598 return SplitVector(N, DL, LoVT, HiVT);
2599 }
2600
2601 /// Split the explicit vector length parameter of a VP operation.
2602 LLVM_ABI std::pair<SDValue, SDValue> SplitEVL(SDValue N, EVT VecVT,
2603 const SDLoc &DL);
2604
2605 /// Split the node's operand with EXTRACT_SUBVECTOR and
2606 /// return the low/high part.
2607 std::pair<SDValue, SDValue> SplitVectorOperand(const SDNode *N, unsigned OpNo)
2608 {
2609 return SplitVector(N->getOperand(OpNo), SDLoc(N));
2610 }
2611
2612 /// Widen the vector up to the next power of two using INSERT_SUBVECTOR.
2613 LLVM_ABI SDValue WidenVector(const SDValue &N, const SDLoc &DL);
2614
2615 /// Append the extracted elements from Start to Count out of the vector Op in
2616 /// Args. If Count is 0, all of the elements will be extracted. The extracted
2617 /// elements will have type EVT if it is provided, and otherwise their type
2618 /// will be Op's element type.
2621 unsigned Start = 0, unsigned Count = 0,
2622 EVT EltVT = EVT());
2623
2624 /// Compute the default alignment value for the given type.
2625 LLVM_ABI Align getEVTAlign(EVT MemoryVT) const;
2626
2627 /// Test whether the given value is a constant int or similar node.
2628 LLVM_ABI bool
2630 bool AllowOpaques = true) const;
2631
2632 /// Test whether the given value is a constant FP or similar node.
2634
2635 /// \returns true if \p N is any kind of constant or build_vector of
2636 /// constants, int or float. If a vector, it may not necessarily be a splat.
2641
2642 /// Check if a value \op N is a constant using the target's BooleanContent for
2643 /// its type.
2644 LLVM_ABI std::optional<bool> isBoolConstant(SDValue N) const;
2645
2646 /// Set CallSiteInfo to be associated with Node.
2647 void addCallSiteInfo(const SDNode *Node, CallSiteInfo &&CallInfo) {
2648 SDEI[Node].CSInfo = std::move(CallInfo);
2649 }
2650 /// Return CallSiteInfo associated with Node, or a default if none exists.
2651 CallSiteInfo getCallSiteInfo(const SDNode *Node) {
2652 auto I = SDEI.find(Node);
2653 return I != SDEI.end() ? std::move(I->second).CSInfo : CallSiteInfo();
2654 }
2655 /// Set HeapAllocSite to be associated with Node.
2657 SDEI[Node].HeapAllocSite = MD;
2658 }
2659 /// Return HeapAllocSite associated with Node, or nullptr if none exists.
2661 auto I = SDEI.find(Node);
2662 return I != SDEI.end() ? I->second.HeapAllocSite : nullptr;
2663 }
2664 /// Set PCSections to be associated with Node.
2665 void addPCSections(const SDNode *Node, MDNode *MD) {
2666 SDEI[Node].PCSections = MD;
2667 }
2668 /// Set MMRAMetadata to be associated with Node.
2669 void addMMRAMetadata(const SDNode *Node, MDNode *MMRA) {
2670 SDEI[Node].MMRA = MMRA;
2671 }
2672 /// Return PCSections associated with Node, or nullptr if none exists.
2674 auto It = SDEI.find(Node);
2675 return It != SDEI.end() ? It->second.PCSections : nullptr;
2676 }
2677 /// Return the MMRA MDNode associated with Node, or nullptr if none
2678 /// exists.
2680 auto It = SDEI.find(Node);
2681 return It != SDEI.end() ? It->second.MMRA : nullptr;
2682 }
2683 /// Set CalledGlobal to be associated with Node.
2684 void addCalledGlobal(const SDNode *Node, const GlobalValue *GV,
2685 unsigned OpFlags) {
2686 SDEI[Node].CalledGlobal = {GV, OpFlags};
2687 }
2688 /// Return CalledGlobal associated with Node, or a nullopt if none exists.
2689 std::optional<CalledGlobalInfo> getCalledGlobal(const SDNode *Node) {
2690 auto I = SDEI.find(Node);
2691 return I != SDEI.end()
2692 ? std::make_optional(std::move(I->second).CalledGlobal)
2693 : std::nullopt;
2694 }
2695 /// Set NoMergeSiteInfo to be associated with Node if NoMerge is true.
2696 void addNoMergeSiteInfo(const SDNode *Node, bool NoMerge) {
2697 if (NoMerge)
2698 SDEI[Node].NoMerge = NoMerge;
2699 }
2700 /// Return NoMerge info associated with Node.
2701 bool getNoMergeSiteInfo(const SDNode *Node) const {
2702 auto I = SDEI.find(Node);
2703 return I != SDEI.end() ? I->second.NoMerge : false;
2704 }
2705
2706 /// Copy extra info associated with one node to another.
2707 LLVM_ABI void copyExtraInfo(SDNode *From, SDNode *To);
2708
2709 /// Return the current function's default denormal handling kind for the given
2710 /// floating point type.
2712 return MF->getDenormalMode(VT.getFltSemantics());
2713 }
2714
2715 LLVM_ABI bool shouldOptForSize() const;
2716
2717 /// Get the (commutative) identity element for the given opcode, if it exists.
2718 LLVM_ABI SDValue getIdentityElement(unsigned Opcode, const SDLoc &DL, EVT VT,
2719 SDNodeFlags Flags);
2720
2721 /// Get an expression that implements a partial multiply-subtract reduction.
2722 /// In practice this means that parts of the expression are negated, e.g.
2723 ///
2724 /// partial_reduce_fmls acc, lhs, rhs
2725 /// <=> partial_reduce_fmla acc, lhs, -rhs
2726 ///
2727 /// partial_reduce_umls acc, lhs, rhs
2728 /// <=> -partial_reduce_umla -acc, lhs, rhs
2730 SDValue Acc, SDValue LHS, SDValue RHS);
2731
2732 /// Some opcodes may create immediate undefined behavior when used with some
2733 /// values (integer division-by-zero for example). Therefore, these operations
2734 /// are not generally safe to move around or change.
2735 bool isSafeToSpeculativelyExecute(unsigned Opcode) const {
2736 switch (Opcode) {
2737 case ISD::SDIV:
2738 case ISD::SREM:
2739 case ISD::SDIVREM:
2740 case ISD::UDIV:
2741 case ISD::UREM:
2742 case ISD::UDIVREM:
2743 return false;
2744 default:
2745 return true;
2746 }
2747 }
2748
2749 /// Check if the provided node is save to speculatively executed given its
2750 /// current arguments. So, while `udiv` the opcode is not safe to
2751 /// speculatively execute, a given `udiv` node may be if the denominator is
2752 /// known nonzero.
2754 switch (N->getOpcode()) {
2755 case ISD::UDIV:
2756 return isKnownNeverZero(N->getOperand(1));
2757 default:
2758 return isSafeToSpeculativelyExecute(N->getOpcode());
2759 }
2760 }
2761
2762 LLVM_ABI SDValue makeStateFunctionCall(unsigned LibFunc, SDValue Ptr,
2763 SDValue InChain, const SDLoc &DLoc);
2764
2765private:
2766#ifndef NDEBUG
2767 void verifyNode(SDNode *N) const;
2768#endif
2769 void InsertNode(SDNode *N);
2770 bool RemoveNodeFromCSEMaps(SDNode *N);
2771 void AddModifiedNodeToCSEMaps(SDNode *N);
2772 SDNode *FindModifiedNodeSlot(SDNode *N, SDValue Op, void *&InsertPos);
2773 SDNode *FindModifiedNodeSlot(SDNode *N, SDValue Op1, SDValue Op2,
2774 void *&InsertPos);
2775 SDNode *FindModifiedNodeSlot(SDNode *N, ArrayRef<SDValue> Ops,
2776 void *&InsertPos);
2777 SDNode *UpdateSDLocOnMergeSDNode(SDNode *N, const SDLoc &loc);
2778
2779 void DeleteNodeNotInCSEMaps(SDNode *N);
2780 void DeallocateNode(SDNode *N);
2781
2782 void allnodes_clear();
2783
2784 /// Look up the node specified by ID in CSEMap. If it exists, return it. If
2785 /// not, return the insertion token that will make insertion faster. This
2786 /// overload is for nodes other than Constant or ConstantFP, use the other one
2787 /// for those.
2788 SDNode *FindNodeOrInsertPos(const FoldingSetNodeID &ID, void *&InsertPos);
2789
2790 /// Look up the node specified by ID in CSEMap. If it exists, return it. If
2791 /// not, return the insertion token that will make insertion faster. Performs
2792 /// additional processing for constant nodes.
2793 SDNode *FindNodeOrInsertPos(const FoldingSetNodeID &ID, const SDLoc &DL,
2794 void *&InsertPos);
2795
2796 /// Maps to auto-CSE operations.
2797 std::vector<CondCodeSDNode*> CondCodeNodes;
2798
2799 std::vector<SDNode*> ValueTypeNodes;
2800 std::map<EVT, SDNode*, EVT::compareRawBits> ExtendedValueTypeNodes;
2801 StringMap<SDNode*> ExternalSymbols;
2802
2803 std::map<std::pair<std::string, unsigned>, SDNode *> TargetExternalSymbols;
2805
2806 FlagInserter *Inserter = nullptr;
2807};
2808
2809template <> struct GraphTraits<SelectionDAG*> : public GraphTraits<SDNode*> {
2811
2813 return nodes_iterator(G->allnodes_begin());
2814 }
2815
2817 return nodes_iterator(G->allnodes_end());
2818 }
2819};
2820
2821} // end namespace llvm
2822
2823#endif // LLVM_CODEGEN_SELECTIONDAG_H
return SDValue()
assert(UImm &&(UImm !=~static_cast< T >(0)) &&"Invalid immediate!")
This file defines the StringMap class.
unsigned uint64_t
constexpr LLT S1
AMDGPU Uniform Intrinsic Combine
MachineBasicBlock & MBB
MachineBasicBlock MachineBasicBlock::iterator DebugLoc DL
This file defines the BumpPtrAllocator interface.
#define X(NUM, ENUM, NAME)
Definition ELF.h:857
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
static GCRegistry::Add< ErlangGC > A("erlang", "erlang-compatible garbage collector")
static GCRegistry::Add< StatepointGC > D("statepoint-example", "an example strategy for statepoint")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
static GCRegistry::Add< OcamlGC > B("ocaml", "ocaml 3.10-compatible GC")
#define LLVM_ABI
Definition Compiler.h:215
#define LLVM_DUMP_METHOD
Mark debug helper function definitions like dump() that should not be stripped from debug builds.
Definition Compiler.h:678
@ CallSiteInfo
This file defines the DenseMap class.
This file defines the DenseSet and SmallDenseSet classes.
This file defines a hash set that can be used to remove duplication of nodes in a graph.
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
#define I(x, y, z)
Definition MD5.cpp:57
#define G(x, y, z)
Definition MD5.cpp:55
Register Reg
This file contains the declarations for metadata subclasses.
const SmallVectorImpl< MachineOperand > & Cond
This file defines the SmallVector class.
static TableGen::Emitter::Opt Y("gen-skeleton-entry", EmitSkeleton, "Generate example skeleton entry")
static void removeOperands(MachineInstr &MI, unsigned i)
This file contains the UndefPoisonKind enum and helper functions.
Value * RHS
Value * LHS
Class for arbitrary precision integers.
Definition APInt.h:78
static Capacity get(size_t N)
Get the capacity of an array that can hold at least N elements.
Recycle small arrays allocated from a BumpPtrAllocator.
Represent a constant reference to an array (0 or more elements consecutively in memory),...
Definition ArrayRef.h:40
This class is a wrapper over an AAResults, and it is intended to be used only when there are no IR ch...
The address of a basic block.
Definition Constants.h:1088
BlockFrequencyInfo pass uses BlockFrequencyInfoImpl implementation to estimate IR basic block frequen...
A "pseudo-class" with methods for operating on BUILD_VECTORs.
This class represents a function call, abstracting a target machine's calling convention.
ConstantFP - Floating Point Values [float, double].
Definition Constants.h:420
This is the shared class of boolean and integer constants.
Definition Constants.h:87
This is an important base class in LLVM.
Definition Constant.h:43
DWARF expression.
Base class for variables.
A parsed version of the target data layout string in and methods for querying it.
Definition DataLayout.h:64
A debug info location.
Definition DebugLoc.h:126
Implements a dense probed hash-table based set.
Definition DenseSet.h:281
This class describes a reference to an interned FoldingSetNodeID, which can be a useful to store node...
Definition FoldingSet.h:168
This class is used to gather all the unique data bits of a node.
Definition FoldingSet.h:211
FunctionLoweringInfo - This contains information that is global to a function that is used when lower...
Data structure describing the variable locations in a function.
This is an important class for using LLVM in a threaded context.
Definition LLVMContext.h:68
Tracks which library functions to use for a particular subtarget or function.
This class is used to represent ISD::LOAD nodes.
static LocationSize precise(uint64_t Value)
MCSymbol - Instances of this class represent a symbol name in the MC file, and MCSymbols are created ...
Definition MCSymbol.h:42
Metadata node.
Definition Metadata.h:1069
Abstract base class for all machine specific constantpool value subclasses.
A description of a memory reference used in the backend.
Flags
Flags values. These may be or'd together.
@ MOLoad
The memory access reads data.
@ MOStore
The memory access writes data.
This class contains meta information specific to a module.
An SDNode that represents everything that will be needed to construct a MachineInstr.
Root of the metadata hierarchy.
Definition Metadata.h:64
The optimization diagnostic interface.
Pass interface - Implemented by all 'passes'.
Definition Pass.h:99
Analysis providing profile information.
RecyclingAllocator - This class wraps an Allocator, adding the functionality of recycling deleted obj...
Wrapper class representing virtual and physical registers.
Definition Register.h:20
Keeps track of dbg_value information through SDISel.
BumpPtrAllocator & getAlloc()
DbgIterator ByvalParmDbgBegin()
DbgIterator DbgEnd()
SDDbgInfo & operator=(const SDDbgInfo &)=delete
SmallVectorImpl< SDDbgLabel * >::iterator DbgLabelIterator
SDDbgInfo()=default
LLVM_ABI void add(SDDbgValue *V, bool isParameter)
bool empty() const
DbgLabelIterator DbgLabelEnd()
DbgIterator ByvalParmDbgEnd()
SmallVectorImpl< SDDbgValue * >::iterator DbgIterator
SDDbgInfo(const SDDbgInfo &)=delete
DbgLabelIterator DbgLabelBegin()
void add(SDDbgLabel *L)
DbgIterator DbgBegin()
LLVM_ABI void erase(const SDNode *Node)
Invalidate all DbgValues attached to the node and remove it from the Node-to-DbgValues map.
ArrayRef< SDDbgValue * > getSDDbgValues(const SDNode *Node) const
Holds the information from a dbg_label node through SDISel.
Holds the information for a single machine location through SDISel; either an SDNode,...
Holds the information from a dbg_value node through SDISel.
Wrapper class for IR location info (IR ordering and DebugLoc) to be passed into SDNode creation funct...
Represents one node in the SelectionDAG.
Represents a use of a SDNode.
SDVTListNode(const FoldingSetNodeIDRef ID, const EVT *VT, unsigned int Num)
SDVTList getSDVTList()
Unlike LLVM values, Selection DAG nodes may return multiple values as the result of a computation.
SDNode * getNode() const
get the SDNode which holds the desired result
EVT getValueType() const
Return the ValueType of the referenced return value.
Targets can subclass this to parameterize the SelectionDAG lowering and instruction selection process...
Help to insert SDNodeFlags automatically in transforming.
FlagInserter(SelectionDAG &SDAG, SDNodeFlags Flags)
FlagInserter(const FlagInserter &)=delete
FlagInserter(SelectionDAG &SDAG, SDNode *N)
FlagInserter & operator=(const FlagInserter &)=delete
This is used to represent a portion of an LLVM function in a low-level Data Dependence DAG representa...
LLVM_ABI SDValue getElementCount(const SDLoc &DL, EVT VT, ElementCount EC)
bool willNotOverflowAdd(bool IsSigned, SDValue N0, SDValue N1) const
Determine if the result of the addition of 2 nodes can never overflow.
static unsigned getOpcode_EXTEND_VECTOR_INREG(unsigned Opcode)
Convert *_EXTEND to *_EXTEND_VECTOR_INREG opcode.
LLVM_ABI Align getReducedAlign(EVT VT, bool UseABI)
In most cases this function returns the ABI alignment for a given type, except for illegal vector typ...
LLVM_ABI SDValue getShiftAmountOperand(EVT LHSTy, SDValue Op)
Return the specified value casted to the target's desired shift amount type.
LLVM_ABI std::pair< SDValue, SDValue > getMemccpy(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue C, SDValue Size, const CallInst *CI)
Lower a memccpy operation into a target library call and return the resulting chain and call result a...
LLVM_ABI bool isKnownNeverLogicalZero(SDValue Op, const APInt &DemandedElts, unsigned Depth=0) const
Test whether the given floating point SDValue (or all elements of it, if it is a vector) is known to ...
LLVM_ABI SDValue getExtLoadVP(ISD::LoadExtType ExtType, const SDLoc &dl, EVT VT, SDValue Chain, SDValue Ptr, SDValue Mask, SDValue EVL, MachinePointerInfo PtrInfo, EVT MemVT, MaybeAlign Alignment, MachineMemOperand::Flags MMOFlags, const AAMDNodes &AAInfo, bool IsExpanding=false)
SDValue getTargetGlobalAddress(const GlobalValue *GV, const SDLoc &DL, EVT VT, int64_t offset=0, unsigned TargetFlags=0)
SDValue getExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT, unsigned Opcode)
Convert Op, which must be of integer type, to the integer type VT, by either any/sign/zero-extending ...
SDValue getCopyFromReg(SDValue Chain, const SDLoc &dl, Register Reg, EVT VT, SDValue Glue)
SDValue getExtractVectorElt(const SDLoc &DL, EVT VT, SDValue Vec, unsigned Idx)
Extract element at Idx from Vec.
LLVM_ABI SDValue getSplatSourceVector(SDValue V, int &SplatIndex)
If V is a splatted value, return the source vector and its splat index.
LLVM_ABI SDValue getLabelNode(unsigned Opcode, const SDLoc &dl, SDValue Root, MCSymbol *Label)
LLVM_ABI OverflowKind computeOverflowForUnsignedSub(SDValue N0, SDValue N1) const
Determine if the result of the unsigned sub of 2 nodes can overflow.
LLVM_ABI unsigned ComputeMaxSignificantBits(SDValue Op, unsigned Depth=0) const
Get the upper bound on bit size for this Value Op as a signed integer.
const SDValue & getRoot() const
Return the root tag of the SelectionDAG.
LLVM_ABI std::pair< SDValue, SDValue > getStrlen(SDValue Chain, const SDLoc &dl, SDValue Src, const CallInst *CI)
Lower a strlen operation into a target library call and return the resulting chain and call result as...
LLVM_ABI SDValue getMaskedGather(SDVTList VTs, EVT MemVT, const SDLoc &dl, ArrayRef< SDValue > Ops, MachineMemOperand *MMO, ISD::MemIndexType IndexType, ISD::LoadExtType ExtTy)
const RTLIB::RuntimeLibcallsInfo & getRuntimeLibcallInfo() const
bool isKnownNeverSNaN(SDValue Op, unsigned Depth=0) const
LLVM_ABI SDValue getAddrSpaceCast(const SDLoc &dl, EVT VT, SDValue Ptr, unsigned SrcAS, unsigned DestAS)
Return an AddrSpaceCastSDNode.
LLVM_ABI SDValue FoldSetCC(EVT VT, SDValue N1, SDValue N2, ISD::CondCode Cond, const SDLoc &dl, SDNodeFlags Flags={})
Constant fold a setcc to true or false.
bool isKnownNeverSNaN(SDValue Op, const APInt &DemandedElts, unsigned Depth=0) const
LLVM_ABI std::optional< bool > isBoolConstant(SDValue N) const
Check if a value \op N is a constant using the target's BooleanContent for its type.
LLVM_ABI SDValue getStackArgumentTokenFactor(SDValue Chain)
Compute a TokenFactor to force all the incoming stack arguments to be loaded from the stack.
const TargetSubtargetInfo & getSubtarget() const
SDValue getCopyToReg(SDValue Chain, const SDLoc &dl, Register Reg, SDValue N)
const Pass * getPass() const
LLVM_ABI ConstantRange computeConstantRange(SDValue Op, bool ForSigned, unsigned Depth=0) const
Determine the possible constant range of an integer or vector of integers.
LLVM_ABI SDValue getMergeValues(ArrayRef< SDValue > Ops, const SDLoc &dl)
Create a MERGE_VALUES node from the given operands.
LLVM_ABI SDVTList getVTList(EVT VT)
Return an SDVTList that represents the list of values specified.
OptimizationRemarkEmitter & getORE() const
BlockFrequencyInfo * getBFI() const
LLVM_ABI SDValue getShiftAmountConstant(uint64_t Val, EVT VT, const SDLoc &DL)
LLVM_ABI void updateDivergence(SDNode *N)
LLVM_ABI SDValue getSplatValue(SDValue V, bool LegalTypes=false)
If V is a splat vector, return its scalar source operand by extracting that element from the source v...
LLVM_ABI SDValue getAllOnesConstant(const SDLoc &DL, EVT VT, bool IsTarget=false, bool IsOpaque=false)
LLVM_ABI MachineSDNode * getMachineNode(unsigned Opcode, const SDLoc &dl, EVT VT)
These are used for target selectors to create a new node with specified return type(s),...
LLVM_ABI void ExtractVectorElements(SDValue Op, SmallVectorImpl< SDValue > &Args, unsigned Start=0, unsigned Count=0, EVT EltVT=EVT())
Append the extracted elements from Start to Count out of the vector Op in Args.
LLVM_ABI SDValue getAtomicMemset(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Value, SDValue Size, Type *SizeTy, unsigned ElemSz, bool isTailCall, MachinePointerInfo DstPtrInfo)
LLVM_ABI SDValue getAtomicLoad(ISD::LoadExtType ExtType, const SDLoc &dl, EVT MemVT, EVT VT, SDValue Chain, SDValue Ptr, MachineMemOperand *MMO)
LLVM_ABI bool LegalizeVectors()
This transforms the SelectionDAG into a SelectionDAG that only uses vector math operations supported ...
LLVM_ABI SDNode * getNodeIfExists(unsigned Opcode, SDVTList VTList, ArrayRef< SDValue > Ops, const SDNodeFlags Flags, bool AllowCommute=false)
Get the specified node if it's already available, or else return NULL.
SDValue getTargetConstantFP(const APFloat &Val, const SDLoc &DL, EVT VT)
LLVM_ABI SDValue getPseudoProbeNode(const SDLoc &Dl, SDValue Chain, uint64_t Guid, uint64_t Index, uint32_t Attr)
Creates a PseudoProbeSDNode with function GUID Guid and the index of the block Index it is probing,...
LLVM_ABI SDValue getFreeze(SDValue V)
Return a freeze using the SDLoc of the value operand.
LLVM_ABI SDNode * SelectNodeTo(SDNode *N, unsigned MachineOpc, EVT VT)
These are used for target selectors to mutate the specified node to have the specified return type,...
LLVM_ABI void init(MachineFunction &NewMF, OptimizationRemarkEmitter &NewORE, Pass *PassPtr, const TargetLibraryInfo *LibraryInfo, const LibcallLoweringInfo *LibcallsInfo, UniformityInfo *UA, ProfileSummaryInfo *PSIin, BlockFrequencyInfo *BFIin, MachineModuleInfo &MMI, FunctionVarLocs const *FnVarLocs)
Prepare this SelectionDAG to process code in the given MachineFunction.
LLVM_ABI SelectionDAG(const TargetMachine &TM, CodeGenOptLevel)
LLVM_ABI SDValue getMemset(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size, Align Alignment, bool isVol, bool AlwaysInline, const CallInst *CI, MachinePointerInfo DstPtrInfo, const AAMDNodes &AAInfo=AAMDNodes())
LLVM_ABI SDValue getBitcastedSExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by first bitcasting (from potentia...
LLVM_ABI SDValue getConstantPool(const Constant *C, EVT VT, MaybeAlign Align=std::nullopt, int Offs=0, bool isT=false, unsigned TargetFlags=0)
LLVM_ABI SDValue getStridedLoadVP(ISD::MemIndexedMode AM, ISD::LoadExtType ExtType, EVT VT, const SDLoc &DL, SDValue Chain, SDValue Ptr, SDValue Offset, SDValue Stride, SDValue Mask, SDValue EVL, EVT MemVT, MachineMemOperand *MMO, bool IsExpanding=false)
SDDbgInfo::DbgIterator ByvalParmDbgEnd() const
LLVM_ABI SDValue getAtomicCmpSwap(unsigned Opcode, const SDLoc &dl, EVT MemVT, SDVTList VTs, SDValue Chain, SDValue Ptr, SDValue Cmp, SDValue Swp, MachineMemOperand *MMO)
Gets a node for an atomic cmpxchg op.
MachineModuleInfo * getMMI() const
LLVM_ABI SDValue makeEquivalentMemoryOrdering(SDValue OldChain, SDValue NewMemOpChain)
If an existing load has uses of its chain, create a token factor node with that chain and the new mem...
LLVM_ABI bool isConstantIntBuildVectorOrConstantInt(SDValue N, bool AllowOpaques=true) const
Test whether the given value is a constant int or similar node.
LLVM_ABI void ReplaceAllUsesOfValuesWith(const SDValue *From, const SDValue *To, unsigned Num)
Like ReplaceAllUsesOfValueWith, but for multiple values at once.
LLVM_ABI SDValue getJumpTableDebugInfo(int JTI, SDValue Chain, const SDLoc &DL)
LLVM_ABI SDValue getSymbolFunctionGlobalAddress(SDValue Op, Function **TargetFunction=nullptr)
Return a GlobalAddress of the function from the current module with name matching the given ExternalS...
bool isSafeToSpeculativelyExecute(unsigned Opcode) const
Some opcodes may create immediate undefined behavior when used with some values (integer division-by-...
void addMMRAMetadata(const SDNode *Node, MDNode *MMRA)
Set MMRAMetadata to be associated with Node.
SDValue getStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, MachinePointerInfo PtrInfo, MaybeAlign Alignment=MaybeAlign(), MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
LLVM_ABI std::optional< unsigned > getValidMaximumShiftAmount(SDValue V, const APInt &DemandedElts, unsigned Depth=0) const
If a SHL/SRA/SRL node V has shift amounts that are all less than the element bit-width of the shift n...
OverflowKind computeOverflowForSub(bool IsSigned, SDValue N0, SDValue N1) const
Determine if the result of the sub of 2 nodes can overflow.
void init(MachineFunction &NewMF, OptimizationRemarkEmitter &NewORE, MachineFunctionAnalysisManager &AM, const TargetLibraryInfo *LibraryInfo, const LibcallLoweringInfo *LibcallsInfo, UniformityInfo *UA, ProfileSummaryInfo *PSIin, BlockFrequencyInfo *BFIin, MachineModuleInfo &MMI, FunctionVarLocs const *FnVarLocs)
LLVM_ABI SDValue UnrollVectorOp(SDNode *N, unsigned ResNE=0)
Utility function used by legalize and lowering to "unroll" a vector operation by splitting out the sc...
SDDbgInfo::DbgIterator ByvalParmDbgBegin() const
LLVM_ABI SDValue getVScale(const SDLoc &DL, EVT VT, APInt MulImm)
Return a node that represents the runtime scaling 'MulImm * RuntimeVL'.
void setFunctionLoweringInfo(FunctionLoweringInfo *FuncInfo)
LLVM_ABI SDValue getConstantFP(double Val, const SDLoc &DL, EVT VT, bool isTarget=false)
Create a ConstantFPSDNode wrapping a constant value.
OverflowKind
Used to represent the possible overflow behavior of an operation.
static LLVM_ABI unsigned getHasPredecessorMaxSteps()
LLVM_ABI bool haveNoCommonBitsSet(SDValue A, SDValue B) const
Return true if A and B have no common bits set.
SDValue getExtractSubvector(const SDLoc &DL, EVT VT, SDValue Vec, unsigned Idx)
Return the VT typed sub-vector of Vec at Idx.
LLVM_ABI bool cannotBeOrderedNegativeFP(SDValue Op) const
Test whether the given float value is known to be positive.
LLVM_ABI SDValue getRegister(Register Reg, EVT VT)
LLVM_ABI bool calculateDivergence(SDNode *N)
LLVM_ABI std::pair< SDValue, SDValue > getStrcmp(SDValue Chain, const SDLoc &dl, SDValue S0, SDValue S1, const CallInst *CI)
Lower a strcmp operation into a target library call and return the resulting chain and call result as...
LLVM_ABI SDValue getGetFPEnv(SDValue Chain, const SDLoc &dl, SDValue Ptr, EVT MemVT, MachineMemOperand *MMO)
LLVM_ABI SDValue getAssertAlign(const SDLoc &DL, SDValue V, Align A)
Return an AssertAlignSDNode.
LLVM_ABI SDNode * mutateStrictFPToFP(SDNode *Node)
Mutate the specified strict FP node to its non-strict equivalent, unlinking the node from its chain a...
LLVM_ABI bool canIgnoreSignBitOfZero(const SDUse &Use) const
Check if a use of a float value is insensitive to signed zeros.
SDValue getGLOBAL_OFFSET_TABLE(EVT VT)
Return a GLOBAL_OFFSET_TABLE node. This does not have a useful SDLoc.
LLVM_ABI bool SignBitIsZeroFP(SDValue Op, unsigned Depth=0) const
Return true if the sign bit of Op is known to be zero, for a floating-point value.
LLVM_ABI SDValue getMemIntrinsicNode(unsigned Opcode, const SDLoc &dl, SDVTList VTList, ArrayRef< SDValue > Ops, EVT MemVT, MachinePointerInfo PtrInfo, Align Alignment, MachineMemOperand::Flags Flags=MachineMemOperand::MOLoad|MachineMemOperand::MOStore, LocationSize Size=LocationSize::precise(0), const AAMDNodes &AAInfo=AAMDNodes())
Creates a MemIntrinsicNode that may produce a result and takes a list of operands.
SDValue getInsertSubvector(const SDLoc &DL, SDValue Vec, SDValue SubVec, unsigned Idx)
Insert SubVec at the Idx element of Vec.
LLVM_ABI SDValue getBitcastedZExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by first bitcasting (from potentia...
SelectionDAG(const SelectionDAG &)=delete
LLVM_ABI SDValue getStepVector(const SDLoc &DL, EVT ResVT, const APInt &StepVal)
Returns a vector of type ResVT whose elements contain the linear sequence <0, Step,...
SDValue getSetCC(const SDLoc &DL, EVT VT, SDValue LHS, SDValue RHS, ISD::CondCode Cond, SDValue Chain=SDValue(), bool IsSignaling=false, SDNodeFlags Flags={})
Helper function to make it easier to build SetCC's if you just have an ISD::CondCode instead of an SD...
bool willNotOverflowSub(bool IsSigned, SDValue N0, SDValue N1) const
Determine if the result of the sub of 2 nodes can never overflow.
LLVM_ABI SDValue getAtomic(unsigned Opcode, const SDLoc &dl, EVT MemVT, SDValue Chain, SDValue Ptr, SDValue Val, MachineMemOperand *MMO)
Gets a node for an atomic op, produces result (if relevant) and chain and takes 2 operands.
LLVM_ABI Align getEVTAlign(EVT MemoryVT) const
Compute the default alignment value for the given type.
void addNoMergeSiteInfo(const SDNode *Node, bool NoMerge)
Set NoMergeSiteInfo to be associated with Node if NoMerge is true.
LLVM_ABI bool shouldOptForSize() const
std::pair< SDValue, SDValue > SplitVectorOperand(const SDNode *N, unsigned OpNo)
Split the node's operand with EXTRACT_SUBVECTOR and return the low/high part.
bool hasSwiftErrorArg() const
LLVM_ABI SDValue getNOT(const SDLoc &DL, SDValue Val, EVT VT)
Create a bitwise NOT operation as (XOR Val, -1).
const STC & getSubtarget() const
LLVM_ABI SDValue getMemcpy(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size, Align DstAlign, Align SrcAlign, bool isVol, bool AlwaysInline, const CallInst *CI, std::optional< bool > OverrideTailCall, MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo, const AAMDNodes &AAInfo=AAMDNodes(), BatchAAResults *BatchAA=nullptr)
const TargetLowering & getTargetLoweringInfo() const
LLVM_ABI bool isEqualTo(SDValue A, SDValue B) const
Test whether two SDValues are known to compare equal.
std::optional< CalledGlobalInfo > getCalledGlobal(const SDNode *Node)
Return CalledGlobal associated with Node, or a nullopt if none exists.
static constexpr unsigned MaxRecursionDepth
LLVM_ABI SDValue getStridedStoreVP(SDValue Chain, const SDLoc &DL, SDValue Val, SDValue Ptr, SDValue Offset, SDValue Stride, SDValue Mask, SDValue EVL, EVT MemVT, MachineMemOperand *MMO, ISD::MemIndexedMode AM, bool IsTruncating=false, bool IsCompressing=false)
bool isGuaranteedNotToBePoison(SDValue Op, unsigned Depth=0) const
Return true if this function can prove that Op is never poison.
LLVM_ABI SDValue getIdentityElement(unsigned Opcode, const SDLoc &DL, EVT VT, SDNodeFlags Flags)
Get the (commutative) identity element for the given opcode, if it exists.
SDValue getTruncStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, MachinePointerInfo PtrInfo, EVT SVT, MaybeAlign Alignment=MaybeAlign(), MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
LLVM_ABI SDValue expandVACopy(SDNode *Node)
Expand the specified ISD::VACOPY node as the Legalize pass would.
LLVM_ABI SDValue getIndexedMaskedLoad(SDValue OrigLoad, const SDLoc &dl, SDValue Base, SDValue Offset, ISD::MemIndexedMode AM)
SelectionDAG & operator=(const SelectionDAG &)=delete
SDValue getMemIntrinsicNode(unsigned Opcode, const SDLoc &dl, SDVTList VTList, ArrayRef< SDValue > Ops, EVT MemVT, MachinePointerInfo PtrInfo, MaybeAlign Alignment=std::nullopt, MachineMemOperand::Flags Flags=MachineMemOperand::MOLoad|MachineMemOperand::MOStore, LocationSize Size=LocationSize::precise(0), const AAMDNodes &AAInfo=AAMDNodes())
SDValue getTargetConstant(const APInt &Val, const SDLoc &DL, EVT VT, bool isOpaque=false)
LLVM_ABI APInt computeVectorKnownZeroElements(SDValue Op, const APInt &DemandedElts, unsigned Depth=0) const
For each demanded element of a vector, see if it is known to be zero.
LLVM_ABI void AddDbgValue(SDDbgValue *DB, bool isParameter)
Add a dbg_value SDNode.
bool NewNodesMustHaveLegalTypes
When true, additional steps are taken to ensure that getConstant() and similar functions return DAG n...
LLVM_ABI std::pair< EVT, EVT > GetSplitDestVTs(const EVT &VT) const
Compute the VTs needed for the low/hi parts of a type which is split (or expanded) into two not neces...
MDNode * getHeapAllocSite(const SDNode *Node) const
Return HeapAllocSite associated with Node, or nullptr if none exists.
LLVM_ABI void salvageDebugInfo(SDNode &N)
To be invoked on an SDNode that is slated to be erased.
LLVM_ABI SDNode * MorphNodeTo(SDNode *N, unsigned Opc, SDVTList VTs, ArrayRef< SDValue > Ops)
This mutates the specified node to have the specified return type, opcode, and operands.
SDValue getTargetJumpTable(int JTI, EVT VT, unsigned TargetFlags=0)
MDNode * getMMRAMetadata(const SDNode *Node) const
Return the MMRA MDNode associated with Node, or nullptr if none exists.
SDValue getLoadVP(ISD::MemIndexedMode AM, ISD::LoadExtType ExtType, EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue Offset, SDValue Mask, SDValue EVL, MachinePointerInfo PtrInfo, EVT MemVT, MaybeAlign Alignment=MaybeAlign(), MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const AAMDNodes &AAInfo=AAMDNodes(), const MDNode *Ranges=nullptr, bool IsExpanding=false)
LLVM_ABI std::pair< SDValue, SDValue > UnrollVectorOverflowOp(SDNode *N, unsigned ResNE=0)
Like UnrollVectorOp(), but for the [US](ADD|SUB|MUL)O family of opcodes.
allnodes_const_iterator allnodes_begin() const
SDValue getUNDEF(EVT VT)
Return an UNDEF node. UNDEF does not have a useful SDLoc.
SDValue getCALLSEQ_END(SDValue Chain, SDValue Op1, SDValue Op2, SDValue InGlue, const SDLoc &DL)
Return a new CALLSEQ_END node, which always must have a glue result (to ensure it's not CSE'd).
LLVM_ABI SDValue getGatherVP(SDVTList VTs, EVT VT, const SDLoc &dl, ArrayRef< SDValue > Ops, MachineMemOperand *MMO, ISD::MemIndexType IndexType)
SDValue getBuildVector(EVT VT, const SDLoc &DL, ArrayRef< SDValue > Ops)
Return an ISD::BUILD_VECTOR node.
LLVM_ABI SDValue getBitcastedAnyExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by first bitcasting (from potentia...
allnodes_const_iterator allnodes_end() const
LLVM_ABI bool isSplatValue(SDValue V, const APInt &DemandedElts, APInt &UndefElts, unsigned Depth=0) const
Test whether V has a splatted value for all the demanded elements.
LLVM_ABI void DeleteNode(SDNode *N)
Remove the specified node from the system.
LLVM_ABI SDValue getTruncStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, SDValue Offset, MachinePointerInfo PtrInfo, EVT SVT, Align Alignment, MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
LLVM_ABI SDValue getBitcast(EVT VT, SDValue V)
Return a bitcast using the SDLoc of the value operand, and casting to the provided type.
LLVM_ABI SDDbgValue * getDbgValueList(DIVariable *Var, DIExpression *Expr, ArrayRef< SDDbgOperand > Locs, ArrayRef< SDNode * > Dependencies, bool IsIndirect, const DebugLoc &DL, unsigned O, bool IsVariadic)
Creates a SDDbgValue node from a list of locations.
LLVM_ABI std::pair< SDValue, SDValue > getStrcpy(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, const CallInst *CI)
Lower a strcpy operation into a target library call and return the resulting chain and call result as...
SDValue getCopyFromReg(SDValue Chain, const SDLoc &dl, Register Reg, EVT VT)
SDValue getSelect(const SDLoc &DL, EVT VT, SDValue Cond, SDValue LHS, SDValue RHS, SDNodeFlags Flags=SDNodeFlags())
Helper function to make it easier to build Select's if you just have operands and don't want to check...
SDDbgInfo::DbgIterator DbgEnd() const
LLVM_ABI SDValue getNegative(SDValue Val, const SDLoc &DL, EVT VT)
Create negative operation as (SUB 0, Val).
LLVM_ABI std::optional< unsigned > getValidShiftAmount(SDValue V, const APInt &DemandedElts, unsigned Depth=0) const
If a SHL/SRA/SRL node V has a uniform shift amount that is less than the element bit-width of the shi...
LLVM_ABI void setNodeMemRefs(MachineSDNode *N, ArrayRef< MachineMemOperand * > NewMemRefs)
Mutate the specified machine node's memory references to the provided list.
LLVM_ABI SDValue simplifySelect(SDValue Cond, SDValue TVal, SDValue FVal)
Try to simplify a select/vselect into 1 of its operands or a constant.
CallSiteInfo getCallSiteInfo(const SDNode *Node)
Return CallSiteInfo associated with Node, or a default if none exists.
LLVM_ABI SDValue getZeroExtendInReg(SDValue Op, const SDLoc &DL, EVT VT)
Return the expression required to zero extend the Op value assuming it was the smaller SrcTy value.
LLVM_ABI bool isConstantFPBuildVectorOrConstantFP(SDValue N) const
Test whether the given value is a constant FP or similar node.
const DataLayout & getDataLayout() const
allnodes_iterator allnodes_begin()
LLVM_ABI SDValue getPartialReduceMLS(unsigned Opc, const SDLoc &DL, SDValue Acc, SDValue LHS, SDValue RHS)
Get an expression that implements a partial multiply-subtract reduction.
iterator_range< allnodes_const_iterator > allnodes() const
MDNode * getPCSections(const SDNode *Node) const
Return PCSections associated with Node, or nullptr if none exists.
ProfileSummaryInfo * getPSI() const
LLVM_ABI SDValue expandVAArg(SDNode *Node)
Expand the specified ISD::VAARG node as the Legalize pass would.
SDValue getTargetFrameIndex(int FI, EVT VT)
LLVM_ABI void Legalize()
This transforms the SelectionDAG into a SelectionDAG that is compatible with the target instruction s...
LLVM_ABI SDValue getTokenFactor(const SDLoc &DL, SmallVectorImpl< SDValue > &Vals)
Creates a new TokenFactor containing Vals.
LLVM_ABI void setGraphAttrs(const SDNode *N, const char *Attrs)
Set graph attributes for a node. (eg. "color=red".)
SDValue getCopyToReg(SDValue Chain, const SDLoc &dl, SDValue Reg, SDValue N, SDValue Glue)
LLVM_ABI SDValue getStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, MachinePointerInfo PtrInfo, Align Alignment, MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
Helper function to build ISD::STORE nodes.
LLVM_ABI bool LegalizeOp(SDNode *N, SmallSetVector< SDNode *, 16 > &UpdatedNodes)
Transforms a SelectionDAG node and any operands to it into a node that is compatible with the target ...
LLVM_ABI bool doesNodeExist(unsigned Opcode, SDVTList VTList, ArrayRef< SDValue > Ops)
Check if a node exists without modifying its flags.
LLVM_ABI ConstantRange computeConstantRangeIncludingKnownBits(SDValue Op, bool ForSigned, unsigned Depth=0) const
Combine constant ranges from computeConstantRange() and computeKnownBits().
void addHeapAllocSite(const SDNode *Node, MDNode *MD)
Set HeapAllocSite to be associated with Node.
const SelectionDAGTargetInfo & getSelectionDAGInfo() const
LLVM_ABI bool areNonVolatileConsecutiveLoads(LoadSDNode *LD, LoadSDNode *Base, unsigned Bytes, int Dist) const
Return true if loads are next to each other and can be merged.
LLVM_ABI SDValue getMaskedHistogram(SDVTList VTs, EVT MemVT, const SDLoc &dl, ArrayRef< SDValue > Ops, MachineMemOperand *MMO, ISD::MemIndexType IndexType)
LLVM_ABI SDDbgLabel * getDbgLabel(DILabel *Label, const DebugLoc &DL, unsigned O)
Creates a SDDbgLabel node.
SDValue getTargetConstant(const ConstantInt &Val, const SDLoc &DL, EVT VT, bool isOpaque=false)
LLVM_ABI SDValue getStoreVP(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, SDValue Offset, SDValue Mask, SDValue EVL, EVT MemVT, MachineMemOperand *MMO, ISD::MemIndexedMode AM, bool IsTruncating=false, bool IsCompressing=false)
std::pair< SDValue, SDValue > SplitVector(const SDValue &N, const SDLoc &DL)
Split the vector with EXTRACT_SUBVECTOR and return the low/high part.
LLVM_ABI OverflowKind computeOverflowForUnsignedMul(SDValue N0, SDValue N1) const
Determine if the result of the unsigned mul of 2 nodes can overflow.
SDValue getCopyToReg(SDValue Chain, const SDLoc &dl, Register Reg, SDValue N, SDValue Glue)
LLVM_ABI void copyExtraInfo(SDNode *From, SDNode *To)
Copy extra info associated with one node to another.
LLVM_ABI SDValue getConstant(uint64_t Val, const SDLoc &DL, EVT VT, bool isTarget=false, bool isOpaque=false)
Create a ConstantSDNode wrapping a constant value.
LLVM_ABI void setGraphColor(const SDNode *N, const char *Color)
Convenience for setting node color attribute.
LLVM_ABI SDValue getMemBasePlusOffset(SDValue Base, TypeSize Offset, const SDLoc &DL, const SDNodeFlags Flags=SDNodeFlags())
Returns sum of the base pointer and offset.
LLVM_ABI SDValue getGlobalAddress(const GlobalValue *GV, const SDLoc &DL, EVT VT, int64_t offset=0, bool isTargetGA=false, unsigned TargetFlags=0)
bool willNotOverflowMul(bool IsSigned, SDValue N0, SDValue N1) const
Determine if the result of the mul of 2 nodes can never overflow.
SDValue getSignedTargetConstant(int64_t Val, const SDLoc &DL, EVT VT, bool isOpaque=false)
LLVM_ABI SDValue getVAArg(EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue SV, unsigned Align)
VAArg produces a result and token chain, and takes a pointer and a source value as input.
OverflowKind computeOverflowForMul(bool IsSigned, SDValue N0, SDValue N1) const
Determine if the result of the mul of 2 nodes can overflow.
LLVM_ABI SDValue getLoadFFVP(EVT VT, const SDLoc &DL, SDValue Chain, SDValue Ptr, SDValue Mask, SDValue EVL, MachineMemOperand *MMO)
LLVM_ABI SDValue getTypeSize(const SDLoc &DL, EVT VT, TypeSize TS)
LLVM_ABI SDValue getMDNode(const MDNode *MD)
Return an MDNodeSDNode which holds an MDNode.
LLVM_ABI void clear()
Clear state and free memory necessary to make this SelectionDAG ready to process a new block.
SDValue getCALLSEQ_END(SDValue Chain, uint64_t Size1, uint64_t Size2, SDValue Glue, const SDLoc &DL)
LLVM_ABI std::pair< SDValue, SDValue > getMemcmp(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size, const CallInst *CI)
Lower a memcmp operation into a target library call and return the resulting chain and call result as...
LLVM_ABI void ReplaceAllUsesWith(SDValue From, SDValue To)
Modify anything using 'From' to use 'To' instead.
LLVM_ABI SDValue getStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, SDValue Offset, MachineMemOperand *MMO)
LLVM_ABI SDValue getCommutedVectorShuffle(const ShuffleVectorSDNode &SV)
Returns an ISD::VECTOR_SHUFFLE node semantically equivalent to the shuffle node in input but with swa...
LLVM_ABI SDValue getExtLoad(ISD::LoadExtType ExtType, const SDLoc &dl, EVT VT, SDValue Chain, SDValue Ptr, MachinePointerInfo PtrInfo, EVT MemVT, MaybeAlign Alignment=MaybeAlign(), MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
LLVM_ABI std::pair< SDValue, SDValue > SplitVector(const SDValue &N, const SDLoc &DL, const EVT &LoVT, const EVT &HiVT)
Split the vector with EXTRACT_SUBVECTOR using the provided VTs and return the low/high part.
LLVM_ABI SDValue makeStateFunctionCall(unsigned LibFunc, SDValue Ptr, SDValue InChain, const SDLoc &DLoc)
Helper used to make a call to a library function that has one argument of pointer type.
LLVM_ABI SDValue getSignedConstant(int64_t Val, const SDLoc &DL, EVT VT, bool isTarget=false, bool isOpaque=false)
LLVM_ABI SDValue getIndexedLoadVP(SDValue OrigLoad, const SDLoc &dl, SDValue Base, SDValue Offset, ISD::MemIndexedMode AM)
LLVM_ABI SDValue getSrcValue(const Value *v)
Construct a node to track a Value* through the backend.
SDValue getSplatVector(EVT VT, const SDLoc &DL, SDValue Op)
LLVM_ABI SDValue getAtomicMemcpy(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size, Type *SizeTy, unsigned ElemSz, bool isTailCall, MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo)
LLVM_ABI OverflowKind computeOverflowForSignedMul(SDValue N0, SDValue N1) const
Determine if the result of the signed mul of 2 nodes can overflow.
LLVM_ABI MaybeAlign InferPtrAlign(SDValue Ptr) const
Infer alignment of a load / store address.
LLVM_ABI void dump() const
Dump the textual format of this DAG.
FlagInserter * getFlagInserter()
LLVM_ABI bool MaskedValueIsAllOnes(SDValue Op, const APInt &Mask, unsigned Depth=0) const
Return true if '(Op & Mask) == Mask'.
SDValue getCALLSEQ_START(SDValue Chain, uint64_t InSize, uint64_t OutSize, const SDLoc &DL)
Return a new CALLSEQ_START node, that starts new call frame, in which InSize bytes are set up inside ...
bool hasDebugValues() const
Return true if there are any SDDbgValue nodes associated with this SelectionDAG.
LLVM_ABI bool SignBitIsZero(SDValue Op, unsigned Depth=0) const
Return true if the sign bit of Op is known to be zero.
LLVM_ABI void RemoveDeadNodes()
This method deletes all unreachable nodes in the SelectionDAG.
LLVM_ABI void RemoveDeadNode(SDNode *N)
Remove the specified node from the system.
SDValue getBuildVector(EVT VT, const SDLoc &DL, ArrayRef< SDUse > Ops)
Return an ISD::BUILD_VECTOR node.
LLVM_ABI void AddDbgLabel(SDDbgLabel *DB)
Add a dbg_label SDNode.
bool isConstantValueOfAnyType(SDValue N) const
SDDbgInfo::DbgLabelIterator DbgLabelEnd() const
allnodes_iterator allnodes_end()
SDDbgInfo::DbgLabelIterator DbgLabelBegin() const
LLVM_ABI bool canCreateUndefOrPoison(SDValue Op, const APInt &DemandedElts, UndefPoisonKind Kind=UndefPoisonKind::UndefOrPoison, bool ConsiderFlags=true, unsigned Depth=0) const
Return true if Op can create undef or poison from non-undef & non-poison operands.
SDValue getInsertVectorElt(const SDLoc &DL, SDValue Vec, SDValue Elt, unsigned Idx)
Insert Elt into Vec at offset Idx.
LLVM_ABI SDValue getTargetExtractSubreg(int SRIdx, const SDLoc &DL, EVT VT, SDValue Operand)
A convenience function for creating TargetInstrInfo::EXTRACT_SUBREG nodes.
LLVM_ABI SDValue getBasicBlock(MachineBasicBlock *MBB)
SDValue getSelectCC(const SDLoc &DL, SDValue LHS, SDValue RHS, SDValue True, SDValue False, ISD::CondCode Cond, SDNodeFlags Flags=SDNodeFlags())
Helper function to make it easier to build SelectCC's if you just have an ISD::CondCode instead of an...
MachineFunctionAnalysisManager * getMFAM()
LLVM_ABI SDValue getSExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by either sign-extending or trunca...
LLVM_ABI SDDbgValue * getVRegDbgValue(DIVariable *Var, DIExpression *Expr, Register VReg, bool IsIndirect, const DebugLoc &DL, unsigned O)
Creates a VReg SDDbgValue node.
LLVM_ABI SDValue getLoad(EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr, MachinePointerInfo PtrInfo, MaybeAlign Alignment=MaybeAlign(), MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
Loads are not normal binary operators: their result type is not determined by their operands,...
LLVM_ABI KnownFPClass computeKnownFPClass(SDValue Op, FPClassTest InterestedClasses, unsigned Depth=0) const
Determine floating-point class information about Op.
LLVM_ABI bool isIdentityElement(unsigned Opc, SDNodeFlags Flags, SDValue V, unsigned OperandNo, unsigned Depth=0) const
Returns true if V is an identity element of Opc with Flags.
LLVM_ABI SDValue getEHLabel(const SDLoc &dl, SDValue Root, MCSymbol *Label)
LLVM_ABI std::string getGraphAttrs(const SDNode *N) const
Get graph attributes for a node.
LLVM_ABI SDValue getIndexedStoreVP(SDValue OrigStore, const SDLoc &dl, SDValue Base, SDValue Offset, ISD::MemIndexedMode AM)
LLVM_ABI bool isGuaranteedNotToBeUndefOrPoison(SDValue Op, UndefPoisonKind Kind=UndefPoisonKind::UndefOrPoison, unsigned Depth=0) const
Return true if this function can prove that Op is never poison and, Kind can be used to track poison ...
LLVM_ABI bool isKnownNeverZero(SDValue Op, unsigned Depth=0) const
Test whether the given SDValue is known to contain non-zero value(s).
LLVM_ABI SDValue getIndexedStore(SDValue OrigStore, const SDLoc &dl, SDValue Base, SDValue Offset, ISD::MemIndexedMode AM)
LLVM_ABI SDValue FoldConstantArithmetic(unsigned Opcode, const SDLoc &DL, EVT VT, ArrayRef< SDValue > Ops, SDNodeFlags Flags=SDNodeFlags())
LLVM_ABI std::optional< unsigned > getValidMinimumShiftAmount(SDValue V, const APInt &DemandedElts, unsigned Depth=0) const
If a SHL/SRA/SRL node V has shift amounts that are all less than the element bit-width of the shift n...
LLVM_ABI SDValue getSetFPEnv(SDValue Chain, const SDLoc &dl, SDValue Ptr, EVT MemVT, MachineMemOperand *MMO)
LLVM_ABI SDValue getBoolExtOrTrunc(SDValue Op, const SDLoc &SL, EVT VT, EVT OpVT)
Convert Op, which must be of integer type, to the integer type VT, by using an extension appropriate ...
LLVM_ABI SDValue getMaskedStore(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Base, SDValue Offset, SDValue Mask, EVT MemVT, MachineMemOperand *MMO, ISD::MemIndexedMode AM, bool IsTruncating=false, bool IsCompressing=false)
LLVM_ABI SDValue getExternalSymbol(const char *Sym, EVT VT)
const TargetMachine & getTarget() const
bool getNoMergeSiteInfo(const SDNode *Node) const
Return NoMerge info associated with Node.
LLVM_ABI std::pair< SDValue, SDValue > getStrictFPExtendOrRound(SDValue Op, SDValue Chain, const SDLoc &DL, EVT VT)
Convert Op, which must be a STRICT operation of float type, to the float type VT, by either extending...
SDValue getObjectPtrOffset(const SDLoc &SL, SDValue Ptr, SDValue Offset)
LLVM_ABI std::pair< SDValue, SDValue > SplitEVL(SDValue N, EVT VecVT, const SDLoc &DL)
Split the explicit vector length parameter of a VP operation.
LLVM_ABI SDValue getPtrExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by either truncating it or perform...
LLVM_ABI SDValue getMaskFromElementCount(const SDLoc &DL, EVT VT, ElementCount Len)
Return a vector with the first 'Len' lanes set to true and remaining lanes set to false.
SDDbgInfo::DbgIterator DbgBegin() const
LLVM_ABI SDValue getAnyExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by either any-extending or truncat...
iterator_range< allnodes_iterator > allnodes()
OverflowKind computeOverflowForAdd(bool IsSigned, SDValue N0, SDValue N1) const
Determine if the result of the addition of 2 nodes can overflow.
LLVM_ABI SDValue getBlockAddress(const BlockAddress *BA, EVT VT, int64_t Offset=0, bool isTarget=false, unsigned TargetFlags=0)
LLVM_ABI SDValue WidenVector(const SDValue &N, const SDLoc &DL)
Widen the vector up to the next power of two using INSERT_SUBVECTOR.
const LibcallLoweringInfo & getLibcalls() const
LLVM_ABI SDValue getLoadVP(ISD::MemIndexedMode AM, ISD::LoadExtType ExtType, EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue Offset, SDValue Mask, SDValue EVL, MachinePointerInfo PtrInfo, EVT MemVT, Align Alignment, MachineMemOperand::Flags MMOFlags, const AAMDNodes &AAInfo, const MDNode *Ranges=nullptr, bool IsExpanding=false)
LLVM_ABI SDValue getIntPtrConstant(uint64_t Val, const SDLoc &DL, bool isTarget=false)
LLVM_ABI SDDbgValue * getConstantDbgValue(DIVariable *Var, DIExpression *Expr, const Value *C, const DebugLoc &DL, unsigned O)
Creates a constant SDDbgValue node.
LLVM_ABI SDValue getScatterVP(SDVTList VTs, EVT VT, const SDLoc &dl, ArrayRef< SDValue > Ops, MachineMemOperand *MMO, ISD::MemIndexType IndexType)
LLVM_ABI SDValue getValueType(EVT)
SDValue getTargetConstantFP(double Val, const SDLoc &DL, EVT VT)
LLVM_ABI SDValue getLifetimeNode(bool IsStart, const SDLoc &dl, SDValue Chain, int FrameIndex)
Creates a LifetimeSDNode that starts (IsStart==true) or ends (IsStart==false) the lifetime of the Fra...
ArrayRef< SDDbgValue * > GetDbgValues(const SDNode *SD) const
Get the debug values which reference the given SDNode.
LLVM_ABI SDValue getNode(unsigned Opcode, const SDLoc &DL, EVT VT, ArrayRef< SDUse > Ops)
Gets or creates the specified node.
LLVM_ABI OverflowKind computeOverflowForSignedAdd(SDValue N0, SDValue N1) const
Determine if the result of the signed addition of 2 nodes can overflow.
LLVM_ABI SDValue getFPExtendOrRound(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of float type, to the float type VT, by either extending or rounding (by tr...
LLVM_ABI unsigned AssignTopologicalOrder()
Topological-sort the AllNodes list and a assign a unique node id for each node in the DAG based on th...
ilist< SDNode >::size_type allnodes_size() const
LLVM_ABI bool isKnownNeverNaN(SDValue Op, const APInt &DemandedElts, bool SNaN=false, unsigned Depth=0) const
Test whether the given SDValue (or all elements of it, if it is a vector) is known to never be NaN in...
LLVM_ABI SDValue FoldConstantBuildVector(BuildVectorSDNode *BV, const SDLoc &DL, EVT DstEltVT)
Fold BUILD_VECTOR of constants/undefs to the destination type BUILD_VECTOR of constants/undefs elemen...
ilist< SDNode >::const_iterator allnodes_const_iterator
LLVM_ABI SDValue getAtomicMemmove(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size, Type *SizeTy, unsigned ElemSz, bool isTailCall, MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo)
LLVM_ABI SDValue getIndexedMaskedStore(SDValue OrigStore, const SDLoc &dl, SDValue Base, SDValue Offset, ISD::MemIndexedMode AM)
LLVM_ABI SDValue getTruncStoreVP(SDValue Chain, const SDLoc &dl, SDValue Val, SDValue Ptr, SDValue Mask, SDValue EVL, MachinePointerInfo PtrInfo, EVT SVT, Align Alignment, MachineMemOperand::Flags MMOFlags, const AAMDNodes &AAInfo, bool IsCompressing=false)
SDValue getTargetConstant(uint64_t Val, const SDLoc &DL, EVT VT, bool isOpaque=false)
const TargetLibraryInfo & getLibInfo() const
LLVM_ABI unsigned ComputeNumSignBits(SDValue Op, unsigned Depth=0) const
Return the number of times the sign bit of the register is replicated into the other bits.
void addCalledGlobal(const SDNode *Node, const GlobalValue *GV, unsigned OpFlags)
Set CalledGlobal to be associated with Node.
LLVM_ABI bool MaskedVectorIsZero(SDValue Op, const APInt &DemandedElts, unsigned Depth=0) const
Return true if 'Op' is known to be zero in DemandedElts.
LLVM_ABI SDValue getBoolConstant(bool V, const SDLoc &DL, EVT VT, EVT OpVT)
Create a true or false constant of type VT using the target's BooleanContent for type OpVT.
SDValue getTargetBlockAddress(const BlockAddress *BA, EVT VT, int64_t Offset=0, unsigned TargetFlags=0)
LLVM_ABI SDDbgValue * getFrameIndexDbgValue(DIVariable *Var, DIExpression *Expr, unsigned FI, bool IsIndirect, const DebugLoc &DL, unsigned O)
Creates a FrameIndex SDDbgValue node.
const UniformityInfo * getUniformityInfo() const
LLVM_ABI SDValue getExtStridedLoadVP(ISD::LoadExtType ExtType, const SDLoc &DL, EVT VT, SDValue Chain, SDValue Ptr, SDValue Stride, SDValue Mask, SDValue EVL, EVT MemVT, MachineMemOperand *MMO, bool IsExpanding=false)
CodeGenOptLevel getOptLevel() const
LLVM_ABI SDValue getMemmove(SDValue Chain, const SDLoc &dl, SDValue Dst, SDValue Src, SDValue Size, Align DstAlign, Align SrcAlign, bool isVol, const CallInst *CI, std::optional< bool > OverrideTailCall, MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo, const AAMDNodes &AAInfo=AAMDNodes(), BatchAAResults *BatchAA=nullptr)
LLVM_ABI SDValue getJumpTable(int JTI, EVT VT, bool isTarget=false, unsigned TargetFlags=0)
LLVM_ABI bool isBaseWithConstantOffset(SDValue Op) const
Return true if the specified operand is an ISD::ADD with a ConstantSDNode on the right-hand side,...
LLVM_ABI SDValue getVectorIdxConstant(uint64_t Val, const SDLoc &DL, bool isTarget=false)
LLVM_ABI void getTopologicallyOrderedNodes(SmallVectorImpl< const SDNode * > &SortedNodes) const
Get all the nodes in their topological order without modifying any states.
LLVM_ABI void ReplaceAllUsesOfValueWith(SDValue From, SDValue To)
Replace any uses of From with To, leaving uses of other values produced by From.getNode() alone.
MachineFunction & getMachineFunction() const
LLVM_ABI std::pair< SDValue, SDValue > getStrstr(SDValue Chain, const SDLoc &dl, SDValue S0, SDValue S1, const CallInst *CI)
Lower a strstr operation into a target library call and return the resulting chain and call result as...
LLVM_ABI SDValue getPtrExtendInReg(SDValue Op, const SDLoc &DL, EVT VT)
Return the expression required to extend the Op as a pointer value assuming it was the smaller SrcTy ...
LLVM_ABI OverflowKind computeOverflowForUnsignedAdd(SDValue N0, SDValue N1) const
Determine if the result of the unsigned addition of 2 nodes can overflow.
SDValue getPOISON(EVT VT)
Return a POISON node. POISON does not have a useful SDLoc.
void setFlagInserter(FlagInserter *FI)
SDValue getSplatBuildVector(EVT VT, const SDLoc &DL, SDValue Op)
Return a splat ISD::BUILD_VECTOR node, consisting of Op splatted to all elements.
bool isSafeToSpeculativelyExecuteNode(const SDNode *N) const
Check if the provided node is save to speculatively executed given its current arguments.
LLVM_ABI SDValue getErrorMergeValues(ArrayRef< EVT > ResultTypes, SDValue Chain, const SDLoc &dl)
Return poison values for each of ResultTypes, substituting Chain for any result of type MVT::Other,...
LLVM_ABI SDValue getFrameIndex(int FI, EVT VT, bool isTarget=false)
LLVM_ABI SDValue getTruncStridedStoreVP(SDValue Chain, const SDLoc &DL, SDValue Val, SDValue Ptr, SDValue Stride, SDValue Mask, SDValue EVL, EVT SVT, MachineMemOperand *MMO, bool IsCompressing=false)
const FunctionVarLocs * getFunctionVarLocs() const
Returns the result of the AssignmentTrackingAnalysis pass if it's available, otherwise return nullptr...
LLVM_ABI void canonicalizeCommutativeBinop(unsigned Opcode, SDValue &N1, SDValue &N2) const
Swap N1 and N2 if Opcode is a commutative binary opcode and the canonical form expects the opposite o...
LLVM_ABI KnownBits computeKnownBits(SDValue Op, unsigned Depth=0) const
Determine which bits of Op are known to be either zero or one and return them in Known.
LLVM_ABI SDValue getRegisterMask(const uint32_t *RegMask)
LLVM_ABI SDValue getZExtOrTrunc(SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by either zero-extending or trunca...
LLVM_ABI SDValue getCondCode(ISD::CondCode Cond)
void addCallSiteInfo(const SDNode *Node, CallSiteInfo &&CallInfo)
Set CallSiteInfo to be associated with Node.
SDValue getExtOrTrunc(bool IsSigned, SDValue Op, const SDLoc &DL, EVT VT)
Convert Op, which must be of integer type, to the integer type VT, by either sign/zero-extending (dep...
LLVM_ABI bool MaskedValueIsZero(SDValue Op, const APInt &Mask, unsigned Depth=0) const
Return true if 'Op & Mask' is known to be zero.
LLVM_ABI bool isKnownToBeAPowerOfTwoFP(SDValue Val, unsigned Depth=0) const
Test if the given fp value is known to be an integer power-of-2, either positive or negative.
LLVM_ABI OverflowKind computeOverflowForSignedSub(SDValue N0, SDValue N1) const
Determine if the result of the signed sub of 2 nodes can overflow.
SDValue getObjectPtrOffset(const SDLoc &SL, SDValue Ptr, TypeSize Offset)
Create an add instruction with appropriate flags when used for addressing some offset of an object.
LLVMContext * getContext() const
LLVM_ABI SDValue simplifyFPBinop(unsigned Opcode, SDValue X, SDValue Y, SDNodeFlags Flags)
Try to simplify a floating-point binary operation into 1 of its operands or a constant.
const SDValue & setRoot(SDValue N)
Set the current root tag of the SelectionDAG.
void addPCSections(const SDNode *Node, MDNode *MD)
Set PCSections to be associated with Node.
LLVM_ABI bool isKnownToBeAPowerOfTwo(SDValue Val, bool OrZero=false, unsigned Depth=0) const
Test if the given value is known to have exactly one bit set.
bool isGuaranteedNotToBePoison(SDValue Op, const APInt &DemandedElts, unsigned Depth=0) const
Return true if this function can prove that Op is never poison.
SDValue getTargetConstantPool(MachineConstantPoolValue *C, EVT VT, MaybeAlign Align=std::nullopt, int Offset=0, unsigned TargetFlags=0)
LLVM_ABI SDValue getDeactivationSymbol(const GlobalValue *GV)
LLVM_ABI void clearGraphAttrs()
Clear all previously defined node graph attributes.
LLVM_ABI SDValue getTargetExternalSymbol(const char *Sym, EVT VT, unsigned TargetFlags=0)
LLVM_ABI SDValue getMCSymbol(MCSymbol *Sym, EVT VT)
LLVM_ABI bool isUndef(unsigned Opcode, ArrayRef< SDValue > Ops)
Return true if the result of this operation is always undefined.
LLVM_ABI SDValue CreateStackTemporary(TypeSize Bytes, Align Alignment)
Create a stack temporary based on the size in bytes and the alignment.
LLVM_ABI SDNode * UpdateNodeOperands(SDNode *N, SDValue Op)
Mutate the specified node in-place to have the specified operands.
LLVM_ABI std::pair< EVT, EVT > GetDependentSplitDestVTs(const EVT &VT, const EVT &EnvVT, bool *HiIsEmpty) const
Compute the VTs needed for the low/hi parts of a type, dependent on an enveloping VT that has been sp...
LLVM_ABI SDValue foldConstantFPMath(unsigned Opcode, const SDLoc &DL, EVT VT, ArrayRef< SDValue > Ops)
Fold floating-point operations when all operands are constants and/or undefined.
SDValue getTargetConstantPool(const Constant *C, EVT VT, MaybeAlign Align=std::nullopt, int Offset=0, unsigned TargetFlags=0)
LLVM_ABI std::optional< ConstantRange > getValidShiftAmountRange(SDValue V, const APInt &DemandedElts, unsigned Depth) const
If a SHL/SRA/SRL node V has shift amounts that are all less than the element bit-width of the shift n...
LLVM_ABI SDValue FoldSymbolOffset(unsigned Opcode, EVT VT, const GlobalAddressSDNode *GA, const SDNode *N2)
void RepositionNode(allnodes_iterator Position, SDNode *N)
Move node N in the AllNodes list to be immediately before the given iterator Position.
SDValue getLoad(ISD::MemIndexedMode AM, ISD::LoadExtType ExtType, EVT VT, const SDLoc &dl, SDValue Chain, SDValue Ptr, SDValue Offset, MachinePointerInfo PtrInfo, EVT MemVT, MaybeAlign Alignment=MaybeAlign(), MachineMemOperand::Flags MMOFlags=MachineMemOperand::MONone, const MMOMetadata &Metadata=MMOMetadata())
LLVM_ABI SDValue getIndexedLoad(SDValue OrigLoad, const SDLoc &dl, SDValue Base, SDValue Offset, ISD::MemIndexedMode AM)
LLVM_ABI SDValue getTargetInsertSubreg(int SRIdx, const SDLoc &DL, EVT VT, SDValue Operand, SDValue Subreg)
A convenience function for creating TargetInstrInfo::INSERT_SUBREG nodes.
SDValue getEntryNode() const
Return the token chain corresponding to the entry of the function.
LLVM_ABI SDDbgValue * getDbgValue(DIVariable *Var, DIExpression *Expr, SDNode *N, unsigned R, bool IsIndirect, const DebugLoc &DL, unsigned O)
Creates a SDDbgValue node.
LLVM_ABI void setSubgraphColor(SDNode *N, const char *Color)
Convenience for setting subgraph color attribute.
LLVM_ABI SDValue getMaskedLoad(EVT VT, const SDLoc &dl, SDValue Chain, SDValue Base, SDValue Offset, SDValue Mask, SDValue Src0, EVT MemVT, MachineMemOperand *MMO, ISD::MemIndexedMode AM, ISD::LoadExtType, bool IsExpanding=false)
SDValue getTargetConstantFP(const ConstantFP &Val, const SDLoc &DL, EVT VT)
DenormalMode getDenormalMode(EVT VT) const
Return the current function's default denormal handling kind for the given floating point type.
SDValue getSplat(EVT VT, const SDLoc &DL, SDValue Op)
Returns a node representing a splat of one value into all lanes of the provided vector type.
LLVM_ABI std::pair< SDValue, SDValue > SplitScalar(const SDValue &N, const SDLoc &DL, const EVT &LoVT, const EVT &HiVT)
Split the scalar node with EXTRACT_ELEMENT using the provided VTs and return the low/high part.
static unsigned getOpcode_EXTEND(unsigned Opcode)
Convert *_EXTEND_VECTOR_INREG to *_EXTEND opcode.
LLVM_ABI SDValue matchBinOpReduction(SDNode *Extract, ISD::NodeType &BinOp, ArrayRef< ISD::NodeType > CandidateBinOps, bool AllowPartials=false)
Match a binop + shuffle pyramid that represents a horizontal reduction over the elements of a vector ...
LLVM_ABI bool isADDLike(SDValue Op, bool NoWrap=false) const
Return true if the specified operand is an ISD::OR or ISD::XOR node that can be treated as an ISD::AD...
LLVM_ABI SDValue getVectorShuffle(EVT VT, const SDLoc &dl, SDValue N1, SDValue N2, ArrayRef< int > Mask)
Return an ISD::VECTOR_SHUFFLE node.
LLVM_DUMP_METHOD void dumpDotGraph(const Twine &FileName, const Twine &Title)
Just dump dot graph to a user-provided path and title.
LLVM_ABI SDValue simplifyShift(SDValue X, SDValue Y)
Try to simplify a shift into 1 of its operands or a constant.
LLVM_ABI void transferDbgValues(SDValue From, SDValue To, unsigned OffsetInBits=0, unsigned SizeInBits=0, bool InvalidateDbg=true)
Transfer debug values from one node to another, while optionally generating fragment expressions for ...
LLVM_ABI SDValue getLogicalNOT(const SDLoc &DL, SDValue Val, EVT VT)
Create a logical NOT operation as (XOR Val, BooleanOne).
LLVM_ABI SDValue getMaskedScatter(SDVTList VTs, EVT MemVT, const SDLoc &dl, ArrayRef< SDValue > Ops, MachineMemOperand *MMO, ISD::MemIndexType IndexType, bool IsTruncating=false)
ilist< SDNode >::iterator allnodes_iterator
LLVM_ABI bool LegalizeTypes()
This transforms the SelectionDAG into a SelectionDAG that only uses types natively supported by the t...
This SDNode is used to implement the code generator support for the llvm IR shufflevector instruction...
A SetVector that performs no allocations if smaller than a certain size.
Definition SetVector.h:345
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
typename SuperClass::iterator iterator
This is a 'vector' (really, a variable-sized array), optimized for the case when the array is small.
StringMap - This is an unconventional map that is specialized for handling keys that are "strings",...
Definition StringMap.h:128
Provides information about what library functions are available for the current target.
This class defines information used to lower LLVM code to legal SelectionDAG operators that the targe...
Primary interface to the complete machine description for the target machine.
TargetSubtargetInfo - Generic base class for all target subtargets.
Twine - A lightweight data structure for efficiently representing the concatenation of temporary valu...
Definition Twine.h:82
The instances of the Type class are immutable: once they are created, they are never changed.
Definition Type.h:46
A Use represents the edge between a Value definition and its users.
Definition Use.h:35
LLVM Value Representation.
Definition Value.h:75
typename base_list_type::const_iterator const_iterator
Definition ilist.h:122
A range adaptor for a pair of iterators.
This file defines classes to implement an intrusive doubly linked list class (i.e.
This provides a very simple, boring adaptor for a begin and end iterator into a range type.
#define llvm_unreachable(msg)
Marks that the current location is not supposed to be reachable.
NodeType
ISD::NodeType enum - This enum defines the target-independent operators for a SelectionDAG.
Definition ISDOpcodes.h:41
@ SETCC
SetCC operator - This evaluates to a true value iff the condition is true.
Definition ISDOpcodes.h:829
@ STRICT_FSETCC
STRICT_FSETCC/STRICT_FSETCCS - Constrained versions of SETCC, used for floating-point operands only.
Definition ISDOpcodes.h:513
@ POISON
POISON - A poison node.
Definition ISDOpcodes.h:236
@ INSERT_SUBVECTOR
INSERT_SUBVECTOR(VECTOR1, VECTOR2, IDX) - Returns a vector with VECTOR2 inserted into VECTOR1.
Definition ISDOpcodes.h:602
@ ANY_EXTEND
ANY_EXTEND - Used for integer types. The high bits are undefined.
Definition ISDOpcodes.h:863
@ SIGN_EXTEND_VECTOR_INREG
SIGN_EXTEND_VECTOR_INREG(Vector) - This operator represents an in-register sign-extension of the low ...
Definition ISDOpcodes.h:920
@ SDIVREM
SDIVREM/UDIVREM - Divide two integers and produce both a quotient and remainder result.
Definition ISDOpcodes.h:280
@ SIGN_EXTEND
Conversion operators.
Definition ISDOpcodes.h:854
@ SELECT
Select(COND, TRUEVAL, FALSEVAL).
Definition ISDOpcodes.h:806
@ UNDEF
UNDEF - An undefined node.
Definition ISDOpcodes.h:233
@ SPLAT_VECTOR
SPLAT_VECTOR(VAL) - Returns a vector with the scalar value VAL duplicated in all lanes.
Definition ISDOpcodes.h:674
@ CopyFromReg
CopyFromReg - This node indicates that the input value is a virtual or physical register that is defi...
Definition ISDOpcodes.h:230
@ EXTRACT_SUBVECTOR
EXTRACT_SUBVECTOR(VECTOR, IDX) - Returns a subvector from VECTOR.
Definition ISDOpcodes.h:616
@ EXTRACT_VECTOR_ELT
EXTRACT_VECTOR_ELT(VECTOR, IDX) - Returns a single element from VECTOR identified by the (potentially...
Definition ISDOpcodes.h:578
@ CopyToReg
CopyToReg - This node has three operands: a chain, a register number to set to this value,...
Definition ISDOpcodes.h:224
@ ZERO_EXTEND
ZERO_EXTEND - Used for integer types, zeroing the new bits.
Definition ISDOpcodes.h:860
@ SELECT_CC
Select with condition operator - This selects between a true value and a false value (ops #2 and #3) ...
Definition ISDOpcodes.h:821
@ ANY_EXTEND_VECTOR_INREG
ANY_EXTEND_VECTOR_INREG(Vector) - This operator represents an in-register any-extension of the low la...
Definition ISDOpcodes.h:909
@ GLOBAL_OFFSET_TABLE
The address of the GOT.
Definition ISDOpcodes.h:103
@ VSELECT
Select with a vector condition (op #0) and two vector operands (ops #1 and #2), returning a vector re...
Definition ISDOpcodes.h:815
@ INSERT_VECTOR_ELT
INSERT_VECTOR_ELT(VECTOR, VAL, IDX) - Returns VECTOR with the element at IDX replaced with VAL.
Definition ISDOpcodes.h:567
@ ZERO_EXTEND_VECTOR_INREG
ZERO_EXTEND_VECTOR_INREG(Vector) - This operator represents an in-register zero-extension of the low ...
Definition ISDOpcodes.h:931
@ CALLSEQ_START
CALLSEQ_START/CALLSEQ_END - These operators mark the beginning and end of a call sequence,...
@ BUILD_VECTOR
BUILD_VECTOR(ELT0, ELT1, ELT2, ELT3,...) - Return a fixed-width vector with the specified,...
Definition ISDOpcodes.h:558
MemIndexType
MemIndexType enum - This enum defines how to interpret MGATHER/SCATTER's index parameter when calcula...
MemIndexedMode
MemIndexedMode enum - This enum defines the load / store indexed addressing modes.
CondCode
ISD::CondCode enum - These are ordered carefully to make the bitfields below work out,...
LoadExtType
LoadExtType enum - This enum defines the three variants of LOADEXT (load with extension).
NodeAddr< NodeBase * > Node
Definition RDFGraph.h:381
This is an optimization pass for GlobalISel generic memory operations.
GenericUniformityInfo< SSAContext > UniformityInfo
@ Offset
Definition DWP.cpp:578
GenericSSAContext< Function > SSAContext
iterator_range< T > make_range(T x, T y)
Convenience function for iterating over sub-ranges.
FoldingSetBase::Node FoldingSetNode
Definition FoldingSet.h:395
AnalysisManager< MachineFunction > MachineFunctionAnalysisManager
iplist< T, Options... > ilist
Definition ilist.h:344
LLVM_ABI void checkForCycles(const SelectionDAG *DAG, bool force=false)
FPClassTest
Floating-point class tests, supported by 'is_fpclass' intrinsic.
AlignedCharArrayUnion< AtomicSDNode, TargetIndexSDNode, BlockAddressSDNode, GlobalAddressSDNode, PseudoProbeSDNode > LargestSDNode
A representation of the largest SDNode, for use in sizeof().
GlobalAddressSDNode MostAlignedSDNode
The SDNode class with the greatest alignment requirement.
CodeGenOptLevel
Code generation optimization level.
Definition CodeGen.h:149
CombineLevel
Definition DAGCombine.h:15
RelativeUniformCounterPtr ValuesPtrExpr VTableAddr Count
Definition InstrProf.h:145
DWARFExpression::Operation Op
ArrayRef(const T &OneElt) -> ArrayRef< T >
OutputIt move(R &&Range, OutputIt Out)
Provide wrappers to std::move which take ranges instead of having to pass begin/end explicitly.
Definition STLExtras.h:1917
UndefPoisonKind
Enumeration to track whether we are interested in Undef, Poison, or both.
Definition UndefPoison.h:20
BumpPtrAllocatorImpl<> BumpPtrAllocator
The standard BumpPtrAllocator which just uses the default template parameters.
Definition Allocator.h:390
FoldingSetImpl< T, Trait > FoldingSet
This template class is used to instantiate a specialized implementation of the folding set to the nod...
Definition FoldingSet.h:521
Implement std::hash so that hash_code can be used in STL containers.
Definition BitVector.h:878
#define N
A collection of metadata nodes that might be associated with a memory access used by the alias-analys...
Definition Metadata.h:763
This struct is a compact representation of a valid (non-zero power of two) alignment.
Definition Alignment.h:39
This class provides default implementations for FoldingSetTrait implementations.
Definition FoldingSet.h:119
Represent subnormal handling kind for floating point instruction inputs and outputs.
Extended Value Type.
Definition ValueTypes.h:35
bool isVector() const
Return true if this is a vector value type.
Definition ValueTypes.h:176
bool isScalableVector() const
Return true if this is a vector type where the runtime length is machine dependent.
Definition ValueTypes.h:187
EVT getVectorElementType() const
Given a vector type, return the type of each element.
Definition ValueTypes.h:351
LLVM_ABI const fltSemantics & getFltSemantics() const
Returns an APFloat semantics tag appropriate for the value type.
unsigned getVectorNumElements() const
Given a vector type, return the number of elements it contains.
Definition ValueTypes.h:359
bool bitsLE(EVT VT) const
Return true if this has no more bits than VT.
Definition ValueTypes.h:331
bool isInteger() const
Return true if this is an integer or a vector integer type.
Definition ValueTypes.h:160
static bool Equals(const SDVTListNode &X, const FoldingSetNodeID &ID, FoldingSetNodeID &TempID)
static void Profile(const SDVTListNode &X, FoldingSetNodeID &ID)
This trait class is used to define behavior of how to "profile" (in the FoldingSet parlance) an objec...
Definition FoldingSet.h:140
static nodes_iterator nodes_begin(SelectionDAG *G)
static nodes_iterator nodes_end(SelectionDAG *G)
pointer_iterator< SelectionDAG::allnodes_iterator > nodes_iterator
LLVM IR metadata carried by a MachineMemOperand.
This class contains a discriminated union of information about pointers in memory operands,...
This struct is a compact representation of a valid (power of two) or undefined (0) alignment.
Definition Alignment.h:106
A simple container for information about the supported runtime calls.
These are IR-level optimization flags that may be propagated to SDNodes.
This represents a list of ValueType's that has been intern'd by a SelectionDAG.
DAGNodeDeletedListener(SelectionDAG &DAG, std::function< void(SDNode *, SDNode *)> Callback)
void NodeDeleted(SDNode *N, SDNode *E) override
The node N that was deleted and, if E is not null, an equivalent node E that replaced it.
std::function< void(SDNode *, SDNode *)> Callback
std::function< void(SDNode *)> Callback
void NodeInserted(SDNode *N) override
The node N that was inserted.
DAGNodeInsertedListener(SelectionDAG &DAG, std::function< void(SDNode *)> Callback)
Clients of various APIs that cause global effects on the DAG can optionally implement this interface.
static void deleteNode(SDNode *)
Use delete by default for iplist and ilist.
Definition ilist.h:41