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| Rev | Author | Line No. | Line |
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| 14 | pmbaty | 1 | //===- llvm/CodeGen/GlobalISel/LegacyLegalizerInfo.h ------------*- C++ -*-===// |
| 2 | // |
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| 3 | // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. |
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| 4 | // See https://llvm.org/LICENSE.txt for license information. |
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| 5 | // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception |
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| 6 | // |
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| 7 | //===----------------------------------------------------------------------===// |
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| 8 | /// \file |
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| 9 | /// Interface for Targets to specify which operations they can successfully |
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| 10 | /// select and how the others should be expanded most efficiently. |
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| 11 | /// This implementation has been deprecated for a long time but it still in use |
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| 12 | /// in a few places. |
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| 13 | //===----------------------------------------------------------------------===// |
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| 14 | |||
| 15 | #ifndef LLVM_CODEGEN_GLOBALISEL_LEGACYLEGALIZERINFO_H |
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| 16 | #define LLVM_CODEGEN_GLOBALISEL_LEGACYLEGALIZERINFO_H |
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| 17 | |||
| 18 | #include "llvm/ADT/DenseMap.h" |
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| 19 | #include "llvm/CodeGen/TargetOpcodes.h" |
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| 20 | #include "llvm/Support/LowLevelTypeImpl.h" |
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| 21 | #include <unordered_map> |
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| 22 | |||
| 23 | namespace llvm { |
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| 24 | struct LegalityQuery; |
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| 25 | |||
| 26 | namespace LegacyLegalizeActions { |
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| 27 | enum LegacyLegalizeAction : std::uint8_t { |
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| 28 | /// The operation is expected to be selectable directly by the target, and |
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| 29 | /// no transformation is necessary. |
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| 30 | Legal, |
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| 31 | |||
| 32 | /// The operation should be synthesized from multiple instructions acting on |
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| 33 | /// a narrower scalar base-type. For example a 64-bit add might be |
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| 34 | /// implemented in terms of 32-bit add-with-carry. |
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| 35 | NarrowScalar, |
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| 36 | |||
| 37 | /// The operation should be implemented in terms of a wider scalar |
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| 38 | /// base-type. For example a <2 x s8> add could be implemented as a <2 |
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| 39 | /// x s32> add (ignoring the high bits). |
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| 40 | WidenScalar, |
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| 41 | |||
| 42 | /// The (vector) operation should be implemented by splitting it into |
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| 43 | /// sub-vectors where the operation is legal. For example a <8 x s64> add |
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| 44 | /// might be implemented as 4 separate <2 x s64> adds. |
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| 45 | FewerElements, |
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| 46 | |||
| 47 | /// The (vector) operation should be implemented by widening the input |
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| 48 | /// vector and ignoring the lanes added by doing so. For example <2 x i8> is |
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| 49 | /// rarely legal, but you might perform an <8 x i8> and then only look at |
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| 50 | /// the first two results. |
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| 51 | MoreElements, |
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| 52 | |||
| 53 | /// Perform the operation on a different, but equivalently sized type. |
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| 54 | Bitcast, |
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| 55 | |||
| 56 | /// The operation itself must be expressed in terms of simpler actions on |
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| 57 | /// this target. E.g. a SREM replaced by an SDIV and subtraction. |
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| 58 | Lower, |
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| 59 | |||
| 60 | /// The operation should be implemented as a call to some kind of runtime |
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| 61 | /// support library. For example this usually happens on machines that don't |
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| 62 | /// support floating-point operations natively. |
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| 63 | Libcall, |
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| 64 | |||
| 65 | /// The target wants to do something special with this combination of |
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| 66 | /// operand and type. A callback will be issued when it is needed. |
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| 67 | Custom, |
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| 68 | |||
| 69 | /// This operation is completely unsupported on the target. A programming |
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| 70 | /// error has occurred. |
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| 71 | Unsupported, |
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| 72 | |||
| 73 | /// Sentinel value for when no action was found in the specified table. |
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| 74 | NotFound, |
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| 75 | }; |
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| 76 | } // end namespace LegacyLegalizeActions |
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| 77 | raw_ostream &operator<<(raw_ostream &OS, |
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| 78 | LegacyLegalizeActions::LegacyLegalizeAction Action); |
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| 79 | |||
| 80 | /// Legalization is decided based on an instruction's opcode, which type slot |
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| 81 | /// we're considering, and what the existing type is. These aspects are gathered |
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| 82 | /// together for convenience in the InstrAspect class. |
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| 83 | struct InstrAspect { |
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| 84 | unsigned Opcode; |
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| 85 | unsigned Idx = 0; |
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| 86 | LLT Type; |
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| 87 | |||
| 88 | InstrAspect(unsigned Opcode, LLT Type) : Opcode(Opcode), Type(Type) {} |
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| 89 | InstrAspect(unsigned Opcode, unsigned Idx, LLT Type) |
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| 90 | : Opcode(Opcode), Idx(Idx), Type(Type) {} |
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| 91 | |||
| 92 | bool operator==(const InstrAspect &RHS) const { |
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| 93 | return Opcode == RHS.Opcode && Idx == RHS.Idx && Type == RHS.Type; |
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| 94 | } |
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| 95 | }; |
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| 96 | |||
| 97 | /// The result of a query. It either indicates a final answer of Legal or |
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| 98 | /// Unsupported or describes an action that must be taken to make an operation |
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| 99 | /// more legal. |
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| 100 | struct LegacyLegalizeActionStep { |
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| 101 | /// The action to take or the final answer. |
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| 102 | LegacyLegalizeActions::LegacyLegalizeAction Action; |
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| 103 | /// If describing an action, the type index to change. Otherwise zero. |
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| 104 | unsigned TypeIdx; |
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| 105 | /// If describing an action, the new type for TypeIdx. Otherwise LLT{}. |
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| 106 | LLT NewType; |
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| 107 | |||
| 108 | LegacyLegalizeActionStep(LegacyLegalizeActions::LegacyLegalizeAction Action, |
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| 109 | unsigned TypeIdx, const LLT NewType) |
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| 110 | : Action(Action), TypeIdx(TypeIdx), NewType(NewType) {} |
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| 111 | |||
| 112 | bool operator==(const LegacyLegalizeActionStep &RHS) const { |
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| 113 | return std::tie(Action, TypeIdx, NewType) == |
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| 114 | std::tie(RHS.Action, RHS.TypeIdx, RHS.NewType); |
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| 115 | } |
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| 116 | }; |
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| 117 | |||
| 118 | |||
| 119 | class LegacyLegalizerInfo { |
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| 120 | public: |
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| 121 | using SizeAndAction = |
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| 122 | std::pair<uint16_t, LegacyLegalizeActions::LegacyLegalizeAction>; |
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| 123 | using SizeAndActionsVec = std::vector<SizeAndAction>; |
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| 124 | using SizeChangeStrategy = |
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| 125 | std::function<SizeAndActionsVec(const SizeAndActionsVec &v)>; |
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| 126 | |||
| 127 | LegacyLegalizerInfo(); |
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| 128 | |||
| 129 | static bool needsLegalizingToDifferentSize( |
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| 130 | const LegacyLegalizeActions::LegacyLegalizeAction Action) { |
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| 131 | using namespace LegacyLegalizeActions; |
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| 132 | switch (Action) { |
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| 133 | case NarrowScalar: |
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| 134 | case WidenScalar: |
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| 135 | case FewerElements: |
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| 136 | case MoreElements: |
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| 137 | case Unsupported: |
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| 138 | return true; |
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| 139 | default: |
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| 140 | return false; |
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| 141 | } |
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| 142 | } |
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| 143 | |||
| 144 | /// Compute any ancillary tables needed to quickly decide how an operation |
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| 145 | /// should be handled. This must be called after all "set*Action"methods but |
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| 146 | /// before any query is made or incorrect results may be returned. |
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| 147 | void computeTables(); |
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| 148 | |||
| 149 | /// More friendly way to set an action for common types that have an LLT |
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| 150 | /// representation. |
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| 151 | /// The LegacyLegalizeAction must be one for which |
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| 152 | /// NeedsLegalizingToDifferentSize returns false. |
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| 153 | void setAction(const InstrAspect &Aspect, |
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| 154 | LegacyLegalizeActions::LegacyLegalizeAction Action) { |
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| 155 | assert(!needsLegalizingToDifferentSize(Action)); |
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| 156 | TablesInitialized = false; |
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| 157 | const unsigned OpcodeIdx = Aspect.Opcode - FirstOp; |
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| 158 | if (SpecifiedActions[OpcodeIdx].size() <= Aspect.Idx) |
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| 159 | SpecifiedActions[OpcodeIdx].resize(Aspect.Idx + 1); |
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| 160 | SpecifiedActions[OpcodeIdx][Aspect.Idx][Aspect.Type] = Action; |
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| 161 | } |
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| 162 | |||
| 163 | /// The setAction calls record the non-size-changing legalization actions |
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| 164 | /// to take on specificly-sized types. The SizeChangeStrategy defines what |
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| 165 | /// to do when the size of the type needs to be changed to reach a legally |
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| 166 | /// sized type (i.e., one that was defined through a setAction call). |
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| 167 | /// e.g. |
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| 168 | /// setAction ({G_ADD, 0, LLT::scalar(32)}, Legal); |
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| 169 | /// setLegalizeScalarToDifferentSizeStrategy( |
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| 170 | /// G_ADD, 0, widenToLargerTypesAndNarrowToLargest); |
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| 171 | /// will end up defining getAction({G_ADD, 0, T}) to return the following |
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| 172 | /// actions for different scalar types T: |
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| 173 | /// LLT::scalar(1)..LLT::scalar(31): {WidenScalar, 0, LLT::scalar(32)} |
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| 174 | /// LLT::scalar(32): {Legal, 0, LLT::scalar(32)} |
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| 175 | /// LLT::scalar(33)..: {NarrowScalar, 0, LLT::scalar(32)} |
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| 176 | /// |
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| 177 | /// If no SizeChangeAction gets defined, through this function, |
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| 178 | /// the default is unsupportedForDifferentSizes. |
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| 179 | void setLegalizeScalarToDifferentSizeStrategy(const unsigned Opcode, |
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| 180 | const unsigned TypeIdx, |
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| 181 | SizeChangeStrategy S) { |
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| 182 | const unsigned OpcodeIdx = Opcode - FirstOp; |
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| 183 | if (ScalarSizeChangeStrategies[OpcodeIdx].size() <= TypeIdx) |
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| 184 | ScalarSizeChangeStrategies[OpcodeIdx].resize(TypeIdx + 1); |
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| 185 | ScalarSizeChangeStrategies[OpcodeIdx][TypeIdx] = S; |
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| 186 | } |
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| 187 | |||
| 188 | /// See also setLegalizeScalarToDifferentSizeStrategy. |
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| 189 | /// This function allows to set the SizeChangeStrategy for vector elements. |
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| 190 | void setLegalizeVectorElementToDifferentSizeStrategy(const unsigned Opcode, |
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| 191 | const unsigned TypeIdx, |
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| 192 | SizeChangeStrategy S) { |
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| 193 | const unsigned OpcodeIdx = Opcode - FirstOp; |
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| 194 | if (VectorElementSizeChangeStrategies[OpcodeIdx].size() <= TypeIdx) |
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| 195 | VectorElementSizeChangeStrategies[OpcodeIdx].resize(TypeIdx + 1); |
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| 196 | VectorElementSizeChangeStrategies[OpcodeIdx][TypeIdx] = S; |
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| 197 | } |
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| 198 | |||
| 199 | /// A SizeChangeStrategy for the common case where legalization for a |
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| 200 | /// particular operation consists of only supporting a specific set of type |
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| 201 | /// sizes. E.g. |
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| 202 | /// setAction ({G_DIV, 0, LLT::scalar(32)}, Legal); |
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| 203 | /// setAction ({G_DIV, 0, LLT::scalar(64)}, Legal); |
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| 204 | /// setLegalizeScalarToDifferentSizeStrategy( |
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| 205 | /// G_DIV, 0, unsupportedForDifferentSizes); |
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| 206 | /// will result in getAction({G_DIV, 0, T}) to return Legal for s32 and s64, |
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| 207 | /// and Unsupported for all other scalar types T. |
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| 208 | static SizeAndActionsVec |
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| 209 | unsupportedForDifferentSizes(const SizeAndActionsVec &v) { |
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| 210 | using namespace LegacyLegalizeActions; |
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| 211 | return increaseToLargerTypesAndDecreaseToLargest(v, Unsupported, |
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| 212 | Unsupported); |
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| 213 | } |
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| 214 | |||
| 215 | /// A SizeChangeStrategy for the common case where legalization for a |
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| 216 | /// particular operation consists of widening the type to a large legal type, |
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| 217 | /// unless there is no such type and then instead it should be narrowed to the |
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| 218 | /// largest legal type. |
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| 219 | static SizeAndActionsVec |
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| 220 | widenToLargerTypesAndNarrowToLargest(const SizeAndActionsVec &v) { |
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| 221 | using namespace LegacyLegalizeActions; |
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| 222 | assert(v.size() > 0 && |
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| 223 | "At least one size that can be legalized towards is needed" |
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| 224 | " for this SizeChangeStrategy"); |
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| 225 | return increaseToLargerTypesAndDecreaseToLargest(v, WidenScalar, |
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| 226 | NarrowScalar); |
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| 227 | } |
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| 228 | |||
| 229 | static SizeAndActionsVec |
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| 230 | widenToLargerTypesUnsupportedOtherwise(const SizeAndActionsVec &v) { |
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| 231 | using namespace LegacyLegalizeActions; |
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| 232 | return increaseToLargerTypesAndDecreaseToLargest(v, WidenScalar, |
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| 233 | Unsupported); |
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| 234 | } |
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| 235 | |||
| 236 | static SizeAndActionsVec |
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| 237 | narrowToSmallerAndUnsupportedIfTooSmall(const SizeAndActionsVec &v) { |
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| 238 | using namespace LegacyLegalizeActions; |
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| 239 | return decreaseToSmallerTypesAndIncreaseToSmallest(v, NarrowScalar, |
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| 240 | Unsupported); |
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| 241 | } |
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| 242 | |||
| 243 | static SizeAndActionsVec |
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| 244 | narrowToSmallerAndWidenToSmallest(const SizeAndActionsVec &v) { |
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| 245 | using namespace LegacyLegalizeActions; |
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| 246 | assert(v.size() > 0 && |
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| 247 | "At least one size that can be legalized towards is needed" |
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| 248 | " for this SizeChangeStrategy"); |
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| 249 | return decreaseToSmallerTypesAndIncreaseToSmallest(v, NarrowScalar, |
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| 250 | WidenScalar); |
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| 251 | } |
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| 252 | |||
| 253 | /// A SizeChangeStrategy for the common case where legalization for a |
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| 254 | /// particular vector operation consists of having more elements in the |
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| 255 | /// vector, to a type that is legal. Unless there is no such type and then |
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| 256 | /// instead it should be legalized towards the widest vector that's still |
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| 257 | /// legal. E.g. |
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| 258 | /// setAction({G_ADD, LLT::vector(8, 8)}, Legal); |
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| 259 | /// setAction({G_ADD, LLT::vector(16, 8)}, Legal); |
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| 260 | /// setAction({G_ADD, LLT::vector(2, 32)}, Legal); |
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| 261 | /// setAction({G_ADD, LLT::vector(4, 32)}, Legal); |
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| 262 | /// setLegalizeVectorElementToDifferentSizeStrategy( |
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| 263 | /// G_ADD, 0, moreToWiderTypesAndLessToWidest); |
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| 264 | /// will result in the following getAction results: |
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| 265 | /// * getAction({G_ADD, LLT::vector(8,8)}) returns |
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| 266 | /// (Legal, vector(8,8)). |
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| 267 | /// * getAction({G_ADD, LLT::vector(9,8)}) returns |
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| 268 | /// (MoreElements, vector(16,8)). |
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| 269 | /// * getAction({G_ADD, LLT::vector(8,32)}) returns |
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| 270 | /// (FewerElements, vector(4,32)). |
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| 271 | static SizeAndActionsVec |
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| 272 | moreToWiderTypesAndLessToWidest(const SizeAndActionsVec &v) { |
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| 273 | using namespace LegacyLegalizeActions; |
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| 274 | return increaseToLargerTypesAndDecreaseToLargest(v, MoreElements, |
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| 275 | FewerElements); |
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| 276 | } |
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| 277 | |||
| 278 | /// Helper function to implement many typical SizeChangeStrategy functions. |
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| 279 | static SizeAndActionsVec increaseToLargerTypesAndDecreaseToLargest( |
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| 280 | const SizeAndActionsVec &v, |
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| 281 | LegacyLegalizeActions::LegacyLegalizeAction IncreaseAction, |
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| 282 | LegacyLegalizeActions::LegacyLegalizeAction DecreaseAction); |
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| 283 | /// Helper function to implement many typical SizeChangeStrategy functions. |
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| 284 | static SizeAndActionsVec decreaseToSmallerTypesAndIncreaseToSmallest( |
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| 285 | const SizeAndActionsVec &v, |
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| 286 | LegacyLegalizeActions::LegacyLegalizeAction DecreaseAction, |
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| 287 | LegacyLegalizeActions::LegacyLegalizeAction IncreaseAction); |
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| 288 | |||
| 289 | LegacyLegalizeActionStep getAction(const LegalityQuery &Query) const; |
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| 290 | |||
| 291 | unsigned getOpcodeIdxForOpcode(unsigned Opcode) const; |
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| 292 | |||
| 293 | private: |
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| 294 | /// Determine what action should be taken to legalize the given generic |
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| 295 | /// instruction opcode, type-index and type. Requires computeTables to have |
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| 296 | /// been called. |
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| 297 | /// |
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| 298 | /// \returns a pair consisting of the kind of legalization that should be |
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| 299 | /// performed and the destination type. |
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| 300 | std::pair<LegacyLegalizeActions::LegacyLegalizeAction, LLT> |
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| 301 | getAspectAction(const InstrAspect &Aspect) const; |
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| 302 | |||
| 303 | /// The SizeAndActionsVec is a representation mapping between all natural |
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| 304 | /// numbers and an Action. The natural number represents the bit size of |
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| 305 | /// the InstrAspect. For example, for a target with native support for 32-bit |
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| 306 | /// and 64-bit additions, you'd express that as: |
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| 307 | /// setScalarAction(G_ADD, 0, |
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| 308 | /// {{1, WidenScalar}, // bit sizes [ 1, 31[ |
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| 309 | /// {32, Legal}, // bit sizes [32, 33[ |
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| 310 | /// {33, WidenScalar}, // bit sizes [33, 64[ |
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| 311 | /// {64, Legal}, // bit sizes [64, 65[ |
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| 312 | /// {65, NarrowScalar} // bit sizes [65, +inf[ |
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| 313 | /// }); |
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| 314 | /// It may be that only 64-bit pointers are supported on your target: |
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| 315 | /// setPointerAction(G_PTR_ADD, 0, LLT:pointer(1), |
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| 316 | /// {{1, Unsupported}, // bit sizes [ 1, 63[ |
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| 317 | /// {64, Legal}, // bit sizes [64, 65[ |
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| 318 | /// {65, Unsupported}, // bit sizes [65, +inf[ |
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| 319 | /// }); |
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| 320 | void setScalarAction(const unsigned Opcode, const unsigned TypeIndex, |
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| 321 | const SizeAndActionsVec &SizeAndActions) { |
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| 322 | const unsigned OpcodeIdx = Opcode - FirstOp; |
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| 323 | SmallVector<SizeAndActionsVec, 1> &Actions = ScalarActions[OpcodeIdx]; |
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| 324 | setActions(TypeIndex, Actions, SizeAndActions); |
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| 325 | } |
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| 326 | void setPointerAction(const unsigned Opcode, const unsigned TypeIndex, |
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| 327 | const unsigned AddressSpace, |
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| 328 | const SizeAndActionsVec &SizeAndActions) { |
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| 329 | const unsigned OpcodeIdx = Opcode - FirstOp; |
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| 330 | if (AddrSpace2PointerActions[OpcodeIdx].find(AddressSpace) == |
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| 331 | AddrSpace2PointerActions[OpcodeIdx].end()) |
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| 332 | AddrSpace2PointerActions[OpcodeIdx][AddressSpace] = {{}}; |
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| 333 | SmallVector<SizeAndActionsVec, 1> &Actions = |
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| 334 | AddrSpace2PointerActions[OpcodeIdx].find(AddressSpace)->second; |
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| 335 | setActions(TypeIndex, Actions, SizeAndActions); |
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| 336 | } |
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| 337 | |||
| 338 | /// If an operation on a given vector type (say <M x iN>) isn't explicitly |
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| 339 | /// specified, we proceed in 2 stages. First we legalize the underlying scalar |
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| 340 | /// (so that there's at least one legal vector with that scalar), then we |
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| 341 | /// adjust the number of elements in the vector so that it is legal. The |
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| 342 | /// desired action in the first step is controlled by this function. |
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| 343 | void setScalarInVectorAction(const unsigned Opcode, const unsigned TypeIndex, |
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| 344 | const SizeAndActionsVec &SizeAndActions) { |
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| 345 | unsigned OpcodeIdx = Opcode - FirstOp; |
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| 346 | SmallVector<SizeAndActionsVec, 1> &Actions = |
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| 347 | ScalarInVectorActions[OpcodeIdx]; |
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| 348 | setActions(TypeIndex, Actions, SizeAndActions); |
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| 349 | } |
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| 350 | |||
| 351 | /// See also setScalarInVectorAction. |
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| 352 | /// This function let's you specify the number of elements in a vector that |
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| 353 | /// are legal for a legal element size. |
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| 354 | void setVectorNumElementAction(const unsigned Opcode, |
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| 355 | const unsigned TypeIndex, |
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| 356 | const unsigned ElementSize, |
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| 357 | const SizeAndActionsVec &SizeAndActions) { |
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| 358 | const unsigned OpcodeIdx = Opcode - FirstOp; |
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| 359 | if (NumElements2Actions[OpcodeIdx].find(ElementSize) == |
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| 360 | NumElements2Actions[OpcodeIdx].end()) |
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| 361 | NumElements2Actions[OpcodeIdx][ElementSize] = {{}}; |
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| 362 | SmallVector<SizeAndActionsVec, 1> &Actions = |
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| 363 | NumElements2Actions[OpcodeIdx].find(ElementSize)->second; |
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| 364 | setActions(TypeIndex, Actions, SizeAndActions); |
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| 365 | } |
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| 366 | |||
| 367 | /// A partial SizeAndActionsVec potentially doesn't cover all bit sizes, |
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| 368 | /// i.e. it's OK if it doesn't start from size 1. |
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| 369 | static void checkPartialSizeAndActionsVector(const SizeAndActionsVec& v) { |
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| 370 | using namespace LegacyLegalizeActions; |
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| 371 | #ifndef NDEBUG |
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| 372 | // The sizes should be in increasing order |
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| 373 | int prev_size = -1; |
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| 374 | for(auto SizeAndAction: v) { |
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| 375 | assert(SizeAndAction.first > prev_size); |
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| 376 | prev_size = SizeAndAction.first; |
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| 377 | } |
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| 378 | // - for every Widen action, there should be a larger bitsize that |
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| 379 | // can be legalized towards (e.g. Legal, Lower, Libcall or Custom |
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| 380 | // action). |
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| 381 | // - for every Narrow action, there should be a smaller bitsize that |
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| 382 | // can be legalized towards. |
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| 383 | int SmallestNarrowIdx = -1; |
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| 384 | int LargestWidenIdx = -1; |
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| 385 | int SmallestLegalizableToSameSizeIdx = -1; |
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| 386 | int LargestLegalizableToSameSizeIdx = -1; |
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| 387 | for(size_t i=0; i<v.size(); ++i) { |
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| 388 | switch (v[i].second) { |
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| 389 | case FewerElements: |
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| 390 | case NarrowScalar: |
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| 391 | if (SmallestNarrowIdx == -1) |
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| 392 | SmallestNarrowIdx = i; |
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| 393 | break; |
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| 394 | case WidenScalar: |
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| 395 | case MoreElements: |
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| 396 | LargestWidenIdx = i; |
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| 397 | break; |
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| 398 | case Unsupported: |
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| 399 | break; |
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| 400 | default: |
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| 401 | if (SmallestLegalizableToSameSizeIdx == -1) |
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| 402 | SmallestLegalizableToSameSizeIdx = i; |
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| 403 | LargestLegalizableToSameSizeIdx = i; |
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| 404 | } |
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| 405 | } |
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| 406 | if (SmallestNarrowIdx != -1) { |
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| 407 | assert(SmallestLegalizableToSameSizeIdx != -1); |
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| 408 | assert(SmallestNarrowIdx > SmallestLegalizableToSameSizeIdx); |
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| 409 | } |
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| 410 | if (LargestWidenIdx != -1) |
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| 411 | assert(LargestWidenIdx < LargestLegalizableToSameSizeIdx); |
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| 412 | #endif |
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| 413 | } |
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| 414 | |||
| 415 | /// A full SizeAndActionsVec must cover all bit sizes, i.e. must start with |
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| 416 | /// from size 1. |
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| 417 | static void checkFullSizeAndActionsVector(const SizeAndActionsVec& v) { |
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| 418 | #ifndef NDEBUG |
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| 419 | // Data structure invariant: The first bit size must be size 1. |
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| 420 | assert(v.size() >= 1); |
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| 421 | assert(v[0].first == 1); |
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| 422 | checkPartialSizeAndActionsVector(v); |
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| 423 | #endif |
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| 424 | } |
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| 425 | |||
| 426 | /// Sets actions for all bit sizes on a particular generic opcode, type |
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| 427 | /// index and scalar or pointer type. |
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| 428 | void setActions(unsigned TypeIndex, |
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| 429 | SmallVector<SizeAndActionsVec, 1> &Actions, |
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| 430 | const SizeAndActionsVec &SizeAndActions) { |
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| 431 | checkFullSizeAndActionsVector(SizeAndActions); |
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| 432 | if (Actions.size() <= TypeIndex) |
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| 433 | Actions.resize(TypeIndex + 1); |
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| 434 | Actions[TypeIndex] = SizeAndActions; |
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| 435 | } |
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| 436 | |||
| 437 | static SizeAndAction findAction(const SizeAndActionsVec &Vec, |
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| 438 | const uint32_t Size); |
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| 439 | |||
| 440 | /// Returns the next action needed to get the scalar or pointer type closer |
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| 441 | /// to being legal |
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| 442 | /// E.g. findLegalAction({G_REM, 13}) should return |
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| 443 | /// (WidenScalar, 32). After that, findLegalAction({G_REM, 32}) will |
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| 444 | /// probably be called, which should return (Lower, 32). |
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| 445 | /// This is assuming the setScalarAction on G_REM was something like: |
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| 446 | /// setScalarAction(G_REM, 0, |
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| 447 | /// {{1, WidenScalar}, // bit sizes [ 1, 31[ |
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| 448 | /// {32, Lower}, // bit sizes [32, 33[ |
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| 449 | /// {33, NarrowScalar} // bit sizes [65, +inf[ |
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| 450 | /// }); |
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| 451 | std::pair<LegacyLegalizeActions::LegacyLegalizeAction, LLT> |
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| 452 | findScalarLegalAction(const InstrAspect &Aspect) const; |
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| 453 | |||
| 454 | /// Returns the next action needed towards legalizing the vector type. |
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| 455 | std::pair<LegacyLegalizeActions::LegacyLegalizeAction, LLT> |
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| 456 | findVectorLegalAction(const InstrAspect &Aspect) const; |
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| 457 | |||
| 458 | static const int FirstOp = TargetOpcode::PRE_ISEL_GENERIC_OPCODE_START; |
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| 459 | static const int LastOp = TargetOpcode::PRE_ISEL_GENERIC_OPCODE_END; |
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| 460 | |||
| 461 | // Data structures used temporarily during construction of legality data: |
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| 462 | using TypeMap = DenseMap<LLT, LegacyLegalizeActions::LegacyLegalizeAction>; |
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| 463 | SmallVector<TypeMap, 1> SpecifiedActions[LastOp - FirstOp + 1]; |
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| 464 | SmallVector<SizeChangeStrategy, 1> |
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| 465 | ScalarSizeChangeStrategies[LastOp - FirstOp + 1]; |
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| 466 | SmallVector<SizeChangeStrategy, 1> |
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| 467 | VectorElementSizeChangeStrategies[LastOp - FirstOp + 1]; |
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| 468 | bool TablesInitialized = false; |
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| 469 | |||
| 470 | // Data structures used by getAction: |
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| 471 | SmallVector<SizeAndActionsVec, 1> ScalarActions[LastOp - FirstOp + 1]; |
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| 472 | SmallVector<SizeAndActionsVec, 1> ScalarInVectorActions[LastOp - FirstOp + 1]; |
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| 473 | std::unordered_map<uint16_t, SmallVector<SizeAndActionsVec, 1>> |
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| 474 | AddrSpace2PointerActions[LastOp - FirstOp + 1]; |
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| 475 | std::unordered_map<uint16_t, SmallVector<SizeAndActionsVec, 1>> |
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| 476 | NumElements2Actions[LastOp - FirstOp + 1]; |
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| 477 | }; |
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| 478 | |||
| 479 | } // end namespace llvm |
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| 480 | |||
| 481 | #endif // LLVM_CODEGEN_GLOBALISEL_LEGACYLEGALIZERINFO_H |