14ead2cf7SAlex Zinenko //===- VectorToSCF.cpp - Conversion from Vector to mix of SCF and Std -----===// 24ead2cf7SAlex Zinenko // 34ead2cf7SAlex Zinenko // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 44ead2cf7SAlex Zinenko // See https://llvm.org/LICENSE.txt for license information. 54ead2cf7SAlex Zinenko // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 64ead2cf7SAlex Zinenko // 74ead2cf7SAlex Zinenko //===----------------------------------------------------------------------===// 84ead2cf7SAlex Zinenko // 94ead2cf7SAlex Zinenko // This file implements target-dependent lowering of vector transfer operations. 104ead2cf7SAlex Zinenko // 114ead2cf7SAlex Zinenko //===----------------------------------------------------------------------===// 124ead2cf7SAlex Zinenko 134ead2cf7SAlex Zinenko #include <type_traits> 144ead2cf7SAlex Zinenko 154ead2cf7SAlex Zinenko #include "mlir/Conversion/VectorToSCF/VectorToSCF.h" 165f9e0466SNicolas Vasilache 175f9e0466SNicolas Vasilache #include "../PassDetail.h" 184ead2cf7SAlex Zinenko #include "mlir/Dialect/Affine/EDSC/Intrinsics.h" 198dace28fSJakub Lichman #include "mlir/Dialect/Linalg/Utils/Utils.h" 204ead2cf7SAlex Zinenko #include "mlir/Dialect/SCF/EDSC/Builders.h" 214ead2cf7SAlex Zinenko #include "mlir/Dialect/SCF/EDSC/Intrinsics.h" 224ead2cf7SAlex Zinenko #include "mlir/Dialect/StandardOps/EDSC/Intrinsics.h" 234ead2cf7SAlex Zinenko #include "mlir/Dialect/Vector/EDSC/Intrinsics.h" 244ead2cf7SAlex Zinenko #include "mlir/Dialect/Vector/VectorOps.h" 257c3c5b11SNicolas Vasilache #include "mlir/Dialect/Vector/VectorUtils.h" 264ead2cf7SAlex Zinenko #include "mlir/IR/AffineExpr.h" 274ead2cf7SAlex Zinenko #include "mlir/IR/AffineMap.h" 284ead2cf7SAlex Zinenko #include "mlir/IR/Attributes.h" 294ead2cf7SAlex Zinenko #include "mlir/IR/Builders.h" 304ead2cf7SAlex Zinenko #include "mlir/IR/Location.h" 314ead2cf7SAlex Zinenko #include "mlir/IR/Matchers.h" 324ead2cf7SAlex Zinenko #include "mlir/IR/OperationSupport.h" 334ead2cf7SAlex Zinenko #include "mlir/IR/PatternMatch.h" 344ead2cf7SAlex Zinenko #include "mlir/IR/Types.h" 355f9e0466SNicolas Vasilache #include "mlir/Pass/Pass.h" 365f9e0466SNicolas Vasilache #include "mlir/Transforms/Passes.h" 374ead2cf7SAlex Zinenko 384ead2cf7SAlex Zinenko using namespace mlir; 394ead2cf7SAlex Zinenko using namespace mlir::edsc; 404ead2cf7SAlex Zinenko using namespace mlir::edsc::intrinsics; 414ead2cf7SAlex Zinenko using vector::TransferReadOp; 424ead2cf7SAlex Zinenko using vector::TransferWriteOp; 434ead2cf7SAlex Zinenko 44350dadaaSBenjamin Kramer namespace { 454ead2cf7SAlex Zinenko /// Helper class captures the common information needed to lower N>1-D vector 464ead2cf7SAlex Zinenko /// transfer operations (read and write). 474ead2cf7SAlex Zinenko /// On construction, this class opens an edsc::ScopedContext for simpler IR 484ead2cf7SAlex Zinenko /// manipulation. 494ead2cf7SAlex Zinenko /// In pseudo-IR, for an n-D vector_transfer_read such as: 504ead2cf7SAlex Zinenko /// 514ead2cf7SAlex Zinenko /// ``` 524ead2cf7SAlex Zinenko /// vector_transfer_read(%m, %offsets, identity_map, %fill) : 534ead2cf7SAlex Zinenko /// memref<(leading_dims) x (major_dims) x (minor_dims) x type>, 544ead2cf7SAlex Zinenko /// vector<(major_dims) x (minor_dims) x type> 554ead2cf7SAlex Zinenko /// ``` 564ead2cf7SAlex Zinenko /// 574ead2cf7SAlex Zinenko /// where rank(minor_dims) is the lower-level vector rank (e.g. 1 for LLVM or 584ead2cf7SAlex Zinenko /// higher). 594ead2cf7SAlex Zinenko /// 604ead2cf7SAlex Zinenko /// This is the entry point to emitting pseudo-IR resembling: 614ead2cf7SAlex Zinenko /// 624ead2cf7SAlex Zinenko /// ``` 634ead2cf7SAlex Zinenko /// %tmp = alloc(): memref<(major_dims) x vector<minor_dim x type>> 644ead2cf7SAlex Zinenko /// for (%ivs_major, {0}, {vector_shape}, {1}) { // (N-1)-D loop nest 654ead2cf7SAlex Zinenko /// if (any_of(%ivs_major + %offsets, <, major_dims)) { 664ead2cf7SAlex Zinenko /// %v = vector_transfer_read( 674ead2cf7SAlex Zinenko /// {%offsets_leading, %ivs_major + %offsets_major, %offsets_minor}, 684ead2cf7SAlex Zinenko /// %ivs_minor): 694ead2cf7SAlex Zinenko /// memref<(leading_dims) x (major_dims) x (minor_dims) x type>, 704ead2cf7SAlex Zinenko /// vector<(minor_dims) x type>; 714ead2cf7SAlex Zinenko /// store(%v, %tmp); 724ead2cf7SAlex Zinenko /// } else { 734ead2cf7SAlex Zinenko /// %v = splat(vector<(minor_dims) x type>, %fill) 744ead2cf7SAlex Zinenko /// store(%v, %tmp, %ivs_major); 754ead2cf7SAlex Zinenko /// } 764ead2cf7SAlex Zinenko /// } 774ead2cf7SAlex Zinenko /// %res = load(%tmp, %0): memref<(major_dims) x vector<minor_dim x type>>): 784ead2cf7SAlex Zinenko // vector<(major_dims) x (minor_dims) x type> 794ead2cf7SAlex Zinenko /// ``` 804ead2cf7SAlex Zinenko /// 814ead2cf7SAlex Zinenko template <typename ConcreteOp> 824ead2cf7SAlex Zinenko class NDTransferOpHelper { 834ead2cf7SAlex Zinenko public: 847c3c5b11SNicolas Vasilache NDTransferOpHelper(PatternRewriter &rewriter, ConcreteOp xferOp, 857c3c5b11SNicolas Vasilache const VectorTransferToSCFOptions &options) 867c3c5b11SNicolas Vasilache : rewriter(rewriter), options(options), loc(xferOp.getLoc()), 874ead2cf7SAlex Zinenko scope(std::make_unique<ScopedContext>(rewriter, loc)), xferOp(xferOp), 884ead2cf7SAlex Zinenko op(xferOp.getOperation()) { 894ead2cf7SAlex Zinenko vectorType = xferOp.getVectorType(); 909db53a18SRiver Riddle // TODO: when we go to k > 1-D vectors adapt minorRank. 914ead2cf7SAlex Zinenko minorRank = 1; 924ead2cf7SAlex Zinenko majorRank = vectorType.getRank() - minorRank; 93ec2f2cecSNicolas Vasilache leadingRank = xferOp.getLeadingMemRefRank(); 944ead2cf7SAlex Zinenko majorVectorType = 954ead2cf7SAlex Zinenko VectorType::get(vectorType.getShape().take_front(majorRank), 964ead2cf7SAlex Zinenko vectorType.getElementType()); 974ead2cf7SAlex Zinenko minorVectorType = 984ead2cf7SAlex Zinenko VectorType::get(vectorType.getShape().take_back(minorRank), 994ead2cf7SAlex Zinenko vectorType.getElementType()); 1004ead2cf7SAlex Zinenko /// Memref of minor vector type is used for individual transfers. 1014ead2cf7SAlex Zinenko memRefMinorVectorType = 1024ead2cf7SAlex Zinenko MemRefType::get(majorVectorType.getShape(), minorVectorType, {}, 1034ead2cf7SAlex Zinenko xferOp.getMemRefType().getMemorySpace()); 1044ead2cf7SAlex Zinenko } 1054ead2cf7SAlex Zinenko 1064ead2cf7SAlex Zinenko LogicalResult doReplace(); 1074ead2cf7SAlex Zinenko 1084ead2cf7SAlex Zinenko private: 1094ead2cf7SAlex Zinenko /// Creates the loop nest on the "major" dimensions and calls the 1104ead2cf7SAlex Zinenko /// `loopBodyBuilder` lambda in the context of the loop nest. 111*307dc7b2SBenjamin Kramer void 112*307dc7b2SBenjamin Kramer emitLoops(llvm::function_ref<void(ValueRange, ValueRange, ValueRange, 113*307dc7b2SBenjamin Kramer ValueRange, const MemRefBoundsCapture &)> 114*307dc7b2SBenjamin Kramer loopBodyBuilder); 1154ead2cf7SAlex Zinenko 1164ead2cf7SAlex Zinenko /// Common state to lower vector transfer ops. 1174ead2cf7SAlex Zinenko PatternRewriter &rewriter; 1187c3c5b11SNicolas Vasilache const VectorTransferToSCFOptions &options; 1194ead2cf7SAlex Zinenko Location loc; 1204ead2cf7SAlex Zinenko std::unique_ptr<ScopedContext> scope; 1214ead2cf7SAlex Zinenko ConcreteOp xferOp; 1224ead2cf7SAlex Zinenko Operation *op; 1234ead2cf7SAlex Zinenko // A vector transfer copies data between: 1244ead2cf7SAlex Zinenko // - memref<(leading_dims) x (major_dims) x (minor_dims) x type> 1254ead2cf7SAlex Zinenko // - vector<(major_dims) x (minor_dims) x type> 1264ead2cf7SAlex Zinenko unsigned minorRank; // for now always 1 1274ead2cf7SAlex Zinenko unsigned majorRank; // vector rank - minorRank 1284ead2cf7SAlex Zinenko unsigned leadingRank; // memref rank - vector rank 1294ead2cf7SAlex Zinenko VectorType vectorType; // vector<(major_dims) x (minor_dims) x type> 1304ead2cf7SAlex Zinenko VectorType majorVectorType; // vector<(major_dims) x type> 1314ead2cf7SAlex Zinenko VectorType minorVectorType; // vector<(minor_dims) x type> 1324ead2cf7SAlex Zinenko MemRefType memRefMinorVectorType; // memref<vector<(minor_dims) x type>> 1334ead2cf7SAlex Zinenko }; 134*307dc7b2SBenjamin Kramer } // namespace 1354ead2cf7SAlex Zinenko 1364ead2cf7SAlex Zinenko template <typename ConcreteOp> 137*307dc7b2SBenjamin Kramer void NDTransferOpHelper<ConcreteOp>::emitLoops( 138*307dc7b2SBenjamin Kramer llvm::function_ref<void(ValueRange, ValueRange, ValueRange, ValueRange, 139*307dc7b2SBenjamin Kramer const MemRefBoundsCapture &)> 140*307dc7b2SBenjamin Kramer loopBodyBuilder) { 1414ead2cf7SAlex Zinenko /// Loop nest operates on the major dimensions 1424ead2cf7SAlex Zinenko MemRefBoundsCapture memrefBoundsCapture(xferOp.memref()); 1437c3c5b11SNicolas Vasilache 1447c3c5b11SNicolas Vasilache if (options.unroll) { 1457c3c5b11SNicolas Vasilache auto shape = majorVectorType.getShape(); 1467c3c5b11SNicolas Vasilache auto strides = computeStrides(shape); 1477c3c5b11SNicolas Vasilache unsigned numUnrolledInstances = computeMaxLinearIndex(shape); 1487c3c5b11SNicolas Vasilache ValueRange indices(xferOp.indices()); 1497c3c5b11SNicolas Vasilache for (unsigned idx = 0; idx < numUnrolledInstances; ++idx) { 1507c3c5b11SNicolas Vasilache SmallVector<int64_t, 4> offsets = delinearize(strides, idx); 1517c3c5b11SNicolas Vasilache SmallVector<Value, 4> offsetValues = 1527c3c5b11SNicolas Vasilache llvm::to_vector<4>(llvm::map_range(offsets, [](int64_t off) -> Value { 1537c3c5b11SNicolas Vasilache return std_constant_index(off); 1547c3c5b11SNicolas Vasilache })); 1557c3c5b11SNicolas Vasilache loopBodyBuilder(offsetValues, indices.take_front(leadingRank), 1567c3c5b11SNicolas Vasilache indices.drop_front(leadingRank).take_front(majorRank), 1577c3c5b11SNicolas Vasilache indices.take_back(minorRank), memrefBoundsCapture); 1587c3c5b11SNicolas Vasilache } 1597c3c5b11SNicolas Vasilache } else { 1604ead2cf7SAlex Zinenko VectorBoundsCapture vectorBoundsCapture(majorVectorType); 1614ead2cf7SAlex Zinenko auto majorLbs = vectorBoundsCapture.getLbs(); 1624ead2cf7SAlex Zinenko auto majorUbs = vectorBoundsCapture.getUbs(); 1634ead2cf7SAlex Zinenko auto majorSteps = vectorBoundsCapture.getSteps(); 1643f5bd53eSAlex Zinenko affineLoopNestBuilder( 1653f5bd53eSAlex Zinenko majorLbs, majorUbs, majorSteps, [&](ValueRange majorIvs) { 1664ead2cf7SAlex Zinenko ValueRange indices(xferOp.indices()); 1674ead2cf7SAlex Zinenko loopBodyBuilder(majorIvs, indices.take_front(leadingRank), 1684ead2cf7SAlex Zinenko indices.drop_front(leadingRank).take_front(majorRank), 1694ead2cf7SAlex Zinenko indices.take_back(minorRank), memrefBoundsCapture); 1704ead2cf7SAlex Zinenko }); 1714ead2cf7SAlex Zinenko } 1727c3c5b11SNicolas Vasilache } 1734ead2cf7SAlex Zinenko 174bd87c6bcSNicolas Vasilache static Optional<int64_t> extractConstantIndex(Value v) { 175bd87c6bcSNicolas Vasilache if (auto cstOp = v.getDefiningOp<ConstantIndexOp>()) 176bd87c6bcSNicolas Vasilache return cstOp.getValue(); 177bd87c6bcSNicolas Vasilache if (auto affineApplyOp = v.getDefiningOp<AffineApplyOp>()) 178bd87c6bcSNicolas Vasilache if (affineApplyOp.getAffineMap().isSingleConstant()) 179bd87c6bcSNicolas Vasilache return affineApplyOp.getAffineMap().getSingleConstantResult(); 180bd87c6bcSNicolas Vasilache return None; 181bd87c6bcSNicolas Vasilache } 182bd87c6bcSNicolas Vasilache 183bd87c6bcSNicolas Vasilache // Missing foldings of scf.if make it necessary to perform poor man's folding 184bd87c6bcSNicolas Vasilache // eagerly, especially in the case of unrolling. In the future, this should go 185bd87c6bcSNicolas Vasilache // away once scf.if folds properly. 186bd87c6bcSNicolas Vasilache static Value onTheFlyFoldSLT(Value v, Value ub) { 187bd87c6bcSNicolas Vasilache using namespace mlir::edsc::op; 188bd87c6bcSNicolas Vasilache auto maybeCstV = extractConstantIndex(v); 189bd87c6bcSNicolas Vasilache auto maybeCstUb = extractConstantIndex(ub); 190bd87c6bcSNicolas Vasilache if (maybeCstV && maybeCstUb && *maybeCstV < *maybeCstUb) 191bd87c6bcSNicolas Vasilache return Value(); 192bd87c6bcSNicolas Vasilache return slt(v, ub); 193bd87c6bcSNicolas Vasilache } 194bd87c6bcSNicolas Vasilache 195239eff50SBenjamin Kramer /// 1. Compute the indexings `majorIvs + majorOffsets` and save them in 196239eff50SBenjamin Kramer /// `majorIvsPlusOffsets`. 197239eff50SBenjamin Kramer /// 2. Return a value of i1 that determines whether the first `majorIvs.rank()` 198239eff50SBenjamin Kramer /// dimensions `majorIvs + majorOffsets` are all within `memrefBounds`. 199239eff50SBenjamin Kramer static Value 200239eff50SBenjamin Kramer emitInBoundsCondition(PatternRewriter &rewriter, 201239eff50SBenjamin Kramer VectorTransferOpInterface xferOp, unsigned leadingRank, 2024ead2cf7SAlex Zinenko ValueRange majorIvs, ValueRange majorOffsets, 203*307dc7b2SBenjamin Kramer const MemRefBoundsCapture &memrefBounds, 2047c3c5b11SNicolas Vasilache SmallVectorImpl<Value> &majorIvsPlusOffsets) { 2057c3c5b11SNicolas Vasilache Value inBoundsCondition; 2064ead2cf7SAlex Zinenko majorIvsPlusOffsets.reserve(majorIvs.size()); 2071870e787SNicolas Vasilache unsigned idx = 0; 2088dace28fSJakub Lichman SmallVector<Value, 4> bounds = 2098dace28fSJakub Lichman linalg::applyMapToValues(rewriter, xferOp.getLoc(), 2108dace28fSJakub Lichman xferOp.permutation_map(), memrefBounds.getUbs()); 2118dace28fSJakub Lichman for (auto it : llvm::zip(majorIvs, majorOffsets, bounds)) { 2124ead2cf7SAlex Zinenko Value iv = std::get<0>(it), off = std::get<1>(it), ub = std::get<2>(it); 2134ead2cf7SAlex Zinenko using namespace mlir::edsc::op; 2144ead2cf7SAlex Zinenko majorIvsPlusOffsets.push_back(iv + off); 2151870e787SNicolas Vasilache if (xferOp.isMaskedDim(leadingRank + idx)) { 216bd87c6bcSNicolas Vasilache Value inBoundsCond = onTheFlyFoldSLT(majorIvsPlusOffsets.back(), ub); 217bd87c6bcSNicolas Vasilache if (inBoundsCond) 218bd87c6bcSNicolas Vasilache inBoundsCondition = (inBoundsCondition) 219bd87c6bcSNicolas Vasilache ? (inBoundsCondition && inBoundsCond) 220bd87c6bcSNicolas Vasilache : inBoundsCond; 2211870e787SNicolas Vasilache } 2221870e787SNicolas Vasilache ++idx; 2234ead2cf7SAlex Zinenko } 2247c3c5b11SNicolas Vasilache return inBoundsCondition; 2254ead2cf7SAlex Zinenko } 2264ead2cf7SAlex Zinenko 227247e185dSNicolas Vasilache // TODO: Parallelism and threadlocal considerations. 228247e185dSNicolas Vasilache static Value setAllocAtFunctionEntry(MemRefType memRefMinorVectorType, 229247e185dSNicolas Vasilache Operation *op) { 230247e185dSNicolas Vasilache auto &b = ScopedContext::getBuilderRef(); 231247e185dSNicolas Vasilache OpBuilder::InsertionGuard guard(b); 232a4b8c2deSJakub Lichman Operation *scope = 233a4b8c2deSJakub Lichman op->getParentWithTrait<OpTrait::AutomaticAllocationScope>(); 234a4b8c2deSJakub Lichman assert(scope && "Expected op to be inside automatic allocation scope"); 235a4b8c2deSJakub Lichman b.setInsertionPointToStart(&scope->getRegion(0).front()); 2368d64df9fSNicolas Vasilache Value res = std_alloca(memRefMinorVectorType); 237247e185dSNicolas Vasilache return res; 238247e185dSNicolas Vasilache } 239247e185dSNicolas Vasilache 2404ead2cf7SAlex Zinenko template <> 2414ead2cf7SAlex Zinenko LogicalResult NDTransferOpHelper<TransferReadOp>::doReplace() { 2427c3c5b11SNicolas Vasilache Value alloc, result; 2437c3c5b11SNicolas Vasilache if (options.unroll) 2447c3c5b11SNicolas Vasilache result = std_splat(vectorType, xferOp.padding()); 2457c3c5b11SNicolas Vasilache else 246247e185dSNicolas Vasilache alloc = setAllocAtFunctionEntry(memRefMinorVectorType, op); 2474ead2cf7SAlex Zinenko 2484ead2cf7SAlex Zinenko emitLoops([&](ValueRange majorIvs, ValueRange leadingOffsets, 2494ead2cf7SAlex Zinenko ValueRange majorOffsets, ValueRange minorOffsets, 250*307dc7b2SBenjamin Kramer const MemRefBoundsCapture &memrefBounds) { 2517c3c5b11SNicolas Vasilache /// Lambda to load 1-D vector in the current loop ivs + offset context. 2527c3c5b11SNicolas Vasilache auto load1DVector = [&](ValueRange majorIvsPlusOffsets) -> Value { 2534ead2cf7SAlex Zinenko SmallVector<Value, 8> indexing; 2544ead2cf7SAlex Zinenko indexing.reserve(leadingRank + majorRank + minorRank); 2554ead2cf7SAlex Zinenko indexing.append(leadingOffsets.begin(), leadingOffsets.end()); 2564ead2cf7SAlex Zinenko indexing.append(majorIvsPlusOffsets.begin(), majorIvsPlusOffsets.end()); 2574ead2cf7SAlex Zinenko indexing.append(minorOffsets.begin(), minorOffsets.end()); 25836cdc17fSNicolas Vasilache Value memref = xferOp.memref(); 25947cbd9f9SNicolas Vasilache auto map = 26047cbd9f9SNicolas Vasilache getTransferMinorIdentityMap(xferOp.getMemRefType(), minorVectorType); 2611870e787SNicolas Vasilache ArrayAttr masked; 262cc0a58d7SNicolas Vasilache if (!xferOp.isMaskedDim(xferOp.getVectorType().getRank() - 1)) { 2631870e787SNicolas Vasilache OpBuilder &b = ScopedContext::getBuilderRef(); 264cc0a58d7SNicolas Vasilache masked = b.getBoolArrayAttr({false}); 2651870e787SNicolas Vasilache } 2667c3c5b11SNicolas Vasilache return vector_transfer_read(minorVectorType, memref, indexing, 2677c3c5b11SNicolas Vasilache AffineMapAttr::get(map), xferOp.padding(), 2687c3c5b11SNicolas Vasilache masked); 2694ead2cf7SAlex Zinenko }; 2707c3c5b11SNicolas Vasilache 2717c3c5b11SNicolas Vasilache // 1. Compute the inBoundsCondition in the current loops ivs + offset 2727c3c5b11SNicolas Vasilache // context. 2737c3c5b11SNicolas Vasilache SmallVector<Value, 4> majorIvsPlusOffsets; 2747c3c5b11SNicolas Vasilache Value inBoundsCondition = emitInBoundsCondition( 275239eff50SBenjamin Kramer rewriter, cast<VectorTransferOpInterface>(xferOp.getOperation()), 276239eff50SBenjamin Kramer leadingRank, majorIvs, majorOffsets, memrefBounds, majorIvsPlusOffsets); 2777c3c5b11SNicolas Vasilache 2787c3c5b11SNicolas Vasilache if (inBoundsCondition) { 2797c3c5b11SNicolas Vasilache // 2. If the condition is not null, we need an IfOp, which may yield 2807c3c5b11SNicolas Vasilache // if `options.unroll` is true. 2817c3c5b11SNicolas Vasilache SmallVector<Type, 1> resultType; 2827c3c5b11SNicolas Vasilache if (options.unroll) 2837c3c5b11SNicolas Vasilache resultType.push_back(vectorType); 2847c3c5b11SNicolas Vasilache 285cadb7ccfSAlex Zinenko // 3. If in-bounds, progressively lower to a 1-D transfer read, otherwise 286cadb7ccfSAlex Zinenko // splat a 1-D vector. 287cadb7ccfSAlex Zinenko ValueRange ifResults = conditionBuilder( 288cadb7ccfSAlex Zinenko resultType, inBoundsCondition, 289cadb7ccfSAlex Zinenko [&]() -> scf::ValueVector { 2907c3c5b11SNicolas Vasilache Value vector = load1DVector(majorIvsPlusOffsets); 291cadb7ccfSAlex Zinenko // 3.a. If `options.unroll` is true, insert the 1-D vector in the 2927c3c5b11SNicolas Vasilache // aggregate. We must yield and merge with the `else` branch. 2937c3c5b11SNicolas Vasilache if (options.unroll) { 2947c3c5b11SNicolas Vasilache vector = vector_insert(vector, result, majorIvs); 295cadb7ccfSAlex Zinenko return {vector}; 2967c3c5b11SNicolas Vasilache } 297cadb7ccfSAlex Zinenko // 3.b. Otherwise, just go through the temporary `alloc`. 2984ead2cf7SAlex Zinenko std_store(vector, alloc, majorIvs); 299cadb7ccfSAlex Zinenko return {}; 300cadb7ccfSAlex Zinenko }, 301cadb7ccfSAlex Zinenko [&]() -> scf::ValueVector { 3027c3c5b11SNicolas Vasilache Value vector = std_splat(minorVectorType, xferOp.padding()); 303cadb7ccfSAlex Zinenko // 3.c. If `options.unroll` is true, insert the 1-D vector in the 3047c3c5b11SNicolas Vasilache // aggregate. We must yield and merge with the `then` branch. 3057c3c5b11SNicolas Vasilache if (options.unroll) { 3067c3c5b11SNicolas Vasilache vector = vector_insert(vector, result, majorIvs); 307cadb7ccfSAlex Zinenko return {vector}; 3087c3c5b11SNicolas Vasilache } 309cadb7ccfSAlex Zinenko // 3.d. Otherwise, just go through the temporary `alloc`. 3107c3c5b11SNicolas Vasilache std_store(vector, alloc, majorIvs); 311cadb7ccfSAlex Zinenko return {}; 3127c3c5b11SNicolas Vasilache }); 313cadb7ccfSAlex Zinenko 3147c3c5b11SNicolas Vasilache if (!resultType.empty()) 315cadb7ccfSAlex Zinenko result = *ifResults.begin(); 3167c3c5b11SNicolas Vasilache } else { 3177c3c5b11SNicolas Vasilache // 4. Guaranteed in-bounds, progressively lower to a 1-D transfer read. 3187c3c5b11SNicolas Vasilache Value loaded1D = load1DVector(majorIvsPlusOffsets); 3197c3c5b11SNicolas Vasilache // 5.a. If `options.unroll` is true, insert the 1-D vector in the 3207c3c5b11SNicolas Vasilache // aggregate. 3217c3c5b11SNicolas Vasilache if (options.unroll) 3227c3c5b11SNicolas Vasilache result = vector_insert(loaded1D, result, majorIvs); 3237c3c5b11SNicolas Vasilache // 5.b. Otherwise, just go through the temporary `alloc`. 3247c3c5b11SNicolas Vasilache else 3257c3c5b11SNicolas Vasilache std_store(loaded1D, alloc, majorIvs); 3267c3c5b11SNicolas Vasilache } 3277c3c5b11SNicolas Vasilache }); 3287c3c5b11SNicolas Vasilache 329a9b5edc5SBenjamin Kramer assert((!options.unroll ^ (bool)result) && 330a9b5edc5SBenjamin Kramer "Expected resulting Value iff unroll"); 3317c3c5b11SNicolas Vasilache if (!result) 3327c3c5b11SNicolas Vasilache result = std_load(vector_type_cast(MemRefType::get({}, vectorType), alloc)); 3337c3c5b11SNicolas Vasilache rewriter.replaceOp(op, result); 3344ead2cf7SAlex Zinenko 3354ead2cf7SAlex Zinenko return success(); 3364ead2cf7SAlex Zinenko } 3374ead2cf7SAlex Zinenko 3384ead2cf7SAlex Zinenko template <> 3394ead2cf7SAlex Zinenko LogicalResult NDTransferOpHelper<TransferWriteOp>::doReplace() { 3407c3c5b11SNicolas Vasilache Value alloc; 3417c3c5b11SNicolas Vasilache if (!options.unroll) { 342247e185dSNicolas Vasilache alloc = setAllocAtFunctionEntry(memRefMinorVectorType, op); 3434ead2cf7SAlex Zinenko std_store(xferOp.vector(), 3444ead2cf7SAlex Zinenko vector_type_cast(MemRefType::get({}, vectorType), alloc)); 3457c3c5b11SNicolas Vasilache } 3464ead2cf7SAlex Zinenko 3474ead2cf7SAlex Zinenko emitLoops([&](ValueRange majorIvs, ValueRange leadingOffsets, 3484ead2cf7SAlex Zinenko ValueRange majorOffsets, ValueRange minorOffsets, 349*307dc7b2SBenjamin Kramer const MemRefBoundsCapture &memrefBounds) { 3507c3c5b11SNicolas Vasilache // Lower to 1-D vector_transfer_write and let recursion handle it. 3517c3c5b11SNicolas Vasilache auto emitTransferWrite = [&](ValueRange majorIvsPlusOffsets) { 3524ead2cf7SAlex Zinenko SmallVector<Value, 8> indexing; 3534ead2cf7SAlex Zinenko indexing.reserve(leadingRank + majorRank + minorRank); 3544ead2cf7SAlex Zinenko indexing.append(leadingOffsets.begin(), leadingOffsets.end()); 3554ead2cf7SAlex Zinenko indexing.append(majorIvsPlusOffsets.begin(), majorIvsPlusOffsets.end()); 3564ead2cf7SAlex Zinenko indexing.append(minorOffsets.begin(), minorOffsets.end()); 3577c3c5b11SNicolas Vasilache Value result; 3587c3c5b11SNicolas Vasilache // If `options.unroll` is true, extract the 1-D vector from the 3597c3c5b11SNicolas Vasilache // aggregate. 3607c3c5b11SNicolas Vasilache if (options.unroll) 3617c3c5b11SNicolas Vasilache result = vector_extract(xferOp.vector(), majorIvs); 3627c3c5b11SNicolas Vasilache else 3637c3c5b11SNicolas Vasilache result = std_load(alloc, majorIvs); 36447cbd9f9SNicolas Vasilache auto map = 36547cbd9f9SNicolas Vasilache getTransferMinorIdentityMap(xferOp.getMemRefType(), minorVectorType); 3661870e787SNicolas Vasilache ArrayAttr masked; 367cc0a58d7SNicolas Vasilache if (!xferOp.isMaskedDim(xferOp.getVectorType().getRank() - 1)) { 3681870e787SNicolas Vasilache OpBuilder &b = ScopedContext::getBuilderRef(); 369cc0a58d7SNicolas Vasilache masked = b.getBoolArrayAttr({false}); 3701870e787SNicolas Vasilache } 3717c3c5b11SNicolas Vasilache vector_transfer_write(result, xferOp.memref(), indexing, 3721870e787SNicolas Vasilache AffineMapAttr::get(map), masked); 3734ead2cf7SAlex Zinenko }; 3747c3c5b11SNicolas Vasilache 3757c3c5b11SNicolas Vasilache // 1. Compute the inBoundsCondition in the current loops ivs + offset 3767c3c5b11SNicolas Vasilache // context. 3777c3c5b11SNicolas Vasilache SmallVector<Value, 4> majorIvsPlusOffsets; 3787c3c5b11SNicolas Vasilache Value inBoundsCondition = emitInBoundsCondition( 379239eff50SBenjamin Kramer rewriter, cast<VectorTransferOpInterface>(xferOp.getOperation()), 380239eff50SBenjamin Kramer leadingRank, majorIvs, majorOffsets, memrefBounds, majorIvsPlusOffsets); 3817c3c5b11SNicolas Vasilache 3827c3c5b11SNicolas Vasilache if (inBoundsCondition) { 3837c3c5b11SNicolas Vasilache // 2.a. If the condition is not null, we need an IfOp, to write 3847c3c5b11SNicolas Vasilache // conditionally. Progressively lower to a 1-D transfer write. 385cadb7ccfSAlex Zinenko conditionBuilder(inBoundsCondition, 386cadb7ccfSAlex Zinenko [&] { emitTransferWrite(majorIvsPlusOffsets); }); 3877c3c5b11SNicolas Vasilache } else { 3887c3c5b11SNicolas Vasilache // 2.b. Guaranteed in-bounds. Progressively lower to a 1-D transfer write. 3897c3c5b11SNicolas Vasilache emitTransferWrite(majorIvsPlusOffsets); 3907c3c5b11SNicolas Vasilache } 3914ead2cf7SAlex Zinenko }); 3924ead2cf7SAlex Zinenko 3934ead2cf7SAlex Zinenko rewriter.eraseOp(op); 3944ead2cf7SAlex Zinenko 3954ead2cf7SAlex Zinenko return success(); 3964ead2cf7SAlex Zinenko } 3974ead2cf7SAlex Zinenko 3984ead2cf7SAlex Zinenko /// Analyzes the `transfer` to find an access dimension along the fastest remote 3994ead2cf7SAlex Zinenko /// MemRef dimension. If such a dimension with coalescing properties is found, 4004ead2cf7SAlex Zinenko /// `pivs` and `vectorBoundsCapture` are swapped so that the invocation of 4014ead2cf7SAlex Zinenko /// LoopNestBuilder captures it in the innermost loop. 4024ead2cf7SAlex Zinenko template <typename TransferOpTy> 4034ead2cf7SAlex Zinenko static int computeCoalescedIndex(TransferOpTy transfer) { 4044ead2cf7SAlex Zinenko // rank of the remote memory access, coalescing behavior occurs on the 4054ead2cf7SAlex Zinenko // innermost memory dimension. 4064ead2cf7SAlex Zinenko auto remoteRank = transfer.getMemRefType().getRank(); 4074ead2cf7SAlex Zinenko // Iterate over the results expressions of the permutation map to determine 4084ead2cf7SAlex Zinenko // the loop order for creating pointwise copies between remote and local 4094ead2cf7SAlex Zinenko // memories. 4104ead2cf7SAlex Zinenko int coalescedIdx = -1; 4114ead2cf7SAlex Zinenko auto exprs = transfer.permutation_map().getResults(); 4124ead2cf7SAlex Zinenko for (auto en : llvm::enumerate(exprs)) { 4134ead2cf7SAlex Zinenko auto dim = en.value().template dyn_cast<AffineDimExpr>(); 4144ead2cf7SAlex Zinenko if (!dim) { 4154ead2cf7SAlex Zinenko continue; 4164ead2cf7SAlex Zinenko } 4174ead2cf7SAlex Zinenko auto memRefDim = dim.getPosition(); 4184ead2cf7SAlex Zinenko if (memRefDim == remoteRank - 1) { 4194ead2cf7SAlex Zinenko // memRefDim has coalescing properties, it should be swapped in the last 4204ead2cf7SAlex Zinenko // position. 4214ead2cf7SAlex Zinenko assert(coalescedIdx == -1 && "Unexpected > 1 coalesced indices"); 4224ead2cf7SAlex Zinenko coalescedIdx = en.index(); 4234ead2cf7SAlex Zinenko } 4244ead2cf7SAlex Zinenko } 4254ead2cf7SAlex Zinenko return coalescedIdx; 4264ead2cf7SAlex Zinenko } 4274ead2cf7SAlex Zinenko 4284ead2cf7SAlex Zinenko template <typename TransferOpTy> 4293393cc4cSNicolas Vasilache VectorTransferRewriter<TransferOpTy>::VectorTransferRewriter( 4307c3c5b11SNicolas Vasilache VectorTransferToSCFOptions options, MLIRContext *context) 4317c3c5b11SNicolas Vasilache : RewritePattern(TransferOpTy::getOperationName(), 1, context), 4327c3c5b11SNicolas Vasilache options(options) {} 4334ead2cf7SAlex Zinenko 4347c3c5b11SNicolas Vasilache /// Used for staging the transfer in a local buffer. 4357c3c5b11SNicolas Vasilache template <typename TransferOpTy> 4363393cc4cSNicolas Vasilache MemRefType VectorTransferRewriter<TransferOpTy>::tmpMemRefType( 4377c3c5b11SNicolas Vasilache TransferOpTy transfer) const { 4384ead2cf7SAlex Zinenko auto vectorType = transfer.getVectorType(); 4398d64df9fSNicolas Vasilache return MemRefType::get(vectorType.getShape().drop_back(), 4408d64df9fSNicolas Vasilache VectorType::get(vectorType.getShape().take_back(), 4418d64df9fSNicolas Vasilache vectorType.getElementType()), 4428d64df9fSNicolas Vasilache {}, 0); 4434ead2cf7SAlex Zinenko } 4444ead2cf7SAlex Zinenko 445239eff50SBenjamin Kramer static void emitWithBoundsChecks( 446239eff50SBenjamin Kramer PatternRewriter &rewriter, VectorTransferOpInterface transfer, 447*307dc7b2SBenjamin Kramer ValueRange ivs, const MemRefBoundsCapture &memRefBoundsCapture, 448239eff50SBenjamin Kramer function_ref<void(ArrayRef<Value>)> inBoundsFun, 449239eff50SBenjamin Kramer function_ref<void(ArrayRef<Value>)> outOfBoundsFun = nullptr) { 450239eff50SBenjamin Kramer // Permute the incoming indices according to the permutation map. 451239eff50SBenjamin Kramer SmallVector<Value, 4> indices = 452239eff50SBenjamin Kramer linalg::applyMapToValues(rewriter, transfer.getLoc(), 453239eff50SBenjamin Kramer transfer.permutation_map(), transfer.indices()); 454239eff50SBenjamin Kramer 455239eff50SBenjamin Kramer // Generate a bounds check if necessary. 456239eff50SBenjamin Kramer SmallVector<Value, 4> majorIvsPlusOffsets; 457239eff50SBenjamin Kramer Value inBoundsCondition = 458239eff50SBenjamin Kramer emitInBoundsCondition(rewriter, transfer, 0, ivs, indices, 459239eff50SBenjamin Kramer memRefBoundsCapture, majorIvsPlusOffsets); 460239eff50SBenjamin Kramer 461239eff50SBenjamin Kramer // Apply the permutation map to the ivs. The permutation map may not use all 462239eff50SBenjamin Kramer // the inputs. 463239eff50SBenjamin Kramer SmallVector<Value, 4> scalarAccessExprs(transfer.indices().size()); 464239eff50SBenjamin Kramer for (unsigned memRefDim = 0; memRefDim < transfer.indices().size(); 465239eff50SBenjamin Kramer ++memRefDim) { 466239eff50SBenjamin Kramer // Linear search on a small number of entries. 467239eff50SBenjamin Kramer int loopIndex = -1; 468239eff50SBenjamin Kramer auto exprs = transfer.permutation_map().getResults(); 469239eff50SBenjamin Kramer for (auto en : llvm::enumerate(exprs)) { 470239eff50SBenjamin Kramer auto expr = en.value(); 471239eff50SBenjamin Kramer auto dim = expr.dyn_cast<AffineDimExpr>(); 472239eff50SBenjamin Kramer // Sanity check. 473239eff50SBenjamin Kramer assert((dim || expr.cast<AffineConstantExpr>().getValue() == 0) && 474239eff50SBenjamin Kramer "Expected dim or 0 in permutationMap"); 475239eff50SBenjamin Kramer if (dim && memRefDim == dim.getPosition()) { 476239eff50SBenjamin Kramer loopIndex = en.index(); 477239eff50SBenjamin Kramer break; 478239eff50SBenjamin Kramer } 479239eff50SBenjamin Kramer } 480239eff50SBenjamin Kramer 481239eff50SBenjamin Kramer using namespace edsc::op; 482239eff50SBenjamin Kramer auto i = transfer.indices()[memRefDim]; 483239eff50SBenjamin Kramer scalarAccessExprs[memRefDim] = loopIndex < 0 ? i : i + ivs[loopIndex]; 484239eff50SBenjamin Kramer } 485239eff50SBenjamin Kramer 486239eff50SBenjamin Kramer if (inBoundsCondition) 487239eff50SBenjamin Kramer conditionBuilder( 488239eff50SBenjamin Kramer /* scf.if */ inBoundsCondition, // { 489239eff50SBenjamin Kramer [&] { inBoundsFun(scalarAccessExprs); }, 490239eff50SBenjamin Kramer // } else { 491239eff50SBenjamin Kramer outOfBoundsFun ? [&] { outOfBoundsFun(scalarAccessExprs); } 492239eff50SBenjamin Kramer : function_ref<void()>() 493239eff50SBenjamin Kramer // } 494239eff50SBenjamin Kramer ); 495239eff50SBenjamin Kramer else 496239eff50SBenjamin Kramer inBoundsFun(scalarAccessExprs); 497239eff50SBenjamin Kramer } 498239eff50SBenjamin Kramer 4994ead2cf7SAlex Zinenko /// Lowers TransferReadOp into a combination of: 5004ead2cf7SAlex Zinenko /// 1. local memory allocation; 5014ead2cf7SAlex Zinenko /// 2. perfect loop nest over: 5024ead2cf7SAlex Zinenko /// a. scalar load from local buffers (viewed as a scalar memref); 503*307dc7b2SBenjamin Kramer /// a. scalar store to original memref (with padding). 5044ead2cf7SAlex Zinenko /// 3. vector_load from local buffer (viewed as a memref<1 x vector>); 5054ead2cf7SAlex Zinenko /// 4. local memory deallocation. 5064ead2cf7SAlex Zinenko /// 5074ead2cf7SAlex Zinenko /// Lowers the data transfer part of a TransferReadOp while ensuring no 5084ead2cf7SAlex Zinenko /// out-of-bounds accesses are possible. Out-of-bounds behavior is handled by 509*307dc7b2SBenjamin Kramer /// padding. 5104ead2cf7SAlex Zinenko 5114ead2cf7SAlex Zinenko /// Performs the rewrite. 5124ead2cf7SAlex Zinenko template <> 5133393cc4cSNicolas Vasilache LogicalResult VectorTransferRewriter<TransferReadOp>::matchAndRewrite( 5144ead2cf7SAlex Zinenko Operation *op, PatternRewriter &rewriter) const { 5154ead2cf7SAlex Zinenko using namespace mlir::edsc::op; 5164ead2cf7SAlex Zinenko 5174ead2cf7SAlex Zinenko TransferReadOp transfer = cast<TransferReadOp>(op); 518dfb7b3feSBenjamin Kramer 519dfb7b3feSBenjamin Kramer // Fall back to a loop if the fastest varying stride is not 1 or it is 520dfb7b3feSBenjamin Kramer // permuted. 521dfb7b3feSBenjamin Kramer int64_t offset; 522dfb7b3feSBenjamin Kramer SmallVector<int64_t, 4> strides; 523dfb7b3feSBenjamin Kramer auto successStrides = 524dfb7b3feSBenjamin Kramer getStridesAndOffset(transfer.getMemRefType(), strides, offset); 525dfb7b3feSBenjamin Kramer if (succeeded(successStrides) && strides.back() == 1 && 526dfb7b3feSBenjamin Kramer transfer.permutation_map().isMinorIdentity()) { 5274ead2cf7SAlex Zinenko // If > 1D, emit a bunch of loops around 1-D vector transfers. 5284ead2cf7SAlex Zinenko if (transfer.getVectorType().getRank() > 1) 5297c3c5b11SNicolas Vasilache return NDTransferOpHelper<TransferReadOp>(rewriter, transfer, options) 5307c3c5b11SNicolas Vasilache .doReplace(); 5314ead2cf7SAlex Zinenko // If 1-D this is now handled by the target-specific lowering. 5324ead2cf7SAlex Zinenko if (transfer.getVectorType().getRank() == 1) 5334ead2cf7SAlex Zinenko return failure(); 5344ead2cf7SAlex Zinenko } 5354ead2cf7SAlex Zinenko 5364ead2cf7SAlex Zinenko // Conservative lowering to scalar load / stores. 5374ead2cf7SAlex Zinenko // 1. Setup all the captures. 5384ead2cf7SAlex Zinenko ScopedContext scope(rewriter, transfer.getLoc()); 5394ead2cf7SAlex Zinenko StdIndexedValue remote(transfer.memref()); 5404ead2cf7SAlex Zinenko MemRefBoundsCapture memRefBoundsCapture(transfer.memref()); 5414ead2cf7SAlex Zinenko VectorBoundsCapture vectorBoundsCapture(transfer.vector()); 5424ead2cf7SAlex Zinenko int coalescedIdx = computeCoalescedIndex(transfer); 5434ead2cf7SAlex Zinenko // Swap the vectorBoundsCapture which will reorder loop bounds. 5444ead2cf7SAlex Zinenko if (coalescedIdx >= 0) 5454ead2cf7SAlex Zinenko vectorBoundsCapture.swapRanges(vectorBoundsCapture.rank() - 1, 5464ead2cf7SAlex Zinenko coalescedIdx); 5474ead2cf7SAlex Zinenko 5484ead2cf7SAlex Zinenko auto lbs = vectorBoundsCapture.getLbs(); 5494ead2cf7SAlex Zinenko auto ubs = vectorBoundsCapture.getUbs(); 5504ead2cf7SAlex Zinenko SmallVector<Value, 8> steps; 5514ead2cf7SAlex Zinenko steps.reserve(vectorBoundsCapture.getSteps().size()); 5524ead2cf7SAlex Zinenko for (auto step : vectorBoundsCapture.getSteps()) 5534ead2cf7SAlex Zinenko steps.push_back(std_constant_index(step)); 5544ead2cf7SAlex Zinenko 5554ead2cf7SAlex Zinenko // 2. Emit alloc-copy-load-dealloc. 5569be61784SNicolas Vasilache MLIRContext *ctx = op->getContext(); 5578d64df9fSNicolas Vasilache Value tmp = setAllocAtFunctionEntry(tmpMemRefType(transfer), transfer); 5584ead2cf7SAlex Zinenko StdIndexedValue local(tmp); 559d1560f39SAlex Zinenko loopNestBuilder(lbs, ubs, steps, [&](ValueRange loopIvs) { 560239eff50SBenjamin Kramer auto ivsStorage = llvm::to_vector<8>(loopIvs); 5614ead2cf7SAlex Zinenko // Swap the ivs which will reorder memory accesses. 5624ead2cf7SAlex Zinenko if (coalescedIdx >= 0) 563239eff50SBenjamin Kramer std::swap(ivsStorage.back(), ivsStorage[coalescedIdx]); 564239eff50SBenjamin Kramer 565239eff50SBenjamin Kramer ArrayRef<Value> ivs(ivsStorage); 566239eff50SBenjamin Kramer Value pos = std_index_cast(IntegerType::get(32, ctx), ivs.back()); 567239eff50SBenjamin Kramer Value inVector = local(ivs.drop_back()); 568239eff50SBenjamin Kramer auto loadValue = [&](ArrayRef<Value> indices) { 569239eff50SBenjamin Kramer Value vector = vector_insert_element(remote(indices), inVector, pos); 570239eff50SBenjamin Kramer local(ivs.drop_back()) = vector; 571239eff50SBenjamin Kramer }; 572239eff50SBenjamin Kramer auto loadPadding = [&](ArrayRef<Value>) { 573239eff50SBenjamin Kramer Value vector = vector_insert_element(transfer.padding(), inVector, pos); 574239eff50SBenjamin Kramer local(ivs.drop_back()) = vector; 575239eff50SBenjamin Kramer }; 576239eff50SBenjamin Kramer emitWithBoundsChecks( 577239eff50SBenjamin Kramer rewriter, cast<VectorTransferOpInterface>(transfer.getOperation()), ivs, 578239eff50SBenjamin Kramer memRefBoundsCapture, loadValue, loadPadding); 5794ead2cf7SAlex Zinenko }); 5809be61784SNicolas Vasilache Value vectorValue = std_load(vector_type_cast(tmp)); 5814ead2cf7SAlex Zinenko 5824ead2cf7SAlex Zinenko // 3. Propagate. 5834ead2cf7SAlex Zinenko rewriter.replaceOp(op, vectorValue); 5844ead2cf7SAlex Zinenko return success(); 5854ead2cf7SAlex Zinenko } 5864ead2cf7SAlex Zinenko 5874ead2cf7SAlex Zinenko /// Lowers TransferWriteOp into a combination of: 5884ead2cf7SAlex Zinenko /// 1. local memory allocation; 5894ead2cf7SAlex Zinenko /// 2. vector_store to local buffer (viewed as a memref<1 x vector>); 5904ead2cf7SAlex Zinenko /// 3. perfect loop nest over: 5914ead2cf7SAlex Zinenko /// a. scalar load from local buffers (viewed as a scalar memref); 592*307dc7b2SBenjamin Kramer /// a. scalar store to original memref (if in bounds). 5934ead2cf7SAlex Zinenko /// 4. local memory deallocation. 5944ead2cf7SAlex Zinenko /// 5954ead2cf7SAlex Zinenko /// More specifically, lowers the data transfer part while ensuring no 596*307dc7b2SBenjamin Kramer /// out-of-bounds accesses are possible. 5974ead2cf7SAlex Zinenko template <> 5983393cc4cSNicolas Vasilache LogicalResult VectorTransferRewriter<TransferWriteOp>::matchAndRewrite( 5994ead2cf7SAlex Zinenko Operation *op, PatternRewriter &rewriter) const { 6004ead2cf7SAlex Zinenko using namespace edsc::op; 6014ead2cf7SAlex Zinenko 6024ead2cf7SAlex Zinenko TransferWriteOp transfer = cast<TransferWriteOp>(op); 603dfb7b3feSBenjamin Kramer 604dfb7b3feSBenjamin Kramer // Fall back to a loop if the fastest varying stride is not 1 or it is 605dfb7b3feSBenjamin Kramer // permuted. 606dfb7b3feSBenjamin Kramer int64_t offset; 607dfb7b3feSBenjamin Kramer SmallVector<int64_t, 4> strides; 608dfb7b3feSBenjamin Kramer auto successStrides = 609dfb7b3feSBenjamin Kramer getStridesAndOffset(transfer.getMemRefType(), strides, offset); 610dfb7b3feSBenjamin Kramer if (succeeded(successStrides) && strides.back() == 1 && 611dfb7b3feSBenjamin Kramer transfer.permutation_map().isMinorIdentity()) { 6124ead2cf7SAlex Zinenko // If > 1D, emit a bunch of loops around 1-D vector transfers. 6134ead2cf7SAlex Zinenko if (transfer.getVectorType().getRank() > 1) 6147c3c5b11SNicolas Vasilache return NDTransferOpHelper<TransferWriteOp>(rewriter, transfer, options) 6154ead2cf7SAlex Zinenko .doReplace(); 6164ead2cf7SAlex Zinenko // If 1-D this is now handled by the target-specific lowering. 6174ead2cf7SAlex Zinenko if (transfer.getVectorType().getRank() == 1) 6184ead2cf7SAlex Zinenko return failure(); 6194ead2cf7SAlex Zinenko } 6204ead2cf7SAlex Zinenko 6214ead2cf7SAlex Zinenko // 1. Setup all the captures. 6224ead2cf7SAlex Zinenko ScopedContext scope(rewriter, transfer.getLoc()); 6234ead2cf7SAlex Zinenko StdIndexedValue remote(transfer.memref()); 6244ead2cf7SAlex Zinenko MemRefBoundsCapture memRefBoundsCapture(transfer.memref()); 6254ead2cf7SAlex Zinenko Value vectorValue(transfer.vector()); 6264ead2cf7SAlex Zinenko VectorBoundsCapture vectorBoundsCapture(transfer.vector()); 6274ead2cf7SAlex Zinenko int coalescedIdx = computeCoalescedIndex(transfer); 6284ead2cf7SAlex Zinenko // Swap the vectorBoundsCapture which will reorder loop bounds. 6294ead2cf7SAlex Zinenko if (coalescedIdx >= 0) 6304ead2cf7SAlex Zinenko vectorBoundsCapture.swapRanges(vectorBoundsCapture.rank() - 1, 6314ead2cf7SAlex Zinenko coalescedIdx); 6324ead2cf7SAlex Zinenko 6334ead2cf7SAlex Zinenko auto lbs = vectorBoundsCapture.getLbs(); 6344ead2cf7SAlex Zinenko auto ubs = vectorBoundsCapture.getUbs(); 6354ead2cf7SAlex Zinenko SmallVector<Value, 8> steps; 6364ead2cf7SAlex Zinenko steps.reserve(vectorBoundsCapture.getSteps().size()); 6374ead2cf7SAlex Zinenko for (auto step : vectorBoundsCapture.getSteps()) 6384ead2cf7SAlex Zinenko steps.push_back(std_constant_index(step)); 6394ead2cf7SAlex Zinenko 6404ead2cf7SAlex Zinenko // 2. Emit alloc-store-copy-dealloc. 6418d64df9fSNicolas Vasilache Value tmp = setAllocAtFunctionEntry(tmpMemRefType(transfer), transfer); 6424ead2cf7SAlex Zinenko StdIndexedValue local(tmp); 6434ead2cf7SAlex Zinenko Value vec = vector_type_cast(tmp); 6444ead2cf7SAlex Zinenko std_store(vectorValue, vec); 645d1560f39SAlex Zinenko loopNestBuilder(lbs, ubs, steps, [&](ValueRange loopIvs) { 646239eff50SBenjamin Kramer auto ivsStorage = llvm::to_vector<8>(loopIvs); 647239eff50SBenjamin Kramer // Swap the ivsStorage which will reorder memory accesses. 6484ead2cf7SAlex Zinenko if (coalescedIdx >= 0) 649239eff50SBenjamin Kramer std::swap(ivsStorage.back(), ivsStorage[coalescedIdx]); 650239eff50SBenjamin Kramer 651239eff50SBenjamin Kramer ArrayRef<Value> ivs(ivsStorage); 6528d64df9fSNicolas Vasilache Value pos = 653239eff50SBenjamin Kramer std_index_cast(IntegerType::get(32, op->getContext()), ivs.back()); 654239eff50SBenjamin Kramer auto storeValue = [&](ArrayRef<Value> indices) { 655239eff50SBenjamin Kramer Value scalar = vector_extract_element(local(ivs.drop_back()), pos); 6568d64df9fSNicolas Vasilache remote(indices) = scalar; 657239eff50SBenjamin Kramer }; 658239eff50SBenjamin Kramer emitWithBoundsChecks( 659239eff50SBenjamin Kramer rewriter, cast<VectorTransferOpInterface>(transfer.getOperation()), ivs, 660239eff50SBenjamin Kramer memRefBoundsCapture, storeValue); 6614ead2cf7SAlex Zinenko }); 6624ead2cf7SAlex Zinenko 6638d64df9fSNicolas Vasilache // 3. Erase. 6644ead2cf7SAlex Zinenko rewriter.eraseOp(op); 6654ead2cf7SAlex Zinenko return success(); 6664ead2cf7SAlex Zinenko } 6674ead2cf7SAlex Zinenko 668*307dc7b2SBenjamin Kramer namespace mlir { 669*307dc7b2SBenjamin Kramer 6703393cc4cSNicolas Vasilache void populateVectorToSCFConversionPatterns( 6717c3c5b11SNicolas Vasilache OwningRewritePatternList &patterns, MLIRContext *context, 6727c3c5b11SNicolas Vasilache const VectorTransferToSCFOptions &options) { 6734ead2cf7SAlex Zinenko patterns.insert<VectorTransferRewriter<vector::TransferReadOp>, 6747c3c5b11SNicolas Vasilache VectorTransferRewriter<vector::TransferWriteOp>>(options, 6757c3c5b11SNicolas Vasilache context); 6764ead2cf7SAlex Zinenko } 6773393cc4cSNicolas Vasilache 6783393cc4cSNicolas Vasilache } // namespace mlir 6793393cc4cSNicolas Vasilache 6805f9e0466SNicolas Vasilache namespace { 6815f9e0466SNicolas Vasilache 6825f9e0466SNicolas Vasilache struct ConvertVectorToSCFPass 6835f9e0466SNicolas Vasilache : public ConvertVectorToSCFBase<ConvertVectorToSCFPass> { 6845f9e0466SNicolas Vasilache ConvertVectorToSCFPass() = default; 6855f9e0466SNicolas Vasilache ConvertVectorToSCFPass(const VectorTransferToSCFOptions &options) { 6865f9e0466SNicolas Vasilache this->fullUnroll = options.unroll; 6875f9e0466SNicolas Vasilache } 6885f9e0466SNicolas Vasilache 6895f9e0466SNicolas Vasilache void runOnFunction() override { 6905f9e0466SNicolas Vasilache OwningRewritePatternList patterns; 6915f9e0466SNicolas Vasilache auto *context = getFunction().getContext(); 6925f9e0466SNicolas Vasilache populateVectorToSCFConversionPatterns( 6935f9e0466SNicolas Vasilache patterns, context, VectorTransferToSCFOptions().setUnroll(fullUnroll)); 6945f9e0466SNicolas Vasilache applyPatternsAndFoldGreedily(getFunction(), patterns); 6955f9e0466SNicolas Vasilache } 6965f9e0466SNicolas Vasilache }; 6975f9e0466SNicolas Vasilache 6985f9e0466SNicolas Vasilache } // namespace 6995f9e0466SNicolas Vasilache 7005f9e0466SNicolas Vasilache std::unique_ptr<Pass> 7015f9e0466SNicolas Vasilache mlir::createConvertVectorToSCFPass(const VectorTransferToSCFOptions &options) { 7025f9e0466SNicolas Vasilache return std::make_unique<ConvertVectorToSCFPass>(options); 7035f9e0466SNicolas Vasilache } 704