Files
clang-p2996/llvm/lib/Transforms/Vectorize/VPlanTransforms.h
David Sherwood 3bc2dade36 [LoopVectorize] Enable vectorisation of early exit loops with live-outs (#120567)
This work feeds part of PR
https://github.com/llvm/llvm-project/pull/88385, and adds support for
vectorising
loops with uncountable early exits and outside users of loop-defined
variables. When calculating the final value from an uncountable early
exit we need to calculate the vector lane that triggered the exit,
and hence determine the value at the point we exited.

All code for calculating the last value when exiting the loop early
now lives in a new vector.early.exit block, which sits between the
middle.split block and the original exit block. Doing this required
two fixes:

1. The vplan verifier incorrectly assumed that the block containing
a definition always dominates the block of the user. That's not true
if you can arrive at the use block from multiple incoming blocks.
This is possible for early exit loops where both the early exit and
the latch jump to the same block.
2. We were adding the new vector.early.exit to the wrong parent loop.
It needs to have the same parent as the actual early exit block from
the original loop.

I've added a new ExtractFirstActive VPInstruction that extracts the
first active lane of a vector, i.e. the lane of the vector predicate
that triggered the exit.

NOTE: The IR generated for dealing with live-outs from early exit
loops is unoptimised, as opposed to normal loops. This inevitably
leads to poor quality code, but this can be fixed up later.
2025-01-30 10:37:00 +00:00

177 lines
7.7 KiB
C++

//===- VPlanTransforms.h - Utility VPlan to VPlan transforms --------------===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
///
/// \file
/// This file provides utility VPlan to VPlan transformations.
//===----------------------------------------------------------------------===//
#ifndef LLVM_TRANSFORMS_VECTORIZE_VPLANTRANSFORMS_H
#define LLVM_TRANSFORMS_VECTORIZE_VPLANTRANSFORMS_H
#include "VPlan.h"
#include "VPlanVerifier.h"
#include "llvm/ADT/STLFunctionalExtras.h"
#include "llvm/Support/CommandLine.h"
namespace llvm {
class InductionDescriptor;
class Instruction;
class PHINode;
class ScalarEvolution;
class PredicatedScalarEvolution;
class TargetLibraryInfo;
class VPBuilder;
class VPRecipeBuilder;
extern cl::opt<bool> VerifyEachVPlan;
struct VPlanTransforms {
/// Helper to run a VPlan transform \p Transform on \p VPlan, forwarding extra
/// arguments to the transform. Returns the boolean returned by the transform.
template <typename... ArgsTy>
static bool runPass(bool (*Transform)(VPlan &, ArgsTy...), VPlan &Plan,
typename std::remove_reference<ArgsTy>::type &...Args) {
bool Res = Transform(Plan, Args...);
if (VerifyEachVPlan)
verifyVPlanIsValid(Plan);
return Res;
}
/// Helper to run a VPlan transform \p Transform on \p VPlan, forwarding extra
/// arguments to the transform.
template <typename... ArgsTy>
static void runPass(void (*Fn)(VPlan &, ArgsTy...), VPlan &Plan,
typename std::remove_reference<ArgsTy>::type &...Args) {
Fn(Plan, Args...);
if (VerifyEachVPlan)
verifyVPlanIsValid(Plan);
}
/// Replaces the VPInstructions in \p Plan with corresponding
/// widen recipes.
static void
VPInstructionsToVPRecipes(VPlanPtr &Plan,
function_ref<const InductionDescriptor *(PHINode *)>
GetIntOrFpInductionDescriptor,
ScalarEvolution &SE, const TargetLibraryInfo &TLI);
/// Try to have all users of fixed-order recurrences appear after the recipe
/// defining their previous value, by either sinking users or hoisting recipes
/// defining their previous value (and its operands). Then introduce
/// FirstOrderRecurrenceSplice VPInstructions to combine the value from the
/// recurrence phis and previous values.
/// \returns true if all users of fixed-order recurrences could be re-arranged
/// as needed or false if it is not possible. In the latter case, \p Plan is
/// not valid.
static bool adjustFixedOrderRecurrences(VPlan &Plan, VPBuilder &Builder);
/// Clear NSW/NUW flags from reduction instructions if necessary.
static void clearReductionWrapFlags(VPlan &Plan);
/// Explicitly unroll \p Plan by \p UF.
static void unrollByUF(VPlan &Plan, unsigned UF, LLVMContext &Ctx);
/// Optimize \p Plan based on \p BestVF and \p BestUF. This may restrict the
/// resulting plan to \p BestVF and \p BestUF.
static void optimizeForVFAndUF(VPlan &Plan, ElementCount BestVF,
unsigned BestUF,
PredicatedScalarEvolution &PSE);
/// Apply VPlan-to-VPlan optimizations to \p Plan, including induction recipe
/// optimizations, dead recipe removal, replicate region optimizations and
/// block merging.
static void optimize(VPlan &Plan);
/// Wrap predicated VPReplicateRecipes with a mask operand in an if-then
/// region block and remove the mask operand. Optimize the created regions by
/// iteratively sinking scalar operands into the region, followed by merging
/// regions until no improvements are remaining.
static void createAndOptimizeReplicateRegions(VPlan &Plan);
/// Replace (ICMP_ULE, wide canonical IV, backedge-taken-count) checks with an
/// (active-lane-mask recipe, wide canonical IV, trip-count). If \p
/// UseActiveLaneMaskForControlFlow is true, introduce an
/// VPActiveLaneMaskPHIRecipe. If \p DataAndControlFlowWithoutRuntimeCheck is
/// true, no minimum-iteration runtime check will be created (during skeleton
/// creation) and instead it is handled using active-lane-mask. \p
/// DataAndControlFlowWithoutRuntimeCheck implies \p
/// UseActiveLaneMaskForControlFlow.
static void addActiveLaneMask(VPlan &Plan,
bool UseActiveLaneMaskForControlFlow,
bool DataAndControlFlowWithoutRuntimeCheck);
/// Insert truncates and extends for any truncated recipe. Redundant casts
/// will be folded later.
static void
truncateToMinimalBitwidths(VPlan &Plan,
const MapVector<Instruction *, uint64_t> &MinBWs);
/// Drop poison flags from recipes that may generate a poison value that is
/// used after vectorization, even when their operands are not poison. Those
/// recipes meet the following conditions:
/// * Contribute to the address computation of a recipe generating a widen
/// memory load/store (VPWidenMemoryInstructionRecipe or
/// VPInterleaveRecipe).
/// * Such a widen memory load/store has at least one underlying Instruction
/// that is in a basic block that needs predication and after vectorization
/// the generated instruction won't be predicated.
/// Uses \p BlockNeedsPredication to check if a block needs predicating.
/// TODO: Replace BlockNeedsPredication callback with retrieving info from
/// VPlan directly.
static void dropPoisonGeneratingRecipes(
VPlan &Plan,
const std::function<bool(BasicBlock *)> &BlockNeedsPredication);
/// Add a VPEVLBasedIVPHIRecipe and related recipes to \p Plan and
/// replaces all uses except the canonical IV increment of
/// VPCanonicalIVPHIRecipe with a VPEVLBasedIVPHIRecipe.
/// VPCanonicalIVPHIRecipe is only used to control the loop after
/// this transformation.
/// \returns true if the transformation succeeds, or false if it doesn't.
static bool
tryAddExplicitVectorLength(VPlan &Plan,
const std::optional<unsigned> &MaxEVLSafeElements);
// For each Interleave Group in \p InterleaveGroups replace the Recipes
// widening its memory instructions with a single VPInterleaveRecipe at its
// insertion point.
static void createInterleaveGroups(
VPlan &Plan,
const SmallPtrSetImpl<const InterleaveGroup<Instruction> *>
&InterleaveGroups,
VPRecipeBuilder &RecipeBuilder, const bool &ScalarEpilogueAllowed);
/// Remove dead recipes from \p Plan.
static void removeDeadRecipes(VPlan &Plan);
/// Update \p Plan to account for the uncountable early exit block in \p
/// UncountableExitingBlock by
/// * updating the condition exiting the vector loop to include the early
/// exit conditions
/// * splitting the original middle block to branch to the early exit block
/// if taken.
static void handleUncountableEarlyExit(VPlan &Plan, ScalarEvolution &SE,
Loop *OrigLoop,
BasicBlock *UncountableExitingBlock,
VPRecipeBuilder &RecipeBuilder);
/// Lower abstract recipes to concrete ones, that can be codegen'd.
static void convertToConcreteRecipes(VPlan &Plan);
/// If there's a single exit block, optimize its phi recipes that use exiting
/// IV values by feeding them precomputed end values instead, possibly taken
/// one step backwards.
static void
optimizeInductionExitUsers(VPlan &Plan,
DenseMap<VPValue *, VPValue *> &EndValues);
};
} // namespace llvm
#endif // LLVM_TRANSFORMS_VECTORIZE_VPLANTRANSFORMS_H