mirror of
https://github.com/KhronosGroup/SPIRV-Tools
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1af1df3b23
Fixes #3213.
239 lines
9.6 KiB
C++
239 lines
9.6 KiB
C++
// Copyright (c) 2020 Google LLC
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include "source/fuzz/fuzzer_pass_add_equation_instructions.h"
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#include <vector>
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#include "source/fuzz/fuzzer_util.h"
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#include "source/fuzz/transformation_equation_instruction.h"
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namespace spvtools {
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namespace fuzz {
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FuzzerPassAddEquationInstructions::FuzzerPassAddEquationInstructions(
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opt::IRContext* ir_context, FactManager* fact_manager,
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FuzzerContext* fuzzer_context,
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protobufs::TransformationSequence* transformations)
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: FuzzerPass(ir_context, fact_manager, fuzzer_context, transformations) {}
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FuzzerPassAddEquationInstructions::~FuzzerPassAddEquationInstructions() =
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default;
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void FuzzerPassAddEquationInstructions::Apply() {
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ForEachInstructionWithInstructionDescriptor(
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[this](opt::Function* function, opt::BasicBlock* block,
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opt::BasicBlock::iterator inst_it,
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const protobufs::InstructionDescriptor& instruction_descriptor) {
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if (!GetFuzzerContext()->ChoosePercentage(
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GetFuzzerContext()->GetChanceOfAddingEquationInstruction())) {
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return;
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}
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// Check that it is OK to add an equation instruction before the given
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// instruction in principle - e.g. check that this does not lead to
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// inserting before an OpVariable or OpPhi instruction. We use OpIAdd
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// as an example opcode for this check, to be representative of *some*
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// opcode that defines an equation, even though we may choose a
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// different opcode below.
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if (!fuzzerutil::CanInsertOpcodeBeforeInstruction(SpvOpIAdd, inst_it)) {
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return;
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}
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// Get all available instructions with result ids and types that are not
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// OpUndef.
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std::vector<opt::Instruction*> available_instructions =
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FindAvailableInstructions(
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function, block, inst_it,
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[](opt::IRContext*, opt::Instruction* instruction) -> bool {
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return instruction->result_id() && instruction->type_id() &&
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instruction->opcode() != SpvOpUndef;
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});
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// Try the opcodes for which we know how to make ids at random until
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// something works.
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std::vector<SpvOp> candidate_opcodes = {SpvOpIAdd, SpvOpISub,
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SpvOpLogicalNot, SpvOpSNegate};
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do {
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auto opcode =
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GetFuzzerContext()->RemoveAtRandomIndex(&candidate_opcodes);
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switch (opcode) {
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case SpvOpIAdd:
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case SpvOpISub: {
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// Instructions of integer (scalar or vector) result type are
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// suitable for these opcodes.
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auto integer_instructions =
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GetIntegerInstructions(available_instructions);
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if (!integer_instructions.empty()) {
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// There is at least one such instruction, so pick one at random
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// for the LHS of an equation.
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auto lhs = integer_instructions.at(
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GetFuzzerContext()->RandomIndex(integer_instructions));
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// For the RHS, we can use any instruction with an integer
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// scalar/vector result type of the same number of components
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// and the same bit-width for the underlying integer type.
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// Work out the element count and bit-width.
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auto lhs_type =
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GetIRContext()->get_type_mgr()->GetType(lhs->type_id());
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uint32_t lhs_element_count;
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uint32_t lhs_bit_width;
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if (lhs_type->AsVector()) {
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lhs_element_count = lhs_type->AsVector()->element_count();
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lhs_bit_width = lhs_type->AsVector()
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->element_type()
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->AsInteger()
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->width();
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} else {
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lhs_element_count = 1;
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lhs_bit_width = lhs_type->AsInteger()->width();
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}
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// Get all the instructions that match on element count and
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// bit-width.
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auto candidate_rhs_instructions = RestrictToElementBitWidth(
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RestrictToVectorWidth(integer_instructions,
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lhs_element_count),
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lhs_bit_width);
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// Choose a RHS instruction at random; there is guaranteed to
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// be at least one choice as the LHS will be available.
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auto rhs = candidate_rhs_instructions.at(
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GetFuzzerContext()->RandomIndex(
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candidate_rhs_instructions));
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// Add the equation instruction.
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ApplyTransformation(TransformationEquationInstruction(
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GetFuzzerContext()->GetFreshId(), opcode,
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{lhs->result_id(), rhs->result_id()},
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instruction_descriptor));
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return;
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}
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break;
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}
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case SpvOpLogicalNot: {
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// Choose any available instruction of boolean scalar/vector
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// result type and equate its negation with a fresh id.
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auto boolean_instructions =
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GetBooleanInstructions(available_instructions);
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if (!boolean_instructions.empty()) {
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ApplyTransformation(TransformationEquationInstruction(
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GetFuzzerContext()->GetFreshId(), opcode,
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{boolean_instructions
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.at(GetFuzzerContext()->RandomIndex(
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boolean_instructions))
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->result_id()},
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instruction_descriptor));
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return;
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}
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break;
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}
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case SpvOpSNegate: {
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// Similar to OpLogicalNot, but for signed integer negation.
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auto integer_instructions =
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GetIntegerInstructions(available_instructions);
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if (!integer_instructions.empty()) {
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ApplyTransformation(TransformationEquationInstruction(
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GetFuzzerContext()->GetFreshId(), opcode,
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{integer_instructions
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.at(GetFuzzerContext()->RandomIndex(
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integer_instructions))
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->result_id()},
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instruction_descriptor));
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return;
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}
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break;
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}
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default:
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assert(false && "Unexpected opcode.");
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break;
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}
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} while (!candidate_opcodes.empty());
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// Reaching here means that we did not manage to apply any
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// transformation at this point of the module.
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});
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}
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std::vector<opt::Instruction*>
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FuzzerPassAddEquationInstructions::GetIntegerInstructions(
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const std::vector<opt::Instruction*>& instructions) const {
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std::vector<opt::Instruction*> result;
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for (auto& inst : instructions) {
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auto type = GetIRContext()->get_type_mgr()->GetType(inst->type_id());
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if (type->AsInteger() ||
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(type->AsVector() && type->AsVector()->element_type()->AsInteger())) {
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result.push_back(inst);
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}
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}
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return result;
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}
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std::vector<opt::Instruction*>
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FuzzerPassAddEquationInstructions::GetBooleanInstructions(
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const std::vector<opt::Instruction*>& instructions) const {
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std::vector<opt::Instruction*> result;
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for (auto& inst : instructions) {
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auto type = GetIRContext()->get_type_mgr()->GetType(inst->type_id());
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if (type->AsBool() ||
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(type->AsVector() && type->AsVector()->element_type()->AsBool())) {
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result.push_back(inst);
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}
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}
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return result;
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}
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std::vector<opt::Instruction*>
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FuzzerPassAddEquationInstructions::RestrictToVectorWidth(
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const std::vector<opt::Instruction*>& instructions,
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uint32_t vector_width) const {
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std::vector<opt::Instruction*> result;
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for (auto& inst : instructions) {
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auto type = GetIRContext()->get_type_mgr()->GetType(inst->type_id());
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// Get the vector width of |inst|, which is 1 if |inst| is a scalar and is
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// otherwise derived from its vector type.
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uint32_t other_vector_width =
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type->AsVector() ? type->AsVector()->element_count() : 1;
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// Keep |inst| if the vector widths match.
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if (vector_width == other_vector_width) {
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result.push_back(inst);
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}
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}
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return result;
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}
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std::vector<opt::Instruction*>
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FuzzerPassAddEquationInstructions::RestrictToElementBitWidth(
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const std::vector<opt::Instruction*>& instructions,
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uint32_t bit_width) const {
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std::vector<opt::Instruction*> result;
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for (auto& inst : instructions) {
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const opt::analysis::Type* type =
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GetIRContext()->get_type_mgr()->GetType(inst->type_id());
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if (type->AsVector()) {
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type = type->AsVector()->element_type();
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}
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assert(type->AsInteger() &&
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"Precondition: all input instructions must "
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"have integer scalar or vector type.");
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if (type->AsInteger()->width() == bit_width) {
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result.push_back(inst);
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}
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}
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return result;
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}
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} // namespace fuzz
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} // namespace spvtools
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