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https://github.com/KhronosGroup/SPIRV-Tools
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fcb22ecf0f
Adds a virtual method, GetFreshIds(), to Transformation. Every transformation uses this to indicate which ids in its protobuf message are fresh ids. This means that when replaying a sequence of transformations the replayer can obtain a smallest id that is not in use by the module already and that will not be used by any transformation by necessity. Ids greater than or equal to this id can be used as overflow ids. Fixes #3851.
171 lines
5.9 KiB
C++
171 lines
5.9 KiB
C++
// Copyright (c) 2020 Vasyl Teliman
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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/transformation_permute_function_parameters.h"
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#include <vector>
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#include "source/fuzz/fuzzer_util.h"
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namespace spvtools {
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namespace fuzz {
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TransformationPermuteFunctionParameters::
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TransformationPermuteFunctionParameters(
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const spvtools::fuzz::protobufs::
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TransformationPermuteFunctionParameters& message)
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: message_(message) {}
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TransformationPermuteFunctionParameters::
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TransformationPermuteFunctionParameters(
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uint32_t function_id, uint32_t function_type_fresh_id,
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const std::vector<uint32_t>& permutation) {
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message_.set_function_id(function_id);
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message_.set_function_type_fresh_id(function_type_fresh_id);
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for (auto index : permutation) {
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message_.add_permutation(index);
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}
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}
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bool TransformationPermuteFunctionParameters::IsApplicable(
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opt::IRContext* ir_context, const TransformationContext& /*unused*/) const {
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// Check that function exists
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const auto* function =
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fuzzerutil::FindFunction(ir_context, message_.function_id());
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if (!function || function->DefInst().opcode() != SpvOpFunction ||
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fuzzerutil::FunctionIsEntryPoint(ir_context, function->result_id())) {
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return false;
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}
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// Check that permutation has valid indices
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const auto* function_type = fuzzerutil::GetFunctionType(ir_context, function);
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assert(function_type && "Function type is null");
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std::vector<uint32_t> permutation(message_.permutation().begin(),
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message_.permutation().end());
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// Don't take return type into account
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auto arg_size = function_type->NumInOperands() - 1;
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// |permutation| vector should be equal to the number of arguments
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if (static_cast<uint32_t>(permutation.size()) != arg_size) {
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return false;
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}
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// Check that permutation doesn't have duplicated values.
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assert(!fuzzerutil::HasDuplicates(permutation) &&
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"Permutation has duplicates");
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// Check that elements in permutation are in range [0, arg_size - 1].
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//
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// We must check whether the permutation is empty first because in that case
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// |arg_size - 1| will produce |std::numeric_limits<uint32_t>::max()| since
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// it's an unsigned integer.
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if (!permutation.empty() &&
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!fuzzerutil::IsPermutationOfRange(permutation, 0, arg_size - 1)) {
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return false;
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}
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return fuzzerutil::IsFreshId(ir_context, message_.function_type_fresh_id());
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}
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void TransformationPermuteFunctionParameters::Apply(
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opt::IRContext* ir_context, TransformationContext* /*unused*/) const {
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// Find the function that will be transformed
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auto* function = fuzzerutil::FindFunction(ir_context, message_.function_id());
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assert(function && "Can't find the function");
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// Adjust OpFunctionParameter instructions
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// Collect ids and types from OpFunctionParameter instructions
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std::vector<uint32_t> param_id, param_type;
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function->ForEachParam(
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[¶m_id, ¶m_type](const opt::Instruction* param) {
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param_id.push_back(param->result_id());
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param_type.push_back(param->type_id());
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});
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// Permute parameters' ids and types
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std::vector<uint32_t> permuted_param_id, permuted_param_type;
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for (auto index : message_.permutation()) {
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permuted_param_id.push_back(param_id[index]);
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permuted_param_type.push_back(param_type[index]);
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}
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// Set OpFunctionParameter instructions to point to new parameters
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size_t i = 0;
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function->ForEachParam(
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[&i, &permuted_param_id, &permuted_param_type](opt::Instruction* param) {
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param->SetResultType(permuted_param_type[i]);
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param->SetResultId(permuted_param_id[i]);
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++i;
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});
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// Fix all OpFunctionCall instructions
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for (auto* call : fuzzerutil::GetCallers(ir_context, function->result_id())) {
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opt::Instruction::OperandList call_operands = {
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call->GetInOperand(0) // Function id
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};
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for (auto index : message_.permutation()) {
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// Take function id into account
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call_operands.push_back(call->GetInOperand(index + 1));
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}
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call->SetInOperands(std::move(call_operands));
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}
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// Update function type.
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{
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// We use a separate scope here since |old_function_type_inst| might become
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// a dangling pointer after the call to the fuzzerutil::UpdateFunctionType.
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auto* old_function_type_inst =
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fuzzerutil::GetFunctionType(ir_context, function);
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assert(old_function_type_inst && "Function must have a valid type");
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std::vector<uint32_t> parameter_type_ids;
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for (auto index : message_.permutation()) {
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// +1 since the first operand to OpTypeFunction is a return type.
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parameter_type_ids.push_back(
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old_function_type_inst->GetSingleWordInOperand(index + 1));
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}
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// Change function's type.
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fuzzerutil::UpdateFunctionType(
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ir_context, function->result_id(), message_.function_type_fresh_id(),
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old_function_type_inst->GetSingleWordInOperand(0), parameter_type_ids);
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}
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// Make sure our changes are analyzed
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ir_context->InvalidateAnalysesExceptFor(
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opt::IRContext::Analysis::kAnalysisNone);
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}
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protobufs::Transformation TransformationPermuteFunctionParameters::ToMessage()
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const {
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protobufs::Transformation result;
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*result.mutable_permute_function_parameters() = message_;
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return result;
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}
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std::unordered_set<uint32_t>
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TransformationPermuteFunctionParameters::GetFreshIds() const {
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return {message_.function_type_fresh_id()};
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}
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} // namespace fuzz
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} // namespace spvtools
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