// Copyright 2020 The Tint Authors. // // Licensed under the Apache License, Version 2.0 (the "License"); // you may not use this file except in compliance with the License. // You may obtain a copy of the License at // // http://www.apache.org/licenses/LICENSE-2.0 // // Unless required by applicable law or agreed to in writing, software // distributed under the License is distributed on an "AS IS" BASIS, // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. // See the License for the specific language governing permissions and // limitations under the License. #include "src/transform/bound_array_accessors.h" #include #include #include "src/program_builder.h" #include "src/sem/expression.h" namespace tint { namespace transform { BoundArrayAccessors::BoundArrayAccessors() = default; BoundArrayAccessors::~BoundArrayAccessors() = default; Output BoundArrayAccessors::Run(const Program* in, const DataMap&) { ProgramBuilder out; CloneContext ctx(&out, in); ctx.ReplaceAll([&](ast::ArrayAccessorExpression* expr) { return Transform(expr, &ctx); }); ctx.Clone(); return Output(Program(std::move(out))); } ast::ArrayAccessorExpression* BoundArrayAccessors::Transform( ast::ArrayAccessorExpression* expr, CloneContext* ctx) { auto& diags = ctx->dst->Diagnostics(); auto* ret_type = ctx->src->Sem().Get(expr->array())->Type()->UnwrapAll(); if (!ret_type->Is() && !ret_type->Is() && !ret_type->Is()) { return nullptr; } ProgramBuilder& b = *ctx->dst; using u32 = ProgramBuilder::u32; uint32_t size = 0; bool is_vec = ret_type->Is(); bool is_arr = ret_type->Is(); if (is_vec || is_arr) { size = is_vec ? ret_type->As()->size() : ret_type->As()->size(); } else { // The row accessor would have been an embedded array accessor and already // handled, so we just need to do columns here. size = ret_type->As()->columns(); } auto* const old_idx = expr->idx_expr(); b.SetSource(ctx->Clone(old_idx->source())); ast::Expression* new_idx = nullptr; if (size == 0) { if (is_arr) { auto* arr = ctx->Clone(expr->array()); auto* arr_len = b.Call("arrayLength", arr); auto* limit = b.Sub(arr_len, b.Expr(1u)); new_idx = b.Call("min", b.Construct(ctx->Clone(old_idx)), limit); } else { diags.add_error("invalid 0 size", expr->source()); return nullptr; } } else if (auto* c = old_idx->As()) { // Scalar constructor we can re-write the value to be within bounds. auto* lit = c->literal(); if (auto* sint = lit->As()) { int32_t max = static_cast(size) - 1; new_idx = b.Expr(std::max(std::min(sint->value(), max), 0)); } else if (auto* uint = lit->As()) { new_idx = b.Expr(std::min(uint->value(), size - 1)); } else { diags.add_error("unknown scalar constructor type for accessor", expr->source()); return nullptr; } } else { auto* cloned_idx = ctx->Clone(old_idx); new_idx = b.Call("min", b.Construct(cloned_idx), b.Expr(size - 1)); } // Clone arguments outside of create() call to have deterministic ordering auto src = ctx->Clone(expr->source()); auto* arr = ctx->Clone(expr->array()); return b.create(src, arr, new_idx); } } // namespace transform } // namespace tint