
Previously, the ip would not be propagated correctly, and we would produce invalid jumps when more than one level of nesting was involved. This makes loops work :P
817 lines
37 KiB
C++
817 lines
37 KiB
C++
/*
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* Copyright (c) 2021, Ali Mohammad Pur <mpfard@serenityos.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#include <AK/Debug.h>
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#include <LibWasm/AbstractMachine/AbstractMachine.h>
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#include <LibWasm/AbstractMachine/Configuration.h>
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#include <LibWasm/AbstractMachine/Interpreter.h>
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#include <LibWasm/Opcode.h>
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#include <LibWasm/Printer/Printer.h>
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#include <math.h>
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namespace Wasm {
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#define TRAP_IF_NOT(x) \
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do { \
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if (trap_if_not(x)) \
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return; \
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} while (false)
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void Interpreter::interpret(Configuration& configuration)
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{
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auto& instructions = configuration.frame()->expression().instructions();
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auto max_ip_value = InstructionPointer { instructions.size() };
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auto& current_ip_value = configuration.ip();
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while (current_ip_value < max_ip_value) {
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auto& instruction = instructions[current_ip_value.value()];
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auto old_ip = current_ip_value;
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interpret(configuration, current_ip_value, instruction);
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if (m_do_trap)
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return;
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if (current_ip_value == old_ip) // If no jump occurred
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++current_ip_value;
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}
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}
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void Interpreter::branch_to_label(Configuration& configuration, LabelIndex index)
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{
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dbgln_if(WASM_TRACE_DEBUG, "Branch to label with index {}...", index.value());
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auto label = configuration.nth_label(index.value());
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TRAP_IF_NOT(label.has_value());
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dbgln_if(WASM_TRACE_DEBUG, "...which is actually IP {}, and has {} result(s)", label->continuation().value(), label->arity());
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auto results = pop_values(configuration, label->arity());
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size_t drop_count = index.value() + 1;
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for (; !configuration.stack().is_empty();) {
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auto& entry = configuration.stack().peek();
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if (entry.has<NonnullOwnPtr<Label>>()) {
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if (drop_count-- == 0)
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break;
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}
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configuration.stack().pop();
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}
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// Push results in reverse
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for (size_t i = results.size(); i > 0; --i)
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configuration.stack().push(move(static_cast<Vector<NonnullOwnPtr<Value>>&>(results)[i - 1]));
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configuration.ip() = label->continuation();
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}
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ReadonlyBytes Interpreter::load_from_memory(Configuration& configuration, const Instruction& instruction, size_t size)
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{
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auto& address = configuration.frame()->module().memories().first();
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auto memory = configuration.store().get(address);
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if (!memory) {
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m_do_trap = true;
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return {};
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}
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auto& arg = instruction.arguments().get<Instruction::MemoryArgument>();
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auto base = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<i32>();
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if (!base.has_value()) {
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m_do_trap = true;
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return {};
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}
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auto instance_address = base.value() + static_cast<i64>(arg.offset);
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if (instance_address < 0 || static_cast<u64>(instance_address + size) > memory->size()) {
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m_do_trap = true;
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dbgln("LibWasm: Memory access out of bounds (expected 0 > {} and {} > {})", instance_address, instance_address + size, memory->size());
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return {};
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}
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dbgln_if(WASM_TRACE_DEBUG, "load({} : {}) -> stack", instance_address, size);
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return memory->data().bytes().slice(instance_address, size);
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}
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void Interpreter::store_to_memory(Configuration& configuration, const Instruction& instruction, ReadonlyBytes data)
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{
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auto& address = configuration.frame()->module().memories().first();
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auto memory = configuration.store().get(address);
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TRAP_IF_NOT(memory);
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auto& arg = instruction.arguments().get<Instruction::MemoryArgument>();
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auto base = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<i32>();
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TRAP_IF_NOT(base.has_value());
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auto instance_address = base.value() + static_cast<i64>(arg.offset);
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if (instance_address < 0 || static_cast<u64>(instance_address + data.size()) > memory->size()) {
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m_do_trap = true;
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dbgln("LibWasm: Memory access out of bounds (expected 0 > {} and {} > {})", instance_address, instance_address + data.size(), memory->size());
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return;
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}
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dbgln_if(WASM_TRACE_DEBUG, "tempoaray({}b) -> store({})", data.size(), instance_address);
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data.copy_to(memory->data().bytes().slice(instance_address, data.size()));
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}
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void Interpreter::call_address(Configuration& configuration, FunctionAddress address)
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{
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auto instance = configuration.store().get(address);
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TRAP_IF_NOT(instance);
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const FunctionType* type { nullptr };
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instance->visit([&](const auto& function) { type = &function.type(); });
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TRAP_IF_NOT(type);
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Vector<Value> args;
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args.ensure_capacity(type->parameters().size());
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for (size_t i = 0; i < type->parameters().size(); ++i) {
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args.prepend(move(*configuration.stack().pop().get<NonnullOwnPtr<Value>>()));
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}
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Configuration function_configuration { configuration.store() };
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function_configuration.depth() = configuration.depth() + 1;
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auto result = function_configuration.call(address, move(args));
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if (result.is_trap()) {
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m_do_trap = true;
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return;
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}
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for (auto& entry : result.values())
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configuration.stack().push(make<Value>(move(entry)));
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}
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#define BINARY_NUMERIC_OPERATION(type, operator, cast, ...) \
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do { \
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auto rhs = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<type>(); \
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auto lhs = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<type>(); \
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TRAP_IF_NOT(lhs.has_value()); \
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TRAP_IF_NOT(rhs.has_value()); \
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__VA_ARGS__; \
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auto result = lhs.value() operator rhs.value(); \
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dbgln_if(WASM_TRACE_DEBUG, "{} {} {} = {}", lhs.value(), #operator, rhs.value(), result); \
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configuration.stack().push(make<Value>(cast(result))); \
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return; \
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} while (false)
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#define OVF_CHECKED_BINARY_NUMERIC_OPERATION(type, operator, cast, ...) \
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do { \
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auto rhs = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<type>(); \
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auto ulhs = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<type>(); \
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TRAP_IF_NOT(ulhs.has_value()); \
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TRAP_IF_NOT(rhs.has_value()); \
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dbgln_if(WASM_TRACE_DEBUG, "{} {} {} = ??", ulhs.value(), #operator, rhs.value()); \
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__VA_ARGS__; \
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Checked lhs = ulhs.value(); \
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lhs operator##= rhs.value(); \
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TRAP_IF_NOT(!lhs.has_overflow()); \
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auto result = lhs.value(); \
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dbgln_if(WASM_TRACE_DEBUG, "{} {} {} = {}", ulhs.value(), #operator, rhs.value(), result); \
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configuration.stack().push(make<Value>(cast(result))); \
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return; \
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} while (false)
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#define BINARY_PREFIX_NUMERIC_OPERATION(type, operation, cast, ...) \
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do { \
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auto rhs = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<type>(); \
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auto lhs = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<type>(); \
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TRAP_IF_NOT(lhs.has_value()); \
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TRAP_IF_NOT(rhs.has_value()); \
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auto result = operation(lhs.value(), rhs.value()); \
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dbgln_if(WASM_TRACE_DEBUG, "{}({} {}) = {}", #operation, lhs.value(), rhs.value(), result); \
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configuration.stack().push(make<Value>(cast(result))); \
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return; \
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} while (false)
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#define UNARY_MAP(pop_type, operation, ...) \
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do { \
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auto value = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<pop_type>(); \
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TRAP_IF_NOT(value.has_value()); \
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auto result = operation(value.value()); \
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dbgln_if(WASM_TRACE_DEBUG, "map({}) {} = {}", #operation, value.value(), result); \
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configuration.stack().push(make<Value>(__VA_ARGS__(result))); \
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return; \
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} while (false)
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#define UNARY_NUMERIC_OPERATION(type, operation) \
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UNARY_MAP(type, operation, type)
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#define LOAD_AND_PUSH(read_type, push_type) \
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do { \
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auto slice = load_from_memory(configuration, instruction, sizeof(read_type)); \
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TRAP_IF_NOT(slice.size() == sizeof(read_type)); \
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if constexpr (sizeof(read_type) == 1) \
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configuration.stack().push(make<Value>(static_cast<push_type>(slice[0]))); \
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else \
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configuration.stack().push(make<Value>(read_value<push_type>(slice))); \
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return; \
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} while (false)
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#define POP_AND_STORE(pop_type, store_type) \
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do { \
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auto value = ConvertToRaw<pop_type> {}(*configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<pop_type>()); \
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dbgln_if(WASM_TRACE_DEBUG, "stack({}) -> temporary({}b)", value, sizeof(store_type)); \
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store_to_memory(configuration, instruction, { &value, sizeof(store_type) }); \
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return; \
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} while (false)
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template<typename T>
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static T read_value(ReadonlyBytes data)
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{
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T value;
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InputMemoryStream stream { data };
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auto ok = IsSigned<T> ? LEB128::read_signed(stream, value) : LEB128::read_unsigned(stream, value);
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VERIFY(ok);
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return value;
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}
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template<>
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float read_value<float>(ReadonlyBytes data)
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{
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InputMemoryStream stream { data };
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LittleEndian<u32> raw_value;
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stream >> raw_value;
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VERIFY(!stream.has_any_error());
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return bit_cast<float>(static_cast<u32>(raw_value));
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}
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template<>
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double read_value<double>(ReadonlyBytes data)
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{
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InputMemoryStream stream { data };
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LittleEndian<u64> raw_value;
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stream >> raw_value;
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VERIFY(!stream.has_any_error());
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return bit_cast<double>(static_cast<u64>(raw_value));
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}
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template<typename T>
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struct ConvertToRaw {
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T operator()(T value)
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{
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return value;
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}
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};
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template<>
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struct ConvertToRaw<float> {
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u32 operator()(float value)
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{
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LittleEndian<u32> res;
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ReadonlyBytes bytes { &value, sizeof(float) };
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InputMemoryStream stream { bytes };
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stream >> res;
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VERIFY(!stream.has_any_error());
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return static_cast<u32>(res);
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}
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};
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template<>
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struct ConvertToRaw<double> {
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u64 operator()(double value)
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{
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LittleEndian<u64> res;
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ReadonlyBytes bytes { &value, sizeof(double) };
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InputMemoryStream stream { bytes };
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stream >> res;
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VERIFY(!stream.has_any_error());
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return static_cast<u64>(res);
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}
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};
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Vector<NonnullOwnPtr<Value>> Interpreter::pop_values(Configuration& configuration, size_t count)
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{
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Vector<NonnullOwnPtr<Value>> results;
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// Pop results in order
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for (size_t i = 0; i < count; ++i) {
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auto top_of_stack = configuration.stack().pop();
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if (auto value = top_of_stack.get_pointer<NonnullOwnPtr<Value>>())
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results.append(move(*value));
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else
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trap_if_not(value);
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}
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return results;
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}
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void Interpreter::interpret(Configuration& configuration, InstructionPointer& ip, const Instruction& instruction)
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{
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dbgln_if(WASM_TRACE_DEBUG, "Executing instruction {} at ip {}", instruction_name(instruction.opcode()), ip.value());
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if constexpr (WASM_TRACE_DEBUG)
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configuration.dump_stack();
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switch (instruction.opcode().value()) {
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case Instructions::unreachable.value():
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m_do_trap = true;
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return;
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case Instructions::nop.value():
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return;
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case Instructions::local_get.value():
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configuration.stack().push(make<Value>(configuration.frame()->locals()[instruction.arguments().get<LocalIndex>().value()]));
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return;
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case Instructions::local_set.value(): {
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auto entry = configuration.stack().pop();
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configuration.frame()->locals()[instruction.arguments().get<LocalIndex>().value()] = move(*entry.get<NonnullOwnPtr<Value>>());
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return;
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}
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case Instructions::i32_const.value():
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configuration.stack().push(make<Value>(ValueType { ValueType::I32 }, static_cast<i64>(instruction.arguments().get<i32>())));
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return;
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case Instructions::i64_const.value():
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configuration.stack().push(make<Value>(ValueType { ValueType::I64 }, instruction.arguments().get<i64>()));
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return;
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case Instructions::f32_const.value():
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configuration.stack().push(make<Value>(ValueType { ValueType::F32 }, static_cast<double>(instruction.arguments().get<float>())));
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return;
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case Instructions::f64_const.value():
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configuration.stack().push(make<Value>(ValueType { ValueType::F64 }, instruction.arguments().get<double>()));
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return;
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case Instructions::block.value(): {
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size_t arity = 0;
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auto& args = instruction.arguments().get<Instruction::StructuredInstructionArgs>();
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if (args.block_type.kind() != BlockType::Empty)
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arity = 1;
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configuration.stack().push(make<Label>(arity, args.end_ip));
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return;
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}
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case Instructions::loop.value(): {
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size_t arity = 0;
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auto& args = instruction.arguments().get<Instruction::StructuredInstructionArgs>();
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if (args.block_type.kind() != BlockType::Empty)
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arity = 1;
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configuration.stack().push(make<Label>(arity, ip.value()));
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return;
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}
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case Instructions::if_.value(): {
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size_t arity = 0;
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auto& args = instruction.arguments().get<Instruction::StructuredInstructionArgs>();
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if (args.block_type.kind() != BlockType::Empty)
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arity = 1;
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auto entry = configuration.stack().pop();
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auto value = entry.get<NonnullOwnPtr<Value>>()->to<i32>();
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TRAP_IF_NOT(value.has_value());
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configuration.stack().push(make<Label>(arity, args.end_ip));
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if (value.value() == 0) {
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if (args.else_ip.has_value()) {
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configuration.ip() = args.else_ip.value();
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} else {
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configuration.ip() = args.end_ip;
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configuration.stack().pop();
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}
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}
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return;
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}
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case Instructions::structured_end.value():
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return;
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case Instructions::structured_else.value(): {
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auto label = configuration.nth_label(0);
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TRAP_IF_NOT(label.has_value());
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auto results = pop_values(configuration, label->arity());
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// drop all locals
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for (; !configuration.stack().is_empty();) {
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auto entry = configuration.stack().pop();
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if (entry.has<NonnullOwnPtr<Label>>())
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break;
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}
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// Push results in reverse
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for (size_t i = 1; i < results.size() + 1; ++i)
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configuration.stack().push(move(static_cast<Vector<NonnullOwnPtr<Value>>&>(results)[results.size() - i]));
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if (instruction.opcode() == Instructions::structured_end)
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return;
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// Jump to the end label
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configuration.ip() = label->continuation();
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return;
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}
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case Instructions::return_.value(): {
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Vector<Stack::EntryType> results;
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auto& frame = *configuration.frame();
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results.ensure_capacity(frame.arity());
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for (size_t i = 0; i < frame.arity(); ++i)
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results.prepend(configuration.stack().pop());
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// drop all locals
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OwnPtr<Label> last_label;
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for (; !configuration.stack().is_empty();) {
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auto entry = configuration.stack().pop();
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if (entry.has<NonnullOwnPtr<Label>>()) {
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last_label = move(entry.get<NonnullOwnPtr<Label>>());
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continue;
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}
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if (entry.has<NonnullOwnPtr<Frame>>()) {
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// Push the frame back
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configuration.stack().push(move(entry));
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// Push its label back (if there is one)
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if (last_label)
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configuration.stack().push(last_label.release_nonnull());
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break;
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}
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last_label.clear();
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}
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// Push the results back
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for (auto& result : results)
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configuration.stack().push(move(result));
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// Jump past the call/indirect instruction
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configuration.ip() = configuration.frame()->expression().instructions().size() - 1;
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return;
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}
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case Instructions::br.value():
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return branch_to_label(configuration, instruction.arguments().get<LabelIndex>());
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case Instructions::br_if.value(): {
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if (configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<i32>().value_or(0) == 0)
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return;
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return branch_to_label(configuration, instruction.arguments().get<LabelIndex>());
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}
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case Instructions::br_table.value():
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goto unimplemented;
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case Instructions::call.value(): {
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auto index = instruction.arguments().get<FunctionIndex>();
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auto address = configuration.frame()->module().functions()[index.value()];
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dbgln_if(WASM_TRACE_DEBUG, "call({})", address.value());
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call_address(configuration, address);
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return;
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}
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case Instructions::call_indirect.value(): {
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auto& args = instruction.arguments().get<Instruction::IndirectCallArgs>();
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auto table_address = configuration.frame()->module().tables()[args.table.value()];
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auto table_instance = configuration.store().get(table_address);
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auto index = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<i32>();
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TRAP_IF_NOT(index.has_value());
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if (index.value() < 0 || static_cast<size_t>(index.value()) >= table_instance->elements().size()) {
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dbgln("LibWasm: Element access out of bounds, expected {0} > 0 and {0} < {1}", index.value(), table_instance->elements().size());
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m_do_trap = true;
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return;
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}
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auto element = table_instance->elements()[index.value()];
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if (!element.has_value() || !element->ref().has<FunctionAddress>()) {
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dbgln("LibWasm: call_indirect attempted with invalid address element (not a function)");
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m_do_trap = true;
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return;
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}
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auto address = element->ref().get<FunctionAddress>();
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dbgln_if(WASM_TRACE_DEBUG, "call_indirect({} -> {})", index.value(), address.value());
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call_address(configuration, address);
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return;
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}
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case Instructions::i32_load.value():
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LOAD_AND_PUSH(i32, i32);
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case Instructions::i64_load.value():
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LOAD_AND_PUSH(i64, i64);
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case Instructions::f32_load.value():
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LOAD_AND_PUSH(float, float);
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case Instructions::f64_load.value():
|
|
LOAD_AND_PUSH(double, double);
|
|
case Instructions::i32_load8_s.value():
|
|
LOAD_AND_PUSH(i8, i32);
|
|
case Instructions::i32_load8_u.value():
|
|
LOAD_AND_PUSH(u8, i32);
|
|
case Instructions::i32_load16_s.value():
|
|
LOAD_AND_PUSH(i16, i32);
|
|
case Instructions::i32_load16_u.value():
|
|
LOAD_AND_PUSH(u16, i32);
|
|
case Instructions::i64_load8_s.value():
|
|
LOAD_AND_PUSH(i8, i64);
|
|
case Instructions::i64_load8_u.value():
|
|
LOAD_AND_PUSH(u8, i64);
|
|
case Instructions::i64_load16_s.value():
|
|
LOAD_AND_PUSH(i16, i64);
|
|
case Instructions::i64_load16_u.value():
|
|
LOAD_AND_PUSH(u16, i64);
|
|
case Instructions::i64_load32_s.value():
|
|
LOAD_AND_PUSH(i32, i64);
|
|
case Instructions::i64_load32_u.value():
|
|
LOAD_AND_PUSH(u32, i64);
|
|
case Instructions::i32_store.value():
|
|
POP_AND_STORE(i32, i32);
|
|
case Instructions::i64_store.value():
|
|
POP_AND_STORE(i64, i64);
|
|
case Instructions::f32_store.value():
|
|
POP_AND_STORE(float, float);
|
|
case Instructions::f64_store.value():
|
|
POP_AND_STORE(double, double);
|
|
case Instructions::i32_store8.value():
|
|
POP_AND_STORE(i32, i8);
|
|
case Instructions::i32_store16.value():
|
|
POP_AND_STORE(i32, i16);
|
|
case Instructions::i64_store8.value():
|
|
POP_AND_STORE(i64, i8);
|
|
case Instructions::i64_store16.value():
|
|
POP_AND_STORE(i64, i16);
|
|
case Instructions::i64_store32.value():
|
|
POP_AND_STORE(i64, i32);
|
|
case Instructions::local_tee.value(): {
|
|
auto value = *configuration.stack().peek().get<NonnullOwnPtr<Value>>();
|
|
auto local_index = instruction.arguments().get<LocalIndex>();
|
|
TRAP_IF_NOT(configuration.frame()->locals().size() > local_index.value());
|
|
dbgln_if(WASM_TRACE_DEBUG, "stack:peek -> locals({})", local_index.value());
|
|
configuration.frame()->locals()[local_index.value()] = move(value);
|
|
return;
|
|
}
|
|
case Instructions::global_get.value(): {
|
|
auto global_index = instruction.arguments().get<GlobalIndex>();
|
|
TRAP_IF_NOT(configuration.frame()->module().globals().size() > global_index.value());
|
|
auto address = configuration.frame()->module().globals()[global_index.value()];
|
|
dbgln_if(WASM_TRACE_DEBUG, "global({}) -> stack", address.value());
|
|
auto global = configuration.store().get(address);
|
|
configuration.stack().push(make<Value>(global->value()));
|
|
return;
|
|
}
|
|
case Instructions::global_set.value(): {
|
|
auto global_index = instruction.arguments().get<GlobalIndex>();
|
|
TRAP_IF_NOT(configuration.frame()->module().globals().size() > global_index.value());
|
|
auto address = configuration.frame()->module().globals()[global_index.value()];
|
|
auto value = *configuration.stack().pop().get<NonnullOwnPtr<Value>>();
|
|
dbgln_if(WASM_TRACE_DEBUG, "stack -> global({})", address.value());
|
|
auto global = configuration.store().get(address);
|
|
global->set_value(move(value));
|
|
return;
|
|
}
|
|
case Instructions::memory_size.value(): {
|
|
auto address = configuration.frame()->module().memories()[0];
|
|
auto instance = configuration.store().get(address);
|
|
auto pages = instance->size() / Constants::page_size;
|
|
dbgln_if(WASM_TRACE_DEBUG, "memory.size -> stack({})", pages);
|
|
configuration.stack().push(make<Value>((i32)pages));
|
|
return;
|
|
}
|
|
case Instructions::memory_grow.value(): {
|
|
auto address = configuration.frame()->module().memories()[0];
|
|
auto instance = configuration.store().get(address);
|
|
i32 old_pages = instance->size() / Constants::page_size;
|
|
auto new_pages = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<i32>();
|
|
TRAP_IF_NOT(new_pages.has_value());
|
|
dbgln_if(WASM_TRACE_DEBUG, "memory.grow({}), previously {} pages...", *new_pages, old_pages);
|
|
if (instance->grow(new_pages.value() * Constants::page_size))
|
|
configuration.stack().push(make<Value>((i32)old_pages));
|
|
else
|
|
configuration.stack().push(make<Value>((i32)-1));
|
|
return;
|
|
}
|
|
case Instructions::table_get.value():
|
|
case Instructions::table_set.value():
|
|
case Instructions::ref_null.value():
|
|
case Instructions::ref_func.value():
|
|
case Instructions::ref_is_null.value():
|
|
goto unimplemented;
|
|
case Instructions::drop.value():
|
|
configuration.stack().pop();
|
|
return;
|
|
case Instructions::select.value():
|
|
case Instructions::select_typed.value(): {
|
|
// Note: The type seems to only be used for validation.
|
|
auto value = configuration.stack().pop().get<NonnullOwnPtr<Value>>()->to<i32>();
|
|
TRAP_IF_NOT(value.has_value());
|
|
dbgln_if(WASM_TRACE_DEBUG, "select({})", value.value());
|
|
auto rhs = move(configuration.stack().pop().get<NonnullOwnPtr<Value>>());
|
|
auto lhs = move(configuration.stack().pop().get<NonnullOwnPtr<Value>>());
|
|
configuration.stack().push(value.value() != 0 ? move(lhs) : move(rhs));
|
|
return;
|
|
}
|
|
case Instructions::i32_eqz.value():
|
|
UNARY_NUMERIC_OPERATION(i32, 0 ==);
|
|
case Instructions::i32_eq.value():
|
|
BINARY_NUMERIC_OPERATION(i32, ==, i32);
|
|
case Instructions::i32_ne.value():
|
|
BINARY_NUMERIC_OPERATION(i32, !=, i32);
|
|
case Instructions::i32_lts.value():
|
|
BINARY_NUMERIC_OPERATION(i32, <, i32);
|
|
case Instructions::i32_ltu.value():
|
|
BINARY_NUMERIC_OPERATION(u32, <, i32);
|
|
case Instructions::i32_gts.value():
|
|
BINARY_NUMERIC_OPERATION(i32, >, i32);
|
|
case Instructions::i32_gtu.value():
|
|
BINARY_NUMERIC_OPERATION(u32, >, i32);
|
|
case Instructions::i32_les.value():
|
|
BINARY_NUMERIC_OPERATION(i32, <=, i32);
|
|
case Instructions::i32_leu.value():
|
|
BINARY_NUMERIC_OPERATION(u32, <=, i32);
|
|
case Instructions::i32_ges.value():
|
|
BINARY_NUMERIC_OPERATION(i32, >=, i32);
|
|
case Instructions::i32_geu.value():
|
|
BINARY_NUMERIC_OPERATION(u32, >=, i32);
|
|
case Instructions::i64_eqz.value():
|
|
UNARY_NUMERIC_OPERATION(i64, 0ull ==);
|
|
case Instructions::i64_eq.value():
|
|
BINARY_NUMERIC_OPERATION(i64, ==, i32);
|
|
case Instructions::i64_ne.value():
|
|
BINARY_NUMERIC_OPERATION(i64, !=, i32);
|
|
case Instructions::i64_lts.value():
|
|
BINARY_NUMERIC_OPERATION(i64, <, i32);
|
|
case Instructions::i64_ltu.value():
|
|
BINARY_NUMERIC_OPERATION(u64, <, i32);
|
|
case Instructions::i64_gts.value():
|
|
BINARY_NUMERIC_OPERATION(i64, >, i32);
|
|
case Instructions::i64_gtu.value():
|
|
BINARY_NUMERIC_OPERATION(u64, >, i32);
|
|
case Instructions::i64_les.value():
|
|
BINARY_NUMERIC_OPERATION(i64, <=, i32);
|
|
case Instructions::i64_leu.value():
|
|
BINARY_NUMERIC_OPERATION(u64, <=, i32);
|
|
case Instructions::i64_ges.value():
|
|
BINARY_NUMERIC_OPERATION(i64, >=, i32);
|
|
case Instructions::i64_geu.value():
|
|
BINARY_NUMERIC_OPERATION(u64, >=, i32);
|
|
case Instructions::f32_eq.value():
|
|
BINARY_NUMERIC_OPERATION(float, ==, i32);
|
|
case Instructions::f32_ne.value():
|
|
BINARY_NUMERIC_OPERATION(float, !=, i32);
|
|
case Instructions::f32_lt.value():
|
|
BINARY_NUMERIC_OPERATION(float, <, i32);
|
|
case Instructions::f32_gt.value():
|
|
BINARY_NUMERIC_OPERATION(float, >, i32);
|
|
case Instructions::f32_le.value():
|
|
BINARY_NUMERIC_OPERATION(float, <=, i32);
|
|
case Instructions::f32_ge.value():
|
|
BINARY_NUMERIC_OPERATION(float, >=, i32);
|
|
case Instructions::f64_eq.value():
|
|
BINARY_NUMERIC_OPERATION(double, ==, i32);
|
|
case Instructions::f64_ne.value():
|
|
BINARY_NUMERIC_OPERATION(double, !=, i32);
|
|
case Instructions::f64_lt.value():
|
|
BINARY_NUMERIC_OPERATION(double, <, i32);
|
|
case Instructions::f64_gt.value():
|
|
BINARY_NUMERIC_OPERATION(double, >, i32);
|
|
case Instructions::f64_le.value():
|
|
BINARY_NUMERIC_OPERATION(double, <=, i32);
|
|
case Instructions::f64_ge.value():
|
|
BINARY_NUMERIC_OPERATION(double, >, i32);
|
|
case Instructions::i32_clz.value():
|
|
case Instructions::i32_ctz.value():
|
|
case Instructions::i32_popcnt.value():
|
|
goto unimplemented;
|
|
case Instructions::i32_add.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i32, +, i32);
|
|
case Instructions::i32_sub.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i32, -, i32);
|
|
case Instructions::i32_mul.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i32, *, i32);
|
|
case Instructions::i32_divs.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i32, /, i32, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i32_divu.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(u32, /, i32, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i32_rems.value():
|
|
BINARY_NUMERIC_OPERATION(i32, %, i32, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i32_remu.value():
|
|
BINARY_NUMERIC_OPERATION(u32, %, i32, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i32_and.value():
|
|
BINARY_NUMERIC_OPERATION(i32, &, i32);
|
|
case Instructions::i32_or.value():
|
|
BINARY_NUMERIC_OPERATION(i32, |, i32);
|
|
case Instructions::i32_xor.value():
|
|
BINARY_NUMERIC_OPERATION(i32, ^, i32);
|
|
case Instructions::i32_shl.value():
|
|
BINARY_NUMERIC_OPERATION(i32, <<, i32);
|
|
case Instructions::i32_shrs.value():
|
|
BINARY_NUMERIC_OPERATION(i32, >>, i32);
|
|
case Instructions::i32_shru.value():
|
|
BINARY_NUMERIC_OPERATION(u32, >>, i32);
|
|
case Instructions::i32_rotl.value():
|
|
case Instructions::i32_rotr.value():
|
|
case Instructions::i64_clz.value():
|
|
case Instructions::i64_ctz.value():
|
|
case Instructions::i64_popcnt.value():
|
|
goto unimplemented;
|
|
case Instructions::i64_add.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i64, +, i64);
|
|
case Instructions::i64_sub.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i64, -, i64);
|
|
case Instructions::i64_mul.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i64, *, i64);
|
|
case Instructions::i64_divs.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(i64, /, i64, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i64_divu.value():
|
|
OVF_CHECKED_BINARY_NUMERIC_OPERATION(u64, /, i64, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i64_rems.value():
|
|
BINARY_NUMERIC_OPERATION(i64, %, i64, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i64_remu.value():
|
|
BINARY_NUMERIC_OPERATION(u64, %, i64, TRAP_IF_NOT(rhs.value() != 0));
|
|
case Instructions::i64_and.value():
|
|
BINARY_NUMERIC_OPERATION(i64, &, i64);
|
|
case Instructions::i64_or.value():
|
|
BINARY_NUMERIC_OPERATION(i64, |, i64);
|
|
case Instructions::i64_xor.value():
|
|
BINARY_NUMERIC_OPERATION(i64, ^, i64);
|
|
case Instructions::i64_shl.value():
|
|
BINARY_NUMERIC_OPERATION(i64, <<, i64);
|
|
case Instructions::i64_shrs.value():
|
|
BINARY_NUMERIC_OPERATION(i64, >>, i64);
|
|
case Instructions::i64_shru.value():
|
|
BINARY_NUMERIC_OPERATION(u64, >>, i64);
|
|
case Instructions::i64_rotl.value():
|
|
case Instructions::i64_rotr.value():
|
|
goto unimplemented;
|
|
case Instructions::f32_abs.value():
|
|
UNARY_NUMERIC_OPERATION(float, fabsf);
|
|
case Instructions::f32_neg.value():
|
|
UNARY_NUMERIC_OPERATION(float, -);
|
|
case Instructions::f32_ceil.value():
|
|
UNARY_NUMERIC_OPERATION(float, ceilf);
|
|
case Instructions::f32_floor.value():
|
|
UNARY_NUMERIC_OPERATION(float, floorf);
|
|
case Instructions::f32_trunc.value():
|
|
UNARY_NUMERIC_OPERATION(float, truncf);
|
|
case Instructions::f32_nearest.value():
|
|
UNARY_NUMERIC_OPERATION(float, roundf);
|
|
case Instructions::f32_sqrt.value():
|
|
UNARY_NUMERIC_OPERATION(float, sqrtf);
|
|
case Instructions::f32_add.value():
|
|
UNARY_NUMERIC_OPERATION(float, +);
|
|
case Instructions::f32_sub.value():
|
|
UNARY_NUMERIC_OPERATION(float, -);
|
|
case Instructions::f32_mul.value():
|
|
BINARY_NUMERIC_OPERATION(float, *, float);
|
|
case Instructions::f32_div.value():
|
|
BINARY_NUMERIC_OPERATION(float, /, float);
|
|
case Instructions::f32_min.value():
|
|
BINARY_PREFIX_NUMERIC_OPERATION(float, min, float);
|
|
case Instructions::f32_max.value():
|
|
BINARY_PREFIX_NUMERIC_OPERATION(float, max, float);
|
|
case Instructions::f32_copysign.value():
|
|
BINARY_PREFIX_NUMERIC_OPERATION(float, copysignf, float);
|
|
case Instructions::f64_abs.value():
|
|
UNARY_NUMERIC_OPERATION(double, fabs);
|
|
case Instructions::f64_neg.value():
|
|
UNARY_NUMERIC_OPERATION(double, -);
|
|
case Instructions::f64_ceil.value():
|
|
UNARY_NUMERIC_OPERATION(double, ceil);
|
|
case Instructions::f64_floor.value():
|
|
UNARY_NUMERIC_OPERATION(double, floor);
|
|
case Instructions::f64_trunc.value():
|
|
UNARY_NUMERIC_OPERATION(double, trunc);
|
|
case Instructions::f64_nearest.value():
|
|
UNARY_NUMERIC_OPERATION(double, round);
|
|
case Instructions::f64_sqrt.value():
|
|
UNARY_NUMERIC_OPERATION(double, sqrt);
|
|
case Instructions::f64_add.value():
|
|
BINARY_NUMERIC_OPERATION(double, +, double);
|
|
case Instructions::f64_sub.value():
|
|
BINARY_NUMERIC_OPERATION(double, -, double);
|
|
case Instructions::f64_mul.value():
|
|
BINARY_NUMERIC_OPERATION(double, *, double);
|
|
case Instructions::f64_div.value():
|
|
BINARY_NUMERIC_OPERATION(double, /, double);
|
|
case Instructions::f64_min.value():
|
|
BINARY_PREFIX_NUMERIC_OPERATION(double, min, double);
|
|
case Instructions::f64_max.value():
|
|
BINARY_PREFIX_NUMERIC_OPERATION(double, max, double);
|
|
case Instructions::f64_copysign.value():
|
|
BINARY_PREFIX_NUMERIC_OPERATION(double, copysign, double);
|
|
case Instructions::i32_wrap_i64.value():
|
|
UNARY_MAP(i64, i32, i32);
|
|
case Instructions::i32_trunc_sf32.value():
|
|
case Instructions::i32_trunc_uf32.value():
|
|
case Instructions::i32_trunc_sf64.value():
|
|
case Instructions::i32_trunc_uf64.value():
|
|
goto unimplemented;
|
|
case Instructions::i64_extend_si32.value():
|
|
UNARY_MAP(i32, i64, i64);
|
|
case Instructions::i64_extend_ui32.value():
|
|
UNARY_MAP(u32, i64, i64);
|
|
case Instructions::i64_trunc_sf32.value():
|
|
case Instructions::i64_trunc_uf32.value():
|
|
case Instructions::i64_trunc_sf64.value():
|
|
case Instructions::i64_trunc_uf64.value():
|
|
goto unimplemented;
|
|
case Instructions::f32_convert_si32.value():
|
|
UNARY_MAP(i32, float, float);
|
|
case Instructions::f32_convert_ui32.value():
|
|
UNARY_MAP(u32, float, float);
|
|
case Instructions::f32_convert_si64.value():
|
|
UNARY_MAP(i64, float, float);
|
|
case Instructions::f32_convert_ui64.value():
|
|
UNARY_MAP(u32, float, float);
|
|
case Instructions::f32_demote_f64.value():
|
|
UNARY_MAP(double, float, float);
|
|
case Instructions::f64_convert_si32.value():
|
|
UNARY_MAP(i32, double, double);
|
|
case Instructions::f64_convert_ui32.value():
|
|
UNARY_MAP(u32, double, double);
|
|
case Instructions::f64_convert_si64.value():
|
|
UNARY_MAP(i64, double, double);
|
|
case Instructions::f64_convert_ui64.value():
|
|
UNARY_MAP(u64, double, double);
|
|
case Instructions::f64_promote_f32.value():
|
|
UNARY_MAP(float, double, double);
|
|
case Instructions::i32_reinterpret_f32.value():
|
|
UNARY_MAP(float, bit_cast<i32>, i32);
|
|
case Instructions::i64_reinterpret_f64.value():
|
|
UNARY_MAP(double, bit_cast<i64>, i64);
|
|
case Instructions::f32_reinterpret_i32.value():
|
|
UNARY_MAP(i32, bit_cast<float>, float);
|
|
case Instructions::f64_reinterpret_i64.value():
|
|
UNARY_MAP(i64, bit_cast<double>, double);
|
|
case Instructions::i32_trunc_sat_f32_s.value():
|
|
case Instructions::i32_trunc_sat_f32_u.value():
|
|
case Instructions::i32_trunc_sat_f64_s.value():
|
|
case Instructions::i32_trunc_sat_f64_u.value():
|
|
case Instructions::i64_trunc_sat_f32_s.value():
|
|
case Instructions::i64_trunc_sat_f32_u.value():
|
|
case Instructions::i64_trunc_sat_f64_s.value():
|
|
case Instructions::i64_trunc_sat_f64_u.value():
|
|
case Instructions::memory_init.value():
|
|
case Instructions::data_drop.value():
|
|
case Instructions::memory_copy.value():
|
|
case Instructions::memory_fill.value():
|
|
case Instructions::table_init.value():
|
|
case Instructions::elem_drop.value():
|
|
case Instructions::table_copy.value():
|
|
case Instructions::table_grow.value():
|
|
case Instructions::table_size.value():
|
|
case Instructions::table_fill.value():
|
|
default:
|
|
unimplemented:;
|
|
dbgln("Instruction '{}' not implemented", instruction_name(instruction.opcode()));
|
|
m_do_trap = true;
|
|
return;
|
|
}
|
|
}
|
|
}
|