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Previously, this was parsing only one kind because I mistakenly assumed that they all had the same shape, now it can parse two kinds, and will return NotImplemented for the rest.
276 lines
11 KiB
C++
276 lines
11 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 <LibWasm/AbstractMachine/AbstractMachine.h>
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#include <LibWasm/AbstractMachine/Configuration.h>
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#include <LibWasm/Types.h>
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namespace Wasm {
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Optional<FunctionAddress> Store::allocate(ModuleInstance& module, const Module::Function& function)
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{
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FunctionAddress address { m_functions.size() };
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if (function.type().value() > module.types().size())
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return {};
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auto& type = module.types()[function.type().value()];
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m_functions.empend(WasmFunction { type, module, function });
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return address;
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}
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Optional<FunctionAddress> Store::allocate(const HostFunction& function)
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{
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FunctionAddress address { m_functions.size() };
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m_functions.empend(HostFunction { function });
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return address;
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}
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Optional<TableAddress> Store::allocate(const TableType& type)
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{
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TableAddress address { m_tables.size() };
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Vector<Optional<Reference>> elements;
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elements.resize(type.limits().min());
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m_tables.empend(TableInstance { type, move(elements) });
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return address;
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}
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Optional<MemoryAddress> Store::allocate(const MemoryType& type)
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{
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MemoryAddress address { m_memories.size() };
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m_memories.empend(MemoryInstance { type });
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return address;
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}
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Optional<GlobalAddress> Store::allocate(const GlobalType& type, Value value)
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{
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GlobalAddress address { m_globals.size() };
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m_globals.append(GlobalInstance { move(value), type.is_mutable() });
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return address;
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}
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FunctionInstance* Store::get(FunctionAddress address)
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{
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auto value = address.value();
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if (m_functions.size() <= value)
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return nullptr;
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return &m_functions[value];
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}
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TableInstance* Store::get(TableAddress address)
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{
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auto value = address.value();
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if (m_tables.size() <= value)
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return nullptr;
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return &m_tables[value];
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}
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MemoryInstance* Store::get(MemoryAddress address)
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{
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auto value = address.value();
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if (m_memories.size() <= value)
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return nullptr;
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return &m_memories[value];
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}
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GlobalInstance* Store::get(GlobalAddress address)
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{
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auto value = address.value();
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if (m_globals.size() <= value)
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return nullptr;
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return &m_globals[value];
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}
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InstantiationResult AbstractMachine::instantiate(const Module& module, Vector<ExternValue> externs)
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{
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Optional<InstantiationResult> instantiation_result;
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module.for_each_section_of_type<TypeSection>([&](const TypeSection& section) {
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m_module_instance.types() = section.types();
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});
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// FIXME: Validate stuff
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Vector<Value> global_values;
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ModuleInstance auxiliary_instance;
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// FIXME: Check that imports/extern match
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for (auto& entry : externs) {
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if (auto* ptr = entry.get_pointer<GlobalAddress>())
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auxiliary_instance.globals().append(*ptr);
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}
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module.for_each_section_of_type<GlobalSection>([&](auto& global_section) {
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for (auto& entry : global_section.entries()) {
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auto frame = make<Frame>(
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auxiliary_instance,
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Vector<Value> {},
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entry.expression(),
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1);
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Configuration config { m_store };
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config.set_frame(move(frame));
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auto result = config.execute();
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// What if this traps?
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if (result.is_trap())
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instantiation_result = InstantiationError { "Global value construction trapped" };
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else
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global_values.append(result.values().first());
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}
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});
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if (auto result = allocate_all(module, externs, global_values); result.is_error()) {
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return result.error();
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}
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module.for_each_section_of_type<ElementSection>([&](const ElementSection&) {
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// FIXME: Implement me
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// https://webassembly.github.io/spec/core/bikeshed/#element-segments%E2%91%A0
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// https://webassembly.github.io/spec/core/bikeshed/#instantiation%E2%91%A1 step 9
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});
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module.for_each_section_of_type<DataSection>([&](const DataSection& data_section) {
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for (auto& segment : data_section.data()) {
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segment.value().visit(
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[&](const DataSection::Data::Active& data) {
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auto frame = make<Frame>(
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m_module_instance,
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Vector<Value> {},
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data.offset,
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1);
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Configuration config { m_store };
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config.set_frame(move(frame));
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auto result = config.execute();
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size_t offset = 0;
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result.values().first().value().visit(
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[&](const auto& value) { offset = value; },
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[&](const FunctionAddress&) { instantiation_result = InstantiationError { "Data segment offset returned an address" }; },
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[&](const ExternAddress&) { instantiation_result = InstantiationError { "Data segment offset returned an address" }; });
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if (instantiation_result.has_value() && instantiation_result->is_error())
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return;
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if (m_module_instance.memories().size() <= data.index.value()) {
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instantiation_result = InstantiationError { String::formatted("Data segment referenced out-of-bounds memory ({}) of max {} entries", data.index.value(), m_module_instance.memories().size()) };
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return;
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}
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auto address = m_module_instance.memories()[data.index.value()];
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if (auto instance = m_store.get(address)) {
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if (instance->type().limits().max().value_or(data.init.size() + offset + 1) <= data.init.size() + offset) {
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instantiation_result = InstantiationError { String::formatted("Data segment attempted to write to out-of-bounds memory ({}) of max {} bytes", data.init.size() + offset, instance->type().limits().max().value()) };
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return;
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}
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instance->grow(data.init.size() + offset - instance->size());
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instance->data().overwrite(offset, data.init.data(), data.init.size());
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}
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},
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[&](const DataSection::Data::Passive&) {
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// FIXME: What do we do here?
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});
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}
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});
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module.for_each_section_of_type<StartSection>([&](auto&) {
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instantiation_result = InstantiationError { "Start section not yet implemented" };
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// FIXME: Invoke the start function.
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});
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return instantiation_result.value_or({});
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}
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InstantiationResult AbstractMachine::allocate_all(const Module& module, Vector<ExternValue>& externs, Vector<Value>& global_values)
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{
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Optional<InstantiationResult> result;
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for (auto& entry : externs) {
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entry.visit(
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[&](const FunctionAddress& address) { m_module_instance.functions().append(address); },
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[&](const TableAddress& address) { m_module_instance.tables().append(address); },
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[&](const MemoryAddress& address) { m_module_instance.memories().append(address); },
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[&](const GlobalAddress& address) { m_module_instance.globals().append(address); });
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}
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// FIXME: What if this fails?
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for (auto& func : module.functions()) {
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auto address = m_store.allocate(m_module_instance, func);
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VERIFY(address.has_value());
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m_module_instance.functions().append(*address);
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}
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module.for_each_section_of_type<TableSection>([&](const TableSection& section) {
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for (auto& table : section.tables()) {
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auto table_address = m_store.allocate(table.type());
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VERIFY(table_address.has_value());
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m_module_instance.tables().append(*table_address);
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}
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});
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module.for_each_section_of_type<MemorySection>([&](const MemorySection& section) {
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for (auto& memory : section.memories()) {
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auto memory_address = m_store.allocate(memory.type());
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VERIFY(memory_address.has_value());
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m_module_instance.memories().append(*memory_address);
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}
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});
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module.for_each_section_of_type<GlobalSection>([&](const GlobalSection& section) {
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size_t index = 0;
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for (auto& entry : section.entries()) {
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auto address = m_store.allocate(entry.type(), global_values[index]);
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VERIFY(address.has_value());
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m_module_instance.globals().append(*address);
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index++;
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}
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});
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module.for_each_section_of_type<ExportSection>([&](const ExportSection& section) {
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for (auto& entry : section.entries()) {
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Variant<FunctionAddress, TableAddress, MemoryAddress, GlobalAddress, Empty> address { Empty {} };
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entry.description().visit(
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[&](const FunctionIndex& index) {
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if (m_module_instance.functions().size() > index.value())
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address = FunctionAddress { m_module_instance.functions()[index.value()] };
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else
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dbgln("Failed to export '{}', the exported address ({}) was out of bounds (min: 0, max: {})", entry.name(), index.value(), m_module_instance.functions().size());
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},
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[&](const TableIndex& index) {
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if (m_module_instance.tables().size() > index.value())
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address = TableAddress { m_module_instance.tables()[index.value()] };
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else
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dbgln("Failed to export '{}', the exported address ({}) was out of bounds (min: 0, max: {})", entry.name(), index.value(), m_module_instance.tables().size());
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},
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[&](const MemoryIndex& index) {
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if (m_module_instance.memories().size() > index.value())
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address = MemoryAddress { m_module_instance.memories()[index.value()] };
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else
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dbgln("Failed to export '{}', the exported address ({}) was out of bounds (min: 0, max: {})", entry.name(), index.value(), m_module_instance.memories().size());
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},
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[&](const GlobalIndex& index) {
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if (m_module_instance.globals().size() > index.value())
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address = GlobalAddress { m_module_instance.globals()[index.value()] };
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else
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dbgln("Failed to export '{}', the exported address ({}) was out of bounds (min: 0, max: {})", entry.name(), index.value(), m_module_instance.globals().size());
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});
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if (address.has<Empty>()) {
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result = InstantiationError { "An export could not be resolved" };
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continue;
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}
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m_module_instance.exports().append(ExportInstance {
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entry.name(),
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move(address).downcast<FunctionAddress, TableAddress, MemoryAddress, GlobalAddress>(),
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});
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}
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});
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return result.value_or({});
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}
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Result AbstractMachine::invoke(FunctionAddress address, Vector<Value> arguments)
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{
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return Configuration { m_store }.call(address, move(arguments));
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}
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}
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