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				synced 2025-11-03 23:00:58 +00:00 
			
		
		
		
	This is still not perfect, as we now actually crash in the `try-finally-continue` tests, while we now succeed all `try-catch-finally-*` tests. Note that we do not yet go through the finally block when exiting the unwind context through a break or continue.
		
			
				
	
	
		
			252 lines
		
	
	
	
		
			8.8 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			252 lines
		
	
	
	
		
			8.8 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
/*
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 * Copyright (c) 2021, Andreas Kling <kling@serenityos.org>
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 *
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 * SPDX-License-Identifier: BSD-2-Clause
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 */
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#pragma once
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#include <AK/NonnullOwnPtrVector.h>
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#include <AK/OwnPtr.h>
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#include <AK/SinglyLinkedList.h>
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#include <LibJS/Bytecode/BasicBlock.h>
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#include <LibJS/Bytecode/CodeGenerationError.h>
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#include <LibJS/Bytecode/Executable.h>
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#include <LibJS/Bytecode/IdentifierTable.h>
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#include <LibJS/Bytecode/Label.h>
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#include <LibJS/Bytecode/Op.h>
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#include <LibJS/Bytecode/Register.h>
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#include <LibJS/Bytecode/StringTable.h>
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#include <LibJS/Forward.h>
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#include <LibJS/Runtime/FunctionKind.h>
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namespace JS::Bytecode {
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class Generator {
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public:
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    enum class SurroundingScopeKind {
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        Global,
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        Function,
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        Block,
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    };
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    static CodeGenerationErrorOr<NonnullOwnPtr<Executable>> generate(ASTNode const&, FunctionKind = FunctionKind::Normal);
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    Register allocate_register();
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    void ensure_enough_space(size_t size)
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    {
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        // Make sure there's always enough space for a single jump at the end.
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        if (!m_current_basic_block->can_grow(size + sizeof(Op::Jump))) {
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            auto& new_block = make_block();
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            emit<Op::Jump>().set_targets(
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                Label { new_block },
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                {});
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            switch_to_basic_block(new_block);
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        }
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    }
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    template<typename OpType, typename... Args>
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    OpType& emit(Args&&... args)
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    {
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        VERIFY(!is_current_block_terminated());
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        // If the block doesn't have enough space, switch to another block
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        if constexpr (!OpType::IsTerminator)
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            ensure_enough_space(sizeof(OpType));
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        void* slot = next_slot();
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        grow(sizeof(OpType));
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        new (slot) OpType(forward<Args>(args)...);
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        if constexpr (OpType::IsTerminator)
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            m_current_basic_block->terminate({}, static_cast<Instruction const*>(slot));
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        return *static_cast<OpType*>(slot);
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    }
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    template<typename OpType, typename... Args>
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    OpType& emit_with_extra_register_slots(size_t extra_register_slots, Args&&... args)
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    {
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        VERIFY(!is_current_block_terminated());
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        size_t size_to_allocate = round_up_to_power_of_two(sizeof(OpType) + extra_register_slots * sizeof(Register), alignof(void*));
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        // If the block doesn't have enough space, switch to another block
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        if constexpr (!OpType::IsTerminator)
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            ensure_enough_space(size_to_allocate);
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        void* slot = next_slot();
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        grow(size_to_allocate);
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        new (slot) OpType(forward<Args>(args)...);
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        if constexpr (OpType::IsTerminator)
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            m_current_basic_block->terminate({}, static_cast<Instruction const*>(slot));
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        return *static_cast<OpType*>(slot);
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    }
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    CodeGenerationErrorOr<void> emit_load_from_reference(JS::ASTNode const&);
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    CodeGenerationErrorOr<void> emit_store_to_reference(JS::ASTNode const&);
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    CodeGenerationErrorOr<void> emit_delete_reference(JS::ASTNode const&);
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    void begin_continuable_scope(Label continue_target, Vector<FlyString> const& language_label_set);
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    void end_continuable_scope();
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    void begin_breakable_scope(Label breakable_target, Vector<FlyString> const& language_label_set);
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    void end_breakable_scope();
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    [[nodiscard]] Label nearest_continuable_scope() const;
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    [[nodiscard]] Label nearest_breakable_scope() const;
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    void switch_to_basic_block(BasicBlock& block)
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    {
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        m_current_basic_block = █
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    }
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    [[nodiscard]] BasicBlock& current_block() { return *m_current_basic_block; }
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    BasicBlock& make_block(DeprecatedString name = {})
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    {
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        if (name.is_empty())
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            name = DeprecatedString::number(m_next_block++);
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        m_root_basic_blocks.append(BasicBlock::create(name));
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        return m_root_basic_blocks.last();
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    }
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    bool is_current_block_terminated() const
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    {
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        return m_current_basic_block->is_terminated();
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    }
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    StringTableIndex intern_string(DeprecatedString string)
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    {
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        return m_string_table->insert(move(string));
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    }
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    IdentifierTableIndex intern_identifier(FlyString string)
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    {
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        return m_identifier_table->insert(move(string));
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    }
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    bool is_in_generator_or_async_function() const { return m_enclosing_function_kind == FunctionKind::Async || m_enclosing_function_kind == FunctionKind::Generator; }
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    bool is_in_generator_function() const { return m_enclosing_function_kind == FunctionKind::Generator; }
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    bool is_in_async_function() const { return m_enclosing_function_kind == FunctionKind::Async; }
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    enum class BindingMode {
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        Lexical,
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        Var,
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        Global,
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    };
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    struct LexicalScope {
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        SurroundingScopeKind kind;
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        BindingMode mode;
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        HashTable<IdentifierTableIndex> known_bindings;
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    };
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    void register_binding(IdentifierTableIndex identifier, BindingMode mode = BindingMode::Lexical)
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    {
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        m_variable_scopes.last_matching([&](auto& x) { return x.mode == BindingMode::Global || x.mode == mode; })->known_bindings.set(identifier);
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    }
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    bool has_binding(IdentifierTableIndex identifier, Optional<BindingMode> const& specific_binding_mode = {}) const
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    {
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        for (auto index = m_variable_scopes.size(); index > 0; --index) {
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            auto& scope = m_variable_scopes[index - 1];
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            if (scope.mode != BindingMode::Global && specific_binding_mode.value_or(scope.mode) != scope.mode)
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                continue;
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            if (scope.known_bindings.contains(identifier))
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                return true;
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        }
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        return false;
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    }
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    bool has_binding_in_current_scope(IdentifierTableIndex identifier) const
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    {
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        if (m_variable_scopes.is_empty())
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            return false;
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        return m_variable_scopes.last().known_bindings.contains(identifier);
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    }
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    void begin_variable_scope(BindingMode mode = BindingMode::Lexical, SurroundingScopeKind kind = SurroundingScopeKind::Block);
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    void end_variable_scope();
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    enum class BlockBoundaryType {
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        Break,
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        Continue,
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        Unwind,
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        ReturnToFinally,
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        LeaveLexicalEnvironment,
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        LeaveVariableEnvironment,
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    };
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    template<typename OpType>
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    void perform_needed_unwinds(bool is_break_node = false)
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    requires(OpType::IsTerminator)
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    {
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        Optional<BlockBoundaryType> boundary_to_stop_at;
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        if constexpr (IsSame<OpType, Bytecode::Op::Return> || IsSame<OpType, Bytecode::Op::Yield>)
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            VERIFY(!is_break_node);
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        else if constexpr (IsSame<OpType, Bytecode::Op::Throw>)
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            boundary_to_stop_at = BlockBoundaryType::Unwind;
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        else
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            boundary_to_stop_at = is_break_node ? BlockBoundaryType::Break : BlockBoundaryType::Continue;
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        for (size_t i = m_boundaries.size(); i > 0; --i) {
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            auto boundary = m_boundaries[i - 1];
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            if (boundary_to_stop_at.has_value() && boundary == *boundary_to_stop_at)
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                break;
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            using enum BlockBoundaryType;
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            switch (boundary) {
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            case Unwind:
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                emit<Bytecode::Op::LeaveUnwindContext>();
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                break;
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            case LeaveLexicalEnvironment:
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                emit<Bytecode::Op::LeaveEnvironment>(Bytecode::Op::EnvironmentMode::Lexical);
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                break;
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            case LeaveVariableEnvironment:
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                emit<Bytecode::Op::LeaveEnvironment>(Bytecode::Op::EnvironmentMode::Var);
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                break;
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            case Break:
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            case Continue:
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                break;
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            case ReturnToFinally:
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                // FIXME: In the case of breaks/continues we need to tell the `finally` to break/continue
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                //        For now let's ignore the finally to avoid a crash
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                if (IsSame<OpType, Bytecode::Op::Jump>)
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                    break;
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                return;
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            };
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        }
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    }
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    Label perform_needed_unwinds_for_labelled_break_and_return_target_block(FlyString const& break_label);
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    Label perform_needed_unwinds_for_labelled_continue_and_return_target_block(FlyString const& continue_label);
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    void start_boundary(BlockBoundaryType type) { m_boundaries.append(type); }
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    void end_boundary(BlockBoundaryType type)
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    {
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        VERIFY(m_boundaries.last() == type);
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        m_boundaries.take_last();
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    }
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private:
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    Generator();
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    ~Generator() = default;
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    void grow(size_t);
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    void* next_slot();
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    struct LabelableScope {
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        Label bytecode_target;
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        Vector<FlyString> language_label_set;
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    };
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    BasicBlock* m_current_basic_block { nullptr };
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    NonnullOwnPtrVector<BasicBlock> m_root_basic_blocks;
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    NonnullOwnPtr<StringTable> m_string_table;
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    NonnullOwnPtr<IdentifierTable> m_identifier_table;
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    u32 m_next_register { 2 };
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    u32 m_next_block { 1 };
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    FunctionKind m_enclosing_function_kind { FunctionKind::Normal };
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    Vector<LabelableScope> m_continuable_scopes;
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    Vector<LabelableScope> m_breakable_scopes;
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    Vector<LexicalScope> m_variable_scopes;
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    Vector<BlockBoundaryType> m_boundaries;
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};
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}
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