cca6298498
Unlike other calls from Dynamic Modules, dynamic calls cannot be validated entirely at compile time. While we check that the selector used matches a selector that was allowed (either because a method with that selector name was exposed as dynamically callable or because the selector was allowlisted during bytecode compilation), the compiler doesn't know statically whether the target of the call is exposed. In prior changes we modified the annotator to add a pragma indicating whether a member is dynamically-callable or implicitly-dynamically-callable. Here we use that information to set a bit on functions and their corresponding dynamic invocation forwarders, which is verified by the interpreter to make sure the dynamic call is still allowed. TEST=none yet - will be added in subsequent CL (see CL chain) Bug: b/448095881 Change-Id: I27acb4e690a68e08fe1f1ca94e0d77cc7dc4d11e Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/498300 Reviewed-by: Slava Egorov <vegorov@google.com> Reviewed-by: Alexander Markov <alexmarkov@google.com> Auto-Submit: Sigmund Cherem <sigmund@google.com> Commit-Queue: Sigmund Cherem <sigmund@google.com>
435 lines
15 KiB
C++
435 lines
15 KiB
C++
// Copyright (c) 2016, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#ifndef RUNTIME_VM_KERNEL_LOADER_H_
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#define RUNTIME_VM_KERNEL_LOADER_H_
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#if !defined(DART_PRECOMPILED_RUNTIME)
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#include "vm/bit_vector.h"
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#include "vm/compiler/frontend/constant_reader.h"
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#include "vm/compiler/frontend/kernel_translation_helper.h"
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#include "vm/hash_map.h"
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#include "vm/kernel.h"
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#include "vm/object.h"
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#include "vm/symbols.h"
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namespace dart {
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namespace kernel {
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class KernelLoader;
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class BuildingTranslationHelper : public TranslationHelper {
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public:
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BuildingTranslationHelper(KernelLoader* loader,
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Thread* thread,
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Heap::Space space)
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: TranslationHelper(thread, space),
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loader_(loader),
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library_lookup_handle_(Library::Handle(thread->zone())) {}
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virtual ~BuildingTranslationHelper() {}
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virtual LibraryPtr LookupLibraryByKernelLibrary(NameIndex library,
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bool required = true);
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virtual ClassPtr LookupClassByKernelClass(NameIndex klass,
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bool required = true);
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private:
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KernelLoader* loader_;
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#if defined(DEBUG)
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class LibraryLookupHandleScope {
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public:
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explicit LibraryLookupHandleScope(Library& lib) : lib_(lib) {
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ASSERT(lib_.IsNull());
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}
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~LibraryLookupHandleScope() { lib_ = Library::null(); }
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private:
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Library& lib_;
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DISALLOW_COPY_AND_ASSIGN(LibraryLookupHandleScope);
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};
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#endif // defined(DEBUG)
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// Preallocated handle for use in LookupClassByKernelClass().
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Library& library_lookup_handle_;
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DISALLOW_COPY_AND_ASSIGN(BuildingTranslationHelper);
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};
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template <typename VmType>
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class Mapping {
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public:
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bool Lookup(intptr_t canonical_name, VmType** handle) {
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typename MapType::Pair* pair = map_.LookupPair(canonical_name);
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if (pair != nullptr) {
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*handle = pair->value;
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return true;
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}
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return false;
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}
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void Insert(intptr_t canonical_name, VmType* object) {
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map_.Insert(canonical_name, object);
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}
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private:
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typedef IntMap<VmType*> MapType;
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MapType map_;
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};
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class LibraryIndex {
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public:
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explicit LibraryIndex(const TypedDataView& kernel_data);
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intptr_t class_count() const { return class_count_; }
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intptr_t procedure_count() const { return procedure_count_; }
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intptr_t ClassOffset(intptr_t index) const {
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return reader_.ReadUInt32At(class_index_offset_ + index * 4);
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}
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intptr_t ProcedureOffset(intptr_t index) const {
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return reader_.ReadUInt32At(procedure_index_offset_ + index * 4);
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}
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intptr_t SizeOfClassAtOffset(intptr_t class_offset) const {
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for (intptr_t i = 0, offset = class_index_offset_; i < class_count_;
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++i, offset += 4) {
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if (static_cast<intptr_t>(reader_.ReadUInt32At(offset)) == class_offset) {
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return reader_.ReadUInt32At(offset + 4) - class_offset;
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}
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}
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UNREACHABLE();
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return -1;
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}
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intptr_t SourceReferencesOffset() { return source_references_offset_; }
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private:
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Reader reader_;
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intptr_t source_references_offset_;
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intptr_t class_index_offset_;
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intptr_t class_count_;
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intptr_t procedure_index_offset_;
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intptr_t procedure_count_;
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DISALLOW_COPY_AND_ASSIGN(LibraryIndex);
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};
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class ClassIndex {
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public:
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// |class_offset| is the offset of class' kernel data in |kernel_data|.
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// The size of the class' kernel data is |class_size|.
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ClassIndex(const TypedDataBase& kernel_data,
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intptr_t class_offset,
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intptr_t class_size);
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intptr_t procedure_count() const { return procedure_count_; }
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intptr_t ProcedureOffset(intptr_t index) const {
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return reader_.ReadUInt32At(procedure_index_offset_ + index * 4);
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}
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private:
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void Init(intptr_t class_offset, intptr_t class_size);
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Reader reader_;
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intptr_t procedure_count_;
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intptr_t procedure_index_offset_;
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DISALLOW_COPY_AND_ASSIGN(ClassIndex);
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};
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struct UriToSourceTableEntry : public ZoneObject {
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UriToSourceTableEntry() {}
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const String* uri = nullptr;
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const String* sources = nullptr;
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const TypedData* line_starts = nullptr;
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};
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struct UriToSourceTableTrait {
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typedef UriToSourceTableEntry* Value;
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typedef const UriToSourceTableEntry* Key;
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typedef UriToSourceTableEntry* Pair;
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static Key KeyOf(Pair kv) { return kv; }
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static Value ValueOf(Pair kv) { return kv; }
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static inline uword Hash(Key key) { return key->uri->Hash(); }
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static inline bool IsKeyEqual(Pair kv, Key key) {
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// Only compare uri.
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return kv->uri->CompareTo(*key->uri) == 0;
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}
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};
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class KernelLoader : public ValueObject {
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public:
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explicit KernelLoader(
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Program* program,
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DirectChainedHashMap<UriToSourceTableTrait>* uri_to_source_table);
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static Object& LoadEntireProgram(Program* program,
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bool process_pending_classes = true);
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// Returns the library containing the main procedure, null if there
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// was no main procedure, or a failure object if there was an error.
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ObjectPtr LoadProgram(bool process_pending_classes = true);
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// Load given library.
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void LoadLibrary(const Library& library);
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// Returns the function which will evaluate the expression, or a failure
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// object if there was an error.
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ObjectPtr LoadExpressionEvaluationFunction(const Class& real_class);
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// Finds all libraries that have been modified in this incremental
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// version of the kernel program file.
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//
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// Optionally populate [p_num_libraries], [p_num_classes], [p_num_procedures]
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// with number of libraries, classes and top-level procedures in [program].
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static void FindModifiedLibraries(Program* program,
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BitVector* modified_libs,
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intptr_t* p_num_libraries,
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intptr_t* p_num_classes,
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intptr_t* p_num_procedures);
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static StringPtr FindSourceForScript(const uint8_t* kernel_buffer,
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intptr_t kernel_buffer_length,
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const String& url);
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static void FinishLoading(const Class& klass);
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void ReadObfuscationProhibitions();
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void ReadLoadingUnits();
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// Get closure Function from cache or create it if it is not created yet.
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// [func_decl_offset] is an offset FunctionExpression or FunctionDeclaration.
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static FunctionPtr GetClosureFunction(Thread* thread,
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intptr_t local_function_id,
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intptr_t func_decl_offset,
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const Function& member_function,
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const Function& parent_function,
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const Object& closure_owner);
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static void index_programs(kernel::Reader* reader,
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GrowableArray<intptr_t>* subprogram_file_starts);
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private:
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// Pragma bits
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using HasPragma = BitField<uint32_t, bool>;
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using ExternalNamePragma = BitField<uint32_t, bool, HasPragma::kNextBit>;
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using InvisibleFunctionPragma =
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BitField<uint32_t, bool, ExternalNamePragma::kNextBit>;
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using IsolateUnsendablePragma =
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BitField<uint32_t, bool, InvisibleFunctionPragma::kNextBit>;
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using DeeplyImmutablePragma =
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BitField<uint32_t, bool, IsolateUnsendablePragma::kNextBit>;
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using FfiNativePragma =
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BitField<uint32_t, bool, DeeplyImmutablePragma::kNextBit>;
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using SharedPragma = BitField<uint32_t, bool, FfiNativePragma::kNextBit>;
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using NoSanitizeThreadPragma =
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BitField<uint32_t, bool, SharedPragma::kNextBit>;
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using DynModuleExtendablePragma =
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BitField<uint32_t, bool, NoSanitizeThreadPragma::kNextBit>;
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using DynModuleImplicitlyExtendablePragma =
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BitField<uint32_t, bool, DynModuleExtendablePragma::kNextBit>;
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using DynModuleCanBeOverriddenPragma =
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BitField<uint32_t, bool, DynModuleImplicitlyExtendablePragma::kNextBit>;
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using DynModuleCanBeOverriddenImplicitlyPragma =
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BitField<uint32_t, bool, DynModuleCanBeOverriddenPragma::kNextBit>;
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using DynModuleDynamicallyCallablePragma =
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BitField<uint32_t,
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bool,
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DynModuleCanBeOverriddenImplicitlyPragma::kNextBit>;
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void FinishTopLevelClassLoading(const Class& toplevel_class,
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const Library& library,
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const LibraryIndex& library_index);
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void ReadVMAnnotations(const Library& library,
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intptr_t annotation_count,
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uint32_t* pragma_bits,
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String* native_name = nullptr);
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KernelLoader(const KernelProgramInfo& kernel_program_info,
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const TypedDataBase& kernel_data,
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intptr_t data_program_offset);
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void InitializeFields(
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DirectChainedHashMap<UriToSourceTableTrait>* uri_to_source_table);
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LibraryPtr LoadLibrary(intptr_t index);
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const String& LibraryUri(intptr_t library_index) {
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return translation_helper_.DartSymbolPlain(
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translation_helper_.CanonicalNameString(
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library_canonical_name(library_index)));
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}
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intptr_t library_offset(intptr_t index) {
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kernel::Reader reader(program_->binary());
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return reader.ReadFromIndexNoReset(reader.size(),
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KernelFixedFieldsAfterLibraries,
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program_->library_count() + 1, index);
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}
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NameIndex library_canonical_name(intptr_t index) {
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kernel::Reader reader(program_->binary());
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reader.set_offset(library_offset(index));
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// Start reading library.
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// Note that this needs to be keep in sync with LibraryHelper.
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reader.ReadFlags();
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reader.ReadUInt(); // Read major language version.
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reader.ReadUInt(); // Read minor language version.
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return reader.ReadCanonicalNameReference();
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}
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uint8_t CharacterAt(StringIndex string_index, intptr_t index);
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void walk_incremental_kernel(BitVector* modified_libs,
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intptr_t* p_num_libraries,
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intptr_t* p_num_classes,
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intptr_t* p_num_procedures);
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void LoadPreliminaryClass(ClassHelper* class_helper,
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intptr_t type_parameter_count);
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void ReadInferredType(const Field& field, intptr_t kernel_offset);
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void CheckForInitializer(const Field& field);
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void LoadClass(const Library& library,
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const Class& toplevel_class,
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intptr_t class_end,
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Class* out_class);
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void FinishClassLoading(const Class& klass,
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const Library& library,
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const Class& toplevel_class,
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intptr_t class_offset,
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const ClassIndex& class_index,
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ClassHelper* class_helper);
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void LoadProcedure(const Library& library,
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const Class& owner,
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bool in_class,
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intptr_t procedure_end);
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ArrayPtr MakeFieldsArray();
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ArrayPtr MakeFunctionsArray();
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ScriptPtr LoadScriptAt(
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intptr_t index,
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DirectChainedHashMap<UriToSourceTableTrait>* uri_to_source_table);
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// If klass's script is not the script at the uri index, return a PatchClass
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// for klass whose script corresponds to the uri index.
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// Otherwise return klass.
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const Object& ClassForScriptAt(const Class& klass, intptr_t source_uri_index);
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ScriptPtr ScriptAt(intptr_t source_uri_index) {
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return kernel_program_info_.ScriptAt(source_uri_index);
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}
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// Reads field initializer and returns the initial field value.
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ObjectPtr ReadInitialFieldValue(const Field& field,
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FieldHelper* field_helper);
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// Generates field getter and setter functions.
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void GenerateFieldAccessors(const Class& klass,
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const Field& field,
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FieldHelper* field_helper,
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uint32_t pragma_bits);
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void LoadLibraryImportsAndExports(Library* library,
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const Class& toplevel_class);
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LibraryPtr LookupLibraryOrNull(NameIndex library);
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LibraryPtr LookupLibrary(NameIndex library);
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LibraryPtr LookupLibraryFromClass(NameIndex klass);
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ClassPtr LookupClass(const Library& library, NameIndex klass);
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UntaggedFunction::Kind GetFunctionType(ProcedureHelper::Kind procedure_kind);
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// Read local function (either FunctionExpression or FunctionDeclaration)
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// and create corresponding Function object.
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// If [closure_owner] is not null, it overrides closure function owner.
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FunctionPtr LoadClosureFunction(const Function& parent_function,
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const Object& closure_owner);
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Program* program_;
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Thread* thread_;
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Zone* zone_;
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NoActiveIsolateScope no_active_isolate_scope_;
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Array& patch_classes_;
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ActiveClass active_class_;
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// This is the offset of the current library within
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// the whole kernel program.
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intptr_t library_kernel_offset_;
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// This is the offset by which offsets, which are set relative
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// to their library's kernel data, have to be corrected.
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intptr_t correction_offset_;
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bool loading_native_wrappers_library_;
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NameIndex skip_vmservice_library_;
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TypedDataView& library_kernel_data_;
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KernelProgramInfo& kernel_program_info_;
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BuildingTranslationHelper translation_helper_;
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KernelReaderHelper helper_;
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ConstantReader constant_reader_;
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TypeTranslator type_translator_;
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InferredTypeMetadataHelper inferred_type_metadata_helper_;
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Object& static_field_value_;
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Smi& name_index_handle_;
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// We "re-use" the normal .dill file format for encoding compiled evaluation
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// expressions from the debugger. This allows us to also reuse the normal
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// a) kernel loader b) flow graph building code. The encoding is either one
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// of the following two options:
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//
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// * Option a) The expression is evaluated inside an instance method call
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// context:
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//
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// Program:
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// |> library "evaluate:source"
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// |> class "#DebugClass"
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// |> procedure ":Eval"
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//
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// * Option b) The expression is evaluated outside an instance method call
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// context:
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//
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// Program:
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// |> library "evaluate:source"
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// |> procedure ":Eval"
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//
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// See
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// * pkg/front_end/lib/src/fasta/incremental_compiler.dart,
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// compileExpression
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// * pkg/front_end/lib/src/fasta/kernel/utils.dart,
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// createExpressionEvaluationComponent
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//
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Library& expression_evaluation_library_;
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GrowableArray<const Function*> functions_;
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GrowableArray<const Field*> fields_;
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friend class BuildingTranslationHelper;
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DISALLOW_COPY_AND_ASSIGN(KernelLoader);
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};
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} // namespace kernel
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} // namespace dart
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#endif // !defined(DART_PRECOMPILED_RUNTIME)
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#endif // RUNTIME_VM_KERNEL_LOADER_H_
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