ArrayBuffer.h 9.3 KB

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  1. /*
  2. * Copyright (c) 2020-2022, Linus Groh <linusg@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #pragma once
  7. #include <AK/ByteBuffer.h>
  8. #include <AK/Function.h>
  9. #include <AK/Variant.h>
  10. #include <LibJS/Runtime/Completion.h>
  11. #include <LibJS/Runtime/GlobalObject.h>
  12. #include <LibJS/Runtime/Object.h>
  13. namespace JS {
  14. struct ClampedU8 {
  15. };
  16. // 25.1.1 Notation (read-modify-write modification function), https://tc39.es/ecma262/#sec-arraybuffer-notation
  17. using ReadWriteModifyFunction = Function<ByteBuffer(ByteBuffer, ByteBuffer)>;
  18. class ArrayBuffer : public Object {
  19. JS_OBJECT(ArrayBuffer, Object);
  20. public:
  21. static ThrowCompletionOr<ArrayBuffer*> create(Realm&, size_t);
  22. static ArrayBuffer* create(Realm&, ByteBuffer);
  23. static ArrayBuffer* create(Realm&, ByteBuffer*);
  24. virtual ~ArrayBuffer() override = default;
  25. size_t byte_length() const { return buffer_impl().size(); }
  26. ByteBuffer& buffer() { return buffer_impl(); }
  27. ByteBuffer const& buffer() const { return buffer_impl(); }
  28. // Used by allocate_array_buffer() to attach the data block after construction
  29. void set_buffer(ByteBuffer buffer) { m_buffer = move(buffer); }
  30. Value detach_key() const { return m_detach_key; }
  31. void set_detach_key(Value detach_key) { m_detach_key = detach_key; }
  32. void detach_buffer() { m_buffer = Empty {}; }
  33. bool is_detached() const { return m_buffer.has<Empty>(); }
  34. enum Order {
  35. SeqCst,
  36. Unordered
  37. };
  38. template<typename type>
  39. Value get_value(size_t byte_index, bool is_typed_array, Order, bool is_little_endian = true);
  40. template<typename type>
  41. void set_value(size_t byte_index, Value value, bool is_typed_array, Order, bool is_little_endian = true);
  42. template<typename T>
  43. Value get_modify_set_value(size_t byte_index, Value value, ReadWriteModifyFunction operation, bool is_little_endian = true);
  44. private:
  45. ArrayBuffer(ByteBuffer buffer, Object& prototype);
  46. ArrayBuffer(ByteBuffer* buffer, Object& prototype);
  47. virtual void visit_edges(Visitor&) override;
  48. ByteBuffer& buffer_impl()
  49. {
  50. ByteBuffer* ptr { nullptr };
  51. m_buffer.visit([&](Empty) { VERIFY_NOT_REACHED(); }, [&](auto* pointer) { ptr = pointer; }, [&](auto& value) { ptr = &value; });
  52. return *ptr;
  53. }
  54. ByteBuffer const& buffer_impl() const { return const_cast<ArrayBuffer*>(this)->buffer_impl(); }
  55. Variant<Empty, ByteBuffer, ByteBuffer*> m_buffer;
  56. // The various detach related members of ArrayBuffer are not used by any ECMA262 functionality,
  57. // but are required to be available for the use of various harnesses like the Test262 test runner.
  58. Value m_detach_key;
  59. };
  60. ThrowCompletionOr<ArrayBuffer*> allocate_array_buffer(VM&, FunctionObject& constructor, size_t byte_length);
  61. ThrowCompletionOr<void> detach_array_buffer(VM&, ArrayBuffer& array_buffer, Optional<Value> key = {});
  62. ThrowCompletionOr<ArrayBuffer*> clone_array_buffer(VM&, ArrayBuffer& source_buffer, size_t source_byte_offset, size_t source_length);
  63. // 25.1.2.9 RawBytesToNumeric ( type, rawBytes, isLittleEndian ), https://tc39.es/ecma262/#sec-rawbytestonumeric
  64. template<typename T>
  65. static Value raw_bytes_to_numeric(VM& vm, ByteBuffer raw_value, bool is_little_endian)
  66. {
  67. if (!is_little_endian) {
  68. VERIFY(raw_value.size() % 2 == 0);
  69. for (size_t i = 0; i < raw_value.size() / 2; ++i)
  70. swap(raw_value[i], raw_value[raw_value.size() - 1 - i]);
  71. }
  72. using UnderlyingBufferDataType = Conditional<IsSame<ClampedU8, T>, u8, T>;
  73. if constexpr (IsSame<UnderlyingBufferDataType, float>) {
  74. float value;
  75. raw_value.span().copy_to({ &value, sizeof(float) });
  76. if (isnan(value))
  77. return js_nan();
  78. return Value(value);
  79. }
  80. if constexpr (IsSame<UnderlyingBufferDataType, double>) {
  81. double value;
  82. raw_value.span().copy_to({ &value, sizeof(double) });
  83. if (isnan(value))
  84. return js_nan();
  85. return Value(value);
  86. }
  87. if constexpr (!IsIntegral<UnderlyingBufferDataType>)
  88. VERIFY_NOT_REACHED();
  89. UnderlyingBufferDataType int_value = 0;
  90. raw_value.span().copy_to({ &int_value, sizeof(UnderlyingBufferDataType) });
  91. if constexpr (sizeof(UnderlyingBufferDataType) == 8) {
  92. if constexpr (IsSigned<UnderlyingBufferDataType>) {
  93. static_assert(IsSame<UnderlyingBufferDataType, i64>);
  94. return BigInt::create(vm, Crypto::SignedBigInteger { int_value });
  95. } else {
  96. static_assert(IsOneOf<UnderlyingBufferDataType, u64, double>);
  97. return BigInt::create(vm, Crypto::SignedBigInteger { Crypto::UnsignedBigInteger { int_value } });
  98. }
  99. } else {
  100. return Value(int_value);
  101. }
  102. }
  103. // Implementation for 25.1.2.10 GetValueFromBuffer, used in TypedArray<T>::get_value_from_buffer().
  104. template<typename T>
  105. Value ArrayBuffer::get_value(size_t byte_index, [[maybe_unused]] bool is_typed_array, Order, bool is_little_endian)
  106. {
  107. auto& vm = this->vm();
  108. auto element_size = sizeof(T);
  109. // FIXME: Check for shared buffer
  110. // FIXME: Propagate errors.
  111. auto raw_value = MUST(buffer_impl().slice(byte_index, element_size));
  112. return raw_bytes_to_numeric<T>(vm, move(raw_value), is_little_endian);
  113. }
  114. // 25.1.2.11 NumericToRawBytes ( type, value, isLittleEndian ), https://tc39.es/ecma262/#sec-numerictorawbytes
  115. template<typename T>
  116. static ByteBuffer numeric_to_raw_bytes(VM& vm, Value value, bool is_little_endian)
  117. {
  118. VERIFY(value.is_number() || value.is_bigint());
  119. using UnderlyingBufferDataType = Conditional<IsSame<ClampedU8, T>, u8, T>;
  120. ByteBuffer raw_bytes = ByteBuffer::create_uninitialized(sizeof(UnderlyingBufferDataType)).release_value_but_fixme_should_propagate_errors(); // FIXME: Handle possible OOM situation.
  121. auto flip_if_needed = [&]() {
  122. if (is_little_endian)
  123. return;
  124. VERIFY(sizeof(UnderlyingBufferDataType) % 2 == 0);
  125. for (size_t i = 0; i < sizeof(UnderlyingBufferDataType) / 2; ++i)
  126. swap(raw_bytes[i], raw_bytes[sizeof(UnderlyingBufferDataType) - 1 - i]);
  127. };
  128. if constexpr (IsSame<UnderlyingBufferDataType, float>) {
  129. float raw_value = MUST(value.to_double(vm));
  130. ReadonlyBytes { &raw_value, sizeof(float) }.copy_to(raw_bytes);
  131. flip_if_needed();
  132. return raw_bytes;
  133. }
  134. if constexpr (IsSame<UnderlyingBufferDataType, double>) {
  135. double raw_value = MUST(value.to_double(vm));
  136. ReadonlyBytes { &raw_value, sizeof(double) }.copy_to(raw_bytes);
  137. flip_if_needed();
  138. return raw_bytes;
  139. }
  140. if constexpr (!IsIntegral<UnderlyingBufferDataType>)
  141. VERIFY_NOT_REACHED();
  142. if constexpr (sizeof(UnderlyingBufferDataType) == 8) {
  143. UnderlyingBufferDataType int_value;
  144. if constexpr (IsSigned<UnderlyingBufferDataType>)
  145. int_value = MUST(value.to_bigint_int64(vm));
  146. else
  147. int_value = MUST(value.to_bigint_uint64(vm));
  148. ReadonlyBytes { &int_value, sizeof(UnderlyingBufferDataType) }.copy_to(raw_bytes);
  149. flip_if_needed();
  150. return raw_bytes;
  151. } else {
  152. UnderlyingBufferDataType int_value;
  153. if constexpr (IsSigned<UnderlyingBufferDataType>) {
  154. if constexpr (sizeof(UnderlyingBufferDataType) == 4)
  155. int_value = MUST(value.to_i32(vm));
  156. else if constexpr (sizeof(UnderlyingBufferDataType) == 2)
  157. int_value = MUST(value.to_i16(vm));
  158. else
  159. int_value = MUST(value.to_i8(vm));
  160. } else {
  161. if constexpr (sizeof(UnderlyingBufferDataType) == 4)
  162. int_value = MUST(value.to_u32(vm));
  163. else if constexpr (sizeof(UnderlyingBufferDataType) == 2)
  164. int_value = MUST(value.to_u16(vm));
  165. else if constexpr (!IsSame<T, ClampedU8>)
  166. int_value = MUST(value.to_u8(vm));
  167. else
  168. int_value = MUST(value.to_u8_clamp(vm));
  169. }
  170. ReadonlyBytes { &int_value, sizeof(UnderlyingBufferDataType) }.copy_to(raw_bytes);
  171. if constexpr (sizeof(UnderlyingBufferDataType) % 2 == 0)
  172. flip_if_needed();
  173. return raw_bytes;
  174. }
  175. }
  176. // 25.1.2.12 SetValueInBuffer ( arrayBuffer, byteIndex, type, value, isTypedArray, order [ , isLittleEndian ] ), https://tc39.es/ecma262/#sec-setvalueinbuffer
  177. template<typename T>
  178. void ArrayBuffer::set_value(size_t byte_index, Value value, [[maybe_unused]] bool is_typed_array, Order, bool is_little_endian)
  179. {
  180. auto& vm = this->vm();
  181. auto raw_bytes = numeric_to_raw_bytes<T>(vm, value, is_little_endian);
  182. // FIXME: Check for shared buffer
  183. raw_bytes.span().copy_to(buffer_impl().span().slice(byte_index));
  184. }
  185. // 25.1.2.13 GetModifySetValueInBuffer ( arrayBuffer, byteIndex, type, value, op [ , isLittleEndian ] ), https://tc39.es/ecma262/#sec-getmodifysetvalueinbuffer
  186. template<typename T>
  187. Value ArrayBuffer::get_modify_set_value(size_t byte_index, Value value, ReadWriteModifyFunction operation, bool is_little_endian)
  188. {
  189. auto& vm = this->vm();
  190. auto raw_bytes = numeric_to_raw_bytes<T>(vm, value, is_little_endian);
  191. // FIXME: Check for shared buffer
  192. // FIXME: Propagate errors.
  193. auto raw_bytes_read = MUST(buffer_impl().slice(byte_index, sizeof(T)));
  194. auto raw_bytes_modified = operation(raw_bytes_read, raw_bytes);
  195. raw_bytes_modified.span().copy_to(buffer_impl().span().slice(byte_index));
  196. return raw_bytes_to_numeric<T>(vm, raw_bytes_read, is_little_endian);
  197. }
  198. }