Compiler.cpp 96 KB

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  1. /*
  2. * Copyright (c) 2023, Andreas Kling <kling@serenityos.org>
  3. * Copyright (c) 2023, Simon Wanner <simon@skyrising.xyz>
  4. *
  5. * SPDX-License-Identifier: BSD-2-Clause
  6. */
  7. #include <AK/OwnPtr.h>
  8. #include <AK/Platform.h>
  9. #include <LibJS/Bytecode/CommonImplementations.h>
  10. #include <LibJS/Bytecode/Instruction.h>
  11. #include <LibJS/Bytecode/Interpreter.h>
  12. #include <LibJS/Bytecode/RegexTable.h>
  13. #include <LibJS/JIT/Compiler.h>
  14. #include <LibJS/Runtime/AbstractOperations.h>
  15. #include <LibJS/Runtime/Array.h>
  16. #include <LibJS/Runtime/DeclarativeEnvironment.h>
  17. #include <LibJS/Runtime/ECMAScriptFunctionObject.h>
  18. #include <LibJS/Runtime/FunctionEnvironment.h>
  19. #include <LibJS/Runtime/VM.h>
  20. #include <LibJS/Runtime/ValueInlines.h>
  21. #include <sys/mman.h>
  22. #include <unistd.h>
  23. #ifdef JIT_ARCH_SUPPORTED
  24. # define LOG_JIT_SUCCESS 0
  25. # define LOG_JIT_FAILURE 1
  26. # define DUMP_JIT_MACHINE_CODE_TO_STDOUT 0
  27. # define DUMP_JIT_DISASSEMBLY 0
  28. # define TRY_OR_SET_EXCEPTION(expression) \
  29. ({ \
  30. /* Ignore -Wshadow to allow nesting the macro. */ \
  31. AK_IGNORE_DIAGNOSTIC("-Wshadow", \
  32. auto&& _temporary_result = (expression)); \
  33. static_assert(!::AK::Detail::IsLvalueReference<decltype(_temporary_result.release_value())>, \
  34. "Do not return a reference from a fallible expression"); \
  35. if (_temporary_result.is_error()) [[unlikely]] { \
  36. vm.bytecode_interpreter().reg(Bytecode::Register::exception()) = _temporary_result.release_error().value().value(); \
  37. return {}; \
  38. } \
  39. _temporary_result.release_value(); \
  40. })
  41. namespace JS::JIT {
  42. void Compiler::store_vm_register(Bytecode::Register dst, Assembler::Reg src)
  43. {
  44. m_assembler.mov(
  45. Assembler::Operand::Mem64BaseAndOffset(REGISTER_ARRAY_BASE, dst.index() * sizeof(Value)),
  46. Assembler::Operand::Register(src));
  47. }
  48. void Compiler::load_vm_register(Assembler::Reg dst, Bytecode::Register src)
  49. {
  50. m_assembler.mov(
  51. Assembler::Operand::Register(dst),
  52. Assembler::Operand::Mem64BaseAndOffset(REGISTER_ARRAY_BASE, src.index() * sizeof(Value)));
  53. }
  54. void Compiler::load_accumulator(Assembler::Reg dst)
  55. {
  56. m_assembler.mov(
  57. Assembler::Operand::Register(dst),
  58. Assembler::Operand::Register(CACHED_ACCUMULATOR));
  59. }
  60. void Compiler::store_accumulator(Assembler::Reg src)
  61. {
  62. m_assembler.mov(
  63. Assembler::Operand::Register(CACHED_ACCUMULATOR),
  64. Assembler::Operand::Register(src));
  65. }
  66. void Compiler::reload_cached_accumulator()
  67. {
  68. m_assembler.mov(
  69. Assembler::Operand::Register(CACHED_ACCUMULATOR),
  70. Assembler::Operand::Mem64BaseAndOffset(REGISTER_ARRAY_BASE, Bytecode::Register::accumulator_index * sizeof(Value)));
  71. }
  72. void Compiler::flush_cached_accumulator()
  73. {
  74. m_assembler.mov(
  75. Assembler::Operand::Mem64BaseAndOffset(REGISTER_ARRAY_BASE, Bytecode::Register::accumulator_index * sizeof(Value)),
  76. Assembler::Operand::Register(CACHED_ACCUMULATOR));
  77. }
  78. void Compiler::store_vm_local(size_t dst, Assembler::Reg src)
  79. {
  80. m_assembler.mov(
  81. Assembler::Operand::Mem64BaseAndOffset(LOCALS_ARRAY_BASE, dst * sizeof(Value)),
  82. Assembler::Operand::Register(src));
  83. }
  84. void Compiler::load_vm_local(Assembler::Reg dst, size_t src)
  85. {
  86. m_assembler.mov(
  87. Assembler::Operand::Register(dst),
  88. Assembler::Operand::Mem64BaseAndOffset(LOCALS_ARRAY_BASE, src * sizeof(Value)));
  89. }
  90. void Compiler::compile_load_immediate(Bytecode::Op::LoadImmediate const& op)
  91. {
  92. m_assembler.mov(
  93. Assembler::Operand::Register(GPR0),
  94. Assembler::Operand::Imm(op.value().encoded()));
  95. store_accumulator(GPR0);
  96. }
  97. void Compiler::compile_load(Bytecode::Op::Load const& op)
  98. {
  99. load_vm_register(GPR0, op.src());
  100. store_accumulator(GPR0);
  101. }
  102. void Compiler::compile_store(Bytecode::Op::Store const& op)
  103. {
  104. load_accumulator(GPR0);
  105. store_vm_register(op.dst(), GPR0);
  106. }
  107. static Value cxx_throw_binding_not_initialized(VM& vm, size_t index)
  108. {
  109. auto const& variable_name = vm.running_execution_context().function->local_variables_names()[index];
  110. TRY_OR_SET_EXCEPTION(vm.throw_completion<ReferenceError>(ErrorType::BindingNotInitialized, variable_name));
  111. return {};
  112. }
  113. void Compiler::compile_get_local(Bytecode::Op::GetLocal const& op)
  114. {
  115. load_vm_local(GPR0, op.index());
  116. // if (GPR0 == <empty>) throw ReferenceError(BindingNotInitialized)
  117. Assembler::Label not_empty {};
  118. m_assembler.mov(
  119. Assembler::Operand::Register(GPR1),
  120. Assembler::Operand::Imm(Value().encoded()));
  121. m_assembler.jump_if(
  122. Assembler::Operand::Register(GPR0),
  123. Assembler::Condition::NotEqualTo,
  124. Assembler::Operand::Register(GPR1),
  125. not_empty);
  126. m_assembler.mov(Assembler::Operand::Register(ARG1), Assembler::Operand::Imm(op.index()));
  127. native_call((void*)cxx_throw_binding_not_initialized);
  128. check_exception();
  129. not_empty.link(m_assembler);
  130. store_accumulator(GPR0);
  131. }
  132. void Compiler::compile_set_local(Bytecode::Op::SetLocal const& op)
  133. {
  134. load_accumulator(GPR0);
  135. store_vm_local(op.index(), GPR0);
  136. }
  137. static Value cxx_typeof_local(VM& vm, Value value)
  138. {
  139. return PrimitiveString::create(vm, value.typeof());
  140. }
  141. void Compiler::compile_typeof_local(Bytecode::Op::TypeofLocal const& op)
  142. {
  143. load_vm_local(ARG1, op.index());
  144. native_call((void*)cxx_typeof_local);
  145. store_accumulator(GPR0);
  146. }
  147. void Compiler::compile_jump(Bytecode::Op::Jump const& op)
  148. {
  149. m_assembler.jump(label_for(op.true_target()->block()));
  150. }
  151. static bool cxx_to_boolean(VM&, Value value)
  152. {
  153. return value.to_boolean();
  154. }
  155. void Compiler::compile_to_boolean(Assembler::Reg dst, Assembler::Reg src)
  156. {
  157. // dst = src;
  158. m_assembler.mov(
  159. Assembler::Operand::Register(dst),
  160. Assembler::Operand::Register(src));
  161. // dst >>= 48;
  162. m_assembler.shift_right(
  163. Assembler::Operand::Register(dst),
  164. Assembler::Operand::Imm(48));
  165. // if (dst != BOOLEAN_TAG) goto slow_case;
  166. Assembler::Label slow_case {};
  167. m_assembler.jump_if(
  168. Assembler::Operand::Register(dst),
  169. Assembler::Condition::NotEqualTo,
  170. Assembler::Operand::Imm(BOOLEAN_TAG),
  171. slow_case);
  172. // Fast path for JS::Value booleans.
  173. // dst = src;
  174. m_assembler.mov(
  175. Assembler::Operand::Register(dst),
  176. Assembler::Operand::Register(src));
  177. // goto end;
  178. auto end = m_assembler.jump();
  179. // slow_case: // call C++ helper
  180. slow_case.link(m_assembler);
  181. m_assembler.mov(
  182. Assembler::Operand::Register(ARG1),
  183. Assembler::Operand::Register(src));
  184. native_call((void*)cxx_to_boolean);
  185. m_assembler.mov(
  186. Assembler::Operand::Register(dst),
  187. Assembler::Operand::Register(RET));
  188. // end:
  189. end.link(m_assembler);
  190. // dst &= 1;
  191. m_assembler.bitwise_and(
  192. Assembler::Operand::Register(dst),
  193. Assembler::Operand::Imm(1));
  194. }
  195. void Compiler::compile_jump_conditional(Bytecode::Op::JumpConditional const& op)
  196. {
  197. load_accumulator(GPR1);
  198. compile_to_boolean(GPR0, GPR1);
  199. m_assembler.jump_if(
  200. Assembler::Operand::Register(GPR0),
  201. Assembler::Condition::EqualTo,
  202. Assembler::Operand::Imm(0),
  203. label_for(op.false_target()->block()));
  204. m_assembler.jump(label_for(op.true_target()->block()));
  205. }
  206. void Compiler::compile_jump_nullish(Bytecode::Op::JumpNullish const& op)
  207. {
  208. load_accumulator(GPR0);
  209. m_assembler.shift_right(
  210. Assembler::Operand::Register(GPR0),
  211. Assembler::Operand::Imm(48));
  212. m_assembler.bitwise_and(
  213. Assembler::Operand::Register(GPR0),
  214. Assembler::Operand::Imm(IS_NULLISH_EXTRACT_PATTERN));
  215. m_assembler.jump_if(
  216. Assembler::Operand::Register(GPR0),
  217. Assembler::Condition::EqualTo,
  218. Assembler::Operand::Imm(IS_NULLISH_PATTERN),
  219. label_for(op.true_target()->block()));
  220. m_assembler.jump(label_for(op.false_target()->block()));
  221. }
  222. void Compiler::compile_jump_undefined(Bytecode::Op::JumpUndefined const& op)
  223. {
  224. load_accumulator(GPR0);
  225. m_assembler.shift_right(
  226. Assembler::Operand::Register(GPR0),
  227. Assembler::Operand::Imm(48));
  228. m_assembler.jump_if(
  229. Assembler::Operand::Register(GPR0),
  230. Assembler::Condition::EqualTo,
  231. Assembler::Operand::Imm(UNDEFINED_TAG),
  232. label_for(op.true_target()->block()));
  233. m_assembler.jump(label_for(op.false_target()->block()));
  234. }
  235. [[maybe_unused]] static Value cxx_increment(VM& vm, Value value)
  236. {
  237. auto old_value = TRY_OR_SET_EXCEPTION(value.to_numeric(vm));
  238. if (old_value.is_number())
  239. return Value(old_value.as_double() + 1);
  240. return BigInt::create(vm, old_value.as_bigint().big_integer().plus(Crypto::SignedBigInteger { 1 }));
  241. }
  242. void Compiler::jump_if_int32(Assembler::Reg reg, Assembler::Label& label)
  243. {
  244. // GPR0 = reg >> 48;
  245. m_assembler.mov(Assembler::Operand::Register(GPR0), Assembler::Operand::Register(reg));
  246. m_assembler.shift_right(Assembler::Operand::Register(GPR0), Assembler::Operand::Imm(48));
  247. m_assembler.jump_if(
  248. Assembler::Operand::Register(GPR0),
  249. Assembler::Condition::EqualTo,
  250. Assembler::Operand::Imm(INT32_TAG),
  251. label);
  252. }
  253. template<typename Codegen>
  254. void Compiler::branch_if_type(Assembler::Reg reg, u16 type_tag, Codegen codegen)
  255. {
  256. // GPR0 = reg >> 48;
  257. m_assembler.mov(Assembler::Operand::Register(GPR0), Assembler::Operand::Register(reg));
  258. m_assembler.shift_right(Assembler::Operand::Register(GPR0), Assembler::Operand::Imm(48));
  259. Assembler::Label not_type_case {};
  260. m_assembler.jump_if(
  261. Assembler::Operand::Register(GPR0),
  262. Assembler::Condition::NotEqualTo,
  263. Assembler::Operand::Imm(type_tag),
  264. not_type_case);
  265. codegen();
  266. not_type_case.link(m_assembler);
  267. }
  268. template<typename Codegen>
  269. void Compiler::branch_if_both_int32(Assembler::Reg lhs, Assembler::Reg rhs, Codegen codegen)
  270. {
  271. // GPR0 = lhs >> 48;
  272. m_assembler.mov(Assembler::Operand::Register(GPR0), Assembler::Operand::Register(lhs));
  273. m_assembler.shift_right(Assembler::Operand::Register(GPR0), Assembler::Operand::Imm(48));
  274. // GPR1 = rhs >> 48;
  275. m_assembler.mov(Assembler::Operand::Register(GPR1), Assembler::Operand::Register(rhs));
  276. m_assembler.shift_right(Assembler::Operand::Register(GPR1), Assembler::Operand::Imm(48));
  277. Assembler::Label not_int32_case {};
  278. m_assembler.jump_if(
  279. Assembler::Operand::Register(GPR0),
  280. Assembler::Condition::NotEqualTo,
  281. Assembler::Operand::Imm(INT32_TAG),
  282. not_int32_case);
  283. m_assembler.jump_if(
  284. Assembler::Operand::Register(GPR1),
  285. Assembler::Condition::NotEqualTo,
  286. Assembler::Operand::Imm(INT32_TAG),
  287. not_int32_case);
  288. codegen();
  289. not_int32_case.link(m_assembler);
  290. }
  291. void Compiler::compile_increment(Bytecode::Op::Increment const&)
  292. {
  293. load_accumulator(ARG1);
  294. Assembler::Label end {};
  295. Assembler::Label slow_case {};
  296. branch_if_int32(ARG1, [&] {
  297. // GPR0 = ARG1
  298. m_assembler.mov(
  299. Assembler::Operand::Register(GPR0),
  300. Assembler::Operand::Register(ARG1));
  301. // GPR0++;
  302. m_assembler.inc32(
  303. Assembler::Operand::Register(GPR0),
  304. slow_case);
  305. // accumulator = GPR0 | SHIFTED_INT32_TAG;
  306. m_assembler.mov(
  307. Assembler::Operand::Register(GPR1),
  308. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  309. m_assembler.bitwise_or(
  310. Assembler::Operand::Register(GPR0),
  311. Assembler::Operand::Register(GPR1));
  312. store_accumulator(GPR0);
  313. m_assembler.jump(end);
  314. });
  315. slow_case.link(m_assembler);
  316. native_call((void*)cxx_increment);
  317. store_accumulator(RET);
  318. check_exception();
  319. end.link(m_assembler);
  320. }
  321. static Value cxx_decrement(VM& vm, Value value)
  322. {
  323. auto old_value = TRY_OR_SET_EXCEPTION(value.to_numeric(vm));
  324. if (old_value.is_number())
  325. return Value(old_value.as_double() - 1);
  326. return BigInt::create(vm, old_value.as_bigint().big_integer().minus(Crypto::SignedBigInteger { 1 }));
  327. }
  328. void Compiler::compile_decrement(Bytecode::Op::Decrement const&)
  329. {
  330. load_accumulator(ARG1);
  331. Assembler::Label end {};
  332. Assembler::Label slow_case {};
  333. branch_if_int32(ARG1, [&] {
  334. // GPR0 = ARG1;
  335. m_assembler.mov(
  336. Assembler::Operand::Register(GPR0),
  337. Assembler::Operand::Register(ARG1));
  338. // GPR0--;
  339. m_assembler.dec32(
  340. Assembler::Operand::Register(GPR0),
  341. slow_case);
  342. // accumulator = GPR0 | SHIFTED_INT32_TAG;
  343. m_assembler.mov(
  344. Assembler::Operand::Register(GPR1),
  345. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  346. m_assembler.bitwise_or(
  347. Assembler::Operand::Register(GPR0),
  348. Assembler::Operand::Register(GPR1));
  349. // accumulator = GPR0;
  350. store_accumulator(GPR0);
  351. m_assembler.jump(end);
  352. });
  353. slow_case.link(m_assembler);
  354. native_call((void*)cxx_decrement);
  355. store_accumulator(RET);
  356. check_exception();
  357. end.link(m_assembler);
  358. }
  359. void Compiler::check_exception()
  360. {
  361. load_vm_register(GPR0, Bytecode::Register::exception());
  362. m_assembler.mov(Assembler::Operand::Register(GPR1), Assembler::Operand::Imm(Value().encoded()));
  363. if (auto const* handler = current_block().handler(); handler) {
  364. Assembler::Label no_exception;
  365. m_assembler.jump_if(
  366. Assembler::Operand::Register(GPR0),
  367. Assembler::Condition::EqualTo,
  368. Assembler::Operand::Register(GPR1),
  369. no_exception);
  370. store_accumulator(GPR0);
  371. store_vm_register(Bytecode::Register::exception(), GPR1);
  372. m_assembler.jump(label_for(*handler));
  373. no_exception.link(m_assembler);
  374. } else if (auto const* finalizer = current_block().finalizer(); finalizer) {
  375. store_vm_register(Bytecode::Register::saved_exception(), GPR0);
  376. store_vm_register(Bytecode::Register::exception(), GPR1);
  377. m_assembler.jump_if(Assembler::Operand::Register(GPR0),
  378. Assembler::Condition::NotEqualTo,
  379. Assembler::Operand::Register(GPR1),
  380. label_for(*finalizer));
  381. } else {
  382. m_assembler.jump_if(Assembler::Operand::Register(GPR0),
  383. Assembler::Condition::NotEqualTo,
  384. Assembler::Operand::Register(GPR1),
  385. m_exit_label);
  386. }
  387. }
  388. void Compiler::compile_enter_unwind_context(Bytecode::Op::EnterUnwindContext const& op)
  389. {
  390. m_assembler.jump(label_for(op.entry_point().block()));
  391. }
  392. void Compiler::compile_leave_unwind_context(Bytecode::Op::LeaveUnwindContext const&)
  393. {
  394. /* Nothing */
  395. }
  396. void Compiler::compile_throw(Bytecode::Op::Throw const&)
  397. {
  398. load_accumulator(GPR0);
  399. store_vm_register(Bytecode::Register::exception(), GPR0);
  400. check_exception();
  401. }
  402. static ThrowCompletionOr<Value> abstract_inequals(VM& vm, Value src1, Value src2)
  403. {
  404. return Value(!TRY(is_loosely_equal(vm, src1, src2)));
  405. }
  406. static ThrowCompletionOr<Value> abstract_equals(VM& vm, Value src1, Value src2)
  407. {
  408. return Value(TRY(is_loosely_equal(vm, src1, src2)));
  409. }
  410. static ThrowCompletionOr<Value> typed_inequals(VM&, Value src1, Value src2)
  411. {
  412. return Value(!is_strictly_equal(src1, src2));
  413. }
  414. static ThrowCompletionOr<Value> typed_equals(VM&, Value src1, Value src2)
  415. {
  416. return Value(is_strictly_equal(src1, src2));
  417. }
  418. # define DO_COMPILE_COMMON_BINARY_OP(TitleCaseName, snake_case_name) \
  419. static Value cxx_##snake_case_name(VM& vm, Value lhs, Value rhs) \
  420. { \
  421. return TRY_OR_SET_EXCEPTION(snake_case_name(vm, lhs, rhs)); \
  422. } \
  423. \
  424. void Compiler::compile_##snake_case_name(Bytecode::Op::TitleCaseName const& op) \
  425. { \
  426. load_vm_register(ARG1, op.lhs()); \
  427. load_accumulator(ARG2); \
  428. native_call((void*)cxx_##snake_case_name); \
  429. store_accumulator(RET); \
  430. check_exception(); \
  431. }
  432. JS_ENUMERATE_COMMON_BINARY_OPS_WITHOUT_FAST_PATH(DO_COMPILE_COMMON_BINARY_OP)
  433. # undef DO_COMPILE_COMMON_BINARY_OP
  434. static Value cxx_add(VM& vm, Value lhs, Value rhs)
  435. {
  436. return TRY_OR_SET_EXCEPTION(add(vm, lhs, rhs));
  437. }
  438. void Compiler::compile_add(Bytecode::Op::Add const& op)
  439. {
  440. load_vm_register(ARG1, op.lhs());
  441. load_accumulator(ARG2);
  442. Assembler::Label end {};
  443. Assembler::Label slow_case {};
  444. branch_if_both_int32(ARG1, ARG2, [&] {
  445. // GPR0 = ARG1 + ARG2 (32-bit)
  446. // if (overflow) goto slow_case;
  447. m_assembler.mov(
  448. Assembler::Operand::Register(GPR0),
  449. Assembler::Operand::Register(ARG1));
  450. m_assembler.add32(
  451. Assembler::Operand::Register(GPR0),
  452. Assembler::Operand::Register(ARG2),
  453. slow_case);
  454. // accumulator = GPR0 | SHIFTED_INT32_TAG;
  455. m_assembler.mov(
  456. Assembler::Operand::Register(GPR1),
  457. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  458. m_assembler.bitwise_or(
  459. Assembler::Operand::Register(GPR0),
  460. Assembler::Operand::Register(GPR1));
  461. store_accumulator(GPR0);
  462. m_assembler.jump(end);
  463. });
  464. slow_case.link(m_assembler);
  465. native_call((void*)cxx_add);
  466. store_accumulator(RET);
  467. check_exception();
  468. end.link(m_assembler);
  469. }
  470. static Value cxx_sub(VM& vm, Value lhs, Value rhs)
  471. {
  472. return TRY_OR_SET_EXCEPTION(sub(vm, lhs, rhs));
  473. }
  474. void Compiler::compile_sub(Bytecode::Op::Sub const& op)
  475. {
  476. load_vm_register(ARG1, op.lhs());
  477. load_accumulator(ARG2);
  478. Assembler::Label end {};
  479. Assembler::Label slow_case {};
  480. branch_if_both_int32(ARG1, ARG2, [&] {
  481. // GPR0 = ARG1 + ARG2 (32-bit)
  482. // if (overflow) goto slow_case;
  483. m_assembler.mov(
  484. Assembler::Operand::Register(GPR0),
  485. Assembler::Operand::Register(ARG1));
  486. m_assembler.sub32(
  487. Assembler::Operand::Register(GPR0),
  488. Assembler::Operand::Register(ARG2),
  489. slow_case);
  490. // accumulator = GPR0 | SHIFTED_INT32_TAG;
  491. m_assembler.mov(
  492. Assembler::Operand::Register(GPR1),
  493. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  494. m_assembler.bitwise_or(
  495. Assembler::Operand::Register(GPR0),
  496. Assembler::Operand::Register(GPR1));
  497. store_accumulator(GPR0);
  498. m_assembler.jump(end);
  499. });
  500. slow_case.link(m_assembler);
  501. native_call((void*)cxx_sub);
  502. store_accumulator(RET);
  503. check_exception();
  504. end.link(m_assembler);
  505. }
  506. static Value cxx_mul(VM& vm, Value lhs, Value rhs)
  507. {
  508. return TRY_OR_SET_EXCEPTION(mul(vm, lhs, rhs));
  509. }
  510. void Compiler::compile_mul(Bytecode::Op::Mul const& op)
  511. {
  512. load_vm_register(ARG1, op.lhs());
  513. load_accumulator(ARG2);
  514. Assembler::Label end {};
  515. Assembler::Label slow_case {};
  516. branch_if_both_int32(ARG1, ARG2, [&] {
  517. // GPR0 = ARG1 * ARG2 (32-bit)
  518. // if (overflow) goto slow_case;
  519. m_assembler.mov(
  520. Assembler::Operand::Register(GPR0),
  521. Assembler::Operand::Register(ARG1));
  522. m_assembler.mul32(
  523. Assembler::Operand::Register(GPR0),
  524. Assembler::Operand::Register(ARG2),
  525. slow_case);
  526. // accumulator = GPR0 | SHIFTED_INT32_TAG;
  527. m_assembler.mov(
  528. Assembler::Operand::Register(GPR1),
  529. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  530. m_assembler.bitwise_or(
  531. Assembler::Operand::Register(GPR0),
  532. Assembler::Operand::Register(GPR1));
  533. store_accumulator(GPR0);
  534. m_assembler.jump(end);
  535. });
  536. slow_case.link(m_assembler);
  537. native_call((void*)cxx_mul);
  538. store_accumulator(RET);
  539. check_exception();
  540. end.link(m_assembler);
  541. }
  542. # define DO_COMPILE_COMPARISON_OP(TitleCaseName, snake_case_name, AssemblerCondition) \
  543. static Value cxx_##snake_case_name(VM& vm, Value lhs, Value rhs) \
  544. { \
  545. return TRY_OR_SET_EXCEPTION(snake_case_name(vm, lhs, rhs)); \
  546. } \
  547. \
  548. void Compiler::compile_##snake_case_name(Bytecode::Op::TitleCaseName const& op) \
  549. { \
  550. load_vm_register(ARG1, op.lhs()); \
  551. load_accumulator(ARG2); \
  552. \
  553. Assembler::Label end {}; \
  554. \
  555. branch_if_both_int32(ARG1, ARG2, [&] { \
  556. Assembler::Label true_case {}; \
  557. \
  558. m_assembler.sign_extend_32_to_64_bits(ARG1); \
  559. m_assembler.sign_extend_32_to_64_bits(ARG2); \
  560. \
  561. m_assembler.jump_if( \
  562. Assembler::Operand::Register(ARG1), \
  563. Assembler::Condition::AssemblerCondition, \
  564. Assembler::Operand::Register(ARG2), \
  565. true_case); \
  566. \
  567. m_assembler.mov( \
  568. Assembler::Operand::Register(GPR0), \
  569. Assembler::Operand::Imm(Value(false).encoded())); \
  570. store_accumulator(GPR0); \
  571. m_assembler.jump(end); \
  572. \
  573. true_case.link(m_assembler); \
  574. m_assembler.mov( \
  575. Assembler::Operand::Register(GPR0), \
  576. Assembler::Operand::Imm(Value(true).encoded())); \
  577. store_accumulator(GPR0); \
  578. \
  579. m_assembler.jump(end); \
  580. }); \
  581. \
  582. native_call((void*)cxx_##snake_case_name); \
  583. store_accumulator(RET); \
  584. check_exception(); \
  585. end.link(m_assembler); \
  586. }
  587. JS_ENUMERATE_COMPARISON_OPS(DO_COMPILE_COMPARISON_OP)
  588. # undef DO_COMPILE_COMPARISON_OP
  589. static Value cxx_bitwise_and(VM& vm, Value lhs, Value rhs)
  590. {
  591. return TRY_OR_SET_EXCEPTION(bitwise_and(vm, lhs, rhs));
  592. }
  593. void Compiler::compile_bitwise_and(Bytecode::Op::BitwiseAnd const& op)
  594. {
  595. load_vm_register(ARG1, op.lhs());
  596. load_accumulator(ARG2);
  597. Assembler::Label end {};
  598. branch_if_both_int32(ARG1, ARG2, [&] {
  599. // NOTE: Since both sides are Int32, we know that the upper 32 bits are nothing but the INT32_TAG.
  600. // This means we can get away with just a simple 64-bit bitwise and.
  601. m_assembler.bitwise_and(
  602. Assembler::Operand::Register(ARG1),
  603. Assembler::Operand::Register(ARG2));
  604. store_accumulator(ARG1);
  605. m_assembler.jump(end);
  606. });
  607. native_call((void*)cxx_bitwise_and);
  608. store_accumulator(RET);
  609. check_exception();
  610. end.link(m_assembler);
  611. }
  612. static Value cxx_bitwise_or(VM& vm, Value lhs, Value rhs)
  613. {
  614. return TRY_OR_SET_EXCEPTION(bitwise_or(vm, lhs, rhs));
  615. }
  616. void Compiler::compile_bitwise_or(Bytecode::Op::BitwiseOr const& op)
  617. {
  618. load_vm_register(ARG1, op.lhs());
  619. load_accumulator(ARG2);
  620. Assembler::Label end {};
  621. branch_if_both_int32(ARG1, ARG2, [&] {
  622. // NOTE: Since both sides are Int32, we know that the upper 32 bits are nothing but the INT32_TAG.
  623. // This means we can get away with just a simple 64-bit bitwise or.
  624. m_assembler.bitwise_or(
  625. Assembler::Operand::Register(ARG1),
  626. Assembler::Operand::Register(ARG2));
  627. store_accumulator(ARG1);
  628. m_assembler.jump(end);
  629. });
  630. native_call((void*)cxx_bitwise_or);
  631. store_accumulator(RET);
  632. check_exception();
  633. end.link(m_assembler);
  634. }
  635. static Value cxx_bitwise_xor(VM& vm, Value lhs, Value rhs)
  636. {
  637. return TRY_OR_SET_EXCEPTION(bitwise_xor(vm, lhs, rhs));
  638. }
  639. void Compiler::compile_bitwise_xor(Bytecode::Op::BitwiseXor const& op)
  640. {
  641. load_vm_register(ARG1, op.lhs());
  642. load_accumulator(ARG2);
  643. Assembler::Label end {};
  644. branch_if_both_int32(ARG1, ARG2, [&] {
  645. // ARG1 ^= ARG2 (32-bit)
  646. m_assembler.bitwise_xor32(
  647. Assembler::Operand::Register(ARG1),
  648. Assembler::Operand::Register(ARG2));
  649. // accumulator = ARG1 | SHIFTED_INT32_TAG;
  650. m_assembler.mov(
  651. Assembler::Operand::Register(GPR0),
  652. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  653. m_assembler.bitwise_or(
  654. Assembler::Operand::Register(ARG1),
  655. Assembler::Operand::Register(GPR0));
  656. store_accumulator(ARG1);
  657. m_assembler.jump(end);
  658. });
  659. native_call((void*)cxx_bitwise_xor);
  660. store_accumulator(RET);
  661. check_exception();
  662. end.link(m_assembler);
  663. }
  664. static Value cxx_left_shift(VM& vm, Value lhs, Value rhs)
  665. {
  666. return TRY_OR_SET_EXCEPTION(left_shift(vm, lhs, rhs));
  667. }
  668. void Compiler::compile_left_shift(Bytecode::Op::LeftShift const& op)
  669. {
  670. load_vm_register(ARG1, op.lhs());
  671. load_accumulator(ARG2);
  672. Assembler::Label end {};
  673. branch_if_both_int32(ARG1, ARG2, [&] {
  674. // RCX = ARG2
  675. m_assembler.mov(
  676. Assembler::Operand::Register(Assembler::Reg::RCX),
  677. Assembler::Operand::Register(ARG2));
  678. // ARG1 <<= CL (32-bit)
  679. m_assembler.shift_left32(Assembler::Operand::Register(ARG1), {});
  680. // accumulator = ARG1 | SHIFTED_INT32_TAG;
  681. m_assembler.mov(
  682. Assembler::Operand::Register(GPR0),
  683. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  684. m_assembler.bitwise_or(
  685. Assembler::Operand::Register(ARG1),
  686. Assembler::Operand::Register(GPR0));
  687. store_accumulator(ARG1);
  688. m_assembler.jump(end);
  689. });
  690. native_call((void*)cxx_left_shift);
  691. store_accumulator(RET);
  692. check_exception();
  693. end.link(m_assembler);
  694. }
  695. static Value cxx_right_shift(VM& vm, Value lhs, Value rhs)
  696. {
  697. return TRY_OR_SET_EXCEPTION(right_shift(vm, lhs, rhs));
  698. }
  699. void Compiler::compile_right_shift(Bytecode::Op::RightShift const& op)
  700. {
  701. load_vm_register(ARG1, op.lhs());
  702. load_accumulator(ARG2);
  703. Assembler::Label end {};
  704. branch_if_both_int32(ARG1, ARG2, [&] {
  705. // RCX = ARG2
  706. m_assembler.mov(
  707. Assembler::Operand::Register(Assembler::Reg::RCX),
  708. Assembler::Operand::Register(ARG2));
  709. // ARG1 >>= CL (32-bit)
  710. m_assembler.arithmetic_right_shift32(Assembler::Operand::Register(ARG1), {});
  711. // accumulator = ARG1 | SHIFTED_INT32_TAG;
  712. m_assembler.mov(
  713. Assembler::Operand::Register(GPR0),
  714. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  715. m_assembler.bitwise_or(
  716. Assembler::Operand::Register(ARG1),
  717. Assembler::Operand::Register(GPR0));
  718. store_accumulator(ARG1);
  719. m_assembler.jump(end);
  720. });
  721. native_call((void*)cxx_right_shift);
  722. store_accumulator(RET);
  723. check_exception();
  724. end.link(m_assembler);
  725. }
  726. static Value cxx_unsigned_right_shift(VM& vm, Value lhs, Value rhs)
  727. {
  728. return TRY_OR_SET_EXCEPTION(unsigned_right_shift(vm, lhs, rhs));
  729. }
  730. void Compiler::compile_unsigned_right_shift(Bytecode::Op::UnsignedRightShift const& op)
  731. {
  732. load_vm_register(ARG1, op.lhs());
  733. load_accumulator(ARG2);
  734. Assembler::Label end {};
  735. Assembler::Label slow_case {};
  736. branch_if_both_int32(ARG1, ARG2, [&] {
  737. // GPR0 = ARG1
  738. m_assembler.mov(
  739. Assembler::Operand::Register(GPR0),
  740. Assembler::Operand::Register(ARG1));
  741. // RCX = ARG2
  742. m_assembler.mov(
  743. Assembler::Operand::Register(Assembler::Reg::RCX),
  744. Assembler::Operand::Register(ARG2));
  745. // GPR0 >>>= CL (32-bit)
  746. m_assembler.shift_right32(Assembler::Operand::Register(GPR0), {});
  747. // GPR1 = sign_extended(GPR0)
  748. m_assembler.mov32(
  749. Assembler::Operand::Register(GPR1),
  750. Assembler::Operand::Register(GPR0),
  751. Assembler::Extension::SignExtend);
  752. // if (GPR1 < 0) goto slow_case;
  753. m_assembler.jump_if(
  754. Assembler::Operand::Register(GPR1),
  755. Assembler::Condition::SignedLessThan,
  756. Assembler::Operand::Imm(0),
  757. slow_case);
  758. // accumulator = GPR0 | SHIFTED_INT32_TAG;
  759. m_assembler.mov(
  760. Assembler::Operand::Register(GPR1),
  761. Assembler::Operand::Imm(SHIFTED_INT32_TAG));
  762. m_assembler.bitwise_or(
  763. Assembler::Operand::Register(GPR0),
  764. Assembler::Operand::Register(GPR1));
  765. store_accumulator(GPR0);
  766. m_assembler.jump(end);
  767. });
  768. slow_case.link(m_assembler);
  769. native_call((void*)cxx_unsigned_right_shift);
  770. store_accumulator(RET);
  771. check_exception();
  772. end.link(m_assembler);
  773. }
  774. static ThrowCompletionOr<Value> not_(VM&, Value value)
  775. {
  776. return Value(!value.to_boolean());
  777. }
  778. static ThrowCompletionOr<Value> typeof_(VM& vm, Value value)
  779. {
  780. return PrimitiveString::create(vm, value.typeof());
  781. }
  782. # define DO_COMPILE_COMMON_UNARY_OP(TitleCaseName, snake_case_name) \
  783. static Value cxx_##snake_case_name(VM& vm, Value value) \
  784. { \
  785. return TRY_OR_SET_EXCEPTION(snake_case_name(vm, value)); \
  786. } \
  787. \
  788. void Compiler::compile_##snake_case_name(Bytecode::Op::TitleCaseName const&) \
  789. { \
  790. load_accumulator(ARG1); \
  791. native_call((void*)cxx_##snake_case_name); \
  792. store_accumulator(RET); \
  793. check_exception(); \
  794. }
  795. JS_ENUMERATE_COMMON_UNARY_OPS(DO_COMPILE_COMMON_UNARY_OP)
  796. # undef DO_COMPILE_COMMON_UNARY_OP
  797. void Compiler::compile_return(Bytecode::Op::Return const&)
  798. {
  799. load_accumulator(GPR0);
  800. if (auto const* finalizer = current_block().finalizer(); finalizer) {
  801. store_vm_register(Bytecode::Register::saved_return_value(), GPR0);
  802. m_assembler.jump(label_for(*finalizer));
  803. } else {
  804. store_vm_register(Bytecode::Register::return_value(), GPR0);
  805. jump_to_exit();
  806. }
  807. }
  808. static Value cxx_new_string(VM& vm, DeprecatedString const& string)
  809. {
  810. return PrimitiveString::create(vm, string);
  811. }
  812. void Compiler::compile_new_string(Bytecode::Op::NewString const& op)
  813. {
  814. auto const& string = m_bytecode_executable.string_table->get(op.index());
  815. m_assembler.mov(
  816. Assembler::Operand::Register(ARG1),
  817. Assembler::Operand::Imm(bit_cast<u64>(&string)));
  818. native_call((void*)cxx_new_string);
  819. store_accumulator(RET);
  820. }
  821. void Compiler::compile_new_regexp(Bytecode::Op::NewRegExp const& op)
  822. {
  823. auto const& parsed_regex = m_bytecode_executable.regex_table->get(op.regex_index());
  824. auto const& pattern = m_bytecode_executable.string_table->get(op.source_index());
  825. auto const& flags = m_bytecode_executable.string_table->get(op.flags_index());
  826. m_assembler.mov(
  827. Assembler::Operand::Register(ARG1),
  828. Assembler::Operand::Imm(bit_cast<u64>(&parsed_regex)));
  829. m_assembler.mov(
  830. Assembler::Operand::Register(ARG2),
  831. Assembler::Operand::Imm(bit_cast<u64>(&pattern)));
  832. m_assembler.mov(
  833. Assembler::Operand::Register(ARG3),
  834. Assembler::Operand::Imm(bit_cast<u64>(&flags)));
  835. native_call((void*)Bytecode::new_regexp);
  836. store_accumulator(RET);
  837. }
  838. static Value cxx_new_bigint(VM& vm, Crypto::SignedBigInteger const& bigint)
  839. {
  840. return BigInt::create(vm, bigint);
  841. }
  842. void Compiler::compile_new_bigint(Bytecode::Op::NewBigInt const& op)
  843. {
  844. m_assembler.mov(
  845. Assembler::Operand::Register(ARG1),
  846. Assembler::Operand::Imm(bit_cast<u64>(&op.bigint())));
  847. native_call((void*)cxx_new_bigint);
  848. store_accumulator(RET);
  849. }
  850. static Value cxx_new_object(VM& vm)
  851. {
  852. auto& realm = *vm.current_realm();
  853. return Object::create(realm, realm.intrinsics().object_prototype());
  854. }
  855. void Compiler::compile_new_object(Bytecode::Op::NewObject const&)
  856. {
  857. native_call((void*)cxx_new_object);
  858. store_accumulator(RET);
  859. }
  860. static Value cxx_new_array(VM& vm, size_t element_count, u32 first_register_index)
  861. {
  862. auto& realm = *vm.current_realm();
  863. auto array = MUST(Array::create(realm, 0));
  864. for (size_t i = 0; i < element_count; ++i) {
  865. auto& value = vm.bytecode_interpreter().reg(Bytecode::Register(first_register_index + i));
  866. array->indexed_properties().put(i, value, default_attributes);
  867. }
  868. return array;
  869. }
  870. void Compiler::compile_new_array(Bytecode::Op::NewArray const& op)
  871. {
  872. m_assembler.mov(
  873. Assembler::Operand::Register(ARG1),
  874. Assembler::Operand::Imm(op.element_count()));
  875. m_assembler.mov(
  876. Assembler::Operand::Register(ARG2),
  877. Assembler::Operand::Imm(op.element_count() ? op.start().index() : 0));
  878. native_call((void*)cxx_new_array);
  879. store_accumulator(RET);
  880. }
  881. void Compiler::compile_new_function(Bytecode::Op::NewFunction const& op)
  882. {
  883. m_assembler.mov(
  884. Assembler::Operand::Register(ARG1),
  885. Assembler::Operand::Imm(bit_cast<u64>(&op.function_node())));
  886. m_assembler.mov(
  887. Assembler::Operand::Register(ARG2),
  888. Assembler::Operand::Imm(bit_cast<u64>(&op.lhs_name())));
  889. m_assembler.mov(
  890. Assembler::Operand::Register(ARG3),
  891. Assembler::Operand::Imm(bit_cast<u64>(&op.home_object())));
  892. native_call((void*)Bytecode::new_function);
  893. store_accumulator(RET);
  894. }
  895. static Value cxx_new_class(VM& vm, Value super_class, ClassExpression const& class_expression, Optional<Bytecode::IdentifierTableIndex> const& lhs_name)
  896. {
  897. return TRY_OR_SET_EXCEPTION(Bytecode::new_class(vm, super_class, class_expression, lhs_name));
  898. }
  899. void Compiler::compile_new_class(Bytecode::Op::NewClass const& op)
  900. {
  901. load_accumulator(ARG1);
  902. m_assembler.mov(
  903. Assembler::Operand::Register(ARG2),
  904. Assembler::Operand::Imm(bit_cast<u64>(&op.class_expression())));
  905. m_assembler.mov(
  906. Assembler::Operand::Register(ARG3),
  907. Assembler::Operand::Imm(bit_cast<u64>(&op.lhs_name())));
  908. native_call((void*)cxx_new_class);
  909. store_accumulator(RET);
  910. }
  911. static Value cxx_get_by_id(VM& vm, Value base, DeprecatedFlyString const& property, Bytecode::PropertyLookupCache& cache)
  912. {
  913. return TRY_OR_SET_EXCEPTION(Bytecode::get_by_id(vm, property, base, base, cache));
  914. }
  915. void Compiler::compile_get_by_id(Bytecode::Op::GetById const& op)
  916. {
  917. auto& cache = m_bytecode_executable.property_lookup_caches[op.cache_index()];
  918. Assembler::Label end;
  919. Assembler::Label slow_case;
  920. m_assembler.mov(
  921. Assembler::Operand::Register(ARG5),
  922. Assembler::Operand::Imm(bit_cast<u64>(&cache)));
  923. load_accumulator(ARG1);
  924. branch_if_object(ARG1, [&] {
  925. extract_object_pointer(GPR0, ARG1);
  926. // if (cache.shape != &object->shape()) goto slow_case;
  927. m_assembler.mov(
  928. Assembler::Operand::Register(GPR2),
  929. Assembler::Operand::Mem64BaseAndOffset(GPR0, Object::shape_offset()));
  930. m_assembler.mov(
  931. Assembler::Operand::Register(GPR1),
  932. Assembler::Operand::Mem64BaseAndOffset(ARG5, Bytecode::PropertyLookupCache::shape_offset()));
  933. m_assembler.jump_if(
  934. Assembler::Operand::Register(GPR1),
  935. Assembler::Condition::EqualTo,
  936. Assembler::Operand::Imm(0),
  937. slow_case);
  938. m_assembler.mov(
  939. Assembler::Operand::Register(GPR1),
  940. Assembler::Operand::Mem64BaseAndOffset(GPR1, AK::WeakLink::ptr_offset()));
  941. m_assembler.jump_if(
  942. Assembler::Operand::Register(GPR2),
  943. Assembler::Condition::NotEqualTo,
  944. Assembler::Operand::Register(GPR1),
  945. slow_case);
  946. // (!object->shape().is_unique() || object->shape().unique_shape_serial_number() == cache.unique_shape_serial_number)) {
  947. Assembler::Label fast_case;
  948. // GPR1 = object->shape().is_unique()
  949. m_assembler.mov8(
  950. Assembler::Operand::Register(GPR1),
  951. Assembler::Operand::Mem64BaseAndOffset(GPR2, Shape::is_unique_offset()));
  952. m_assembler.jump_if(
  953. Assembler::Operand::Register(GPR1),
  954. Assembler::Condition::EqualTo,
  955. Assembler::Operand::Imm(0),
  956. fast_case);
  957. // GPR1 = object->shape().unique_shape_serial_number()
  958. m_assembler.mov(
  959. Assembler::Operand::Register(GPR1),
  960. Assembler::Operand::Mem64BaseAndOffset(GPR2, Shape::unique_shape_serial_number_offset()));
  961. // GPR2 = cache.unique_shape_serial_number
  962. m_assembler.mov(
  963. Assembler::Operand::Register(GPR2),
  964. Assembler::Operand::Mem64BaseAndOffset(ARG5, Bytecode::PropertyLookupCache::unique_shape_serial_number_offset()));
  965. // if (GPR1 != GPR2) goto slow_case;
  966. m_assembler.jump_if(
  967. Assembler::Operand::Register(GPR1),
  968. Assembler::Condition::NotEqualTo,
  969. Assembler::Operand::Register(GPR2),
  970. slow_case);
  971. fast_case.link(m_assembler);
  972. // return object->get_direct(*cache.property_offset);
  973. // GPR0 = object
  974. // GPR1 = *cache.property_offset * sizeof(Value)
  975. m_assembler.mov(
  976. Assembler::Operand::Register(GPR1),
  977. Assembler::Operand::Mem64BaseAndOffset(ARG5, Bytecode::PropertyLookupCache::property_offset_offset() + decltype(cache.property_offset)::value_offset()));
  978. m_assembler.mul32(
  979. Assembler::Operand::Register(GPR1),
  980. Assembler::Operand::Imm(sizeof(Value)),
  981. slow_case);
  982. // GPR0 = object->m_storage.outline_buffer
  983. m_assembler.mov(
  984. Assembler::Operand::Register(GPR0),
  985. Assembler::Operand::Mem64BaseAndOffset(GPR0, Object::storage_offset() + Vector<Value>::outline_buffer_offset()));
  986. // GPR0 = &object->m_storage.outline_buffer[*cache.property_offset]
  987. m_assembler.add(
  988. Assembler::Operand::Register(GPR0),
  989. Assembler::Operand::Register(GPR1));
  990. // *GPR0 = value
  991. m_assembler.mov(
  992. Assembler::Operand::Register(GPR1),
  993. Assembler::Operand::Mem64BaseAndOffset(GPR0, 0));
  994. store_accumulator(GPR1);
  995. m_assembler.jump(end);
  996. });
  997. slow_case.link(m_assembler);
  998. m_assembler.mov(
  999. Assembler::Operand::Register(ARG2),
  1000. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1001. m_assembler.mov(
  1002. Assembler::Operand::Register(ARG3),
  1003. Assembler::Operand::Imm(bit_cast<u64>(&cache)));
  1004. native_call((void*)cxx_get_by_id);
  1005. store_accumulator(RET);
  1006. check_exception();
  1007. end.link(m_assembler);
  1008. }
  1009. static Value cxx_get_by_value(VM& vm, Value base, Value property)
  1010. {
  1011. return TRY_OR_SET_EXCEPTION(Bytecode::get_by_value(vm, base, property));
  1012. }
  1013. void Compiler::compile_get_by_value(Bytecode::Op::GetByValue const& op)
  1014. {
  1015. load_vm_register(ARG1, op.base());
  1016. load_accumulator(ARG2);
  1017. Assembler::Label end {};
  1018. Assembler::Label slow_case {};
  1019. branch_if_object(ARG1, [&] {
  1020. branch_if_int32(ARG2, [&] {
  1021. // if (ARG2 < 0) goto slow_case;
  1022. m_assembler.mov(
  1023. Assembler::Operand::Register(GPR0),
  1024. Assembler::Operand::Register(ARG2));
  1025. m_assembler.sign_extend_32_to_64_bits(GPR0);
  1026. m_assembler.jump_if(
  1027. Assembler::Operand::Register(GPR0),
  1028. Assembler::Condition::SignedLessThan,
  1029. Assembler::Operand::Imm(0),
  1030. slow_case);
  1031. // GPR0 = extract_pointer(ARG1)
  1032. extract_object_pointer(GPR0, ARG1);
  1033. // if (object->may_interfere_with_indexed_property_access()) goto slow_case;
  1034. m_assembler.mov8(
  1035. Assembler::Operand::Register(GPR1),
  1036. Assembler::Operand::Mem64BaseAndOffset(GPR0, Object::may_interfere_with_indexed_property_access_offset()));
  1037. m_assembler.jump_if(
  1038. Assembler::Operand::Register(GPR1),
  1039. Assembler::Condition::NotEqualTo,
  1040. Assembler::Operand::Imm(0),
  1041. slow_case);
  1042. // GPR0 = object->indexed_properties().storage()
  1043. m_assembler.mov(
  1044. Assembler::Operand::Register(GPR0),
  1045. Assembler::Operand::Mem64BaseAndOffset(GPR0, Object::indexed_properties_offset() + IndexedProperties::storage_offset()));
  1046. // if (GPR0 == nullptr) goto slow_case;
  1047. m_assembler.jump_if(
  1048. Assembler::Operand::Register(GPR0),
  1049. Assembler::Condition::EqualTo,
  1050. Assembler::Operand::Imm(0),
  1051. slow_case);
  1052. // if (!GPR0->is_simple_storage()) goto slow_case;
  1053. m_assembler.mov8(
  1054. Assembler::Operand::Register(GPR1),
  1055. Assembler::Operand::Mem64BaseAndOffset(GPR0, IndexedPropertyStorage::is_simple_storage_offset()));
  1056. m_assembler.jump_if(
  1057. Assembler::Operand::Register(GPR1),
  1058. Assembler::Condition::EqualTo,
  1059. Assembler::Operand::Imm(0),
  1060. slow_case);
  1061. // GPR2 = extract_int32(ARG2)
  1062. m_assembler.mov32(
  1063. Assembler::Operand::Register(GPR2),
  1064. Assembler::Operand::Register(ARG2));
  1065. // if (GPR2 >= GPR0->array_like_size()) goto slow_case;
  1066. m_assembler.mov(
  1067. Assembler::Operand::Register(GPR1),
  1068. Assembler::Operand::Mem64BaseAndOffset(GPR0, SimpleIndexedPropertyStorage::array_size_offset()));
  1069. m_assembler.jump_if(
  1070. Assembler::Operand::Register(GPR2),
  1071. Assembler::Condition::SignedGreaterThanOrEqualTo,
  1072. Assembler::Operand::Register(GPR1),
  1073. slow_case);
  1074. // GPR0 = GPR0->elements().outline_buffer()
  1075. m_assembler.mov(
  1076. Assembler::Operand::Register(GPR0),
  1077. Assembler::Operand::Mem64BaseAndOffset(GPR0, SimpleIndexedPropertyStorage::elements_offset() + Vector<Value>::outline_buffer_offset()));
  1078. // GPR2 *= sizeof(Value)
  1079. m_assembler.mul32(
  1080. Assembler::Operand::Register(GPR2),
  1081. Assembler::Operand::Imm(sizeof(Value)),
  1082. slow_case);
  1083. // GPR0 = GPR0[GPR2]
  1084. m_assembler.add(
  1085. Assembler::Operand::Register(GPR0),
  1086. Assembler::Operand::Register(GPR2));
  1087. m_assembler.mov(
  1088. Assembler::Operand::Register(GPR0),
  1089. Assembler::Operand::Mem64BaseAndOffset(GPR0, 0));
  1090. // if (GPR0.is_empty()) goto slow_case;
  1091. m_assembler.mov(Assembler::Operand::Register(GPR1), Assembler::Operand::Register(GPR0));
  1092. m_assembler.shift_right(Assembler::Operand::Register(GPR1), Assembler::Operand::Imm(TAG_SHIFT));
  1093. m_assembler.jump_if(
  1094. Assembler::Operand::Register(GPR1),
  1095. Assembler::Condition::EqualTo,
  1096. Assembler::Operand::Imm(EMPTY_TAG),
  1097. slow_case);
  1098. // if (GPR0.is_accessor()) goto slow_case;
  1099. m_assembler.mov(Assembler::Operand::Register(GPR1), Assembler::Operand::Register(GPR0));
  1100. m_assembler.shift_right(Assembler::Operand::Register(GPR1), Assembler::Operand::Imm(TAG_SHIFT));
  1101. m_assembler.jump_if(
  1102. Assembler::Operand::Register(GPR1),
  1103. Assembler::Condition::EqualTo,
  1104. Assembler::Operand::Imm(ACCESSOR_TAG),
  1105. slow_case);
  1106. // accumulator = GPR0;
  1107. store_accumulator(GPR0);
  1108. m_assembler.jump(end);
  1109. });
  1110. });
  1111. slow_case.link(m_assembler);
  1112. native_call((void*)cxx_get_by_value);
  1113. store_accumulator(RET);
  1114. check_exception();
  1115. end.link(m_assembler);
  1116. }
  1117. static Value cxx_get_global(VM& vm, DeprecatedFlyString const& identifier, Bytecode::GlobalVariableCache& cache)
  1118. {
  1119. return TRY_OR_SET_EXCEPTION(Bytecode::get_global(vm.bytecode_interpreter(), identifier, cache));
  1120. }
  1121. void Compiler::compile_get_global(Bytecode::Op::GetGlobal const& op)
  1122. {
  1123. m_assembler.mov(
  1124. Assembler::Operand::Register(ARG1),
  1125. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier()))));
  1126. m_assembler.mov(
  1127. Assembler::Operand::Register(ARG2),
  1128. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.global_variable_caches[op.cache_index()])));
  1129. native_call((void*)cxx_get_global);
  1130. store_accumulator(RET);
  1131. check_exception();
  1132. }
  1133. static Value cxx_get_variable(VM& vm, DeprecatedFlyString const& name, Bytecode::EnvironmentVariableCache& cache)
  1134. {
  1135. return TRY_OR_SET_EXCEPTION(Bytecode::get_variable(vm.bytecode_interpreter(), name, cache));
  1136. }
  1137. void Compiler::compile_get_variable(Bytecode::Op::GetVariable const& op)
  1138. {
  1139. Assembler::Label slow_case;
  1140. // if (!cache.has_value()) goto slow_case;
  1141. m_assembler.mov(
  1142. Assembler::Operand::Register(ARG2),
  1143. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.environment_variable_caches[op.cache_index()])));
  1144. m_assembler.mov8(
  1145. Assembler::Operand::Register(GPR0),
  1146. Assembler::Operand::Mem64BaseAndOffset(ARG2, Bytecode::EnvironmentVariableCache::has_value_offset()));
  1147. m_assembler.jump_if(
  1148. Assembler::Operand::Register(GPR0),
  1149. Assembler::Condition::EqualTo,
  1150. Assembler::Operand::Imm(0),
  1151. slow_case);
  1152. // auto environment = vm.running_execution_context().lexical_environment;
  1153. // GPR1 = current lexical environment
  1154. m_assembler.mov(
  1155. Assembler::Operand::Register(GPR1),
  1156. Assembler::Operand::Mem64BaseAndOffset(RUNNING_EXECUTION_CONTEXT_BASE, ExecutionContext::lexical_environment_offset()));
  1157. // for (size_t i = 0; i < cache->hops; ++i)
  1158. // environment = environment->outer_environment();
  1159. // GPR0 = hops
  1160. m_assembler.mov32(
  1161. Assembler::Operand::Register(GPR0),
  1162. Assembler::Operand::Mem64BaseAndOffset(ARG2, Bytecode::EnvironmentVariableCache::value_offset() + EnvironmentCoordinate::hops_offset()));
  1163. {
  1164. // while (GPR0--)
  1165. // GPR1 = GPR1->outer_environment()
  1166. Assembler::Label loop_start;
  1167. Assembler::Label loop_end;
  1168. loop_start.link(m_assembler);
  1169. m_assembler.jump_if(
  1170. Assembler::Operand::Register(GPR0),
  1171. Assembler::Condition::EqualTo,
  1172. Assembler::Operand::Imm(0),
  1173. loop_end);
  1174. m_assembler.sub(
  1175. Assembler::Operand::Register(GPR0),
  1176. Assembler::Operand::Imm(1));
  1177. m_assembler.mov(
  1178. Assembler::Operand::Register(GPR1),
  1179. Assembler::Operand::Mem64BaseAndOffset(GPR1, Environment::outer_environment_offset()));
  1180. m_assembler.jump(loop_start);
  1181. loop_end.link(m_assembler);
  1182. }
  1183. // GPR1 now points to the environment holding our binding.
  1184. // if (environment->is_permanently_screwed_by_eval()) goto slow_case;
  1185. m_assembler.mov8(
  1186. Assembler::Operand::Register(GPR0),
  1187. Assembler::Operand::Mem64BaseAndOffset(GPR1, Environment::is_permanently_screwed_by_eval_offset()));
  1188. m_assembler.jump_if(
  1189. Assembler::Operand::Register(GPR0),
  1190. Assembler::Condition::NotEqualTo,
  1191. Assembler::Operand::Imm(0),
  1192. slow_case);
  1193. // GPR1 = environment->m_bindings.outline_buffer()
  1194. m_assembler.mov(
  1195. Assembler::Operand::Register(GPR1),
  1196. Assembler::Operand::Mem64BaseAndOffset(GPR1, DeclarativeEnvironment::bindings_offset() + Vector<DeclarativeEnvironment::Binding>::outline_buffer_offset()));
  1197. // GPR0 = index
  1198. m_assembler.mov32(
  1199. Assembler::Operand::Register(GPR0),
  1200. Assembler::Operand::Mem64BaseAndOffset(ARG2, Bytecode::EnvironmentVariableCache::value_offset() + EnvironmentCoordinate::index_offset()));
  1201. // GPR0 *= sizeof(DeclarativeEnvironment::Binding)
  1202. m_assembler.mul32(
  1203. Assembler::Operand::Register(GPR0),
  1204. Assembler::Operand::Imm(sizeof(DeclarativeEnvironment::Binding)),
  1205. slow_case);
  1206. // GPR1 = &binding
  1207. m_assembler.add(
  1208. Assembler::Operand::Register(GPR1),
  1209. Assembler::Operand::Register(GPR0));
  1210. // if (!binding.initialized) goto slow_case;
  1211. m_assembler.mov(
  1212. Assembler ::Operand::Register(GPR0),
  1213. Assembler::Operand::Mem64BaseAndOffset(GPR1, DeclarativeEnvironment::Binding::initialized_offset()));
  1214. m_assembler.bitwise_and(
  1215. Assembler::Operand::Register(GPR0),
  1216. Assembler::Operand::Imm(0xff));
  1217. m_assembler.jump_if(
  1218. Assembler::Operand::Register(GPR0),
  1219. Assembler::Condition::EqualTo,
  1220. Assembler::Operand::Imm(0),
  1221. slow_case);
  1222. // accumulator = binding.value;
  1223. m_assembler.mov(
  1224. Assembler::Operand::Register(GPR0),
  1225. Assembler::Operand::Mem64BaseAndOffset(GPR1, DeclarativeEnvironment::Binding::value_offset()));
  1226. store_accumulator(GPR0);
  1227. Assembler::Label end;
  1228. m_assembler.jump(end);
  1229. // Slow case: Uncached access. Call C++ helper.
  1230. slow_case.link(m_assembler);
  1231. m_assembler.mov(
  1232. Assembler::Operand::Register(ARG1),
  1233. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier()))));
  1234. native_call((void*)cxx_get_variable);
  1235. store_accumulator(RET);
  1236. check_exception();
  1237. end.link(m_assembler);
  1238. }
  1239. static Value cxx_get_callee_and_this_from_environment(VM& vm, DeprecatedFlyString const& name, u32 cache_index, Bytecode::Register callee_reg, Bytecode::Register this_reg)
  1240. {
  1241. auto& bytecode_interpreter = vm.bytecode_interpreter();
  1242. auto callee_and_this = TRY_OR_SET_EXCEPTION(Bytecode::get_callee_and_this_from_environment(
  1243. bytecode_interpreter,
  1244. name,
  1245. cache_index));
  1246. bytecode_interpreter.reg(callee_reg) = callee_and_this.callee;
  1247. bytecode_interpreter.reg(this_reg) = callee_and_this.this_value;
  1248. return {};
  1249. }
  1250. void Compiler::compile_get_callee_and_this_from_environment(Bytecode::Op::GetCalleeAndThisFromEnvironment const& op)
  1251. {
  1252. m_assembler.mov(
  1253. Assembler::Operand::Register(ARG1),
  1254. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier()))));
  1255. m_assembler.mov(
  1256. Assembler::Operand::Register(ARG2),
  1257. Assembler::Operand::Imm(op.cache_index()));
  1258. m_assembler.mov(
  1259. Assembler::Operand::Register(ARG3),
  1260. Assembler::Operand::Imm(op.callee().index()));
  1261. m_assembler.mov(
  1262. Assembler::Operand::Register(ARG4),
  1263. Assembler::Operand::Imm(op.this_().index()));
  1264. native_call((void*)cxx_get_callee_and_this_from_environment);
  1265. check_exception();
  1266. }
  1267. static Value cxx_to_numeric(VM& vm, Value value)
  1268. {
  1269. return TRY_OR_SET_EXCEPTION(value.to_numeric(vm));
  1270. }
  1271. void Compiler::compile_to_numeric(Bytecode::Op::ToNumeric const&)
  1272. {
  1273. Assembler::Label fast_case {};
  1274. load_accumulator(ARG1);
  1275. jump_if_int32(ARG1, fast_case);
  1276. native_call((void*)cxx_to_numeric);
  1277. store_accumulator(RET);
  1278. check_exception();
  1279. fast_case.link(m_assembler);
  1280. }
  1281. static Value cxx_resolve_this_binding(VM& vm)
  1282. {
  1283. auto this_value = TRY_OR_SET_EXCEPTION(vm.resolve_this_binding());
  1284. vm.bytecode_interpreter().reg(Bytecode::Register::this_value()) = this_value;
  1285. return this_value;
  1286. }
  1287. void Compiler::compile_resolve_this_binding(Bytecode::Op::ResolveThisBinding const&)
  1288. {
  1289. // OPTIMIZATION: We cache the `this` value in a special VM register.
  1290. // So first we check if the cache is non-empty, and if so,
  1291. // we can avoid calling out to C++ at all. :^)
  1292. load_vm_register(GPR0, Bytecode::Register::this_value());
  1293. m_assembler.mov(
  1294. Assembler::Operand::Register(GPR1),
  1295. Assembler::Operand::Imm(Value().encoded()));
  1296. Assembler::Label slow_case {};
  1297. m_assembler.jump_if(
  1298. Assembler::Operand::Register(GPR0),
  1299. Assembler::Condition::EqualTo,
  1300. Assembler::Operand::Register(GPR1),
  1301. slow_case);
  1302. // Fast case: We have a cached `this` value!
  1303. store_accumulator(GPR0);
  1304. auto end = m_assembler.jump();
  1305. slow_case.link(m_assembler);
  1306. native_call((void*)cxx_resolve_this_binding);
  1307. store_accumulator(RET);
  1308. check_exception();
  1309. end.link(m_assembler);
  1310. }
  1311. static Value cxx_put_by_id(VM& vm, Value base, DeprecatedFlyString const& property, Value value, Bytecode::Op::PropertyKind kind, Bytecode::PropertyLookupCache& cache)
  1312. {
  1313. TRY_OR_SET_EXCEPTION(Bytecode::put_by_property_key(vm, base, base, value, property, kind, &cache));
  1314. return value;
  1315. }
  1316. void Compiler::extract_object_pointer(Assembler::Reg dst_object, Assembler::Reg src_value)
  1317. {
  1318. // This is basically Value::as_object() where src_value is the Value.
  1319. m_assembler.mov(
  1320. Assembler::Operand::Register(dst_object),
  1321. Assembler::Operand::Register(src_value));
  1322. m_assembler.shift_left(
  1323. Assembler::Operand::Register(dst_object),
  1324. Assembler::Operand::Imm(16));
  1325. m_assembler.arithmetic_right_shift(
  1326. Assembler::Operand::Register(dst_object),
  1327. Assembler::Operand::Imm(16));
  1328. }
  1329. void Compiler::compile_put_by_id(Bytecode::Op::PutById const& op)
  1330. {
  1331. auto& cache = m_bytecode_executable.property_lookup_caches[op.cache_index()];
  1332. load_vm_register(ARG1, op.base());
  1333. m_assembler.mov(
  1334. Assembler::Operand::Register(ARG5),
  1335. Assembler::Operand::Imm(bit_cast<u64>(&cache)));
  1336. Assembler::Label end;
  1337. Assembler::Label slow_case;
  1338. if (op.kind() == Bytecode::Op::PropertyKind::KeyValue) {
  1339. branch_if_object(ARG1, [&] {
  1340. extract_object_pointer(GPR0, ARG1);
  1341. // if (cache.shape != &object->shape()) goto slow_case;
  1342. m_assembler.mov(
  1343. Assembler::Operand::Register(GPR2),
  1344. Assembler::Operand::Mem64BaseAndOffset(GPR0, Object::shape_offset()));
  1345. m_assembler.mov(
  1346. Assembler::Operand::Register(GPR1),
  1347. Assembler::Operand::Mem64BaseAndOffset(ARG5, Bytecode::PropertyLookupCache::shape_offset()));
  1348. m_assembler.jump_if(
  1349. Assembler::Operand::Register(GPR1),
  1350. Assembler::Condition::EqualTo,
  1351. Assembler::Operand::Imm(0),
  1352. slow_case);
  1353. m_assembler.mov(
  1354. Assembler::Operand::Register(GPR1),
  1355. Assembler::Operand::Mem64BaseAndOffset(GPR1, AK::WeakLink::ptr_offset()));
  1356. m_assembler.jump_if(
  1357. Assembler::Operand::Register(GPR2),
  1358. Assembler::Condition::NotEqualTo,
  1359. Assembler::Operand::Register(GPR1),
  1360. slow_case);
  1361. // (!object->shape().is_unique() || object->shape().unique_shape_serial_number() == cache.unique_shape_serial_number)) {
  1362. Assembler::Label fast_case;
  1363. // GPR1 = object->shape().is_unique()
  1364. m_assembler.mov8(
  1365. Assembler::Operand::Register(GPR1),
  1366. Assembler::Operand::Mem64BaseAndOffset(GPR2, Shape::is_unique_offset()));
  1367. m_assembler.jump_if(
  1368. Assembler::Operand::Register(GPR1),
  1369. Assembler::Condition::EqualTo,
  1370. Assembler::Operand::Imm(0),
  1371. fast_case);
  1372. // GPR1 = object->shape().unique_shape_serial_number()
  1373. m_assembler.mov(
  1374. Assembler::Operand::Register(GPR1),
  1375. Assembler::Operand::Mem64BaseAndOffset(GPR2, Shape::unique_shape_serial_number_offset()));
  1376. // GPR2 = cache.unique_shape_serial_number
  1377. m_assembler.mov(
  1378. Assembler::Operand::Register(GPR2),
  1379. Assembler::Operand::Mem64BaseAndOffset(ARG5, Bytecode::PropertyLookupCache::unique_shape_serial_number_offset()));
  1380. // if (GPR1 != GPR2) goto slow_case;
  1381. m_assembler.jump_if(
  1382. Assembler::Operand::Register(GPR1),
  1383. Assembler::Condition::NotEqualTo,
  1384. Assembler::Operand::Register(GPR2),
  1385. slow_case);
  1386. fast_case.link(m_assembler);
  1387. // object->put_direct(*cache.property_offset, value);
  1388. // GPR0 = object
  1389. // GPR1 = *cache.property_offset * sizeof(Value)
  1390. m_assembler.mov(
  1391. Assembler::Operand::Register(GPR1),
  1392. Assembler::Operand::Mem64BaseAndOffset(ARG5, Bytecode::PropertyLookupCache::property_offset_offset() + decltype(cache.property_offset)::value_offset()));
  1393. m_assembler.mul32(
  1394. Assembler::Operand::Register(GPR1),
  1395. Assembler::Operand::Imm(sizeof(Value)),
  1396. slow_case);
  1397. // GPR0 = object->m_storage.outline_buffer
  1398. m_assembler.mov(
  1399. Assembler::Operand::Register(GPR0),
  1400. Assembler::Operand::Mem64BaseAndOffset(GPR0, Object::storage_offset() + Vector<Value>::outline_buffer_offset()));
  1401. // GPR0 = &object->m_storage.outline_buffer[*cache.property_offset]
  1402. m_assembler.add(
  1403. Assembler::Operand::Register(GPR0),
  1404. Assembler::Operand::Register(GPR1));
  1405. // *GPR0 = value
  1406. load_accumulator(GPR1);
  1407. m_assembler.mov(
  1408. Assembler::Operand::Mem64BaseAndOffset(GPR0, 0),
  1409. Assembler::Operand::Register(GPR1));
  1410. m_assembler.jump(end);
  1411. });
  1412. }
  1413. slow_case.link(m_assembler);
  1414. m_assembler.mov(
  1415. Assembler::Operand::Register(ARG2),
  1416. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1417. load_accumulator(ARG3);
  1418. m_assembler.mov(
  1419. Assembler::Operand::Register(ARG4),
  1420. Assembler::Operand::Imm(to_underlying(op.kind())));
  1421. native_call((void*)cxx_put_by_id);
  1422. store_accumulator(RET);
  1423. check_exception();
  1424. end.link(m_assembler);
  1425. }
  1426. static Value cxx_put_by_value(VM& vm, Value base, Value property, Value value, Bytecode::Op::PropertyKind kind)
  1427. {
  1428. TRY_OR_SET_EXCEPTION(Bytecode::put_by_value(vm, base, property, value, kind));
  1429. return value;
  1430. }
  1431. void Compiler::compile_put_by_value(Bytecode::Op::PutByValue const& op)
  1432. {
  1433. load_vm_register(ARG1, op.base());
  1434. load_vm_register(ARG2, op.property());
  1435. load_accumulator(ARG3);
  1436. m_assembler.mov(
  1437. Assembler::Operand::Register(ARG4),
  1438. Assembler::Operand::Imm(to_underlying(op.kind())));
  1439. native_call((void*)cxx_put_by_value);
  1440. store_accumulator(RET);
  1441. check_exception();
  1442. }
  1443. static Value cxx_call(VM& vm, Value callee, u32 first_argument_index, u32 argument_count, Value this_value, Bytecode::Op::CallType call_type, Optional<Bytecode::StringTableIndex> const& expression_string)
  1444. {
  1445. TRY_OR_SET_EXCEPTION(throw_if_needed_for_call(vm.bytecode_interpreter(), callee, call_type, expression_string));
  1446. MarkedVector<Value> argument_values(vm.heap());
  1447. argument_values.ensure_capacity(argument_count);
  1448. for (u32 i = 0; i < argument_count; ++i) {
  1449. argument_values.unchecked_append(vm.bytecode_interpreter().reg(Bytecode::Register { first_argument_index + i }));
  1450. }
  1451. return TRY_OR_SET_EXCEPTION(perform_call(vm.bytecode_interpreter(), this_value, call_type, callee, move(argument_values)));
  1452. }
  1453. void Compiler::compile_call(Bytecode::Op::Call const& op)
  1454. {
  1455. load_vm_register(ARG1, op.callee());
  1456. m_assembler.mov(
  1457. Assembler::Operand::Register(ARG2),
  1458. Assembler::Operand::Imm(op.first_argument().index()));
  1459. m_assembler.mov(
  1460. Assembler::Operand::Register(ARG3),
  1461. Assembler::Operand::Imm(op.argument_count()));
  1462. load_vm_register(ARG4, op.this_value());
  1463. m_assembler.mov(
  1464. Assembler::Operand::Register(ARG5),
  1465. Assembler::Operand::Imm(to_underlying(op.call_type())));
  1466. m_assembler.mov(
  1467. Assembler::Operand::Register(GPR0),
  1468. Assembler::Operand::Imm(bit_cast<u64>(&op.expression_string())));
  1469. native_call((void*)cxx_call, { Assembler::Operand::Register(GPR0) });
  1470. store_accumulator(RET);
  1471. check_exception();
  1472. }
  1473. static Value cxx_call_with_argument_array(VM& vm, Value arguments, Value callee, Value this_value, Bytecode::Op::CallType call_type, Optional<Bytecode::StringTableIndex> const& expression_string)
  1474. {
  1475. TRY_OR_SET_EXCEPTION(throw_if_needed_for_call(vm.bytecode_interpreter(), callee, call_type, expression_string));
  1476. auto argument_values = Bytecode::argument_list_evaluation(vm, arguments);
  1477. return TRY_OR_SET_EXCEPTION(perform_call(vm.bytecode_interpreter(), this_value, call_type, callee, move(argument_values)));
  1478. }
  1479. void Compiler::compile_call_with_argument_array(Bytecode::Op::CallWithArgumentArray const& op)
  1480. {
  1481. load_accumulator(ARG1);
  1482. load_vm_register(ARG2, op.callee());
  1483. load_vm_register(ARG3, op.this_value());
  1484. m_assembler.mov(
  1485. Assembler::Operand::Register(ARG4),
  1486. Assembler::Operand::Imm(to_underlying(op.call_type())));
  1487. m_assembler.mov(
  1488. Assembler::Operand::Register(ARG5),
  1489. Assembler::Operand::Imm(bit_cast<u64>(&op.expression_string())));
  1490. native_call((void*)cxx_call_with_argument_array);
  1491. store_accumulator(RET);
  1492. check_exception();
  1493. }
  1494. static Value cxx_typeof_variable(VM& vm, DeprecatedFlyString const& identifier)
  1495. {
  1496. return TRY_OR_SET_EXCEPTION(Bytecode::typeof_variable(vm, identifier));
  1497. }
  1498. void Compiler::compile_typeof_variable(Bytecode::Op::TypeofVariable const& op)
  1499. {
  1500. m_assembler.mov(
  1501. Assembler::Operand::Register(ARG1),
  1502. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier().value()))));
  1503. native_call((void*)cxx_typeof_variable);
  1504. store_accumulator(RET);
  1505. check_exception();
  1506. }
  1507. static Value cxx_create_variable(
  1508. VM& vm,
  1509. DeprecatedFlyString const& name,
  1510. Bytecode::Op::EnvironmentMode mode,
  1511. bool is_global,
  1512. bool is_immutable,
  1513. bool is_strict)
  1514. {
  1515. TRY_OR_SET_EXCEPTION(Bytecode::create_variable(vm, name, mode, is_global, is_immutable, is_strict));
  1516. return {};
  1517. }
  1518. void Compiler::compile_create_variable(Bytecode::Op::CreateVariable const& op)
  1519. {
  1520. m_assembler.mov(
  1521. Assembler::Operand::Register(ARG1),
  1522. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier().value()))));
  1523. m_assembler.mov(
  1524. Assembler::Operand::Register(ARG2),
  1525. Assembler::Operand::Imm(to_underlying(op.mode())));
  1526. m_assembler.mov(
  1527. Assembler::Operand::Register(ARG3),
  1528. Assembler::Operand::Imm(static_cast<u64>(op.is_global())));
  1529. m_assembler.mov(
  1530. Assembler::Operand::Register(ARG4),
  1531. Assembler::Operand::Imm(static_cast<u64>(op.is_immutable())));
  1532. m_assembler.mov(
  1533. Assembler::Operand::Register(ARG5),
  1534. Assembler::Operand::Imm(static_cast<u64>(op.is_strict())));
  1535. native_call((void*)cxx_create_variable);
  1536. check_exception();
  1537. }
  1538. static Value cxx_set_variable(
  1539. VM& vm,
  1540. DeprecatedFlyString const& identifier,
  1541. Value value,
  1542. Bytecode::Op::EnvironmentMode environment_mode,
  1543. Bytecode::Op::SetVariable::InitializationMode initialization_mode)
  1544. {
  1545. TRY_OR_SET_EXCEPTION(Bytecode::set_variable(vm, identifier, value, environment_mode, initialization_mode));
  1546. return {};
  1547. }
  1548. void Compiler::compile_set_variable(Bytecode::Op::SetVariable const& op)
  1549. {
  1550. m_assembler.mov(
  1551. Assembler::Operand::Register(ARG1),
  1552. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier().value()))));
  1553. load_accumulator(ARG2);
  1554. m_assembler.mov(
  1555. Assembler::Operand::Register(ARG3),
  1556. Assembler::Operand::Imm(to_underlying(op.mode())));
  1557. m_assembler.mov(
  1558. Assembler::Operand::Register(ARG4),
  1559. Assembler::Operand::Imm(to_underlying(op.initialization_mode())));
  1560. native_call((void*)cxx_set_variable);
  1561. check_exception();
  1562. }
  1563. void Compiler::compile_continue_pending_unwind(Bytecode::Op::ContinuePendingUnwind const& op)
  1564. {
  1565. // re-throw the exception if we reached the end of the finally block and there was no catch block to handle it
  1566. load_vm_register(GPR0, Bytecode::Register::saved_exception());
  1567. store_vm_register(Bytecode::Register::exception(), GPR0);
  1568. m_assembler.mov(Assembler::Operand::Register(GPR1), Assembler::Operand::Imm(Value().encoded()));
  1569. store_vm_register(Bytecode::Register::saved_exception(), GPR1);
  1570. check_exception();
  1571. // if (saved_return_value.is_empty()) goto resume_block;
  1572. load_vm_register(GPR0, Bytecode::Register::saved_return_value());
  1573. m_assembler.jump_if(
  1574. Assembler::Operand::Register(GPR0),
  1575. Assembler::Condition::EqualTo,
  1576. Assembler::Operand::Register(GPR1),
  1577. label_for(op.resume_target().block()));
  1578. // finish the pending return from the try block
  1579. store_vm_register(Bytecode::Register::return_value(), GPR0);
  1580. jump_to_exit();
  1581. }
  1582. static void cxx_create_lexical_environment(VM& vm)
  1583. {
  1584. auto make_and_swap_envs = [&](auto& old_environment) {
  1585. GCPtr<Environment> environment = new_declarative_environment(*old_environment).ptr();
  1586. swap(old_environment, environment);
  1587. return environment;
  1588. };
  1589. vm.bytecode_interpreter().saved_lexical_environment_stack().append(make_and_swap_envs(vm.running_execution_context().lexical_environment));
  1590. }
  1591. void Compiler::compile_create_lexical_environment(Bytecode::Op::CreateLexicalEnvironment const&)
  1592. {
  1593. native_call((void*)cxx_create_lexical_environment);
  1594. }
  1595. static void cxx_leave_lexical_environment(VM& vm)
  1596. {
  1597. vm.running_execution_context().lexical_environment = vm.bytecode_interpreter().saved_lexical_environment_stack().take_last();
  1598. }
  1599. void Compiler::compile_leave_lexical_environment(Bytecode::Op::LeaveLexicalEnvironment const&)
  1600. {
  1601. native_call((void*)cxx_leave_lexical_environment);
  1602. }
  1603. static Value cxx_concat_string(VM& vm, Value lhs, Value rhs)
  1604. {
  1605. auto string = TRY_OR_SET_EXCEPTION(rhs.to_primitive_string(vm));
  1606. return PrimitiveString::create(vm, lhs.as_string(), string);
  1607. }
  1608. void Compiler::compile_concat_string(Bytecode::Op::ConcatString const& op)
  1609. {
  1610. load_vm_register(ARG1, op.lhs());
  1611. load_accumulator(ARG2);
  1612. native_call((void*)cxx_concat_string);
  1613. store_vm_register(op.lhs(), RET);
  1614. check_exception();
  1615. }
  1616. static void cxx_block_declaration_instantiation(VM& vm, ScopeNode const& scope_node)
  1617. {
  1618. auto old_environment = vm.running_execution_context().lexical_environment;
  1619. vm.bytecode_interpreter().saved_lexical_environment_stack().append(old_environment);
  1620. vm.running_execution_context().lexical_environment = new_declarative_environment(*old_environment);
  1621. scope_node.block_declaration_instantiation(vm, vm.running_execution_context().lexical_environment);
  1622. }
  1623. void Compiler::compile_block_declaration_instantiation(Bytecode::Op::BlockDeclarationInstantiation const& op)
  1624. {
  1625. m_assembler.mov(
  1626. Assembler::Operand::Register(ARG1),
  1627. Assembler::Operand::Imm(bit_cast<u64>(&op.scope_node())));
  1628. native_call((void*)cxx_block_declaration_instantiation);
  1629. }
  1630. static Value cxx_super_call_with_argument_array(VM& vm, Value argument_array, bool is_synthetic)
  1631. {
  1632. return TRY_OR_SET_EXCEPTION(Bytecode::super_call_with_argument_array(vm, argument_array, is_synthetic));
  1633. }
  1634. void Compiler::compile_super_call_with_argument_array(Bytecode::Op::SuperCallWithArgumentArray const& op)
  1635. {
  1636. load_accumulator(ARG1);
  1637. m_assembler.mov(
  1638. Assembler::Operand::Register(ARG2),
  1639. Assembler::Operand::Imm(static_cast<u64>(op.is_synthetic())));
  1640. native_call((void*)cxx_super_call_with_argument_array);
  1641. store_accumulator(RET);
  1642. check_exception();
  1643. }
  1644. static Value cxx_get_iterator(VM& vm, Value value, IteratorHint hint)
  1645. {
  1646. auto iterator = TRY_OR_SET_EXCEPTION(get_iterator(vm, value, hint));
  1647. return Bytecode::iterator_to_object(vm, iterator);
  1648. }
  1649. void Compiler::compile_get_iterator(Bytecode::Op::GetIterator const& op)
  1650. {
  1651. load_accumulator(ARG1);
  1652. m_assembler.mov(
  1653. Assembler::Operand::Register(ARG2),
  1654. Assembler::Operand::Imm(to_underlying(op.hint())));
  1655. native_call((void*)cxx_get_iterator);
  1656. store_accumulator(RET);
  1657. check_exception();
  1658. }
  1659. static Value cxx_iterator_next(VM& vm, Value iterator)
  1660. {
  1661. auto iterator_object = TRY_OR_SET_EXCEPTION(iterator.to_object(vm));
  1662. auto iterator_record = Bytecode::object_to_iterator(vm, iterator_object);
  1663. return TRY_OR_SET_EXCEPTION(iterator_next(vm, iterator_record));
  1664. }
  1665. void Compiler::compile_iterator_next(Bytecode::Op::IteratorNext const&)
  1666. {
  1667. load_accumulator(ARG1);
  1668. native_call((void*)cxx_iterator_next);
  1669. store_accumulator(RET);
  1670. check_exception();
  1671. }
  1672. static Value cxx_iterator_result_done(VM& vm, Value iterator)
  1673. {
  1674. auto iterator_result = TRY_OR_SET_EXCEPTION(iterator.to_object(vm));
  1675. return Value(TRY_OR_SET_EXCEPTION(iterator_complete(vm, iterator_result)));
  1676. }
  1677. void Compiler::compile_iterator_result_done(Bytecode::Op::IteratorResultDone const&)
  1678. {
  1679. load_accumulator(ARG1);
  1680. native_call((void*)cxx_iterator_result_done);
  1681. store_accumulator(RET);
  1682. check_exception();
  1683. }
  1684. static Value cxx_throw_if_not_object(VM& vm, Value value)
  1685. {
  1686. if (!value.is_object())
  1687. TRY_OR_SET_EXCEPTION(vm.throw_completion<TypeError>(ErrorType::NotAnObject, value.to_string_without_side_effects()));
  1688. return {};
  1689. }
  1690. void Compiler::compile_throw_if_not_object(Bytecode::Op::ThrowIfNotObject const&)
  1691. {
  1692. load_accumulator(ARG1);
  1693. native_call((void*)cxx_throw_if_not_object);
  1694. check_exception();
  1695. }
  1696. static Value cxx_throw_if_nullish(VM& vm, Value value)
  1697. {
  1698. if (value.is_nullish())
  1699. TRY_OR_SET_EXCEPTION(vm.throw_completion<TypeError>(ErrorType::NotObjectCoercible, value.to_string_without_side_effects()));
  1700. return {};
  1701. }
  1702. void Compiler::compile_throw_if_nullish(Bytecode::Op::ThrowIfNullish const&)
  1703. {
  1704. load_accumulator(ARG1);
  1705. native_call((void*)cxx_throw_if_nullish);
  1706. check_exception();
  1707. }
  1708. static Value cxx_iterator_result_value(VM& vm, Value iterator)
  1709. {
  1710. auto iterator_result = TRY_OR_SET_EXCEPTION(iterator.to_object(vm));
  1711. return TRY_OR_SET_EXCEPTION(iterator_value(vm, iterator_result));
  1712. }
  1713. void Compiler::compile_iterator_result_value(Bytecode::Op::IteratorResultValue const&)
  1714. {
  1715. load_accumulator(ARG1);
  1716. native_call((void*)cxx_iterator_result_value);
  1717. store_accumulator(RET);
  1718. check_exception();
  1719. }
  1720. static Value cxx_iterator_close(VM& vm, Value iterator, Completion::Type completion_type, Optional<Value> const& completion_value)
  1721. {
  1722. auto iterator_object = TRY_OR_SET_EXCEPTION(iterator.to_object(vm));
  1723. auto iterator_record = Bytecode::object_to_iterator(vm, iterator_object);
  1724. // FIXME: Return the value of the resulting completion. (Note that m_completion_value can be empty!)
  1725. TRY_OR_SET_EXCEPTION(iterator_close(vm, iterator_record, Completion { completion_type, completion_value, {} }));
  1726. return {};
  1727. }
  1728. void Compiler::compile_iterator_close(Bytecode::Op::IteratorClose const& op)
  1729. {
  1730. load_accumulator(ARG1);
  1731. m_assembler.mov(
  1732. Assembler::Operand::Register(ARG2),
  1733. Assembler::Operand::Imm(to_underlying(op.completion_type())));
  1734. m_assembler.mov(
  1735. Assembler::Operand::Register(ARG3),
  1736. Assembler::Operand::Imm(bit_cast<u64>(&op.completion_value())));
  1737. native_call((void*)cxx_iterator_close);
  1738. check_exception();
  1739. }
  1740. static Value iterator_to_array(VM& vm, Value iterator)
  1741. {
  1742. return TRY_OR_SET_EXCEPTION(Bytecode::iterator_to_array(vm, iterator));
  1743. }
  1744. void Compiler::compile_iterator_to_array(Bytecode::Op::IteratorToArray const&)
  1745. {
  1746. load_accumulator(ARG1);
  1747. native_call((void*)iterator_to_array);
  1748. store_accumulator(RET);
  1749. check_exception();
  1750. }
  1751. static Value cxx_append(VM& vm, Value lhs, Value rhs, bool is_spread)
  1752. {
  1753. TRY_OR_SET_EXCEPTION(Bytecode::append(vm, lhs, rhs, is_spread));
  1754. return {};
  1755. }
  1756. void Compiler::compile_append(Bytecode::Op::Append const& op)
  1757. {
  1758. load_vm_register(ARG1, op.lhs());
  1759. load_accumulator(ARG2);
  1760. m_assembler.mov(
  1761. Assembler::Operand::Register(ARG3),
  1762. Assembler::Operand::Imm(static_cast<u64>(op.is_spread())));
  1763. native_call((void*)cxx_append);
  1764. check_exception();
  1765. }
  1766. static Value cxx_delete_by_id(VM& vm, Value base, Bytecode::IdentifierTableIndex property)
  1767. {
  1768. return TRY_OR_SET_EXCEPTION(Bytecode::delete_by_id(vm.bytecode_interpreter(), base, property));
  1769. }
  1770. void Compiler::compile_delete_by_id(Bytecode::Op::DeleteById const& op)
  1771. {
  1772. load_accumulator(ARG1);
  1773. m_assembler.mov(
  1774. Assembler::Operand::Register(ARG2),
  1775. Assembler::Operand::Imm(op.property().value()));
  1776. native_call((void*)cxx_delete_by_id);
  1777. store_accumulator(RET);
  1778. check_exception();
  1779. }
  1780. static Value cxx_delete_by_value(VM& vm, Value base_value, Value property_key_value)
  1781. {
  1782. return TRY_OR_SET_EXCEPTION(Bytecode::delete_by_value(vm.bytecode_interpreter(), base_value, property_key_value));
  1783. }
  1784. void Compiler::compile_delete_by_value(Bytecode::Op::DeleteByValue const& op)
  1785. {
  1786. load_vm_register(ARG1, op.base());
  1787. load_accumulator(ARG2);
  1788. native_call((void*)cxx_delete_by_value);
  1789. store_accumulator(RET);
  1790. check_exception();
  1791. }
  1792. static Value cxx_delete_by_value_with_this(VM& vm, Value base_value, Value property_key_value, Value this_value)
  1793. {
  1794. return TRY_OR_SET_EXCEPTION(Bytecode::delete_by_value_with_this(vm.bytecode_interpreter(), base_value, property_key_value, this_value));
  1795. }
  1796. void Compiler::compile_delete_by_value_with_this(Bytecode::Op::DeleteByValueWithThis const& op)
  1797. {
  1798. load_vm_register(ARG1, op.base());
  1799. load_accumulator(ARG2);
  1800. load_vm_register(ARG3, op.this_value());
  1801. native_call((void*)cxx_delete_by_value_with_this);
  1802. store_accumulator(RET);
  1803. check_exception();
  1804. }
  1805. static Value cxx_get_object_property_iterator(VM& vm, Value object)
  1806. {
  1807. return TRY_OR_SET_EXCEPTION(Bytecode::get_object_property_iterator(vm, object));
  1808. }
  1809. void Compiler::compile_get_object_property_iterator(Bytecode::Op::GetObjectPropertyIterator const&)
  1810. {
  1811. load_accumulator(ARG1);
  1812. native_call((void*)cxx_get_object_property_iterator);
  1813. store_accumulator(RET);
  1814. check_exception();
  1815. }
  1816. static Value cxx_get_private_by_id(VM& vm, Value base_value, DeprecatedFlyString& name)
  1817. {
  1818. auto private_reference = make_private_reference(vm, base_value, name);
  1819. return TRY_OR_SET_EXCEPTION(private_reference.get_value(vm));
  1820. }
  1821. void Compiler::compile_get_private_by_id(Bytecode::Op::GetPrivateById const& op)
  1822. {
  1823. load_accumulator(ARG1);
  1824. m_assembler.mov(
  1825. Assembler::Operand::Register(ARG2),
  1826. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1827. native_call((void*)cxx_get_private_by_id);
  1828. store_accumulator(RET);
  1829. check_exception();
  1830. }
  1831. static Value cxx_resolve_super_base(VM& vm)
  1832. {
  1833. // 1. Let env be GetThisEnvironment().
  1834. auto& env = verify_cast<FunctionEnvironment>(*get_this_environment(vm));
  1835. // 2. Assert: env.HasSuperBinding() is true.
  1836. VERIFY(env.has_super_binding());
  1837. // 3. Let baseValue be ? env.GetSuperBase().
  1838. return TRY_OR_SET_EXCEPTION(env.get_super_base());
  1839. }
  1840. void Compiler::compile_resolve_super_base(Bytecode::Op::ResolveSuperBase const&)
  1841. {
  1842. native_call((void*)cxx_resolve_super_base);
  1843. store_accumulator(RET);
  1844. check_exception();
  1845. }
  1846. static Value cxx_get_by_id_with_this(VM& vm, DeprecatedFlyString const& property, Value base_value, Value this_value, Bytecode::PropertyLookupCache& cache)
  1847. {
  1848. return TRY_OR_SET_EXCEPTION(Bytecode::get_by_id(vm, property, base_value, this_value, cache));
  1849. }
  1850. void Compiler::compile_get_by_id_with_this(Bytecode::Op::GetByIdWithThis const& op)
  1851. {
  1852. m_assembler.mov(
  1853. Assembler::Operand::Register(ARG1),
  1854. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1855. load_accumulator(ARG2);
  1856. load_vm_register(ARG3, op.this_value());
  1857. m_assembler.mov(
  1858. Assembler::Operand::Register(ARG4),
  1859. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.property_lookup_caches[op.cache_index()])));
  1860. native_call((void*)cxx_get_by_id_with_this);
  1861. store_accumulator(RET);
  1862. check_exception();
  1863. }
  1864. static Value cxx_get_by_value_with_this(VM& vm, Value property_key_value, Value base, Value this_value)
  1865. {
  1866. auto object = TRY_OR_SET_EXCEPTION(base.to_object(vm));
  1867. auto property_key = TRY_OR_SET_EXCEPTION(property_key_value.to_property_key(vm));
  1868. return TRY_OR_SET_EXCEPTION(object->internal_get(property_key, this_value));
  1869. }
  1870. void Compiler::compile_get_by_value_with_this(Bytecode::Op::GetByValueWithThis const& op)
  1871. {
  1872. load_accumulator(ARG1);
  1873. load_vm_register(ARG2, op.base());
  1874. load_vm_register(ARG3, op.this_value());
  1875. native_call((void*)cxx_get_by_value_with_this);
  1876. store_accumulator(RET);
  1877. check_exception();
  1878. }
  1879. static Value cxx_delete_by_id_with_this(VM& vm, Value base_value, DeprecatedFlyString const& identifier, Value this_value)
  1880. {
  1881. auto reference = Reference { base_value, identifier, this_value, vm.in_strict_mode() };
  1882. return Value(TRY_OR_SET_EXCEPTION(reference.delete_(vm)));
  1883. }
  1884. void Compiler::compile_delete_by_id_with_this(Bytecode::Op::DeleteByIdWithThis const& op)
  1885. {
  1886. load_accumulator(ARG1);
  1887. m_assembler.mov(
  1888. Assembler::Operand::Register(ARG2),
  1889. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1890. load_vm_register(ARG3, op.this_value());
  1891. native_call((void*)cxx_delete_by_id_with_this);
  1892. store_accumulator(RET);
  1893. }
  1894. static Value cxx_put_by_id_with_this(VM& vm, Value base, Value value, DeprecatedFlyString const& name, Value this_value, Bytecode::Op::PropertyKind kind, Bytecode::PropertyLookupCache& cache)
  1895. {
  1896. TRY_OR_SET_EXCEPTION(Bytecode::put_by_property_key(vm, base, this_value, value, name, kind, &cache));
  1897. return {};
  1898. }
  1899. void Compiler::compile_put_by_id_with_this(Bytecode::Op::PutByIdWithThis const& op)
  1900. {
  1901. load_vm_register(ARG1, op.base());
  1902. load_accumulator(ARG2);
  1903. m_assembler.mov(
  1904. Assembler::Operand::Register(ARG3),
  1905. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1906. load_vm_register(ARG4, op.this_value());
  1907. m_assembler.mov(
  1908. Assembler::Operand::Register(ARG5),
  1909. Assembler::Operand::Imm(to_underlying(op.kind())));
  1910. m_assembler.mov(
  1911. Assembler::Operand::Register(GPR0),
  1912. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.property_lookup_caches[op.cache_index()])));
  1913. native_call((void*)cxx_put_by_id_with_this, { Assembler::Operand::Register(GPR0) });
  1914. check_exception();
  1915. }
  1916. static Value cxx_put_private_by_id(VM& vm, Value base, Value value, DeprecatedFlyString const& name)
  1917. {
  1918. auto object = TRY_OR_SET_EXCEPTION(base.to_object(vm));
  1919. auto private_reference = make_private_reference(vm, object, name);
  1920. TRY_OR_SET_EXCEPTION(private_reference.put_value(vm, value));
  1921. return value;
  1922. }
  1923. void Compiler::compile_put_private_by_id(Bytecode::Op::PutPrivateById const& op)
  1924. {
  1925. load_vm_register(ARG1, op.base());
  1926. load_accumulator(ARG2);
  1927. m_assembler.mov(
  1928. Assembler::Operand::Register(ARG3),
  1929. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1930. native_call((void*)cxx_put_private_by_id);
  1931. store_accumulator(RET);
  1932. check_exception();
  1933. }
  1934. static Value cxx_import_call(VM& vm, Value specifier, Value options)
  1935. {
  1936. return TRY_OR_SET_EXCEPTION(perform_import_call(vm, specifier, options));
  1937. }
  1938. void Compiler::compile_import_call(Bytecode::Op::ImportCall const& op)
  1939. {
  1940. load_vm_register(ARG1, op.specifier());
  1941. load_vm_register(ARG2, op.options());
  1942. native_call((void*)cxx_import_call);
  1943. store_accumulator(RET);
  1944. check_exception();
  1945. }
  1946. static Value cxx_get_import_meta(VM& vm)
  1947. {
  1948. return vm.get_import_meta();
  1949. }
  1950. void Compiler::compile_get_import_meta(Bytecode::Op::GetImportMeta const&)
  1951. {
  1952. native_call((void*)cxx_get_import_meta);
  1953. store_accumulator(RET);
  1954. }
  1955. static Value cxx_delete_variable(VM& vm, DeprecatedFlyString const& identifier)
  1956. {
  1957. auto reference = TRY_OR_SET_EXCEPTION(vm.resolve_binding(identifier));
  1958. return Value(TRY_OR_SET_EXCEPTION(reference.delete_(vm)));
  1959. }
  1960. void Compiler::compile_delete_variable(Bytecode::Op::DeleteVariable const& op)
  1961. {
  1962. m_assembler.mov(
  1963. Assembler::Operand::Register(ARG1),
  1964. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.identifier().value()))));
  1965. native_call((void*)cxx_delete_variable);
  1966. store_accumulator(RET);
  1967. check_exception();
  1968. }
  1969. static Value cxx_get_method(VM& vm, Value value, DeprecatedFlyString const& identifier)
  1970. {
  1971. auto method = TRY_OR_SET_EXCEPTION(value.get_method(vm, identifier));
  1972. return method ?: js_undefined();
  1973. }
  1974. void Compiler::compile_get_method(Bytecode::Op::GetMethod const& op)
  1975. {
  1976. load_accumulator(ARG1);
  1977. m_assembler.mov(
  1978. Assembler::Operand::Register(ARG2),
  1979. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  1980. native_call((void*)cxx_get_method);
  1981. store_accumulator(RET);
  1982. check_exception();
  1983. }
  1984. static Value cxx_get_new_target(VM& vm)
  1985. {
  1986. return vm.get_new_target();
  1987. }
  1988. void Compiler::compile_get_new_target(Bytecode::Op::GetNewTarget const&)
  1989. {
  1990. native_call((void*)cxx_get_new_target);
  1991. store_accumulator(RET);
  1992. }
  1993. static Value cxx_has_private_id(VM& vm, Value object, DeprecatedFlyString const& identifier)
  1994. {
  1995. if (!object.is_object())
  1996. TRY_OR_SET_EXCEPTION(vm.throw_completion<TypeError>(ErrorType::InOperatorWithObject));
  1997. auto private_environment = vm.running_execution_context().private_environment;
  1998. VERIFY(private_environment);
  1999. auto private_name = private_environment->resolve_private_identifier(identifier);
  2000. return Value(object.as_object().private_element_find(private_name) != nullptr);
  2001. }
  2002. void Compiler::compile_has_private_id(Bytecode::Op::HasPrivateId const& op)
  2003. {
  2004. load_accumulator(ARG1);
  2005. m_assembler.mov(
  2006. Assembler::Operand::Register(ARG2),
  2007. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_identifier(op.property()))));
  2008. native_call((void*)cxx_has_private_id);
  2009. store_accumulator(RET);
  2010. check_exception();
  2011. }
  2012. # define COMPILE_NEW_BUILTIN_ERROR_OP(NewErrorName, new_error_name, ErrorName) \
  2013. static Value cxx_##new_error_name(VM& vm, DeprecatedString const& error_string) \
  2014. { \
  2015. return ErrorName::create(*vm.current_realm(), error_string); \
  2016. } \
  2017. \
  2018. void Compiler::compile_##new_error_name(Bytecode::Op::NewErrorName const& op) \
  2019. { \
  2020. m_assembler.mov( \
  2021. Assembler::Operand::Register(ARG1), \
  2022. Assembler::Operand::Imm(bit_cast<u64>(&m_bytecode_executable.get_string(op.error_string())))); \
  2023. native_call((void*)cxx_##new_error_name); \
  2024. store_accumulator(RET); \
  2025. }
  2026. JS_ENUMERATE_NEW_BUILTIN_ERROR_BYTECODE_OPS(COMPILE_NEW_BUILTIN_ERROR_OP)
  2027. # undef COMPILE_NEW_BUILTIN_ERROR_OP
  2028. static Value cxx_put_by_value_with_this(VM& vm, Value base, Value value, Value name, Value this_value, Bytecode::Op::PropertyKind kind)
  2029. {
  2030. auto property_key = kind != Bytecode::Op::PropertyKind::Spread ? TRY_OR_SET_EXCEPTION(name.to_property_key(vm)) : PropertyKey {};
  2031. TRY_OR_SET_EXCEPTION(Bytecode::put_by_property_key(vm, base, this_value, value, property_key, kind));
  2032. return value;
  2033. }
  2034. void Compiler::compile_put_by_value_with_this(Bytecode::Op::PutByValueWithThis const& op)
  2035. {
  2036. load_vm_register(ARG1, op.base());
  2037. load_accumulator(ARG2);
  2038. if (op.kind() != Bytecode::Op::PropertyKind::Spread) {
  2039. load_vm_register(ARG3, op.property());
  2040. } else {
  2041. m_assembler.mov(
  2042. Assembler::Operand::Register(ARG3),
  2043. Assembler::Operand::Imm(Value().encoded()));
  2044. }
  2045. load_vm_register(ARG4, op.this_value());
  2046. m_assembler.mov(
  2047. Assembler::Operand::Register(ARG5),
  2048. Assembler::Operand::Imm(to_underlying(op.kind())));
  2049. native_call((void*)cxx_put_by_value_with_this);
  2050. store_accumulator(RET);
  2051. check_exception();
  2052. }
  2053. static Value cxx_copy_object_excluding_properties(VM& vm, Value from_object, u64 excluded_names_count, Value* excluded_names)
  2054. {
  2055. auto& realm = *vm.current_realm();
  2056. auto to_object = Object::create(realm, realm.intrinsics().object_prototype());
  2057. HashTable<PropertyKey> excluded_names_table;
  2058. for (size_t i = 0; i < excluded_names_count; ++i) {
  2059. excluded_names_table.set(TRY_OR_SET_EXCEPTION(excluded_names[i].to_property_key(vm)));
  2060. }
  2061. TRY_OR_SET_EXCEPTION(to_object->copy_data_properties(vm, from_object, excluded_names_table));
  2062. return to_object;
  2063. }
  2064. void Compiler::compile_copy_object_excluding_properties(Bytecode::Op::CopyObjectExcludingProperties const& op)
  2065. {
  2066. load_vm_register(ARG1, op.from_object());
  2067. m_assembler.mov(
  2068. Assembler::Operand::Register(ARG2),
  2069. Assembler::Operand::Imm(op.excluded_names_count()));
  2070. // Build `Value arg3[op.excluded_names_count()] {...}` on the stack.
  2071. auto stack_space = align_up_to(op.excluded_names_count() * sizeof(Value), 16);
  2072. m_assembler.sub(Assembler::Operand::Register(STACK_POINTER), Assembler::Operand::Imm(stack_space));
  2073. m_assembler.mov(Assembler::Operand::Register(ARG3), Assembler::Operand::Register(STACK_POINTER));
  2074. for (size_t i = 0; i < op.excluded_names_count(); ++i) {
  2075. load_vm_register(GPR0, op.excluded_names()[i]);
  2076. m_assembler.mov(Assembler::Operand::Mem64BaseAndOffset(ARG3, i * sizeof(Value)), Assembler::Operand::Register(GPR0));
  2077. }
  2078. native_call((void*)cxx_copy_object_excluding_properties);
  2079. // Restore the stack pointer / discard array.
  2080. m_assembler.add(Assembler::Operand::Register(STACK_POINTER), Assembler::Operand::Imm(stack_space));
  2081. store_accumulator(RET);
  2082. check_exception();
  2083. }
  2084. static Value cxx_async_iterator_close(VM& vm, Value iterator, Completion::Type completion_type, Optional<Value> const& completion_value)
  2085. {
  2086. auto iterator_object = TRY_OR_SET_EXCEPTION(iterator.to_object(vm));
  2087. auto iterator_record = Bytecode::object_to_iterator(vm, iterator_object);
  2088. // FIXME: Return the value of the resulting completion. (Note that completion_value can be empty!)
  2089. TRY_OR_SET_EXCEPTION(async_iterator_close(vm, iterator_record, Completion { completion_type, completion_value, {} }));
  2090. return {};
  2091. }
  2092. void Compiler::compile_async_iterator_close(Bytecode::Op::AsyncIteratorClose const& op)
  2093. {
  2094. load_accumulator(ARG1);
  2095. m_assembler.mov(
  2096. Assembler::Operand::Register(ARG2),
  2097. Assembler::Operand::Imm(to_underlying(op.completion_type())));
  2098. m_assembler.mov(
  2099. Assembler::Operand::Register(ARG3),
  2100. Assembler::Operand::Imm(bit_cast<u64>(&op.completion_value())));
  2101. native_call((void*)cxx_async_iterator_close);
  2102. check_exception();
  2103. }
  2104. static Value cxx_continuation(VM& vm, Value value, Value continuation, Value is_await)
  2105. {
  2106. auto object = Object::create(*vm.current_realm(), nullptr);
  2107. object->define_direct_property("result", value.value_or(js_undefined()), JS::default_attributes);
  2108. object->define_direct_property("continuation", continuation, JS::default_attributes);
  2109. object->define_direct_property("isAwait", is_await, JS::default_attributes);
  2110. return object;
  2111. }
  2112. void Compiler::compile_continuation(Optional<Bytecode::Label> continuation, bool is_await)
  2113. {
  2114. load_accumulator(ARG1);
  2115. if (continuation.has_value()) {
  2116. // FIXME: If we get a pointer, which is not accurately representable as a double
  2117. // will cause this to explode
  2118. auto continuation_value = Value(static_cast<double>(bit_cast<u64>(&continuation->block())));
  2119. m_assembler.mov(
  2120. Assembler::Operand::Register(ARG2),
  2121. Assembler::Operand::Imm(continuation_value.encoded()));
  2122. } else {
  2123. m_assembler.mov(
  2124. Assembler::Operand::Register(ARG2),
  2125. Assembler::Operand::Imm(Value(0).encoded()));
  2126. }
  2127. m_assembler.mov(
  2128. Assembler::Operand::Register(ARG3),
  2129. Assembler::Operand::Imm(Value(is_await).encoded()));
  2130. native_call((void*)cxx_continuation);
  2131. store_vm_register(Bytecode::Register::return_value(), RET);
  2132. // FIXME: This should run the finalizer if it is a return
  2133. jump_to_exit();
  2134. }
  2135. void Compiler::compile_yield(Bytecode::Op::Yield const& op)
  2136. {
  2137. compile_continuation(op.continuation(), false);
  2138. }
  2139. void Compiler::compile_await(Bytecode::Op::Await const& op)
  2140. {
  2141. compile_continuation(op.continuation(), true);
  2142. }
  2143. void Compiler::jump_to_exit()
  2144. {
  2145. m_assembler.jump(m_exit_label);
  2146. }
  2147. void Compiler::native_call(void* function_address, Vector<Assembler::Operand> const& stack_arguments)
  2148. {
  2149. // NOTE: We don't preserve caller-saved registers when making a native call.
  2150. // This means that they may have changed after we return from the call.
  2151. m_assembler.native_call(bit_cast<u64>(function_address), { Assembler::Operand::Register(ARG0) }, stack_arguments);
  2152. }
  2153. OwnPtr<NativeExecutable> Compiler::compile(Bytecode::Executable& bytecode_executable)
  2154. {
  2155. if (!getenv("LIBJS_JIT"))
  2156. return nullptr;
  2157. Compiler compiler { bytecode_executable };
  2158. Vector<BytecodeMapping> mapping;
  2159. mapping.append({
  2160. .native_offset = compiler.m_output.size(),
  2161. .block_index = BytecodeMapping::EXECUTABLE,
  2162. .bytecode_offset = 0,
  2163. });
  2164. compiler.m_assembler.enter();
  2165. compiler.m_assembler.mov(
  2166. Assembler::Operand::Register(REGISTER_ARRAY_BASE),
  2167. Assembler::Operand::Register(ARG1));
  2168. compiler.m_assembler.mov(
  2169. Assembler::Operand::Register(LOCALS_ARRAY_BASE),
  2170. Assembler::Operand::Register(ARG2));
  2171. compiler.m_assembler.mov(
  2172. Assembler::Operand::Register(RUNNING_EXECUTION_CONTEXT_BASE),
  2173. Assembler::Operand::Register(ARG4));
  2174. compiler.reload_cached_accumulator();
  2175. Assembler::Label normal_entry {};
  2176. compiler.m_assembler.jump_if(
  2177. Assembler::Operand::Register(ARG3),
  2178. Assembler::Condition::EqualTo,
  2179. Assembler::Operand::Imm(0),
  2180. normal_entry);
  2181. compiler.m_assembler.jump(Assembler::Operand::Register(ARG3));
  2182. normal_entry.link(compiler.m_assembler);
  2183. for (size_t block_index = 0; block_index < bytecode_executable.basic_blocks.size(); block_index++) {
  2184. auto& block = bytecode_executable.basic_blocks[block_index];
  2185. compiler.block_data_for(*block).start_offset = compiler.m_output.size();
  2186. compiler.set_current_block(*block);
  2187. auto it = Bytecode::InstructionStreamIterator(block->instruction_stream());
  2188. if (it.at_end()) {
  2189. mapping.append({
  2190. .native_offset = compiler.m_output.size(),
  2191. .block_index = block_index,
  2192. .bytecode_offset = 0,
  2193. });
  2194. }
  2195. while (!it.at_end()) {
  2196. auto const& op = *it;
  2197. mapping.append({
  2198. .native_offset = compiler.m_output.size(),
  2199. .block_index = block_index,
  2200. .bytecode_offset = it.offset(),
  2201. });
  2202. switch (op.type()) {
  2203. # define CASE_BYTECODE_OP(OpTitleCase, op_snake_case, ...) \
  2204. case Bytecode::Instruction::Type::OpTitleCase: \
  2205. compiler.compile_##op_snake_case(static_cast<Bytecode::Op::OpTitleCase const&>(op)); \
  2206. break;
  2207. JS_ENUMERATE_IMPLEMENTED_JIT_OPS(CASE_BYTECODE_OP)
  2208. # undef CASE_BYTECODE_OP
  2209. default:
  2210. if constexpr (LOG_JIT_FAILURE) {
  2211. dbgln("\033[31;1mJIT compilation failed\033[0m: {}", bytecode_executable.name);
  2212. dbgln("Unsupported bytecode op: {}", op.to_deprecated_string(bytecode_executable));
  2213. }
  2214. return nullptr;
  2215. }
  2216. ++it;
  2217. }
  2218. if (!block->is_terminated())
  2219. compiler.jump_to_exit();
  2220. }
  2221. mapping.append({
  2222. .native_offset = compiler.m_output.size(),
  2223. .block_index = BytecodeMapping::EXECUTABLE,
  2224. .bytecode_offset = 1,
  2225. });
  2226. compiler.m_exit_label.link(compiler.m_assembler);
  2227. compiler.flush_cached_accumulator();
  2228. compiler.m_assembler.exit();
  2229. auto* executable_memory = mmap(nullptr, compiler.m_output.size(), PROT_READ | PROT_WRITE, MAP_ANONYMOUS | MAP_PRIVATE, 0, 0);
  2230. if (executable_memory == MAP_FAILED) {
  2231. dbgln("mmap: {}", strerror(errno));
  2232. return nullptr;
  2233. }
  2234. for (auto& block : bytecode_executable.basic_blocks) {
  2235. auto& block_data = compiler.block_data_for(*block);
  2236. block_data.label.link_to(compiler.m_assembler, block_data.start_offset);
  2237. }
  2238. if constexpr (DUMP_JIT_MACHINE_CODE_TO_STDOUT) {
  2239. (void)write(STDOUT_FILENO, compiler.m_output.data(), compiler.m_output.size());
  2240. }
  2241. memcpy(executable_memory, compiler.m_output.data(), compiler.m_output.size());
  2242. if (mprotect(executable_memory, compiler.m_output.size(), PROT_READ | PROT_EXEC) < 0) {
  2243. dbgln("mprotect: {}", strerror(errno));
  2244. return nullptr;
  2245. }
  2246. if constexpr (LOG_JIT_SUCCESS) {
  2247. dbgln("\033[32;1mJIT compilation succeeded!\033[0m {}", bytecode_executable.name);
  2248. }
  2249. auto executable = make<NativeExecutable>(executable_memory, compiler.m_output.size(), mapping);
  2250. if constexpr (DUMP_JIT_DISASSEMBLY)
  2251. executable->dump_disassembly(bytecode_executable);
  2252. return executable;
  2253. }
  2254. }
  2255. #endif