1 // Copyright 2012 the V8 project authors. All rights reserved. 2 // Use of this source code is governed by a BSD-style license that can be 3 // found in the LICENSE file. 4 5 #ifndef V8_AST_SCOPES_H_ 6 #define V8_AST_SCOPES_H_ 7 8 #include "src/ast/ast.h" 9 #include "src/base/hashmap.h" 10 #include "src/pending-compilation-error-handler.h" 11 #include "src/zone.h" 12 13 namespace v8 { 14 namespace internal { 15 16 class ParseInfo; 17 18 // A hash map to support fast variable declaration and lookup. 19 class VariableMap: public ZoneHashMap { 20 public: 21 explicit VariableMap(Zone* zone); 22 23 virtual ~VariableMap(); 24 25 Variable* Declare(Scope* scope, const AstRawString* name, VariableMode mode, 26 Variable::Kind kind, InitializationFlag initialization_flag, 27 MaybeAssignedFlag maybe_assigned_flag = kNotAssigned); 28 29 Variable* Lookup(const AstRawString* name); 30 zone()31 Zone* zone() const { return zone_; } 32 33 private: 34 Zone* zone_; 35 }; 36 37 38 // The dynamic scope part holds hash maps for the variables that will 39 // be looked up dynamically from within eval and with scopes. The objects 40 // are allocated on-demand from Scope::NonLocal to avoid wasting memory 41 // and setup time for scopes that don't need them. 42 class DynamicScopePart : public ZoneObject { 43 public: DynamicScopePart(Zone * zone)44 explicit DynamicScopePart(Zone* zone) { 45 for (int i = 0; i < 3; i++) 46 maps_[i] = new(zone->New(sizeof(VariableMap))) VariableMap(zone); 47 } 48 GetMap(VariableMode mode)49 VariableMap* GetMap(VariableMode mode) { 50 int index = mode - DYNAMIC; 51 DCHECK(index >= 0 && index < 3); 52 return maps_[index]; 53 } 54 55 private: 56 VariableMap *maps_[3]; 57 }; 58 59 60 // Sloppy block-scoped function declarations to var-bind 61 class SloppyBlockFunctionMap : public ZoneHashMap { 62 public: 63 explicit SloppyBlockFunctionMap(Zone* zone); 64 65 virtual ~SloppyBlockFunctionMap(); 66 67 void Declare(const AstRawString* name, 68 SloppyBlockFunctionStatement* statement); 69 70 typedef ZoneVector<SloppyBlockFunctionStatement*> Vector; 71 72 private: 73 Zone* zone_; 74 }; 75 76 77 // Global invariants after AST construction: Each reference (i.e. identifier) 78 // to a JavaScript variable (including global properties) is represented by a 79 // VariableProxy node. Immediately after AST construction and before variable 80 // allocation, most VariableProxy nodes are "unresolved", i.e. not bound to a 81 // corresponding variable (though some are bound during parse time). Variable 82 // allocation binds each unresolved VariableProxy to one Variable and assigns 83 // a location. Note that many VariableProxy nodes may refer to the same Java- 84 // Script variable. 85 86 class Scope: public ZoneObject { 87 public: 88 // --------------------------------------------------------------------------- 89 // Construction 90 91 Scope(Zone* zone, Scope* outer_scope, ScopeType scope_type, 92 AstValueFactory* value_factory, 93 FunctionKind function_kind = kNormalFunction); 94 95 // Compute top scope and allocate variables. For lazy compilation the top 96 // scope only contains the single lazily compiled function, so this 97 // doesn't re-allocate variables repeatedly. 98 static bool Analyze(ParseInfo* info); 99 100 static Scope* DeserializeScopeChain(Isolate* isolate, Zone* zone, 101 Context* context, Scope* script_scope); 102 103 // The scope name is only used for printing/debugging. SetScopeName(const AstRawString * scope_name)104 void SetScopeName(const AstRawString* scope_name) { 105 scope_name_ = scope_name; 106 } 107 108 void Initialize(); 109 110 // Checks if the block scope is redundant, i.e. it does not contain any 111 // block scoped declarations. In that case it is removed from the scope 112 // tree and its children are reparented. 113 Scope* FinalizeBlockScope(); 114 115 // Inserts outer_scope into this scope's scope chain (and removes this 116 // from the current outer_scope_'s inner_scopes_). 117 // Assumes outer_scope_ is non-null. 118 void ReplaceOuterScope(Scope* outer_scope); 119 120 // Propagates any eagerly-gathered scope usage flags (such as calls_eval()) 121 // to the passed-in scope. 122 void PropagateUsageFlagsToScope(Scope* other); 123 zone()124 Zone* zone() const { return zone_; } 125 126 // --------------------------------------------------------------------------- 127 // Declarations 128 129 // Lookup a variable in this scope. Returns the variable or NULL if not found. 130 Variable* LookupLocal(const AstRawString* name); 131 132 // This lookup corresponds to a lookup in the "intermediate" scope sitting 133 // between this scope and the outer scope. (ECMA-262, 3rd., requires that 134 // the name of named function literal is kept in an intermediate scope 135 // in between this scope and the next outer scope.) 136 Variable* LookupFunctionVar(const AstRawString* name, 137 AstNodeFactory* factory); 138 139 // Lookup a variable in this scope or outer scopes. 140 // Returns the variable or NULL if not found. 141 Variable* Lookup(const AstRawString* name); 142 143 // Declare the function variable for a function literal. This variable 144 // is in an intermediate scope between this function scope and the the 145 // outer scope. Only possible for function scopes; at most one variable. DeclareFunctionVar(VariableDeclaration * declaration)146 void DeclareFunctionVar(VariableDeclaration* declaration) { 147 DCHECK(is_function_scope()); 148 // Handle implicit declaration of the function name in named function 149 // expressions before other declarations. 150 decls_.InsertAt(0, declaration, zone()); 151 function_ = declaration; 152 } 153 154 // Declare a parameter in this scope. When there are duplicated 155 // parameters the rightmost one 'wins'. However, the implementation 156 // expects all parameters to be declared and from left to right. 157 Variable* DeclareParameter( 158 const AstRawString* name, VariableMode mode, 159 bool is_optional, bool is_rest, bool* is_duplicate); 160 161 // Declare a local variable in this scope. If the variable has been 162 // declared before, the previously declared variable is returned. 163 Variable* DeclareLocal(const AstRawString* name, VariableMode mode, 164 InitializationFlag init_flag, Variable::Kind kind, 165 MaybeAssignedFlag maybe_assigned_flag = kNotAssigned); 166 167 // Declare an implicit global variable in this scope which must be a 168 // script scope. The variable was introduced (possibly from an inner 169 // scope) by a reference to an unresolved variable with no intervening 170 // with statements or eval calls. 171 Variable* DeclareDynamicGlobal(const AstRawString* name); 172 173 // Create a new unresolved variable. 174 VariableProxy* NewUnresolved(AstNodeFactory* factory, 175 const AstRawString* name, 176 Variable::Kind kind = Variable::NORMAL, 177 int start_position = RelocInfo::kNoPosition, 178 int end_position = RelocInfo::kNoPosition) { 179 // Note that we must not share the unresolved variables with 180 // the same name because they may be removed selectively via 181 // RemoveUnresolved(). 182 DCHECK(!already_resolved()); 183 VariableProxy* proxy = 184 factory->NewVariableProxy(name, kind, start_position, end_position); 185 unresolved_.Add(proxy, zone_); 186 return proxy; 187 } 188 AddUnresolved(VariableProxy * proxy)189 void AddUnresolved(VariableProxy* proxy) { 190 DCHECK(!already_resolved()); 191 DCHECK(!proxy->is_resolved()); 192 unresolved_.Add(proxy, zone_); 193 } 194 195 // Remove a unresolved variable. During parsing, an unresolved variable 196 // may have been added optimistically, but then only the variable name 197 // was used (typically for labels). If the variable was not declared, the 198 // addition introduced a new unresolved variable which may end up being 199 // allocated globally as a "ghost" variable. RemoveUnresolved removes 200 // such a variable again if it was added; otherwise this is a no-op. 201 bool RemoveUnresolved(VariableProxy* var); 202 203 // Creates a new temporary variable in this scope's TemporaryScope. The 204 // name is only used for printing and cannot be used to find the variable. 205 // In particular, the only way to get hold of the temporary is by keeping the 206 // Variable* around. The name should not clash with a legitimate variable 207 // names. 208 Variable* NewTemporary(const AstRawString* name); 209 210 // Remove a temporary variable. This is for adjusting the scope of 211 // temporaries used when desugaring parameter initializers. 212 // Returns the index at which it was found in this scope, or -1 if 213 // it was not found. 214 int RemoveTemporary(Variable* var); 215 216 // Adds a temporary variable in this scope's TemporaryScope. This is for 217 // adjusting the scope of temporaries used when desugaring parameter 218 // initializers. AddTemporary(Variable * var)219 void AddTemporary(Variable* var) { 220 // Temporaries are only placed in ClosureScopes. 221 DCHECK_EQ(ClosureScope(), this); 222 temps_.Add(var, zone()); 223 } 224 225 // Adds the specific declaration node to the list of declarations in 226 // this scope. The declarations are processed as part of entering 227 // the scope; see codegen.cc:ProcessDeclarations. 228 void AddDeclaration(Declaration* declaration); 229 230 // --------------------------------------------------------------------------- 231 // Illegal redeclaration support. 232 233 // Check if the scope has conflicting var 234 // declarations, i.e. a var declaration that has been hoisted from a nested 235 // scope over a let binding of the same name. 236 Declaration* CheckConflictingVarDeclarations(); 237 238 // --------------------------------------------------------------------------- 239 // Scope-specific info. 240 241 // Inform the scope that the corresponding code contains an eval call. RecordEvalCall()242 void RecordEvalCall() { scope_calls_eval_ = true; } 243 244 // Inform the scope that the corresponding code uses "arguments". RecordArgumentsUsage()245 void RecordArgumentsUsage() { scope_uses_arguments_ = true; } 246 247 // Inform the scope that the corresponding code uses "super". RecordSuperPropertyUsage()248 void RecordSuperPropertyUsage() { scope_uses_super_property_ = true; } 249 250 // Set the language mode flag (unless disabled by a global flag). SetLanguageMode(LanguageMode language_mode)251 void SetLanguageMode(LanguageMode language_mode) { 252 DCHECK(!is_module_scope() || is_strict(language_mode)); 253 language_mode_ = language_mode; 254 } 255 256 // Set the ASM module flag. SetAsmModule()257 void SetAsmModule() { asm_module_ = true; } 258 259 // Inform the scope that the scope may execute declarations nonlinearly. 260 // Currently, the only nonlinear scope is a switch statement. The name is 261 // more general in case something else comes up with similar control flow, 262 // for example the ability to break out of something which does not have 263 // its own lexical scope. 264 // The bit does not need to be stored on the ScopeInfo because none of 265 // the three compilers will perform hole check elimination on a variable 266 // located in VariableLocation::CONTEXT. So, direct eval and closures 267 // will not expose holes. SetNonlinear()268 void SetNonlinear() { scope_nonlinear_ = true; } 269 270 // Position in the source where this scope begins and ends. 271 // 272 // * For the scope of a with statement 273 // with (obj) stmt 274 // start position: start position of first token of 'stmt' 275 // end position: end position of last token of 'stmt' 276 // * For the scope of a block 277 // { stmts } 278 // start position: start position of '{' 279 // end position: end position of '}' 280 // * For the scope of a function literal or decalaration 281 // function fun(a,b) { stmts } 282 // start position: start position of '(' 283 // end position: end position of '}' 284 // * For the scope of a catch block 285 // try { stms } catch(e) { stmts } 286 // start position: start position of '(' 287 // end position: end position of ')' 288 // * For the scope of a for-statement 289 // for (let x ...) stmt 290 // start position: start position of '(' 291 // end position: end position of last token of 'stmt' 292 // * For the scope of a switch statement 293 // switch (tag) { cases } 294 // start position: start position of '{' 295 // end position: end position of '}' start_position()296 int start_position() const { return start_position_; } set_start_position(int statement_pos)297 void set_start_position(int statement_pos) { 298 start_position_ = statement_pos; 299 } end_position()300 int end_position() const { return end_position_; } set_end_position(int statement_pos)301 void set_end_position(int statement_pos) { 302 end_position_ = statement_pos; 303 } 304 305 // Scopes created for desugaring are hidden. I.e. not visible to the debugger. is_hidden()306 bool is_hidden() const { return is_hidden_; } set_is_hidden()307 void set_is_hidden() { is_hidden_ = true; } 308 309 // In some cases we want to force context allocation for a whole scope. ForceContextAllocation()310 void ForceContextAllocation() { 311 DCHECK(!already_resolved()); 312 force_context_allocation_ = true; 313 } has_forced_context_allocation()314 bool has_forced_context_allocation() const { 315 return force_context_allocation_; 316 } 317 318 // --------------------------------------------------------------------------- 319 // Predicates. 320 321 // Specific scope types. is_eval_scope()322 bool is_eval_scope() const { return scope_type_ == EVAL_SCOPE; } is_function_scope()323 bool is_function_scope() const { return scope_type_ == FUNCTION_SCOPE; } is_module_scope()324 bool is_module_scope() const { return scope_type_ == MODULE_SCOPE; } is_script_scope()325 bool is_script_scope() const { return scope_type_ == SCRIPT_SCOPE; } is_catch_scope()326 bool is_catch_scope() const { return scope_type_ == CATCH_SCOPE; } is_block_scope()327 bool is_block_scope() const { return scope_type_ == BLOCK_SCOPE; } is_with_scope()328 bool is_with_scope() const { return scope_type_ == WITH_SCOPE; } is_arrow_scope()329 bool is_arrow_scope() const { 330 return is_function_scope() && IsArrowFunction(function_kind_); 331 } is_declaration_scope()332 bool is_declaration_scope() const { return is_declaration_scope_; } 333 set_is_declaration_scope()334 void set_is_declaration_scope() { is_declaration_scope_ = true; } 335 336 // Information about which scopes calls eval. calls_eval()337 bool calls_eval() const { return scope_calls_eval_; } calls_sloppy_eval()338 bool calls_sloppy_eval() const { 339 return scope_calls_eval_ && is_sloppy(language_mode_); 340 } outer_scope_calls_sloppy_eval()341 bool outer_scope_calls_sloppy_eval() const { 342 return outer_scope_calls_sloppy_eval_; 343 } asm_module()344 bool asm_module() const { return asm_module_; } asm_function()345 bool asm_function() const { return asm_function_; } 346 347 // Is this scope inside a with statement. inside_with()348 bool inside_with() const { return scope_inside_with_; } 349 350 // Does this scope access "arguments". uses_arguments()351 bool uses_arguments() const { return scope_uses_arguments_; } 352 // Does this scope access "super" property (super.foo). uses_super_property()353 bool uses_super_property() const { return scope_uses_super_property_; } 354 // Does this scope have the potential to execute declarations non-linearly? is_nonlinear()355 bool is_nonlinear() const { return scope_nonlinear_; } 356 357 // Whether this needs to be represented by a runtime context. NeedsContext()358 bool NeedsContext() const { 359 // Catch and module scopes always have heap slots. 360 DCHECK(!is_catch_scope() || num_heap_slots() > 0); 361 DCHECK(!is_module_scope() || num_heap_slots() > 0); 362 return is_with_scope() || num_heap_slots() > 0; 363 } 364 NeedsHomeObject()365 bool NeedsHomeObject() const { 366 return scope_uses_super_property_ || 367 ((scope_calls_eval_ || inner_scope_calls_eval_) && 368 (IsConciseMethod(function_kind()) || 369 IsAccessorFunction(function_kind()) || 370 IsClassConstructor(function_kind()))); 371 } 372 373 // --------------------------------------------------------------------------- 374 // Accessors. 375 376 // The type of this scope. scope_type()377 ScopeType scope_type() const { return scope_type_; } 378 function_kind()379 FunctionKind function_kind() const { return function_kind_; } 380 381 // The language mode of this scope. language_mode()382 LanguageMode language_mode() const { return language_mode_; } 383 384 // The variable corresponding to the 'this' value. receiver()385 Variable* receiver() { 386 DCHECK(has_this_declaration()); 387 DCHECK_NOT_NULL(receiver_); 388 return receiver_; 389 } 390 391 // TODO(wingo): Add a GLOBAL_SCOPE scope type which will lexically allocate 392 // "this" (and no other variable) on the native context. Script scopes then 393 // will not have a "this" declaration. has_this_declaration()394 bool has_this_declaration() const { 395 return (is_function_scope() && !is_arrow_scope()) || is_module_scope(); 396 } 397 398 // The variable corresponding to the 'new.target' value. new_target_var()399 Variable* new_target_var() { return new_target_; } 400 401 // The variable holding the function literal for named function 402 // literals, or NULL. Only valid for function scopes. function()403 VariableDeclaration* function() const { 404 DCHECK(is_function_scope()); 405 return function_; 406 } 407 408 // Parameters. The left-most parameter has index 0. 409 // Only valid for function scopes. parameter(int index)410 Variable* parameter(int index) const { 411 DCHECK(is_function_scope()); 412 return params_[index]; 413 } 414 415 // Returns the default function arity excluding default or rest parameters. default_function_length()416 int default_function_length() const { return arity_; } 417 418 // Returns the number of formal parameters, up to but not including the 419 // rest parameter index (if the function has rest parameters), i.e. it 420 // says 2 for 421 // 422 // function foo(a, b) { ... } 423 // 424 // and 425 // 426 // function foo(a, b, ...c) { ... } 427 // 428 // but for 429 // 430 // function foo(a, b, c = 1) { ... } 431 // 432 // we return 3 here. num_parameters()433 int num_parameters() const { 434 return has_rest_parameter() ? params_.length() - 1 : params_.length(); 435 } 436 437 // A function can have at most one rest parameter. Returns Variable* or NULL. rest_parameter(int * index)438 Variable* rest_parameter(int* index) const { 439 *index = rest_index_; 440 if (rest_index_ < 0) return NULL; 441 return rest_parameter_; 442 } 443 has_rest_parameter()444 bool has_rest_parameter() const { return rest_index_ >= 0; } 445 has_simple_parameters()446 bool has_simple_parameters() const { 447 return has_simple_parameters_; 448 } 449 450 // TODO(caitp): manage this state in a better way. PreParser must be able to 451 // communicate that the scope is non-simple, without allocating any parameters 452 // as the Parser does. This is necessary to ensure that TC39's proposed early 453 // error can be reported consistently regardless of whether lazily parsed or 454 // not. SetHasNonSimpleParameters()455 void SetHasNonSimpleParameters() { 456 DCHECK(is_function_scope()); 457 has_simple_parameters_ = false; 458 } 459 460 // Retrieve `IsSimpleParameterList` of current or outer function. HasSimpleParameters()461 bool HasSimpleParameters() { 462 Scope* scope = ClosureScope(); 463 return !scope->is_function_scope() || scope->has_simple_parameters(); 464 } 465 466 // The local variable 'arguments' if we need to allocate it; NULL otherwise. arguments()467 Variable* arguments() const { 468 DCHECK(!is_arrow_scope() || arguments_ == nullptr); 469 return arguments_; 470 } 471 this_function_var()472 Variable* this_function_var() const { 473 // This is only used in derived constructors atm. 474 DCHECK(this_function_ == nullptr || 475 (is_function_scope() && (IsClassConstructor(function_kind()) || 476 IsConciseMethod(function_kind()) || 477 IsAccessorFunction(function_kind())))); 478 return this_function_; 479 } 480 481 // Declarations list. declarations()482 ZoneList<Declaration*>* declarations() { return &decls_; } 483 484 // Inner scope list. inner_scopes()485 ZoneList<Scope*>* inner_scopes() { return &inner_scopes_; } 486 487 // The scope immediately surrounding this scope, or NULL. outer_scope()488 Scope* outer_scope() const { return outer_scope_; } 489 490 // The ModuleDescriptor for this scope; only for module scopes. module()491 ModuleDescriptor* module() const { return module_descriptor_; } 492 493 // --------------------------------------------------------------------------- 494 // Variable allocation. 495 496 // Collect stack and context allocated local variables in this scope. Note 497 // that the function variable - if present - is not collected and should be 498 // handled separately. 499 void CollectStackAndContextLocals(ZoneList<Variable*>* stack_locals, 500 ZoneList<Variable*>* context_locals, 501 ZoneList<Variable*>* context_globals); 502 503 // Current number of var or const locals. num_var_or_const()504 int num_var_or_const() { return num_var_or_const_; } 505 506 // Result of variable allocation. num_stack_slots()507 int num_stack_slots() const { return num_stack_slots_; } num_heap_slots()508 int num_heap_slots() const { return num_heap_slots_; } num_global_slots()509 int num_global_slots() const { return num_global_slots_; } 510 511 int StackLocalCount() const; 512 int ContextLocalCount() const; 513 int ContextGlobalCount() const; 514 515 // Make sure this scope and all outer scopes are eagerly compiled. ForceEagerCompilation()516 void ForceEagerCompilation() { force_eager_compilation_ = true; } 517 518 // Determine if we can parse a function literal in this scope lazily. 519 bool AllowsLazyParsing() const; 520 521 // Determine if we can use lazy compilation for this scope. 522 bool AllowsLazyCompilation() const; 523 524 // Determine if we can use lazy compilation for this scope without a context. 525 bool AllowsLazyCompilationWithoutContext() const; 526 527 // True if the outer context of this scope is always the native context. 528 bool HasTrivialOuterContext() const; 529 530 // The number of contexts between this and scope; zero if this == scope. 531 int ContextChainLength(Scope* scope); 532 533 // The maximum number of nested contexts required for this scope and any inner 534 // scopes. 535 int MaxNestedContextChainLength(); 536 537 // Find the first function, script, eval or (declaration) block scope. This is 538 // the scope where var declarations will be hoisted to in the implementation. 539 Scope* DeclarationScope(); 540 541 // Find the first non-block declaration scope. This should be either a script, 542 // function, or eval scope. Same as DeclarationScope(), but skips 543 // declaration "block" scopes. Used for differentiating associated 544 // function objects (i.e., the scope for which a function prologue allocates 545 // a context) or declaring temporaries. 546 Scope* ClosureScope(); 547 548 // Find the first (non-arrow) function or script scope. This is where 549 // 'this' is bound, and what determines the function kind. 550 Scope* ReceiverScope(); 551 552 Handle<ScopeInfo> GetScopeInfo(Isolate* isolate); 553 554 Handle<StringSet> CollectNonLocals(Handle<StringSet> non_locals); 555 556 // --------------------------------------------------------------------------- 557 // Strict mode support. IsDeclared(const AstRawString * name)558 bool IsDeclared(const AstRawString* name) { 559 // During formal parameter list parsing the scope only contains 560 // two variables inserted at initialization: "this" and "arguments". 561 // "this" is an invalid parameter name and "arguments" is invalid parameter 562 // name in strict mode. Therefore looking up with the map which includes 563 // "this" and "arguments" in addition to all formal parameters is safe. 564 return variables_.Lookup(name) != NULL; 565 } 566 IsDeclaredParameter(const AstRawString * name)567 bool IsDeclaredParameter(const AstRawString* name) { 568 // If IsSimpleParameterList is false, duplicate parameters are not allowed, 569 // however `arguments` may be allowed if function is not strict code. Thus, 570 // the assumptions explained above do not hold. 571 return params_.Contains(variables_.Lookup(name)); 572 } 573 sloppy_block_function_map()574 SloppyBlockFunctionMap* sloppy_block_function_map() { 575 return &sloppy_block_function_map_; 576 } 577 578 // --------------------------------------------------------------------------- 579 // Debugging. 580 581 #ifdef DEBUG 582 void Print(int n = 0); // n = indentation; n < 0 => don't print recursively 583 584 // Check that the scope has positions assigned. 585 void CheckScopePositions(); 586 #endif 587 588 // --------------------------------------------------------------------------- 589 // Implementation. 590 private: 591 // Scope tree. 592 Scope* outer_scope_; // the immediately enclosing outer scope, or NULL 593 ZoneList<Scope*> inner_scopes_; // the immediately enclosed inner scopes 594 595 // The scope type. 596 ScopeType scope_type_; 597 // If the scope is a function scope, this is the function kind. 598 FunctionKind function_kind_; 599 600 // Debugging support. 601 const AstRawString* scope_name_; 602 603 // The variables declared in this scope: 604 // 605 // All user-declared variables (incl. parameters). For script scopes 606 // variables may be implicitly 'declared' by being used (possibly in 607 // an inner scope) with no intervening with statements or eval calls. 608 VariableMap variables_; 609 // Compiler-allocated (user-invisible) temporaries. Due to the implementation 610 // of RemoveTemporary(), may contain nulls, which must be skipped-over during 611 // allocation and printing. 612 ZoneList<Variable*> temps_; 613 // Parameter list in source order. 614 ZoneList<Variable*> params_; 615 // Variables that must be looked up dynamically. 616 DynamicScopePart* dynamics_; 617 // Unresolved variables referred to from this scope. 618 ZoneList<VariableProxy*> unresolved_; 619 // Declarations. 620 ZoneList<Declaration*> decls_; 621 // Convenience variable. 622 Variable* receiver_; 623 // Function variable, if any; function scopes only. 624 VariableDeclaration* function_; 625 // new.target variable, function scopes only. 626 Variable* new_target_; 627 // Convenience variable; function scopes only. 628 Variable* arguments_; 629 // Convenience variable; Subclass constructor only 630 Variable* this_function_; 631 // Module descriptor; module scopes only. 632 ModuleDescriptor* module_descriptor_; 633 634 // Map of function names to lists of functions defined in sloppy blocks 635 SloppyBlockFunctionMap sloppy_block_function_map_; 636 637 // Scope-specific information computed during parsing. 638 // 639 // This scope is inside a 'with' of some outer scope. 640 bool scope_inside_with_; 641 // This scope or a nested catch scope or with scope contain an 'eval' call. At 642 // the 'eval' call site this scope is the declaration scope. 643 bool scope_calls_eval_; 644 // This scope uses "arguments". 645 bool scope_uses_arguments_; 646 // This scope uses "super" property ('super.foo'). 647 bool scope_uses_super_property_; 648 // This scope contains an "use asm" annotation. 649 bool asm_module_; 650 // This scope's outer context is an asm module. 651 bool asm_function_; 652 // This scope's declarations might not be executed in order (e.g., switch). 653 bool scope_nonlinear_; 654 // The language mode of this scope. 655 LanguageMode language_mode_; 656 // Source positions. 657 int start_position_; 658 int end_position_; 659 bool is_hidden_; 660 661 // Computed via PropagateScopeInfo. 662 bool outer_scope_calls_sloppy_eval_; 663 bool inner_scope_calls_eval_; 664 bool force_eager_compilation_; 665 bool force_context_allocation_; 666 667 // True if it doesn't need scope resolution (e.g., if the scope was 668 // constructed based on a serialized scope info or a catch context). 669 bool already_resolved_; 670 671 // True if it holds 'var' declarations. 672 bool is_declaration_scope_; 673 674 // Computed as variables are declared. 675 int num_var_or_const_; 676 677 // Computed via AllocateVariables; function, block and catch scopes only. 678 int num_stack_slots_; 679 int num_heap_slots_; 680 int num_global_slots_; 681 682 // Info about the parameter list of a function. 683 int arity_; 684 bool has_simple_parameters_; 685 Variable* rest_parameter_; 686 int rest_index_; 687 688 // Serialized scope info support. 689 Handle<ScopeInfo> scope_info_; already_resolved()690 bool already_resolved() { return already_resolved_; } 691 692 // Create a non-local variable with a given name. 693 // These variables are looked up dynamically at runtime. 694 Variable* NonLocal(const AstRawString* name, VariableMode mode); 695 696 // Variable resolution. 697 // Possible results of a recursive variable lookup telling if and how a 698 // variable is bound. These are returned in the output parameter *binding_kind 699 // of the LookupRecursive function. 700 enum BindingKind { 701 // The variable reference could be statically resolved to a variable binding 702 // which is returned. There is no 'with' statement between the reference and 703 // the binding and no scope between the reference scope (inclusive) and 704 // binding scope (exclusive) makes a sloppy 'eval' call. 705 BOUND, 706 707 // The variable reference could be statically resolved to a variable binding 708 // which is returned. There is no 'with' statement between the reference and 709 // the binding, but some scope between the reference scope (inclusive) and 710 // binding scope (exclusive) makes a sloppy 'eval' call, that might 711 // possibly introduce variable bindings shadowing the found one. Thus the 712 // found variable binding is just a guess. 713 BOUND_EVAL_SHADOWED, 714 715 // The variable reference could not be statically resolved to any binding 716 // and thus should be considered referencing a global variable. NULL is 717 // returned. The variable reference is not inside any 'with' statement and 718 // no scope between the reference scope (inclusive) and script scope 719 // (exclusive) makes a sloppy 'eval' call. 720 UNBOUND, 721 722 // The variable reference could not be statically resolved to any binding 723 // NULL is returned. The variable reference is not inside any 'with' 724 // statement, but some scope between the reference scope (inclusive) and 725 // script scope (exclusive) makes a sloppy 'eval' call, that might 726 // possibly introduce a variable binding. Thus the reference should be 727 // considered referencing a global variable unless it is shadowed by an 728 // 'eval' introduced binding. 729 UNBOUND_EVAL_SHADOWED, 730 731 // The variable could not be statically resolved and needs to be looked up 732 // dynamically. NULL is returned. There are two possible reasons: 733 // * A 'with' statement has been encountered and there is no variable 734 // binding for the name between the variable reference and the 'with'. 735 // The variable potentially references a property of the 'with' object. 736 // * The code is being executed as part of a call to 'eval' and the calling 737 // context chain contains either a variable binding for the name or it 738 // contains a 'with' context. 739 DYNAMIC_LOOKUP 740 }; 741 742 // Lookup a variable reference given by name recursively starting with this 743 // scope. If the code is executed because of a call to 'eval', the context 744 // parameter should be set to the calling context of 'eval'. 745 Variable* LookupRecursive(VariableProxy* proxy, BindingKind* binding_kind, 746 AstNodeFactory* factory); 747 MUST_USE_RESULT 748 bool ResolveVariable(ParseInfo* info, VariableProxy* proxy, 749 AstNodeFactory* factory); 750 MUST_USE_RESULT 751 bool ResolveVariablesRecursively(ParseInfo* info, AstNodeFactory* factory); 752 753 // Scope analysis. 754 void PropagateScopeInfo(bool outer_scope_calls_sloppy_eval); 755 bool HasTrivialContext() const; 756 757 // Predicates. 758 bool MustAllocate(Variable* var); 759 bool MustAllocateInContext(Variable* var); 760 bool HasArgumentsParameter(Isolate* isolate); 761 762 // Variable allocation. 763 void AllocateStackSlot(Variable* var); 764 void AllocateHeapSlot(Variable* var); 765 void AllocateParameterLocals(Isolate* isolate); 766 void AllocateNonParameterLocal(Isolate* isolate, Variable* var); 767 void AllocateDeclaredGlobal(Isolate* isolate, Variable* var); 768 void AllocateNonParameterLocalsAndDeclaredGlobals(Isolate* isolate); 769 void AllocateVariablesRecursively(Isolate* isolate); 770 void AllocateParameter(Variable* var, int index); 771 void AllocateReceiver(); 772 773 // Resolve and fill in the allocation information for all variables 774 // in this scopes. Must be called *after* all scopes have been 775 // processed (parsed) to ensure that unresolved variables can be 776 // resolved properly. 777 // 778 // In the case of code compiled and run using 'eval', the context 779 // parameter is the context in which eval was called. In all other 780 // cases the context parameter is an empty handle. 781 MUST_USE_RESULT 782 bool AllocateVariables(ParseInfo* info, AstNodeFactory* factory); 783 784 // Construct a scope based on the scope info. 785 Scope(Zone* zone, Scope* inner_scope, ScopeType type, 786 Handle<ScopeInfo> scope_info, AstValueFactory* value_factory); 787 788 // Construct a catch scope with a binding for the name. 789 Scope(Zone* zone, Scope* inner_scope, const AstRawString* catch_variable_name, 790 AstValueFactory* value_factory); 791 AddInnerScope(Scope * inner_scope)792 void AddInnerScope(Scope* inner_scope) { 793 if (inner_scope != NULL) { 794 inner_scopes_.Add(inner_scope, zone_); 795 inner_scope->outer_scope_ = this; 796 } 797 } 798 RemoveInnerScope(Scope * inner_scope)799 void RemoveInnerScope(Scope* inner_scope) { 800 DCHECK_NOT_NULL(inner_scope); 801 for (int i = 0; i < inner_scopes_.length(); i++) { 802 if (inner_scopes_[i] == inner_scope) { 803 inner_scopes_.Remove(i); 804 break; 805 } 806 } 807 } 808 809 void SetDefaults(ScopeType type, Scope* outer_scope, 810 Handle<ScopeInfo> scope_info, 811 FunctionKind function_kind = kNormalFunction); 812 813 AstValueFactory* ast_value_factory_; 814 Zone* zone_; 815 816 PendingCompilationErrorHandler pending_error_handler_; 817 }; 818 819 } // namespace internal 820 } // namespace v8 821 822 #endif // V8_AST_SCOPES_H_ 823