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1 ------------------------------------------------------------------------------
2 -- --
3 -- GNAT COMPILER COMPONENTS --
4 -- --
5 -- S E M _ U T I L --
6 -- --
7 -- S p e c --
8 -- --
9 -- Copyright (C) 1992-2016, Free Software Foundation, Inc. --
10 -- --
11 -- GNAT is free software; you can redistribute it and/or modify it under --
12 -- terms of the GNU General Public License as published by the Free Soft- --
13 -- ware Foundation; either version 3, or (at your option) any later ver- --
14 -- sion. GNAT is distributed in the hope that it will be useful, but WITH- --
15 -- OUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY --
16 -- or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License --
17 -- for more details. You should have received a copy of the GNU General --
18 -- Public License distributed with GNAT; see file COPYING3. If not, go to --
19 -- http://www.gnu.org/licenses for a complete copy of the license. --
20 -- --
21 -- GNAT was originally developed by the GNAT team at New York University. --
22 -- Extensive contributions were provided by Ada Core Technologies Inc. --
23 -- --
24 ------------------------------------------------------------------------------
25
26 -- Package containing utility procedures used throughout the semantics
27
28 with Einfo; use Einfo;
29 with Exp_Tss; use Exp_Tss;
30 with Namet; use Namet;
31 with Opt; use Opt;
32 with Snames; use Snames;
33 with Types; use Types;
34 with Uintp; use Uintp;
35 with Urealp; use Urealp;
36
37 package Sem_Util is
38
39 function Abstract_Interface_List (Typ : Entity_Id) return List_Id;
40 -- Given a type that implements interfaces look for its associated
41 -- definition node and return its list of interfaces.
42
43 procedure Add_Access_Type_To_Process (E : Entity_Id; A : Entity_Id);
44 -- Add A to the list of access types to process when expanding the
45 -- freeze node of E.
46
47 procedure Add_Block_Identifier (N : Node_Id; Id : out Entity_Id);
48 -- Given a block statement N, generate an internal E_Block label and make
49 -- it the identifier of the block. Id denotes the generated entity. If the
50 -- block already has an identifier, Id returns the entity of its label.
51
52 procedure Add_Global_Declaration (N : Node_Id);
53 -- These procedures adds a declaration N at the library level, to be
54 -- elaborated before any other code in the unit. It is used for example
55 -- for the entity that marks whether a unit has been elaborated. The
56 -- declaration is added to the Declarations list of the Aux_Decls_Node
57 -- for the current unit. The declarations are added in the current scope,
58 -- so the caller should push a new scope as required before the call.
59
60 function Add_Suffix (E : Entity_Id; Suffix : Character) return Name_Id;
61 -- Returns the name of E adding Suffix
62
63 function Address_Integer_Convert_OK (T1, T2 : Entity_Id) return Boolean;
64 -- Given two types, returns True if we are in Allow_Integer_Address mode
65 -- and one of the types is (a descendant of) System.Address (and this type
66 -- is private), and the other type is any integer type.
67
68 function Addressable (V : Uint) return Boolean;
69 function Addressable (V : Int) return Boolean;
70 pragma Inline (Addressable);
71 -- Returns True if the value of V is the word size or an addressable factor
72 -- of the word size (typically 8, 16, 32 or 64).
73
74 procedure Aggregate_Constraint_Checks
75 (Exp : Node_Id;
76 Check_Typ : Entity_Id);
77 -- Checks expression Exp against subtype Check_Typ. If Exp is an aggregate
78 -- and Check_Typ a constrained record type with discriminants, we generate
79 -- the appropriate discriminant checks. If Exp is an array aggregate then
80 -- emit the appropriate length checks. If Exp is a scalar type, or a string
81 -- literal, Exp is changed into Check_Typ'(Exp) to ensure that range checks
82 -- are performed at run time. Also used for expressions in the argument of
83 -- 'Update, which shares some of the features of an aggregate.
84
85 function Alignment_In_Bits (E : Entity_Id) return Uint;
86 -- If the alignment of the type or object E is currently known to the
87 -- compiler, then this function returns the alignment value in bits.
88 -- Otherwise Uint_0 is returned, indicating that the alignment of the
89 -- entity is not yet known to the compiler.
90
91 function All_Composite_Constraints_Static (Constr : Node_Id) return Boolean;
92 -- Used to implement pragma Restrictions (No_Dynamic_Sized_Objects).
93 -- Given a constraint or subtree of a constraint on a composite
94 -- subtype/object, returns True if there are no nonstatic constraints,
95 -- which might cause objects to be created with dynamic size.
96 -- Called for subtype declarations (including implicit ones created for
97 -- subtype indications in object declarations, as well as discriminated
98 -- record aggregate cases). For record aggregates, only records containing
99 -- discriminant-dependent arrays matter, because the discriminants must be
100 -- static when governing a variant part. Access discriminants are
101 -- irrelevant. Also called for array aggregates, but only named notation,
102 -- because those are the only dynamic cases.
103
104 procedure Append_Inherited_Subprogram (S : Entity_Id);
105 -- If the parent of the operation is declared in the visible part of
106 -- the current scope, the inherited operation is visible even though the
107 -- derived type that inherits the operation may be completed in the private
108 -- part of the current package.
109
110 procedure Apply_Compile_Time_Constraint_Error
111 (N : Node_Id;
112 Msg : String;
113 Reason : RT_Exception_Code;
114 Ent : Entity_Id := Empty;
115 Typ : Entity_Id := Empty;
116 Loc : Source_Ptr := No_Location;
117 Rep : Boolean := True;
118 Warn : Boolean := False);
119 -- N is a subexpression which will raise constraint error when evaluated
120 -- at runtime. Msg is a message that explains the reason for raising the
121 -- exception. The last character is ? if the message is always a warning,
122 -- even in Ada 95, and is not a ? if the message represents an illegality
123 -- (because of violation of static expression rules) in Ada 95 (but not
124 -- in Ada 83). Typically this routine posts all messages at the Sloc of
125 -- node N. However, if Loc /= No_Location, Loc is the Sloc used to output
126 -- the message. After posting the appropriate message, and if the flag
127 -- Rep is set, this routine replaces the expression with an appropriate
128 -- N_Raise_Constraint_Error node using the given Reason code. This node
129 -- is then marked as being static if the original node is static, but
130 -- sets the flag Raises_Constraint_Error, preventing further evaluation.
131 -- The error message may contain a } or & insertion character. This
132 -- normally references Etype (N), unless the Ent argument is given
133 -- explicitly, in which case it is used instead. The type of the raise
134 -- node that is built is normally Etype (N), but if the Typ parameter
135 -- is present, this is used instead. Warn is normally False. If it is
136 -- True then the message is treated as a warning even though it does
137 -- not end with a ? (this is used when the caller wants to parameterize
138 -- whether an error or warning is given), or when the message should be
139 -- treated as a warning even when SPARK_Mode is On (which otherwise would
140 -- force an error).
141
142 function Async_Readers_Enabled (Id : Entity_Id) return Boolean;
143 -- Given the entity of an abstract state or a variable, determine whether
144 -- Id is subject to external property Async_Readers and if it is, the
145 -- related expression evaluates to True.
146
147 function Async_Writers_Enabled (Id : Entity_Id) return Boolean;
148 -- Given the entity of an abstract state or a variable, determine whether
149 -- Id is subject to external property Async_Writers and if it is, the
150 -- related expression evaluates to True.
151
152 function Available_Full_View_Of_Component (T : Entity_Id) return Boolean;
153 -- If at the point of declaration an array type has a private or limited
154 -- component, several array operations are not avaiable on the type, and
155 -- the array type is flagged accordingly. If in the immediate scope of
156 -- the array type the component becomes non-private or non-limited, these
157 -- operations become avaiable. This can happen if the scopes of both types
158 -- are open, and the scope of the array is not outside the scope of the
159 -- component.
160
161 procedure Bad_Attribute
162 (N : Node_Id;
163 Nam : Name_Id;
164 Warn : Boolean := False);
165 -- Called when node N is expected to contain a valid attribute name, and
166 -- Nam is found instead. If Warn is set True this is a warning, else this
167 -- is an error.
168
169 procedure Bad_Predicated_Subtype_Use
170 (Msg : String;
171 N : Node_Id;
172 Typ : Entity_Id;
173 Suggest_Static : Boolean := False);
174 -- This is called when Typ, a predicated subtype, is used in a context
175 -- which does not allow the use of a predicated subtype. Msg is passed to
176 -- Error_Msg_FE to output an appropriate message using N as the location,
177 -- and Typ as the entity. The caller must set up any insertions other than
178 -- the & for the type itself. Note that if Typ is a generic actual type,
179 -- then the message will be output as a warning, and a raise Program_Error
180 -- is inserted using Insert_Action with node N as the insertion point. Node
181 -- N also supplies the source location for construction of the raise node.
182 -- If Typ does not have any predicates, the call has no effect. Set flag
183 -- Suggest_Static when the context warrants an advice on how to avoid the
184 -- use error.
185
186 function Bad_Unordered_Enumeration_Reference
187 (N : Node_Id;
188 T : Entity_Id) return Boolean;
189 -- Node N contains a potentially dubious reference to type T, either an
190 -- explicit comparison, or an explicit range. This function returns True
191 -- if the type T is an enumeration type for which No pragma Order has been
192 -- given, and the reference N is not in the same extended source unit as
193 -- the declaration of T.
194
195 function Build_Actual_Subtype
196 (T : Entity_Id;
197 N : Node_Or_Entity_Id) return Node_Id;
198 -- Build an anonymous subtype for an entity or expression, using the
199 -- bounds of the entity or the discriminants of the enclosing record.
200 -- T is the type for which the actual subtype is required, and N is either
201 -- a defining identifier, or any subexpression.
202
203 function Build_Actual_Subtype_Of_Component
204 (T : Entity_Id;
205 N : Node_Id) return Node_Id;
206 -- Determine whether a selected component has a type that depends on
207 -- discriminants, and build actual subtype for it if so.
208
209 function Build_Default_Init_Cond_Call
210 (Loc : Source_Ptr;
211 Obj_Id : Entity_Id;
212 Typ : Entity_Id) return Node_Id;
213 -- Build a call to the default initial condition procedure of type Typ with
214 -- Obj_Id as the actual parameter.
215
216 procedure Build_Default_Init_Cond_Procedure_Bodies (Priv_Decls : List_Id);
217 -- Inspect the contents of private declarations Priv_Decls and build the
218 -- bodies the default initial condition procedures for all types subject
219 -- to pragma Default_Initial_Condition.
220
221 procedure Build_Default_Init_Cond_Procedure_Declaration (Typ : Entity_Id);
222 -- If private type Typ is subject to pragma Default_Initial_Condition,
223 -- build the declaration of the procedure which verifies the assumption
224 -- of the pragma at runtime. The declaration is inserted after the related
225 -- pragma.
226
227 function Build_Default_Subtype
228 (T : Entity_Id;
229 N : Node_Id) return Entity_Id;
230 -- If T is an unconstrained type with defaulted discriminants, build a
231 -- subtype constrained by the default values, insert the subtype
232 -- declaration in the tree before N, and return the entity of that
233 -- subtype. Otherwise, simply return T.
234
235 function Build_Discriminal_Subtype_Of_Component
236 (T : Entity_Id) return Node_Id;
237 -- Determine whether a record component has a type that depends on
238 -- discriminants, and build actual subtype for it if so.
239
240 procedure Build_Elaboration_Entity (N : Node_Id; Spec_Id : Entity_Id);
241 -- Given a compilation unit node N, allocate an elaboration counter for
242 -- the compilation unit, and install it in the Elaboration_Entity field
243 -- of Spec_Id, the entity for the compilation unit.
244
245 procedure Build_Explicit_Dereference
246 (Expr : Node_Id;
247 Disc : Entity_Id);
248 -- AI05-139: Names with implicit dereference. If the expression N is a
249 -- reference type and the context imposes the corresponding designated
250 -- type, convert N into N.Disc.all. Such expressions are always over-
251 -- loaded with both interpretations, and the dereference interpretation
252 -- carries the name of the reference discriminant.
253
254 function Cannot_Raise_Constraint_Error (Expr : Node_Id) return Boolean;
255 -- Returns True if the expression cannot possibly raise Constraint_Error.
256 -- The response is conservative in the sense that a result of False does
257 -- not necessarily mean that CE could be raised, but a response of True
258 -- means that for sure CE cannot be raised.
259
260 procedure Check_Dynamically_Tagged_Expression
261 (Expr : Node_Id;
262 Typ : Entity_Id;
263 Related_Nod : Node_Id);
264 -- Check wrong use of dynamically tagged expression
265
266 procedure Check_Fully_Declared (T : Entity_Id; N : Node_Id);
267 -- Verify that the full declaration of type T has been seen. If not, place
268 -- error message on node N. Used in object declarations, type conversions
269 -- and qualified expressions.
270
271 procedure Check_Function_With_Address_Parameter (Subp_Id : Entity_Id);
272 -- A subprogram that has an Address parameter and is declared in a Pure
273 -- package is not considered Pure, because the parameter may be used as a
274 -- pointer and the referenced data may change even if the address value
275 -- itself does not.
276 -- If the programmer gave an explicit Pure_Function pragma, then we respect
277 -- the pragma and leave the subprogram Pure.
278
279 procedure Check_Function_Writable_Actuals (N : Node_Id);
280 -- (Ada 2012): If the construct N has two or more direct constituents that
281 -- are names or expressions whose evaluation may occur in an arbitrary
282 -- order, at least one of which contains a function call with an in out or
283 -- out parameter, then the construct is legal only if: for each name that
284 -- is passed as a parameter of mode in out or out to some inner function
285 -- call C2 (not including the construct N itself), there is no other name
286 -- anywhere within a direct constituent of the construct C other than
287 -- the one containing C2, that is known to refer to the same object (RM
288 -- 6.4.1(6.17/3)).
289
290 procedure Check_Implicit_Dereference (N : Node_Id; Typ : Entity_Id);
291 -- AI05-139-2: Accessors and iterators for containers. This procedure
292 -- checks whether T is a reference type, and if so it adds an interprettion
293 -- to N whose type is the designated type of the reference_discriminant.
294 -- If N is a generalized indexing operation, the interpretation is added
295 -- both to the corresponding function call, and to the indexing node.
296
297 procedure Check_Internal_Protected_Use (N : Node_Id; Nam : Entity_Id);
298 -- Within a protected function, the current object is a constant, and
299 -- internal calls to a procedure or entry are illegal. Similarly, other
300 -- uses of a protected procedure in a renaming or a generic instantiation
301 -- in the context of a protected function are illegal (AI05-0225).
302
303 procedure Check_Later_Vs_Basic_Declarations
304 (Decls : List_Id;
305 During_Parsing : Boolean);
306 -- If During_Parsing is True, check for misplacement of later vs basic
307 -- declarations in Ada 83. If During_Parsing is False, and the SPARK
308 -- restriction is set, do the same: although SPARK 95 removes the
309 -- distinction between initial and later declarative items, the distinction
310 -- remains in the Examiner (JB01-005). Note that the Examiner does not
311 -- count package declarations in later declarative items.
312
313 procedure Check_No_Hidden_State (Id : Entity_Id);
314 -- Determine whether object or state Id introduces a hidden state. If this
315 -- is the case, emit an error.
316
317 procedure Check_Nonvolatile_Function_Profile (Func_Id : Entity_Id);
318 -- Verify that the profile of nonvolatile function Func_Id does not contain
319 -- effectively volatile parameters or return type.
320
321 procedure Check_Part_Of_Reference (Var_Id : Entity_Id; Ref : Node_Id);
322 -- Verify the legality of reference Ref to variable Var_Id when the
323 -- variable is a constituent of a single protected/task type.
324
325 procedure Check_Potentially_Blocking_Operation (N : Node_Id);
326 -- N is one of the statement forms that is a potentially blocking
327 -- operation. If it appears within a protected action, emit warning.
328
329 procedure Check_Result_And_Post_State (Subp_Id : Entity_Id);
330 -- Determine whether the contract of subprogram Subp_Id mentions attribute
331 -- 'Result and it contains an expression that evaluates differently in pre-
332 -- and post-state.
333
334 procedure Check_State_Refinements
335 (Context : Node_Id;
336 Is_Main_Unit : Boolean := False);
337 -- Verify that all abstract states declared in a block statement, entry
338 -- body, package body, protected body, subprogram body, task body, or a
339 -- package declaration denoted by Context have proper refinement. Emit an
340 -- error if this is not the case. Flag Is_Main_Unit should be set when
341 -- Context denotes the main compilation unit.
342
343 procedure Check_Unused_Body_States (Body_Id : Entity_Id);
344 -- Verify that all abstract states and objects declared in the state space
345 -- of package body Body_Id are used as constituents. Emit an error if this
346 -- is not the case.
347
348 procedure Check_Unprotected_Access
349 (Context : Node_Id;
350 Expr : Node_Id);
351 -- Check whether the expression is a pointer to a protected component,
352 -- and the context is external to the protected operation, to warn against
353 -- a possible unlocked access to data.
354
355 function Collect_Body_States (Body_Id : Entity_Id) return Elist_Id;
356 -- Gather the entities of all abstract states and objects declared in the
357 -- body state space of package body Body_Id.
358
359 procedure Collect_Interfaces
360 (T : Entity_Id;
361 Ifaces_List : out Elist_Id;
362 Exclude_Parents : Boolean := False;
363 Use_Full_View : Boolean := True);
364 -- Ada 2005 (AI-251): Collect whole list of abstract interfaces that are
365 -- directly or indirectly implemented by T. Exclude_Parents is used to
366 -- avoid the addition of inherited interfaces to the generated list.
367 -- Use_Full_View is used to collect the interfaces using the full-view
368 -- (if available).
369
370 procedure Collect_Interface_Components
371 (Tagged_Type : Entity_Id;
372 Components_List : out Elist_Id);
373 -- Ada 2005 (AI-251): Collect all the tag components associated with the
374 -- secondary dispatch tables of a tagged type.
375
376 procedure Collect_Interfaces_Info
377 (T : Entity_Id;
378 Ifaces_List : out Elist_Id;
379 Components_List : out Elist_Id;
380 Tags_List : out Elist_Id);
381 -- Ada 2005 (AI-251): Collect all the interfaces associated with T plus
382 -- the record component and tag associated with each of these interfaces.
383 -- On exit Ifaces_List, Components_List and Tags_List have the same number
384 -- of elements, and elements at the same position on these tables provide
385 -- information on the same interface type.
386
387 procedure Collect_Parents
388 (T : Entity_Id;
389 List : out Elist_Id;
390 Use_Full_View : Boolean := True);
391 -- Collect all the parents of Typ. Use_Full_View is used to collect them
392 -- using the full-view of private parents (if available).
393
394 function Collect_Primitive_Operations (T : Entity_Id) return Elist_Id;
395 -- Called upon type derivation and extension. We scan the declarative part
396 -- in which the type appears, and collect subprograms that have one
397 -- subsidiary subtype of the type. These subprograms can only appear after
398 -- the type itself.
399
400 function Compile_Time_Constraint_Error
401 (N : Node_Id;
402 Msg : String;
403 Ent : Entity_Id := Empty;
404 Loc : Source_Ptr := No_Location;
405 Warn : Boolean := False) return Node_Id;
406 -- This is similar to Apply_Compile_Time_Constraint_Error in that it
407 -- generates a warning (or error) message in the same manner, but it does
408 -- not replace any nodes. For convenience, the function always returns its
409 -- first argument. The message is a warning if the message ends with ?, or
410 -- we are operating in Ada 83 mode, or the Warn parameter is set to True.
411
412 procedure Conditional_Delay (New_Ent, Old_Ent : Entity_Id);
413 -- Sets the Has_Delayed_Freeze flag of New if the Delayed_Freeze flag of
414 -- Old is set and Old has no yet been Frozen (i.e. Is_Frozen is false).
415
416 function Contains_Refined_State (Prag : Node_Id) return Boolean;
417 -- Determine whether pragma Prag contains a reference to the entity of an
418 -- abstract state with a visible refinement. Prag must denote one of the
419 -- following pragmas:
420 -- Depends
421 -- Global
422
423 function Copy_Component_List
424 (R_Typ : Entity_Id;
425 Loc : Source_Ptr) return List_Id;
426 -- Copy components from record type R_Typ that come from source. Used to
427 -- create a new compatible record type. Loc is the source location assigned
428 -- to the created nodes.
429
430 function Copy_Parameter_List (Subp_Id : Entity_Id) return List_Id;
431 -- Utility to create a parameter profile for a new subprogram spec, when
432 -- the subprogram has a body that acts as spec. This is done for some cases
433 -- of inlining, and for private protected ops. Also used to create bodies
434 -- for stubbed subprograms.
435
436 function Copy_Subprogram_Spec (Spec : Node_Id) return Node_Id;
437 -- Replicate a function or a procedure specification denoted by Spec. The
438 -- resulting tree is an exact duplicate of the original tree. New entities
439 -- are created for the unit name and the formal parameters.
440
441 function Corresponding_Generic_Type (T : Entity_Id) return Entity_Id;
442 -- If a type is a generic actual type, return the corresponding formal in
443 -- the generic parent unit. There is no direct link in the tree for this
444 -- attribute, except in the case of formal private and derived types.
445 -- Possible optimization???
446
447 function Current_Entity (N : Node_Id) return Entity_Id;
448 pragma Inline (Current_Entity);
449 -- Find the currently visible definition for a given identifier, that is to
450 -- say the first entry in the visibility chain for the Chars of N.
451
452 function Current_Entity_In_Scope (N : Node_Id) return Entity_Id;
453 -- Find whether there is a previous definition for identifier N in the
454 -- current scope. Because declarations for a scope are not necessarily
455 -- contiguous (e.g. for packages) the first entry on the visibility chain
456 -- for N is not necessarily in the current scope.
457
458 function Current_Scope return Entity_Id;
459 -- Get entity representing current scope
460
461 function Current_Scope_No_Loops return Entity_Id;
462 -- Return the current scope ignoring internally generated loops
463
464 function Current_Subprogram return Entity_Id;
465 -- Returns current enclosing subprogram. If Current_Scope is a subprogram,
466 -- then that is what is returned, otherwise the Enclosing_Subprogram of the
467 -- Current_Scope is returned. The returned value is Empty if this is called
468 -- from a library package which is not within any subprogram.
469
470 function Deepest_Type_Access_Level (Typ : Entity_Id) return Uint;
471 -- Same as Type_Access_Level, except that if the type is the type of an Ada
472 -- 2012 stand-alone object of an anonymous access type, then return the
473 -- static accesssibility level of the object. In that case, the dynamic
474 -- accessibility level of the object may take on values in a range. The low
475 -- bound of that range is returned by Type_Access_Level; this function
476 -- yields the high bound of that range. Also differs from Type_Access_Level
477 -- in the case of a descendant of a generic formal type (returns Int'Last
478 -- instead of 0).
479
480 function Defining_Entity
481 (N : Node_Id;
482 Empty_On_Errors : Boolean := False) return Entity_Id;
483 -- Given a declaration N, returns the associated defining entity. If the
484 -- declaration has a specification, the entity is obtained from the
485 -- specification. If the declaration has a defining unit name, then the
486 -- defining entity is obtained from the defining unit name ignoring any
487 -- child unit prefixes.
488 --
489 -- Iterator loops also have a defining entity, which holds the list of
490 -- local entities declared during loop expansion. These entities need
491 -- debugging information, generated through Qualify_Entity_Names, and
492 -- the loop declaration must be placed in the table Name_Qualify_Units.
493 --
494 -- Set flag Empty_On_Error to change the behavior of this routine as
495 -- follows:
496 --
497 -- * True - A declaration that lacks a defining entity returns Empty.
498 -- A node that does not allow for a defining entity returns Empty.
499 --
500 -- * False - A declaration that lacks a defining entity is given a new
501 -- internally generated entity which is subsequently returned. A node
502 -- that does not allow for a defining entity raises Program_Error.
503 --
504 -- The former semantics is appropriate for the back end; the latter
505 -- semantics is appropriate for the front end.
506
507 function Denotes_Discriminant
508 (N : Node_Id;
509 Check_Concurrent : Boolean := False) return Boolean;
510 -- Returns True if node N is an Entity_Name node for a discriminant. If the
511 -- flag Check_Concurrent is true, function also returns true when N denotes
512 -- the discriminal of the discriminant of a concurrent type. This is needed
513 -- to disable some optimizations on private components of protected types,
514 -- and constraint checks on entry families constrained by discriminants.
515
516 function Denotes_Same_Object (A1, A2 : Node_Id) return Boolean;
517 -- Detect suspicious overlapping between actuals in a call, when both are
518 -- writable (RM 2012 6.4.1(6.4/3))
519
520 function Denotes_Same_Prefix (A1, A2 : Node_Id) return Boolean;
521 -- Functions to detect suspicious overlapping between actuals in a call,
522 -- when one of them is writable. The predicates are those proposed in
523 -- AI05-0144, to detect dangerous order dependence in complex calls.
524 -- I would add a parameter Warn which enables more extensive testing of
525 -- cases as we find appropriate when we are only warning ??? Or perhaps
526 -- return an indication of (Error, Warn, OK) ???
527
528 function Denotes_Variable (N : Node_Id) return Boolean;
529 -- Returns True if node N denotes a single variable without parentheses
530
531 function Depends_On_Discriminant (N : Node_Id) return Boolean;
532 -- Returns True if N denotes a discriminant or if N is a range, a subtype
533 -- indication or a scalar subtype where one of the bounds is a
534 -- discriminant.
535
536 function Designate_Same_Unit
537 (Name1 : Node_Id;
538 Name2 : Node_Id) return Boolean;
539 -- Returns True if Name1 and Name2 designate the same unit name; each of
540 -- these names is supposed to be a selected component name, an expanded
541 -- name, a defining program unit name or an identifier.
542
543 function Dynamic_Accessibility_Level (Expr : Node_Id) return Node_Id;
544 -- Expr should be an expression of an access type. Builds an integer
545 -- literal except in cases involving anonymous access types where
546 -- accessibility levels are tracked at runtime (access parameters and Ada
547 -- 2012 stand-alone objects).
548
549 function Effective_Extra_Accessibility (Id : Entity_Id) return Entity_Id;
550 -- Same as Einfo.Extra_Accessibility except thtat object renames
551 -- are looked through.
552
553 function Effective_Reads_Enabled (Id : Entity_Id) return Boolean;
554 -- Given the entity of an abstract state or a variable, determine whether
555 -- Id is subject to external property Effective_Reads and if it is, the
556 -- related expression evaluates to True.
557
558 function Effective_Writes_Enabled (Id : Entity_Id) return Boolean;
559 -- Given the entity of an abstract state or a variable, determine whether
560 -- Id is subject to external property Effective_Writes and if it is, the
561 -- related expression evaluates to True.
562
563 function Enclosing_Comp_Unit_Node (N : Node_Id) return Node_Id;
564 -- Returns the enclosing N_Compilation_Unit node that is the root of a
565 -- subtree containing N.
566
567 function Enclosing_CPP_Parent (Typ : Entity_Id) return Entity_Id;
568 -- Returns the closest ancestor of Typ that is a CPP type.
569
570 function Enclosing_Declaration (N : Node_Id) return Node_Id;
571 -- Returns the declaration node enclosing N (including possibly N itself),
572 -- if any, or Empty otherwise.
573
574 function Enclosing_Generic_Body
575 (N : Node_Id) return Node_Id;
576 -- Returns the Node_Id associated with the innermost enclosing generic
577 -- body, if any. If none, then returns Empty.
578
579 function Enclosing_Generic_Unit
580 (N : Node_Id) return Node_Id;
581 -- Returns the Node_Id associated with the innermost enclosing generic
582 -- unit, if any. If none, then returns Empty.
583
584 function Enclosing_Lib_Unit_Entity
585 (E : Entity_Id := Current_Scope) return Entity_Id;
586 -- Returns the entity of enclosing library unit node which is the root of
587 -- the current scope (which must not be Standard_Standard, and the caller
588 -- is responsible for ensuring this condition) or other specified entity.
589
590 function Enclosing_Lib_Unit_Node (N : Node_Id) return Node_Id;
591 -- Returns the N_Compilation_Unit node of the library unit that is directly
592 -- or indirectly (through a subunit) at the root of a subtree containing
593 -- N. This may be either the same as Enclosing_Comp_Unit_Node, or if
594 -- Enclosing_Comp_Unit_Node returns a subunit, then the corresponding
595 -- library unit. If no such item is found, returns Empty.
596
597 function Enclosing_Package (E : Entity_Id) return Entity_Id;
598 -- Utility function to return the Ada entity of the package enclosing
599 -- the entity E, if any. Returns Empty if no enclosing package.
600
601 function Enclosing_Package_Or_Subprogram (E : Entity_Id) return Entity_Id;
602 -- Returns the entity of the package or subprogram enclosing E, if any.
603 -- Returns Empty if no enclosing package or subprogram.
604
605 function Enclosing_Subprogram (E : Entity_Id) return Entity_Id;
606 -- Utility function to return the Ada entity of the subprogram enclosing
607 -- the entity E, if any. Returns Empty if no enclosing subprogram.
608
609 procedure Ensure_Freeze_Node (E : Entity_Id);
610 -- Make sure a freeze node is allocated for entity E. If necessary, build
611 -- and initialize a new freeze node and set Has_Delayed_Freeze True for E.
612
613 procedure Enter_Name (Def_Id : Entity_Id);
614 -- Insert new name in symbol table of current scope with check for
615 -- duplications (error message is issued if a conflict is found).
616 -- Note: Enter_Name is not used for overloadable entities, instead these
617 -- are entered using Sem_Ch6.Enter_Overloadable_Entity.
618
619 function Entity_Of (N : Node_Id) return Entity_Id;
620 -- Return the entity of N or Empty. If N is a renaming, return the entity
621 -- of the root renamed object.
622
623 procedure Explain_Limited_Type (T : Entity_Id; N : Node_Id);
624 -- This procedure is called after issuing a message complaining about an
625 -- inappropriate use of limited type T. If useful, it adds additional
626 -- continuation lines to the message explaining why type T is limited.
627 -- Messages are placed at node N.
628
629 type Extensions_Visible_Mode is
630 (Extensions_Visible_None,
631 -- Extensions_Visible does not yield a mode when SPARK_Mode is off. This
632 -- value acts as a default in a non-SPARK compilation.
633
634 Extensions_Visible_False,
635 -- A value of "False" signifies that Extensions_Visible is either
636 -- missing or the pragma is present and the value of its Boolean
637 -- expression is False.
638
639 Extensions_Visible_True);
640 -- A value of "True" signifies that Extensions_Visible is present and
641 -- the value of its Boolean expression is True.
642
643 function Extensions_Visible_Status
644 (Id : Entity_Id) return Extensions_Visible_Mode;
645 -- Given the entity of a subprogram or formal parameter subject to pragma
646 -- Extensions_Visible, return the Boolean value denoted by the expression
647 -- of the pragma.
648
649 procedure Find_Actual
650 (N : Node_Id;
651 Formal : out Entity_Id;
652 Call : out Node_Id);
653 -- Determines if the node N is an actual parameter of a function or a
654 -- procedure call. If so, then Formal points to the entity for the formal
655 -- (Ekind is E_In_Parameter, E_Out_Parameter, or E_In_Out_Parameter) and
656 -- Call is set to the node for the corresponding call. If the node N is not
657 -- an actual parameter then Formal and Call are set to Empty.
658
659 function Find_Specific_Type (CW : Entity_Id) return Entity_Id;
660 -- Find specific type of a class-wide type, and handle the case of an
661 -- incomplete type coming either from a limited_with clause or from an
662 -- incomplete type declaration. If resulting type is private return its
663 -- full view.
664
665 function Find_Body_Discriminal
666 (Spec_Discriminant : Entity_Id) return Entity_Id;
667 -- Given a discriminant of the record type that implements a task or
668 -- protected type, return the discriminal of the corresponding discriminant
669 -- of the actual concurrent type.
670
671 function Find_Corresponding_Discriminant
672 (Id : Node_Id;
673 Typ : Entity_Id) return Entity_Id;
674 -- Because discriminants may have different names in a generic unit and in
675 -- an instance, they are resolved positionally when possible. A reference
676 -- to a discriminant carries the discriminant that it denotes when it is
677 -- analyzed. Subsequent uses of this id on a different type denotes the
678 -- discriminant at the same position in this new type.
679
680 function Find_Enclosing_Iterator_Loop (Id : Entity_Id) return Entity_Id;
681 -- Given an arbitrary entity, try to find the nearest enclosing iterator
682 -- loop. If such a loop is found, return the entity of its identifier (the
683 -- E_Loop scope), otherwise return Empty.
684
685 function Find_Loop_In_Conditional_Block (N : Node_Id) return Node_Id;
686 -- Find the nested loop statement in a conditional block. Loops subject to
687 -- attribute 'Loop_Entry are transformed into blocks. Parts of the original
688 -- loop are nested within the block.
689
690 procedure Find_Overlaid_Entity
691 (N : Node_Id;
692 Ent : out Entity_Id;
693 Off : out Boolean);
694 -- The node N should be an address representation clause. Determines if
695 -- the target expression is the address of an entity with an optional
696 -- offset. If so, set Ent to the entity and, if there is an offset, set
697 -- Off to True, otherwise to False. If N is not an address representation
698 -- clause, or if it is not possible to determine that the address is of
699 -- this form, then set Ent to Empty.
700
701 function Find_Parameter_Type (Param : Node_Id) return Entity_Id;
702 -- Return the type of formal parameter Param as determined by its
703 -- specification.
704
705 -- The following type describes the placement of an arbitrary entity with
706 -- respect to SPARK visible / hidden state space.
707
708 type State_Space_Kind is
709 (Not_In_Package,
710 -- An entity is not in the visible, private or body state space when
711 -- the immediate enclosing construct is not a package.
712
713 Visible_State_Space,
714 -- An entity is in the visible state space when it appears immediately
715 -- within the visible declarations of a package or when it appears in
716 -- the visible state space of a nested package which in turn is declared
717 -- in the visible declarations of an enclosing package:
718
719 -- package Pack is
720 -- Visible_Variable : ...
721 -- package Nested
722 -- with Abstract_State => Visible_State
723 -- is
724 -- Visible_Nested_Variable : ...
725 -- end Nested;
726 -- end Pack;
727
728 -- Entities associated with a package instantiation inherit the state
729 -- space from the instance placement:
730
731 -- generic
732 -- package Gen is
733 -- Generic_Variable : ...
734 -- end Gen;
735
736 -- with Gen;
737 -- package Pack is
738 -- package Inst is new Gen;
739 -- -- Generic_Variable is in the visible state space of Pack
740 -- end Pack;
741
742 Private_State_Space,
743 -- An entity is in the private state space when it appears immediately
744 -- within the private declarations of a package or when it appears in
745 -- the visible state space of a nested package which in turn is declared
746 -- in the private declarations of an enclosing package:
747
748 -- package Pack is
749 -- private
750 -- Private_Variable : ...
751 -- package Nested
752 -- with Abstract_State => Private_State
753 -- is
754 -- Private_Nested_Variable : ...
755 -- end Nested;
756 -- end Pack;
757
758 -- The same placement principle applies to package instantiations
759
760 Body_State_Space);
761 -- An entity is in the body state space when it appears immediately
762 -- within the declarations of a package body or when it appears in the
763 -- visible state space of a nested package which in turn is declared in
764 -- the declarations of an enclosing package body:
765
766 -- package body Pack is
767 -- Body_Variable : ...
768 -- package Nested
769 -- with Abstract_State => Body_State
770 -- is
771 -- Body_Nested_Variable : ...
772 -- end Nested;
773 -- end Pack;
774
775 -- The same placement principle applies to package instantiations
776
777 procedure Find_Placement_In_State_Space
778 (Item_Id : Entity_Id;
779 Placement : out State_Space_Kind;
780 Pack_Id : out Entity_Id);
781 -- Determine the state space placement of an item. Item_Id denotes the
782 -- entity of an abstract state, object or package instantiation. Placement
783 -- captures the precise placement of the item in the enclosing state space.
784 -- If the state space is that of a package, Pack_Id denotes its entity,
785 -- otherwise Pack_Id is Empty.
786
787 function Find_Static_Alternative (N : Node_Id) return Node_Id;
788 -- N is a case statement whose expression is a compile-time value.
789 -- Determine the alternative chosen, so that the code of non-selected
790 -- alternatives, and the warnings that may apply to them, are removed.
791
792 function First_Actual (Node : Node_Id) return Node_Id;
793 -- Node is an N_Function_Call, N_Procedure_Call_Statement or
794 -- N_Entry_Call_Statement node. The result returned is the first actual
795 -- parameter in declaration order (not the order of parameters as they
796 -- appeared in the source, which can be quite different as a result of the
797 -- use of named parameters). Empty is returned for a call with no
798 -- parameters. The procedure for iterating through the actuals in
799 -- declaration order is to use this function to find the first actual, and
800 -- then use Next_Actual to obtain the next actual in declaration order.
801 -- Note that the value returned is always the expression (not the
802 -- N_Parameter_Association nodes, even if named association is used).
803
804 function Fix_Msg (Id : Entity_Id; Msg : String) return String;
805 -- Replace all occurrences of a particular word in string Msg depending on
806 -- the Ekind of Id as follows:
807 -- * Replace "subprogram" with
808 -- - "entry" when Id is an entry [family]
809 -- - "task type" when Id is a single task object, task type or task
810 -- body.
811 -- * Replace "protected" with
812 -- - "task" when Id is a single task object, task type or task body
813 -- All other non-matching words remain as is
814
815 procedure Gather_Components
816 (Typ : Entity_Id;
817 Comp_List : Node_Id;
818 Governed_By : List_Id;
819 Into : Elist_Id;
820 Report_Errors : out Boolean);
821 -- The purpose of this procedure is to gather the valid components in a
822 -- record type according to the values of its discriminants, in order to
823 -- validate the components of a record aggregate.
824 --
825 -- Typ is the type of the aggregate when its constrained discriminants
826 -- need to be collected, otherwise it is Empty.
827 --
828 -- Comp_List is an N_Component_List node.
829 --
830 -- Governed_By is a list of N_Component_Association nodes, where each
831 -- choice list contains the name of a discriminant and the expression
832 -- field gives its value. The values of the discriminants governing
833 -- the (possibly nested) variant parts in Comp_List are found in this
834 -- Component_Association List.
835 --
836 -- Into is the list where the valid components are appended. Note that
837 -- Into need not be an Empty list. If it's not, components are attached
838 -- to its tail.
839 --
840 -- Report_Errors is set to True if the values of the discriminants are
841 -- non-static.
842 --
843 -- This procedure is also used when building a record subtype. If the
844 -- discriminant constraint of the subtype is static, the components of the
845 -- subtype are only those of the variants selected by the values of the
846 -- discriminants. Otherwise all components of the parent must be included
847 -- in the subtype for semantic analysis.
848
849 function Get_Actual_Subtype (N : Node_Id) return Entity_Id;
850 -- Given a node for an expression, obtain the actual subtype of the
851 -- expression. In the case of a parameter where the formal is an
852 -- unconstrained array or discriminated type, this will be the previously
853 -- constructed subtype of the actual. Note that this is not quite the
854 -- "Actual Subtype" of the RM, since it is always a constrained type, i.e.
855 -- it is the subtype of the value of the actual. The actual subtype is also
856 -- returned in other cases where it has already been constructed for an
857 -- object. Otherwise the expression type is returned unchanged, except for
858 -- the case of an unconstrained array type, where an actual subtype is
859 -- created, using Insert_Actions if necessary to insert any associated
860 -- actions.
861
862 function Get_Actual_Subtype_If_Available (N : Node_Id) return Entity_Id;
863 -- This is like Get_Actual_Subtype, except that it never constructs an
864 -- actual subtype. If an actual subtype is already available, i.e. the
865 -- Actual_Subtype field of the corresponding entity is set, then it is
866 -- returned. Otherwise the Etype of the node is returned.
867
868 function Get_Body_From_Stub (N : Node_Id) return Node_Id;
869 -- Return the body node for a stub
870
871 function Get_Cursor_Type
872 (Aspect : Node_Id;
873 Typ : Entity_Id) return Entity_Id;
874 -- Find Cursor type in scope of type Typ with Iterable aspect, by locating
875 -- primitive operation First. For use in resolving the other primitive
876 -- operations of an Iterable type and expanding loops and quantified
877 -- expressions over formal containers.
878
879 function Get_Cursor_Type (Typ : Entity_Id) return Entity_Id;
880 -- Find Cursor type in scope of type Typ with Iterable aspect, by locating
881 -- primitive operation First. For use after resolving the primitive
882 -- operations of an Iterable type.
883
884 function Get_Default_External_Name (E : Node_Or_Entity_Id) return Node_Id;
885 -- This is used to construct the string literal node representing a
886 -- default external name, i.e. one that is constructed from the name of an
887 -- entity, or (in the case of extended DEC import/export pragmas, an
888 -- identifier provided as the external name. Letters in the name are
889 -- according to the setting of Opt.External_Name_Default_Casing.
890
891 function Get_Enclosing_Object (N : Node_Id) return Entity_Id;
892 -- If expression N references a part of an object, return this object.
893 -- Otherwise return Empty. Expression N should have been resolved already.
894
895 function Get_Generic_Entity (N : Node_Id) return Entity_Id;
896 -- Returns the true generic entity in an instantiation. If the name in the
897 -- instantiation is a renaming, the function returns the renamed generic.
898
899 function Get_Incomplete_View_Of_Ancestor (E : Entity_Id) return Entity_Id;
900 -- Implements the notion introduced ever-so briefly in RM 7.3.1 (5.2/3):
901 -- in a child unit a derived type is within the derivation class of an
902 -- ancestor declared in a parent unit, even if there is an intermediate
903 -- derivation that does not see the full view of that ancestor.
904
905 procedure Get_Index_Bounds (N : Node_Id; L, H : out Node_Id);
906 -- This procedure assigns to L and H respectively the values of the low and
907 -- high bounds of node N, which must be a range, subtype indication, or the
908 -- name of a scalar subtype. The result in L, H may be set to Error if
909 -- there was an earlier error in the range.
910
911 function Get_Enum_Lit_From_Pos
912 (T : Entity_Id;
913 Pos : Uint;
914 Loc : Source_Ptr) return Node_Id;
915 -- This function returns an identifier denoting the E_Enumeration_Literal
916 -- entity for the specified value from the enumeration type or subtype T.
917 -- The second argument is the Pos value, which is assumed to be in range.
918 -- The third argument supplies a source location for constructed nodes
919 -- returned by this function.
920
921 function Get_Iterable_Type_Primitive
922 (Typ : Entity_Id;
923 Nam : Name_Id) return Entity_Id;
924 -- Retrieve one of the primitives First, Next, Has_Element, Element from
925 -- the value of the Iterable aspect of a formal type.
926
927 procedure Get_Library_Unit_Name_String (Decl_Node : Node_Id);
928 -- Retrieve the fully expanded name of the library unit declared by
929 -- Decl_Node into the name buffer.
930
931 function Get_Name_Entity_Id (Id : Name_Id) return Entity_Id;
932 pragma Inline (Get_Name_Entity_Id);
933 -- An entity value is associated with each name in the name table. The
934 -- Get_Name_Entity_Id function fetches the Entity_Id of this entity, which
935 -- is the innermost visible entity with the given name. See the body of
936 -- Sem_Ch8 for further details on handling of entity visibility.
937
938 function Get_Name_From_CTC_Pragma (N : Node_Id) return String_Id;
939 -- Return the Name component of Test_Case pragma N
940 -- Bad name now that this no longer applies to Contract_Case ???
941
942 function Get_Parent_Entity (Unit : Node_Id) return Entity_Id;
943 -- Get defining entity of parent unit of a child unit. In most cases this
944 -- is the defining entity of the unit, but for a child instance whose
945 -- parent needs a body for inlining, the instantiation node of the parent
946 -- has not yet been rewritten as a package declaration, and the entity has
947 -- to be retrieved from the Instance_Spec of the unit.
948
949 function Get_Pragma_Id (N : Node_Id) return Pragma_Id;
950 pragma Inline (Get_Pragma_Id);
951 -- Obtains the Pragma_Id from the Chars field of Pragma_Identifier (N)
952
953 function Get_Qualified_Name
954 (Id : Entity_Id;
955 Suffix : Entity_Id := Empty) return Name_Id;
956 -- Obtain the fully qualified form of entity Id. The format is:
957 -- scope_of_id-1__scope_of_id__chars_of_id__chars_of_suffix
958
959 function Get_Qualified_Name
960 (Nam : Name_Id;
961 Suffix : Name_Id := No_Name;
962 Scop : Entity_Id := Current_Scope) return Name_Id;
963 -- Obtain the fully qualified form of name Nam assuming it appears in scope
964 -- Scop. The format is:
965 -- scop-1__scop__nam__suffix
966
967 procedure Get_Reason_String (N : Node_Id);
968 -- Recursive routine to analyze reason argument for pragma Warnings. The
969 -- value of the reason argument is appended to the current string using
970 -- Store_String_Chars. The reason argument is expected to be a string
971 -- literal or concatenation of string literals. An error is given for
972 -- any other form.
973
974 function Get_Reference_Discriminant (Typ : Entity_Id) return Entity_Id;
975 -- If Typ has Implicit_Dereference, return discriminant specified in the
976 -- corresponding aspect.
977
978 function Get_Referenced_Object (N : Node_Id) return Node_Id;
979 -- Given a node, return the renamed object if the node represents a renamed
980 -- object, otherwise return the node unchanged. The node may represent an
981 -- arbitrary expression.
982
983 function Get_Renamed_Entity (E : Entity_Id) return Entity_Id;
984 -- Given an entity for an exception, package, subprogram or generic unit,
985 -- returns the ultimately renamed entity if this is a renaming. If this is
986 -- not a renamed entity, returns its argument. It is an error to call this
987 -- with any other kind of entity.
988
989 function Get_Return_Object (N : Node_Id) return Entity_Id;
990 -- Given an extended return statement, return the corresponding return
991 -- object, identified as the one for which Is_Return_Object = True.
992
993 function Get_Subprogram_Entity (Nod : Node_Id) return Entity_Id;
994 -- Nod is either a procedure call statement, or a function call, or an
995 -- accept statement node. This procedure finds the Entity_Id of the related
996 -- subprogram or entry and returns it, or if no subprogram can be found,
997 -- returns Empty.
998
999 function Get_Task_Body_Procedure (E : Entity_Id) return Node_Id;
1000 pragma Inline (Get_Task_Body_Procedure);
1001 -- Given an entity for a task type or subtype, retrieves the
1002 -- Task_Body_Procedure field from the corresponding task type declaration.
1003
1004 function Get_User_Defined_Eq (E : Entity_Id) return Entity_Id;
1005 -- For a type entity, return the entity of the primitive equality function
1006 -- for the type if it exists, otherwise return Empty.
1007
1008 procedure Get_Views
1009 (Typ : Entity_Id;
1010 Priv_Typ : out Entity_Id;
1011 Full_Typ : out Entity_Id;
1012 Full_Base : out Entity_Id;
1013 CRec_Typ : out Entity_Id);
1014 -- Obtain the partial and full view of type Typ and in addition any extra
1015 -- types the full view may have. The return entities are as follows:
1016 --
1017 -- Priv_Typ - the partial view (a private type)
1018 -- Full_Typ - the full view
1019 -- Full_Base - the base type of the full view
1020 -- CRec_Typ - the corresponding record type of the full view
1021
1022 function Has_Access_Values (T : Entity_Id) return Boolean;
1023 -- Returns true if type or subtype T is an access type, or has a component
1024 -- (at any recursive level) that is an access type. This is a conservative
1025 -- predicate, if it is not known whether or not T contains access values
1026 -- (happens for generic formals in some cases), then False is returned.
1027 -- Note that tagged types return False. Even though the tag is implemented
1028 -- as an access type internally, this function tests only for access types
1029 -- known to the programmer. See also Has_Tagged_Component.
1030
1031 type Alignment_Result is (Known_Compatible, Unknown, Known_Incompatible);
1032 -- Result of Has_Compatible_Alignment test, description found below. Note
1033 -- that the values are arranged in increasing order of problematicness.
1034
1035 function Has_Compatible_Alignment
1036 (Obj : Entity_Id;
1037 Expr : Node_Id;
1038 Layout_Done : Boolean) return Alignment_Result;
1039 -- Obj is an object entity, and expr is a node for an object reference. If
1040 -- the alignment of the object referenced by Expr is known to be compatible
1041 -- with the alignment of Obj (i.e. is larger or the same), then the result
1042 -- is Known_Compatible. If the alignment of the object referenced by Expr
1043 -- is known to be less than the alignment of Obj, then Known_Incompatible
1044 -- is returned. If neither condition can be reliably established at compile
1045 -- time, then Unknown is returned. If Layout_Done is True, the function can
1046 -- assume that the information on size and alignment of types and objects
1047 -- is present in the tree. This is used to determine if alignment checks
1048 -- are required for address clauses (Layout_Done is False in this case) as
1049 -- well as to issue appropriate warnings for them in the post compilation
1050 -- phase (Layout_Done is True in this case).
1051 --
1052 -- Note: Known_Incompatible does not mean that at run time the alignment
1053 -- of Expr is known to be wrong for Obj, just that it can be determined
1054 -- that alignments have been explicitly or implicitly specified which are
1055 -- incompatible (whereas Unknown means that even this is not known). The
1056 -- appropriate reaction of a caller to Known_Incompatible is to treat it as
1057 -- Unknown, but issue a warning that there may be an alignment error.
1058
1059 function Has_Declarations (N : Node_Id) return Boolean;
1060 -- Determines if the node can have declarations
1061
1062 function Has_Defaulted_Discriminants (Typ : Entity_Id) return Boolean;
1063 -- Simple predicate to test for defaulted discriminants
1064
1065 function Has_Denormals (E : Entity_Id) return Boolean;
1066 -- Determines if the floating-point type E supports denormal numbers.
1067 -- Returns False if E is not a floating-point type.
1068
1069 function Has_Discriminant_Dependent_Constraint
1070 (Comp : Entity_Id) return Boolean;
1071 -- Returns True if and only if Comp has a constrained subtype that depends
1072 -- on a discriminant.
1073
1074 function Has_Effectively_Volatile_Profile
1075 (Subp_Id : Entity_Id) return Boolean;
1076 -- Determine whether subprogram Subp_Id has an effectively volatile formal
1077 -- parameter or returns an effectively volatile value.
1078
1079 function Has_Full_Default_Initialization (Typ : Entity_Id) return Boolean;
1080 -- Determine whether type Typ defines "full default initialization" as
1081 -- specified by SPARK RM 3.1. To qualify as such, the type must be
1082 -- * A scalar type with specified Default_Value
1083 -- * An array-of-scalar type with specified Default_Component_Value
1084 -- * An array type whose element type defines full default initialization
1085 -- * A protected type, record type or type extension whose components
1086 -- either include a default expression or have a type which defines
1087 -- full default initialization. In the case of type extensions, the
1088 -- parent type defines full default initialization.
1089 -- * A task type
1090 -- * A private type whose Default_Initial_Condition is non-null
1091
1092 function Has_Infinities (E : Entity_Id) return Boolean;
1093 -- Determines if the range of the floating-point type E includes
1094 -- infinities. Returns False if E is not a floating-point type.
1095
1096 function Has_Interfaces
1097 (T : Entity_Id;
1098 Use_Full_View : Boolean := True) return Boolean;
1099 -- Where T is a concurrent type or a record type, returns true if T covers
1100 -- any abstract interface types. In case of private types the argument
1101 -- Use_Full_View controls if the check is done using its full view (if
1102 -- available).
1103
1104 function Has_No_Obvious_Side_Effects (N : Node_Id) return Boolean;
1105 -- This is a simple minded function for determining whether an expression
1106 -- has no obvious side effects. It is used only for determining whether
1107 -- warnings are needed in certain situations, and is not guaranteed to
1108 -- be accurate in either direction. Exceptions may mean an expression
1109 -- does in fact have side effects, but this may be ignored and True is
1110 -- returned, or a complex expression may in fact be side effect free
1111 -- but we don't recognize it here and return False. The Side_Effect_Free
1112 -- routine in Remove_Side_Effects is much more extensive and perhaps could
1113 -- be shared, so that this routine would be more accurate.
1114
1115 function Has_Non_Null_Refinement (Id : Entity_Id) return Boolean;
1116 -- Determine whether abstract state Id has at least one nonnull constituent
1117 -- as expressed in pragma Refined_State. This function does not take into
1118 -- account the visible refinement region of abstract state Id.
1119
1120 function Has_Null_Body (Proc_Id : Entity_Id) return Boolean;
1121 -- Determine whether the body of procedure Proc_Id contains a sole
1122 -- null statement, possibly followed by an optional return. Used to
1123 -- optimize useless calls to assertion checks.
1124
1125 function Has_Null_Exclusion (N : Node_Id) return Boolean;
1126 -- Determine whether node N has a null exclusion
1127
1128 function Has_Null_Refinement (Id : Entity_Id) return Boolean;
1129 -- Determine whether abstract state Id has a null refinement as expressed
1130 -- in pragma Refined_State. This function does not take into account the
1131 -- visible refinement region of abstract state Id.
1132
1133 function Has_Overriding_Initialize (T : Entity_Id) return Boolean;
1134 -- Predicate to determine whether a controlled type has a user-defined
1135 -- Initialize primitive (and, in Ada 2012, whether that primitive is
1136 -- non-null), which causes the type to not have preelaborable
1137 -- initialization.
1138
1139 function Has_Preelaborable_Initialization (E : Entity_Id) return Boolean;
1140 -- Return True iff type E has preelaborable initialization as defined in
1141 -- Ada 2005 (see AI-161 for details of the definition of this attribute).
1142
1143 function Has_Private_Component (Type_Id : Entity_Id) return Boolean;
1144 -- Check if a type has a (sub)component of a private type that has not
1145 -- yet received a full declaration.
1146
1147 function Has_Signed_Zeros (E : Entity_Id) return Boolean;
1148 -- Determines if the floating-point type E supports signed zeros.
1149 -- Returns False if E is not a floating-point type.
1150
1151 function Has_Significant_Contract (Subp_Id : Entity_Id) return Boolean;
1152 -- Determine whether subprogram [body] Subp_Id has a significant contract.
1153 -- All subprograms have a N_Contract node, but this does not mean that the
1154 -- contract is useful.
1155
1156 function Has_Static_Array_Bounds (Typ : Node_Id) return Boolean;
1157 -- Return whether an array type has static bounds
1158
1159 function Has_Stream (T : Entity_Id) return Boolean;
1160 -- Tests if type T is derived from Ada.Streams.Root_Stream_Type, or in the
1161 -- case of a composite type, has a component for which this predicate is
1162 -- True, and if so returns True. Otherwise a result of False means that
1163 -- there is no Stream type in sight. For a private type, the test is
1164 -- applied to the underlying type (or returns False if there is no
1165 -- underlying type).
1166
1167 function Has_Suffix (E : Entity_Id; Suffix : Character) return Boolean;
1168 -- Returns true if the last character of E is Suffix. Used in Assertions.
1169
1170 function Has_Tagged_Component (Typ : Entity_Id) return Boolean;
1171 -- Returns True if Typ is a composite type (array or record) which is
1172 -- either itself a tagged type, or has a component (recursively) which is
1173 -- a tagged type. Returns False for non-composite type, or if no tagged
1174 -- component is present. This function is used to check if "=" has to be
1175 -- expanded into a bunch component comparisons.
1176
1177 function Has_Undefined_Reference (Expr : Node_Id) return Boolean;
1178 -- Given arbitrary expression Expr, determine whether it contains at
1179 -- least one name whose entity is Any_Id.
1180
1181 function Has_Volatile_Component (Typ : Entity_Id) return Boolean;
1182 -- Given arbitrary type Typ, determine whether it contains at least one
1183 -- volatile component.
1184
1185 function Implementation_Kind (Subp : Entity_Id) return Name_Id;
1186 -- Subp is a subprogram marked with pragma Implemented. Return the specific
1187 -- implementation requirement which the pragma imposes. The return value is
1188 -- either Name_By_Any, Name_By_Entry or Name_By_Protected_Procedure.
1189
1190 function Implements_Interface
1191 (Typ_Ent : Entity_Id;
1192 Iface_Ent : Entity_Id;
1193 Exclude_Parents : Boolean := False) return Boolean;
1194 -- Returns true if the Typ_Ent implements interface Iface_Ent
1195
1196 function In_Assertion_Expression_Pragma (N : Node_Id) return Boolean;
1197 -- Returns True if node N appears within a pragma that acts as an assertion
1198 -- expression. See Sem_Prag for the list of qualifying pragmas.
1199
1200 function In_Instance return Boolean;
1201 -- Returns True if the current scope is within a generic instance
1202
1203 function In_Instance_Body return Boolean;
1204 -- Returns True if current scope is within the body of an instance, where
1205 -- several semantic checks (e.g. accessibility checks) are relaxed.
1206
1207 function In_Instance_Not_Visible return Boolean;
1208 -- Returns True if current scope is with the private part or the body of
1209 -- an instance. Other semantic checks are suppressed in this context.
1210
1211 function In_Instance_Visible_Part return Boolean;
1212 -- Returns True if current scope is within the visible part of a package
1213 -- instance, where several additional semantic checks apply.
1214
1215 function In_Package_Body return Boolean;
1216 -- Returns True if current scope is within a package body
1217
1218 function In_Parameter_Specification (N : Node_Id) return Boolean;
1219 -- Returns True if node N belongs to a parameter specification
1220
1221 function In_Pragma_Expression (N : Node_Id; Nam : Name_Id) return Boolean;
1222 -- Returns true if the expression N occurs within a pragma with name Nam
1223
1224 function In_Pre_Post_Condition (N : Node_Id) return Boolean;
1225 -- Returns True if node N appears within a pre/postcondition pragma. Note
1226 -- the pragma Check equivalents are NOT considered.
1227
1228 function In_Reverse_Storage_Order_Object (N : Node_Id) return Boolean;
1229 -- Returns True if N denotes a component or subcomponent in a record or
1230 -- array that has Reverse_Storage_Order.
1231
1232 function In_Subprogram_Or_Concurrent_Unit return Boolean;
1233 -- Determines if the current scope is within a subprogram compilation unit
1234 -- (inside a subprogram declaration, subprogram body, or generic subprogram
1235 -- declaration) or within a task or protected body. The test is for
1236 -- appearing anywhere within such a construct (that is it does not need
1237 -- to be directly within).
1238
1239 function In_Visible_Part (Scope_Id : Entity_Id) return Boolean;
1240 -- Determine whether a declaration occurs within the visible part of a
1241 -- package specification. The package must be on the scope stack, and the
1242 -- corresponding private part must not.
1243
1244 function Incomplete_Or_Partial_View (Id : Entity_Id) return Entity_Id;
1245 -- Given the entity of a constant or a type, retrieve the incomplete or
1246 -- partial view of the same entity. Note that Id may not have a partial
1247 -- view in which case the function returns Empty.
1248
1249 function Indexed_Component_Bit_Offset (N : Node_Id) return Uint;
1250 -- Given an N_Indexed_Component node, return the first bit position of the
1251 -- component if it is known at compile time. A value of No_Uint means that
1252 -- either the value is not yet known before back-end processing or it is
1253 -- not known at compile time after back-end processing.
1254
1255 procedure Inherit_Default_Init_Cond_Procedure (Typ : Entity_Id);
1256 -- Inherit the default initial condition procedure from the parent type of
1257 -- derived type Typ.
1258
1259 procedure Inherit_Rep_Item_Chain (Typ : Entity_Id; From_Typ : Entity_Id);
1260 -- Inherit the rep item chain of type From_Typ without clobbering any
1261 -- existing rep items on Typ's chain. Typ is the destination type.
1262
1263 procedure Insert_Explicit_Dereference (N : Node_Id);
1264 -- In a context that requires a composite or subprogram type and where a
1265 -- prefix is an access type, rewrite the access type node N (which is the
1266 -- prefix, e.g. of an indexed component) as an explicit dereference.
1267
1268 procedure Inspect_Deferred_Constant_Completion (Decls : List_Id);
1269 -- Examine all deferred constants in the declaration list Decls and check
1270 -- whether they have been completed by a full constant declaration or an
1271 -- Import pragma. Emit the error message if that is not the case.
1272
1273 procedure Install_Generic_Formals (Subp_Id : Entity_Id);
1274 -- Install both the generic formal parameters and the formal parameters of
1275 -- generic subprogram Subp_Id into visibility.
1276
1277 function Is_Actual_Out_Parameter (N : Node_Id) return Boolean;
1278 -- Determines if N is an actual parameter of out mode in a subprogram call
1279
1280 function Is_Actual_Parameter (N : Node_Id) return Boolean;
1281 -- Determines if N is an actual parameter in a subprogram call
1282
1283 function Is_Actual_Tagged_Parameter (N : Node_Id) return Boolean;
1284 -- Determines if N is an actual parameter of a formal of tagged type in a
1285 -- subprogram call.
1286
1287 function Is_Aliased_View (Obj : Node_Id) return Boolean;
1288 -- Determine if Obj is an aliased view, i.e. the name of an object to which
1289 -- 'Access or 'Unchecked_Access can apply. Note that this routine uses the
1290 -- rules of the language, it does not take into account the restriction
1291 -- No_Implicit_Aliasing, so it can return True if the restriction is active
1292 -- and Obj violates the restriction. The caller is responsible for calling
1293 -- Restrict.Check_No_Implicit_Aliasing if True is returned, but there is a
1294 -- requirement for obeying the restriction in the call context.
1295
1296 function Is_Ancestor_Package
1297 (E1 : Entity_Id;
1298 E2 : Entity_Id) return Boolean;
1299 -- Determine whether package E1 is an ancestor of E2
1300
1301 function Is_Atomic_Object (N : Node_Id) return Boolean;
1302 -- Determines if the given node denotes an atomic object in the sense of
1303 -- the legality checks described in RM C.6(12).
1304
1305 function Is_Atomic_Or_VFA_Object (N : Node_Id) return Boolean;
1306 -- Determines if the given node is an atomic object (Is_Atomic_Object true)
1307 -- or else is an object for which VFA is present.
1308
1309 function Is_Attribute_Result (N : Node_Id) return Boolean;
1310 -- Determine whether node N denotes attribute 'Result
1311
1312 function Is_Attribute_Update (N : Node_Id) return Boolean;
1313 -- Determine whether node N denotes attribute 'Update
1314
1315 function Is_Body_Or_Package_Declaration (N : Node_Id) return Boolean;
1316 -- Determine whether node N denotes a body or a package declaration
1317
1318 function Is_Bounded_String (T : Entity_Id) return Boolean;
1319 -- True if T is a bounded string type. Used to make sure "=" composes
1320 -- properly for bounded string types.
1321
1322 function Is_Constant_Bound (Exp : Node_Id) return Boolean;
1323 -- Exp is the expression for an array bound. Determines whether the
1324 -- bound is a compile-time known value, or a constant entity, or an
1325 -- enumeration literal, or an expression composed of constant-bound
1326 -- subexpressions which are evaluated by means of standard operators.
1327
1328 function Is_Container_Element (Exp : Node_Id) return Boolean;
1329 -- This routine recognizes expressions that denote an element of one of
1330 -- the predefined containers, when the source only contains an indexing
1331 -- operation and an implicit dereference is inserted by the compiler.
1332 -- In the absence of this optimization, the indexing creates a temporary
1333 -- controlled cursor that sets the tampering bit of the container, and
1334 -- restricts the use of the convenient notation C (X) to contexts that
1335 -- do not check the tampering bit (e.g. C.Include (X, C (Y)). Exp is an
1336 -- explicit dereference. The transformation applies when it has the form
1337 -- F (X).Discr.all.
1338
1339 function Is_Contract_Annotation (Item : Node_Id) return Boolean;
1340 -- Determine whether aspect specification or pragma Item is a contract
1341 -- annotation.
1342
1343 function Is_Controlling_Limited_Procedure
1344 (Proc_Nam : Entity_Id) return Boolean;
1345 -- Ada 2005 (AI-345): Determine whether Proc_Nam is a primitive procedure
1346 -- of a limited interface with a controlling first parameter.
1347
1348 function Is_CPP_Constructor_Call (N : Node_Id) return Boolean;
1349 -- Returns True if N is a call to a CPP constructor
1350
1351 function Is_Child_Or_Sibling
1352 (Pack_1 : Entity_Id;
1353 Pack_2 : Entity_Id) return Boolean;
1354 -- Determine the following relations between two arbitrary packages:
1355 -- 1) One package is the parent of a child package
1356 -- 2) Both packages are siblings and share a common parent
1357
1358 function Is_Concurrent_Interface (T : Entity_Id) return Boolean;
1359 -- First determine whether type T is an interface and then check whether
1360 -- it is of protected, synchronized or task kind.
1361
1362 function Is_Current_Instance (N : Node_Id) return Boolean;
1363 -- Predicate is true if N legally denotes a type name within its own
1364 -- declaration. Prior to Ada 2012 this covered only synchronized type
1365 -- declarations. In Ada 2012 it also covers type and subtype declarations
1366 -- with aspects: Invariant, Predicate, and Default_Initial_Condition.
1367
1368 function Is_Declaration (N : Node_Id) return Boolean;
1369 -- Determine whether arbitrary node N denotes a declaration
1370
1371 function Is_Declared_Within_Variant (Comp : Entity_Id) return Boolean;
1372 -- Returns True iff component Comp is declared within a variant part
1373
1374 function Is_Dependent_Component_Of_Mutable_Object
1375 (Object : Node_Id) return Boolean;
1376 -- Returns True if Object is the name of a subcomponent that depends on
1377 -- discriminants of a variable whose nominal subtype is unconstrained and
1378 -- not indefinite, and the variable is not aliased. Otherwise returns
1379 -- False. The nodes passed to this function are assumed to denote objects.
1380
1381 function Is_Dereferenced (N : Node_Id) return Boolean;
1382 -- N is a subexpression node of an access type. This function returns true
1383 -- if N appears as the prefix of a node that does a dereference of the
1384 -- access value (selected/indexed component, explicit dereference or a
1385 -- slice), and false otherwise.
1386
1387 function Is_Descendant_Of (T1 : Entity_Id; T2 : Entity_Id) return Boolean;
1388 -- Returns True if type T1 is a descendant of type T2, and false otherwise.
1389 -- This is the RM definition, a type is a descendant of another type if it
1390 -- is the same type or is derived from a descendant of the other type.
1391
1392 function Is_Descendant_Of_Suspension_Object
1393 (Typ : Entity_Id) return Boolean;
1394 -- Determine whether type Typ is a descendant of type Suspension_Object
1395 -- defined in Ada.Synchronous_Task_Control. This version is different from
1396 -- Is_Descendant_Of as the detection of Suspension_Object does not involve
1397 -- an entity and by extension a call to RTSfind.
1398
1399 function Is_Double_Precision_Floating_Point_Type
1400 (E : Entity_Id) return Boolean;
1401 -- Return whether E is a double precision floating point type,
1402 -- characterized by:
1403 -- . machine_radix = 2
1404 -- . machine_mantissa = 53
1405 -- . machine_emax = 2**10
1406 -- . machine_emin = 3 - machine_emax
1407
1408 function Is_Effectively_Volatile (Id : Entity_Id) return Boolean;
1409 -- Determine whether a type or object denoted by entity Id is effectively
1410 -- volatile (SPARK RM 7.1.2). To qualify as such, the entity must be either
1411 -- * Volatile
1412 -- * An array type subject to aspect Volatile_Components
1413 -- * An array type whose component type is effectively volatile
1414 -- * A protected type
1415 -- * Descendant of type Ada.Synchronous_Task_Control.Suspension_Object
1416
1417 function Is_Effectively_Volatile_Object (N : Node_Id) return Boolean;
1418 -- Determine whether an arbitrary node denotes an effectively volatile
1419 -- object (SPARK RM 7.1.2).
1420
1421 function Is_Entry_Body (Id : Entity_Id) return Boolean;
1422 -- Determine whether entity Id is the body entity of an entry [family]
1423
1424 function Is_Entry_Declaration (Id : Entity_Id) return Boolean;
1425 -- Determine whether entity Id is the spec entity of an entry [family]
1426
1427 function Is_Expanded_Priority_Attribute (E : Entity_Id) return Boolean;
1428 -- Check whether a function in a call is an expanded priority attribute,
1429 -- which is transformed into an Rtsfind call to Get_Ceiling. This expansion
1430 -- does not take place in a configurable runtime.
1431
1432 function Is_Expression_Function (Subp : Entity_Id) return Boolean;
1433 -- Determine whether subprogram [body] Subp denotes an expression function
1434
1435 function Is_Expression_Function_Or_Completion
1436 (Subp : Entity_Id) return Boolean;
1437 -- Determine whether subprogram [body] Subp denotes an expression function
1438 -- or is completed by an expression function body.
1439
1440 function Is_EVF_Expression (N : Node_Id) return Boolean;
1441 -- Determine whether node N denotes a reference to a formal parameter of
1442 -- a specific tagged type whose related subprogram is subject to pragma
1443 -- Extensions_Visible with value "False" (SPARK RM 6.1.7). Several other
1444 -- constructs fall under this category:
1445 -- 1) A qualified expression whose operand is EVF
1446 -- 2) A type conversion whose operand is EVF
1447 -- 3) An if expression with at least one EVF dependent_expression
1448 -- 4) A case expression with at least one EVF dependent_expression
1449
1450 function Is_False (U : Uint) return Boolean;
1451 pragma Inline (Is_False);
1452 -- The argument is a Uint value which is the Boolean'Pos value of a Boolean
1453 -- operand (i.e. is either 0 for False, or 1 for True). This function tests
1454 -- if it is False (i.e. zero).
1455
1456 function Is_Fixed_Model_Number (U : Ureal; T : Entity_Id) return Boolean;
1457 -- Returns True iff the number U is a model number of the fixed-point type
1458 -- T, i.e. if it is an exact multiple of Small.
1459
1460 function Is_Fully_Initialized_Type (Typ : Entity_Id) return Boolean;
1461 -- Typ is a type entity. This function returns true if this type is fully
1462 -- initialized, meaning that an object of the type is fully initialized.
1463 -- Note that initialization resulting from use of pragma Normalize_Scalars
1464 -- does not count. Note that this is only used for the purpose of issuing
1465 -- warnings for objects that are potentially referenced uninitialized. This
1466 -- means that the result returned is not crucial, but should err on the
1467 -- side of thinking things are fully initialized if it does not know.
1468
1469 function Is_Generic_Declaration_Or_Body (Decl : Node_Id) return Boolean;
1470 -- Determine whether arbitrary declaration Decl denotes a generic package,
1471 -- a generic subprogram or a generic body.
1472
1473 function Is_Inherited_Operation (E : Entity_Id) return Boolean;
1474 -- E is a subprogram. Return True is E is an implicit operation inherited
1475 -- by a derived type declaration.
1476
1477 function Is_Inherited_Operation_For_Type
1478 (E : Entity_Id;
1479 Typ : Entity_Id) return Boolean;
1480 -- E is a subprogram. Return True is E is an implicit operation inherited
1481 -- by the derived type declaration for type Typ.
1482
1483 function Is_Iterator (Typ : Entity_Id) return Boolean;
1484 -- AI05-0139-2: Check whether Typ is one of the predefined interfaces in
1485 -- Ada.Iterator_Interfaces, or it is derived from one.
1486
1487 function Is_Iterator_Over_Array (N : Node_Id) return Boolean;
1488 -- N is an iterator specification. Returns True iff N is an iterator over
1489 -- an array, either inside a loop of the form 'for X of A' or a quantified
1490 -- expression of the form 'for all/some X of A' where A is of array type.
1491
1492 type Is_LHS_Result is (Yes, No, Unknown);
1493 function Is_LHS (N : Node_Id) return Is_LHS_Result;
1494 -- Returns Yes if N is definitely used as Name in an assignment statement.
1495 -- Returns No if N is definitely NOT used as a Name in an assignment
1496 -- statement. Returns Unknown if we can't tell at this stage (happens in
1497 -- the case where we don't know the type of N yet, and we have something
1498 -- like N.A := 3, where this counts as N being used on the left side of
1499 -- an assignment only if N is not an access type. If it is an access type
1500 -- then it is N.all.A that is assigned, not N.
1501
1502 function Is_Library_Level_Entity (E : Entity_Id) return Boolean;
1503 -- A library-level declaration is one that is accessible from Standard,
1504 -- i.e. a library unit or an entity declared in a library package.
1505
1506 function Is_Limited_Class_Wide_Type (Typ : Entity_Id) return Boolean;
1507 -- Determine whether a given type is a limited class-wide type, in which
1508 -- case it needs a Master_Id, because extensions of its designated type
1509 -- may include task components. A class-wide type that comes from a
1510 -- limited view must be treated in the same way.
1511
1512 function Is_Local_Variable_Reference (Expr : Node_Id) return Boolean;
1513 -- Determines whether Expr is a reference to a variable or IN OUT mode
1514 -- parameter of the current enclosing subprogram.
1515 -- Why are OUT parameters not considered here ???
1516
1517 function Is_Nontrivial_Default_Init_Cond_Procedure
1518 (Id : Entity_Id) return Boolean;
1519 -- Determine whether entity Id denotes the procedure that verifies the
1520 -- assertion expression of pragma Default_Initial_Condition and if it does,
1521 -- the encapsulated expression is nontrivial.
1522
1523 function Is_Null_Record_Type (T : Entity_Id) return Boolean;
1524 -- Determine whether T is declared with a null record definition or a
1525 -- null component list.
1526
1527 function Is_Object_Reference (N : Node_Id) return Boolean;
1528 -- Determines if the tree referenced by N represents an object. Both
1529 -- variable and constant objects return True (compare Is_Variable).
1530
1531 function Is_OK_Variable_For_Out_Formal (AV : Node_Id) return Boolean;
1532 -- Used to test if AV is an acceptable formal for an OUT or IN OUT formal.
1533 -- Note that the Is_Variable function is not quite the right test because
1534 -- this is a case in which conversions whose expression is a variable (in
1535 -- the Is_Variable sense) with an untagged type target are considered view
1536 -- conversions and hence variables.
1537
1538 function Is_OK_Volatile_Context
1539 (Context : Node_Id;
1540 Obj_Ref : Node_Id) return Boolean;
1541 -- Determine whether node Context denotes a "non-interfering context" (as
1542 -- defined in SPARK RM 7.1.3(12)) where volatile reference Obj_Ref can
1543 -- safely reside.
1544
1545 function Is_Package_Contract_Annotation (Item : Node_Id) return Boolean;
1546 -- Determine whether aspect specification or pragma Item is one of the
1547 -- following package contract annotations:
1548 -- Abstract_State
1549 -- Initial_Condition
1550 -- Initializes
1551 -- Refined_State
1552
1553 function Is_Partially_Initialized_Type
1554 (Typ : Entity_Id;
1555 Include_Implicit : Boolean := True) return Boolean;
1556 -- Typ is a type entity. This function returns true if this type is partly
1557 -- initialized, meaning that an object of the type is at least partly
1558 -- initialized (in particular in the record case, that at least one
1559 -- component has an initialization expression). Note that initialization
1560 -- resulting from the use of pragma Normalize_Scalars does not count.
1561 -- Include_Implicit controls whether implicit initialization of access
1562 -- values to null, and of discriminant values, is counted as making the
1563 -- type be partially initialized. For the default setting of True, these
1564 -- implicit cases do count, and discriminated types or types containing
1565 -- access values not explicitly initialized will return True. Otherwise
1566 -- if Include_Implicit is False, these cases do not count as making the
1567 -- type be partially initialized.
1568
1569 function Is_Potentially_Unevaluated (N : Node_Id) return Boolean;
1570 -- Predicate to implement definition given in RM 6.1.1 (20/3)
1571
1572 function Is_Potentially_Persistent_Type (T : Entity_Id) return Boolean;
1573 -- Determines if type T is a potentially persistent type. A potentially
1574 -- persistent type is defined (recursively) as a scalar type, an untagged
1575 -- record whose components are all of a potentially persistent type, or an
1576 -- array with all static constraints whose component type is potentially
1577 -- persistent. A private type is potentially persistent if the full type
1578 -- is potentially persistent.
1579
1580 function Is_Protected_Self_Reference (N : Node_Id) return Boolean;
1581 -- Return True if node N denotes a protected type name which represents
1582 -- the current instance of a protected object according to RM 9.4(21/2).
1583
1584 function Is_RCI_Pkg_Spec_Or_Body (Cunit : Node_Id) return Boolean;
1585 -- Return True if a compilation unit is the specification or the
1586 -- body of a remote call interface package.
1587
1588 function Is_Remote_Access_To_Class_Wide_Type (E : Entity_Id) return Boolean;
1589 -- Return True if E is a remote access-to-class-wide type
1590
1591 function Is_Remote_Access_To_Subprogram_Type (E : Entity_Id) return Boolean;
1592 -- Return True if E is a remote access to subprogram type
1593
1594 function Is_Remote_Call (N : Node_Id) return Boolean;
1595 -- Return True if N denotes a potentially remote call
1596
1597 function Is_Renamed_Entry (Proc_Nam : Entity_Id) return Boolean;
1598 -- Return True if Proc_Nam is a procedure renaming of an entry
1599
1600 function Is_Renaming_Declaration (N : Node_Id) return Boolean;
1601 -- Determine whether arbitrary node N denotes a renaming declaration
1602
1603 function Is_Reversible_Iterator (Typ : Entity_Id) return Boolean;
1604 -- AI05-0139-2: Check whether Typ is derived from the predefined interface
1605 -- Ada.Iterator_Interfaces.Reversible_Iterator.
1606
1607 function Is_Selector_Name (N : Node_Id) return Boolean;
1608 -- Given an N_Identifier node N, determines if it is a Selector_Name.
1609 -- As described in Sinfo, Selector_Names are special because they
1610 -- represent use of the N_Identifier node for a true identifier, when
1611 -- normally such nodes represent a direct name.
1612
1613 function Is_Single_Concurrent_Object (Id : Entity_Id) return Boolean;
1614 -- Determine whether arbitrary entity Id denotes the anonymous object
1615 -- created for a single protected or single task type.
1616
1617 function Is_Single_Concurrent_Type (Id : Entity_Id) return Boolean;
1618 -- Determine whether arbitrary entity Id denotes a single protected or
1619 -- single task type.
1620
1621 function Is_Single_Concurrent_Type_Declaration (N : Node_Id) return Boolean;
1622 -- Determine whether arbitrary node N denotes the declaration of a single
1623 -- protected type or single task type.
1624
1625 function Is_Single_Precision_Floating_Point_Type
1626 (E : Entity_Id) return Boolean;
1627 -- Return whether E is a single precision floating point type,
1628 -- characterized by:
1629 -- . machine_radix = 2
1630 -- . machine_mantissa = 24
1631 -- . machine_emax = 2**7
1632 -- . machine_emin = 3 - machine_emax
1633
1634 function Is_Single_Protected_Object (Id : Entity_Id) return Boolean;
1635 -- Determine whether arbitrary entity Id denotes the anonymous object
1636 -- created for a single protected type.
1637
1638 function Is_Single_Task_Object (Id : Entity_Id) return Boolean;
1639 -- Determine whether arbitrary entity Id denotes the anonymous object
1640 -- created for a single task type.
1641
1642 function Is_SPARK_05_Initialization_Expr (N : Node_Id) return Boolean;
1643 -- Determines if the tree referenced by N represents an initialization
1644 -- expression in SPARK 2005, suitable for initializing an object in an
1645 -- object declaration.
1646
1647 function Is_SPARK_05_Object_Reference (N : Node_Id) return Boolean;
1648 -- Determines if the tree referenced by N represents an object in SPARK
1649 -- 2005. This differs from Is_Object_Reference in that only variables,
1650 -- constants, formal parameters, and selected_components of those are
1651 -- valid objects in SPARK 2005.
1652
1653 function Is_Specific_Tagged_Type (Typ : Entity_Id) return Boolean;
1654 -- Determine whether an arbitrary [private] type is specifically tagged
1655
1656 function Is_Statement (N : Node_Id) return Boolean;
1657 pragma Inline (Is_Statement);
1658 -- Check if the node N is a statement node. Note that this includes
1659 -- the case of procedure call statements (unlike the direct use of
1660 -- the N_Statement_Other_Than_Procedure_Call subtype from Sinfo).
1661 -- Note that a label is *not* a statement, and will return False.
1662
1663 function Is_Subprogram_Contract_Annotation (Item : Node_Id) return Boolean;
1664 -- Determine whether aspect specification or pragma Item is one of the
1665 -- following subprogram contract annotations:
1666 -- Contract_Cases
1667 -- Depends
1668 -- Extensions_Visible
1669 -- Global
1670 -- Post
1671 -- Post_Class
1672 -- Postcondition
1673 -- Pre
1674 -- Pre_Class
1675 -- Precondition
1676 -- Refined_Depends
1677 -- Refined_Global
1678 -- Refined_Post
1679 -- Test_Case
1680
1681 function Is_Subprogram_Stub_Without_Prior_Declaration
1682 (N : Node_Id) return Boolean;
1683 -- Return True if N is a subprogram stub with no prior subprogram
1684 -- declaration.
1685
1686 function Is_Suspension_Object (Id : Entity_Id) return Boolean;
1687 -- Determine whether arbitrary entity Id denotes Suspension_Object defined
1688 -- in Ada.Synchronous_Task_Control.
1689
1690 function Is_Synchronized_Object (Id : Entity_Id) return Boolean;
1691 -- Determine whether entity Id denotes an object and if it does, whether
1692 -- this object is synchronized as specified in SPARK RM 9.1. To qualify as
1693 -- such, the object must be
1694 -- * Of a type that yields a synchronized object
1695 -- * An atomic object with enabled Async_Writers
1696 -- * A constant
1697 -- * A variable subject to pragma Constant_After_Elaboration
1698
1699 function Is_Synchronized_Tagged_Type (E : Entity_Id) return Boolean;
1700 -- Returns True if E is a synchronized tagged type (AARM 3.9.4 (6/2))
1701
1702 function Is_Transfer (N : Node_Id) return Boolean;
1703 -- Returns True if the node N is a statement which is known to cause an
1704 -- unconditional transfer of control at runtime, i.e. the following
1705 -- statement definitely will not be executed.
1706
1707 function Is_True (U : Uint) return Boolean;
1708 pragma Inline (Is_True);
1709 -- The argument is a Uint value which is the Boolean'Pos value of a Boolean
1710 -- operand (i.e. is either 0 for False, or 1 for True). This function tests
1711 -- if it is True (i.e. non-zero).
1712
1713 function Is_Unchecked_Conversion_Instance (Id : Entity_Id) return Boolean;
1714 -- Determine whether an arbitrary entity denotes an instance of function
1715 -- Ada.Unchecked_Conversion.
1716
1717 function Is_Universal_Numeric_Type (T : Entity_Id) return Boolean;
1718 pragma Inline (Is_Universal_Numeric_Type);
1719 -- True if T is Universal_Integer or Universal_Real
1720
1721 function Is_Variable_Size_Array (E : Entity_Id) return Boolean;
1722 -- Returns true if E has variable size components
1723
1724 function Is_Variable_Size_Record (E : Entity_Id) return Boolean;
1725 -- Returns true if E has variable size components
1726
1727 function Is_Variable
1728 (N : Node_Id;
1729 Use_Original_Node : Boolean := True) return Boolean;
1730 -- Determines if the tree referenced by N represents a variable, i.e. can
1731 -- appear on the left side of an assignment. There is one situation (formal
1732 -- parameters) in which untagged type conversions are also considered
1733 -- variables, but Is_Variable returns False for such cases, since it has
1734 -- no knowledge of the context. Note that this is the point at which
1735 -- Assignment_OK is checked, and True is returned for any tree thus marked.
1736 -- Use_Original_Node is used to perform the test on Original_Node (N). By
1737 -- default is True since this routine is commonly invoked as part of the
1738 -- semantic analysis and it must not be disturbed by the rewriten nodes.
1739
1740 function Is_Visibly_Controlled (T : Entity_Id) return Boolean;
1741 -- Check whether T is derived from a visibly controlled type. This is true
1742 -- if the root type is declared in Ada.Finalization. If T is derived
1743 -- instead from a private type whose full view is controlled, an explicit
1744 -- Initialize/Adjust/Finalize subprogram does not override the inherited
1745 -- one.
1746
1747 function Is_Volatile_Function (Func_Id : Entity_Id) return Boolean;
1748 -- Determine whether [generic] function Func_Id is subject to enabled
1749 -- pragma Volatile_Function. Protected functions are treated as volatile
1750 -- (SPARK RM 7.1.2).
1751
1752 function Is_Volatile_Object (N : Node_Id) return Boolean;
1753 -- Determines if the given node denotes an volatile object in the sense of
1754 -- the legality checks described in RM C.6(12). Note that the test here is
1755 -- for something actually declared as volatile, not for an object that gets
1756 -- treated as volatile (see Einfo.Treat_As_Volatile).
1757
1758 function Itype_Has_Declaration (Id : Entity_Id) return Boolean;
1759 -- Applies to Itypes. True if the Itype is attached to a declaration for
1760 -- the type through its Parent field, which may or not be present in the
1761 -- tree.
1762
1763 procedure Kill_Current_Values (Last_Assignment_Only : Boolean := False);
1764 -- This procedure is called to clear all constant indications from all
1765 -- entities in the current scope and in any parent scopes if the current
1766 -- scope is a block or a package (and that recursion continues to the top
1767 -- scope that is not a block or a package). This is used when the
1768 -- sequential flow-of-control assumption is violated (occurrence of a
1769 -- label, head of a loop, or start of an exception handler). The effect of
1770 -- the call is to clear the Current_Value field (but we do not need to
1771 -- clear the Is_True_Constant flag, since that only gets reset if there
1772 -- really is an assignment somewhere in the entity scope). This procedure
1773 -- also calls Kill_All_Checks, since this is a special case of needing to
1774 -- forget saved values. This procedure also clears the Is_Known_Null and
1775 -- Is_Known_Non_Null and Is_Known_Valid flags in variables, constants or
1776 -- parameters since these are also not known to be trustable any more.
1777 --
1778 -- The Last_Assignment_Only flag is set True to clear only Last_Assignment
1779 -- fields and leave other fields unchanged. This is used when we encounter
1780 -- an unconditional flow of control change (return, goto, raise). In such
1781 -- cases we don't need to clear the current values, since it may be that
1782 -- the flow of control change occurs in a conditional context, and if it
1783 -- is not taken, then it is just fine to keep the current values. But the
1784 -- Last_Assignment field is different, if we have a sequence assign-to-v,
1785 -- conditional-return, assign-to-v, we do not want to complain that the
1786 -- second assignment clobbers the first.
1787
1788 procedure Kill_Current_Values
1789 (Ent : Entity_Id;
1790 Last_Assignment_Only : Boolean := False);
1791 -- This performs the same processing as described above for the form with
1792 -- no argument, but for the specific entity given. The call has no effect
1793 -- if the entity Ent is not for an object. Last_Assignment_Only has the
1794 -- same meaning as for the call with no Ent.
1795
1796 procedure Kill_Size_Check_Code (E : Entity_Id);
1797 -- Called when an address clause or pragma Import is applied to an entity.
1798 -- If the entity is a variable or a constant, and size check code is
1799 -- present, this size check code is killed, since the object will not be
1800 -- allocated by the program.
1801
1802 function Known_To_Be_Assigned (N : Node_Id) return Boolean;
1803 -- The node N is an entity reference. This function determines whether the
1804 -- reference is for sure an assignment of the entity, returning True if
1805 -- so. This differs from May_Be_Lvalue in that it defaults in the other
1806 -- direction. Cases which may possibly be assignments but are not known to
1807 -- be may return True from May_Be_Lvalue, but False from this function.
1808
1809 function Last_Source_Statement (HSS : Node_Id) return Node_Id;
1810 -- HSS is a handled statement sequence. This function returns the last
1811 -- statement in Statements (HSS) that has Comes_From_Source set. If no
1812 -- such statement exists, Empty is returned.
1813
1814 function Matching_Static_Array_Bounds
1815 (L_Typ : Node_Id;
1816 R_Typ : Node_Id) return Boolean;
1817 -- L_Typ and R_Typ are two array types. Returns True when they have the
1818 -- same number of dimensions, and the same static bounds for each index
1819 -- position.
1820
1821 procedure Mark_Coextensions (Context_Nod : Node_Id; Root_Nod : Node_Id);
1822 -- Given a node which designates the context of analysis and an origin in
1823 -- the tree, traverse from Root_Nod and mark all allocators as either
1824 -- dynamic or static depending on Context_Nod. Any incorrect marking is
1825 -- cleaned up during resolution.
1826
1827 function May_Be_Lvalue (N : Node_Id) return Boolean;
1828 -- Determines if N could be an lvalue (e.g. an assignment left hand side).
1829 -- An lvalue is defined as any expression which appears in a context where
1830 -- a name is required by the syntax, and the identity, rather than merely
1831 -- the value of the node is needed (for example, the prefix of an Access
1832 -- attribute is in this category). Note that, as implied by the name, this
1833 -- test is conservative. If it cannot be sure that N is NOT an lvalue, then
1834 -- it returns True. It tries hard to get the answer right, but it is hard
1835 -- to guarantee this in all cases. Note that it is more possible to give
1836 -- correct answer if the tree is fully analyzed.
1837
1838 function Needs_One_Actual (E : Entity_Id) return Boolean;
1839 -- Returns True if a function has defaults for all but its first
1840 -- formal. Used in Ada 2005 mode to solve the syntactic ambiguity that
1841 -- results from an indexing of a function call written in prefix form.
1842
1843 function New_Copy_List_Tree (List : List_Id) return List_Id;
1844 -- Copy recursively an analyzed list of nodes. Uses New_Copy_Tree defined
1845 -- below. As for New_Copy_Tree, it is illegal to attempt to copy extended
1846 -- nodes (entities) either directly or indirectly using this function.
1847
1848 function New_Copy_Tree
1849 (Source : Node_Id;
1850 Map : Elist_Id := No_Elist;
1851 New_Sloc : Source_Ptr := No_Location;
1852 New_Scope : Entity_Id := Empty) return Node_Id;
1853 -- Given a node that is the root of a subtree, Copy_Tree copies the entire
1854 -- syntactic subtree, including recursively any descendants whose parent
1855 -- field references a copied node (descendants not linked to a copied node
1856 -- by the parent field are not copied, instead the copied tree references
1857 -- the same descendant as the original in this case, which is appropriate
1858 -- for non-syntactic fields such as Etype). The parent pointers in the
1859 -- copy are properly set. Copy_Tree (Empty/Error) returns Empty/Error.
1860 -- The one exception to the rule of not copying semantic fields is that
1861 -- any implicit types attached to the subtree are duplicated, so that
1862 -- the copy contains a distinct set of implicit type entities. Thus this
1863 -- function is used when it is necessary to duplicate an analyzed tree,
1864 -- declared in the same or some other compilation unit. This function is
1865 -- declared here rather than in atree because it uses semantic information
1866 -- in particular concerning the structure of itypes and the generation of
1867 -- public symbols.
1868
1869 -- The Map argument, if set to a non-empty Elist, specifies a set of
1870 -- mappings to be applied to entities in the tree. The map has the form:
1871 --
1872 -- old entity 1
1873 -- new entity to replace references to entity 1
1874 -- old entity 2
1875 -- new entity to replace references to entity 2
1876 -- ...
1877 --
1878 -- The call destroys the contents of Map in this case
1879 --
1880 -- The parameter New_Sloc, if set to a value other than No_Location, is
1881 -- used as the Sloc value for all nodes in the new copy. If New_Sloc is
1882 -- set to its default value No_Location, then the Sloc values of the
1883 -- nodes in the copy are simply copied from the corresponding original.
1884 --
1885 -- The Comes_From_Source indication is unchanged if New_Sloc is set to
1886 -- the default No_Location value, but is reset if New_Sloc is given, since
1887 -- in this case the result clearly is neither a source node or an exact
1888 -- copy of a source node.
1889 --
1890 -- The parameter New_Scope, if set to a value other than Empty, is the
1891 -- value to use as the Scope for any Itypes that are copied. The most
1892 -- typical value for this parameter, if given, is Current_Scope.
1893
1894 function New_External_Entity
1895 (Kind : Entity_Kind;
1896 Scope_Id : Entity_Id;
1897 Sloc_Value : Source_Ptr;
1898 Related_Id : Entity_Id;
1899 Suffix : Character;
1900 Suffix_Index : Nat := 0;
1901 Prefix : Character := ' ') return Entity_Id;
1902 -- This function creates an N_Defining_Identifier node for an internal
1903 -- created entity, such as an implicit type or subtype, or a record
1904 -- initialization procedure. The entity name is constructed with a call
1905 -- to New_External_Name (Related_Id, Suffix, Suffix_Index, Prefix), so
1906 -- that the generated name may be referenced as a public entry, and the
1907 -- Is_Public flag is set if needed (using Set_Public_Status). If the
1908 -- entity is for a type or subtype, the size/align fields are initialized
1909 -- to unknown (Uint_0).
1910
1911 function New_Internal_Entity
1912 (Kind : Entity_Kind;
1913 Scope_Id : Entity_Id;
1914 Sloc_Value : Source_Ptr;
1915 Id_Char : Character) return Entity_Id;
1916 -- This function is similar to New_External_Entity, except that the
1917 -- name is constructed by New_Internal_Name (Id_Char). This is used
1918 -- when the resulting entity does not have to be referenced as a
1919 -- public entity (and in this case Is_Public is not set).
1920
1921 procedure Next_Actual (Actual_Id : in out Node_Id);
1922 pragma Inline (Next_Actual);
1923 -- Next_Actual (N) is equivalent to N := Next_Actual (N). Note that we
1924 -- inline this procedural form, but not the functional form that follows.
1925
1926 function Next_Actual (Actual_Id : Node_Id) return Node_Id;
1927 -- Find next actual parameter in declaration order. As described for
1928 -- First_Actual, this is the next actual in the declaration order, not
1929 -- the call order, so this does not correspond to simply taking the
1930 -- next entry of the Parameter_Associations list. The argument is an
1931 -- actual previously returned by a call to First_Actual or Next_Actual.
1932 -- Note that the result produced is always an expression, not a parameter
1933 -- association node, even if named notation was used.
1934
1935 procedure Normalize_Actuals
1936 (N : Node_Id;
1937 S : Entity_Id;
1938 Report : Boolean;
1939 Success : out Boolean);
1940 -- Reorders lists of actuals according to names of formals, value returned
1941 -- in Success indicates success of reordering. For more details, see body.
1942 -- Errors are reported only if Report is set to True.
1943
1944 procedure Note_Possible_Modification (N : Node_Id; Sure : Boolean);
1945 -- This routine is called if the sub-expression N maybe the target of
1946 -- an assignment (e.g. it is the left side of an assignment, used as
1947 -- an out parameters, or used as prefixes of access attributes). It
1948 -- sets May_Be_Modified in the associated entity if there is one,
1949 -- taking into account the rule that in the case of renamed objects,
1950 -- it is the flag in the renamed object that must be set.
1951 --
1952 -- The parameter Sure is set True if the modification is sure to occur
1953 -- (e.g. target of assignment, or out parameter), and to False if the
1954 -- modification is only potential (e.g. address of entity taken).
1955
1956 function Null_To_Null_Address_Convert_OK
1957 (N : Node_Id;
1958 Typ : Entity_Id := Empty) return Boolean;
1959 -- Return True if we are compiling in relaxed RM semantics mode and:
1960 -- 1) N is a N_Null node and Typ is a descendant of System.Address, or
1961 -- 2) N is a comparison operator, one of the operands is null, and the
1962 -- type of the other operand is a descendant of System.Address.
1963
1964 function Object_Access_Level (Obj : Node_Id) return Uint;
1965 -- Return the accessibility level of the view of the object Obj. For
1966 -- convenience, qualified expressions applied to object names are also
1967 -- allowed as actuals for this function.
1968
1969 function Original_Aspect_Pragma_Name (N : Node_Id) return Name_Id;
1970 -- Retrieve the name of aspect or pragma N taking into account a possible
1971 -- rewrite and whether the pragma is generated from an aspect as the names
1972 -- may be different. The routine also deals with 'Class in which case it
1973 -- returns the following values:
1974 --
1975 -- Invariant -> Name_uInvariant
1976 -- Post'Class -> Name_uPost
1977 -- Pre'Class -> Name_uPre
1978 -- Type_Invariant -> Name_uType_Invariant
1979 -- Type_Invariant'Class -> Name_uType_Invariant
1980
1981 function Original_Corresponding_Operation (S : Entity_Id) return Entity_Id;
1982 -- [Ada 2012: AI05-0125-1]: If S is an inherited dispatching primitive S2,
1983 -- or overrides an inherited dispatching primitive S2, the original
1984 -- corresponding operation of S is the original corresponding operation of
1985 -- S2. Otherwise, it is S itself.
1986
1987 procedure Output_Entity (Id : Entity_Id);
1988 -- Print entity Id to standard output. The name of the entity appears in
1989 -- fully qualified form.
1990 --
1991 -- WARNING: this routine should be used in debugging scenarios such as
1992 -- tracking down undefined symbols as it is fairly low level.
1993
1994 procedure Output_Name (Nam : Name_Id; Scop : Entity_Id := Current_Scope);
1995 -- Print name Nam to standard output. The name appears in fully qualified
1996 -- form assuming it appears in scope Scop. Note that this may not reflect
1997 -- the final qualification as the entity which carries the name may be
1998 -- relocated to a different scope.
1999 --
2000 -- WARNING: this routine should be used in debugging scenarios such as
2001 -- tracking down undefined symbols as it is fairly low level.
2002
2003 function Policy_In_Effect (Policy : Name_Id) return Name_Id;
2004 -- Given a policy, return the policy identifier associated with it. If no
2005 -- such policy is in effect, the value returned is No_Name.
2006
2007 function Predicate_Tests_On_Arguments (Subp : Entity_Id) return Boolean;
2008 -- Subp is the entity for a subprogram call. This function returns True if
2009 -- predicate tests are required for the arguments in this call (this is the
2010 -- normal case). It returns False for special cases where these predicate
2011 -- tests should be skipped (see body for details).
2012
2013 function Primitive_Names_Match (E1, E2 : Entity_Id) return Boolean;
2014 -- Returns True if the names of both entities correspond with matching
2015 -- primitives. This routine includes support for the case in which one
2016 -- or both entities correspond with entities built by Derive_Subprogram
2017 -- with a special name to avoid being overridden (i.e. return true in case
2018 -- of entities with names "nameP" and "name" or vice versa).
2019
2020 function Private_Component (Type_Id : Entity_Id) return Entity_Id;
2021 -- Returns some private component (if any) of the given Type_Id.
2022 -- Used to enforce the rules on visibility of operations on composite
2023 -- types, that depend on the full view of the component type. For a
2024 -- record type there may be several such components, we just return
2025 -- the first one.
2026
2027 procedure Process_End_Label
2028 (N : Node_Id;
2029 Typ : Character;
2030 Ent : Entity_Id);
2031 -- N is a node whose End_Label is to be processed, generating all
2032 -- appropriate cross-reference entries, and performing style checks
2033 -- for any identifier references in the end label. Typ is either
2034 -- 'e' or 't indicating the type of the cross-reference entity
2035 -- (e for spec, t for body, see Lib.Xref spec for details). The
2036 -- parameter Ent gives the entity to which the End_Label refers,
2037 -- and to which cross-references are to be generated.
2038
2039 procedure Propagate_Invariant_Attributes
2040 (Typ : Entity_Id;
2041 From_Typ : Entity_Id);
2042 -- Inherit all invariant-related attributes form type From_Typ. Typ is the
2043 -- destination type.
2044
2045 procedure Propagate_Concurrent_Flags
2046 (Typ : Entity_Id;
2047 Comp_Typ : Entity_Id);
2048 -- Set Has_Task, Has_Protected and Has_Timing_Event on Typ when the flags
2049 -- are set on Comp_Typ. This follows the definition of these flags which
2050 -- are set (recursively) on any composite type which has a component marked
2051 -- by one of these flags. This procedure can only set flags for Typ, and
2052 -- never clear them. Comp_Typ is the type of a component or a parent.
2053
2054 procedure Record_Possible_Part_Of_Reference
2055 (Var_Id : Entity_Id;
2056 Ref : Node_Id);
2057 -- Save reference Ref to variable Var_Id when the variable is subject to
2058 -- pragma Part_Of. If the variable is known to be a constituent of a single
2059 -- protected/task type, the legality of the reference is verified and the
2060 -- save does not take place.
2061
2062 function Referenced (Id : Entity_Id; Expr : Node_Id) return Boolean;
2063 -- Determine whether entity Id is referenced within expression Expr
2064
2065 function References_Generic_Formal_Type (N : Node_Id) return Boolean;
2066 -- Returns True if the expression Expr contains any references to a generic
2067 -- type. This can only happen within a generic template.
2068
2069 procedure Remove_Homonym (E : Entity_Id);
2070 -- Removes E from the homonym chain
2071
2072 procedure Remove_Overloaded_Entity (Id : Entity_Id);
2073 -- Remove arbitrary entity Id from the homonym chain, the scope chain and
2074 -- the primitive operations list of the associated controlling type. NOTE:
2075 -- the removal performed by this routine does not affect the visibility of
2076 -- existing homonyms.
2077
2078 function Remove_Suffix (E : Entity_Id; Suffix : Character) return Name_Id;
2079 -- Returns the name of E without Suffix
2080
2081 procedure Replace_Null_By_Null_Address (N : Node_Id);
2082 -- N is N_Null or a binary comparison operator, we are compiling in relaxed
2083 -- RM semantics mode, and one of the operands is null. Replace null with
2084 -- System.Null_Address.
2085
2086 function Rep_To_Pos_Flag (E : Entity_Id; Loc : Source_Ptr) return Node_Id;
2087 -- This is used to construct the second argument in a call to Rep_To_Pos
2088 -- which is Standard_True if range checks are enabled (E is an entity to
2089 -- which the Range_Checks_Suppressed test is applied), and Standard_False
2090 -- if range checks are suppressed. Loc is the location for the node that
2091 -- is returned (which is a New_Occurrence of the appropriate entity).
2092 --
2093 -- Note: one might think that it would be fine to always use True and
2094 -- to ignore the suppress in this case, but it is generally better to
2095 -- believe a request to suppress exceptions if possible, and further
2096 -- more there is at least one case in the generated code (the code for
2097 -- array assignment in a loop) that depends on this suppression.
2098
2099 procedure Require_Entity (N : Node_Id);
2100 -- N is a node which should have an entity value if it is an entity name.
2101 -- If not, then check if there were previous errors. If so, just fill
2102 -- in with Any_Id and ignore. Otherwise signal a program error exception.
2103 -- This is used as a defense mechanism against ill-formed trees caused by
2104 -- previous errors (particularly in -gnatq mode).
2105
2106 function Requires_Transient_Scope (Id : Entity_Id) return Boolean;
2107 -- Id is a type entity. The result is True when temporaries of this type
2108 -- need to be wrapped in a transient scope to be reclaimed properly when a
2109 -- secondary stack is in use. Examples of types requiring such wrapping are
2110 -- controlled types and variable-sized types including unconstrained
2111 -- arrays.
2112
2113 procedure Reset_Analyzed_Flags (N : Node_Id);
2114 -- Reset the Analyzed flags in all nodes of the tree whose root is N
2115
2116 procedure Restore_SPARK_Mode (Mode : SPARK_Mode_Type);
2117 -- Set the current SPARK_Mode to whatever Mode denotes. This routime must
2118 -- be used in tandem with Save_SPARK_Mode_And_Set.
2119
2120 function Returns_Unconstrained_Type (Subp : Entity_Id) return Boolean;
2121 -- Return true if Subp is a function that returns an unconstrained type
2122
2123 function Root_Type_Of_Full_View (T : Entity_Id) return Entity_Id;
2124 -- Similar to attribute Root_Type, but this version always follows the
2125 -- Full_View of a private type (if available) while searching for the
2126 -- ultimate derivation ancestor.
2127
2128 function Safe_To_Capture_Value
2129 (N : Node_Id;
2130 Ent : Entity_Id;
2131 Cond : Boolean := False) return Boolean;
2132 -- The caller is interested in capturing a value (either the current value,
2133 -- or an indication that the value is non-null) for the given entity Ent.
2134 -- This value can only be captured if sequential execution semantics can be
2135 -- properly guaranteed so that a subsequent reference will indeed be sure
2136 -- that this current value indication is correct. The node N is the
2137 -- construct which resulted in the possible capture of the value (this
2138 -- is used to check if we are in a conditional).
2139 --
2140 -- Cond is used to skip the test for being inside a conditional. It is used
2141 -- in the case of capturing values from if/while tests, which already do a
2142 -- proper job of handling scoping issues without this help.
2143 --
2144 -- The only entities whose values can be captured are OUT and IN OUT formal
2145 -- parameters, and variables unless Cond is True, in which case we also
2146 -- allow IN formals, loop parameters and constants, where we cannot ever
2147 -- capture actual value information, but we can capture conditional tests.
2148
2149 function Same_Name (N1, N2 : Node_Id) return Boolean;
2150 -- Determine if two (possibly expanded) names are the same name. This is
2151 -- a purely syntactic test, and N1 and N2 need not be analyzed.
2152
2153 function Same_Object (Node1, Node2 : Node_Id) return Boolean;
2154 -- Determine if Node1 and Node2 are known to designate the same object.
2155 -- This is a semantic test and both nodes must be fully analyzed. A result
2156 -- of True is decisively correct. A result of False does not necessarily
2157 -- mean that different objects are designated, just that this could not
2158 -- be reliably determined at compile time.
2159
2160 function Same_Type (T1, T2 : Entity_Id) return Boolean;
2161 -- Determines if T1 and T2 represent exactly the same type. Two types
2162 -- are the same if they are identical, or if one is an unconstrained
2163 -- subtype of the other, or they are both common subtypes of the same
2164 -- type with identical constraints. The result returned is conservative.
2165 -- It is True if the types are known to be the same, but a result of
2166 -- False is indecisive (e.g. the compiler may not be able to tell that
2167 -- two constraints are identical).
2168
2169 function Same_Value (Node1, Node2 : Node_Id) return Boolean;
2170 -- Determines if Node1 and Node2 are known to be the same value, which is
2171 -- true if they are both compile time known values and have the same value,
2172 -- or if they are the same object (in the sense of function Same_Object).
2173 -- A result of False does not necessarily mean they have different values,
2174 -- just that it is not possible to determine they have the same value.
2175
2176 procedure Save_SPARK_Mode_And_Set
2177 (Context : Entity_Id;
2178 Mode : out SPARK_Mode_Type);
2179 -- Save the current SPARK_Mode in effect in Mode. Establish the SPARK_Mode
2180 -- (if any) of a package or a subprogram denoted by Context. This routine
2181 -- must be used in tandem with Restore_SPARK_Mode.
2182
2183 function Scalar_Part_Present (T : Entity_Id) return Boolean;
2184 -- Tests if type T can be determined at compile time to have at least one
2185 -- scalar part in the sense of the Valid_Scalars attribute. Returns True if
2186 -- this is the case, and False if no scalar parts are present (meaning that
2187 -- the result of Valid_Scalars applied to T is always vacuously True).
2188
2189 function Scope_Within_Or_Same (Scope1, Scope2 : Entity_Id) return Boolean;
2190 -- Determines if the entity Scope1 is the same as Scope2, or if it is
2191 -- inside it, where both entities represent scopes. Note that scopes
2192 -- are only partially ordered, so Scope_Within_Or_Same (A,B) and
2193 -- Scope_Within_Or_Same (B,A) can both be False for a given pair A,B.
2194
2195 function Scope_Within (Scope1, Scope2 : Entity_Id) return Boolean;
2196 -- Like Scope_Within_Or_Same, except that this function returns
2197 -- False in the case where Scope1 and Scope2 are the same scope.
2198
2199 procedure Set_Convention (E : Entity_Id; Val : Convention_Id);
2200 -- Same as Basic_Set_Convention, but with an extra check for access types.
2201 -- In particular, if E is an access-to-subprogram type, and Val is a
2202 -- foreign convention, then we set Can_Use_Internal_Rep to False on E.
2203 -- Also, if the Etype of E is set and is an anonymous access type with
2204 -- no convention set, this anonymous type inherits the convention of E.
2205
2206 procedure Set_Current_Entity (E : Entity_Id);
2207 pragma Inline (Set_Current_Entity);
2208 -- Establish the entity E as the currently visible definition of its
2209 -- associated name (i.e. the Node_Id associated with its name).
2210
2211 procedure Set_Debug_Info_Needed (T : Entity_Id);
2212 -- Sets the Debug_Info_Needed flag on entity T , and also on any entities
2213 -- that are needed by T (for an object, the type of the object is needed,
2214 -- and for a type, various subsidiary types are needed -- see body for
2215 -- details). Never has any effect on T if the Debug_Info_Off flag is set.
2216 -- This routine should always be used instead of Set_Needs_Debug_Info to
2217 -- ensure that subsidiary entities are properly handled.
2218
2219 procedure Set_Entity_With_Checks (N : Node_Id; Val : Entity_Id);
2220 -- This procedure has the same calling sequence as Set_Entity, but it
2221 -- performs additional checks as follows:
2222 --
2223 -- If Style_Check is set, then it calls a style checking routine which
2224 -- can check identifier spelling style. This procedure also takes care
2225 -- of checking the restriction No_Implementation_Identifiers.
2226 --
2227 -- If restriction No_Abort_Statements is set, then it checks that the
2228 -- entity is not Ada.Task_Identification.Abort_Task.
2229 --
2230 -- If restriction No_Dynamic_Attachment is set, then it checks that the
2231 -- entity is not one of the restricted names for this restriction.
2232 --
2233 -- If restriction No_Long_Long_Integers is set, then it checks that the
2234 -- entity is not Standard.Long_Long_Integer.
2235 --
2236 -- If restriction No_Implementation_Identifiers is set, then it checks
2237 -- that the entity is not implementation defined.
2238
2239 procedure Set_Name_Entity_Id (Id : Name_Id; Val : Entity_Id);
2240 pragma Inline (Set_Name_Entity_Id);
2241 -- Sets the Entity_Id value associated with the given name, which is the
2242 -- Id of the innermost visible entity with the given name. See the body
2243 -- of package Sem_Ch8 for further details on the handling of visibility.
2244
2245 procedure Set_Next_Actual (Ass1_Id : Node_Id; Ass2_Id : Node_Id);
2246 -- The arguments may be parameter associations, whose descendants
2247 -- are the optional formal name and the actual parameter. Positional
2248 -- parameters are already members of a list, and do not need to be
2249 -- chained separately. See also First_Actual and Next_Actual.
2250
2251 procedure Set_Optimize_Alignment_Flags (E : Entity_Id);
2252 pragma Inline (Set_Optimize_Alignment_Flags);
2253 -- Sets Optimize_Alignment_Space/Time flags in E from current settings
2254
2255 procedure Set_Public_Status (Id : Entity_Id);
2256 -- If an entity (visible or otherwise) is defined in a library
2257 -- package, or a package that is itself public, then this subprogram
2258 -- labels the entity public as well.
2259
2260 procedure Set_Referenced_Modified (N : Node_Id; Out_Param : Boolean);
2261 -- N is the node for either a left hand side (Out_Param set to False),
2262 -- or an Out or In_Out parameter (Out_Param set to True). If there is
2263 -- an assignable entity being referenced, then the appropriate flag
2264 -- (Referenced_As_LHS if Out_Param is False, Referenced_As_Out_Parameter
2265 -- if Out_Param is True) is set True, and the other flag set False.
2266
2267 procedure Set_Scope_Is_Transient (V : Boolean := True);
2268 -- Set the flag Is_Transient of the current scope
2269
2270 procedure Set_Size_Info (T1, T2 : Entity_Id);
2271 pragma Inline (Set_Size_Info);
2272 -- Copies the Esize field and Has_Biased_Representation flag from sub(type)
2273 -- entity T2 to (sub)type entity T1. Also copies the Is_Unsigned_Type flag
2274 -- in the fixed-point and discrete cases, and also copies the alignment
2275 -- value from T2 to T1. It does NOT copy the RM_Size field, which must be
2276 -- separately set if this is required to be copied also.
2277
2278 function Scope_Is_Transient return Boolean;
2279 -- True if the current scope is transient
2280
2281 function Static_Boolean (N : Node_Id) return Uint;
2282 -- This function analyzes the given expression node and then resolves it
2283 -- as Standard.Boolean. If the result is static, then Uint_1 or Uint_0 is
2284 -- returned corresponding to the value, otherwise an error message is
2285 -- output and No_Uint is returned.
2286
2287 function Static_Integer (N : Node_Id) return Uint;
2288 -- This function analyzes the given expression node and then resolves it
2289 -- as any integer type. If the result is static, then the value of the
2290 -- universal expression is returned, otherwise an error message is output
2291 -- and a value of No_Uint is returned.
2292
2293 function Statically_Different (E1, E2 : Node_Id) return Boolean;
2294 -- Return True if it can be statically determined that the Expressions
2295 -- E1 and E2 refer to different objects
2296
2297 function Subject_To_Loop_Entry_Attributes (N : Node_Id) return Boolean;
2298 -- Determine whether node N is a loop statement subject to at least one
2299 -- 'Loop_Entry attribute.
2300
2301 function Subprogram_Access_Level (Subp : Entity_Id) return Uint;
2302 -- Return the accessibility level of the view denoted by Subp
2303
2304 function Support_Atomic_Primitives (Typ : Entity_Id) return Boolean;
2305 -- Return True if Typ supports the GCC built-in atomic operations (i.e. if
2306 -- Typ is properly sized and aligned).
2307
2308 procedure Trace_Scope (N : Node_Id; E : Entity_Id; Msg : String);
2309 -- Print debugging information on entry to each unit being analyzed
2310
2311 procedure Transfer_Entities (From : Entity_Id; To : Entity_Id);
2312 -- Move a list of entities from one scope to another, and recompute
2313 -- Is_Public based upon the new scope.
2314
2315 function Type_Access_Level (Typ : Entity_Id) return Uint;
2316 -- Return the accessibility level of Typ
2317
2318 function Type_Without_Stream_Operation
2319 (T : Entity_Id;
2320 Op : TSS_Name_Type := TSS_Null) return Entity_Id;
2321 -- AI05-0161: In Ada 2012, if the restriction No_Default_Stream_Attributes
2322 -- is active then we cannot generate stream subprograms for composite types
2323 -- with elementary subcomponents that lack user-defined stream subprograms.
2324 -- This predicate determines whether a type has such an elementary
2325 -- subcomponent. If Op is TSS_Null, a type that lacks either Read or Write
2326 -- prevents the construction of a composite stream operation. If Op is
2327 -- specified we check only for the given stream operation.
2328
2329 function Unique_Defining_Entity (N : Node_Id) return Entity_Id;
2330 -- Return the entity which represents declaration N, so that different
2331 -- views of the same entity have the same unique defining entity:
2332 -- * entry declaration and entry body
2333 -- * package spec and body
2334 -- * protected type declaration, protected body stub and protected body
2335 -- * private view and full view of a deferred constant
2336 -- * private view and full view of a type
2337 -- * subprogram declaration, subprogram stub and subprogram body
2338 -- * task type declaration, task body stub and task body
2339 -- In other cases, return the defining entity for N.
2340
2341 function Unique_Entity (E : Entity_Id) return Entity_Id;
2342 -- Return the unique entity for entity E, which would be returned by
2343 -- Unique_Defining_Entity if applied to the enclosing declaration of E.
2344
2345 function Unique_Name (E : Entity_Id) return String;
2346 -- Return a unique name for entity E, which could be used to identify E
2347 -- across compilation units.
2348
2349 function Unit_Is_Visible (U : Entity_Id) return Boolean;
2350 -- Determine whether a compilation unit is visible in the current context,
2351 -- because there is a with_clause that makes the unit available. Used to
2352 -- provide better messages on common visiblity errors on operators.
2353
2354 function Universal_Interpretation (Opnd : Node_Id) return Entity_Id;
2355 -- Yields Universal_Integer or Universal_Real if this is a candidate
2356
2357 function Unqualify (Expr : Node_Id) return Node_Id;
2358 pragma Inline (Unqualify);
2359 -- Removes any qualifications from Expr. For example, for T1'(T2'(X)), this
2360 -- returns X. If Expr is not a qualified expression, returns Expr.
2361
2362 function Visible_Ancestors (Typ : Entity_Id) return Elist_Id;
2363 -- [Ada 2012:AI-0125-1]: Collect all the visible parents and progenitors
2364 -- of a type extension or private extension declaration. If the full-view
2365 -- of private parents and progenitors is available then it is used to
2366 -- generate the list of visible ancestors; otherwise their partial
2367 -- view is added to the resulting list.
2368
2369 function Within_Init_Proc return Boolean;
2370 -- Determines if Current_Scope is within an init proc
2371
2372 function Within_Scope (E : Entity_Id; S : Entity_Id) return Boolean;
2373 -- Returns True if entity E is declared within scope S
2374
2375 procedure Wrong_Type (Expr : Node_Id; Expected_Type : Entity_Id);
2376 -- Output error message for incorrectly typed expression. Expr is the node
2377 -- for the incorrectly typed construct (Etype (Expr) is the type found),
2378 -- and Expected_Type is the entity for the expected type. Note that Expr
2379 -- does not have to be a subexpression, anything with an Etype field may
2380 -- be used.
2381
2382 function Yields_Synchronized_Object (Typ : Entity_Id) return Boolean;
2383 -- Determine whether type Typ "yields synchronized object" as specified by
2384 -- SPARK RM 9.1. To qualify as such, a type must be
2385 -- * An array type whose element type yields a synchronized object
2386 -- * A descendant of type Ada.Synchronous_Task_Control.Suspension_Object
2387 -- * A protected type
2388 -- * A record type or type extension without defaulted discriminants
2389 -- whose components are of a type that yields a synchronized object.
2390 -- * A synchronized interface type
2391 -- * A task type
2392
2393 function Yields_Universal_Type (N : Node_Id) return Boolean;
2394 -- Determine whether unanalyzed node N yields a universal type
2395
2396 end Sem_Util;