PR c/79855: add full stop to store merging param descriptions
[official-gcc.git] / gcc / ada / sem_ch7.adb
blobc400fa80fff3140c4e1045a384178d8869f03ab7
1 ------------------------------------------------------------------------------
2 -- --
3 -- GNAT COMPILER COMPONENTS --
4 -- --
5 -- S E M _ C H 7 --
6 -- --
7 -- B o d y --
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 ------------------------------------------------------------------------------
26 -- This package contains the routines to process package specifications and
27 -- bodies. The most important semantic aspects of package processing are the
28 -- handling of private and full declarations, and the construction of dispatch
29 -- tables for tagged types.
31 with Aspects; use Aspects;
32 with Atree; use Atree;
33 with Contracts; use Contracts;
34 with Debug; use Debug;
35 with Einfo; use Einfo;
36 with Elists; use Elists;
37 with Errout; use Errout;
38 with Exp_Disp; use Exp_Disp;
39 with Exp_Dist; use Exp_Dist;
40 with Exp_Dbug; use Exp_Dbug;
41 with Freeze; use Freeze;
42 with Ghost; use Ghost;
43 with Lib; use Lib;
44 with Lib.Xref; use Lib.Xref;
45 with Namet; use Namet;
46 with Nmake; use Nmake;
47 with Nlists; use Nlists;
48 with Opt; use Opt;
49 with Output; use Output;
50 with Restrict; use Restrict;
51 with Rtsfind; use Rtsfind;
52 with Sem; use Sem;
53 with Sem_Aux; use Sem_Aux;
54 with Sem_Cat; use Sem_Cat;
55 with Sem_Ch3; use Sem_Ch3;
56 with Sem_Ch6; use Sem_Ch6;
57 with Sem_Ch8; use Sem_Ch8;
58 with Sem_Ch10; use Sem_Ch10;
59 with Sem_Ch12; use Sem_Ch12;
60 with Sem_Ch13; use Sem_Ch13;
61 with Sem_Disp; use Sem_Disp;
62 with Sem_Eval; use Sem_Eval;
63 with Sem_Prag; use Sem_Prag;
64 with Sem_Util; use Sem_Util;
65 with Sem_Warn; use Sem_Warn;
66 with Snames; use Snames;
67 with Stand; use Stand;
68 with Sinfo; use Sinfo;
69 with Sinput; use Sinput;
70 with Style;
71 with Uintp; use Uintp;
73 package body Sem_Ch7 is
75 -----------------------------------
76 -- Handling private declarations --
77 -----------------------------------
79 -- The principle that each entity has a single defining occurrence clashes
80 -- with the presence of two separate definitions for private types: the
81 -- first is the private type declaration, and the second is the full type
82 -- declaration. It is important that all references to the type point to
83 -- the same defining occurrence, namely the first one. To enforce the two
84 -- separate views of the entity, the corresponding information is swapped
85 -- between the two declarations. Outside of the package, the defining
86 -- occurrence only contains the private declaration information, while in
87 -- the private part and the body of the package the defining occurrence
88 -- contains the full declaration. To simplify the swap, the defining
89 -- occurrence that currently holds the private declaration points to the
90 -- full declaration. During semantic processing the defining occurrence
91 -- also points to a list of private dependents, that is to say access types
92 -- or composite types whose designated types or component types are
93 -- subtypes or derived types of the private type in question. After the
94 -- full declaration has been seen, the private dependents are updated to
95 -- indicate that they have full definitions.
97 -----------------------
98 -- Local Subprograms --
99 -----------------------
101 procedure Analyze_Package_Body_Helper (N : Node_Id);
102 -- Does all the real work of Analyze_Package_Body
104 procedure Check_Anonymous_Access_Types
105 (Spec_Id : Entity_Id;
106 P_Body : Node_Id);
107 -- If the spec of a package has a limited_with_clause, it may declare
108 -- anonymous access types whose designated type is a limited view, such an
109 -- anonymous access return type for a function. This access type cannot be
110 -- elaborated in the spec itself, but it may need an itype reference if it
111 -- is used within a nested scope. In that case the itype reference is
112 -- created at the beginning of the corresponding package body and inserted
113 -- before other body declarations.
115 procedure Declare_Inherited_Private_Subprograms (Id : Entity_Id);
116 -- Called upon entering the private part of a public child package and the
117 -- body of a nested package, to potentially declare certain inherited
118 -- subprograms that were inherited by types in the visible part, but whose
119 -- declaration was deferred because the parent operation was private and
120 -- not visible at that point. These subprograms are located by traversing
121 -- the visible part declarations looking for non-private type extensions
122 -- and then examining each of the primitive operations of such types to
123 -- find those that were inherited but declared with a special internal
124 -- name. Each such operation is now declared as an operation with a normal
125 -- name (using the name of the parent operation) and replaces the previous
126 -- implicit operation in the primitive operations list of the type. If the
127 -- inherited private operation has been overridden, then it's replaced by
128 -- the overriding operation.
130 procedure Install_Package_Entity (Id : Entity_Id);
131 -- Supporting procedure for Install_{Visible,Private}_Declarations. Places
132 -- one entity on its visibility chain, and recurses on the visible part if
133 -- the entity is an inner package.
135 function Is_Private_Base_Type (E : Entity_Id) return Boolean;
136 -- True for a private type that is not a subtype
138 function Is_Visible_Dependent (Dep : Entity_Id) return Boolean;
139 -- If the private dependent is a private type whose full view is derived
140 -- from the parent type, its full properties are revealed only if we are in
141 -- the immediate scope of the private dependent. Should this predicate be
142 -- tightened further???
144 function Requires_Completion_In_Body
145 (Id : Entity_Id;
146 Pack_Id : Entity_Id;
147 Do_Abstract_States : Boolean := False) return Boolean;
148 -- Subsidiary to routines Unit_Requires_Body and Unit_Requires_Body_Info.
149 -- Determine whether entity Id declared in package spec Pack_Id requires
150 -- completion in a package body. Flag Do_Abstract_Stats should be set when
151 -- abstract states are to be considered in the completion test.
153 procedure Unit_Requires_Body_Info (Pack_Id : Entity_Id);
154 -- Outputs info messages showing why package Pack_Id requires a body. The
155 -- caller has checked that the switch requesting this information is set,
156 -- and that the package does indeed require a body.
158 --------------------------
159 -- Analyze_Package_Body --
160 --------------------------
162 procedure Analyze_Package_Body (N : Node_Id) is
163 Loc : constant Source_Ptr := Sloc (N);
165 begin
166 if Debug_Flag_C then
167 Write_Str ("==> package body ");
168 Write_Name (Chars (Defining_Entity (N)));
169 Write_Str (" from ");
170 Write_Location (Loc);
171 Write_Eol;
172 Indent;
173 end if;
175 -- The real work is split out into the helper, so it can do "return;"
176 -- without skipping the debug output.
178 Analyze_Package_Body_Helper (N);
180 if Debug_Flag_C then
181 Outdent;
182 Write_Str ("<== package body ");
183 Write_Name (Chars (Defining_Entity (N)));
184 Write_Str (" from ");
185 Write_Location (Loc);
186 Write_Eol;
187 end if;
188 end Analyze_Package_Body;
190 ---------------------------------
191 -- Analyze_Package_Body_Helper --
192 ---------------------------------
194 -- WARNING: This routine manages Ghost regions. Return statements must be
195 -- replaced by gotos which jump to the end of the routine and restore the
196 -- Ghost mode.
198 procedure Analyze_Package_Body_Helper (N : Node_Id) is
199 procedure Hide_Public_Entities (Decls : List_Id);
200 -- Attempt to hide all public entities found in declarative list Decls
201 -- by resetting their Is_Public flag to False depending on whether the
202 -- entities are not referenced by inlined or generic bodies. This kind
203 -- of processing is a conservative approximation and may still leave
204 -- certain entities externally visible.
206 procedure Install_Composite_Operations (P : Entity_Id);
207 -- Composite types declared in the current scope may depend on types
208 -- that were private at the point of declaration, and whose full view
209 -- is now in scope. Indicate that the corresponding operations on the
210 -- composite type are available.
212 --------------------------
213 -- Hide_Public_Entities --
214 --------------------------
216 procedure Hide_Public_Entities (Decls : List_Id) is
217 function Contains_Subprograms_Refs (N : Node_Id) return Boolean;
218 -- Subsidiary to routine Has_Referencer. Determine whether a node
219 -- contains a reference to a subprogram.
220 -- WARNING: this is a very expensive routine as it performs a full
221 -- tree traversal.
223 function Has_Referencer
224 (Decls : List_Id;
225 Top_Level : Boolean := False) return Boolean;
226 -- A "referencer" is a construct which may reference a previous
227 -- declaration. Examine all declarations in list Decls in reverse
228 -- and determine whether once such referencer exists. All entities
229 -- in the range Last (Decls) .. Referencer are hidden from external
230 -- visibility.
232 -------------------------------
233 -- Contains_Subprograms_Refs --
234 -------------------------------
236 function Contains_Subprograms_Refs (N : Node_Id) return Boolean is
237 Reference_Seen : Boolean := False;
239 function Is_Subprogram_Ref (N : Node_Id) return Traverse_Result;
240 -- Determine whether a node denotes a reference to a subprogram
242 -----------------------
243 -- Is_Subprogram_Ref --
244 -----------------------
246 function Is_Subprogram_Ref
247 (N : Node_Id) return Traverse_Result
249 Val : Node_Id;
251 begin
252 -- Detect a reference of the form
253 -- Subp_Call
255 if Nkind (N) in N_Subprogram_Call
256 and then Is_Entity_Name (Name (N))
257 then
258 Reference_Seen := True;
259 return Abandon;
261 -- Detect a reference of the form
262 -- Subp'Some_Attribute
264 elsif Nkind (N) = N_Attribute_Reference
265 and then Is_Entity_Name (Prefix (N))
266 and then Present (Entity (Prefix (N)))
267 and then Is_Subprogram (Entity (Prefix (N)))
268 then
269 Reference_Seen := True;
270 return Abandon;
272 -- Constants can be substituted by their value in gigi, which
273 -- may contain a reference, so be conservative for them.
275 elsif Is_Entity_Name (N)
276 and then Present (Entity (N))
277 and then Ekind (Entity (N)) = E_Constant
278 then
279 Val := Constant_Value (Entity (N));
281 if Present (Val)
282 and then not Compile_Time_Known_Value (Val)
283 then
284 Reference_Seen := True;
285 return Abandon;
286 end if;
287 end if;
289 return OK;
290 end Is_Subprogram_Ref;
292 procedure Find_Subprograms_Ref is
293 new Traverse_Proc (Is_Subprogram_Ref);
295 -- Start of processing for Contains_Subprograms_Refs
297 begin
298 Find_Subprograms_Ref (N);
300 return Reference_Seen;
301 end Contains_Subprograms_Refs;
303 --------------------
304 -- Has_Referencer --
305 --------------------
307 function Has_Referencer
308 (Decls : List_Id;
309 Top_Level : Boolean := False) return Boolean
311 Decl : Node_Id;
312 Decl_Id : Entity_Id;
313 Spec : Node_Id;
315 Has_Non_Subprograms_Referencer : Boolean := False;
316 -- Flag set if a subprogram body was detected as a referencer but
317 -- does not contain references to other subprograms. In this case,
318 -- if we still are top level, we do not return True immediately,
319 -- but keep hiding subprograms from external visibility.
321 begin
322 if No (Decls) then
323 return False;
324 end if;
326 -- Examine all declarations in reverse order, hiding all entities
327 -- from external visibility until a referencer has been found. The
328 -- algorithm recurses into nested packages.
330 Decl := Last (Decls);
331 while Present (Decl) loop
333 -- A stub is always considered a referencer
335 if Nkind (Decl) in N_Body_Stub then
336 return True;
338 -- Package declaration
340 elsif Nkind (Decl) = N_Package_Declaration then
341 Spec := Specification (Decl);
343 -- Inspect the declarations of a non-generic package to try
344 -- and hide more entities from external visibility.
346 if not Is_Generic_Unit (Defining_Entity (Spec)) then
347 if Has_Referencer (Private_Declarations (Spec))
348 or else Has_Referencer (Visible_Declarations (Spec))
349 then
350 return True;
351 end if;
352 end if;
354 -- Package body
356 elsif Nkind (Decl) = N_Package_Body
357 and then Present (Corresponding_Spec (Decl))
358 then
359 Decl_Id := Corresponding_Spec (Decl);
361 -- A generic package body is a referencer. It would seem
362 -- that we only have to consider generics that can be
363 -- exported, i.e. where the corresponding spec is the
364 -- spec of the current package, but because of nested
365 -- instantiations, a fully private generic body may export
366 -- other private body entities. Furthermore, regardless of
367 -- whether there was a previous inlined subprogram, (an
368 -- instantiation of) the generic package may reference any
369 -- entity declared before it.
371 if Is_Generic_Unit (Decl_Id) then
372 return True;
374 -- Inspect the declarations of a non-generic package body to
375 -- try and hide more entities from external visibility.
377 elsif Has_Referencer (Declarations (Decl)) then
378 return True;
379 end if;
381 -- Subprogram body
383 elsif Nkind (Decl) = N_Subprogram_Body then
384 if Present (Corresponding_Spec (Decl)) then
385 Decl_Id := Corresponding_Spec (Decl);
387 -- A generic subprogram body acts as a referencer
389 if Is_Generic_Unit (Decl_Id) then
390 return True;
391 end if;
393 -- An inlined subprogram body acts as a referencer
395 if Is_Inlined (Decl_Id)
396 or else Has_Pragma_Inline (Decl_Id)
397 then
398 -- Inspect the statements of the subprogram body
399 -- to determine whether the body references other
400 -- subprograms.
402 if Top_Level
403 and then not Contains_Subprograms_Refs (Decl)
404 then
405 Has_Non_Subprograms_Referencer := True;
406 else
407 return True;
408 end if;
409 end if;
411 -- Otherwise this is a stand alone subprogram body
413 else
414 Decl_Id := Defining_Entity (Decl);
416 -- An inlined body acts as a referencer. Note that an
417 -- inlined subprogram remains Is_Public as gigi requires
418 -- the flag to be set.
420 -- Note that we test Has_Pragma_Inline here rather than
421 -- Is_Inlined. We are compiling this for a client, and
422 -- it is the client who will decide if actual inlining
423 -- should occur, so we need to assume that the procedure
424 -- could be inlined for the purpose of accessing global
425 -- entities.
427 if Has_Pragma_Inline (Decl_Id) then
428 if Top_Level
429 and then not Contains_Subprograms_Refs (Decl)
430 then
431 Has_Non_Subprograms_Referencer := True;
432 else
433 return True;
434 end if;
435 else
436 Set_Is_Public (Decl_Id, False);
437 end if;
438 end if;
440 -- Exceptions, objects and renamings do not need to be public
441 -- if they are not followed by a construct which can reference
442 -- and export them. The Is_Public flag is reset on top level
443 -- entities only as anything nested is local to its context.
444 -- Likewise for subprograms, but we work harder for them as
445 -- their visibility can have a significant impact on inlining
446 -- decisions in the back end.
448 elsif Nkind_In (Decl, N_Exception_Declaration,
449 N_Object_Declaration,
450 N_Object_Renaming_Declaration,
451 N_Subprogram_Declaration,
452 N_Subprogram_Renaming_Declaration)
453 then
454 Decl_Id := Defining_Entity (Decl);
456 if Top_Level
457 and then not Is_Imported (Decl_Id)
458 and then not Is_Exported (Decl_Id)
459 and then No (Interface_Name (Decl_Id))
460 and then
461 (not Has_Non_Subprograms_Referencer
462 or else Nkind (Decl) = N_Subprogram_Declaration)
463 then
464 Set_Is_Public (Decl_Id, False);
465 end if;
466 end if;
468 Prev (Decl);
469 end loop;
471 return Has_Non_Subprograms_Referencer;
472 end Has_Referencer;
474 -- Local variables
476 Discard : Boolean := True;
477 pragma Unreferenced (Discard);
479 -- Start of processing for Hide_Public_Entities
481 begin
482 -- The algorithm examines the top level declarations of a package
483 -- body in reverse looking for a construct that may export entities
484 -- declared prior to it. If such a scenario is encountered, then all
485 -- entities in the range Last (Decls) .. construct are hidden from
486 -- external visibility. Consider:
488 -- package Pack is
489 -- generic
490 -- package Gen is
491 -- end Gen;
492 -- end Pack;
494 -- package body Pack is
495 -- External_Obj : ...; -- (1)
497 -- package body Gen is -- (2)
498 -- ... External_Obj ... -- (3)
499 -- end Gen;
501 -- Local_Obj : ...; -- (4)
502 -- end Pack;
504 -- In this example Local_Obj (4) must not be externally visible as
505 -- it cannot be exported by anything in Pack. The body of generic
506 -- package Gen (2) on the other hand acts as a "referencer" and may
507 -- export anything declared before it. Since the compiler does not
508 -- perform flow analysis, it is not possible to determine precisely
509 -- which entities will be exported when Gen is instantiated. In the
510 -- example above External_Obj (1) is exported at (3), but this may
511 -- not always be the case. The algorithm takes a conservative stance
512 -- and leaves entity External_Obj public.
514 Discard := Has_Referencer (Decls, Top_Level => True);
515 end Hide_Public_Entities;
517 ----------------------------------
518 -- Install_Composite_Operations --
519 ----------------------------------
521 procedure Install_Composite_Operations (P : Entity_Id) is
522 Id : Entity_Id;
524 begin
525 Id := First_Entity (P);
526 while Present (Id) loop
527 if Is_Type (Id)
528 and then (Is_Limited_Composite (Id)
529 or else Is_Private_Composite (Id))
530 and then No (Private_Component (Id))
531 then
532 Set_Is_Limited_Composite (Id, False);
533 Set_Is_Private_Composite (Id, False);
534 end if;
536 Next_Entity (Id);
537 end loop;
538 end Install_Composite_Operations;
540 -- Local variables
542 Body_Id : Entity_Id;
543 HSS : Node_Id;
544 Last_Spec_Entity : Entity_Id;
545 Mode : Ghost_Mode_Type;
546 New_N : Node_Id;
547 Pack_Decl : Node_Id;
548 Spec_Id : Entity_Id;
550 -- Start of processing for Analyze_Package_Body_Helper
552 begin
553 -- Find corresponding package specification, and establish the current
554 -- scope. The visible defining entity for the package is the defining
555 -- occurrence in the spec. On exit from the package body, all body
556 -- declarations are attached to the defining entity for the body, but
557 -- the later is never used for name resolution. In this fashion there
558 -- is only one visible entity that denotes the package.
560 -- Set Body_Id. Note that this will be reset to point to the generic
561 -- copy later on in the generic case.
563 Body_Id := Defining_Entity (N);
565 -- Body is body of package instantiation. Corresponding spec has already
566 -- been set.
568 if Present (Corresponding_Spec (N)) then
569 Spec_Id := Corresponding_Spec (N);
570 Pack_Decl := Unit_Declaration_Node (Spec_Id);
572 else
573 Spec_Id := Current_Entity_In_Scope (Defining_Entity (N));
575 if Present (Spec_Id)
576 and then Is_Package_Or_Generic_Package (Spec_Id)
577 then
578 Pack_Decl := Unit_Declaration_Node (Spec_Id);
580 if Nkind (Pack_Decl) = N_Package_Renaming_Declaration then
581 Error_Msg_N ("cannot supply body for package renaming", N);
582 return;
584 elsif Present (Corresponding_Body (Pack_Decl)) then
585 Error_Msg_N ("redefinition of package body", N);
586 return;
587 end if;
589 else
590 Error_Msg_N ("missing specification for package body", N);
591 return;
592 end if;
594 if Is_Package_Or_Generic_Package (Spec_Id)
595 and then (Scope (Spec_Id) = Standard_Standard
596 or else Is_Child_Unit (Spec_Id))
597 and then not Unit_Requires_Body (Spec_Id)
598 then
599 if Ada_Version = Ada_83 then
600 Error_Msg_N
601 ("optional package body (not allowed in Ada 95)??", N);
602 else
603 Error_Msg_N ("spec of this package does not allow a body", N);
604 end if;
605 end if;
606 end if;
608 -- A [generic] package body "freezes" the contract of the nearest
609 -- enclosing package body and all other contracts encountered in the
610 -- same declarative part up to and excluding the package body:
612 -- package body Nearest_Enclosing_Package
613 -- with Refined_State => (State => Constit)
614 -- is
615 -- Constit : ...;
617 -- package body Freezes_Enclosing_Package_Body
618 -- with Refined_State => (State_2 => Constit_2)
619 -- is
620 -- Constit_2 : ...;
622 -- procedure Proc
623 -- with Refined_Depends => (Input => (Constit, Constit_2)) ...
625 -- This ensures that any annotations referenced by the contract of a
626 -- [generic] subprogram body declared within the current package body
627 -- are available. This form of "freezing" is decoupled from the usual
628 -- Freeze_xxx mechanism because it must also work in the context of
629 -- generics where normal freezing is disabled.
631 -- Only bodies coming from source should cause this type of "freezing".
632 -- Instantiated generic bodies are excluded because their processing is
633 -- performed in a separate compilation pass which lacks enough semantic
634 -- information with respect to contract analysis. It is safe to suppress
635 -- the "freezing" of contracts in this case because this action already
636 -- took place at the end of the enclosing declarative part.
638 if Comes_From_Source (N)
639 and then not Is_Generic_Instance (Spec_Id)
640 then
641 Analyze_Previous_Contracts (N);
642 end if;
644 -- A package body is Ghost when the corresponding spec is Ghost. Set
645 -- the mode now to ensure that any nodes generated during analysis and
646 -- expansion are properly flagged as ignored Ghost.
648 Mark_And_Set_Ghost_Body (N, Spec_Id, Mode);
650 Set_Is_Compilation_Unit (Body_Id, Is_Compilation_Unit (Spec_Id));
651 Style.Check_Identifier (Body_Id, Spec_Id);
653 if Is_Child_Unit (Spec_Id) then
654 if Nkind (Parent (N)) /= N_Compilation_Unit then
655 Error_Msg_NE
656 ("body of child unit& cannot be an inner package", N, Spec_Id);
657 end if;
659 Set_Is_Child_Unit (Body_Id);
660 end if;
662 -- Generic package case
664 if Ekind (Spec_Id) = E_Generic_Package then
666 -- Disable expansion and perform semantic analysis on copy. The
667 -- unannotated body will be used in all instantiations.
669 Body_Id := Defining_Entity (N);
670 Set_Ekind (Body_Id, E_Package_Body);
671 Set_Scope (Body_Id, Scope (Spec_Id));
672 Set_Is_Obsolescent (Body_Id, Is_Obsolescent (Spec_Id));
673 Set_Body_Entity (Spec_Id, Body_Id);
674 Set_Spec_Entity (Body_Id, Spec_Id);
676 New_N := Copy_Generic_Node (N, Empty, Instantiating => False);
677 Rewrite (N, New_N);
679 -- Once the contents of the generic copy and the template are
680 -- swapped, do the same for their respective aspect specifications.
682 Exchange_Aspects (N, New_N);
684 -- Collect all contract-related source pragmas found within the
685 -- template and attach them to the contract of the package body.
686 -- This contract is used in the capture of global references within
687 -- annotations.
689 Create_Generic_Contract (N);
691 -- Update Body_Id to point to the copied node for the remainder of
692 -- the processing.
694 Body_Id := Defining_Entity (N);
695 Start_Generic;
696 end if;
698 -- The Body_Id is that of the copied node in the generic case, the
699 -- current node otherwise. Note that N was rewritten above, so we must
700 -- be sure to get the latest Body_Id value.
702 Set_Ekind (Body_Id, E_Package_Body);
703 Set_Body_Entity (Spec_Id, Body_Id);
704 Set_Spec_Entity (Body_Id, Spec_Id);
706 -- Defining name for the package body is not a visible entity: Only the
707 -- defining name for the declaration is visible.
709 Set_Etype (Body_Id, Standard_Void_Type);
710 Set_Scope (Body_Id, Scope (Spec_Id));
711 Set_Corresponding_Spec (N, Spec_Id);
712 Set_Corresponding_Body (Pack_Decl, Body_Id);
714 -- The body entity is not used for semantics or code generation, but
715 -- it is attached to the entity list of the enclosing scope to simplify
716 -- the listing of back-annotations for the types it main contain.
718 if Scope (Spec_Id) /= Standard_Standard then
719 Append_Entity (Body_Id, Scope (Spec_Id));
720 end if;
722 -- Indicate that we are currently compiling the body of the package
724 Set_In_Package_Body (Spec_Id);
725 Set_Has_Completion (Spec_Id);
726 Last_Spec_Entity := Last_Entity (Spec_Id);
728 if Has_Aspects (N) then
729 Analyze_Aspect_Specifications (N, Body_Id);
730 end if;
732 Push_Scope (Spec_Id);
734 -- Set SPARK_Mode only for non-generic package
736 if Ekind (Spec_Id) = E_Package then
737 Set_SPARK_Pragma (Body_Id, SPARK_Mode_Pragma);
738 Set_SPARK_Aux_Pragma (Body_Id, SPARK_Mode_Pragma);
739 Set_SPARK_Pragma_Inherited (Body_Id);
740 Set_SPARK_Aux_Pragma_Inherited (Body_Id);
741 end if;
743 Set_Categorization_From_Pragmas (N);
745 Install_Visible_Declarations (Spec_Id);
746 Install_Private_Declarations (Spec_Id);
747 Install_Private_With_Clauses (Spec_Id);
748 Install_Composite_Operations (Spec_Id);
750 Check_Anonymous_Access_Types (Spec_Id, N);
752 if Ekind (Spec_Id) = E_Generic_Package then
753 Set_Use (Generic_Formal_Declarations (Pack_Decl));
754 end if;
756 Set_Use (Visible_Declarations (Specification (Pack_Decl)));
757 Set_Use (Private_Declarations (Specification (Pack_Decl)));
759 -- This is a nested package, so it may be necessary to declare certain
760 -- inherited subprograms that are not yet visible because the parent
761 -- type's subprograms are now visible.
763 if Ekind (Scope (Spec_Id)) = E_Package
764 and then Scope (Spec_Id) /= Standard_Standard
765 then
766 Declare_Inherited_Private_Subprograms (Spec_Id);
767 end if;
769 -- A package body "freezes" the contract of its initial declaration.
770 -- This analysis depends on attribute Corresponding_Spec being set. Only
771 -- bodies coming from source shuld cause this type of "freezing".
773 if Present (Declarations (N)) then
774 Analyze_Declarations (Declarations (N));
775 Inspect_Deferred_Constant_Completion (Declarations (N));
776 end if;
778 -- Verify that the SPARK_Mode of the body agrees with that of its spec
780 if Present (SPARK_Pragma (Body_Id)) then
781 if Present (SPARK_Aux_Pragma (Spec_Id)) then
782 if Get_SPARK_Mode_From_Annotation (SPARK_Aux_Pragma (Spec_Id)) =
784 and then
785 Get_SPARK_Mode_From_Annotation (SPARK_Pragma (Body_Id)) = On
786 then
787 Error_Msg_Sloc := Sloc (SPARK_Pragma (Body_Id));
788 Error_Msg_N ("incorrect application of SPARK_Mode#", N);
789 Error_Msg_Sloc := Sloc (SPARK_Aux_Pragma (Spec_Id));
790 Error_Msg_NE
791 ("\value Off was set for SPARK_Mode on & #", N, Spec_Id);
792 end if;
794 else
795 Error_Msg_Sloc := Sloc (SPARK_Pragma (Body_Id));
796 Error_Msg_N ("incorrect application of SPARK_Mode#", N);
797 Error_Msg_Sloc := Sloc (Spec_Id);
798 Error_Msg_NE
799 ("\no value was set for SPARK_Mode on & #", N, Spec_Id);
800 end if;
801 end if;
803 -- Analyze_Declarations has caused freezing of all types. Now generate
804 -- bodies for RACW primitives and stream attributes, if any.
806 if Ekind (Spec_Id) = E_Package and then Has_RACW (Spec_Id) then
808 -- Attach subprogram bodies to support RACWs declared in spec
810 Append_RACW_Bodies (Declarations (N), Spec_Id);
811 Analyze_List (Declarations (N));
812 end if;
814 HSS := Handled_Statement_Sequence (N);
816 if Present (HSS) then
817 Process_End_Label (HSS, 't', Spec_Id);
818 Analyze (HSS);
820 -- Check that elaboration code in a preelaborable package body is
821 -- empty other than null statements and labels (RM 10.2.1(6)).
823 Validate_Null_Statement_Sequence (N);
824 end if;
826 Validate_Categorization_Dependency (N, Spec_Id);
827 Check_Completion (Body_Id);
829 -- Generate start of body reference. Note that we do this fairly late,
830 -- because the call will use In_Extended_Main_Source_Unit as a check,
831 -- and we want to make sure that Corresponding_Stub links are set
833 Generate_Reference (Spec_Id, Body_Id, 'b', Set_Ref => False);
835 -- For a generic package, collect global references and mark them on
836 -- the original body so that they are not resolved again at the point
837 -- of instantiation.
839 if Ekind (Spec_Id) /= E_Package then
840 Save_Global_References (Original_Node (N));
841 End_Generic;
842 end if;
844 -- The entities of the package body have so far been chained onto the
845 -- declaration chain for the spec. That's been fine while we were in the
846 -- body, since we wanted them to be visible, but now that we are leaving
847 -- the package body, they are no longer visible, so we remove them from
848 -- the entity chain of the package spec entity, and copy them to the
849 -- entity chain of the package body entity, where they will never again
850 -- be visible.
852 if Present (Last_Spec_Entity) then
853 Set_First_Entity (Body_Id, Next_Entity (Last_Spec_Entity));
854 Set_Next_Entity (Last_Spec_Entity, Empty);
855 Set_Last_Entity (Body_Id, Last_Entity (Spec_Id));
856 Set_Last_Entity (Spec_Id, Last_Spec_Entity);
858 else
859 Set_First_Entity (Body_Id, First_Entity (Spec_Id));
860 Set_Last_Entity (Body_Id, Last_Entity (Spec_Id));
861 Set_First_Entity (Spec_Id, Empty);
862 Set_Last_Entity (Spec_Id, Empty);
863 end if;
865 End_Package_Scope (Spec_Id);
867 -- All entities declared in body are not visible
869 declare
870 E : Entity_Id;
872 begin
873 E := First_Entity (Body_Id);
874 while Present (E) loop
875 Set_Is_Immediately_Visible (E, False);
876 Set_Is_Potentially_Use_Visible (E, False);
877 Set_Is_Hidden (E);
879 -- Child units may appear on the entity list (e.g. if they appear
880 -- in the context of a subunit) but they are not body entities.
882 if not Is_Child_Unit (E) then
883 Set_Is_Package_Body_Entity (E);
884 end if;
886 Next_Entity (E);
887 end loop;
888 end;
890 Check_References (Body_Id);
892 -- For a generic unit, check that the formal parameters are referenced,
893 -- and that local variables are used, as for regular packages.
895 if Ekind (Spec_Id) = E_Generic_Package then
896 Check_References (Spec_Id);
897 end if;
899 -- At this point all entities of the package body are externally visible
900 -- to the linker as their Is_Public flag is set to True. This proactive
901 -- approach is necessary because an inlined or a generic body for which
902 -- code is generated in other units may need to see these entities. Cut
903 -- down the number of global symbols that do not neet public visibility
904 -- as this has two beneficial effects:
905 -- (1) It makes the compilation process more efficient.
906 -- (2) It gives the code generatormore freedom to optimize within each
907 -- unit, especially subprograms.
909 -- This is done only for top level library packages or child units as
910 -- the algorithm does a top down traversal of the package body.
912 if (Scope (Spec_Id) = Standard_Standard or else Is_Child_Unit (Spec_Id))
913 and then not Is_Generic_Unit (Spec_Id)
914 then
915 Hide_Public_Entities (Declarations (N));
916 end if;
918 -- If expander is not active, then here is where we turn off the
919 -- In_Package_Body flag, otherwise it is turned off at the end of the
920 -- corresponding expansion routine. If this is an instance body, we need
921 -- to qualify names of local entities, because the body may have been
922 -- compiled as a preliminary to another instantiation.
924 if not Expander_Active then
925 Set_In_Package_Body (Spec_Id, False);
927 if Is_Generic_Instance (Spec_Id)
928 and then Operating_Mode = Generate_Code
929 then
930 Qualify_Entity_Names (N);
931 end if;
932 end if;
934 Restore_Ghost_Mode (Mode);
935 end Analyze_Package_Body_Helper;
937 ---------------------------------
938 -- Analyze_Package_Declaration --
939 ---------------------------------
941 procedure Analyze_Package_Declaration (N : Node_Id) is
942 Id : constant Node_Id := Defining_Entity (N);
944 Is_Comp_Unit : constant Boolean :=
945 Nkind (Parent (N)) = N_Compilation_Unit;
947 Body_Required : Boolean;
948 -- True when this package declaration requires a corresponding body
950 begin
951 if Debug_Flag_C then
952 Write_Str ("==> package spec ");
953 Write_Name (Chars (Id));
954 Write_Str (" from ");
955 Write_Location (Sloc (N));
956 Write_Eol;
957 Indent;
958 end if;
960 Generate_Definition (Id);
961 Enter_Name (Id);
962 Set_Ekind (Id, E_Package);
963 Set_Etype (Id, Standard_Void_Type);
965 -- Set SPARK_Mode from context only for non-generic package
967 if Ekind (Id) = E_Package then
968 Set_SPARK_Pragma (Id, SPARK_Mode_Pragma);
969 Set_SPARK_Aux_Pragma (Id, SPARK_Mode_Pragma);
970 Set_SPARK_Pragma_Inherited (Id);
971 Set_SPARK_Aux_Pragma_Inherited (Id);
972 end if;
974 -- Analyze aspect specifications immediately, since we need to recognize
975 -- things like Pure early enough to diagnose violations during analysis.
977 if Has_Aspects (N) then
978 Analyze_Aspect_Specifications (N, Id);
979 end if;
981 -- Ada 2005 (AI-217): Check if the package has been illegally named in
982 -- a limited-with clause of its own context. In this case the error has
983 -- been previously notified by Analyze_Context.
985 -- limited with Pkg; -- ERROR
986 -- package Pkg is ...
988 if From_Limited_With (Id) then
989 return;
990 end if;
992 Push_Scope (Id);
994 Set_Is_Pure (Id, Is_Pure (Enclosing_Lib_Unit_Entity));
995 Set_Categorization_From_Pragmas (N);
997 Analyze (Specification (N));
998 Validate_Categorization_Dependency (N, Id);
1000 -- Determine whether the package requires a body. Abstract states are
1001 -- intentionally ignored because they do require refinement which can
1002 -- only come in a body, but at the same time they do not force the need
1003 -- for a body on their own (SPARK RM 7.1.4(4) and 7.2.2(3)).
1005 Body_Required := Unit_Requires_Body (Id);
1007 if not Body_Required then
1009 -- If the package spec does not require an explicit body, then there
1010 -- are not entities requiring completion in the language sense. Call
1011 -- Check_Completion now to ensure that nested package declarations
1012 -- that require an implicit body get one. (In the case where a body
1013 -- is required, Check_Completion is called at the end of the body's
1014 -- declarative part.)
1016 Check_Completion;
1018 -- If the package spec does not require an explicit body, then all
1019 -- abstract states declared in nested packages cannot possibly get
1020 -- a proper refinement (SPARK RM 7.2.2(3)). This check is performed
1021 -- only when the compilation unit is the main unit to allow for
1022 -- modular SPARK analysis where packages do not necessarily have
1023 -- bodies.
1025 if Is_Comp_Unit then
1026 Check_State_Refinements
1027 (Context => N,
1028 Is_Main_Unit => Parent (N) = Cunit (Main_Unit));
1029 end if;
1030 end if;
1032 if Is_Comp_Unit then
1034 -- Set Body_Required indication on the compilation unit node, and
1035 -- determine whether elaboration warnings may be meaningful on it.
1037 Set_Body_Required (Parent (N), Body_Required);
1039 if not Body_Required then
1040 Set_Suppress_Elaboration_Warnings (Id);
1041 end if;
1042 end if;
1044 End_Package_Scope (Id);
1046 -- For the declaration of a library unit that is a remote types package,
1047 -- check legality rules regarding availability of stream attributes for
1048 -- types that contain non-remote access values. This subprogram performs
1049 -- visibility tests that rely on the fact that we have exited the scope
1050 -- of Id.
1052 if Is_Comp_Unit then
1053 Validate_RT_RAT_Component (N);
1054 end if;
1056 if Debug_Flag_C then
1057 Outdent;
1058 Write_Str ("<== package spec ");
1059 Write_Name (Chars (Id));
1060 Write_Str (" from ");
1061 Write_Location (Sloc (N));
1062 Write_Eol;
1063 end if;
1064 end Analyze_Package_Declaration;
1066 -----------------------------------
1067 -- Analyze_Package_Specification --
1068 -----------------------------------
1070 -- Note that this code is shared for the analysis of generic package specs
1071 -- (see Sem_Ch12.Analyze_Generic_Package_Declaration for details).
1073 procedure Analyze_Package_Specification (N : Node_Id) is
1074 Id : constant Entity_Id := Defining_Entity (N);
1075 Orig_Decl : constant Node_Id := Original_Node (Parent (N));
1076 Vis_Decls : constant List_Id := Visible_Declarations (N);
1077 Priv_Decls : constant List_Id := Private_Declarations (N);
1078 E : Entity_Id;
1079 L : Entity_Id;
1080 Public_Child : Boolean;
1082 Private_With_Clauses_Installed : Boolean := False;
1083 -- In Ada 2005, private with_clauses are visible in the private part
1084 -- of a nested package, even if it appears in the public part of the
1085 -- enclosing package. This requires a separate step to install these
1086 -- private_with_clauses, and remove them at the end of the nested
1087 -- package.
1089 procedure Check_One_Tagged_Type_Or_Extension_At_Most;
1090 -- Issue an error in SPARK mode if a package specification contains
1091 -- more than one tagged type or type extension.
1093 procedure Clear_Constants (Id : Entity_Id; FE : Entity_Id);
1094 -- Clears constant indications (Never_Set_In_Source, Constant_Value, and
1095 -- Is_True_Constant) on all variables that are entities of Id, and on
1096 -- the chain whose first element is FE. A recursive call is made for all
1097 -- packages and generic packages.
1099 procedure Generate_Parent_References;
1100 -- For a child unit, generate references to parent units, for
1101 -- GPS navigation purposes.
1103 function Is_Public_Child (Child, Unit : Entity_Id) return Boolean;
1104 -- Child and Unit are entities of compilation units. True if Child
1105 -- is a public child of Parent as defined in 10.1.1
1107 procedure Inspect_Unchecked_Union_Completion (Decls : List_Id);
1108 -- Reject completion of an incomplete or private type declarations
1109 -- having a known discriminant part by an unchecked union.
1111 procedure Install_Parent_Private_Declarations (Inst_Id : Entity_Id);
1112 -- Given the package entity of a generic package instantiation or
1113 -- formal package whose corresponding generic is a child unit, installs
1114 -- the private declarations of each of the child unit's parents.
1115 -- This has to be done at the point of entering the instance package's
1116 -- private part rather than being done in Sem_Ch12.Install_Parent
1117 -- (which is where the parents' visible declarations are installed).
1119 ------------------------------------------------
1120 -- Check_One_Tagged_Type_Or_Extension_At_Most --
1121 ------------------------------------------------
1123 procedure Check_One_Tagged_Type_Or_Extension_At_Most is
1124 Previous : Node_Id;
1126 procedure Check_Decls (Decls : List_Id);
1127 -- Check that either Previous is Empty and Decls does not contain
1128 -- more than one tagged type or type extension, or Previous is
1129 -- already set and Decls contains no tagged type or type extension.
1131 -----------------
1132 -- Check_Decls --
1133 -----------------
1135 procedure Check_Decls (Decls : List_Id) is
1136 Decl : Node_Id;
1138 begin
1139 Decl := First (Decls);
1140 while Present (Decl) loop
1141 if Nkind (Decl) = N_Full_Type_Declaration
1142 and then Is_Tagged_Type (Defining_Identifier (Decl))
1143 then
1144 if No (Previous) then
1145 Previous := Decl;
1147 else
1148 Error_Msg_Sloc := Sloc (Previous);
1149 Check_SPARK_05_Restriction
1150 ("at most one tagged type or type extension allowed",
1151 "\\ previous declaration#",
1152 Decl);
1153 end if;
1154 end if;
1156 Next (Decl);
1157 end loop;
1158 end Check_Decls;
1160 -- Start of processing for Check_One_Tagged_Type_Or_Extension_At_Most
1162 begin
1163 Previous := Empty;
1164 Check_Decls (Vis_Decls);
1166 if Present (Priv_Decls) then
1167 Check_Decls (Priv_Decls);
1168 end if;
1169 end Check_One_Tagged_Type_Or_Extension_At_Most;
1171 ---------------------
1172 -- Clear_Constants --
1173 ---------------------
1175 procedure Clear_Constants (Id : Entity_Id; FE : Entity_Id) is
1176 E : Entity_Id;
1178 begin
1179 -- Ignore package renamings, not interesting and they can cause self
1180 -- referential loops in the code below.
1182 if Nkind (Parent (Id)) = N_Package_Renaming_Declaration then
1183 return;
1184 end if;
1186 -- Note: in the loop below, the check for Next_Entity pointing back
1187 -- to the package entity may seem odd, but it is needed, because a
1188 -- package can contain a renaming declaration to itself, and such
1189 -- renamings are generated automatically within package instances.
1191 E := FE;
1192 while Present (E) and then E /= Id loop
1193 if Is_Assignable (E) then
1194 Set_Never_Set_In_Source (E, False);
1195 Set_Is_True_Constant (E, False);
1196 Set_Current_Value (E, Empty);
1197 Set_Is_Known_Null (E, False);
1198 Set_Last_Assignment (E, Empty);
1200 if not Can_Never_Be_Null (E) then
1201 Set_Is_Known_Non_Null (E, False);
1202 end if;
1204 elsif Is_Package_Or_Generic_Package (E) then
1205 Clear_Constants (E, First_Entity (E));
1206 Clear_Constants (E, First_Private_Entity (E));
1207 end if;
1209 Next_Entity (E);
1210 end loop;
1211 end Clear_Constants;
1213 --------------------------------
1214 -- Generate_Parent_References --
1215 --------------------------------
1217 procedure Generate_Parent_References is
1218 Decl : constant Node_Id := Parent (N);
1220 begin
1221 if Id = Cunit_Entity (Main_Unit)
1222 or else Parent (Decl) = Library_Unit (Cunit (Main_Unit))
1223 then
1224 Generate_Reference (Id, Scope (Id), 'k', False);
1226 elsif not Nkind_In (Unit (Cunit (Main_Unit)), N_Subprogram_Body,
1227 N_Subunit)
1228 then
1229 -- If current unit is an ancestor of main unit, generate a
1230 -- reference to its own parent.
1232 declare
1233 U : Node_Id;
1234 Main_Spec : Node_Id := Unit (Cunit (Main_Unit));
1236 begin
1237 if Nkind (Main_Spec) = N_Package_Body then
1238 Main_Spec := Unit (Library_Unit (Cunit (Main_Unit)));
1239 end if;
1241 U := Parent_Spec (Main_Spec);
1242 while Present (U) loop
1243 if U = Parent (Decl) then
1244 Generate_Reference (Id, Scope (Id), 'k', False);
1245 exit;
1247 elsif Nkind (Unit (U)) = N_Package_Body then
1248 exit;
1250 else
1251 U := Parent_Spec (Unit (U));
1252 end if;
1253 end loop;
1254 end;
1255 end if;
1256 end Generate_Parent_References;
1258 ---------------------
1259 -- Is_Public_Child --
1260 ---------------------
1262 function Is_Public_Child (Child, Unit : Entity_Id) return Boolean is
1263 begin
1264 if not Is_Private_Descendant (Child) then
1265 return True;
1266 else
1267 if Child = Unit then
1268 return not Private_Present (
1269 Parent (Unit_Declaration_Node (Child)));
1270 else
1271 return Is_Public_Child (Scope (Child), Unit);
1272 end if;
1273 end if;
1274 end Is_Public_Child;
1276 ----------------------------------------
1277 -- Inspect_Unchecked_Union_Completion --
1278 ----------------------------------------
1280 procedure Inspect_Unchecked_Union_Completion (Decls : List_Id) is
1281 Decl : Node_Id;
1283 begin
1284 Decl := First (Decls);
1285 while Present (Decl) loop
1287 -- We are looking at an incomplete or private type declaration
1288 -- with a known_discriminant_part whose full view is an
1289 -- Unchecked_Union.
1291 if Nkind_In (Decl, N_Incomplete_Type_Declaration,
1292 N_Private_Type_Declaration)
1293 and then Has_Discriminants (Defining_Identifier (Decl))
1294 and then Present (Full_View (Defining_Identifier (Decl)))
1295 and then
1296 Is_Unchecked_Union (Full_View (Defining_Identifier (Decl)))
1297 then
1298 Error_Msg_N
1299 ("completion of discriminated partial view "
1300 & "cannot be an unchecked union",
1301 Full_View (Defining_Identifier (Decl)));
1302 end if;
1304 Next (Decl);
1305 end loop;
1306 end Inspect_Unchecked_Union_Completion;
1308 -----------------------------------------
1309 -- Install_Parent_Private_Declarations --
1310 -----------------------------------------
1312 procedure Install_Parent_Private_Declarations (Inst_Id : Entity_Id) is
1313 Inst_Par : Entity_Id;
1314 Gen_Par : Entity_Id;
1315 Inst_Node : Node_Id;
1317 begin
1318 Inst_Par := Inst_Id;
1320 Gen_Par :=
1321 Generic_Parent (Specification (Unit_Declaration_Node (Inst_Par)));
1322 while Present (Gen_Par) and then Is_Child_Unit (Gen_Par) loop
1323 Inst_Node := Get_Package_Instantiation_Node (Inst_Par);
1325 if Nkind_In (Inst_Node, N_Package_Instantiation,
1326 N_Formal_Package_Declaration)
1327 and then Nkind (Name (Inst_Node)) = N_Expanded_Name
1328 then
1329 Inst_Par := Entity (Prefix (Name (Inst_Node)));
1331 if Present (Renamed_Entity (Inst_Par)) then
1332 Inst_Par := Renamed_Entity (Inst_Par);
1333 end if;
1335 Gen_Par :=
1336 Generic_Parent
1337 (Specification (Unit_Declaration_Node (Inst_Par)));
1339 -- Install the private declarations and private use clauses
1340 -- of a parent instance of the child instance, unless the
1341 -- parent instance private declarations have already been
1342 -- installed earlier in Analyze_Package_Specification, which
1343 -- happens when a generic child is instantiated, and the
1344 -- instance is a child of the parent instance.
1346 -- Installing the use clauses of the parent instance twice
1347 -- is both unnecessary and wrong, because it would cause the
1348 -- clauses to be chained to themselves in the use clauses
1349 -- list of the scope stack entry. That in turn would cause
1350 -- an endless loop from End_Use_Clauses upon scope exit.
1352 -- The parent is now fully visible. It may be a hidden open
1353 -- scope if we are currently compiling some child instance
1354 -- declared within it, but while the current instance is being
1355 -- compiled the parent is immediately visible. In particular
1356 -- its entities must remain visible if a stack save/restore
1357 -- takes place through a call to Rtsfind.
1359 if Present (Gen_Par) then
1360 if not In_Private_Part (Inst_Par) then
1361 Install_Private_Declarations (Inst_Par);
1362 Set_Use (Private_Declarations
1363 (Specification
1364 (Unit_Declaration_Node (Inst_Par))));
1365 Set_Is_Hidden_Open_Scope (Inst_Par, False);
1366 end if;
1368 -- If we've reached the end of the generic instance parents,
1369 -- then finish off by looping through the nongeneric parents
1370 -- and installing their private declarations.
1372 -- If one of the non-generic parents is itself on the scope
1373 -- stack, do not install its private declarations: they are
1374 -- installed in due time when the private part of that parent
1375 -- is analyzed.
1377 else
1378 while Present (Inst_Par)
1379 and then Inst_Par /= Standard_Standard
1380 and then (not In_Open_Scopes (Inst_Par)
1381 or else not In_Private_Part (Inst_Par))
1382 loop
1383 if Nkind (Inst_Node) = N_Formal_Package_Declaration
1384 or else
1385 not Is_Ancestor_Package
1386 (Inst_Par, Cunit_Entity (Current_Sem_Unit))
1387 then
1388 Install_Private_Declarations (Inst_Par);
1389 Set_Use
1390 (Private_Declarations
1391 (Specification
1392 (Unit_Declaration_Node (Inst_Par))));
1393 Inst_Par := Scope (Inst_Par);
1394 else
1395 exit;
1396 end if;
1397 end loop;
1399 exit;
1400 end if;
1402 else
1403 exit;
1404 end if;
1405 end loop;
1406 end Install_Parent_Private_Declarations;
1408 -- Start of processing for Analyze_Package_Specification
1410 begin
1411 if Present (Vis_Decls) then
1412 Analyze_Declarations (Vis_Decls);
1413 end if;
1415 -- Inspect the entities defined in the package and ensure that all
1416 -- incomplete types have received full declarations. Build default
1417 -- initial condition and invariant procedures for all qualifying types.
1419 E := First_Entity (Id);
1420 while Present (E) loop
1422 -- Check on incomplete types
1424 -- AI05-0213: A formal incomplete type has no completion
1426 if Ekind (E) = E_Incomplete_Type
1427 and then No (Full_View (E))
1428 and then not Is_Generic_Type (E)
1429 then
1430 Error_Msg_N ("no declaration in visible part for incomplete}", E);
1431 end if;
1433 Next_Entity (E);
1434 end loop;
1436 if Is_Remote_Call_Interface (Id)
1437 and then Nkind (Parent (Parent (N))) = N_Compilation_Unit
1438 then
1439 Validate_RCI_Declarations (Id);
1440 end if;
1442 -- Save global references in the visible declarations, before installing
1443 -- private declarations of parent unit if there is one, because the
1444 -- privacy status of types defined in the parent will change. This is
1445 -- only relevant for generic child units, but is done in all cases for
1446 -- uniformity.
1448 if Ekind (Id) = E_Generic_Package
1449 and then Nkind (Orig_Decl) = N_Generic_Package_Declaration
1450 then
1451 declare
1452 Orig_Spec : constant Node_Id := Specification (Orig_Decl);
1453 Save_Priv : constant List_Id := Private_Declarations (Orig_Spec);
1455 begin
1456 -- Insert the freezing nodes after the visible declarations to
1457 -- ensure that we analyze its aspects; needed to ensure that
1458 -- global entities referenced in the aspects are properly handled.
1460 if Ada_Version >= Ada_2012
1461 and then Is_Non_Empty_List (Vis_Decls)
1462 and then Is_Empty_List (Priv_Decls)
1463 then
1464 Insert_List_After_And_Analyze
1465 (Last (Vis_Decls), Freeze_Entity (Id, Last (Vis_Decls)));
1466 end if;
1468 Set_Private_Declarations (Orig_Spec, Empty_List);
1469 Save_Global_References (Orig_Decl);
1470 Set_Private_Declarations (Orig_Spec, Save_Priv);
1471 end;
1472 end if;
1474 -- If package is a public child unit, then make the private declarations
1475 -- of the parent visible.
1477 Public_Child := False;
1479 declare
1480 Par : Entity_Id;
1481 Pack_Decl : Node_Id;
1482 Par_Spec : Node_Id;
1484 begin
1485 Par := Id;
1486 Par_Spec := Parent_Spec (Parent (N));
1488 -- If the package is formal package of an enclosing generic, it is
1489 -- transformed into a local generic declaration, and compiled to make
1490 -- its spec available. We need to retrieve the original generic to
1491 -- determine whether it is a child unit, and install its parents.
1493 if No (Par_Spec)
1494 and then
1495 Nkind (Original_Node (Parent (N))) = N_Formal_Package_Declaration
1496 then
1497 Par := Entity (Name (Original_Node (Parent (N))));
1498 Par_Spec := Parent_Spec (Unit_Declaration_Node (Par));
1499 end if;
1501 if Present (Par_Spec) then
1502 Generate_Parent_References;
1504 while Scope (Par) /= Standard_Standard
1505 and then Is_Public_Child (Id, Par)
1506 and then In_Open_Scopes (Par)
1507 loop
1508 Public_Child := True;
1509 Par := Scope (Par);
1510 Install_Private_Declarations (Par);
1511 Install_Private_With_Clauses (Par);
1512 Pack_Decl := Unit_Declaration_Node (Par);
1513 Set_Use (Private_Declarations (Specification (Pack_Decl)));
1514 end loop;
1515 end if;
1516 end;
1518 if Is_Compilation_Unit (Id) then
1519 Install_Private_With_Clauses (Id);
1520 else
1521 -- The current compilation unit may include private with_clauses,
1522 -- which are visible in the private part of the current nested
1523 -- package, and have to be installed now. This is not done for
1524 -- nested instantiations, where the private with_clauses of the
1525 -- enclosing unit have no effect once the instantiation info is
1526 -- established and we start analyzing the package declaration.
1528 declare
1529 Comp_Unit : constant Entity_Id := Cunit_Entity (Current_Sem_Unit);
1530 begin
1531 if Is_Package_Or_Generic_Package (Comp_Unit)
1532 and then not In_Private_Part (Comp_Unit)
1533 and then not In_Instance
1534 then
1535 Install_Private_With_Clauses (Comp_Unit);
1536 Private_With_Clauses_Installed := True;
1537 end if;
1538 end;
1539 end if;
1541 -- If this is a package associated with a generic instance or formal
1542 -- package, then the private declarations of each of the generic's
1543 -- parents must be installed at this point.
1545 if Is_Generic_Instance (Id) then
1546 Install_Parent_Private_Declarations (Id);
1547 end if;
1549 -- Analyze private part if present. The flag In_Private_Part is reset
1550 -- in End_Package_Scope.
1552 L := Last_Entity (Id);
1554 if Present (Priv_Decls) then
1555 Set_In_Private_Part (Id);
1557 -- Upon entering a public child's private part, it may be necessary
1558 -- to declare subprograms that were derived in the package's visible
1559 -- part but not yet made visible.
1561 if Public_Child then
1562 Declare_Inherited_Private_Subprograms (Id);
1563 end if;
1565 Analyze_Declarations (Priv_Decls);
1567 -- Check the private declarations for incomplete deferred constants
1569 Inspect_Deferred_Constant_Completion (Priv_Decls);
1571 -- The first private entity is the immediate follower of the last
1572 -- visible entity, if there was one.
1574 if Present (L) then
1575 Set_First_Private_Entity (Id, Next_Entity (L));
1576 else
1577 Set_First_Private_Entity (Id, First_Entity (Id));
1578 end if;
1580 -- There may be inherited private subprograms that need to be declared,
1581 -- even in the absence of an explicit private part. If there are any
1582 -- public declarations in the package and the package is a public child
1583 -- unit, then an implicit private part is assumed.
1585 elsif Present (L) and then Public_Child then
1586 Set_In_Private_Part (Id);
1587 Declare_Inherited_Private_Subprograms (Id);
1588 Set_First_Private_Entity (Id, Next_Entity (L));
1589 end if;
1591 E := First_Entity (Id);
1592 while Present (E) loop
1594 -- Check rule of 3.6(11), which in general requires waiting till all
1595 -- full types have been seen.
1597 if Ekind (E) = E_Record_Type or else Ekind (E) = E_Array_Type then
1598 Check_Aliased_Component_Types (E);
1599 end if;
1601 -- Check preelaborable initialization for full type completing a
1602 -- private type for which pragma Preelaborable_Initialization given.
1604 if Is_Type (E)
1605 and then Must_Have_Preelab_Init (E)
1606 and then not Has_Preelaborable_Initialization (E)
1607 then
1608 Error_Msg_N
1609 ("full view of & does not have preelaborable initialization", E);
1610 end if;
1612 Next_Entity (E);
1613 end loop;
1615 -- Ada 2005 (AI-216): The completion of an incomplete or private type
1616 -- declaration having a known_discriminant_part shall not be an
1617 -- unchecked union type.
1619 if Present (Vis_Decls) then
1620 Inspect_Unchecked_Union_Completion (Vis_Decls);
1621 end if;
1623 if Present (Priv_Decls) then
1624 Inspect_Unchecked_Union_Completion (Priv_Decls);
1625 end if;
1627 if Ekind (Id) = E_Generic_Package
1628 and then Nkind (Orig_Decl) = N_Generic_Package_Declaration
1629 and then Present (Priv_Decls)
1630 then
1631 -- Save global references in private declarations, ignoring the
1632 -- visible declarations that were processed earlier.
1634 declare
1635 Orig_Spec : constant Node_Id := Specification (Orig_Decl);
1636 Save_Vis : constant List_Id := Visible_Declarations (Orig_Spec);
1637 Save_Form : constant List_Id :=
1638 Generic_Formal_Declarations (Orig_Decl);
1640 begin
1641 -- Insert the freezing nodes after the private declarations to
1642 -- ensure that we analyze its aspects; needed to ensure that
1643 -- global entities referenced in the aspects are properly handled.
1645 if Ada_Version >= Ada_2012
1646 and then Is_Non_Empty_List (Priv_Decls)
1647 then
1648 Insert_List_After_And_Analyze
1649 (Last (Priv_Decls), Freeze_Entity (Id, Last (Priv_Decls)));
1650 end if;
1652 Set_Visible_Declarations (Orig_Spec, Empty_List);
1653 Set_Generic_Formal_Declarations (Orig_Decl, Empty_List);
1654 Save_Global_References (Orig_Decl);
1655 Set_Generic_Formal_Declarations (Orig_Decl, Save_Form);
1656 Set_Visible_Declarations (Orig_Spec, Save_Vis);
1657 end;
1658 end if;
1660 Process_End_Label (N, 'e', Id);
1662 -- Remove private_with_clauses of enclosing compilation unit, if they
1663 -- were installed.
1665 if Private_With_Clauses_Installed then
1666 Remove_Private_With_Clauses (Cunit (Current_Sem_Unit));
1667 end if;
1669 -- For the case of a library level package, we must go through all the
1670 -- entities clearing the indications that the value may be constant and
1671 -- not modified. Why? Because any client of this package may modify
1672 -- these values freely from anywhere. This also applies to any nested
1673 -- packages or generic packages.
1675 -- For now we unconditionally clear constants for packages that are
1676 -- instances of generic packages. The reason is that we do not have the
1677 -- body yet, and we otherwise think things are unreferenced when they
1678 -- are not. This should be fixed sometime (the effect is not terrible,
1679 -- we just lose some warnings, and also some cases of value propagation)
1680 -- ???
1682 if Is_Library_Level_Entity (Id)
1683 or else Is_Generic_Instance (Id)
1684 then
1685 Clear_Constants (Id, First_Entity (Id));
1686 Clear_Constants (Id, First_Private_Entity (Id));
1687 end if;
1689 -- Issue an error in SPARK mode if a package specification contains
1690 -- more than one tagged type or type extension.
1692 Check_One_Tagged_Type_Or_Extension_At_Most;
1694 -- If switch set, output information on why body required
1696 if List_Body_Required_Info
1697 and then In_Extended_Main_Source_Unit (Id)
1698 and then Unit_Requires_Body (Id)
1699 then
1700 Unit_Requires_Body_Info (Id);
1701 end if;
1702 end Analyze_Package_Specification;
1704 --------------------------------------
1705 -- Analyze_Private_Type_Declaration --
1706 --------------------------------------
1708 procedure Analyze_Private_Type_Declaration (N : Node_Id) is
1709 Id : constant Entity_Id := Defining_Identifier (N);
1710 PF : constant Boolean := Is_Pure (Enclosing_Lib_Unit_Entity);
1712 begin
1713 Generate_Definition (Id);
1714 Set_Is_Pure (Id, PF);
1715 Init_Size_Align (Id);
1717 if not Is_Package_Or_Generic_Package (Current_Scope)
1718 or else In_Private_Part (Current_Scope)
1719 then
1720 Error_Msg_N ("invalid context for private declaration", N);
1721 end if;
1723 New_Private_Type (N, Id, N);
1724 Set_Depends_On_Private (Id);
1726 if Has_Aspects (N) then
1727 Analyze_Aspect_Specifications (N, Id);
1728 end if;
1729 end Analyze_Private_Type_Declaration;
1731 ----------------------------------
1732 -- Check_Anonymous_Access_Types --
1733 ----------------------------------
1735 procedure Check_Anonymous_Access_Types
1736 (Spec_Id : Entity_Id;
1737 P_Body : Node_Id)
1739 E : Entity_Id;
1740 IR : Node_Id;
1742 begin
1743 -- Itype references are only needed by gigi, to force elaboration of
1744 -- itypes. In the absence of code generation, they are not needed.
1746 if not Expander_Active then
1747 return;
1748 end if;
1750 E := First_Entity (Spec_Id);
1751 while Present (E) loop
1752 if Ekind (E) = E_Anonymous_Access_Type
1753 and then From_Limited_With (E)
1754 then
1755 IR := Make_Itype_Reference (Sloc (P_Body));
1756 Set_Itype (IR, E);
1758 if No (Declarations (P_Body)) then
1759 Set_Declarations (P_Body, New_List (IR));
1760 else
1761 Prepend (IR, Declarations (P_Body));
1762 end if;
1763 end if;
1765 Next_Entity (E);
1766 end loop;
1767 end Check_Anonymous_Access_Types;
1769 -------------------------------------------
1770 -- Declare_Inherited_Private_Subprograms --
1771 -------------------------------------------
1773 procedure Declare_Inherited_Private_Subprograms (Id : Entity_Id) is
1775 function Is_Primitive_Of (T : Entity_Id; S : Entity_Id) return Boolean;
1776 -- Check whether an inherited subprogram S is an operation of an
1777 -- untagged derived type T.
1779 ---------------------
1780 -- Is_Primitive_Of --
1781 ---------------------
1783 function Is_Primitive_Of (T : Entity_Id; S : Entity_Id) return Boolean is
1784 Formal : Entity_Id;
1786 begin
1787 -- If the full view is a scalar type, the type is the anonymous base
1788 -- type, but the operation mentions the first subtype, so check the
1789 -- signature against the base type.
1791 if Base_Type (Etype (S)) = Base_Type (T) then
1792 return True;
1794 else
1795 Formal := First_Formal (S);
1796 while Present (Formal) loop
1797 if Base_Type (Etype (Formal)) = Base_Type (T) then
1798 return True;
1799 end if;
1801 Next_Formal (Formal);
1802 end loop;
1804 return False;
1805 end if;
1806 end Is_Primitive_Of;
1808 -- Local variables
1810 E : Entity_Id;
1811 Op_List : Elist_Id;
1812 Op_Elmt : Elmt_Id;
1813 Op_Elmt_2 : Elmt_Id;
1814 Prim_Op : Entity_Id;
1815 New_Op : Entity_Id := Empty;
1816 Parent_Subp : Entity_Id;
1817 Tag : Entity_Id;
1819 -- Start of processing for Declare_Inherited_Private_Subprograms
1821 begin
1822 E := First_Entity (Id);
1823 while Present (E) loop
1825 -- If the entity is a nonprivate type extension whose parent type
1826 -- is declared in an open scope, then the type may have inherited
1827 -- operations that now need to be made visible. Ditto if the entity
1828 -- is a formal derived type in a child unit.
1830 if ((Is_Derived_Type (E) and then not Is_Private_Type (E))
1831 or else
1832 (Nkind (Parent (E)) = N_Private_Extension_Declaration
1833 and then Is_Generic_Type (E)))
1834 and then In_Open_Scopes (Scope (Etype (E)))
1835 and then Is_Base_Type (E)
1836 then
1837 if Is_Tagged_Type (E) then
1838 Op_List := Primitive_Operations (E);
1839 New_Op := Empty;
1840 Tag := First_Tag_Component (E);
1842 Op_Elmt := First_Elmt (Op_List);
1843 while Present (Op_Elmt) loop
1844 Prim_Op := Node (Op_Elmt);
1846 -- Search primitives that are implicit operations with an
1847 -- internal name whose parent operation has a normal name.
1849 if Present (Alias (Prim_Op))
1850 and then Find_Dispatching_Type (Alias (Prim_Op)) /= E
1851 and then not Comes_From_Source (Prim_Op)
1852 and then Is_Internal_Name (Chars (Prim_Op))
1853 and then not Is_Internal_Name (Chars (Alias (Prim_Op)))
1854 then
1855 Parent_Subp := Alias (Prim_Op);
1857 -- Case 1: Check if the type has also an explicit
1858 -- overriding for this primitive.
1860 Op_Elmt_2 := Next_Elmt (Op_Elmt);
1861 while Present (Op_Elmt_2) loop
1863 -- Skip entities with attribute Interface_Alias since
1864 -- they are not overriding primitives (these entities
1865 -- link an interface primitive with their covering
1866 -- primitive)
1868 if Chars (Node (Op_Elmt_2)) = Chars (Parent_Subp)
1869 and then Type_Conformant (Prim_Op, Node (Op_Elmt_2))
1870 and then No (Interface_Alias (Node (Op_Elmt_2)))
1871 then
1872 -- The private inherited operation has been
1873 -- overridden by an explicit subprogram:
1874 -- replace the former by the latter.
1876 New_Op := Node (Op_Elmt_2);
1877 Replace_Elmt (Op_Elmt, New_Op);
1878 Remove_Elmt (Op_List, Op_Elmt_2);
1879 Set_Overridden_Operation (New_Op, Parent_Subp);
1881 -- We don't need to inherit its dispatching slot.
1882 -- Set_All_DT_Position has previously ensured that
1883 -- the same slot was assigned to the two primitives
1885 if Present (Tag)
1886 and then Present (DTC_Entity (New_Op))
1887 and then Present (DTC_Entity (Prim_Op))
1888 then
1889 pragma Assert
1890 (DT_Position (New_Op) = DT_Position (Prim_Op));
1891 null;
1892 end if;
1894 goto Next_Primitive;
1895 end if;
1897 Next_Elmt (Op_Elmt_2);
1898 end loop;
1900 -- Case 2: We have not found any explicit overriding and
1901 -- hence we need to declare the operation (i.e., make it
1902 -- visible).
1904 Derive_Subprogram (New_Op, Alias (Prim_Op), E, Etype (E));
1906 -- Inherit the dispatching slot if E is already frozen
1908 if Is_Frozen (E)
1909 and then Present (DTC_Entity (Alias (Prim_Op)))
1910 then
1911 Set_DTC_Entity_Value (E, New_Op);
1912 Set_DT_Position_Value (New_Op,
1913 DT_Position (Alias (Prim_Op)));
1914 end if;
1916 pragma Assert
1917 (Is_Dispatching_Operation (New_Op)
1918 and then Node (Last_Elmt (Op_List)) = New_Op);
1920 -- Substitute the new operation for the old one in the
1921 -- type's primitive operations list. Since the new
1922 -- operation was also just added to the end of list,
1923 -- the last element must be removed.
1925 -- (Question: is there a simpler way of declaring the
1926 -- operation, say by just replacing the name of the
1927 -- earlier operation, reentering it in the in the symbol
1928 -- table (how?), and marking it as private???)
1930 Replace_Elmt (Op_Elmt, New_Op);
1931 Remove_Last_Elmt (Op_List);
1932 end if;
1934 <<Next_Primitive>>
1935 Next_Elmt (Op_Elmt);
1936 end loop;
1938 -- Generate listing showing the contents of the dispatch table
1940 if Debug_Flag_ZZ then
1941 Write_DT (E);
1942 end if;
1944 else
1945 -- For untagged type, scan forward to locate inherited hidden
1946 -- operations.
1948 Prim_Op := Next_Entity (E);
1949 while Present (Prim_Op) loop
1950 if Is_Subprogram (Prim_Op)
1951 and then Present (Alias (Prim_Op))
1952 and then not Comes_From_Source (Prim_Op)
1953 and then Is_Internal_Name (Chars (Prim_Op))
1954 and then not Is_Internal_Name (Chars (Alias (Prim_Op)))
1955 and then Is_Primitive_Of (E, Prim_Op)
1956 then
1957 Derive_Subprogram (New_Op, Alias (Prim_Op), E, Etype (E));
1958 end if;
1960 Next_Entity (Prim_Op);
1962 -- Derived operations appear immediately after the type
1963 -- declaration (or the following subtype indication for
1964 -- a derived scalar type). Further declarations cannot
1965 -- include inherited operations of the type.
1967 if Present (Prim_Op) then
1968 exit when Ekind (Prim_Op) not in Overloadable_Kind;
1969 end if;
1970 end loop;
1971 end if;
1972 end if;
1974 Next_Entity (E);
1975 end loop;
1976 end Declare_Inherited_Private_Subprograms;
1978 -----------------------
1979 -- End_Package_Scope --
1980 -----------------------
1982 procedure End_Package_Scope (P : Entity_Id) is
1983 begin
1984 Uninstall_Declarations (P);
1985 Pop_Scope;
1986 end End_Package_Scope;
1988 ---------------------------
1989 -- Exchange_Declarations --
1990 ---------------------------
1992 procedure Exchange_Declarations (Id : Entity_Id) is
1993 Full_Id : constant Entity_Id := Full_View (Id);
1994 H1 : constant Entity_Id := Homonym (Id);
1995 Next1 : constant Entity_Id := Next_Entity (Id);
1996 H2 : Entity_Id;
1997 Next2 : Entity_Id;
1999 begin
2000 -- If missing full declaration for type, nothing to exchange
2002 if No (Full_Id) then
2003 return;
2004 end if;
2006 -- Otherwise complete the exchange, and preserve semantic links
2008 Next2 := Next_Entity (Full_Id);
2009 H2 := Homonym (Full_Id);
2011 -- Reset full declaration pointer to reflect the switched entities and
2012 -- readjust the next entity chains.
2014 Exchange_Entities (Id, Full_Id);
2016 Set_Next_Entity (Id, Next1);
2017 Set_Homonym (Id, H1);
2019 Set_Full_View (Full_Id, Id);
2020 Set_Next_Entity (Full_Id, Next2);
2021 Set_Homonym (Full_Id, H2);
2022 end Exchange_Declarations;
2024 ----------------------------
2025 -- Install_Package_Entity --
2026 ----------------------------
2028 procedure Install_Package_Entity (Id : Entity_Id) is
2029 begin
2030 if not Is_Internal (Id) then
2031 if Debug_Flag_E then
2032 Write_Str ("Install: ");
2033 Write_Name (Chars (Id));
2034 Write_Eol;
2035 end if;
2037 if Is_Child_Unit (Id) then
2038 null;
2040 -- Do not enter implicitly inherited non-overridden subprograms of
2041 -- a tagged type back into visibility if they have non-conformant
2042 -- homographs (Ada RM 8.3 12.3/2).
2044 elsif Is_Hidden_Non_Overridden_Subpgm (Id) then
2045 null;
2047 else
2048 Set_Is_Immediately_Visible (Id);
2049 end if;
2050 end if;
2051 end Install_Package_Entity;
2053 ----------------------------------
2054 -- Install_Private_Declarations --
2055 ----------------------------------
2057 procedure Install_Private_Declarations (P : Entity_Id) is
2058 Id : Entity_Id;
2059 Full : Entity_Id;
2060 Priv_Deps : Elist_Id;
2062 procedure Swap_Private_Dependents (Priv_Deps : Elist_Id);
2063 -- When the full view of a private type is made available, we do the
2064 -- same for its private dependents under proper visibility conditions.
2065 -- When compiling a grand-chid unit this needs to be done recursively.
2067 -----------------------------
2068 -- Swap_Private_Dependents --
2069 -----------------------------
2071 procedure Swap_Private_Dependents (Priv_Deps : Elist_Id) is
2072 Deps : Elist_Id;
2073 Priv : Entity_Id;
2074 Priv_Elmt : Elmt_Id;
2075 Is_Priv : Boolean;
2077 begin
2078 Priv_Elmt := First_Elmt (Priv_Deps);
2079 while Present (Priv_Elmt) loop
2080 Priv := Node (Priv_Elmt);
2082 -- Before the exchange, verify that the presence of the Full_View
2083 -- field. This field will be empty if the entity has already been
2084 -- installed due to a previous call.
2086 if Present (Full_View (Priv)) and then Is_Visible_Dependent (Priv)
2087 then
2088 if Is_Private_Type (Priv) then
2089 Deps := Private_Dependents (Priv);
2090 Is_Priv := True;
2091 else
2092 Is_Priv := False;
2093 end if;
2095 -- For each subtype that is swapped, we also swap the reference
2096 -- to it in Private_Dependents, to allow access to it when we
2097 -- swap them out in End_Package_Scope.
2099 Replace_Elmt (Priv_Elmt, Full_View (Priv));
2101 -- Ensure that both views of the dependent private subtype are
2102 -- immediately visible if within some open scope. Check full
2103 -- view before exchanging views.
2105 if In_Open_Scopes (Scope (Full_View (Priv))) then
2106 Set_Is_Immediately_Visible (Priv);
2107 end if;
2109 Exchange_Declarations (Priv);
2110 Set_Is_Immediately_Visible
2111 (Priv, In_Open_Scopes (Scope (Priv)));
2113 Set_Is_Potentially_Use_Visible
2114 (Priv, Is_Potentially_Use_Visible (Node (Priv_Elmt)));
2116 -- Within a child unit, recurse, except in generic child unit,
2117 -- which (unfortunately) handle private_dependents separately.
2119 if Is_Priv
2120 and then Is_Child_Unit (Cunit_Entity (Current_Sem_Unit))
2121 and then not Is_Empty_Elmt_List (Deps)
2122 and then not Inside_A_Generic
2123 then
2124 Swap_Private_Dependents (Deps);
2125 end if;
2126 end if;
2128 Next_Elmt (Priv_Elmt);
2129 end loop;
2130 end Swap_Private_Dependents;
2132 -- Start of processing for Install_Private_Declarations
2134 begin
2135 -- First exchange declarations for private types, so that the full
2136 -- declaration is visible. For each private type, we check its
2137 -- Private_Dependents list and also exchange any subtypes of or derived
2138 -- types from it. Finally, if this is a Taft amendment type, the
2139 -- incomplete declaration is irrelevant, and we want to link the
2140 -- eventual full declaration with the original private one so we
2141 -- also skip the exchange.
2143 Id := First_Entity (P);
2144 while Present (Id) and then Id /= First_Private_Entity (P) loop
2145 if Is_Private_Base_Type (Id)
2146 and then Present (Full_View (Id))
2147 and then Comes_From_Source (Full_View (Id))
2148 and then Scope (Full_View (Id)) = Scope (Id)
2149 and then Ekind (Full_View (Id)) /= E_Incomplete_Type
2150 then
2151 -- If there is a use-type clause on the private type, set the full
2152 -- view accordingly.
2154 Set_In_Use (Full_View (Id), In_Use (Id));
2155 Full := Full_View (Id);
2157 if Is_Private_Base_Type (Full)
2158 and then Has_Private_Declaration (Full)
2159 and then Nkind (Parent (Full)) = N_Full_Type_Declaration
2160 and then In_Open_Scopes (Scope (Etype (Full)))
2161 and then In_Package_Body (Current_Scope)
2162 and then not Is_Private_Type (Etype (Full))
2163 then
2164 -- This is the completion of a private type by a derivation
2165 -- from another private type which is not private anymore. This
2166 -- can only happen in a package nested within a child package,
2167 -- when the parent type is defined in the parent unit. At this
2168 -- point the current type is not private either, and we have
2169 -- to install the underlying full view, which is now visible.
2170 -- Save the current full view as well, so that all views can be
2171 -- restored on exit. It may seem that after compiling the child
2172 -- body there are not environments to restore, but the back-end
2173 -- expects those links to be valid, and freeze nodes depend on
2174 -- them.
2176 if No (Full_View (Full))
2177 and then Present (Underlying_Full_View (Full))
2178 then
2179 Set_Full_View (Id, Underlying_Full_View (Full));
2180 Set_Underlying_Full_View (Id, Full);
2181 Set_Is_Underlying_Full_View (Full);
2183 Set_Underlying_Full_View (Full, Empty);
2184 Set_Is_Frozen (Full_View (Id));
2185 end if;
2186 end if;
2188 Priv_Deps := Private_Dependents (Id);
2189 Exchange_Declarations (Id);
2190 Set_Is_Immediately_Visible (Id);
2191 Swap_Private_Dependents (Priv_Deps);
2192 end if;
2194 Next_Entity (Id);
2195 end loop;
2197 -- Next make other declarations in the private part visible as well
2199 Id := First_Private_Entity (P);
2200 while Present (Id) loop
2201 Install_Package_Entity (Id);
2202 Set_Is_Hidden (Id, False);
2203 Next_Entity (Id);
2204 end loop;
2206 -- An abstract state is partially refined when it has at least one
2207 -- Part_Of constituent. Since these constituents are being installed
2208 -- into visibility, update the partial refinement status of any state
2209 -- defined in the associated package, subject to at least one Part_Of
2210 -- constituent.
2212 if Ekind_In (P, E_Generic_Package, E_Package) then
2213 declare
2214 States : constant Elist_Id := Abstract_States (P);
2215 State_Elmt : Elmt_Id;
2216 State_Id : Entity_Id;
2218 begin
2219 if Present (States) then
2220 State_Elmt := First_Elmt (States);
2221 while Present (State_Elmt) loop
2222 State_Id := Node (State_Elmt);
2224 if Present (Part_Of_Constituents (State_Id)) then
2225 Set_Has_Partial_Visible_Refinement (State_Id);
2226 end if;
2228 Next_Elmt (State_Elmt);
2229 end loop;
2230 end if;
2231 end;
2232 end if;
2234 -- Indicate that the private part is currently visible, so it can be
2235 -- properly reset on exit.
2237 Set_In_Private_Part (P);
2238 end Install_Private_Declarations;
2240 ----------------------------------
2241 -- Install_Visible_Declarations --
2242 ----------------------------------
2244 procedure Install_Visible_Declarations (P : Entity_Id) is
2245 Id : Entity_Id;
2246 Last_Entity : Entity_Id;
2248 begin
2249 pragma Assert
2250 (Is_Package_Or_Generic_Package (P) or else Is_Record_Type (P));
2252 if Is_Package_Or_Generic_Package (P) then
2253 Last_Entity := First_Private_Entity (P);
2254 else
2255 Last_Entity := Empty;
2256 end if;
2258 Id := First_Entity (P);
2259 while Present (Id) and then Id /= Last_Entity loop
2260 Install_Package_Entity (Id);
2261 Next_Entity (Id);
2262 end loop;
2263 end Install_Visible_Declarations;
2265 --------------------------
2266 -- Is_Private_Base_Type --
2267 --------------------------
2269 function Is_Private_Base_Type (E : Entity_Id) return Boolean is
2270 begin
2271 return Ekind (E) = E_Private_Type
2272 or else Ekind (E) = E_Limited_Private_Type
2273 or else Ekind (E) = E_Record_Type_With_Private;
2274 end Is_Private_Base_Type;
2276 --------------------------
2277 -- Is_Visible_Dependent --
2278 --------------------------
2280 function Is_Visible_Dependent (Dep : Entity_Id) return Boolean
2282 S : constant Entity_Id := Scope (Dep);
2284 begin
2285 -- Renamings created for actual types have the visibility of the actual
2287 if Ekind (S) = E_Package
2288 and then Is_Generic_Instance (S)
2289 and then (Is_Generic_Actual_Type (Dep)
2290 or else Is_Generic_Actual_Type (Full_View (Dep)))
2291 then
2292 return True;
2294 elsif not (Is_Derived_Type (Dep))
2295 and then Is_Derived_Type (Full_View (Dep))
2296 then
2297 -- When instantiating a package body, the scope stack is empty, so
2298 -- check instead whether the dependent type is defined in the same
2299 -- scope as the instance itself.
2301 return In_Open_Scopes (S)
2302 or else (Is_Generic_Instance (Current_Scope)
2303 and then Scope (Dep) = Scope (Current_Scope));
2304 else
2305 return True;
2306 end if;
2307 end Is_Visible_Dependent;
2309 ----------------------------
2310 -- May_Need_Implicit_Body --
2311 ----------------------------
2313 procedure May_Need_Implicit_Body (E : Entity_Id) is
2314 P : constant Node_Id := Unit_Declaration_Node (E);
2315 S : constant Node_Id := Parent (P);
2316 B : Node_Id;
2317 Decls : List_Id;
2319 begin
2320 if not Has_Completion (E)
2321 and then Nkind (P) = N_Package_Declaration
2322 and then (Present (Activation_Chain_Entity (P)) or else Has_RACW (E))
2323 then
2324 B :=
2325 Make_Package_Body (Sloc (E),
2326 Defining_Unit_Name => Make_Defining_Identifier (Sloc (E),
2327 Chars => Chars (E)),
2328 Declarations => New_List);
2330 if Nkind (S) = N_Package_Specification then
2331 if Present (Private_Declarations (S)) then
2332 Decls := Private_Declarations (S);
2333 else
2334 Decls := Visible_Declarations (S);
2335 end if;
2336 else
2337 Decls := Declarations (S);
2338 end if;
2340 Append (B, Decls);
2341 Analyze (B);
2342 end if;
2343 end May_Need_Implicit_Body;
2345 ----------------------
2346 -- New_Private_Type --
2347 ----------------------
2349 procedure New_Private_Type (N : Node_Id; Id : Entity_Id; Def : Node_Id) is
2350 begin
2351 -- For other than Ada 2012, enter the name in the current scope
2353 if Ada_Version < Ada_2012 then
2354 Enter_Name (Id);
2356 -- Ada 2012 (AI05-0162): Enter the name in the current scope. Note that
2357 -- there may be an incomplete previous view.
2359 else
2360 declare
2361 Prev : Entity_Id;
2362 begin
2363 Prev := Find_Type_Name (N);
2364 pragma Assert (Prev = Id
2365 or else (Ekind (Prev) = E_Incomplete_Type
2366 and then Present (Full_View (Prev))
2367 and then Full_View (Prev) = Id));
2368 end;
2369 end if;
2371 if Limited_Present (Def) then
2372 Set_Ekind (Id, E_Limited_Private_Type);
2373 else
2374 Set_Ekind (Id, E_Private_Type);
2375 end if;
2377 Set_Etype (Id, Id);
2378 Set_Has_Delayed_Freeze (Id);
2379 Set_Is_First_Subtype (Id);
2380 Init_Size_Align (Id);
2382 Set_Is_Constrained (Id,
2383 No (Discriminant_Specifications (N))
2384 and then not Unknown_Discriminants_Present (N));
2386 -- Set tagged flag before processing discriminants, to catch illegal
2387 -- usage.
2389 Set_Is_Tagged_Type (Id, Tagged_Present (Def));
2391 Set_Discriminant_Constraint (Id, No_Elist);
2392 Set_Stored_Constraint (Id, No_Elist);
2394 if Present (Discriminant_Specifications (N)) then
2395 Push_Scope (Id);
2396 Process_Discriminants (N);
2397 End_Scope;
2399 elsif Unknown_Discriminants_Present (N) then
2400 Set_Has_Unknown_Discriminants (Id);
2401 end if;
2403 Set_Private_Dependents (Id, New_Elmt_List);
2405 if Tagged_Present (Def) then
2406 Set_Ekind (Id, E_Record_Type_With_Private);
2407 Set_Direct_Primitive_Operations (Id, New_Elmt_List);
2408 Set_Is_Abstract_Type (Id, Abstract_Present (Def));
2409 Set_Is_Limited_Record (Id, Limited_Present (Def));
2410 Set_Has_Delayed_Freeze (Id, True);
2412 -- Recognize Ada.Real_Time.Timing_Events.Timing_Events here
2414 if Is_RTE (Id, RE_Timing_Event) then
2415 Set_Has_Timing_Event (Id);
2416 end if;
2418 -- Create a class-wide type with the same attributes
2420 Make_Class_Wide_Type (Id);
2422 elsif Abstract_Present (Def) then
2423 Error_Msg_N ("only a tagged type can be abstract", N);
2424 end if;
2425 end New_Private_Type;
2427 ---------------------------------
2428 -- Requires_Completion_In_Body --
2429 ---------------------------------
2431 function Requires_Completion_In_Body
2432 (Id : Entity_Id;
2433 Pack_Id : Entity_Id;
2434 Do_Abstract_States : Boolean := False) return Boolean
2436 begin
2437 -- Always ignore child units. Child units get added to the entity list
2438 -- of a parent unit, but are not original entities of the parent, and
2439 -- so do not affect whether the parent needs a body.
2441 if Is_Child_Unit (Id) then
2442 return False;
2444 -- Ignore formal packages and their renamings
2446 elsif Ekind (Id) = E_Package
2447 and then Nkind (Original_Node (Unit_Declaration_Node (Id))) =
2448 N_Formal_Package_Declaration
2449 then
2450 return False;
2452 -- Otherwise test to see if entity requires a completion. Note that
2453 -- subprogram entities whose declaration does not come from source are
2454 -- ignored here on the basis that we assume the expander will provide an
2455 -- implicit completion at some point.
2457 elsif (Is_Overloadable (Id)
2458 and then not Ekind_In (Id, E_Enumeration_Literal, E_Operator)
2459 and then not Is_Abstract_Subprogram (Id)
2460 and then not Has_Completion (Id)
2461 and then Comes_From_Source (Parent (Id)))
2463 or else
2464 (Ekind (Id) = E_Package
2465 and then Id /= Pack_Id
2466 and then not Has_Completion (Id)
2467 and then Unit_Requires_Body (Id, Do_Abstract_States))
2469 or else
2470 (Ekind (Id) = E_Incomplete_Type
2471 and then No (Full_View (Id))
2472 and then not Is_Generic_Type (Id))
2474 or else
2475 (Ekind_In (Id, E_Task_Type, E_Protected_Type)
2476 and then not Has_Completion (Id))
2478 or else
2479 (Ekind (Id) = E_Generic_Package
2480 and then Id /= Pack_Id
2481 and then not Has_Completion (Id)
2482 and then Unit_Requires_Body (Id, Do_Abstract_States))
2484 or else
2485 (Is_Generic_Subprogram (Id)
2486 and then not Has_Completion (Id))
2487 then
2488 return True;
2490 -- Otherwise the entity does not require completion in a package body
2492 else
2493 return False;
2494 end if;
2495 end Requires_Completion_In_Body;
2497 ----------------------------
2498 -- Uninstall_Declarations --
2499 ----------------------------
2501 procedure Uninstall_Declarations (P : Entity_Id) is
2502 Decl : constant Node_Id := Unit_Declaration_Node (P);
2503 Id : Entity_Id;
2504 Full : Entity_Id;
2505 Priv_Elmt : Elmt_Id;
2506 Priv_Sub : Entity_Id;
2508 procedure Preserve_Full_Attributes (Priv : Entity_Id; Full : Entity_Id);
2509 -- Copy to the private declaration the attributes of the full view that
2510 -- need to be available for the partial view also.
2512 function Type_In_Use (T : Entity_Id) return Boolean;
2513 -- Check whether type or base type appear in an active use_type clause
2515 ------------------------------
2516 -- Preserve_Full_Attributes --
2517 ------------------------------
2519 procedure Preserve_Full_Attributes
2520 (Priv : Entity_Id;
2521 Full : Entity_Id)
2523 Full_Base : constant Entity_Id := Base_Type (Full);
2524 Priv_Is_Base_Type : constant Boolean := Is_Base_Type (Priv);
2526 begin
2527 Set_Size_Info (Priv, Full);
2528 Set_RM_Size (Priv, RM_Size (Full));
2529 Set_Size_Known_At_Compile_Time
2530 (Priv, Size_Known_At_Compile_Time (Full));
2531 Set_Is_Volatile (Priv, Is_Volatile (Full));
2532 Set_Treat_As_Volatile (Priv, Treat_As_Volatile (Full));
2533 Set_Is_Ada_2005_Only (Priv, Is_Ada_2005_Only (Full));
2534 Set_Is_Ada_2012_Only (Priv, Is_Ada_2012_Only (Full));
2535 Set_Has_Pragma_Unmodified (Priv, Has_Pragma_Unmodified (Full));
2536 Set_Has_Pragma_Unreferenced (Priv, Has_Pragma_Unreferenced (Full));
2537 Set_Has_Pragma_Unreferenced_Objects
2538 (Priv, Has_Pragma_Unreferenced_Objects
2539 (Full));
2540 if Is_Unchecked_Union (Full) then
2541 Set_Is_Unchecked_Union (Base_Type (Priv));
2542 end if;
2543 -- Why is atomic not copied here ???
2545 if Referenced (Full) then
2546 Set_Referenced (Priv);
2547 end if;
2549 if Priv_Is_Base_Type then
2550 Set_Is_Controlled (Priv, Is_Controlled (Full_Base));
2551 Set_Finalize_Storage_Only
2552 (Priv, Finalize_Storage_Only (Full_Base));
2553 Set_Has_Controlled_Component
2554 (Priv, Has_Controlled_Component (Full_Base));
2556 Propagate_Concurrent_Flags (Priv, Base_Type (Full));
2557 end if;
2559 Set_Freeze_Node (Priv, Freeze_Node (Full));
2561 -- Propagate Default_Initial_Condition-related attributes from the
2562 -- base type of the full view to the full view and vice versa. This
2563 -- may seem strange, but is necessary depending on which type
2564 -- triggered the generation of the DIC procedure body. As a result,
2565 -- both the full view and its base type carry the same DIC-related
2566 -- information.
2568 Propagate_DIC_Attributes (Full, From_Typ => Full_Base);
2569 Propagate_DIC_Attributes (Full_Base, From_Typ => Full);
2571 -- Propagate invariant-related attributes from the base type of the
2572 -- full view to the full view and vice versa. This may seem strange,
2573 -- but is necessary depending on which type triggered the generation
2574 -- of the invariant procedure body. As a result, both the full view
2575 -- and its base type carry the same invariant-related information.
2577 Propagate_Invariant_Attributes (Full, From_Typ => Full_Base);
2578 Propagate_Invariant_Attributes (Full_Base, From_Typ => Full);
2580 -- Propagate invariant-related attributes from the full view to the
2581 -- private view.
2583 Propagate_Invariant_Attributes (Priv, From_Typ => Full);
2585 if Is_Tagged_Type (Priv)
2586 and then Is_Tagged_Type (Full)
2587 and then not Error_Posted (Full)
2588 then
2589 if Is_Tagged_Type (Priv) then
2591 -- If the type is tagged, the tag itself must be available on
2592 -- the partial view, for expansion purposes.
2594 Set_First_Entity (Priv, First_Entity (Full));
2596 -- If there are discriminants in the partial view, these remain
2597 -- visible. Otherwise only the tag itself is visible, and there
2598 -- are no nameable components in the partial view.
2600 if No (Last_Entity (Priv)) then
2601 Set_Last_Entity (Priv, First_Entity (Priv));
2602 end if;
2603 end if;
2605 Set_Has_Discriminants (Priv, Has_Discriminants (Full));
2607 if Has_Discriminants (Full) then
2608 Set_Discriminant_Constraint (Priv,
2609 Discriminant_Constraint (Full));
2610 end if;
2611 end if;
2612 end Preserve_Full_Attributes;
2614 -----------------
2615 -- Type_In_Use --
2616 -----------------
2618 function Type_In_Use (T : Entity_Id) return Boolean is
2619 begin
2620 return Scope (Base_Type (T)) = P
2621 and then (In_Use (T) or else In_Use (Base_Type (T)));
2622 end Type_In_Use;
2624 -- Start of processing for Uninstall_Declarations
2626 begin
2627 Id := First_Entity (P);
2628 while Present (Id) and then Id /= First_Private_Entity (P) loop
2629 if Debug_Flag_E then
2630 Write_Str ("unlinking visible entity ");
2631 Write_Int (Int (Id));
2632 Write_Eol;
2633 end if;
2635 -- On exit from the package scope, we must preserve the visibility
2636 -- established by use clauses in the current scope. Two cases:
2638 -- a) If the entity is an operator, it may be a primitive operator of
2639 -- a type for which there is a visible use-type clause.
2641 -- b) for other entities, their use-visibility is determined by a
2642 -- visible use clause for the package itself. For a generic instance,
2643 -- the instantiation of the formals appears in the visible part,
2644 -- but the formals are private and remain so.
2646 if Ekind (Id) = E_Function
2647 and then Is_Operator_Symbol_Name (Chars (Id))
2648 and then not Is_Hidden (Id)
2649 and then not Error_Posted (Id)
2650 then
2651 Set_Is_Potentially_Use_Visible (Id,
2652 In_Use (P)
2653 or else Type_In_Use (Etype (Id))
2654 or else Type_In_Use (Etype (First_Formal (Id)))
2655 or else (Present (Next_Formal (First_Formal (Id)))
2656 and then
2657 Type_In_Use
2658 (Etype (Next_Formal (First_Formal (Id))))));
2659 else
2660 if In_Use (P) and then not Is_Hidden (Id) then
2662 -- A child unit of a use-visible package remains use-visible
2663 -- only if it is itself a visible child unit. Otherwise it
2664 -- would remain visible in other contexts where P is use-
2665 -- visible, because once compiled it stays in the entity list
2666 -- of its parent unit.
2668 if Is_Child_Unit (Id) then
2669 Set_Is_Potentially_Use_Visible
2670 (Id, Is_Visible_Lib_Unit (Id));
2671 else
2672 Set_Is_Potentially_Use_Visible (Id);
2673 end if;
2675 else
2676 Set_Is_Potentially_Use_Visible (Id, False);
2677 end if;
2678 end if;
2680 -- Local entities are not immediately visible outside of the package
2682 Set_Is_Immediately_Visible (Id, False);
2684 -- If this is a private type with a full view (for example a local
2685 -- subtype of a private type declared elsewhere), ensure that the
2686 -- full view is also removed from visibility: it may be exposed when
2687 -- swapping views in an instantiation. Similarly, ensure that the
2688 -- use-visibility is properly set on both views.
2690 if Is_Type (Id) and then Present (Full_View (Id)) then
2691 Set_Is_Immediately_Visible (Full_View (Id), False);
2692 Set_Is_Potentially_Use_Visible (Full_View (Id),
2693 Is_Potentially_Use_Visible (Id));
2694 end if;
2696 if Is_Tagged_Type (Id) and then Ekind (Id) = E_Record_Type then
2697 Check_Abstract_Overriding (Id);
2698 Check_Conventions (Id);
2699 end if;
2701 if Ekind_In (Id, E_Private_Type, E_Limited_Private_Type)
2702 and then No (Full_View (Id))
2703 and then not Is_Generic_Type (Id)
2704 and then not Is_Derived_Type (Id)
2705 then
2706 Error_Msg_N ("missing full declaration for private type&", Id);
2708 elsif Ekind (Id) = E_Record_Type_With_Private
2709 and then not Is_Generic_Type (Id)
2710 and then No (Full_View (Id))
2711 then
2712 if Nkind (Parent (Id)) = N_Private_Type_Declaration then
2713 Error_Msg_N ("missing full declaration for private type&", Id);
2714 else
2715 Error_Msg_N
2716 ("missing full declaration for private extension", Id);
2717 end if;
2719 -- Case of constant, check for deferred constant declaration with
2720 -- no full view. Likely just a matter of a missing expression, or
2721 -- accidental use of the keyword constant.
2723 elsif Ekind (Id) = E_Constant
2725 -- OK if constant value present
2727 and then No (Constant_Value (Id))
2729 -- OK if full view present
2731 and then No (Full_View (Id))
2733 -- OK if imported, since that provides the completion
2735 and then not Is_Imported (Id)
2737 -- OK if object declaration replaced by renaming declaration as
2738 -- a result of OK_To_Rename processing (e.g. for concatenation)
2740 and then Nkind (Parent (Id)) /= N_Object_Renaming_Declaration
2742 -- OK if object declaration with the No_Initialization flag set
2744 and then not (Nkind (Parent (Id)) = N_Object_Declaration
2745 and then No_Initialization (Parent (Id)))
2746 then
2747 -- If no private declaration is present, we assume the user did
2748 -- not intend a deferred constant declaration and the problem
2749 -- is simply that the initializing expression is missing.
2751 if not Has_Private_Declaration (Etype (Id)) then
2753 -- We assume that the user did not intend a deferred constant
2754 -- declaration, and the expression is just missing.
2756 Error_Msg_N
2757 ("constant declaration requires initialization expression",
2758 Parent (Id));
2760 if Is_Limited_Type (Etype (Id)) then
2761 Error_Msg_N
2762 ("\if variable intended, remove CONSTANT from declaration",
2763 Parent (Id));
2764 end if;
2766 -- Otherwise if a private declaration is present, then we are
2767 -- missing the full declaration for the deferred constant.
2769 else
2770 Error_Msg_N
2771 ("missing full declaration for deferred constant (RM 7.4)",
2772 Id);
2774 if Is_Limited_Type (Etype (Id)) then
2775 Error_Msg_N
2776 ("\if variable intended, remove CONSTANT from declaration",
2777 Parent (Id));
2778 end if;
2779 end if;
2780 end if;
2782 Next_Entity (Id);
2783 end loop;
2785 -- If the specification was installed as the parent of a public child
2786 -- unit, the private declarations were not installed, and there is
2787 -- nothing to do.
2789 if not In_Private_Part (P) then
2790 return;
2791 else
2792 Set_In_Private_Part (P, False);
2793 end if;
2795 -- Make private entities invisible and exchange full and private
2796 -- declarations for private types. Id is now the first private entity
2797 -- in the package.
2799 while Present (Id) loop
2800 if Debug_Flag_E then
2801 Write_Str ("unlinking private entity ");
2802 Write_Int (Int (Id));
2803 Write_Eol;
2804 end if;
2806 if Is_Tagged_Type (Id) and then Ekind (Id) = E_Record_Type then
2807 Check_Abstract_Overriding (Id);
2808 Check_Conventions (Id);
2809 end if;
2811 Set_Is_Immediately_Visible (Id, False);
2813 if Is_Private_Base_Type (Id) and then Present (Full_View (Id)) then
2814 Full := Full_View (Id);
2816 -- If the partial view is not declared in the visible part of the
2817 -- package (as is the case when it is a type derived from some
2818 -- other private type in the private part of the current package),
2819 -- no exchange takes place.
2821 if No (Parent (Id))
2822 or else List_Containing (Parent (Id)) /=
2823 Visible_Declarations (Specification (Decl))
2824 then
2825 goto Next_Id;
2826 end if;
2828 -- The entry in the private part points to the full declaration,
2829 -- which is currently visible. Exchange them so only the private
2830 -- type declaration remains accessible, and link private and full
2831 -- declaration in the opposite direction. Before the actual
2832 -- exchange, we copy back attributes of the full view that must
2833 -- be available to the partial view too.
2835 Preserve_Full_Attributes (Id, Full);
2837 Set_Is_Potentially_Use_Visible (Id, In_Use (P));
2839 -- The following test may be redundant, as this is already
2840 -- diagnosed in sem_ch3. ???
2842 if not Is_Definite_Subtype (Full)
2843 and then Is_Definite_Subtype (Id)
2844 then
2845 Error_Msg_Sloc := Sloc (Parent (Id));
2846 Error_Msg_NE
2847 ("full view of& not compatible with declaration#", Full, Id);
2848 end if;
2850 -- Swap out the subtypes and derived types of Id that
2851 -- were compiled in this scope, or installed previously
2852 -- by Install_Private_Declarations.
2854 -- Before we do the swap, we verify the presence of the Full_View
2855 -- field which may be empty due to a swap by a previous call to
2856 -- End_Package_Scope (e.g. from the freezing mechanism).
2858 Priv_Elmt := First_Elmt (Private_Dependents (Id));
2859 while Present (Priv_Elmt) loop
2860 Priv_Sub := Node (Priv_Elmt);
2862 if Present (Full_View (Priv_Sub)) then
2863 if Scope (Priv_Sub) = P
2864 or else not In_Open_Scopes (Scope (Priv_Sub))
2865 then
2866 Set_Is_Immediately_Visible (Priv_Sub, False);
2867 end if;
2869 if Is_Visible_Dependent (Priv_Sub) then
2870 Preserve_Full_Attributes
2871 (Priv_Sub, Full_View (Priv_Sub));
2872 Replace_Elmt (Priv_Elmt, Full_View (Priv_Sub));
2873 Exchange_Declarations (Priv_Sub);
2874 end if;
2875 end if;
2877 Next_Elmt (Priv_Elmt);
2878 end loop;
2880 -- Now restore the type itself to its private view
2882 Exchange_Declarations (Id);
2884 -- If we have installed an underlying full view for a type derived
2885 -- from a private type in a child unit, restore the proper views
2886 -- of private and full view. See corresponding code in
2887 -- Install_Private_Declarations.
2889 -- After the exchange, Full denotes the private type in the
2890 -- visible part of the package.
2892 if Is_Private_Base_Type (Full)
2893 and then Present (Full_View (Full))
2894 and then Present (Underlying_Full_View (Full))
2895 and then In_Package_Body (Current_Scope)
2896 then
2897 Set_Full_View (Full, Underlying_Full_View (Full));
2898 Set_Underlying_Full_View (Full, Empty);
2899 end if;
2901 elsif Ekind (Id) = E_Incomplete_Type
2902 and then Comes_From_Source (Id)
2903 and then No (Full_View (Id))
2904 then
2905 -- Mark Taft amendment types. Verify that there are no primitive
2906 -- operations declared for the type (3.10.1(9)).
2908 Set_Has_Completion_In_Body (Id);
2910 declare
2911 Elmt : Elmt_Id;
2912 Subp : Entity_Id;
2914 begin
2915 Elmt := First_Elmt (Private_Dependents (Id));
2916 while Present (Elmt) loop
2917 Subp := Node (Elmt);
2919 -- Is_Primitive is tested because there can be cases where
2920 -- nonprimitive subprograms (in nested packages) are added
2921 -- to the Private_Dependents list.
2923 if Is_Overloadable (Subp) and then Is_Primitive (Subp) then
2924 Error_Msg_NE
2925 ("type& must be completed in the private part",
2926 Parent (Subp), Id);
2928 -- The result type of an access-to-function type cannot be a
2929 -- Taft-amendment type, unless the version is Ada 2012 or
2930 -- later (see AI05-151).
2932 elsif Ada_Version < Ada_2012
2933 and then Ekind (Subp) = E_Subprogram_Type
2934 then
2935 if Etype (Subp) = Id
2936 or else
2937 (Is_Class_Wide_Type (Etype (Subp))
2938 and then Etype (Etype (Subp)) = Id)
2939 then
2940 Error_Msg_NE
2941 ("type& must be completed in the private part",
2942 Associated_Node_For_Itype (Subp), Id);
2943 end if;
2944 end if;
2946 Next_Elmt (Elmt);
2947 end loop;
2948 end;
2950 elsif not Is_Child_Unit (Id)
2951 and then (not Is_Private_Type (Id) or else No (Full_View (Id)))
2952 then
2953 Set_Is_Hidden (Id);
2954 Set_Is_Potentially_Use_Visible (Id, False);
2955 end if;
2957 <<Next_Id>>
2958 Next_Entity (Id);
2959 end loop;
2960 end Uninstall_Declarations;
2962 ------------------------
2963 -- Unit_Requires_Body --
2964 ------------------------
2966 function Unit_Requires_Body
2967 (Pack_Id : Entity_Id;
2968 Do_Abstract_States : Boolean := False) return Boolean
2970 E : Entity_Id;
2972 Requires_Body : Boolean := False;
2973 -- Flag set when the unit has at least one construct that requries
2974 -- completion in a body.
2976 begin
2977 -- Imported entity never requires body. Right now, only subprograms can
2978 -- be imported, but perhaps in the future we will allow import of
2979 -- packages.
2981 if Is_Imported (Pack_Id) then
2982 return False;
2984 -- Body required if library package with pragma Elaborate_Body
2986 elsif Has_Pragma_Elaborate_Body (Pack_Id) then
2987 return True;
2989 -- Body required if subprogram
2991 elsif Is_Subprogram_Or_Generic_Subprogram (Pack_Id) then
2992 return True;
2994 -- Treat a block as requiring a body
2996 elsif Ekind (Pack_Id) = E_Block then
2997 return True;
2999 elsif Ekind (Pack_Id) = E_Package
3000 and then Nkind (Parent (Pack_Id)) = N_Package_Specification
3001 and then Present (Generic_Parent (Parent (Pack_Id)))
3002 then
3003 declare
3004 G_P : constant Entity_Id := Generic_Parent (Parent (Pack_Id));
3005 begin
3006 if Has_Pragma_Elaborate_Body (G_P) then
3007 return True;
3008 end if;
3009 end;
3010 end if;
3012 -- Traverse the entity chain of the package and look for constructs that
3013 -- require a completion in a body.
3015 E := First_Entity (Pack_Id);
3016 while Present (E) loop
3018 -- Skip abstract states because their completion depends on several
3019 -- criteria (see below).
3021 if Ekind (E) = E_Abstract_State then
3022 null;
3024 elsif Requires_Completion_In_Body
3025 (E, Pack_Id, Do_Abstract_States)
3026 then
3027 Requires_Body := True;
3028 exit;
3029 end if;
3031 Next_Entity (E);
3032 end loop;
3034 -- A [generic] package that defines at least one non-null abstract state
3035 -- requires a completion only when at least one other construct requires
3036 -- a completion in a body (SPARK RM 7.1.4(4) and (6)). This check is not
3037 -- performed if the caller requests this behavior.
3039 if Do_Abstract_States
3040 and then Ekind_In (Pack_Id, E_Generic_Package, E_Package)
3041 and then Has_Non_Null_Abstract_State (Pack_Id)
3042 and then Requires_Body
3043 then
3044 return True;
3045 end if;
3047 return Requires_Body;
3048 end Unit_Requires_Body;
3050 -----------------------------
3051 -- Unit_Requires_Body_Info --
3052 -----------------------------
3054 procedure Unit_Requires_Body_Info (Pack_Id : Entity_Id) is
3055 E : Entity_Id;
3057 begin
3058 -- An imported entity never requires body. Right now, only subprograms
3059 -- can be imported, but perhaps in the future we will allow import of
3060 -- packages.
3062 if Is_Imported (Pack_Id) then
3063 return;
3065 -- Body required if library package with pragma Elaborate_Body
3067 elsif Has_Pragma_Elaborate_Body (Pack_Id) then
3068 Error_Msg_N ("info: & requires body (Elaborate_Body)?Y?", Pack_Id);
3070 -- Body required if subprogram
3072 elsif Is_Subprogram_Or_Generic_Subprogram (Pack_Id) then
3073 Error_Msg_N ("info: & requires body (subprogram case)?Y?", Pack_Id);
3075 -- Body required if generic parent has Elaborate_Body
3077 elsif Ekind (Pack_Id) = E_Package
3078 and then Nkind (Parent (Pack_Id)) = N_Package_Specification
3079 and then Present (Generic_Parent (Parent (Pack_Id)))
3080 then
3081 declare
3082 G_P : constant Entity_Id := Generic_Parent (Parent (Pack_Id));
3083 begin
3084 if Has_Pragma_Elaborate_Body (G_P) then
3085 Error_Msg_N
3086 ("info: & requires body (generic parent Elaborate_Body)?Y?",
3087 Pack_Id);
3088 end if;
3089 end;
3091 -- A [generic] package that introduces at least one non-null abstract
3092 -- state requires completion. However, there is a separate rule that
3093 -- requires that such a package have a reason other than this for a
3094 -- body being required (if necessary a pragma Elaborate_Body must be
3095 -- provided). If Ignore_Abstract_State is True, we don't do this check
3096 -- (so we can use Unit_Requires_Body to check for some other reason).
3098 elsif Ekind_In (Pack_Id, E_Generic_Package, E_Package)
3099 and then Present (Abstract_States (Pack_Id))
3100 and then not Is_Null_State
3101 (Node (First_Elmt (Abstract_States (Pack_Id))))
3102 then
3103 Error_Msg_N
3104 ("info: & requires body (non-null abstract state aspect)?Y?",
3105 Pack_Id);
3106 end if;
3108 -- Otherwise search entity chain for entity requiring completion
3110 E := First_Entity (Pack_Id);
3111 while Present (E) loop
3112 if Requires_Completion_In_Body (E, Pack_Id) then
3113 Error_Msg_Node_2 := E;
3114 Error_Msg_NE
3115 ("info: & requires body (& requires completion)?Y?", E, Pack_Id);
3116 end if;
3118 Next_Entity (E);
3119 end loop;
3120 end Unit_Requires_Body_Info;
3121 end Sem_Ch7;