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------------------------------------------------------------------------------
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-- --
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-- GNAT COMPILER COMPONENTS --
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-- --
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-- I N L I N E --
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-- --
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-- B o d y --
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-- --
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-- Copyright (C) 1992-2009, Free Software Foundation, Inc. --
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-- --
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-- GNAT is free software; you can redistribute it and/or modify it under --
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-- terms of the GNU General Public License as published by the Free Soft- --
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-- ware Foundation; either version 3, or (at your option) any later ver- --
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-- sion. GNAT is distributed in the hope that it will be useful, but WITH- --
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-- OUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY --
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-- or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License --
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-- for more details. You should have received a copy of the GNU General --
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-- Public License distributed with GNAT; see file COPYING3. If not, go to --
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-- http://www.gnu.org/licenses for a complete copy of the license. --
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-- --
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-- GNAT was originally developed by the GNAT team at New York University. --
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-- Extensive contributions were provided by Ada Core Technologies Inc. --
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-- --
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------------------------------------------------------------------------------
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with Atree; use Atree;
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with Einfo; use Einfo;
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with Elists; use Elists;
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with Errout; use Errout;
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with Exp_Ch7; use Exp_Ch7;
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with Exp_Tss; use Exp_Tss;
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with Fname; use Fname;
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with Fname.UF; use Fname.UF;
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with Lib; use Lib;
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with Namet; use Namet;
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with Nlists; use Nlists;
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with Opt; use Opt;
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with Sem_Aux; use Sem_Aux;
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with Sem_Ch8; use Sem_Ch8;
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with Sem_Ch10; use Sem_Ch10;
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with Sem_Ch12; use Sem_Ch12;
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with Sem_Util; use Sem_Util;
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with Sinfo; use Sinfo;
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with Snames; use Snames;
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with Stand; use Stand;
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with Uname; use Uname;
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package body Inline is
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--------------------
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-- Inlined Bodies --
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--------------------
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-- Inlined functions are actually placed in line by the backend if the
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-- corresponding bodies are available (i.e. compiled). Whenever we find
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-- a call to an inlined subprogram, we add the name of the enclosing
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-- compilation unit to a worklist. After all compilation, and after
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-- expansion of generic bodies, we traverse the list of pending bodies
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-- and compile them as well.
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package Inlined_Bodies is new Table.Table (
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Table_Component_Type => Entity_Id,
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Table_Index_Type => Int,
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Table_Low_Bound => 0,
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Table_Initial => Alloc.Inlined_Bodies_Initial,
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Table_Increment => Alloc.Inlined_Bodies_Increment,
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Table_Name => "Inlined_Bodies");
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-----------------------
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-- Inline Processing --
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-----------------------
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-- For each call to an inlined subprogram, we make entries in a table
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-- that stores caller and callee, and indicates a prerequisite from
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-- one to the other. We also record the compilation unit that contains
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-- the callee. After analyzing the bodies of all such compilation units,
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-- we produce a list of subprograms in topological order, for use by the
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-- back-end. If P2 is a prerequisite of P1, then P1 calls P2, and for
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-- proper inlining the back-end must analyze the body of P2 before that of
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-- P1. The code below guarantees that the transitive closure of inlined
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-- subprograms called from the main compilation unit is made available to
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-- the code generator.
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Last_Inlined : Entity_Id := Empty;
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-- For each entry in the table we keep a list of successors in topological
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-- order, i.e. callers of the current subprogram.
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type Subp_Index is new Nat;
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No_Subp : constant Subp_Index := 0;
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-- The subprogram entities are hashed into the Inlined table
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Num_Hash_Headers : constant := 512;
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Hash_Headers : array (Subp_Index range 0 .. Num_Hash_Headers - 1)
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of Subp_Index;
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type Succ_Index is new Nat;
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No_Succ : constant Succ_Index := 0;
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type Succ_Info is record
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Subp : Subp_Index;
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Next : Succ_Index;
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end record;
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-- The following table stores list elements for the successor lists.
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-- These lists cannot be chained directly through entries in the Inlined
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-- table, because a given subprogram can appear in several such lists.
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package Successors is new Table.Table (
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Table_Component_Type => Succ_Info,
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Table_Index_Type => Succ_Index,
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Table_Low_Bound => 1,
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Table_Initial => Alloc.Successors_Initial,
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Table_Increment => Alloc.Successors_Increment,
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Table_Name => "Successors");
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type Subp_Info is record
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Name : Entity_Id := Empty;
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First_Succ : Succ_Index := No_Succ;
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Count : Integer := 0;
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Listed : Boolean := False;
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Main_Call : Boolean := False;
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Next : Subp_Index := No_Subp;
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Next_Nopred : Subp_Index := No_Subp;
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end record;
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package Inlined is new Table.Table (
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Table_Component_Type => Subp_Info,
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Table_Index_Type => Subp_Index,
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Table_Low_Bound => 1,
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Table_Initial => Alloc.Inlined_Initial,
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Table_Increment => Alloc.Inlined_Increment,
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Table_Name => "Inlined");
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-----------------------
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-- Local Subprograms --
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-----------------------
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function Scope_In_Main_Unit (Scop : Entity_Id) return Boolean;
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-- Return True if Scop is in the main unit or its spec, or in a
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-- parent of the main unit if it is a child unit.
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procedure Add_Call (Called : Entity_Id; Caller : Entity_Id := Empty);
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-- Make two entries in Inlined table, for an inlined subprogram being
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-- called, and for the inlined subprogram that contains the call. If
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-- the call is in the main compilation unit, Caller is Empty.
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function Add_Subp (E : Entity_Id) return Subp_Index;
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-- Make entry in Inlined table for subprogram E, or return table index
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-- that already holds E.
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function Has_Initialized_Type (E : Entity_Id) return Boolean;
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-- If a candidate for inlining contains type declarations for types with
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-- non-trivial initialization procedures, they are not worth inlining.
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function Is_Nested (E : Entity_Id) return Boolean;
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-- If the function is nested inside some other function, it will
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-- always be compiled if that function is, so don't add it to the
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-- inline list. We cannot compile a nested function outside the
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-- scope of the containing function anyway. This is also the case if
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-- the function is defined in a task body or within an entry (for
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-- example, an initialization procedure).
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procedure Add_Inlined_Subprogram (Index : Subp_Index);
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-- Add subprogram to Inlined List once all of its predecessors have been
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-- placed on the list. Decrement the count of all its successors, and
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-- add them to list (recursively) if count drops to zero.
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------------------------------
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-- Deferred Cleanup Actions --
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------------------------------
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-- The cleanup actions for scopes that contain instantiations is delayed
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-- until after expansion of those instantiations, because they may
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-- contain finalizable objects or tasks that affect the cleanup code.
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-- A scope that contains instantiations only needs to be finalized once,
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-- even if it contains more than one instance. We keep a list of scopes
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-- that must still be finalized, and call cleanup_actions after all the
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-- instantiations have been completed.
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To_Clean : Elist_Id;
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procedure Add_Scope_To_Clean (Inst : Entity_Id);
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-- Build set of scopes on which cleanup actions must be performed
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procedure Cleanup_Scopes;
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-- Complete cleanup actions on scopes that need it
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--------------
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-- Add_Call --
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--------------
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procedure Add_Call (Called : Entity_Id; Caller : Entity_Id := Empty) is
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P1 : constant Subp_Index := Add_Subp (Called);
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P2 : Subp_Index;
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J : Succ_Index;
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begin
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if Present (Caller) then
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P2 := Add_Subp (Caller);
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-- Add P2 to the list of successors of P1, if not already there.
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-- Note that P2 may contain more than one call to P1, and only
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-- one needs to be recorded.
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J := Inlined.Table (P1).First_Succ;
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while J /= No_Succ loop
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if Successors.Table (J).Subp = P2 then
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return;
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end if;
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J := Successors.Table (J).Next;
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end loop;
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-- On exit, make a successor entry for P2
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Successors.Increment_Last;
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Successors.Table (Successors.Last).Subp := P2;
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Successors.Table (Successors.Last).Next :=
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Inlined.Table (P1).First_Succ;
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Inlined.Table (P1).First_Succ := Successors.Last;
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Inlined.Table (P2).Count := Inlined.Table (P2).Count + 1;
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else
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Inlined.Table (P1).Main_Call := True;
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end if;
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end Add_Call;
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----------------------
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-- Add_Inlined_Body --
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----------------------
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procedure Add_Inlined_Body (E : Entity_Id) is
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Pack : Entity_Id;
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function Must_Inline return Boolean;
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-- Inlining is only done if the call statement N is in the main unit,
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-- or within the body of another inlined subprogram.
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-----------------
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-- Must_Inline --
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-----------------
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function Must_Inline return Boolean is
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Scop : Entity_Id;
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Comp : Node_Id;
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begin
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-- Check if call is in main unit
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Scop := Current_Scope;
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-- Do not try to inline if scope is standard. This could happen, for
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-- example, for a call to Add_Global_Declaration, and it causes
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-- trouble to try to inline at this level.
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if Scop = Standard_Standard then
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return False;
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end if;
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-- Otherwise lookup scope stack to outer scope
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while Scope (Scop) /= Standard_Standard
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and then not Is_Child_Unit (Scop)
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loop
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Scop := Scope (Scop);
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end loop;
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Comp := Parent (Scop);
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while Nkind (Comp) /= N_Compilation_Unit loop
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Comp := Parent (Comp);
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end loop;
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if Comp = Cunit (Main_Unit)
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or else Comp = Library_Unit (Cunit (Main_Unit))
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then
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Add_Call (E);
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return True;
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end if;
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-- Call is not in main unit. See if it's in some inlined subprogram
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Scop := Current_Scope;
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while Scope (Scop) /= Standard_Standard
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and then not Is_Child_Unit (Scop)
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loop
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if Is_Overloadable (Scop)
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and then Is_Inlined (Scop)
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then
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Add_Call (E, Scop);
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return True;
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end if;
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Scop := Scope (Scop);
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end loop;
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return False;
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end Must_Inline;
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-- Start of processing for Add_Inlined_Body
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begin
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-- Find unit containing E, and add to list of inlined bodies if needed.
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-- If the body is already present, no need to load any other unit. This
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-- is the case for an initialization procedure, which appears in the
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-- package declaration that contains the type. It is also the case if
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-- the body has already been analyzed. Finally, if the unit enclosing
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-- E is an instance, the instance body will be analyzed in any case,
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-- and there is no need to add the enclosing unit (whose body might not
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-- be available).
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-- Library-level functions must be handled specially, because there is
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-- no enclosing package to retrieve. In this case, it is the body of
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-- the function that will have to be loaded.
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if not Is_Abstract_Subprogram (E) and then not Is_Nested (E)
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and then Convention (E) /= Convention_Protected
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then
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Pack := Scope (E);
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if Must_Inline
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and then Ekind (Pack) = E_Package
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then
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Set_Is_Called (E);
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if Pack = Standard_Standard then
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-- Library-level inlined function. Add function itself to
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-- list of needed units.
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Inlined_Bodies.Increment_Last;
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Inlined_Bodies.Table (Inlined_Bodies.Last) := E;
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elsif Is_Generic_Instance (Pack) then
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null;
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elsif not Is_Inlined (Pack)
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and then not Has_Completion (E)
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and then not Scope_In_Main_Unit (Pack)
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then
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Set_Is_Inlined (Pack);
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Inlined_Bodies.Increment_Last;
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Inlined_Bodies.Table (Inlined_Bodies.Last) := Pack;
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end if;
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end if;
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end if;
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end Add_Inlined_Body;
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----------------------------
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353 |
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-- Add_Inlined_Subprogram --
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354 |
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----------------------------
|
355 |
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356 |
|
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procedure Add_Inlined_Subprogram (Index : Subp_Index) is
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357 |
|
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E : constant Entity_Id := Inlined.Table (Index).Name;
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|
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Succ : Succ_Index;
|
359 |
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Subp : Subp_Index;
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360 |
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361 |
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function Back_End_Cannot_Inline (Subp : Entity_Id) return Boolean;
|
362 |
|
|
-- There are various conditions under which back-end inlining cannot
|
363 |
|
|
-- be done reliably:
|
364 |
|
|
--
|
365 |
|
|
-- a) If a body has handlers, it must not be inlined, because this
|
366 |
|
|
-- may violate program semantics, and because in zero-cost exception
|
367 |
|
|
-- mode it will lead to undefined symbols at link time.
|
368 |
|
|
--
|
369 |
|
|
-- b) If a body contains inlined function instances, it cannot be
|
370 |
|
|
-- inlined under ZCX because the numeric suffix generated by gigi
|
371 |
|
|
-- will be different in the body and the place of the inlined call.
|
372 |
|
|
--
|
373 |
|
|
-- If the body to be inlined contains calls to subprograms declared
|
374 |
|
|
-- in the same body that have no previous spec, the back-end cannot
|
375 |
|
|
-- inline either because the bodies to be inlined are processed before
|
376 |
|
|
-- the rest of the enclosing package body, and gigi will then find
|
377 |
|
|
-- references to entities that have not been elaborated yet.
|
378 |
|
|
--
|
379 |
|
|
-- This procedure must be carefully coordinated with the back end.
|
380 |
|
|
|
381 |
|
|
----------------------------
|
382 |
|
|
-- Back_End_Cannot_Inline --
|
383 |
|
|
----------------------------
|
384 |
|
|
|
385 |
|
|
function Back_End_Cannot_Inline (Subp : Entity_Id) return Boolean is
|
386 |
|
|
Decl : constant Node_Id := Unit_Declaration_Node (Subp);
|
387 |
|
|
Body_Ent : Entity_Id;
|
388 |
|
|
Ent : Entity_Id;
|
389 |
|
|
Bad_Call : Node_Id;
|
390 |
|
|
|
391 |
|
|
function Process (N : Node_Id) return Traverse_Result;
|
392 |
|
|
-- Look for calls to subprograms with no previous spec, declared
|
393 |
|
|
-- in the same enclosiong package body.
|
394 |
|
|
|
395 |
|
|
-------------
|
396 |
|
|
-- Process --
|
397 |
|
|
-------------
|
398 |
|
|
|
399 |
|
|
function Process (N : Node_Id) return Traverse_Result is
|
400 |
|
|
begin
|
401 |
|
|
if Nkind (N) = N_Procedure_Call_Statement
|
402 |
|
|
or else Nkind (N) = N_Function_Call
|
403 |
|
|
then
|
404 |
|
|
if Is_Entity_Name (Name (N))
|
405 |
|
|
and then Comes_From_Source (Entity (Name (N)))
|
406 |
|
|
and then
|
407 |
|
|
Nkind (Unit_Declaration_Node (Entity (Name (N))))
|
408 |
|
|
= N_Subprogram_Body
|
409 |
|
|
and then In_Same_Extended_Unit (Subp, Entity (Name (N)))
|
410 |
|
|
then
|
411 |
|
|
Bad_Call := N;
|
412 |
|
|
return Abandon;
|
413 |
|
|
else
|
414 |
|
|
return OK;
|
415 |
|
|
end if;
|
416 |
|
|
else
|
417 |
|
|
return OK;
|
418 |
|
|
end if;
|
419 |
|
|
end Process;
|
420 |
|
|
|
421 |
|
|
function Has_Exposed_Call is new Traverse_Func (Process);
|
422 |
|
|
|
423 |
|
|
-- Start of processing for Back_End_Cannot_Inline
|
424 |
|
|
|
425 |
|
|
begin
|
426 |
|
|
if Nkind (Decl) = N_Subprogram_Declaration
|
427 |
|
|
and then Present (Corresponding_Body (Decl))
|
428 |
|
|
then
|
429 |
|
|
Body_Ent := Corresponding_Body (Decl);
|
430 |
|
|
else
|
431 |
|
|
return False;
|
432 |
|
|
end if;
|
433 |
|
|
|
434 |
|
|
-- If subprogram is marked Inline_Always, inlining is mandatory
|
435 |
|
|
|
436 |
|
|
if Has_Pragma_Inline_Always (Subp) then
|
437 |
|
|
return False;
|
438 |
|
|
end if;
|
439 |
|
|
|
440 |
|
|
if Present
|
441 |
|
|
(Exception_Handlers
|
442 |
|
|
(Handled_Statement_Sequence
|
443 |
|
|
(Unit_Declaration_Node (Corresponding_Body (Decl)))))
|
444 |
|
|
then
|
445 |
|
|
return True;
|
446 |
|
|
end if;
|
447 |
|
|
|
448 |
|
|
Ent := First_Entity (Body_Ent);
|
449 |
|
|
while Present (Ent) loop
|
450 |
|
|
if Is_Subprogram (Ent)
|
451 |
|
|
and then Is_Generic_Instance (Ent)
|
452 |
|
|
then
|
453 |
|
|
return True;
|
454 |
|
|
end if;
|
455 |
|
|
|
456 |
|
|
Next_Entity (Ent);
|
457 |
|
|
end loop;
|
458 |
|
|
|
459 |
|
|
if Has_Exposed_Call
|
460 |
|
|
(Unit_Declaration_Node (Corresponding_Body (Decl))) = Abandon
|
461 |
|
|
then
|
462 |
|
|
if Ineffective_Inline_Warnings then
|
463 |
|
|
Error_Msg_N
|
464 |
|
|
("?call to subprogram with no separate spec"
|
465 |
|
|
& " prevents inlining!!", Bad_Call);
|
466 |
|
|
end if;
|
467 |
|
|
|
468 |
|
|
return True;
|
469 |
|
|
else
|
470 |
|
|
return False;
|
471 |
|
|
end if;
|
472 |
|
|
end Back_End_Cannot_Inline;
|
473 |
|
|
|
474 |
|
|
-- Start of processing for Add_Inlined_Subprogram
|
475 |
|
|
|
476 |
|
|
begin
|
477 |
|
|
-- Insert the current subprogram in the list of inlined subprograms,
|
478 |
|
|
-- if it can actually be inlined by the back-end.
|
479 |
|
|
|
480 |
|
|
if not Scope_In_Main_Unit (E)
|
481 |
|
|
and then Is_Inlined (E)
|
482 |
|
|
and then not Is_Nested (E)
|
483 |
|
|
and then not Has_Initialized_Type (E)
|
484 |
|
|
then
|
485 |
|
|
if Back_End_Cannot_Inline (E) then
|
486 |
|
|
Set_Is_Inlined (E, False);
|
487 |
|
|
|
488 |
|
|
else
|
489 |
|
|
if No (Last_Inlined) then
|
490 |
|
|
Set_First_Inlined_Subprogram (Cunit (Main_Unit), E);
|
491 |
|
|
else
|
492 |
|
|
Set_Next_Inlined_Subprogram (Last_Inlined, E);
|
493 |
|
|
end if;
|
494 |
|
|
|
495 |
|
|
Last_Inlined := E;
|
496 |
|
|
end if;
|
497 |
|
|
end if;
|
498 |
|
|
|
499 |
|
|
Inlined.Table (Index).Listed := True;
|
500 |
|
|
|
501 |
|
|
-- Now add to the list those callers of the current subprogram that
|
502 |
|
|
-- are themselves called. They may appear on the graph as callers
|
503 |
|
|
-- of the current one, even if they are themselves not called, and
|
504 |
|
|
-- there is no point in including them in the list for the backend.
|
505 |
|
|
-- Furthermore, they might not even be public, in which case the
|
506 |
|
|
-- back-end cannot handle them at all.
|
507 |
|
|
|
508 |
|
|
Succ := Inlined.Table (Index).First_Succ;
|
509 |
|
|
while Succ /= No_Succ loop
|
510 |
|
|
Subp := Successors.Table (Succ).Subp;
|
511 |
|
|
Inlined.Table (Subp).Count := Inlined.Table (Subp).Count - 1;
|
512 |
|
|
|
513 |
|
|
if Inlined.Table (Subp).Count = 0
|
514 |
|
|
and then Is_Called (Inlined.Table (Subp).Name)
|
515 |
|
|
then
|
516 |
|
|
Add_Inlined_Subprogram (Subp);
|
517 |
|
|
end if;
|
518 |
|
|
|
519 |
|
|
Succ := Successors.Table (Succ).Next;
|
520 |
|
|
end loop;
|
521 |
|
|
end Add_Inlined_Subprogram;
|
522 |
|
|
|
523 |
|
|
------------------------
|
524 |
|
|
-- Add_Scope_To_Clean --
|
525 |
|
|
------------------------
|
526 |
|
|
|
527 |
|
|
procedure Add_Scope_To_Clean (Inst : Entity_Id) is
|
528 |
|
|
Scop : constant Entity_Id := Enclosing_Dynamic_Scope (Inst);
|
529 |
|
|
Elmt : Elmt_Id;
|
530 |
|
|
|
531 |
|
|
begin
|
532 |
|
|
-- If the instance appears in a library-level package declaration,
|
533 |
|
|
-- all finalization is global, and nothing needs doing here.
|
534 |
|
|
|
535 |
|
|
if Scop = Standard_Standard then
|
536 |
|
|
return;
|
537 |
|
|
end if;
|
538 |
|
|
|
539 |
|
|
-- If the instance appears within a generic subprogram there is nothing
|
540 |
|
|
-- to finalize either.
|
541 |
|
|
|
542 |
|
|
declare
|
543 |
|
|
S : Entity_Id;
|
544 |
|
|
|
545 |
|
|
begin
|
546 |
|
|
S := Scope (Inst);
|
547 |
|
|
while Present (S) and then S /= Standard_Standard loop
|
548 |
|
|
if Is_Generic_Subprogram (S) then
|
549 |
|
|
return;
|
550 |
|
|
end if;
|
551 |
|
|
|
552 |
|
|
S := Scope (S);
|
553 |
|
|
end loop;
|
554 |
|
|
end;
|
555 |
|
|
|
556 |
|
|
Elmt := First_Elmt (To_Clean);
|
557 |
|
|
while Present (Elmt) loop
|
558 |
|
|
if Node (Elmt) = Scop then
|
559 |
|
|
return;
|
560 |
|
|
end if;
|
561 |
|
|
|
562 |
|
|
Elmt := Next_Elmt (Elmt);
|
563 |
|
|
end loop;
|
564 |
|
|
|
565 |
|
|
Append_Elmt (Scop, To_Clean);
|
566 |
|
|
end Add_Scope_To_Clean;
|
567 |
|
|
|
568 |
|
|
--------------
|
569 |
|
|
-- Add_Subp --
|
570 |
|
|
--------------
|
571 |
|
|
|
572 |
|
|
function Add_Subp (E : Entity_Id) return Subp_Index is
|
573 |
|
|
Index : Subp_Index := Subp_Index (E) mod Num_Hash_Headers;
|
574 |
|
|
J : Subp_Index;
|
575 |
|
|
|
576 |
|
|
procedure New_Entry;
|
577 |
|
|
-- Initialize entry in Inlined table
|
578 |
|
|
|
579 |
|
|
procedure New_Entry is
|
580 |
|
|
begin
|
581 |
|
|
Inlined.Increment_Last;
|
582 |
|
|
Inlined.Table (Inlined.Last).Name := E;
|
583 |
|
|
Inlined.Table (Inlined.Last).First_Succ := No_Succ;
|
584 |
|
|
Inlined.Table (Inlined.Last).Count := 0;
|
585 |
|
|
Inlined.Table (Inlined.Last).Listed := False;
|
586 |
|
|
Inlined.Table (Inlined.Last).Main_Call := False;
|
587 |
|
|
Inlined.Table (Inlined.Last).Next := No_Subp;
|
588 |
|
|
Inlined.Table (Inlined.Last).Next_Nopred := No_Subp;
|
589 |
|
|
end New_Entry;
|
590 |
|
|
|
591 |
|
|
-- Start of processing for Add_Subp
|
592 |
|
|
|
593 |
|
|
begin
|
594 |
|
|
if Hash_Headers (Index) = No_Subp then
|
595 |
|
|
New_Entry;
|
596 |
|
|
Hash_Headers (Index) := Inlined.Last;
|
597 |
|
|
return Inlined.Last;
|
598 |
|
|
|
599 |
|
|
else
|
600 |
|
|
J := Hash_Headers (Index);
|
601 |
|
|
while J /= No_Subp loop
|
602 |
|
|
if Inlined.Table (J).Name = E then
|
603 |
|
|
return J;
|
604 |
|
|
else
|
605 |
|
|
Index := J;
|
606 |
|
|
J := Inlined.Table (J).Next;
|
607 |
|
|
end if;
|
608 |
|
|
end loop;
|
609 |
|
|
|
610 |
|
|
-- On exit, subprogram was not found. Enter in table. Index is
|
611 |
|
|
-- the current last entry on the hash chain.
|
612 |
|
|
|
613 |
|
|
New_Entry;
|
614 |
|
|
Inlined.Table (Index).Next := Inlined.Last;
|
615 |
|
|
return Inlined.Last;
|
616 |
|
|
end if;
|
617 |
|
|
end Add_Subp;
|
618 |
|
|
|
619 |
|
|
----------------------------
|
620 |
|
|
-- Analyze_Inlined_Bodies --
|
621 |
|
|
----------------------------
|
622 |
|
|
|
623 |
|
|
procedure Analyze_Inlined_Bodies is
|
624 |
|
|
Comp_Unit : Node_Id;
|
625 |
|
|
J : Int;
|
626 |
|
|
Pack : Entity_Id;
|
627 |
|
|
S : Succ_Index;
|
628 |
|
|
|
629 |
|
|
begin
|
630 |
|
|
Analyzing_Inlined_Bodies := False;
|
631 |
|
|
|
632 |
|
|
if Serious_Errors_Detected = 0 then
|
633 |
|
|
Push_Scope (Standard_Standard);
|
634 |
|
|
|
635 |
|
|
J := 0;
|
636 |
|
|
while J <= Inlined_Bodies.Last
|
637 |
|
|
and then Serious_Errors_Detected = 0
|
638 |
|
|
loop
|
639 |
|
|
Pack := Inlined_Bodies.Table (J);
|
640 |
|
|
while Present (Pack)
|
641 |
|
|
and then Scope (Pack) /= Standard_Standard
|
642 |
|
|
and then not Is_Child_Unit (Pack)
|
643 |
|
|
loop
|
644 |
|
|
Pack := Scope (Pack);
|
645 |
|
|
end loop;
|
646 |
|
|
|
647 |
|
|
Comp_Unit := Parent (Pack);
|
648 |
|
|
while Present (Comp_Unit)
|
649 |
|
|
and then Nkind (Comp_Unit) /= N_Compilation_Unit
|
650 |
|
|
loop
|
651 |
|
|
Comp_Unit := Parent (Comp_Unit);
|
652 |
|
|
end loop;
|
653 |
|
|
|
654 |
|
|
-- Load the body, unless it the main unit, or is an instance
|
655 |
|
|
-- whose body has already been analyzed.
|
656 |
|
|
|
657 |
|
|
if Present (Comp_Unit)
|
658 |
|
|
and then Comp_Unit /= Cunit (Main_Unit)
|
659 |
|
|
and then Body_Required (Comp_Unit)
|
660 |
|
|
and then (Nkind (Unit (Comp_Unit)) /= N_Package_Declaration
|
661 |
|
|
or else No (Corresponding_Body (Unit (Comp_Unit))))
|
662 |
|
|
then
|
663 |
|
|
declare
|
664 |
|
|
Bname : constant Unit_Name_Type :=
|
665 |
|
|
Get_Body_Name (Get_Unit_Name (Unit (Comp_Unit)));
|
666 |
|
|
|
667 |
|
|
OK : Boolean;
|
668 |
|
|
|
669 |
|
|
begin
|
670 |
|
|
if not Is_Loaded (Bname) then
|
671 |
|
|
Load_Needed_Body (Comp_Unit, OK);
|
672 |
|
|
|
673 |
|
|
if not OK then
|
674 |
|
|
|
675 |
|
|
-- Warn that a body was not available for inlining
|
676 |
|
|
-- by the back-end.
|
677 |
|
|
|
678 |
|
|
Error_Msg_Unit_1 := Bname;
|
679 |
|
|
Error_Msg_N
|
680 |
|
|
("one or more inlined subprograms accessed in $!?",
|
681 |
|
|
Comp_Unit);
|
682 |
|
|
Error_Msg_File_1 :=
|
683 |
|
|
Get_File_Name (Bname, Subunit => False);
|
684 |
|
|
Error_Msg_N ("\but file{ was not found!?", Comp_Unit);
|
685 |
|
|
end if;
|
686 |
|
|
end if;
|
687 |
|
|
end;
|
688 |
|
|
end if;
|
689 |
|
|
|
690 |
|
|
J := J + 1;
|
691 |
|
|
end loop;
|
692 |
|
|
|
693 |
|
|
-- The analysis of required bodies may have produced additional
|
694 |
|
|
-- generic instantiations. To obtain further inlining, we perform
|
695 |
|
|
-- another round of generic body instantiations. Establishing a
|
696 |
|
|
-- fully recursive loop between inlining and generic instantiations
|
697 |
|
|
-- is unlikely to yield more than this one additional pass.
|
698 |
|
|
|
699 |
|
|
Instantiate_Bodies;
|
700 |
|
|
|
701 |
|
|
-- The list of inlined subprograms is an overestimate, because
|
702 |
|
|
-- it includes inlined functions called from functions that are
|
703 |
|
|
-- compiled as part of an inlined package, but are not themselves
|
704 |
|
|
-- called. An accurate computation of just those subprograms that
|
705 |
|
|
-- are needed requires that we perform a transitive closure over
|
706 |
|
|
-- the call graph, starting from calls in the main program. Here
|
707 |
|
|
-- we do one step of the inverse transitive closure, and reset
|
708 |
|
|
-- the Is_Called flag on subprograms all of whose callers are not.
|
709 |
|
|
|
710 |
|
|
for Index in Inlined.First .. Inlined.Last loop
|
711 |
|
|
S := Inlined.Table (Index).First_Succ;
|
712 |
|
|
|
713 |
|
|
if S /= No_Succ
|
714 |
|
|
and then not Inlined.Table (Index).Main_Call
|
715 |
|
|
then
|
716 |
|
|
Set_Is_Called (Inlined.Table (Index).Name, False);
|
717 |
|
|
|
718 |
|
|
while S /= No_Succ loop
|
719 |
|
|
if Is_Called
|
720 |
|
|
(Inlined.Table (Successors.Table (S).Subp).Name)
|
721 |
|
|
or else Inlined.Table (Successors.Table (S).Subp).Main_Call
|
722 |
|
|
then
|
723 |
|
|
Set_Is_Called (Inlined.Table (Index).Name);
|
724 |
|
|
exit;
|
725 |
|
|
end if;
|
726 |
|
|
|
727 |
|
|
S := Successors.Table (S).Next;
|
728 |
|
|
end loop;
|
729 |
|
|
end if;
|
730 |
|
|
end loop;
|
731 |
|
|
|
732 |
|
|
-- Now that the units are compiled, chain the subprograms within
|
733 |
|
|
-- that are called and inlined. Produce list of inlined subprograms
|
734 |
|
|
-- sorted in topological order. Start with all subprograms that
|
735 |
|
|
-- have no prerequisites, i.e. inlined subprograms that do not call
|
736 |
|
|
-- other inlined subprograms.
|
737 |
|
|
|
738 |
|
|
for Index in Inlined.First .. Inlined.Last loop
|
739 |
|
|
|
740 |
|
|
if Is_Called (Inlined.Table (Index).Name)
|
741 |
|
|
and then Inlined.Table (Index).Count = 0
|
742 |
|
|
and then not Inlined.Table (Index).Listed
|
743 |
|
|
then
|
744 |
|
|
Add_Inlined_Subprogram (Index);
|
745 |
|
|
end if;
|
746 |
|
|
end loop;
|
747 |
|
|
|
748 |
|
|
-- Because Add_Inlined_Subprogram treats recursively nodes that have
|
749 |
|
|
-- no prerequisites left, at the end of the loop all subprograms
|
750 |
|
|
-- must have been listed. If there are any unlisted subprograms
|
751 |
|
|
-- left, there must be some recursive chains that cannot be inlined.
|
752 |
|
|
|
753 |
|
|
for Index in Inlined.First .. Inlined.Last loop
|
754 |
|
|
if Is_Called (Inlined.Table (Index).Name)
|
755 |
|
|
and then Inlined.Table (Index).Count /= 0
|
756 |
|
|
and then not Is_Predefined_File_Name
|
757 |
|
|
(Unit_File_Name
|
758 |
|
|
(Get_Source_Unit (Inlined.Table (Index).Name)))
|
759 |
|
|
then
|
760 |
|
|
Error_Msg_N
|
761 |
|
|
("& cannot be inlined?", Inlined.Table (Index).Name);
|
762 |
|
|
|
763 |
|
|
-- A warning on the first one might be sufficient ???
|
764 |
|
|
end if;
|
765 |
|
|
end loop;
|
766 |
|
|
|
767 |
|
|
Pop_Scope;
|
768 |
|
|
end if;
|
769 |
|
|
end Analyze_Inlined_Bodies;
|
770 |
|
|
|
771 |
|
|
-----------------------------
|
772 |
|
|
-- Check_Body_For_Inlining --
|
773 |
|
|
-----------------------------
|
774 |
|
|
|
775 |
|
|
procedure Check_Body_For_Inlining (N : Node_Id; P : Entity_Id) is
|
776 |
|
|
Bname : Unit_Name_Type;
|
777 |
|
|
E : Entity_Id;
|
778 |
|
|
OK : Boolean;
|
779 |
|
|
|
780 |
|
|
begin
|
781 |
|
|
if Is_Compilation_Unit (P)
|
782 |
|
|
and then not Is_Generic_Instance (P)
|
783 |
|
|
then
|
784 |
|
|
Bname := Get_Body_Name (Get_Unit_Name (Unit (N)));
|
785 |
|
|
|
786 |
|
|
E := First_Entity (P);
|
787 |
|
|
while Present (E) loop
|
788 |
|
|
if Has_Pragma_Inline_Always (E)
|
789 |
|
|
or else (Front_End_Inlining and then Has_Pragma_Inline (E))
|
790 |
|
|
then
|
791 |
|
|
if not Is_Loaded (Bname) then
|
792 |
|
|
Load_Needed_Body (N, OK);
|
793 |
|
|
|
794 |
|
|
if OK then
|
795 |
|
|
|
796 |
|
|
-- Check we are not trying to inline a parent whose body
|
797 |
|
|
-- depends on a child, when we are compiling the body of
|
798 |
|
|
-- the child. Otherwise we have a potential elaboration
|
799 |
|
|
-- circularity with inlined subprograms and with
|
800 |
|
|
-- Taft-Amendment types.
|
801 |
|
|
|
802 |
|
|
declare
|
803 |
|
|
Comp : Node_Id; -- Body just compiled
|
804 |
|
|
Child_Spec : Entity_Id; -- Spec of main unit
|
805 |
|
|
Ent : Entity_Id; -- For iteration
|
806 |
|
|
With_Clause : Node_Id; -- Context of body.
|
807 |
|
|
|
808 |
|
|
begin
|
809 |
|
|
if Nkind (Unit (Cunit (Main_Unit))) = N_Package_Body
|
810 |
|
|
and then Present (Body_Entity (P))
|
811 |
|
|
then
|
812 |
|
|
Child_Spec :=
|
813 |
|
|
Defining_Entity
|
814 |
|
|
((Unit (Library_Unit (Cunit (Main_Unit)))));
|
815 |
|
|
|
816 |
|
|
Comp :=
|
817 |
|
|
Parent (Unit_Declaration_Node (Body_Entity (P)));
|
818 |
|
|
|
819 |
|
|
-- Check whether the context of the body just
|
820 |
|
|
-- compiled includes a child of itself, and that
|
821 |
|
|
-- child is the spec of the main compilation.
|
822 |
|
|
|
823 |
|
|
With_Clause := First (Context_Items (Comp));
|
824 |
|
|
while Present (With_Clause) loop
|
825 |
|
|
if Nkind (With_Clause) = N_With_Clause
|
826 |
|
|
and then
|
827 |
|
|
Scope (Entity (Name (With_Clause))) = P
|
828 |
|
|
and then
|
829 |
|
|
Entity (Name (With_Clause)) = Child_Spec
|
830 |
|
|
then
|
831 |
|
|
Error_Msg_Node_2 := Child_Spec;
|
832 |
|
|
Error_Msg_NE
|
833 |
|
|
("body of & depends on child unit&?",
|
834 |
|
|
With_Clause, P);
|
835 |
|
|
Error_Msg_N
|
836 |
|
|
("\subprograms in body cannot be inlined?",
|
837 |
|
|
With_Clause);
|
838 |
|
|
|
839 |
|
|
-- Disable further inlining from this unit,
|
840 |
|
|
-- and keep Taft-amendment types incomplete.
|
841 |
|
|
|
842 |
|
|
Ent := First_Entity (P);
|
843 |
|
|
while Present (Ent) loop
|
844 |
|
|
if Is_Type (Ent)
|
845 |
|
|
and then Has_Completion_In_Body (Ent)
|
846 |
|
|
then
|
847 |
|
|
Set_Full_View (Ent, Empty);
|
848 |
|
|
|
849 |
|
|
elsif Is_Subprogram (Ent) then
|
850 |
|
|
Set_Is_Inlined (Ent, False);
|
851 |
|
|
end if;
|
852 |
|
|
|
853 |
|
|
Next_Entity (Ent);
|
854 |
|
|
end loop;
|
855 |
|
|
|
856 |
|
|
return;
|
857 |
|
|
end if;
|
858 |
|
|
|
859 |
|
|
Next (With_Clause);
|
860 |
|
|
end loop;
|
861 |
|
|
end if;
|
862 |
|
|
end;
|
863 |
|
|
|
864 |
|
|
elsif Ineffective_Inline_Warnings then
|
865 |
|
|
Error_Msg_Unit_1 := Bname;
|
866 |
|
|
Error_Msg_N
|
867 |
|
|
("unable to inline subprograms defined in $?", P);
|
868 |
|
|
Error_Msg_N ("\body not found?", P);
|
869 |
|
|
return;
|
870 |
|
|
end if;
|
871 |
|
|
end if;
|
872 |
|
|
|
873 |
|
|
return;
|
874 |
|
|
end if;
|
875 |
|
|
|
876 |
|
|
Next_Entity (E);
|
877 |
|
|
end loop;
|
878 |
|
|
end if;
|
879 |
|
|
end Check_Body_For_Inlining;
|
880 |
|
|
|
881 |
|
|
--------------------
|
882 |
|
|
-- Cleanup_Scopes --
|
883 |
|
|
--------------------
|
884 |
|
|
|
885 |
|
|
procedure Cleanup_Scopes is
|
886 |
|
|
Elmt : Elmt_Id;
|
887 |
|
|
Decl : Node_Id;
|
888 |
|
|
Scop : Entity_Id;
|
889 |
|
|
|
890 |
|
|
begin
|
891 |
|
|
Elmt := First_Elmt (To_Clean);
|
892 |
|
|
while Present (Elmt) loop
|
893 |
|
|
Scop := Node (Elmt);
|
894 |
|
|
|
895 |
|
|
if Ekind (Scop) = E_Entry then
|
896 |
|
|
Scop := Protected_Body_Subprogram (Scop);
|
897 |
|
|
|
898 |
|
|
elsif Is_Subprogram (Scop)
|
899 |
|
|
and then Is_Protected_Type (Scope (Scop))
|
900 |
|
|
and then Present (Protected_Body_Subprogram (Scop))
|
901 |
|
|
then
|
902 |
|
|
-- If a protected operation contains an instance, its
|
903 |
|
|
-- cleanup operations have been delayed, and the subprogram
|
904 |
|
|
-- has been rewritten in the expansion of the enclosing
|
905 |
|
|
-- protected body. It is the corresponding subprogram that
|
906 |
|
|
-- may require the cleanup operations, so propagate the
|
907 |
|
|
-- information that triggers cleanup activity.
|
908 |
|
|
|
909 |
|
|
Set_Uses_Sec_Stack
|
910 |
|
|
(Protected_Body_Subprogram (Scop),
|
911 |
|
|
Uses_Sec_Stack (Scop));
|
912 |
|
|
Set_Finalization_Chain_Entity
|
913 |
|
|
(Protected_Body_Subprogram (Scop),
|
914 |
|
|
Finalization_Chain_Entity (Scop));
|
915 |
|
|
Scop := Protected_Body_Subprogram (Scop);
|
916 |
|
|
end if;
|
917 |
|
|
|
918 |
|
|
if Ekind (Scop) = E_Block then
|
919 |
|
|
Decl := Parent (Block_Node (Scop));
|
920 |
|
|
|
921 |
|
|
else
|
922 |
|
|
Decl := Unit_Declaration_Node (Scop);
|
923 |
|
|
|
924 |
|
|
if Nkind (Decl) = N_Subprogram_Declaration
|
925 |
|
|
or else Nkind (Decl) = N_Task_Type_Declaration
|
926 |
|
|
or else Nkind (Decl) = N_Subprogram_Body_Stub
|
927 |
|
|
then
|
928 |
|
|
Decl := Unit_Declaration_Node (Corresponding_Body (Decl));
|
929 |
|
|
end if;
|
930 |
|
|
end if;
|
931 |
|
|
|
932 |
|
|
Push_Scope (Scop);
|
933 |
|
|
Expand_Cleanup_Actions (Decl);
|
934 |
|
|
End_Scope;
|
935 |
|
|
|
936 |
|
|
Elmt := Next_Elmt (Elmt);
|
937 |
|
|
end loop;
|
938 |
|
|
end Cleanup_Scopes;
|
939 |
|
|
|
940 |
|
|
--------------------------
|
941 |
|
|
-- Has_Initialized_Type --
|
942 |
|
|
--------------------------
|
943 |
|
|
|
944 |
|
|
function Has_Initialized_Type (E : Entity_Id) return Boolean is
|
945 |
|
|
E_Body : constant Node_Id := Get_Subprogram_Body (E);
|
946 |
|
|
Decl : Node_Id;
|
947 |
|
|
|
948 |
|
|
begin
|
949 |
|
|
if No (E_Body) then -- imported subprogram
|
950 |
|
|
return False;
|
951 |
|
|
|
952 |
|
|
else
|
953 |
|
|
Decl := First (Declarations (E_Body));
|
954 |
|
|
while Present (Decl) loop
|
955 |
|
|
|
956 |
|
|
if Nkind (Decl) = N_Full_Type_Declaration
|
957 |
|
|
and then Present (Init_Proc (Defining_Identifier (Decl)))
|
958 |
|
|
then
|
959 |
|
|
return True;
|
960 |
|
|
end if;
|
961 |
|
|
|
962 |
|
|
Next (Decl);
|
963 |
|
|
end loop;
|
964 |
|
|
end if;
|
965 |
|
|
|
966 |
|
|
return False;
|
967 |
|
|
end Has_Initialized_Type;
|
968 |
|
|
|
969 |
|
|
----------------
|
970 |
|
|
-- Initialize --
|
971 |
|
|
----------------
|
972 |
|
|
|
973 |
|
|
procedure Initialize is
|
974 |
|
|
begin
|
975 |
|
|
Analyzing_Inlined_Bodies := False;
|
976 |
|
|
Pending_Descriptor.Init;
|
977 |
|
|
Pending_Instantiations.Init;
|
978 |
|
|
Inlined_Bodies.Init;
|
979 |
|
|
Successors.Init;
|
980 |
|
|
Inlined.Init;
|
981 |
|
|
|
982 |
|
|
for J in Hash_Headers'Range loop
|
983 |
|
|
Hash_Headers (J) := No_Subp;
|
984 |
|
|
end loop;
|
985 |
|
|
end Initialize;
|
986 |
|
|
|
987 |
|
|
------------------------
|
988 |
|
|
-- Instantiate_Bodies --
|
989 |
|
|
------------------------
|
990 |
|
|
|
991 |
|
|
-- Generic bodies contain all the non-local references, so an
|
992 |
|
|
-- instantiation does not need any more context than Standard
|
993 |
|
|
-- itself, even if the instantiation appears in an inner scope.
|
994 |
|
|
-- Generic associations have verified that the contract model is
|
995 |
|
|
-- satisfied, so that any error that may occur in the analysis of
|
996 |
|
|
-- the body is an internal error.
|
997 |
|
|
|
998 |
|
|
procedure Instantiate_Bodies is
|
999 |
|
|
J : Int;
|
1000 |
|
|
Info : Pending_Body_Info;
|
1001 |
|
|
|
1002 |
|
|
begin
|
1003 |
|
|
if Serious_Errors_Detected = 0 then
|
1004 |
|
|
|
1005 |
|
|
Expander_Active := (Operating_Mode = Opt.Generate_Code);
|
1006 |
|
|
Push_Scope (Standard_Standard);
|
1007 |
|
|
To_Clean := New_Elmt_List;
|
1008 |
|
|
|
1009 |
|
|
if Is_Generic_Unit (Cunit_Entity (Main_Unit)) then
|
1010 |
|
|
Start_Generic;
|
1011 |
|
|
end if;
|
1012 |
|
|
|
1013 |
|
|
-- A body instantiation may generate additional instantiations, so
|
1014 |
|
|
-- the following loop must scan to the end of a possibly expanding
|
1015 |
|
|
-- set (that's why we can't simply use a FOR loop here).
|
1016 |
|
|
|
1017 |
|
|
J := 0;
|
1018 |
|
|
while J <= Pending_Instantiations.Last
|
1019 |
|
|
and then Serious_Errors_Detected = 0
|
1020 |
|
|
loop
|
1021 |
|
|
Info := Pending_Instantiations.Table (J);
|
1022 |
|
|
|
1023 |
|
|
-- If the instantiation node is absent, it has been removed
|
1024 |
|
|
-- as part of unreachable code.
|
1025 |
|
|
|
1026 |
|
|
if No (Info.Inst_Node) then
|
1027 |
|
|
null;
|
1028 |
|
|
|
1029 |
|
|
elsif Nkind (Info.Act_Decl) = N_Package_Declaration then
|
1030 |
|
|
Instantiate_Package_Body (Info);
|
1031 |
|
|
Add_Scope_To_Clean (Defining_Entity (Info.Act_Decl));
|
1032 |
|
|
|
1033 |
|
|
else
|
1034 |
|
|
Instantiate_Subprogram_Body (Info);
|
1035 |
|
|
end if;
|
1036 |
|
|
|
1037 |
|
|
J := J + 1;
|
1038 |
|
|
end loop;
|
1039 |
|
|
|
1040 |
|
|
-- Reset the table of instantiations. Additional instantiations
|
1041 |
|
|
-- may be added through inlining, when additional bodies are
|
1042 |
|
|
-- analyzed.
|
1043 |
|
|
|
1044 |
|
|
Pending_Instantiations.Init;
|
1045 |
|
|
|
1046 |
|
|
-- We can now complete the cleanup actions of scopes that contain
|
1047 |
|
|
-- pending instantiations (skipped for generic units, since we
|
1048 |
|
|
-- never need any cleanups in generic units).
|
1049 |
|
|
-- pending instantiations.
|
1050 |
|
|
|
1051 |
|
|
if Expander_Active
|
1052 |
|
|
and then not Is_Generic_Unit (Main_Unit_Entity)
|
1053 |
|
|
then
|
1054 |
|
|
Cleanup_Scopes;
|
1055 |
|
|
elsif Is_Generic_Unit (Cunit_Entity (Main_Unit)) then
|
1056 |
|
|
End_Generic;
|
1057 |
|
|
end if;
|
1058 |
|
|
|
1059 |
|
|
Pop_Scope;
|
1060 |
|
|
end if;
|
1061 |
|
|
end Instantiate_Bodies;
|
1062 |
|
|
|
1063 |
|
|
---------------
|
1064 |
|
|
-- Is_Nested --
|
1065 |
|
|
---------------
|
1066 |
|
|
|
1067 |
|
|
function Is_Nested (E : Entity_Id) return Boolean is
|
1068 |
|
|
Scop : Entity_Id;
|
1069 |
|
|
|
1070 |
|
|
begin
|
1071 |
|
|
Scop := Scope (E);
|
1072 |
|
|
while Scop /= Standard_Standard loop
|
1073 |
|
|
if Ekind (Scop) in Subprogram_Kind then
|
1074 |
|
|
return True;
|
1075 |
|
|
|
1076 |
|
|
elsif Ekind (Scop) = E_Task_Type
|
1077 |
|
|
or else Ekind (Scop) = E_Entry
|
1078 |
|
|
or else Ekind (Scop) = E_Entry_Family then
|
1079 |
|
|
return True;
|
1080 |
|
|
end if;
|
1081 |
|
|
|
1082 |
|
|
Scop := Scope (Scop);
|
1083 |
|
|
end loop;
|
1084 |
|
|
|
1085 |
|
|
return False;
|
1086 |
|
|
end Is_Nested;
|
1087 |
|
|
|
1088 |
|
|
----------
|
1089 |
|
|
-- Lock --
|
1090 |
|
|
----------
|
1091 |
|
|
|
1092 |
|
|
procedure Lock is
|
1093 |
|
|
begin
|
1094 |
|
|
Pending_Instantiations.Locked := True;
|
1095 |
|
|
Inlined_Bodies.Locked := True;
|
1096 |
|
|
Successors.Locked := True;
|
1097 |
|
|
Inlined.Locked := True;
|
1098 |
|
|
Pending_Instantiations.Release;
|
1099 |
|
|
Inlined_Bodies.Release;
|
1100 |
|
|
Successors.Release;
|
1101 |
|
|
Inlined.Release;
|
1102 |
|
|
end Lock;
|
1103 |
|
|
|
1104 |
|
|
--------------------------
|
1105 |
|
|
-- Remove_Dead_Instance --
|
1106 |
|
|
--------------------------
|
1107 |
|
|
|
1108 |
|
|
procedure Remove_Dead_Instance (N : Node_Id) is
|
1109 |
|
|
J : Int;
|
1110 |
|
|
|
1111 |
|
|
begin
|
1112 |
|
|
J := 0;
|
1113 |
|
|
while J <= Pending_Instantiations.Last loop
|
1114 |
|
|
if Pending_Instantiations.Table (J).Inst_Node = N then
|
1115 |
|
|
Pending_Instantiations.Table (J).Inst_Node := Empty;
|
1116 |
|
|
return;
|
1117 |
|
|
end if;
|
1118 |
|
|
|
1119 |
|
|
J := J + 1;
|
1120 |
|
|
end loop;
|
1121 |
|
|
end Remove_Dead_Instance;
|
1122 |
|
|
|
1123 |
|
|
------------------------
|
1124 |
|
|
-- Scope_In_Main_Unit --
|
1125 |
|
|
------------------------
|
1126 |
|
|
|
1127 |
|
|
function Scope_In_Main_Unit (Scop : Entity_Id) return Boolean is
|
1128 |
|
|
Comp : Node_Id;
|
1129 |
|
|
S : Entity_Id;
|
1130 |
|
|
Ent : Entity_Id := Cunit_Entity (Main_Unit);
|
1131 |
|
|
|
1132 |
|
|
begin
|
1133 |
|
|
-- The scope may be within the main unit, or it may be an ancestor
|
1134 |
|
|
-- of the main unit, if the main unit is a child unit. In both cases
|
1135 |
|
|
-- it makes no sense to process the body before the main unit. In
|
1136 |
|
|
-- the second case, this may lead to circularities if a parent body
|
1137 |
|
|
-- depends on a child spec, and we are analyzing the child.
|
1138 |
|
|
|
1139 |
|
|
S := Scop;
|
1140 |
|
|
while Scope (S) /= Standard_Standard
|
1141 |
|
|
and then not Is_Child_Unit (S)
|
1142 |
|
|
loop
|
1143 |
|
|
S := Scope (S);
|
1144 |
|
|
end loop;
|
1145 |
|
|
|
1146 |
|
|
Comp := Parent (S);
|
1147 |
|
|
while Present (Comp)
|
1148 |
|
|
and then Nkind (Comp) /= N_Compilation_Unit
|
1149 |
|
|
loop
|
1150 |
|
|
Comp := Parent (Comp);
|
1151 |
|
|
end loop;
|
1152 |
|
|
|
1153 |
|
|
if Is_Child_Unit (Ent) then
|
1154 |
|
|
while Present (Ent)
|
1155 |
|
|
and then Is_Child_Unit (Ent)
|
1156 |
|
|
loop
|
1157 |
|
|
if Scope (Ent) = S then
|
1158 |
|
|
return True;
|
1159 |
|
|
end if;
|
1160 |
|
|
|
1161 |
|
|
Ent := Scope (Ent);
|
1162 |
|
|
end loop;
|
1163 |
|
|
end if;
|
1164 |
|
|
|
1165 |
|
|
return
|
1166 |
|
|
Comp = Cunit (Main_Unit)
|
1167 |
|
|
or else Comp = Library_Unit (Cunit (Main_Unit));
|
1168 |
|
|
end Scope_In_Main_Unit;
|
1169 |
|
|
|
1170 |
|
|
end Inline;
|