1 ------------------------------------------------------------------------------
3 -- GNAT RUNTIME COMPONENTS --
5 -- S Y S T E M . S T R E A M _ A T T R I B U T E S --
11 -- Copyright (C) 1992-2000 Free Software Foundation, Inc.
13 -- GNAT is free software; you can redistribute it and/or modify it under --
14 -- terms of the GNU General Public License as published by the Free Soft- --
15 -- ware Foundation; either version 2, or (at your option) any later ver- --
16 -- sion. GNAT is distributed in the hope that it will be useful, but WITH- --
17 -- OUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY --
18 -- or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License --
19 -- for more details. You should have received a copy of the GNU General --
20 -- Public License distributed with GNAT; see file COPYING. If not, write --
21 -- to the Free Software Foundation, 59 Temple Place - Suite 330, Boston, --
22 -- MA 02111-1307, USA. --
24 -- As a special exception, if other files instantiate generics from this --
25 -- unit, or you link this unit with other files to produce an executable, --
26 -- this unit does not by itself cause the resulting executable to be --
27 -- covered by the GNU General Public License. This exception does not --
28 -- however invalidate any other reasons why the executable file might be --
29 -- covered by the GNU Public License. --
31 -- GNAT was originally developed by the GNAT team at New York University. --
32 -- It is now maintained by Ada Core Technologies Inc (http://www.gnat.com). --
34 ------------------------------------------------------------------------------
36 -- This package contains the implementations of the stream attributes for
37 -- elementary types. These are the subprograms that are directly accessed
38 -- by occurrences of the stream attributes where the type is elementary.
40 -- We only provide the subprograms for the standard base types. For user
41 -- defined types, the subprogram for the corresponding root type is called
42 -- with an appropriate conversion.
45 with System
.Unsigned_Types
;
48 package System
.Stream_Attributes
is
49 pragma Preelaborate
(Stream_Attributes
);
51 pragma Suppress
(Accessibility_Check
, Stream_Attributes
);
52 -- No need to check accessibility on arguments of subprograms
54 package UST
renames System
.Unsigned_Types
;
56 subtype RST
is Ada
.Streams
.Root_Stream_Type
'Class;
58 -- Enumeration types are usually transferred using the routine for the
59 -- corresponding integer. The exception is that special routines are
60 -- provided for Boolean and the character types, in case the protocol
61 -- in use provides specially for these types.
63 -- Access types use either a thin pointer (single address) or fat pointer
64 -- (double address) form. The following types are used to hold access
65 -- values using unchecked conversions.
67 type Thin_Pointer
is record
71 type Fat_Pointer
is record
76 ------------------------------------
77 -- Treatment of enumeration types --
78 ------------------------------------
80 -- In this interface, there are no specific routines for general input
81 -- or output of enumeration types. Generally, enumeration types whose
82 -- representation is unsigned (no negative representation values) are
83 -- treated as unsigned integers, and enumeration types that do have
84 -- negative representation values are treated as signed integers.
86 -- An exception is that there are specialized routines for Boolean,
87 -- Character, and Wide_Character types, but these specialized routines
88 -- are used only if the type in question has a standard representation.
89 -- For the case of a non-standard representation (one where the size of
90 -- the first subtype is specified, or where an enumeration representation
91 -- clause is given, these three types are treated like any other cases
92 -- of enumeration types, as described above.
99 -- Functions for S'Input attribute. These functions are also used for
100 -- S'Read, with the obvious transformation, since the input operation
101 -- is the same for all elementary types (no bounds or discriminants
104 function I_AD
(Stream
: access RST
) return Fat_Pointer
;
105 function I_AS
(Stream
: access RST
) return Thin_Pointer
;
106 function I_B
(Stream
: access RST
) return Boolean;
107 function I_C
(Stream
: access RST
) return Character;
108 function I_F
(Stream
: access RST
) return Float;
109 function I_I
(Stream
: access RST
) return Integer;
110 function I_LF
(Stream
: access RST
) return Long_Float;
111 function I_LI
(Stream
: access RST
) return Long_Integer;
112 function I_LLF
(Stream
: access RST
) return Long_Long_Float;
113 function I_LLI
(Stream
: access RST
) return Long_Long_Integer;
114 function I_LLU
(Stream
: access RST
) return UST
.Long_Long_Unsigned
;
115 function I_LU
(Stream
: access RST
) return UST
.Long_Unsigned
;
116 function I_SF
(Stream
: access RST
) return Short_Float;
117 function I_SI
(Stream
: access RST
) return Short_Integer;
118 function I_SSI
(Stream
: access RST
) return Short_Short_Integer;
119 function I_SSU
(Stream
: access RST
) return UST
.Short_Short_Unsigned
;
120 function I_SU
(Stream
: access RST
) return UST
.Short_Unsigned
;
121 function I_U
(Stream
: access RST
) return UST
.Unsigned
;
122 function I_WC
(Stream
: access RST
) return Wide_Character;
124 -----------------------
125 -- Output Procedures --
126 -----------------------
128 -- Procedures for S'Write attribute. These procedures are also used
129 -- for 'Output, since for elementary types there is no difference
130 -- between 'Write and 'Output because there are no discriminants
131 -- or bounds to be written.
133 procedure W_AD
(Stream
: access RST
; Item
: in Fat_Pointer
);
134 procedure W_AS
(Stream
: access RST
; Item
: in Thin_Pointer
);
135 procedure W_B
(Stream
: access RST
; Item
: in Boolean);
136 procedure W_C
(Stream
: access RST
; Item
: in Character);
137 procedure W_F
(Stream
: access RST
; Item
: in Float);
138 procedure W_I
(Stream
: access RST
; Item
: in Integer);
139 procedure W_LF
(Stream
: access RST
; Item
: in Long_Float);
140 procedure W_LI
(Stream
: access RST
; Item
: in Long_Integer);
141 procedure W_LLF
(Stream
: access RST
; Item
: in Long_Long_Float);
142 procedure W_LLI
(Stream
: access RST
; Item
: in Long_Long_Integer);
143 procedure W_LLU
(Stream
: access RST
; Item
: in UST
.Long_Long_Unsigned
);
144 procedure W_LU
(Stream
: access RST
; Item
: in UST
.Long_Unsigned
);
145 procedure W_SF
(Stream
: access RST
; Item
: in Short_Float);
146 procedure W_SI
(Stream
: access RST
; Item
: in Short_Integer);
147 procedure W_SSI
(Stream
: access RST
; Item
: in Short_Short_Integer);
148 procedure W_SSU
(Stream
: access RST
; Item
: in UST
.Short_Short_Unsigned
);
149 procedure W_SU
(Stream
: access RST
; Item
: in UST
.Short_Unsigned
);
150 procedure W_U
(Stream
: access RST
; Item
: in UST
.Unsigned
);
151 procedure W_WC
(Stream
: access RST
; Item
: in Wide_Character);
154 pragma Inline
(I_AD
);
155 pragma Inline
(I_AS
);
160 pragma Inline
(I_LF
);
161 pragma Inline
(I_LI
);
162 pragma Inline
(I_LLF
);
163 pragma Inline
(I_LLI
);
164 pragma Inline
(I_LLU
);
165 pragma Inline
(I_LU
);
166 pragma Inline
(I_SF
);
167 pragma Inline
(I_SI
);
168 pragma Inline
(I_SSI
);
169 pragma Inline
(I_SSU
);
170 pragma Inline
(I_SU
);
172 pragma Inline
(I_WC
);
174 pragma Inline
(W_AD
);
175 pragma Inline
(W_AS
);
180 pragma Inline
(W_LF
);
181 pragma Inline
(W_LI
);
182 pragma Inline
(W_LLF
);
183 pragma Inline
(W_LLI
);
184 pragma Inline
(W_LLU
);
185 pragma Inline
(W_LU
);
186 pragma Inline
(W_SF
);
187 pragma Inline
(W_SI
);
188 pragma Inline
(W_SSI
);
189 pragma Inline
(W_SSU
);
190 pragma Inline
(W_SU
);
192 pragma Inline
(W_WC
);
194 end System
.Stream_Attributes
;