Mercurial > hg > xemacs-beta
comparison src/select-common.h @ 665:fdefd0186b75
[xemacs-hg @ 2001-09-20 06:28:42 by ben]
The great integral types renaming.
The purpose of this is to rationalize the names used for various
integral types, so that they match their intended uses and follow
consist conventions, and eliminate types that were not semantically
different from each other.
The conventions are:
-- All integral types that measure quantities of anything are
signed. Some people disagree vociferously with this, but their
arguments are mostly theoretical, and are vastly outweighed by
the practical headaches of mixing signed and unsigned values,
and more importantly by the far increased likelihood of
inadvertent bugs: Because of the broken "viral" nature of
unsigned quantities in C (operations involving mixed
signed/unsigned are done unsigned, when exactly the opposite is
nearly always wanted), even a single error in declaring a
quantity unsigned that should be signed, or even the even more
subtle error of comparing signed and unsigned values and
forgetting the necessary cast, can be catastrophic, as
comparisons will yield wrong results. -Wsign-compare is turned
on specifically to catch this, but this tends to result in a
great number of warnings when mixing signed and unsigned, and
the casts are annoying. More has been written on this
elsewhere.
-- All such quantity types just mentioned boil down to EMACS_INT,
which is 32 bits on 32-bit machines and 64 bits on 64-bit
machines. This is guaranteed to be the same size as Lisp
objects of type `int', and (as far as I can tell) of size_t
(unsigned!) and ssize_t. The only type below that is not an
EMACS_INT is Hashcode, which is an unsigned value of the same
size as EMACS_INT.
-- Type names should be relatively short (no more than 10
characters or so), with the first letter capitalized and no
underscores if they can at all be avoided.
-- "count" == a zero-based measurement of some quantity. Includes
sizes, offsets, and indexes.
-- "bpos" == a one-based measurement of a position in a buffer.
"Charbpos" and "Bytebpos" count text in the buffer, rather than
bytes in memory; thus Bytebpos does not directly correspond to
the memory representation. Use "Membpos" for this.
-- "Char" refers to internal-format characters, not to the C type
"char", which is really a byte.
-- For the actual name changes, see the script below.
I ran the following script to do the conversion. (NOTE: This script
is idempotent. You can safely run it multiple times and it will
not screw up previous results -- in fact, it will do nothing if
nothing has changed. Thus, it can be run repeatedly as necessary
to handle patches coming in from old workspaces, or old branches.)
There are two tags, just before and just after the change:
`pre-integral-type-rename' and `post-integral-type-rename'. When
merging code from the main trunk into a branch, the best thing to
do is first merge up to `pre-integral-type-rename', then apply the
script and associated changes, then merge from
`post-integral-type-change' to the present. (Alternatively, just do
the merging in one operation; but you may then have a lot of
conflicts needing to be resolved by hand.)
Script `fixtypes.sh' follows:
----------------------------------- cut ------------------------------------
files="*.[ch] s/*.h m/*.h config.h.in ../configure.in Makefile.in.in ../lib-src/*.[ch] ../lwlib/*.[ch]"
gr Memory_Count Bytecount $files
gr Lstream_Data_Count Bytecount $files
gr Element_Count Elemcount $files
gr Hash_Code Hashcode $files
gr extcount bytecount $files
gr bufpos charbpos $files
gr bytind bytebpos $files
gr memind membpos $files
gr bufbyte intbyte $files
gr Extcount Bytecount $files
gr Bufpos Charbpos $files
gr Bytind Bytebpos $files
gr Memind Membpos $files
gr Bufbyte Intbyte $files
gr EXTCOUNT BYTECOUNT $files
gr BUFPOS CHARBPOS $files
gr BYTIND BYTEBPOS $files
gr MEMIND MEMBPOS $files
gr BUFBYTE INTBYTE $files
gr MEMORY_COUNT BYTECOUNT $files
gr LSTREAM_DATA_COUNT BYTECOUNT $files
gr ELEMENT_COUNT ELEMCOUNT $files
gr HASH_CODE HASHCODE $files
----------------------------------- cut ------------------------------------
`fixtypes.sh' is a Bourne-shell script; it uses 'gr':
----------------------------------- cut ------------------------------------
#!/bin/sh
# Usage is like this:
# gr FROM TO FILES ...
# globally replace FROM with TO in FILES. FROM and TO are regular expressions.
# backup files are stored in the `backup' directory.
from="$1"
to="$2"
shift 2
echo ${1+"$@"} | xargs global-replace "s/$from/$to/g"
----------------------------------- cut ------------------------------------
`gr' in turn uses a Perl script to do its real work,
`global-replace', which follows:
----------------------------------- cut ------------------------------------
: #-*- Perl -*-
### global-modify --- modify the contents of a file by a Perl expression
## Copyright (C) 1999 Martin Buchholz.
## Copyright (C) 2001 Ben Wing.
## Authors: Martin Buchholz <martin@xemacs.org>, Ben Wing <ben@xemacs.org>
## Maintainer: Ben Wing <ben@xemacs.org>
## Current Version: 1.0, May 5, 2001
# This program is free software; you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation; either version 2, or (at your option)
# any later version.
#
# This program is distributed in the hope that it will be useful, but
# WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
# General Public License for more details.
#
# You should have received a copy of the GNU General Public License
# along with XEmacs; see the file COPYING. If not, write to the Free
# Software Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA
# 02111-1307, USA.
eval 'exec perl -w -S $0 ${1+"$@"}'
if 0;
use strict;
use FileHandle;
use Carp;
use Getopt::Long;
use File::Basename;
(my $myName = $0) =~ s@.*/@@; my $usage="
Usage: $myName [--help] [--backup-dir=DIR] [--line-mode] [--hunk-mode]
PERLEXPR FILE ...
Globally modify a file, either line by line or in one big hunk.
Typical usage is like this:
[with GNU print, GNU xargs: guaranteed to handle spaces, quotes, etc.
in file names]
find . -name '*.[ch]' -print0 | xargs -0 $0 's/\bCONST\b/const/g'\n
[with non-GNU print, xargs]
find . -name '*.[ch]' -print | xargs $0 's/\bCONST\b/const/g'\n
The file is read in, either line by line (with --line-mode specified)
or in one big hunk (with --hunk-mode specified; it's the default), and
the Perl expression is then evalled with \$_ set to the line or hunk of
text, including the terminating newline if there is one. It should
destructively modify the value there, storing the changed result in \$_.
Files in which any modifications are made are backed up to the directory
specified using --backup-dir, or to `backup' by default. To disable this,
use --backup-dir= with no argument.
Hunk mode is the default because it is MUCH MUCH faster than line-by-line.
Use line-by-line only when it matters, e.g. you want to do a replacement
only once per line (the default without the `g' argument). Conversely,
when using hunk mode, *ALWAYS* use `g'; otherwise, you will only make one
replacement in the entire file!
";
my %options = ();
$Getopt::Long::ignorecase = 0;
&GetOptions (
\%options,
'help', 'backup-dir=s', 'line-mode', 'hunk-mode',
);
die $usage if $options{"help"} or @ARGV <= 1;
my $code = shift;
die $usage if grep (-d || ! -w, @ARGV);
sub SafeOpen {
open ((my $fh = new FileHandle), $_[0]);
confess "Can't open $_[0]: $!" if ! defined $fh;
return $fh;
}
sub SafeClose {
close $_[0] or confess "Can't close $_[0]: $!";
}
sub FileContents {
my $fh = SafeOpen ("< $_[0]");
my $olddollarslash = $/;
local $/ = undef;
my $contents = <$fh>;
$/ = $olddollarslash;
return $contents;
}
sub WriteStringToFile {
my $fh = SafeOpen ("> $_[0]");
binmode $fh;
print $fh $_[1] or confess "$_[0]: $!\n";
SafeClose $fh;
}
foreach my $file (@ARGV) {
my $changed_p = 0;
my $new_contents = "";
if ($options{"line-mode"}) {
my $fh = SafeOpen $file;
while (<$fh>) {
my $save_line = $_;
eval $code;
$changed_p = 1 if $save_line ne $_;
$new_contents .= $_;
}
} else {
my $orig_contents = $_ = FileContents $file;
eval $code;
if ($_ ne $orig_contents) {
$changed_p = 1;
$new_contents = $_;
}
}
if ($changed_p) {
my $backdir = $options{"backup-dir"};
$backdir = "backup" if !defined ($backdir);
if ($backdir) {
my ($name, $path, $suffix) = fileparse ($file, "");
my $backfulldir = $path . $backdir;
my $backfile = "$backfulldir/$name";
mkdir $backfulldir, 0755 unless -d $backfulldir;
print "modifying $file (original saved in $backfile)\n";
rename $file, $backfile;
}
WriteStringToFile ($file, $new_contents);
}
}
----------------------------------- cut ------------------------------------
In addition to those programs, I needed to fix up a few other
things, particularly relating to the duplicate definitions of
types, now that some types merged with others. Specifically:
1. in lisp.h, removed duplicate declarations of Bytecount. The
changed code should now look like this: (In each code snippet
below, the first and last lines are the same as the original, as
are all lines outside of those lines. That allows you to locate
the section to be replaced, and replace the stuff in that
section, verifying that there isn't anything new added that
would need to be kept.)
--------------------------------- snip -------------------------------------
/* Counts of bytes or chars */
typedef EMACS_INT Bytecount;
typedef EMACS_INT Charcount;
/* Counts of elements */
typedef EMACS_INT Elemcount;
/* Hash codes */
typedef unsigned long Hashcode;
/* ------------------------ dynamic arrays ------------------- */
--------------------------------- snip -------------------------------------
2. in lstream.h, removed duplicate declaration of Bytecount.
Rewrote the comment about this type. The changed code should
now look like this:
--------------------------------- snip -------------------------------------
#endif
/* The have been some arguments over the what the type should be that
specifies a count of bytes in a data block to be written out or read in,
using Lstream_read(), Lstream_write(), and related functions.
Originally it was long, which worked fine; Martin "corrected" these to
size_t and ssize_t on the grounds that this is theoretically cleaner and
is in keeping with the C standards. Unfortunately, this practice is
horribly error-prone due to design flaws in the way that mixed
signed/unsigned arithmetic happens. In fact, by doing this change,
Martin introduced a subtle but fatal error that caused the operation of
sending large mail messages to the SMTP server under Windows to fail.
By putting all values back to be signed, avoiding any signed/unsigned
mixing, the bug immediately went away. The type then in use was
Lstream_Data_Count, so that it be reverted cleanly if a vote came to
that. Now it is Bytecount.
Some earlier comments about why the type must be signed: This MUST BE
SIGNED, since it also is used in functions that return the number of
bytes actually read to or written from in an operation, and these
functions can return -1 to signal error.
Note that the standard Unix read() and write() functions define the
count going in as a size_t, which is UNSIGNED, and the count going
out as an ssize_t, which is SIGNED. This is a horrible design
flaw. Not only is it highly likely to lead to logic errors when a
-1 gets interpreted as a large positive number, but operations are
bound to fail in all sorts of horrible ways when a number in the
upper-half of the size_t range is passed in -- this number is
unrepresentable as an ssize_t, so code that checks to see how many
bytes are actually written (which is mandatory if you are dealing
with certain types of devices) will get completely screwed up.
--ben
*/
typedef enum lstream_buffering
--------------------------------- snip -------------------------------------
3. in dumper.c, there are four places, all inside of switch()
statements, where XD_BYTECOUNT appears twice as a case tag. In
each case, the two case blocks contain identical code, and you
should *REMOVE THE SECOND* and leave the first.
author | ben |
---|---|
date | Thu, 20 Sep 2001 06:31:11 +0000 |
parents | b39c14581166 |
children | 804517e16990 |
comparison
equal
deleted
inserted
replaced
664:6e99cc8c6ca5 | 665:fdefd0186b75 |
---|---|
66 | 66 |
67 | 67 |
68 static Lisp_Object | 68 static Lisp_Object |
69 selection_data_to_lisp_data (struct device *d, | 69 selection_data_to_lisp_data (struct device *d, |
70 UChar_Binary *data, | 70 UChar_Binary *data, |
71 Memory_Count size, | 71 Bytecount size, |
72 XE_ATOM_TYPE type, | 72 XE_ATOM_TYPE type, |
73 int format) | 73 int format) |
74 { | 74 { |
75 #ifdef PROCESSING_X_CODE | 75 #ifdef PROCESSING_X_CODE |
76 if (type == DEVICE_XATOM_NULL (d)) | 76 if (type == DEVICE_XATOM_NULL (d)) |
104 { | 104 { |
105 if (size == sizeof (XE_ATOM_TYPE)) | 105 if (size == sizeof (XE_ATOM_TYPE)) |
106 return XE_ATOM_TO_SYMBOL (d, *((XE_ATOM_TYPE *) data)); | 106 return XE_ATOM_TO_SYMBOL (d, *((XE_ATOM_TYPE *) data)); |
107 else | 107 else |
108 { | 108 { |
109 Element_Count i; | 109 Elemcount i; |
110 Element_Count len = size / sizeof (XE_ATOM_TYPE); | 110 Elemcount len = size / sizeof (XE_ATOM_TYPE); |
111 Lisp_Object v = Fmake_vector (make_int (len), Qzero); | 111 Lisp_Object v = Fmake_vector (make_int (len), Qzero); |
112 for (i = 0; i < len; i++) | 112 for (i = 0; i < len; i++) |
113 Faset (v, make_int (i), XE_ATOM_TO_SYMBOL (d, ((XE_ATOM_TYPE *) data) [i])); | 113 Faset (v, make_int (i), XE_ATOM_TO_SYMBOL (d, ((XE_ATOM_TYPE *) data) [i])); |
114 return v; | 114 return v; |
115 } | 115 } |
140 Right now the fact that the return type was SPAN is discarded before | 140 Right now the fact that the return type was SPAN is discarded before |
141 lisp code gets to see it. | 141 lisp code gets to see it. |
142 */ | 142 */ |
143 else if (format == 16) | 143 else if (format == 16) |
144 { | 144 { |
145 Element_Count i; | 145 Elemcount i; |
146 Lisp_Object v = make_vector (size / 4, Qzero); | 146 Lisp_Object v = make_vector (size / 4, Qzero); |
147 for (i = 0; i < size / 4; i++) | 147 for (i = 0; i < size / 4; i++) |
148 { | 148 { |
149 int j = (int) ((unsigned short *) data) [i]; | 149 int j = (int) ((unsigned short *) data) [i]; |
150 Faset (v, make_int (i), make_int (j)); | 150 Faset (v, make_int (i), make_int (j)); |
151 } | 151 } |
152 return v; | 152 return v; |
153 } | 153 } |
154 else | 154 else |
155 { | 155 { |
156 Element_Count i; | 156 Elemcount i; |
157 Lisp_Object v = make_vector (size / 4, Qzero); | 157 Lisp_Object v = make_vector (size / 4, Qzero); |
158 for (i = 0; i < size / 4; i++) | 158 for (i = 0; i < size / 4; i++) |
159 { | 159 { |
160 unsigned long j = ((unsigned long *) data) [i]; | 160 unsigned long j = ((unsigned long *) data) [i]; |
161 Faset (v, make_int (i), word_to_lisp (j)); | 161 Faset (v, make_int (i), word_to_lisp (j)); |
168 static void | 168 static void |
169 lisp_data_to_selection_data (struct device *d, | 169 lisp_data_to_selection_data (struct device *d, |
170 Lisp_Object obj, | 170 Lisp_Object obj, |
171 UChar_Binary **data_ret, | 171 UChar_Binary **data_ret, |
172 XE_ATOM_TYPE *type_ret, | 172 XE_ATOM_TYPE *type_ret, |
173 Memory_Count *size_ret, | 173 Bytecount *size_ret, |
174 int *format_ret) | 174 int *format_ret) |
175 { | 175 { |
176 Lisp_Object type = Qnil; | 176 Lisp_Object type = Qnil; |
177 | 177 |
178 if (CONSP (obj) && SYMBOLP (XCAR (obj))) | 178 if (CONSP (obj) && SYMBOLP (XCAR (obj))) |
191 type = QNULL; | 191 type = QNULL; |
192 } | 192 } |
193 else if (STRINGP (obj)) | 193 else if (STRINGP (obj)) |
194 { | 194 { |
195 const Extbyte *extval; | 195 const Extbyte *extval; |
196 Extcount extvallen; | 196 Bytecount extvallen; |
197 | 197 |
198 TO_EXTERNAL_FORMAT (LISP_STRING, obj, | 198 TO_EXTERNAL_FORMAT (LISP_STRING, obj, |
199 ALLOCA, (extval, extvallen), | 199 ALLOCA, (extval, extvallen), |
200 (NILP (type) ? Qctext : Qbinary)); | 200 (NILP (type) ? Qctext : Qbinary)); |
201 *format_ret = 8; | 201 *format_ret = 8; |
208 if (NILP (type)) type = QSTRING; | 208 if (NILP (type)) type = QSTRING; |
209 #endif | 209 #endif |
210 } | 210 } |
211 else if (CHARP (obj)) | 211 else if (CHARP (obj)) |
212 { | 212 { |
213 Bufbyte buf[MAX_EMCHAR_LEN]; | 213 Intbyte buf[MAX_EMCHAR_LEN]; |
214 Bytecount len; | 214 Bytecount len; |
215 const Extbyte *extval; | 215 const Extbyte *extval; |
216 Extcount extvallen; | 216 Bytecount extvallen; |
217 | 217 |
218 *format_ret = 8; | 218 *format_ret = 8; |
219 len = set_charptr_emchar (buf, XCHAR (obj)); | 219 len = set_charptr_emchar (buf, XCHAR (obj)); |
220 TO_EXTERNAL_FORMAT (DATA, (buf, len), | 220 TO_EXTERNAL_FORMAT (DATA, (buf, len), |
221 ALLOCA, (extval, extvallen), | 221 ALLOCA, (extval, extvallen), |
262 { | 262 { |
263 /* Lisp Vectors may represent a set of ATOMs; | 263 /* Lisp Vectors may represent a set of ATOMs; |
264 a set of 16 or 32 bit INTEGERs; | 264 a set of 16 or 32 bit INTEGERs; |
265 or a set of ATOM_PAIRs (represented as [[A1 A2] [A3 A4] ...] | 265 or a set of ATOM_PAIRs (represented as [[A1 A2] [A3 A4] ...] |
266 */ | 266 */ |
267 Element_Count i; | 267 Elemcount i; |
268 | 268 |
269 if (SYMBOLP (XVECTOR_DATA (obj) [0])) | 269 if (SYMBOLP (XVECTOR_DATA (obj) [0])) |
270 /* This vector is an ATOM set */ | 270 /* This vector is an ATOM set */ |
271 { | 271 { |
272 if (NILP (type)) type = QATOM; | 272 if (NILP (type)) type = QATOM; |