ucgendat.c revision 1.1.1.6.4.1 1 1.1.1.6.4.1 martin /* $NetBSD: ucgendat.c,v 1.1.1.6.4.1 2020/04/13 07:56:15 martin Exp $ */
2 1.1.1.2 lukem
3 1.1.1.4 tron /* $OpenLDAP$ */
4 1.1 lukem /* This work is part of OpenLDAP Software <http://www.openldap.org/>.
5 1.1 lukem *
6 1.1.1.6.4.1 martin * Copyright 1998-2019 The OpenLDAP Foundation.
7 1.1 lukem * All rights reserved.
8 1.1 lukem *
9 1.1 lukem * Redistribution and use in source and binary forms, with or without
10 1.1 lukem * modification, are permitted only as authorized by the OpenLDAP
11 1.1 lukem * Public License.
12 1.1 lukem *
13 1.1 lukem * A copy of this license is available in file LICENSE in the
14 1.1 lukem * top-level directory of the distribution or, alternatively, at
15 1.1 lukem * <http://www.OpenLDAP.org/license.html>.
16 1.1 lukem */
17 1.1 lukem /* Copyright 2001 Computing Research Labs, New Mexico State University
18 1.1 lukem *
19 1.1 lukem * Permission is hereby granted, free of charge, to any person obtaining a
20 1.1 lukem * copy of this software and associated documentation files (the "Software"),
21 1.1 lukem * to deal in the Software without restriction, including without limitation
22 1.1 lukem * the rights to use, copy, modify, merge, publish, distribute, sublicense,
23 1.1 lukem * and/or sell copies of the Software, and to permit persons to whom the
24 1.1 lukem * Software is furnished to do so, subject to the following conditions:
25 1.1 lukem *
26 1.1 lukem * The above copyright notice and this permission notice shall be included in
27 1.1 lukem * all copies or substantial portions of the Software.
28 1.1 lukem *
29 1.1 lukem * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
30 1.1 lukem * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
31 1.1 lukem * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
32 1.1 lukem * THE COMPUTING RESEARCH LAB OR NEW MEXICO STATE UNIVERSITY BE LIABLE FOR ANY
33 1.1 lukem * CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT
34 1.1 lukem * OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR
35 1.1 lukem * THE USE OR OTHER DEALINGS IN THE SOFTWARE.
36 1.1 lukem */
37 1.1.1.4 tron /* Id: ucgendat.c,v 1.4 2001/01/02 18:46:20 mleisher Exp " */
38 1.1 lukem
39 1.1.1.5 christos #include <sys/cdefs.h>
40 1.1.1.6.4.1 martin __RCSID("$NetBSD: ucgendat.c,v 1.1.1.6.4.1 2020/04/13 07:56:15 martin Exp $");
41 1.1.1.5 christos
42 1.1 lukem #include "portable.h"
43 1.1 lukem #include "ldap_config.h"
44 1.1 lukem
45 1.1 lukem #include <stdio.h>
46 1.1 lukem #include <ac/ctype.h>
47 1.1 lukem #include <ac/stdlib.h>
48 1.1 lukem #include <ac/string.h>
49 1.1 lukem #include <ac/unistd.h>
50 1.1 lukem
51 1.1 lukem #include <ac/bytes.h>
52 1.1 lukem
53 1.1 lukem #include <lutil.h>
54 1.1 lukem
55 1.1 lukem #ifndef HARDCODE_DATA
56 1.1 lukem #define HARDCODE_DATA 1
57 1.1 lukem #endif
58 1.1 lukem
59 1.1 lukem #undef ishdigit
60 1.1 lukem #define ishdigit(cc) (((cc) >= '0' && (cc) <= '9') ||\
61 1.1 lukem ((cc) >= 'A' && (cc) <= 'F') ||\
62 1.1 lukem ((cc) >= 'a' && (cc) <= 'f'))
63 1.1 lukem
64 1.1 lukem /*
65 1.1 lukem * A header written to the output file with the byte-order-mark and the number
66 1.1 lukem * of property nodes.
67 1.1 lukem */
68 1.1 lukem static ac_uint2 hdr[2] = {0xfeff, 0};
69 1.1 lukem
70 1.1 lukem #define NUMPROPS 50
71 1.1 lukem #define NEEDPROPS (NUMPROPS + (4 - (NUMPROPS & 3)))
72 1.1 lukem
73 1.1 lukem typedef struct {
74 1.1 lukem char *name;
75 1.1 lukem int len;
76 1.1 lukem } _prop_t;
77 1.1 lukem
78 1.1 lukem /*
79 1.1 lukem * List of properties expected to be found in the Unicode Character Database
80 1.1 lukem * including some implementation specific properties.
81 1.1 lukem *
82 1.1 lukem * The implementation specific properties are:
83 1.1 lukem * Cm = Composed (can be decomposed)
84 1.1 lukem * Nb = Non-breaking
85 1.1 lukem * Sy = Symmetric (has left and right forms)
86 1.1 lukem * Hd = Hex digit
87 1.1 lukem * Qm = Quote marks
88 1.1 lukem * Mr = Mirroring
89 1.1 lukem * Ss = Space, other
90 1.1 lukem * Cp = Defined character
91 1.1 lukem */
92 1.1 lukem static _prop_t props[NUMPROPS] = {
93 1.1 lukem {"Mn", 2}, {"Mc", 2}, {"Me", 2}, {"Nd", 2}, {"Nl", 2}, {"No", 2},
94 1.1 lukem {"Zs", 2}, {"Zl", 2}, {"Zp", 2}, {"Cc", 2}, {"Cf", 2}, {"Cs", 2},
95 1.1 lukem {"Co", 2}, {"Cn", 2}, {"Lu", 2}, {"Ll", 2}, {"Lt", 2}, {"Lm", 2},
96 1.1 lukem {"Lo", 2}, {"Pc", 2}, {"Pd", 2}, {"Ps", 2}, {"Pe", 2}, {"Po", 2},
97 1.1 lukem {"Sm", 2}, {"Sc", 2}, {"Sk", 2}, {"So", 2}, {"L", 1}, {"R", 1},
98 1.1 lukem {"EN", 2}, {"ES", 2}, {"ET", 2}, {"AN", 2}, {"CS", 2}, {"B", 1},
99 1.1 lukem {"S", 1}, {"WS", 2}, {"ON", 2},
100 1.1 lukem {"Cm", 2}, {"Nb", 2}, {"Sy", 2}, {"Hd", 2}, {"Qm", 2}, {"Mr", 2},
101 1.1 lukem {"Ss", 2}, {"Cp", 2}, {"Pi", 2}, {"Pf", 2}, {"AL", 2}
102 1.1 lukem };
103 1.1 lukem
104 1.1 lukem typedef struct {
105 1.1 lukem ac_uint4 *ranges;
106 1.1 lukem ac_uint2 used;
107 1.1 lukem ac_uint2 size;
108 1.1 lukem } _ranges_t;
109 1.1 lukem
110 1.1 lukem static _ranges_t proptbl[NUMPROPS];
111 1.1 lukem
112 1.1 lukem /*
113 1.1 lukem * Make sure this array is sized to be on a 4-byte boundary at compile time.
114 1.1 lukem */
115 1.1 lukem static ac_uint2 propcnt[NEEDPROPS];
116 1.1 lukem
117 1.1 lukem /*
118 1.1 lukem * Array used to collect a decomposition before adding it to the decomposition
119 1.1 lukem * table.
120 1.1 lukem */
121 1.1 lukem static ac_uint4 dectmp[64];
122 1.1 lukem static ac_uint4 dectmp_size;
123 1.1 lukem
124 1.1 lukem typedef struct {
125 1.1 lukem ac_uint4 code;
126 1.1 lukem ac_uint2 size;
127 1.1 lukem ac_uint2 used;
128 1.1 lukem ac_uint4 *decomp;
129 1.1 lukem } _decomp_t;
130 1.1 lukem
131 1.1 lukem /*
132 1.1 lukem * List of decomposition. Created and expanded in order as the characters are
133 1.1 lukem * encountered. First list contains canonical mappings, second also includes
134 1.1 lukem * compatibility mappings.
135 1.1 lukem */
136 1.1 lukem static _decomp_t *decomps;
137 1.1 lukem static ac_uint4 decomps_used;
138 1.1 lukem static ac_uint4 decomps_size;
139 1.1 lukem
140 1.1 lukem static _decomp_t *kdecomps;
141 1.1 lukem static ac_uint4 kdecomps_used;
142 1.1 lukem static ac_uint4 kdecomps_size;
143 1.1 lukem
144 1.1 lukem /*
145 1.1 lukem * Composition exclusion table stuff.
146 1.1 lukem */
147 1.1 lukem #define COMPEX_SET(c) (compexs[(c) >> 5] |= (1 << ((c) & 31)))
148 1.1 lukem #define COMPEX_TEST(c) (compexs[(c) >> 5] & (1 << ((c) & 31)))
149 1.1 lukem static ac_uint4 compexs[8192];
150 1.1 lukem
151 1.1 lukem /*
152 1.1 lukem * Struct for holding a composition pair, and array of composition pairs
153 1.1 lukem */
154 1.1 lukem typedef struct {
155 1.1 lukem ac_uint4 comp;
156 1.1 lukem ac_uint4 count;
157 1.1 lukem ac_uint4 code1;
158 1.1 lukem ac_uint4 code2;
159 1.1 lukem } _comp_t;
160 1.1 lukem
161 1.1 lukem static _comp_t *comps;
162 1.1 lukem static ac_uint4 comps_used;
163 1.1 lukem
164 1.1 lukem /*
165 1.1 lukem * Types and lists for handling lists of case mappings.
166 1.1 lukem */
167 1.1 lukem typedef struct {
168 1.1 lukem ac_uint4 key;
169 1.1 lukem ac_uint4 other1;
170 1.1 lukem ac_uint4 other2;
171 1.1 lukem } _case_t;
172 1.1 lukem
173 1.1 lukem static _case_t *upper;
174 1.1 lukem static _case_t *lower;
175 1.1 lukem static _case_t *title;
176 1.1 lukem static ac_uint4 upper_used;
177 1.1 lukem static ac_uint4 upper_size;
178 1.1 lukem static ac_uint4 lower_used;
179 1.1 lukem static ac_uint4 lower_size;
180 1.1 lukem static ac_uint4 title_used;
181 1.1 lukem static ac_uint4 title_size;
182 1.1 lukem
183 1.1 lukem /*
184 1.1 lukem * Array used to collect case mappings before adding them to a list.
185 1.1 lukem */
186 1.1 lukem static ac_uint4 cases[3];
187 1.1 lukem
188 1.1 lukem /*
189 1.1 lukem * An array to hold ranges for combining classes.
190 1.1 lukem */
191 1.1 lukem static ac_uint4 *ccl;
192 1.1 lukem static ac_uint4 ccl_used;
193 1.1 lukem static ac_uint4 ccl_size;
194 1.1 lukem
195 1.1 lukem /*
196 1.1 lukem * Structures for handling numbers.
197 1.1 lukem */
198 1.1 lukem typedef struct {
199 1.1 lukem ac_uint4 code;
200 1.1 lukem ac_uint4 idx;
201 1.1 lukem } _codeidx_t;
202 1.1 lukem
203 1.1 lukem typedef struct {
204 1.1 lukem short numerator;
205 1.1 lukem short denominator;
206 1.1 lukem } _num_t;
207 1.1 lukem
208 1.1 lukem /*
209 1.1 lukem * Arrays to hold the mapping of codes to numbers.
210 1.1 lukem */
211 1.1 lukem static _codeidx_t *ncodes;
212 1.1 lukem static ac_uint4 ncodes_used;
213 1.1 lukem static ac_uint4 ncodes_size;
214 1.1 lukem
215 1.1 lukem static _num_t *nums;
216 1.1 lukem static ac_uint4 nums_used;
217 1.1 lukem static ac_uint4 nums_size;
218 1.1 lukem
219 1.1 lukem /*
220 1.1 lukem * Array for holding numbers.
221 1.1 lukem */
222 1.1 lukem static _num_t *nums;
223 1.1 lukem static ac_uint4 nums_used;
224 1.1 lukem static ac_uint4 nums_size;
225 1.1 lukem
226 1.1 lukem static void
227 1.1 lukem add_range(ac_uint4 start, ac_uint4 end, char *p1, char *p2)
228 1.1 lukem {
229 1.1 lukem int i, j, k, len;
230 1.1 lukem _ranges_t *rlp;
231 1.1 lukem char *name;
232 1.1 lukem
233 1.1 lukem for (k = 0; k < 2; k++) {
234 1.1 lukem if (k == 0) {
235 1.1 lukem name = p1;
236 1.1 lukem len = 2;
237 1.1 lukem } else {
238 1.1 lukem if (p2 == 0)
239 1.1 lukem break;
240 1.1 lukem
241 1.1 lukem name = p2;
242 1.1 lukem len = 1;
243 1.1 lukem }
244 1.1 lukem
245 1.1 lukem for (i = 0; i < NUMPROPS; i++) {
246 1.1 lukem if (props[i].len == len && memcmp(props[i].name, name, len) == 0)
247 1.1 lukem break;
248 1.1 lukem }
249 1.1 lukem
250 1.1 lukem if (i == NUMPROPS)
251 1.1 lukem continue;
252 1.1 lukem
253 1.1 lukem rlp = &proptbl[i];
254 1.1 lukem
255 1.1 lukem /*
256 1.1 lukem * Resize the range list if necessary.
257 1.1 lukem */
258 1.1 lukem if (rlp->used == rlp->size) {
259 1.1 lukem if (rlp->size == 0)
260 1.1 lukem rlp->ranges = (ac_uint4 *)
261 1.1 lukem malloc(sizeof(ac_uint4) << 3);
262 1.1 lukem else
263 1.1 lukem rlp->ranges = (ac_uint4 *)
264 1.1 lukem realloc((char *) rlp->ranges,
265 1.1 lukem sizeof(ac_uint4) * (rlp->size + 8));
266 1.1 lukem rlp->size += 8;
267 1.1 lukem }
268 1.1 lukem
269 1.1 lukem /*
270 1.1 lukem * If this is the first code for this property list, just add it
271 1.1 lukem * and return.
272 1.1 lukem */
273 1.1 lukem if (rlp->used == 0) {
274 1.1 lukem rlp->ranges[0] = start;
275 1.1 lukem rlp->ranges[1] = end;
276 1.1 lukem rlp->used += 2;
277 1.1 lukem continue;
278 1.1 lukem }
279 1.1 lukem
280 1.1 lukem /*
281 1.1 lukem * Optimize the case of adding the range to the end.
282 1.1 lukem */
283 1.1 lukem j = rlp->used - 1;
284 1.1 lukem if (start > rlp->ranges[j]) {
285 1.1 lukem j = rlp->used;
286 1.1 lukem rlp->ranges[j++] = start;
287 1.1 lukem rlp->ranges[j++] = end;
288 1.1 lukem rlp->used = j;
289 1.1 lukem continue;
290 1.1 lukem }
291 1.1 lukem
292 1.1 lukem /*
293 1.1 lukem * Need to locate the insertion point.
294 1.1 lukem */
295 1.1 lukem for (i = 0;
296 1.1 lukem i < rlp->used && start > rlp->ranges[i + 1] + 1; i += 2) ;
297 1.1 lukem
298 1.1 lukem /*
299 1.1 lukem * If the start value lies in the current range, then simply set the
300 1.1 lukem * new end point of the range to the end value passed as a parameter.
301 1.1 lukem */
302 1.1 lukem if (rlp->ranges[i] <= start && start <= rlp->ranges[i + 1] + 1) {
303 1.1 lukem rlp->ranges[i + 1] = end;
304 1.1 lukem return;
305 1.1 lukem }
306 1.1 lukem
307 1.1 lukem /*
308 1.1 lukem * Shift following values up by two.
309 1.1 lukem */
310 1.1 lukem for (j = rlp->used; j > i; j -= 2) {
311 1.1 lukem rlp->ranges[j] = rlp->ranges[j - 2];
312 1.1 lukem rlp->ranges[j + 1] = rlp->ranges[j - 1];
313 1.1 lukem }
314 1.1 lukem
315 1.1 lukem /*
316 1.1 lukem * Add the new range at the insertion point.
317 1.1 lukem */
318 1.1 lukem rlp->ranges[i] = start;
319 1.1 lukem rlp->ranges[i + 1] = end;
320 1.1 lukem rlp->used += 2;
321 1.1 lukem }
322 1.1 lukem }
323 1.1 lukem
324 1.1 lukem static void
325 1.1 lukem ordered_range_insert(ac_uint4 c, char *name, int len)
326 1.1 lukem {
327 1.1 lukem int i, j;
328 1.1 lukem ac_uint4 s, e;
329 1.1 lukem _ranges_t *rlp;
330 1.1 lukem
331 1.1 lukem if (len == 0)
332 1.1 lukem return;
333 1.1 lukem
334 1.1 lukem /*
335 1.1 lukem * Deal with directionality codes introduced in Unicode 3.0.
336 1.1 lukem */
337 1.1 lukem if ((len == 2 && memcmp(name, "BN", 2) == 0) ||
338 1.1 lukem (len == 3 &&
339 1.1 lukem (memcmp(name, "NSM", 3) == 0 || memcmp(name, "PDF", 3) == 0 ||
340 1.1 lukem memcmp(name, "LRE", 3) == 0 || memcmp(name, "LRO", 3) == 0 ||
341 1.1 lukem memcmp(name, "RLE", 3) == 0 || memcmp(name, "RLO", 3) == 0))) {
342 1.1 lukem /*
343 1.1 lukem * Mark all of these as Other Neutral to preserve compatibility with
344 1.1 lukem * older versions.
345 1.1 lukem */
346 1.1 lukem len = 2;
347 1.1 lukem name = "ON";
348 1.1 lukem }
349 1.1 lukem
350 1.1 lukem for (i = 0; i < NUMPROPS; i++) {
351 1.1 lukem if (props[i].len == len && memcmp(props[i].name, name, len) == 0)
352 1.1 lukem break;
353 1.1 lukem }
354 1.1 lukem
355 1.1 lukem if (i == NUMPROPS)
356 1.1 lukem return;
357 1.1 lukem
358 1.1 lukem /*
359 1.1 lukem * Have a match, so insert the code in order.
360 1.1 lukem */
361 1.1 lukem rlp = &proptbl[i];
362 1.1 lukem
363 1.1 lukem /*
364 1.1 lukem * Resize the range list if necessary.
365 1.1 lukem */
366 1.1 lukem if (rlp->used == rlp->size) {
367 1.1 lukem if (rlp->size == 0)
368 1.1 lukem rlp->ranges = (ac_uint4 *)
369 1.1 lukem malloc(sizeof(ac_uint4) << 3);
370 1.1 lukem else
371 1.1 lukem rlp->ranges = (ac_uint4 *)
372 1.1 lukem realloc((char *) rlp->ranges,
373 1.1 lukem sizeof(ac_uint4) * (rlp->size + 8));
374 1.1 lukem rlp->size += 8;
375 1.1 lukem }
376 1.1 lukem
377 1.1 lukem /*
378 1.1 lukem * If this is the first code for this property list, just add it
379 1.1 lukem * and return.
380 1.1 lukem */
381 1.1 lukem if (rlp->used == 0) {
382 1.1 lukem rlp->ranges[0] = rlp->ranges[1] = c;
383 1.1 lukem rlp->used += 2;
384 1.1 lukem return;
385 1.1 lukem }
386 1.1 lukem
387 1.1 lukem /*
388 1.1 lukem * Optimize the cases of extending the last range and adding new ranges to
389 1.1 lukem * the end.
390 1.1 lukem */
391 1.1 lukem j = rlp->used - 1;
392 1.1 lukem e = rlp->ranges[j];
393 1.1 lukem s = rlp->ranges[j - 1];
394 1.1 lukem
395 1.1 lukem if (c == e + 1) {
396 1.1 lukem /*
397 1.1 lukem * Extend the last range.
398 1.1 lukem */
399 1.1 lukem rlp->ranges[j] = c;
400 1.1 lukem return;
401 1.1 lukem }
402 1.1 lukem
403 1.1 lukem if (c > e + 1) {
404 1.1 lukem /*
405 1.1 lukem * Start another range on the end.
406 1.1 lukem */
407 1.1 lukem j = rlp->used;
408 1.1 lukem rlp->ranges[j] = rlp->ranges[j + 1] = c;
409 1.1 lukem rlp->used += 2;
410 1.1 lukem return;
411 1.1 lukem }
412 1.1 lukem
413 1.1 lukem if (c >= s)
414 1.1 lukem /*
415 1.1 lukem * The code is a duplicate of a code in the last range, so just return.
416 1.1 lukem */
417 1.1 lukem return;
418 1.1 lukem
419 1.1 lukem /*
420 1.1 lukem * The code should be inserted somewhere before the last range in the
421 1.1 lukem * list. Locate the insertion point.
422 1.1 lukem */
423 1.1 lukem for (i = 0;
424 1.1 lukem i < rlp->used && c > rlp->ranges[i + 1] + 1; i += 2) ;
425 1.1 lukem
426 1.1 lukem s = rlp->ranges[i];
427 1.1 lukem e = rlp->ranges[i + 1];
428 1.1 lukem
429 1.1 lukem if (c == e + 1)
430 1.1 lukem /*
431 1.1 lukem * Simply extend the current range.
432 1.1 lukem */
433 1.1 lukem rlp->ranges[i + 1] = c;
434 1.1 lukem else if (c < s) {
435 1.1 lukem /*
436 1.1 lukem * Add a new entry before the current location. Shift all entries
437 1.1 lukem * before the current one up by one to make room.
438 1.1 lukem */
439 1.1 lukem for (j = rlp->used; j > i; j -= 2) {
440 1.1 lukem rlp->ranges[j] = rlp->ranges[j - 2];
441 1.1 lukem rlp->ranges[j + 1] = rlp->ranges[j - 1];
442 1.1 lukem }
443 1.1 lukem rlp->ranges[i] = rlp->ranges[i + 1] = c;
444 1.1 lukem
445 1.1 lukem rlp->used += 2;
446 1.1 lukem }
447 1.1 lukem }
448 1.1 lukem
449 1.1 lukem static void
450 1.1 lukem add_decomp(ac_uint4 code, short compat)
451 1.1 lukem {
452 1.1 lukem ac_uint4 i, j, size;
453 1.1 lukem _decomp_t **pdecomps;
454 1.1 lukem ac_uint4 *pdecomps_used;
455 1.1 lukem ac_uint4 *pdecomps_size;
456 1.1 lukem
457 1.1 lukem if (compat) {
458 1.1 lukem pdecomps = &kdecomps;
459 1.1 lukem pdecomps_used = &kdecomps_used;
460 1.1 lukem pdecomps_size = &kdecomps_size;
461 1.1 lukem } else {
462 1.1 lukem pdecomps = &decomps;
463 1.1 lukem pdecomps_used = &decomps_used;
464 1.1 lukem pdecomps_size = &decomps_size;
465 1.1 lukem }
466 1.1 lukem
467 1.1 lukem /*
468 1.1 lukem * Add the code to the composite property.
469 1.1 lukem */
470 1.1 lukem if (!compat) {
471 1.1 lukem ordered_range_insert(code, "Cm", 2);
472 1.1 lukem }
473 1.1 lukem
474 1.1 lukem /*
475 1.1 lukem * Locate the insertion point for the code.
476 1.1 lukem */
477 1.1 lukem for (i = 0; i < *pdecomps_used && code > (*pdecomps)[i].code; i++) ;
478 1.1 lukem
479 1.1 lukem /*
480 1.1 lukem * Allocate space for a new decomposition.
481 1.1 lukem */
482 1.1 lukem if (*pdecomps_used == *pdecomps_size) {
483 1.1 lukem if (*pdecomps_size == 0)
484 1.1 lukem *pdecomps = (_decomp_t *) malloc(sizeof(_decomp_t) << 3);
485 1.1 lukem else
486 1.1 lukem *pdecomps = (_decomp_t *)
487 1.1 lukem realloc((char *) *pdecomps,
488 1.1 lukem sizeof(_decomp_t) * (*pdecomps_size + 8));
489 1.1 lukem (void) memset((char *) (*pdecomps + *pdecomps_size), '\0',
490 1.1 lukem sizeof(_decomp_t) << 3);
491 1.1 lukem *pdecomps_size += 8;
492 1.1 lukem }
493 1.1 lukem
494 1.1 lukem if (i < *pdecomps_used && code != (*pdecomps)[i].code) {
495 1.1 lukem /*
496 1.1 lukem * Shift the decomps up by one if the codes don't match.
497 1.1 lukem */
498 1.1 lukem for (j = *pdecomps_used; j > i; j--)
499 1.1 lukem (void) AC_MEMCPY((char *) &(*pdecomps)[j], (char *) &(*pdecomps)[j - 1],
500 1.1 lukem sizeof(_decomp_t));
501 1.1 lukem }
502 1.1 lukem
503 1.1 lukem /*
504 1.1 lukem * Insert or replace a decomposition.
505 1.1 lukem */
506 1.1 lukem size = dectmp_size + (4 - (dectmp_size & 3));
507 1.1 lukem if ((*pdecomps)[i].size < size) {
508 1.1 lukem if ((*pdecomps)[i].size == 0)
509 1.1 lukem (*pdecomps)[i].decomp = (ac_uint4 *)
510 1.1 lukem malloc(sizeof(ac_uint4) * size);
511 1.1 lukem else
512 1.1 lukem (*pdecomps)[i].decomp = (ac_uint4 *)
513 1.1 lukem realloc((char *) (*pdecomps)[i].decomp,
514 1.1 lukem sizeof(ac_uint4) * size);
515 1.1 lukem (*pdecomps)[i].size = size;
516 1.1 lukem }
517 1.1 lukem
518 1.1 lukem if ((*pdecomps)[i].code != code)
519 1.1 lukem (*pdecomps_used)++;
520 1.1 lukem
521 1.1 lukem (*pdecomps)[i].code = code;
522 1.1 lukem (*pdecomps)[i].used = dectmp_size;
523 1.1 lukem (void) AC_MEMCPY((char *) (*pdecomps)[i].decomp, (char *) dectmp,
524 1.1 lukem sizeof(ac_uint4) * dectmp_size);
525 1.1 lukem
526 1.1 lukem /*
527 1.1 lukem * NOTICE: This needs changing later so it is more general than simply
528 1.1 lukem * pairs. This calculation is done here to simplify allocation elsewhere.
529 1.1 lukem */
530 1.1 lukem if (!compat && dectmp_size == 2)
531 1.1 lukem comps_used++;
532 1.1 lukem }
533 1.1 lukem
534 1.1 lukem static void
535 1.1 lukem add_title(ac_uint4 code)
536 1.1 lukem {
537 1.1 lukem ac_uint4 i, j;
538 1.1 lukem
539 1.1 lukem /*
540 1.1 lukem * Always map the code to itself.
541 1.1 lukem */
542 1.1 lukem cases[2] = code;
543 1.1 lukem
544 1.1.1.6.4.1 martin /*
545 1.1.1.6.4.1 martin * If the upper case character is not present, then make it the same as
546 1.1.1.6.4.1 martin * the title case.
547 1.1.1.6.4.1 martin */
548 1.1.1.6.4.1 martin if (cases[0] == 0)
549 1.1.1.6.4.1 martin cases[0] = code;
550 1.1.1.6.4.1 martin
551 1.1 lukem if (title_used == title_size) {
552 1.1 lukem if (title_size == 0)
553 1.1 lukem title = (_case_t *) malloc(sizeof(_case_t) << 3);
554 1.1 lukem else
555 1.1 lukem title = (_case_t *) realloc((char *) title,
556 1.1 lukem sizeof(_case_t) * (title_size + 8));
557 1.1 lukem title_size += 8;
558 1.1 lukem }
559 1.1 lukem
560 1.1 lukem /*
561 1.1 lukem * Locate the insertion point.
562 1.1 lukem */
563 1.1 lukem for (i = 0; i < title_used && code > title[i].key; i++) ;
564 1.1 lukem
565 1.1 lukem if (i < title_used) {
566 1.1 lukem /*
567 1.1 lukem * Shift the array up by one.
568 1.1 lukem */
569 1.1 lukem for (j = title_used; j > i; j--)
570 1.1 lukem (void) AC_MEMCPY((char *) &title[j], (char *) &title[j - 1],
571 1.1 lukem sizeof(_case_t));
572 1.1 lukem }
573 1.1 lukem
574 1.1 lukem title[i].key = cases[2]; /* Title */
575 1.1 lukem title[i].other1 = cases[0]; /* Upper */
576 1.1 lukem title[i].other2 = cases[1]; /* Lower */
577 1.1 lukem
578 1.1 lukem title_used++;
579 1.1 lukem }
580 1.1 lukem
581 1.1 lukem static void
582 1.1 lukem add_upper(ac_uint4 code)
583 1.1 lukem {
584 1.1 lukem ac_uint4 i, j;
585 1.1 lukem
586 1.1 lukem /*
587 1.1 lukem * Always map the code to itself.
588 1.1 lukem */
589 1.1 lukem cases[0] = code;
590 1.1 lukem
591 1.1 lukem /*
592 1.1 lukem * If the title case character is not present, then make it the same as
593 1.1 lukem * the upper case.
594 1.1 lukem */
595 1.1 lukem if (cases[2] == 0)
596 1.1 lukem cases[2] = code;
597 1.1 lukem
598 1.1 lukem if (upper_used == upper_size) {
599 1.1 lukem if (upper_size == 0)
600 1.1 lukem upper = (_case_t *) malloc(sizeof(_case_t) << 3);
601 1.1 lukem else
602 1.1 lukem upper = (_case_t *) realloc((char *) upper,
603 1.1 lukem sizeof(_case_t) * (upper_size + 8));
604 1.1 lukem upper_size += 8;
605 1.1 lukem }
606 1.1 lukem
607 1.1 lukem /*
608 1.1 lukem * Locate the insertion point.
609 1.1 lukem */
610 1.1 lukem for (i = 0; i < upper_used && code > upper[i].key; i++) ;
611 1.1 lukem
612 1.1 lukem if (i < upper_used) {
613 1.1 lukem /*
614 1.1 lukem * Shift the array up by one.
615 1.1 lukem */
616 1.1 lukem for (j = upper_used; j > i; j--)
617 1.1 lukem (void) AC_MEMCPY((char *) &upper[j], (char *) &upper[j - 1],
618 1.1 lukem sizeof(_case_t));
619 1.1 lukem }
620 1.1 lukem
621 1.1 lukem upper[i].key = cases[0]; /* Upper */
622 1.1 lukem upper[i].other1 = cases[1]; /* Lower */
623 1.1 lukem upper[i].other2 = cases[2]; /* Title */
624 1.1 lukem
625 1.1 lukem upper_used++;
626 1.1 lukem }
627 1.1 lukem
628 1.1 lukem static void
629 1.1 lukem add_lower(ac_uint4 code)
630 1.1 lukem {
631 1.1 lukem ac_uint4 i, j;
632 1.1 lukem
633 1.1 lukem /*
634 1.1 lukem * Always map the code to itself.
635 1.1 lukem */
636 1.1 lukem cases[1] = code;
637 1.1 lukem
638 1.1 lukem /*
639 1.1 lukem * If the title case character is empty, then make it the same as the
640 1.1 lukem * upper case.
641 1.1 lukem */
642 1.1 lukem if (cases[2] == 0)
643 1.1 lukem cases[2] = cases[0];
644 1.1 lukem
645 1.1 lukem if (lower_used == lower_size) {
646 1.1 lukem if (lower_size == 0)
647 1.1 lukem lower = (_case_t *) malloc(sizeof(_case_t) << 3);
648 1.1 lukem else
649 1.1 lukem lower = (_case_t *) realloc((char *) lower,
650 1.1 lukem sizeof(_case_t) * (lower_size + 8));
651 1.1 lukem lower_size += 8;
652 1.1 lukem }
653 1.1 lukem
654 1.1 lukem /*
655 1.1 lukem * Locate the insertion point.
656 1.1 lukem */
657 1.1 lukem for (i = 0; i < lower_used && code > lower[i].key; i++) ;
658 1.1 lukem
659 1.1 lukem if (i < lower_used) {
660 1.1 lukem /*
661 1.1 lukem * Shift the array up by one.
662 1.1 lukem */
663 1.1 lukem for (j = lower_used; j > i; j--)
664 1.1 lukem (void) AC_MEMCPY((char *) &lower[j], (char *) &lower[j - 1],
665 1.1 lukem sizeof(_case_t));
666 1.1 lukem }
667 1.1 lukem
668 1.1 lukem lower[i].key = cases[1]; /* Lower */
669 1.1 lukem lower[i].other1 = cases[0]; /* Upper */
670 1.1 lukem lower[i].other2 = cases[2]; /* Title */
671 1.1 lukem
672 1.1 lukem lower_used++;
673 1.1 lukem }
674 1.1 lukem
675 1.1 lukem static void
676 1.1 lukem ordered_ccl_insert(ac_uint4 c, ac_uint4 ccl_code)
677 1.1 lukem {
678 1.1 lukem ac_uint4 i, j;
679 1.1 lukem
680 1.1 lukem if (ccl_used == ccl_size) {
681 1.1 lukem if (ccl_size == 0)
682 1.1 lukem ccl = (ac_uint4 *) malloc(sizeof(ac_uint4) * 24);
683 1.1 lukem else
684 1.1 lukem ccl = (ac_uint4 *)
685 1.1 lukem realloc((char *) ccl, sizeof(ac_uint4) * (ccl_size + 24));
686 1.1 lukem ccl_size += 24;
687 1.1 lukem }
688 1.1 lukem
689 1.1 lukem /*
690 1.1 lukem * Optimize adding the first item.
691 1.1 lukem */
692 1.1 lukem if (ccl_used == 0) {
693 1.1 lukem ccl[0] = ccl[1] = c;
694 1.1 lukem ccl[2] = ccl_code;
695 1.1 lukem ccl_used += 3;
696 1.1 lukem return;
697 1.1 lukem }
698 1.1 lukem
699 1.1 lukem /*
700 1.1 lukem * Handle the special case of extending the range on the end. This
701 1.1 lukem * requires that the combining class codes are the same.
702 1.1 lukem */
703 1.1 lukem if (ccl_code == ccl[ccl_used - 1] && c == ccl[ccl_used - 2] + 1) {
704 1.1 lukem ccl[ccl_used - 2] = c;
705 1.1 lukem return;
706 1.1 lukem }
707 1.1 lukem
708 1.1 lukem /*
709 1.1 lukem * Handle the special case of adding another range on the end.
710 1.1 lukem */
711 1.1 lukem if (c > ccl[ccl_used - 2] + 1 ||
712 1.1 lukem (c == ccl[ccl_used - 2] + 1 && ccl_code != ccl[ccl_used - 1])) {
713 1.1 lukem ccl[ccl_used++] = c;
714 1.1 lukem ccl[ccl_used++] = c;
715 1.1 lukem ccl[ccl_used++] = ccl_code;
716 1.1 lukem return;
717 1.1 lukem }
718 1.1 lukem
719 1.1 lukem /*
720 1.1 lukem * Locate either the insertion point or range for the code.
721 1.1 lukem */
722 1.1 lukem for (i = 0; i < ccl_used && c > ccl[i + 1] + 1; i += 3) ;
723 1.1 lukem
724 1.1 lukem if (ccl_code == ccl[i + 2] && c == ccl[i + 1] + 1) {
725 1.1 lukem /*
726 1.1 lukem * Extend an existing range.
727 1.1 lukem */
728 1.1 lukem ccl[i + 1] = c;
729 1.1 lukem return;
730 1.1 lukem } else if (c < ccl[i]) {
731 1.1 lukem /*
732 1.1 lukem * Start a new range before the current location.
733 1.1 lukem */
734 1.1 lukem for (j = ccl_used; j > i; j -= 3) {
735 1.1 lukem ccl[j] = ccl[j - 3];
736 1.1 lukem ccl[j - 1] = ccl[j - 4];
737 1.1 lukem ccl[j - 2] = ccl[j - 5];
738 1.1 lukem }
739 1.1 lukem ccl[i] = ccl[i + 1] = c;
740 1.1 lukem ccl[i + 2] = ccl_code;
741 1.1 lukem }
742 1.1 lukem }
743 1.1 lukem
744 1.1 lukem /*
745 1.1 lukem * Adds a number if it does not already exist and returns an index value
746 1.1 lukem * multiplied by 2.
747 1.1 lukem */
748 1.1 lukem static ac_uint4
749 1.1 lukem make_number(short num, short denom)
750 1.1 lukem {
751 1.1 lukem ac_uint4 n;
752 1.1 lukem
753 1.1 lukem /*
754 1.1 lukem * Determine if the number already exists.
755 1.1 lukem */
756 1.1 lukem for (n = 0; n < nums_used; n++) {
757 1.1 lukem if (nums[n].numerator == num && nums[n].denominator == denom)
758 1.1 lukem return n << 1;
759 1.1 lukem }
760 1.1 lukem
761 1.1 lukem if (nums_used == nums_size) {
762 1.1 lukem if (nums_size == 0)
763 1.1 lukem nums = (_num_t *) malloc(sizeof(_num_t) << 3);
764 1.1 lukem else
765 1.1 lukem nums = (_num_t *) realloc((char *) nums,
766 1.1 lukem sizeof(_num_t) * (nums_size + 8));
767 1.1 lukem nums_size += 8;
768 1.1 lukem }
769 1.1 lukem
770 1.1 lukem n = nums_used++;
771 1.1 lukem nums[n].numerator = num;
772 1.1 lukem nums[n].denominator = denom;
773 1.1 lukem
774 1.1 lukem return n << 1;
775 1.1 lukem }
776 1.1 lukem
777 1.1 lukem static void
778 1.1 lukem add_number(ac_uint4 code, short num, short denom)
779 1.1 lukem {
780 1.1 lukem ac_uint4 i, j;
781 1.1 lukem
782 1.1 lukem /*
783 1.1 lukem * Insert the code in order.
784 1.1 lukem */
785 1.1 lukem for (i = 0; i < ncodes_used && code > ncodes[i].code; i++) ;
786 1.1 lukem
787 1.1 lukem /*
788 1.1 lukem * Handle the case of the codes matching and simply replace the number
789 1.1 lukem * that was there before.
790 1.1 lukem */
791 1.1 lukem if (i < ncodes_used && code == ncodes[i].code) {
792 1.1 lukem ncodes[i].idx = make_number(num, denom);
793 1.1 lukem return;
794 1.1 lukem }
795 1.1 lukem
796 1.1 lukem /*
797 1.1 lukem * Resize the array if necessary.
798 1.1 lukem */
799 1.1 lukem if (ncodes_used == ncodes_size) {
800 1.1 lukem if (ncodes_size == 0)
801 1.1 lukem ncodes = (_codeidx_t *) malloc(sizeof(_codeidx_t) << 3);
802 1.1 lukem else
803 1.1 lukem ncodes = (_codeidx_t *)
804 1.1 lukem realloc((char *) ncodes, sizeof(_codeidx_t) * (ncodes_size + 8));
805 1.1 lukem
806 1.1 lukem ncodes_size += 8;
807 1.1 lukem }
808 1.1 lukem
809 1.1 lukem /*
810 1.1 lukem * Shift things around to insert the code if necessary.
811 1.1 lukem */
812 1.1 lukem if (i < ncodes_used) {
813 1.1 lukem for (j = ncodes_used; j > i; j--) {
814 1.1 lukem ncodes[j].code = ncodes[j - 1].code;
815 1.1 lukem ncodes[j].idx = ncodes[j - 1].idx;
816 1.1 lukem }
817 1.1 lukem }
818 1.1 lukem ncodes[i].code = code;
819 1.1 lukem ncodes[i].idx = make_number(num, denom);
820 1.1 lukem
821 1.1 lukem ncodes_used++;
822 1.1 lukem }
823 1.1 lukem
824 1.1 lukem /*
825 1.1 lukem * This routine assumes that the line is a valid Unicode Character Database
826 1.1 lukem * entry.
827 1.1 lukem */
828 1.1 lukem static void
829 1.1 lukem read_cdata(FILE *in)
830 1.1 lukem {
831 1.1 lukem ac_uint4 i, lineno, skip, code, ccl_code;
832 1.1 lukem short wnum, neg, number[2], compat;
833 1.1.1.6.4.1 martin char line[512], *s, *e, *first_prop;
834 1.1 lukem
835 1.1 lukem lineno = skip = 0;
836 1.1 lukem while (fgets(line, sizeof(line), in)) {
837 1.1 lukem if( (s=strchr(line, '\n')) ) *s = '\0';
838 1.1 lukem lineno++;
839 1.1 lukem
840 1.1 lukem /*
841 1.1 lukem * Skip blank lines and lines that start with a '#'.
842 1.1 lukem */
843 1.1 lukem if (line[0] == 0 || line[0] == '#')
844 1.1 lukem continue;
845 1.1 lukem
846 1.1 lukem /*
847 1.1 lukem * If lines need to be skipped, do it here.
848 1.1 lukem */
849 1.1 lukem if (skip) {
850 1.1 lukem skip--;
851 1.1 lukem continue;
852 1.1 lukem }
853 1.1 lukem
854 1.1 lukem /*
855 1.1 lukem * Collect the code. The code can be up to 6 hex digits in length to
856 1.1 lukem * allow surrogates to be specified.
857 1.1 lukem */
858 1.1 lukem for (s = line, i = code = 0; *s != ';' && i < 6; i++, s++) {
859 1.1 lukem code <<= 4;
860 1.1 lukem if (*s >= '0' && *s <= '9')
861 1.1 lukem code += *s - '0';
862 1.1 lukem else if (*s >= 'A' && *s <= 'F')
863 1.1 lukem code += (*s - 'A') + 10;
864 1.1 lukem else if (*s >= 'a' && *s <= 'f')
865 1.1 lukem code += (*s - 'a') + 10;
866 1.1 lukem }
867 1.1 lukem
868 1.1 lukem /*
869 1.1 lukem * Handle the following special cases:
870 1.1 lukem * 1. 4E00-9FA5 CJK Ideographs.
871 1.1 lukem * 2. AC00-D7A3 Hangul Syllables.
872 1.1 lukem * 3. D800-DFFF Surrogates.
873 1.1 lukem * 4. E000-F8FF Private Use Area.
874 1.1 lukem * 5. F900-FA2D Han compatibility.
875 1.1 lukem * ...Plus additional ranges in newer Unicode versions...
876 1.1 lukem */
877 1.1 lukem switch (code) {
878 1.1 lukem case 0x3400:
879 1.1 lukem /* CJK Ideograph Extension A */
880 1.1 lukem add_range(0x3400, 0x4db5, "Lo", "L");
881 1.1 lukem
882 1.1 lukem add_range(0x3400, 0x4db5, "Cp", 0);
883 1.1 lukem
884 1.1 lukem skip = 1;
885 1.1 lukem break;
886 1.1 lukem case 0x4e00:
887 1.1 lukem /*
888 1.1 lukem * The Han ideographs.
889 1.1 lukem */
890 1.1 lukem add_range(0x4e00, 0x9fff, "Lo", "L");
891 1.1 lukem
892 1.1 lukem /*
893 1.1 lukem * Add the characters to the defined category.
894 1.1 lukem */
895 1.1 lukem add_range(0x4e00, 0x9fa5, "Cp", 0);
896 1.1 lukem
897 1.1 lukem skip = 1;
898 1.1 lukem break;
899 1.1 lukem case 0xac00:
900 1.1 lukem /*
901 1.1 lukem * The Hangul syllables.
902 1.1 lukem */
903 1.1 lukem add_range(0xac00, 0xd7a3, "Lo", "L");
904 1.1 lukem
905 1.1 lukem /*
906 1.1 lukem * Add the characters to the defined category.
907 1.1 lukem */
908 1.1 lukem add_range(0xac00, 0xd7a3, "Cp", 0);
909 1.1 lukem
910 1.1 lukem skip = 1;
911 1.1 lukem break;
912 1.1 lukem case 0xd800:
913 1.1 lukem /*
914 1.1 lukem * Make a range of all surrogates and assume some default
915 1.1 lukem * properties.
916 1.1 lukem */
917 1.1 lukem add_range(0x010000, 0x10ffff, "Cs", "L");
918 1.1 lukem skip = 5;
919 1.1 lukem break;
920 1.1 lukem case 0xe000:
921 1.1 lukem /*
922 1.1 lukem * The Private Use area. Add with a default set of properties.
923 1.1 lukem */
924 1.1 lukem add_range(0xe000, 0xf8ff, "Co", "L");
925 1.1 lukem skip = 1;
926 1.1 lukem break;
927 1.1 lukem case 0xf900:
928 1.1 lukem /*
929 1.1 lukem * The CJK compatibility area.
930 1.1 lukem */
931 1.1 lukem add_range(0xf900, 0xfaff, "Lo", "L");
932 1.1 lukem
933 1.1 lukem /*
934 1.1 lukem * Add the characters to the defined category.
935 1.1 lukem */
936 1.1 lukem add_range(0xf900, 0xfaff, "Cp", 0);
937 1.1 lukem
938 1.1 lukem skip = 1;
939 1.1 lukem break;
940 1.1 lukem case 0x20000:
941 1.1 lukem /* CJK Ideograph Extension B */
942 1.1 lukem add_range(0x20000, 0x2a6d6, "Lo", "L");
943 1.1 lukem
944 1.1 lukem add_range(0x20000, 0x2a6d6, "Cp", 0);
945 1.1 lukem
946 1.1 lukem skip = 1;
947 1.1 lukem break;
948 1.1 lukem case 0xf0000:
949 1.1 lukem /* Plane 15 private use */
950 1.1 lukem add_range(0xf0000, 0xffffd, "Co", "L");
951 1.1 lukem skip = 1;
952 1.1 lukem break;
953 1.1 lukem
954 1.1 lukem case 0x100000:
955 1.1 lukem /* Plane 16 private use */
956 1.1 lukem add_range(0x100000, 0x10fffd, "Co", "L");
957 1.1 lukem skip = 1;
958 1.1 lukem break;
959 1.1 lukem }
960 1.1 lukem
961 1.1 lukem if (skip)
962 1.1 lukem continue;
963 1.1 lukem
964 1.1 lukem /*
965 1.1 lukem * Add the code to the defined category.
966 1.1 lukem */
967 1.1 lukem ordered_range_insert(code, "Cp", 2);
968 1.1 lukem
969 1.1 lukem /*
970 1.1 lukem * Locate the first character property field.
971 1.1 lukem */
972 1.1 lukem for (i = 0; *s != 0 && i < 2; s++) {
973 1.1 lukem if (*s == ';')
974 1.1 lukem i++;
975 1.1 lukem }
976 1.1 lukem for (e = s; *e && *e != ';'; e++) ;
977 1.1.1.6.4.1 martin
978 1.1.1.6.4.1 martin first_prop = s;
979 1.1 lukem
980 1.1 lukem ordered_range_insert(code, s, e - s);
981 1.1 lukem
982 1.1 lukem /*
983 1.1 lukem * Locate the combining class code.
984 1.1 lukem */
985 1.1 lukem for (s = e; *s != 0 && i < 3; s++) {
986 1.1 lukem if (*s == ';')
987 1.1 lukem i++;
988 1.1 lukem }
989 1.1 lukem
990 1.1 lukem /*
991 1.1 lukem * Convert the combining class code from decimal.
992 1.1 lukem */
993 1.1 lukem for (ccl_code = 0, e = s; *e && *e != ';'; e++)
994 1.1 lukem ccl_code = (ccl_code * 10) + (*e - '0');
995 1.1 lukem
996 1.1 lukem /*
997 1.1 lukem * Add the code if it not 0.
998 1.1 lukem */
999 1.1 lukem if (ccl_code != 0)
1000 1.1 lukem ordered_ccl_insert(code, ccl_code);
1001 1.1 lukem
1002 1.1 lukem /*
1003 1.1 lukem * Locate the second character property field.
1004 1.1 lukem */
1005 1.1 lukem for (s = e; *s != 0 && i < 4; s++) {
1006 1.1 lukem if (*s == ';')
1007 1.1 lukem i++;
1008 1.1 lukem }
1009 1.1 lukem for (e = s; *e && *e != ';'; e++) ;
1010 1.1 lukem
1011 1.1 lukem ordered_range_insert(code, s, e - s);
1012 1.1 lukem
1013 1.1 lukem /*
1014 1.1 lukem * Check for a decomposition.
1015 1.1 lukem */
1016 1.1 lukem s = ++e;
1017 1.1 lukem if (*s != ';') {
1018 1.1 lukem compat = *s == '<';
1019 1.1 lukem if (compat) {
1020 1.1 lukem /*
1021 1.1 lukem * Skip compatibility formatting tag.
1022 1.1 lukem */
1023 1.1 lukem while (*s++ != '>');
1024 1.1 lukem }
1025 1.1 lukem /*
1026 1.1 lukem * Collect the codes of the decomposition.
1027 1.1 lukem */
1028 1.1 lukem for (dectmp_size = 0; *s != ';'; ) {
1029 1.1 lukem /*
1030 1.1 lukem * Skip all leading non-hex digits.
1031 1.1 lukem */
1032 1.1 lukem while (!ishdigit(*s))
1033 1.1 lukem s++;
1034 1.1 lukem
1035 1.1 lukem for (dectmp[dectmp_size] = 0; ishdigit(*s); s++) {
1036 1.1 lukem dectmp[dectmp_size] <<= 4;
1037 1.1 lukem if (*s >= '0' && *s <= '9')
1038 1.1 lukem dectmp[dectmp_size] += *s - '0';
1039 1.1 lukem else if (*s >= 'A' && *s <= 'F')
1040 1.1 lukem dectmp[dectmp_size] += (*s - 'A') + 10;
1041 1.1 lukem else if (*s >= 'a' && *s <= 'f')
1042 1.1 lukem dectmp[dectmp_size] += (*s - 'a') + 10;
1043 1.1 lukem }
1044 1.1 lukem dectmp_size++;
1045 1.1 lukem }
1046 1.1 lukem
1047 1.1 lukem /*
1048 1.1 lukem * If there are any codes in the temporary decomposition array,
1049 1.1 lukem * then add the character with its decomposition.
1050 1.1 lukem */
1051 1.1 lukem if (dectmp_size > 0) {
1052 1.1 lukem if (!compat) {
1053 1.1 lukem add_decomp(code, 0);
1054 1.1 lukem }
1055 1.1 lukem add_decomp(code, 1);
1056 1.1 lukem }
1057 1.1 lukem }
1058 1.1 lukem
1059 1.1 lukem /*
1060 1.1 lukem * Skip to the number field.
1061 1.1 lukem */
1062 1.1 lukem for (i = 0; i < 3 && *s; s++) {
1063 1.1 lukem if (*s == ';')
1064 1.1 lukem i++;
1065 1.1 lukem }
1066 1.1 lukem
1067 1.1 lukem /*
1068 1.1 lukem * Scan the number in.
1069 1.1 lukem */
1070 1.1 lukem number[0] = number[1] = 0;
1071 1.1 lukem for (e = s, neg = wnum = 0; *e && *e != ';'; e++) {
1072 1.1 lukem if (*e == '-') {
1073 1.1 lukem neg = 1;
1074 1.1 lukem continue;
1075 1.1 lukem }
1076 1.1 lukem
1077 1.1 lukem if (*e == '/') {
1078 1.1 lukem /*
1079 1.1 lukem * Move the the denominator of the fraction.
1080 1.1 lukem */
1081 1.1 lukem if (neg)
1082 1.1 lukem number[wnum] *= -1;
1083 1.1 lukem neg = 0;
1084 1.1 lukem e++;
1085 1.1 lukem wnum++;
1086 1.1 lukem }
1087 1.1 lukem number[wnum] = (number[wnum] * 10) + (*e - '0');
1088 1.1 lukem }
1089 1.1 lukem
1090 1.1 lukem if (e > s) {
1091 1.1 lukem /*
1092 1.1 lukem * Adjust the denominator in case of integers and add the number.
1093 1.1 lukem */
1094 1.1 lukem if (wnum == 0)
1095 1.1 lukem number[1] = 1;
1096 1.1 lukem
1097 1.1 lukem add_number(code, number[0], number[1]);
1098 1.1 lukem }
1099 1.1 lukem
1100 1.1 lukem /*
1101 1.1 lukem * Skip to the start of the possible case mappings.
1102 1.1 lukem */
1103 1.1 lukem for (s = e, i = 0; i < 4 && *s; s++) {
1104 1.1 lukem if (*s == ';')
1105 1.1 lukem i++;
1106 1.1 lukem }
1107 1.1 lukem
1108 1.1 lukem /*
1109 1.1 lukem * Collect the case mappings.
1110 1.1 lukem */
1111 1.1 lukem cases[0] = cases[1] = cases[2] = 0;
1112 1.1 lukem for (i = 0; i < 3; i++) {
1113 1.1 lukem while (ishdigit(*s)) {
1114 1.1 lukem cases[i] <<= 4;
1115 1.1 lukem if (*s >= '0' && *s <= '9')
1116 1.1 lukem cases[i] += *s - '0';
1117 1.1 lukem else if (*s >= 'A' && *s <= 'F')
1118 1.1 lukem cases[i] += (*s - 'A') + 10;
1119 1.1 lukem else if (*s >= 'a' && *s <= 'f')
1120 1.1 lukem cases[i] += (*s - 'a') + 10;
1121 1.1 lukem s++;
1122 1.1 lukem }
1123 1.1 lukem if (*s == ';')
1124 1.1 lukem s++;
1125 1.1 lukem }
1126 1.1.1.6.4.1 martin if (!strncmp(first_prop,"Lt",2) && (cases[0] || cases[1]))
1127 1.1 lukem /*
1128 1.1 lukem * Add the upper and lower mappings for a title case character.
1129 1.1 lukem */
1130 1.1 lukem add_title(code);
1131 1.1 lukem else if (cases[1])
1132 1.1 lukem /*
1133 1.1 lukem * Add the lower and title case mappings for the upper case
1134 1.1 lukem * character.
1135 1.1 lukem */
1136 1.1 lukem add_upper(code);
1137 1.1 lukem else if (cases[0])
1138 1.1 lukem /*
1139 1.1 lukem * Add the upper and title case mappings for the lower case
1140 1.1 lukem * character.
1141 1.1 lukem */
1142 1.1 lukem add_lower(code);
1143 1.1 lukem }
1144 1.1 lukem }
1145 1.1 lukem
1146 1.1 lukem static _decomp_t *
1147 1.1 lukem find_decomp(ac_uint4 code, short compat)
1148 1.1 lukem {
1149 1.1 lukem long l, r, m;
1150 1.1 lukem _decomp_t *decs;
1151 1.1 lukem
1152 1.1 lukem l = 0;
1153 1.1 lukem r = (compat ? kdecomps_used : decomps_used) - 1;
1154 1.1 lukem decs = compat ? kdecomps : decomps;
1155 1.1 lukem while (l <= r) {
1156 1.1 lukem m = (l + r) >> 1;
1157 1.1 lukem if (code > decs[m].code)
1158 1.1 lukem l = m + 1;
1159 1.1 lukem else if (code < decs[m].code)
1160 1.1 lukem r = m - 1;
1161 1.1 lukem else
1162 1.1 lukem return &decs[m];
1163 1.1 lukem }
1164 1.1 lukem return 0;
1165 1.1 lukem }
1166 1.1 lukem
1167 1.1 lukem static void
1168 1.1 lukem decomp_it(_decomp_t *d, short compat)
1169 1.1 lukem {
1170 1.1 lukem ac_uint4 i;
1171 1.1 lukem _decomp_t *dp;
1172 1.1 lukem
1173 1.1 lukem for (i = 0; i < d->used; i++) {
1174 1.1 lukem if ((dp = find_decomp(d->decomp[i], compat)) != 0)
1175 1.1 lukem decomp_it(dp, compat);
1176 1.1 lukem else
1177 1.1 lukem dectmp[dectmp_size++] = d->decomp[i];
1178 1.1 lukem }
1179 1.1 lukem }
1180 1.1 lukem
1181 1.1 lukem /*
1182 1.1 lukem * Expand all decompositions by recursively decomposing each character
1183 1.1 lukem * in the decomposition.
1184 1.1 lukem */
1185 1.1 lukem static void
1186 1.1 lukem expand_decomp(void)
1187 1.1 lukem {
1188 1.1 lukem ac_uint4 i;
1189 1.1 lukem
1190 1.1 lukem for (i = 0; i < decomps_used; i++) {
1191 1.1 lukem dectmp_size = 0;
1192 1.1 lukem decomp_it(&decomps[i], 0);
1193 1.1 lukem if (dectmp_size > 0)
1194 1.1 lukem add_decomp(decomps[i].code, 0);
1195 1.1 lukem }
1196 1.1 lukem
1197 1.1 lukem for (i = 0; i < kdecomps_used; i++) {
1198 1.1 lukem dectmp_size = 0;
1199 1.1 lukem decomp_it(&kdecomps[i], 1);
1200 1.1 lukem if (dectmp_size > 0)
1201 1.1 lukem add_decomp(kdecomps[i].code, 1);
1202 1.1 lukem }
1203 1.1 lukem }
1204 1.1 lukem
1205 1.1 lukem static int
1206 1.1 lukem cmpcomps(const void *v_comp1, const void *v_comp2)
1207 1.1 lukem {
1208 1.1 lukem const _comp_t *comp1 = v_comp1, *comp2 = v_comp2;
1209 1.1 lukem long diff = comp1->code1 - comp2->code1;
1210 1.1 lukem
1211 1.1 lukem if (!diff)
1212 1.1 lukem diff = comp1->code2 - comp2->code2;
1213 1.1 lukem return (int) diff;
1214 1.1 lukem }
1215 1.1 lukem
1216 1.1 lukem /*
1217 1.1 lukem * Load composition exclusion data
1218 1.1 lukem */
1219 1.1 lukem static void
1220 1.1 lukem read_compexdata(FILE *in)
1221 1.1 lukem {
1222 1.1 lukem ac_uint2 i;
1223 1.1 lukem ac_uint4 code;
1224 1.1 lukem char line[512], *s;
1225 1.1 lukem
1226 1.1 lukem (void) memset((char *) compexs, 0, sizeof(compexs));
1227 1.1 lukem
1228 1.1 lukem while (fgets(line, sizeof(line), in)) {
1229 1.1 lukem if( (s=strchr(line, '\n')) ) *s = '\0';
1230 1.1 lukem /*
1231 1.1 lukem * Skip blank lines and lines that start with a '#'.
1232 1.1 lukem */
1233 1.1 lukem if (line[0] == 0 || line[0] == '#')
1234 1.1 lukem continue;
1235 1.1 lukem
1236 1.1 lukem /*
1237 1.1 lukem * Collect the code. Assume max 6 digits
1238 1.1 lukem */
1239 1.1 lukem
1240 1.1 lukem for (s = line, i = code = 0; *s != '#' && i < 6; i++, s++) {
1241 1.1 lukem if (isspace((unsigned char)*s)) break;
1242 1.1 lukem code <<= 4;
1243 1.1 lukem if (*s >= '0' && *s <= '9')
1244 1.1 lukem code += *s - '0';
1245 1.1 lukem else if (*s >= 'A' && *s <= 'F')
1246 1.1 lukem code += (*s - 'A') + 10;
1247 1.1 lukem else if (*s >= 'a' && *s <= 'f')
1248 1.1 lukem code += (*s - 'a') + 10;
1249 1.1 lukem }
1250 1.1 lukem COMPEX_SET(code);
1251 1.1 lukem }
1252 1.1 lukem }
1253 1.1 lukem
1254 1.1 lukem /*
1255 1.1 lukem * Creates array of compositions from decomposition array
1256 1.1 lukem */
1257 1.1 lukem static void
1258 1.1 lukem create_comps(void)
1259 1.1 lukem {
1260 1.1 lukem ac_uint4 i, cu;
1261 1.1 lukem
1262 1.1 lukem comps = (_comp_t *) malloc(comps_used * sizeof(_comp_t));
1263 1.1 lukem
1264 1.1 lukem for (i = cu = 0; i < decomps_used; i++) {
1265 1.1 lukem if (decomps[i].used != 2 || COMPEX_TEST(decomps[i].code))
1266 1.1 lukem continue;
1267 1.1 lukem comps[cu].comp = decomps[i].code;
1268 1.1 lukem comps[cu].count = 2;
1269 1.1 lukem comps[cu].code1 = decomps[i].decomp[0];
1270 1.1 lukem comps[cu].code2 = decomps[i].decomp[1];
1271 1.1 lukem cu++;
1272 1.1 lukem }
1273 1.1 lukem comps_used = cu;
1274 1.1 lukem qsort(comps, comps_used, sizeof(_comp_t), cmpcomps);
1275 1.1 lukem }
1276 1.1 lukem
1277 1.1 lukem #if HARDCODE_DATA
1278 1.1 lukem static void
1279 1.1 lukem write_case(FILE *out, _case_t *tab, int num, int first)
1280 1.1 lukem {
1281 1.1 lukem int i;
1282 1.1 lukem
1283 1.1 lukem for (i=0; i<num; i++) {
1284 1.1 lukem if (first) first = 0;
1285 1.1 lukem else fprintf(out, ",");
1286 1.1 lukem fprintf(out, "\n\t0x%08lx, 0x%08lx, 0x%08lx",
1287 1.1 lukem (unsigned long) tab[i].key, (unsigned long) tab[i].other1,
1288 1.1 lukem (unsigned long) tab[i].other2);
1289 1.1 lukem }
1290 1.1 lukem }
1291 1.1 lukem
1292 1.1 lukem #define PREF "static const "
1293 1.1 lukem
1294 1.1 lukem #endif
1295 1.1 lukem
1296 1.1 lukem static void
1297 1.1 lukem write_cdata(char *opath)
1298 1.1 lukem {
1299 1.1 lukem FILE *out;
1300 1.1 lukem ac_uint4 bytes;
1301 1.1 lukem ac_uint4 i, idx, nprops;
1302 1.1 lukem #if !(HARDCODE_DATA)
1303 1.1 lukem ac_uint2 casecnt[2];
1304 1.1 lukem #endif
1305 1.1 lukem char path[BUFSIZ];
1306 1.1 lukem #if HARDCODE_DATA
1307 1.1 lukem int j, k;
1308 1.1 lukem
1309 1.1 lukem /*****************************************************************
1310 1.1 lukem *
1311 1.1 lukem * Generate the ctype data.
1312 1.1 lukem *
1313 1.1 lukem *****************************************************************/
1314 1.1 lukem
1315 1.1 lukem /*
1316 1.1 lukem * Open the output file.
1317 1.1 lukem */
1318 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "uctable.h", opath);
1319 1.1 lukem if ((out = fopen(path, "w")) == 0)
1320 1.1 lukem return;
1321 1.1 lukem #else
1322 1.1 lukem /*
1323 1.1 lukem * Open the ctype.dat file.
1324 1.1 lukem */
1325 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "ctype.dat", opath);
1326 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1327 1.1 lukem return;
1328 1.1 lukem #endif
1329 1.1 lukem
1330 1.1 lukem /*
1331 1.1 lukem * Collect the offsets for the properties. The offsets array is
1332 1.1 lukem * on a 4-byte boundary to keep things efficient for architectures
1333 1.1 lukem * that need such a thing.
1334 1.1 lukem */
1335 1.1 lukem for (i = idx = 0; i < NUMPROPS; i++) {
1336 1.1 lukem propcnt[i] = (proptbl[i].used != 0) ? idx : 0xffff;
1337 1.1 lukem idx += proptbl[i].used;
1338 1.1 lukem }
1339 1.1 lukem
1340 1.1 lukem /*
1341 1.1 lukem * Add the sentinel index which is used by the binary search as the upper
1342 1.1 lukem * bound for a search.
1343 1.1 lukem */
1344 1.1 lukem propcnt[i] = idx;
1345 1.1 lukem
1346 1.1 lukem /*
1347 1.1 lukem * Record the actual number of property lists. This may be different than
1348 1.1 lukem * the number of offsets actually written because of aligning on a 4-byte
1349 1.1 lukem * boundary.
1350 1.1 lukem */
1351 1.1 lukem hdr[1] = NUMPROPS;
1352 1.1 lukem
1353 1.1 lukem /*
1354 1.1 lukem * Calculate the byte count needed and pad the property counts array to a
1355 1.1 lukem * 4-byte boundary.
1356 1.1 lukem */
1357 1.1 lukem if ((bytes = sizeof(ac_uint2) * (NUMPROPS + 1)) & 3)
1358 1.1 lukem bytes += 4 - (bytes & 3);
1359 1.1 lukem nprops = bytes / sizeof(ac_uint2);
1360 1.1 lukem bytes += sizeof(ac_uint4) * idx;
1361 1.1 lukem
1362 1.1 lukem #if HARDCODE_DATA
1363 1.1 lukem fprintf(out, PREF "ac_uint4 _ucprop_size = %d;\n\n", NUMPROPS);
1364 1.1 lukem
1365 1.1 lukem fprintf(out, PREF "ac_uint2 _ucprop_offsets[] = {");
1366 1.1 lukem
1367 1.1 lukem for (i = 0; i<nprops; i++) {
1368 1.1 lukem if (i) fprintf(out, ",");
1369 1.1 lukem if (!(i&7)) fprintf(out, "\n\t");
1370 1.1 lukem else fprintf(out, " ");
1371 1.1 lukem fprintf(out, "0x%04x", propcnt[i]);
1372 1.1 lukem }
1373 1.1 lukem fprintf(out, "\n};\n\n");
1374 1.1 lukem
1375 1.1 lukem fprintf(out, PREF "ac_uint4 _ucprop_ranges[] = {");
1376 1.1 lukem
1377 1.1 lukem k = 0;
1378 1.1 lukem for (i = 0; i < NUMPROPS; i++) {
1379 1.1 lukem if (proptbl[i].used > 0) {
1380 1.1 lukem for (j=0; j<proptbl[i].used; j++) {
1381 1.1 lukem if (k) fprintf(out, ",");
1382 1.1 lukem if (!(k&3)) fprintf(out,"\n\t");
1383 1.1 lukem else fprintf(out, " ");
1384 1.1 lukem k++;
1385 1.1 lukem fprintf(out, "0x%08lx", (unsigned long) proptbl[i].ranges[j]);
1386 1.1 lukem }
1387 1.1 lukem }
1388 1.1 lukem }
1389 1.1 lukem fprintf(out, "\n};\n\n");
1390 1.1 lukem #else
1391 1.1 lukem /*
1392 1.1 lukem * Write the header.
1393 1.1 lukem */
1394 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1395 1.1 lukem
1396 1.1 lukem /*
1397 1.1 lukem * Write the byte count.
1398 1.1 lukem */
1399 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1400 1.1 lukem
1401 1.1 lukem /*
1402 1.1 lukem * Write the property list counts.
1403 1.1 lukem */
1404 1.1 lukem fwrite((char *) propcnt, sizeof(ac_uint2), nprops, out);
1405 1.1 lukem
1406 1.1 lukem /*
1407 1.1 lukem * Write the property lists.
1408 1.1 lukem */
1409 1.1 lukem for (i = 0; i < NUMPROPS; i++) {
1410 1.1 lukem if (proptbl[i].used > 0)
1411 1.1 lukem fwrite((char *) proptbl[i].ranges, sizeof(ac_uint4),
1412 1.1 lukem proptbl[i].used, out);
1413 1.1 lukem }
1414 1.1 lukem
1415 1.1 lukem fclose(out);
1416 1.1 lukem #endif
1417 1.1 lukem
1418 1.1 lukem /*****************************************************************
1419 1.1 lukem *
1420 1.1 lukem * Generate the case mapping data.
1421 1.1 lukem *
1422 1.1 lukem *****************************************************************/
1423 1.1 lukem
1424 1.1 lukem #if HARDCODE_DATA
1425 1.1 lukem fprintf(out, PREF "ac_uint4 _uccase_size = %ld;\n\n",
1426 1.1 lukem (long) (upper_used + lower_used + title_used));
1427 1.1 lukem
1428 1.1 lukem fprintf(out, PREF "ac_uint2 _uccase_len[2] = {%ld, %ld};\n\n",
1429 1.1 lukem (long) upper_used, (long) lower_used);
1430 1.1 lukem fprintf(out, PREF "ac_uint4 _uccase_map[] = {");
1431 1.1 lukem
1432 1.1 lukem if (upper_used > 0)
1433 1.1 lukem /*
1434 1.1 lukem * Write the upper case table.
1435 1.1 lukem */
1436 1.1 lukem write_case(out, upper, upper_used, 1);
1437 1.1 lukem
1438 1.1 lukem if (lower_used > 0)
1439 1.1 lukem /*
1440 1.1 lukem * Write the lower case table.
1441 1.1 lukem */
1442 1.1 lukem write_case(out, lower, lower_used, !upper_used);
1443 1.1 lukem
1444 1.1 lukem if (title_used > 0)
1445 1.1 lukem /*
1446 1.1 lukem * Write the title case table.
1447 1.1 lukem */
1448 1.1 lukem write_case(out, title, title_used, !(upper_used||lower_used));
1449 1.1 lukem
1450 1.1 lukem if (!(upper_used || lower_used || title_used))
1451 1.1 lukem fprintf(out, "\t0");
1452 1.1 lukem
1453 1.1 lukem fprintf(out, "\n};\n\n");
1454 1.1 lukem #else
1455 1.1 lukem /*
1456 1.1 lukem * Open the case.dat file.
1457 1.1 lukem */
1458 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "case.dat", opath);
1459 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1460 1.1 lukem return;
1461 1.1 lukem
1462 1.1 lukem /*
1463 1.1 lukem * Write the case mapping tables.
1464 1.1 lukem */
1465 1.1 lukem hdr[1] = upper_used + lower_used + title_used;
1466 1.1 lukem casecnt[0] = upper_used;
1467 1.1 lukem casecnt[1] = lower_used;
1468 1.1 lukem
1469 1.1 lukem /*
1470 1.1 lukem * Write the header.
1471 1.1 lukem */
1472 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1473 1.1 lukem
1474 1.1 lukem /*
1475 1.1 lukem * Write the upper and lower case table sizes.
1476 1.1 lukem */
1477 1.1 lukem fwrite((char *) casecnt, sizeof(ac_uint2), 2, out);
1478 1.1 lukem
1479 1.1 lukem if (upper_used > 0)
1480 1.1 lukem /*
1481 1.1 lukem * Write the upper case table.
1482 1.1 lukem */
1483 1.1 lukem fwrite((char *) upper, sizeof(_case_t), upper_used, out);
1484 1.1 lukem
1485 1.1 lukem if (lower_used > 0)
1486 1.1 lukem /*
1487 1.1 lukem * Write the lower case table.
1488 1.1 lukem */
1489 1.1 lukem fwrite((char *) lower, sizeof(_case_t), lower_used, out);
1490 1.1 lukem
1491 1.1 lukem if (title_used > 0)
1492 1.1 lukem /*
1493 1.1 lukem * Write the title case table.
1494 1.1 lukem */
1495 1.1 lukem fwrite((char *) title, sizeof(_case_t), title_used, out);
1496 1.1 lukem
1497 1.1 lukem fclose(out);
1498 1.1 lukem #endif
1499 1.1 lukem
1500 1.1 lukem /*****************************************************************
1501 1.1 lukem *
1502 1.1 lukem * Generate the composition data.
1503 1.1 lukem *
1504 1.1 lukem *****************************************************************/
1505 1.1 lukem
1506 1.1 lukem /*
1507 1.1 lukem * Create compositions from decomposition data
1508 1.1 lukem */
1509 1.1 lukem create_comps();
1510 1.1 lukem
1511 1.1 lukem #if HARDCODE_DATA
1512 1.1 lukem fprintf(out, PREF "ac_uint4 _uccomp_size = %ld;\n\n",
1513 1.1 lukem comps_used * 4L);
1514 1.1 lukem
1515 1.1 lukem fprintf(out, PREF "ac_uint4 _uccomp_data[] = {");
1516 1.1 lukem
1517 1.1 lukem /*
1518 1.1 lukem * Now, if comps exist, write them out.
1519 1.1 lukem */
1520 1.1 lukem if (comps_used > 0) {
1521 1.1 lukem for (i=0; i<comps_used; i++) {
1522 1.1 lukem if (i) fprintf(out, ",");
1523 1.1 lukem fprintf(out, "\n\t0x%08lx, 0x%08lx, 0x%08lx, 0x%08lx",
1524 1.1 lukem (unsigned long) comps[i].comp, (unsigned long) comps[i].count,
1525 1.1 lukem (unsigned long) comps[i].code1, (unsigned long) comps[i].code2);
1526 1.1 lukem }
1527 1.1 lukem } else {
1528 1.1 lukem fprintf(out, "\t0");
1529 1.1 lukem }
1530 1.1 lukem fprintf(out, "\n};\n\n");
1531 1.1 lukem #else
1532 1.1 lukem /*
1533 1.1 lukem * Open the comp.dat file.
1534 1.1 lukem */
1535 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "comp.dat", opath);
1536 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1537 1.1 lukem return;
1538 1.1 lukem
1539 1.1 lukem /*
1540 1.1 lukem * Write the header.
1541 1.1 lukem */
1542 1.1 lukem hdr[1] = (ac_uint2) comps_used * 4;
1543 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1544 1.1 lukem
1545 1.1 lukem /*
1546 1.1 lukem * Write out the byte count to maintain header size.
1547 1.1 lukem */
1548 1.1 lukem bytes = comps_used * sizeof(_comp_t);
1549 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1550 1.1 lukem
1551 1.1 lukem /*
1552 1.1 lukem * Now, if comps exist, write them out.
1553 1.1 lukem */
1554 1.1 lukem if (comps_used > 0)
1555 1.1 lukem fwrite((char *) comps, sizeof(_comp_t), comps_used, out);
1556 1.1 lukem
1557 1.1 lukem fclose(out);
1558 1.1 lukem #endif
1559 1.1 lukem
1560 1.1 lukem /*****************************************************************
1561 1.1 lukem *
1562 1.1 lukem * Generate the decomposition data.
1563 1.1 lukem *
1564 1.1 lukem *****************************************************************/
1565 1.1 lukem
1566 1.1 lukem /*
1567 1.1 lukem * Fully expand all decompositions before generating the output file.
1568 1.1 lukem */
1569 1.1 lukem expand_decomp();
1570 1.1 lukem
1571 1.1 lukem #if HARDCODE_DATA
1572 1.1 lukem fprintf(out, PREF "ac_uint4 _ucdcmp_size = %ld;\n\n",
1573 1.1 lukem decomps_used * 2L);
1574 1.1 lukem
1575 1.1 lukem fprintf(out, PREF "ac_uint4 _ucdcmp_nodes[] = {");
1576 1.1 lukem
1577 1.1 lukem if (decomps_used) {
1578 1.1 lukem /*
1579 1.1 lukem * Write the list of decomp nodes.
1580 1.1 lukem */
1581 1.1 lukem for (i = idx = 0; i < decomps_used; i++) {
1582 1.1 lukem fprintf(out, "\n\t0x%08lx, 0x%08lx,",
1583 1.1 lukem (unsigned long) decomps[i].code, (unsigned long) idx);
1584 1.1 lukem idx += decomps[i].used;
1585 1.1 lukem }
1586 1.1 lukem
1587 1.1 lukem /*
1588 1.1 lukem * Write the sentinel index as the last decomp node.
1589 1.1 lukem */
1590 1.1 lukem fprintf(out, "\n\t0x%08lx\n};\n\n", (unsigned long) idx);
1591 1.1 lukem
1592 1.1 lukem fprintf(out, PREF "ac_uint4 _ucdcmp_decomp[] = {");
1593 1.1 lukem /*
1594 1.1 lukem * Write the decompositions themselves.
1595 1.1 lukem */
1596 1.1 lukem k = 0;
1597 1.1 lukem for (i = 0; i < decomps_used; i++)
1598 1.1 lukem for (j=0; j<decomps[i].used; j++) {
1599 1.1 lukem if (k) fprintf(out, ",");
1600 1.1 lukem if (!(k&3)) fprintf(out,"\n\t");
1601 1.1 lukem else fprintf(out, " ");
1602 1.1 lukem k++;
1603 1.1 lukem fprintf(out, "0x%08lx", (unsigned long) decomps[i].decomp[j]);
1604 1.1 lukem }
1605 1.1 lukem fprintf(out, "\n};\n\n");
1606 1.1 lukem }
1607 1.1 lukem #else
1608 1.1 lukem /*
1609 1.1 lukem * Open the decomp.dat file.
1610 1.1 lukem */
1611 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "decomp.dat", opath);
1612 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1613 1.1 lukem return;
1614 1.1 lukem
1615 1.1 lukem hdr[1] = decomps_used;
1616 1.1 lukem
1617 1.1 lukem /*
1618 1.1 lukem * Write the header.
1619 1.1 lukem */
1620 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1621 1.1 lukem
1622 1.1 lukem /*
1623 1.1 lukem * Write a temporary byte count which will be calculated as the
1624 1.1 lukem * decompositions are written out.
1625 1.1 lukem */
1626 1.1 lukem bytes = 0;
1627 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1628 1.1 lukem
1629 1.1 lukem if (decomps_used) {
1630 1.1 lukem /*
1631 1.1 lukem * Write the list of decomp nodes.
1632 1.1 lukem */
1633 1.1 lukem for (i = idx = 0; i < decomps_used; i++) {
1634 1.1 lukem fwrite((char *) &decomps[i].code, sizeof(ac_uint4), 1, out);
1635 1.1 lukem fwrite((char *) &idx, sizeof(ac_uint4), 1, out);
1636 1.1 lukem idx += decomps[i].used;
1637 1.1 lukem }
1638 1.1 lukem
1639 1.1 lukem /*
1640 1.1 lukem * Write the sentinel index as the last decomp node.
1641 1.1 lukem */
1642 1.1 lukem fwrite((char *) &idx, sizeof(ac_uint4), 1, out);
1643 1.1 lukem
1644 1.1 lukem /*
1645 1.1 lukem * Write the decompositions themselves.
1646 1.1 lukem */
1647 1.1 lukem for (i = 0; i < decomps_used; i++)
1648 1.1 lukem fwrite((char *) decomps[i].decomp, sizeof(ac_uint4),
1649 1.1 lukem decomps[i].used, out);
1650 1.1 lukem
1651 1.1 lukem /*
1652 1.1 lukem * Seek back to the beginning and write the byte count.
1653 1.1 lukem */
1654 1.1 lukem bytes = (sizeof(ac_uint4) * idx) +
1655 1.1 lukem (sizeof(ac_uint4) * ((hdr[1] << 1) + 1));
1656 1.1 lukem fseek(out, sizeof(ac_uint2) << 1, 0L);
1657 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1658 1.1 lukem
1659 1.1 lukem fclose(out);
1660 1.1 lukem }
1661 1.1 lukem #endif
1662 1.1 lukem
1663 1.1 lukem #ifdef HARDCODE_DATA
1664 1.1 lukem fprintf(out, PREF "ac_uint4 _uckdcmp_size = %ld;\n\n",
1665 1.1 lukem kdecomps_used * 2L);
1666 1.1 lukem
1667 1.1 lukem fprintf(out, PREF "ac_uint4 _uckdcmp_nodes[] = {");
1668 1.1 lukem
1669 1.1 lukem if (kdecomps_used) {
1670 1.1 lukem /*
1671 1.1 lukem * Write the list of kdecomp nodes.
1672 1.1 lukem */
1673 1.1 lukem for (i = idx = 0; i < kdecomps_used; i++) {
1674 1.1 lukem fprintf(out, "\n\t0x%08lx, 0x%08lx,",
1675 1.1 lukem (unsigned long) kdecomps[i].code, (unsigned long) idx);
1676 1.1 lukem idx += kdecomps[i].used;
1677 1.1 lukem }
1678 1.1 lukem
1679 1.1 lukem /*
1680 1.1 lukem * Write the sentinel index as the last decomp node.
1681 1.1 lukem */
1682 1.1 lukem fprintf(out, "\n\t0x%08lx\n};\n\n", (unsigned long) idx);
1683 1.1 lukem
1684 1.1 lukem fprintf(out, PREF "ac_uint4 _uckdcmp_decomp[] = {");
1685 1.1 lukem
1686 1.1 lukem /*
1687 1.1 lukem * Write the decompositions themselves.
1688 1.1 lukem */
1689 1.1 lukem k = 0;
1690 1.1 lukem for (i = 0; i < kdecomps_used; i++)
1691 1.1 lukem for (j=0; j<kdecomps[i].used; j++) {
1692 1.1 lukem if (k) fprintf(out, ",");
1693 1.1 lukem if (!(k&3)) fprintf(out,"\n\t");
1694 1.1 lukem else fprintf(out, " ");
1695 1.1 lukem k++;
1696 1.1 lukem fprintf(out, "0x%08lx", (unsigned long) kdecomps[i].decomp[j]);
1697 1.1 lukem }
1698 1.1 lukem fprintf(out, "\n};\n\n");
1699 1.1 lukem }
1700 1.1 lukem #else
1701 1.1 lukem /*
1702 1.1 lukem * Open the kdecomp.dat file.
1703 1.1 lukem */
1704 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "kdecomp.dat", opath);
1705 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1706 1.1 lukem return;
1707 1.1 lukem
1708 1.1 lukem hdr[1] = kdecomps_used;
1709 1.1 lukem
1710 1.1 lukem /*
1711 1.1 lukem * Write the header.
1712 1.1 lukem */
1713 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1714 1.1 lukem
1715 1.1 lukem /*
1716 1.1 lukem * Write a temporary byte count which will be calculated as the
1717 1.1 lukem * decompositions are written out.
1718 1.1 lukem */
1719 1.1 lukem bytes = 0;
1720 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1721 1.1 lukem
1722 1.1 lukem if (kdecomps_used) {
1723 1.1 lukem /*
1724 1.1 lukem * Write the list of kdecomp nodes.
1725 1.1 lukem */
1726 1.1 lukem for (i = idx = 0; i < kdecomps_used; i++) {
1727 1.1 lukem fwrite((char *) &kdecomps[i].code, sizeof(ac_uint4), 1, out);
1728 1.1 lukem fwrite((char *) &idx, sizeof(ac_uint4), 1, out);
1729 1.1 lukem idx += kdecomps[i].used;
1730 1.1 lukem }
1731 1.1 lukem
1732 1.1 lukem /*
1733 1.1 lukem * Write the sentinel index as the last decomp node.
1734 1.1 lukem */
1735 1.1 lukem fwrite((char *) &idx, sizeof(ac_uint4), 1, out);
1736 1.1 lukem
1737 1.1 lukem /*
1738 1.1 lukem * Write the decompositions themselves.
1739 1.1 lukem */
1740 1.1 lukem for (i = 0; i < kdecomps_used; i++)
1741 1.1 lukem fwrite((char *) kdecomps[i].decomp, sizeof(ac_uint4),
1742 1.1 lukem kdecomps[i].used, out);
1743 1.1 lukem
1744 1.1 lukem /*
1745 1.1 lukem * Seek back to the beginning and write the byte count.
1746 1.1 lukem */
1747 1.1 lukem bytes = (sizeof(ac_uint4) * idx) +
1748 1.1 lukem (sizeof(ac_uint4) * ((hdr[1] << 1) + 1));
1749 1.1 lukem fseek(out, sizeof(ac_uint2) << 1, 0L);
1750 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1751 1.1 lukem
1752 1.1 lukem fclose(out);
1753 1.1 lukem }
1754 1.1 lukem #endif
1755 1.1 lukem
1756 1.1 lukem /*****************************************************************
1757 1.1 lukem *
1758 1.1 lukem * Generate the combining class data.
1759 1.1 lukem *
1760 1.1 lukem *****************************************************************/
1761 1.1 lukem #ifdef HARDCODE_DATA
1762 1.1 lukem fprintf(out, PREF "ac_uint4 _uccmcl_size = %ld;\n\n", (long) ccl_used);
1763 1.1 lukem
1764 1.1 lukem fprintf(out, PREF "ac_uint4 _uccmcl_nodes[] = {");
1765 1.1 lukem
1766 1.1 lukem if (ccl_used > 0) {
1767 1.1 lukem /*
1768 1.1 lukem * Write the combining class ranges out.
1769 1.1 lukem */
1770 1.1 lukem for (i = 0; i<ccl_used; i++) {
1771 1.1 lukem if (i) fprintf(out, ",");
1772 1.1 lukem if (!(i&3)) fprintf(out, "\n\t");
1773 1.1 lukem else fprintf(out, " ");
1774 1.1 lukem fprintf(out, "0x%08lx", (unsigned long) ccl[i]);
1775 1.1 lukem }
1776 1.1 lukem } else {
1777 1.1 lukem fprintf(out, "\t0");
1778 1.1 lukem }
1779 1.1 lukem fprintf(out, "\n};\n\n");
1780 1.1 lukem #else
1781 1.1 lukem /*
1782 1.1 lukem * Open the cmbcl.dat file.
1783 1.1 lukem */
1784 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "cmbcl.dat", opath);
1785 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1786 1.1 lukem return;
1787 1.1 lukem
1788 1.1 lukem /*
1789 1.1 lukem * Set the number of ranges used. Each range has a combining class which
1790 1.1 lukem * means each entry is a 3-tuple.
1791 1.1 lukem */
1792 1.1 lukem hdr[1] = ccl_used / 3;
1793 1.1 lukem
1794 1.1 lukem /*
1795 1.1 lukem * Write the header.
1796 1.1 lukem */
1797 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1798 1.1 lukem
1799 1.1 lukem /*
1800 1.1 lukem * Write out the byte count to maintain header size.
1801 1.1 lukem */
1802 1.1 lukem bytes = ccl_used * sizeof(ac_uint4);
1803 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1804 1.1 lukem
1805 1.1 lukem if (ccl_used > 0)
1806 1.1 lukem /*
1807 1.1 lukem * Write the combining class ranges out.
1808 1.1 lukem */
1809 1.1 lukem fwrite((char *) ccl, sizeof(ac_uint4), ccl_used, out);
1810 1.1 lukem
1811 1.1 lukem fclose(out);
1812 1.1 lukem #endif
1813 1.1 lukem
1814 1.1 lukem /*****************************************************************
1815 1.1 lukem *
1816 1.1 lukem * Generate the number data.
1817 1.1 lukem *
1818 1.1 lukem *****************************************************************/
1819 1.1 lukem
1820 1.1 lukem #if HARDCODE_DATA
1821 1.1 lukem fprintf(out, PREF "ac_uint4 _ucnum_size = %lu;\n\n",
1822 1.1 lukem (unsigned long)ncodes_used<<1);
1823 1.1 lukem
1824 1.1 lukem fprintf(out, PREF "ac_uint4 _ucnum_nodes[] = {");
1825 1.1 lukem
1826 1.1 lukem /*
1827 1.1 lukem * Now, if number mappings exist, write them out.
1828 1.1 lukem */
1829 1.1 lukem if (ncodes_used > 0) {
1830 1.1 lukem for (i = 0; i<ncodes_used; i++) {
1831 1.1 lukem if (i) fprintf(out, ",");
1832 1.1 lukem if (!(i&1)) fprintf(out, "\n\t");
1833 1.1 lukem else fprintf(out, " ");
1834 1.1 lukem fprintf(out, "0x%08lx, 0x%08lx",
1835 1.1 lukem (unsigned long) ncodes[i].code, (unsigned long) ncodes[i].idx);
1836 1.1 lukem }
1837 1.1 lukem fprintf(out, "\n};\n\n");
1838 1.1 lukem
1839 1.1 lukem fprintf(out, PREF "short _ucnum_vals[] = {");
1840 1.1 lukem for (i = 0; i<nums_used; i++) {
1841 1.1 lukem if (i) fprintf(out, ",");
1842 1.1 lukem if (!(i&3)) fprintf(out, "\n\t");
1843 1.1 lukem else fprintf(out, " ");
1844 1.1 lukem if (nums[i].numerator < 0) {
1845 1.1 lukem fprintf(out, "%6d, 0x%04x",
1846 1.1 lukem nums[i].numerator, nums[i].denominator);
1847 1.1 lukem } else {
1848 1.1 lukem fprintf(out, "0x%04x, 0x%04x",
1849 1.1 lukem nums[i].numerator, nums[i].denominator);
1850 1.1 lukem }
1851 1.1 lukem }
1852 1.1 lukem fprintf(out, "\n};\n\n");
1853 1.1 lukem }
1854 1.1 lukem #else
1855 1.1 lukem /*
1856 1.1 lukem * Open the num.dat file.
1857 1.1 lukem */
1858 1.1 lukem snprintf(path, sizeof path, "%s" LDAP_DIRSEP "num.dat", opath);
1859 1.1 lukem if ((out = fopen(path, "wb")) == 0)
1860 1.1 lukem return;
1861 1.1 lukem
1862 1.1 lukem /*
1863 1.1 lukem * The count part of the header will be the total number of codes that
1864 1.1 lukem * have numbers.
1865 1.1 lukem */
1866 1.1 lukem hdr[1] = (ac_uint2) (ncodes_used << 1);
1867 1.1 lukem bytes = (ncodes_used * sizeof(_codeidx_t)) + (nums_used * sizeof(_num_t));
1868 1.1 lukem
1869 1.1 lukem /*
1870 1.1 lukem * Write the header.
1871 1.1 lukem */
1872 1.1 lukem fwrite((char *) hdr, sizeof(ac_uint2), 2, out);
1873 1.1 lukem
1874 1.1 lukem /*
1875 1.1 lukem * Write out the byte count to maintain header size.
1876 1.1 lukem */
1877 1.1 lukem fwrite((char *) &bytes, sizeof(ac_uint4), 1, out);
1878 1.1 lukem
1879 1.1 lukem /*
1880 1.1 lukem * Now, if number mappings exist, write them out.
1881 1.1 lukem */
1882 1.1 lukem if (ncodes_used > 0) {
1883 1.1 lukem fwrite((char *) ncodes, sizeof(_codeidx_t), ncodes_used, out);
1884 1.1 lukem fwrite((char *) nums, sizeof(_num_t), nums_used, out);
1885 1.1 lukem }
1886 1.1 lukem #endif
1887 1.1 lukem
1888 1.1 lukem fclose(out);
1889 1.1 lukem }
1890 1.1 lukem
1891 1.1 lukem static void
1892 1.1 lukem usage(char *prog)
1893 1.1 lukem {
1894 1.1 lukem fprintf(stderr,
1895 1.1 lukem "Usage: %s [-o output-directory|-x composition-exclusions]", prog);
1896 1.1 lukem fprintf(stderr, " datafile1 datafile2 ...\n\n");
1897 1.1 lukem fprintf(stderr,
1898 1.1 lukem "-o output-directory\n\t\tWrite the output files to a different");
1899 1.1 lukem fprintf(stderr, " directory (default: .).\n");
1900 1.1 lukem fprintf(stderr,
1901 1.1 lukem "-x composition-exclusion\n\t\tFile of composition codes");
1902 1.1 lukem fprintf(stderr, " that should be excluded.\n");
1903 1.1 lukem exit(1);
1904 1.1 lukem }
1905 1.1 lukem
1906 1.1 lukem int
1907 1.1 lukem main(int argc, char *argv[])
1908 1.1 lukem {
1909 1.1 lukem FILE *in;
1910 1.1 lukem char *prog, *opath;
1911 1.1 lukem
1912 1.1 lukem prog = lutil_progname( "ucgendat", argc, argv );
1913 1.1 lukem
1914 1.1 lukem opath = 0;
1915 1.1 lukem in = stdin;
1916 1.1 lukem
1917 1.1 lukem argc--;
1918 1.1 lukem argv++;
1919 1.1 lukem
1920 1.1 lukem while (argc > 0) {
1921 1.1 lukem if (argv[0][0] == '-') {
1922 1.1 lukem switch (argv[0][1]) {
1923 1.1 lukem case 'o':
1924 1.1 lukem argc--;
1925 1.1 lukem argv++;
1926 1.1 lukem opath = argv[0];
1927 1.1 lukem break;
1928 1.1 lukem case 'x':
1929 1.1 lukem argc--;
1930 1.1 lukem argv++;
1931 1.1 lukem if ((in = fopen(argv[0], "r")) == 0)
1932 1.1 lukem fprintf(stderr,
1933 1.1 lukem "%s: unable to open composition exclusion file %s\n",
1934 1.1 lukem prog, argv[0]);
1935 1.1 lukem else {
1936 1.1 lukem read_compexdata(in);
1937 1.1 lukem fclose(in);
1938 1.1 lukem in = 0;
1939 1.1 lukem }
1940 1.1 lukem break;
1941 1.1 lukem default:
1942 1.1 lukem usage(prog);
1943 1.1 lukem }
1944 1.1 lukem } else {
1945 1.1 lukem if (in != stdin && in != NULL)
1946 1.1 lukem fclose(in);
1947 1.1 lukem if ((in = fopen(argv[0], "r")) == 0)
1948 1.1 lukem fprintf(stderr, "%s: unable to open ctype file %s\n",
1949 1.1 lukem prog, argv[0]);
1950 1.1 lukem else {
1951 1.1 lukem read_cdata(in);
1952 1.1 lukem fclose(in);
1953 1.1 lukem in = 0;
1954 1.1 lukem }
1955 1.1 lukem }
1956 1.1 lukem argc--;
1957 1.1 lukem argv++;
1958 1.1 lukem }
1959 1.1 lukem
1960 1.1 lukem if (opath == 0)
1961 1.1 lukem opath = ".";
1962 1.1 lukem write_cdata(opath);
1963 1.1 lukem
1964 1.1 lukem return 0;
1965 1.1 lukem }
1966