1 /* vi:set ts=8 sts=4 sw=4: 2 * 3 * VIM - Vi IMproved by Bram Moolenaar 4 * Multibyte extensions partly by Sung-Hoon Baek 5 * 6 * Do ":help uganda" in Vim to read copying and usage conditions. 7 * Do ":help credits" in Vim to see a list of people who contributed. 8 * See README.txt for an overview of the Vim source code. 9 */ 10 /* 11 * mbyte.c: Code specifically for handling multi-byte characters. 12 * 13 * The encoding used in the core is set with 'encoding'. When 'encoding' is 14 * changed, the following four variables are set (for speed). 15 * Currently these types of character encodings are supported: 16 * 17 * "enc_dbcs" When non-zero it tells the type of double byte character 18 * encoding (Chinese, Korean, Japanese, etc.). 19 * The cell width on the display is equal to the number of 20 * bytes. (exception: DBCS_JPNU with first byte 0x8e) 21 * Recognizing the first or second byte is difficult, it 22 * requires checking a byte sequence from the start. 23 * "enc_utf8" When TRUE use Unicode characters in UTF-8 encoding. 24 * The cell width on the display needs to be determined from 25 * the character value. 26 * Recognizing bytes is easy: 0xxx.xxxx is a single-byte 27 * char, 10xx.xxxx is a trailing byte, 11xx.xxxx is a leading 28 * byte of a multi-byte character. 29 * To make things complicated, up to two composing characters 30 * are allowed. These are drawn on top of the first char. 31 * For most editing the sequence of bytes with composing 32 * characters included is considered to be one character. 33 * "enc_unicode" When 2 use 16-bit Unicode characters (or UTF-16). 34 * When 4 use 32-but Unicode characters. 35 * Internally characters are stored in UTF-8 encoding to 36 * avoid NUL bytes. Conversion happens when doing I/O. 37 * "enc_utf8" will also be TRUE. 38 * 39 * "has_mbyte" is set when "enc_dbcs" or "enc_utf8" is non-zero. 40 * 41 * If none of these is TRUE, 8-bit bytes are used for a character. The 42 * encoding isn't currently specified (TODO). 43 * 44 * 'encoding' specifies the encoding used in the core. This is in registers, 45 * text manipulation, buffers, etc. Conversion has to be done when characters 46 * in another encoding are received or send: 47 * 48 * clipboard 49 * ^ 50 * | (2) 51 * V 52 * +---------------+ 53 * (1) | | (3) 54 * keyboard ----->| core |-----> display 55 * | | 56 * +---------------+ 57 * ^ 58 * | (4) 59 * V 60 * file 61 * 62 * (1) Typed characters arrive in the current locale. Conversion is to be 63 * done when 'encoding' is different from 'termencoding'. 64 * (2) Text will be made available with the encoding specified with 65 * 'encoding'. If this is not sufficient, system-specific conversion 66 * might be required. 67 * (3) For the GUI the correct font must be selected, no conversion done. 68 * Otherwise, conversion is to be done when 'encoding' differs from 69 * 'termencoding'. (Different in the GTK+ 2 port -- 'termencoding' 70 * is always used for both input and output and must always be set to 71 * "utf-8". gui_mch_init() does this automatically.) 72 * (4) The encoding of the file is specified with 'fileencoding'. Conversion 73 * is to be done when it's different from 'encoding'. 74 * 75 * The viminfo file is a special case: Only text is converted, not file names. 76 * Vim scripts may contain an ":encoding" command. This has an effect for 77 * some commands, like ":menutrans" 78 */ 79 80 #include "vim.h" 81 82 #ifdef WIN32UNIX 83 # ifndef WIN32_LEAN_AND_MEAN 84 # define WIN32_LEAN_AND_MEAN 85 # endif 86 # include <windows.h> 87 # ifdef WIN32 88 # undef WIN32 /* Some windows.h define WIN32, we don't want that here. */ 89 # endif 90 #endif 91 92 #if (defined(WIN3264) || defined(WIN32UNIX)) && !defined(__MINGW32__) 93 # include <winnls.h> 94 #endif 95 96 #ifdef FEAT_GUI_X11 97 # include <X11/Intrinsic.h> 98 #endif 99 #ifdef X_LOCALE 100 #include <X11/Xlocale.h> 101 #endif 102 103 #if defined(FEAT_XIM) && defined(HAVE_GTK2) 104 # include <gdk/gdkkeysyms.h> 105 # ifdef WIN3264 106 # include <gdk/gdkwin32.h> 107 # else 108 # include <gdk/gdkx.h> 109 # endif 110 #endif 111 112 #ifdef HAVE_WCHAR_H 113 # include <wchar.h> 114 #endif 115 116 #if 0 117 /* This has been disabled, because several people reported problems with the 118 * wcwidth() and iswprint() library functions, esp. for Hebrew. */ 119 # ifdef __STDC_ISO_10646__ 120 # define USE_WCHAR_FUNCTIONS 121 # endif 122 #endif 123 124 #if defined(FEAT_MBYTE) || defined(PROTO) 125 126 static int enc_canon_search __ARGS((char_u *name)); 127 static int dbcs_char2len __ARGS((int c)); 128 static int dbcs_char2bytes __ARGS((int c, char_u *buf)); 129 static int dbcs_ptr2len __ARGS((char_u *p)); 130 static int dbcs_char2cells __ARGS((int c)); 131 static int dbcs_ptr2char __ARGS((char_u *p)); 132 133 /* Lookup table to quickly get the length in bytes of a UTF-8 character from 134 * the first byte of a UTF-8 string. Bytes which are illegal when used as the 135 * first byte have a one, because these will be used separately. */ 136 static char utf8len_tab[256] = 137 { 138 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1, 139 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1, 140 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1, 141 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1, 142 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1, /*bogus*/ 143 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1, /*bogus*/ 144 2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2, 145 3,3,3,3,3,3,3,3,3,3,3,3,3,3,3,3,4,4,4,4,4,4,4,4,5,5,5,5,6,6,1,1, 146 }; 147 148 /* 149 * XIM often causes trouble. Define XIM_DEBUG to get a log of XIM callbacks 150 * in the "xim.log" file. 151 */ 152 /* #define XIM_DEBUG */ 153 #ifdef XIM_DEBUG 154 static void 155 xim_log(char *s, ...) 156 { 157 va_list arglist; 158 static FILE *fd = NULL; 159 160 if (fd == (FILE *)-1) 161 return; 162 if (fd == NULL) 163 { 164 fd = fopen("xim.log", "w"); 165 if (fd == NULL) 166 { 167 EMSG("Cannot open xim.log"); 168 fd = (FILE *)-1; 169 return; 170 } 171 } 172 173 va_start(arglist, s); 174 vfprintf(fd, s, arglist); 175 va_end(arglist); 176 } 177 #endif 178 179 #endif 180 181 #if defined(FEAT_MBYTE) || defined(FEAT_POSTSCRIPT) || defined(PROTO) 182 /* 183 * Canonical encoding names and their properties. 184 * "iso-8859-n" is handled by enc_canonize() directly. 185 */ 186 static struct 187 { char *name; int prop; int codepage;} 188 enc_canon_table[] = 189 { 190 #define IDX_LATIN_1 0 191 {"latin1", ENC_8BIT + ENC_LATIN1, 1252}, 192 #define IDX_ISO_2 1 193 {"iso-8859-2", ENC_8BIT, 0}, 194 #define IDX_ISO_3 2 195 {"iso-8859-3", ENC_8BIT, 0}, 196 #define IDX_ISO_4 3 197 {"iso-8859-4", ENC_8BIT, 0}, 198 #define IDX_ISO_5 4 199 {"iso-8859-5", ENC_8BIT, 0}, 200 #define IDX_ISO_6 5 201 {"iso-8859-6", ENC_8BIT, 0}, 202 #define IDX_ISO_7 6 203 {"iso-8859-7", ENC_8BIT, 0}, 204 #define IDX_ISO_8 7 205 {"iso-8859-8", ENC_8BIT, 0}, 206 #define IDX_ISO_9 8 207 {"iso-8859-9", ENC_8BIT, 0}, 208 #define IDX_ISO_10 9 209 {"iso-8859-10", ENC_8BIT, 0}, 210 #define IDX_ISO_11 10 211 {"iso-8859-11", ENC_8BIT, 0}, 212 #define IDX_ISO_13 11 213 {"iso-8859-13", ENC_8BIT, 0}, 214 #define IDX_ISO_14 12 215 {"iso-8859-14", ENC_8BIT, 0}, 216 #define IDX_ISO_15 13 217 {"iso-8859-15", ENC_8BIT + ENC_LATIN9, 0}, 218 #define IDX_KOI8_R 14 219 {"koi8-r", ENC_8BIT, 0}, 220 #define IDX_KOI8_U 15 221 {"koi8-u", ENC_8BIT, 0}, 222 #define IDX_UTF8 16 223 {"utf-8", ENC_UNICODE, 0}, 224 #define IDX_UCS2 17 225 {"ucs-2", ENC_UNICODE + ENC_ENDIAN_B + ENC_2BYTE, 0}, 226 #define IDX_UCS2LE 18 227 {"ucs-2le", ENC_UNICODE + ENC_ENDIAN_L + ENC_2BYTE, 0}, 228 #define IDX_UTF16 19 229 {"utf-16", ENC_UNICODE + ENC_ENDIAN_B + ENC_2WORD, 0}, 230 #define IDX_UTF16LE 20 231 {"utf-16le", ENC_UNICODE + ENC_ENDIAN_L + ENC_2WORD, 0}, 232 #define IDX_UCS4 21 233 {"ucs-4", ENC_UNICODE + ENC_ENDIAN_B + ENC_4BYTE, 0}, 234 #define IDX_UCS4LE 22 235 {"ucs-4le", ENC_UNICODE + ENC_ENDIAN_L + ENC_4BYTE, 0}, 236 237 /* For debugging DBCS encoding on Unix. */ 238 #define IDX_DEBUG 23 239 {"debug", ENC_DBCS, DBCS_DEBUG}, 240 #define IDX_EUC_JP 24 241 {"euc-jp", ENC_DBCS, DBCS_JPNU}, 242 #define IDX_SJIS 25 243 {"sjis", ENC_DBCS, DBCS_JPN}, 244 #define IDX_EUC_KR 26 245 {"euc-kr", ENC_DBCS, DBCS_KORU}, 246 #define IDX_EUC_CN 27 247 {"euc-cn", ENC_DBCS, DBCS_CHSU}, 248 #define IDX_EUC_TW 28 249 {"euc-tw", ENC_DBCS, DBCS_CHTU}, 250 #define IDX_BIG5 29 251 {"big5", ENC_DBCS, DBCS_CHT}, 252 253 /* MS-DOS and MS-Windows codepages are included here, so that they can be 254 * used on Unix too. Most of them are similar to ISO-8859 encodings, but 255 * not exactly the same. */ 256 #define IDX_CP437 30 257 {"cp437", ENC_8BIT, 437}, /* like iso-8859-1 */ 258 #define IDX_CP737 31 259 {"cp737", ENC_8BIT, 737}, /* like iso-8859-7 */ 260 #define IDX_CP775 32 261 {"cp775", ENC_8BIT, 775}, /* Baltic */ 262 #define IDX_CP850 33 263 {"cp850", ENC_8BIT, 850}, /* like iso-8859-4 */ 264 #define IDX_CP852 34 265 {"cp852", ENC_8BIT, 852}, /* like iso-8859-1 */ 266 #define IDX_CP855 35 267 {"cp855", ENC_8BIT, 855}, /* like iso-8859-2 */ 268 #define IDX_CP857 36 269 {"cp857", ENC_8BIT, 857}, /* like iso-8859-5 */ 270 #define IDX_CP860 37 271 {"cp860", ENC_8BIT, 860}, /* like iso-8859-9 */ 272 #define IDX_CP861 38 273 {"cp861", ENC_8BIT, 861}, /* like iso-8859-1 */ 274 #define IDX_CP862 39 275 {"cp862", ENC_8BIT, 862}, /* like iso-8859-1 */ 276 #define IDX_CP863 40 277 {"cp863", ENC_8BIT, 863}, /* like iso-8859-8 */ 278 #define IDX_CP865 41 279 {"cp865", ENC_8BIT, 865}, /* like iso-8859-1 */ 280 #define IDX_CP866 42 281 {"cp866", ENC_8BIT, 866}, /* like iso-8859-5 */ 282 #define IDX_CP869 43 283 {"cp869", ENC_8BIT, 869}, /* like iso-8859-7 */ 284 #define IDX_CP874 44 285 {"cp874", ENC_8BIT, 874}, /* Thai */ 286 #define IDX_CP932 45 287 {"cp932", ENC_DBCS, DBCS_JPN}, 288 #define IDX_CP936 46 289 {"cp936", ENC_DBCS, DBCS_CHS}, 290 #define IDX_CP949 47 291 {"cp949", ENC_DBCS, DBCS_KOR}, 292 #define IDX_CP950 48 293 {"cp950", ENC_DBCS, DBCS_CHT}, 294 #define IDX_CP1250 49 295 {"cp1250", ENC_8BIT, 1250}, /* Czech, Polish, etc. */ 296 #define IDX_CP1251 50 297 {"cp1251", ENC_8BIT, 1251}, /* Cyrillic */ 298 /* cp1252 is considered to be equal to latin1 */ 299 #define IDX_CP1253 51 300 {"cp1253", ENC_8BIT, 1253}, /* Greek */ 301 #define IDX_CP1254 52 302 {"cp1254", ENC_8BIT, 1254}, /* Turkish */ 303 #define IDX_CP1255 53 304 {"cp1255", ENC_8BIT, 1255}, /* Hebrew */ 305 #define IDX_CP1256 54 306 {"cp1256", ENC_8BIT, 1256}, /* Arabic */ 307 #define IDX_CP1257 55 308 {"cp1257", ENC_8BIT, 1257}, /* Baltic */ 309 #define IDX_CP1258 56 310 {"cp1258", ENC_8BIT, 1258}, /* Vietnamese */ 311 312 #define IDX_MACROMAN 57 313 {"macroman", ENC_8BIT + ENC_MACROMAN, 0}, /* Mac OS */ 314 #define IDX_COUNT 58 315 }; 316 317 /* 318 * Aliases for encoding names. 319 */ 320 static struct 321 { char *name; int canon;} 322 enc_alias_table[] = 323 { 324 {"ansi", IDX_LATIN_1}, 325 {"iso-8859-1", IDX_LATIN_1}, 326 {"latin2", IDX_ISO_2}, 327 {"latin3", IDX_ISO_3}, 328 {"latin4", IDX_ISO_4}, 329 {"cyrillic", IDX_ISO_5}, 330 {"arabic", IDX_ISO_6}, 331 {"greek", IDX_ISO_7}, 332 #ifdef WIN3264 333 {"hebrew", IDX_CP1255}, 334 #else 335 {"hebrew", IDX_ISO_8}, 336 #endif 337 {"latin5", IDX_ISO_9}, 338 {"turkish", IDX_ISO_9}, /* ? */ 339 {"latin6", IDX_ISO_10}, 340 {"nordic", IDX_ISO_10}, /* ? */ 341 {"thai", IDX_ISO_11}, /* ? */ 342 {"latin7", IDX_ISO_13}, 343 {"latin8", IDX_ISO_14}, 344 {"latin9", IDX_ISO_15}, 345 {"utf8", IDX_UTF8}, 346 {"unicode", IDX_UCS2}, 347 {"ucs2", IDX_UCS2}, 348 {"ucs2be", IDX_UCS2}, 349 {"ucs-2be", IDX_UCS2}, 350 {"ucs2le", IDX_UCS2LE}, 351 {"utf16", IDX_UTF16}, 352 {"utf16be", IDX_UTF16}, 353 {"utf-16be", IDX_UTF16}, 354 {"utf16le", IDX_UTF16LE}, 355 {"ucs4", IDX_UCS4}, 356 {"ucs4be", IDX_UCS4}, 357 {"ucs-4be", IDX_UCS4}, 358 {"ucs4le", IDX_UCS4LE}, 359 {"932", IDX_CP932}, 360 {"949", IDX_CP949}, 361 {"936", IDX_CP936}, 362 {"950", IDX_CP950}, 363 {"eucjp", IDX_EUC_JP}, 364 {"unix-jis", IDX_EUC_JP}, 365 {"ujis", IDX_EUC_JP}, 366 {"shift-jis", IDX_SJIS}, 367 {"euckr", IDX_EUC_KR}, 368 {"5601", IDX_EUC_KR}, /* Sun: KS C 5601 */ 369 {"euccn", IDX_EUC_CN}, 370 {"gb2312", IDX_EUC_CN}, 371 {"euctw", IDX_EUC_TW}, 372 #if defined(WIN3264) || defined(WIN32UNIX) || defined(MACOS) 373 {"japan", IDX_CP932}, 374 {"korea", IDX_CP949}, 375 {"prc", IDX_CP936}, 376 {"chinese", IDX_CP936}, 377 {"taiwan", IDX_CP950}, 378 {"big5", IDX_CP950}, 379 #else 380 {"japan", IDX_EUC_JP}, 381 {"korea", IDX_EUC_KR}, 382 {"prc", IDX_EUC_CN}, 383 {"chinese", IDX_EUC_CN}, 384 {"taiwan", IDX_EUC_TW}, 385 {"cp950", IDX_BIG5}, 386 {"950", IDX_BIG5}, 387 #endif 388 {"mac", IDX_MACROMAN}, 389 {NULL, 0} 390 }; 391 392 #ifndef CP_UTF8 393 # define CP_UTF8 65001 /* magic number from winnls.h */ 394 #endif 395 396 /* 397 * Find encoding "name" in the list of canonical encoding names. 398 * Returns -1 if not found. 399 */ 400 static int 401 enc_canon_search(name) 402 char_u *name; 403 { 404 int i; 405 406 for (i = 0; i < IDX_COUNT; ++i) 407 if (STRCMP(name, enc_canon_table[i].name) == 0) 408 return i; 409 return -1; 410 } 411 412 #endif 413 414 #if defined(FEAT_MBYTE) || defined(PROTO) 415 416 /* 417 * Find canonical encoding "name" in the list and return its properties. 418 * Returns 0 if not found. 419 */ 420 int 421 enc_canon_props(name) 422 char_u *name; 423 { 424 int i; 425 426 i = enc_canon_search(name); 427 if (i >= 0) 428 return enc_canon_table[i].prop; 429 #ifdef WIN3264 430 if (name[0] == 'c' && name[1] == 'p' && VIM_ISDIGIT(name[2])) 431 { 432 CPINFO cpinfo; 433 434 /* Get info on this codepage to find out what it is. */ 435 if (GetCPInfo(atoi(name + 2), &cpinfo) != 0) 436 { 437 if (cpinfo.MaxCharSize == 1) /* some single-byte encoding */ 438 return ENC_8BIT; 439 if (cpinfo.MaxCharSize == 2 440 && (cpinfo.LeadByte[0] != 0 || cpinfo.LeadByte[1] != 0)) 441 /* must be a DBCS encoding */ 442 return ENC_DBCS; 443 } 444 return 0; 445 } 446 #endif 447 if (STRNCMP(name, "2byte-", 6) == 0) 448 return ENC_DBCS; 449 if (STRNCMP(name, "8bit-", 5) == 0 || STRNCMP(name, "iso-8859-", 9) == 0) 450 return ENC_8BIT; 451 return 0; 452 } 453 454 /* 455 * Set up for using multi-byte characters. 456 * Called in three cases: 457 * - by main() to initialize (p_enc == NULL) 458 * - by set_init_1() after 'encoding' was set to its default. 459 * - by do_set() when 'encoding' has been set. 460 * p_enc must have been passed through enc_canonize() already. 461 * Sets the "enc_unicode", "enc_utf8", "enc_dbcs" and "has_mbyte" flags. 462 * Fills mb_bytelen_tab[] and returns NULL when there are no problems. 463 * When there is something wrong: Returns an error message and doesn't change 464 * anything. 465 */ 466 char_u * 467 mb_init() 468 { 469 int i; 470 int idx; 471 int n; 472 int enc_dbcs_new = 0; 473 #if defined(USE_ICONV) && !defined(WIN3264) && !defined(WIN32UNIX) \ 474 && !defined(MACOS) 475 # define LEN_FROM_CONV 476 vimconv_T vimconv; 477 char_u *p; 478 #endif 479 480 if (p_enc == NULL) 481 { 482 /* Just starting up: set the whole table to one's. */ 483 for (i = 0; i < 256; ++i) 484 mb_bytelen_tab[i] = 1; 485 input_conv.vc_type = CONV_NONE; 486 input_conv.vc_factor = 1; 487 output_conv.vc_type = CONV_NONE; 488 return NULL; 489 } 490 491 #ifdef WIN3264 492 if (p_enc[0] == 'c' && p_enc[1] == 'p' && VIM_ISDIGIT(p_enc[2])) 493 { 494 CPINFO cpinfo; 495 496 /* Get info on this codepage to find out what it is. */ 497 if (GetCPInfo(atoi(p_enc + 2), &cpinfo) != 0) 498 { 499 if (cpinfo.MaxCharSize == 1) 500 { 501 /* some single-byte encoding */ 502 enc_unicode = 0; 503 enc_utf8 = FALSE; 504 } 505 else if (cpinfo.MaxCharSize == 2 506 && (cpinfo.LeadByte[0] != 0 || cpinfo.LeadByte[1] != 0)) 507 { 508 /* must be a DBCS encoding, check below */ 509 enc_dbcs_new = atoi(p_enc + 2); 510 } 511 else 512 goto codepage_invalid; 513 } 514 else if (GetLastError() == ERROR_INVALID_PARAMETER) 515 { 516 codepage_invalid: 517 return (char_u *)N_("E543: Not a valid codepage"); 518 } 519 } 520 #endif 521 else if (STRNCMP(p_enc, "8bit-", 5) == 0 522 || STRNCMP(p_enc, "iso-8859-", 9) == 0) 523 { 524 /* Accept any "8bit-" or "iso-8859-" name. */ 525 enc_unicode = 0; 526 enc_utf8 = FALSE; 527 } 528 else if (STRNCMP(p_enc, "2byte-", 6) == 0) 529 { 530 #ifdef WIN3264 531 /* Windows: accept only valid codepage numbers, check below. */ 532 if (p_enc[6] != 'c' || p_enc[7] != 'p' 533 || (enc_dbcs_new = atoi(p_enc + 8)) == 0) 534 return e_invarg; 535 #else 536 /* Unix: accept any "2byte-" name, assume current locale. */ 537 enc_dbcs_new = DBCS_2BYTE; 538 #endif 539 } 540 else if ((idx = enc_canon_search(p_enc)) >= 0) 541 { 542 i = enc_canon_table[idx].prop; 543 if (i & ENC_UNICODE) 544 { 545 /* Unicode */ 546 enc_utf8 = TRUE; 547 if (i & (ENC_2BYTE | ENC_2WORD)) 548 enc_unicode = 2; 549 else if (i & ENC_4BYTE) 550 enc_unicode = 4; 551 else 552 enc_unicode = 0; 553 } 554 else if (i & ENC_DBCS) 555 { 556 /* 2byte, handle below */ 557 enc_dbcs_new = enc_canon_table[idx].codepage; 558 } 559 else 560 { 561 /* Must be 8-bit. */ 562 enc_unicode = 0; 563 enc_utf8 = FALSE; 564 } 565 } 566 else /* Don't know what encoding this is, reject it. */ 567 return e_invarg; 568 569 if (enc_dbcs_new != 0) 570 { 571 #ifdef WIN3264 572 /* Check if the DBCS code page is OK. */ 573 if (!IsValidCodePage(enc_dbcs_new)) 574 goto codepage_invalid; 575 #endif 576 enc_unicode = 0; 577 enc_utf8 = FALSE; 578 } 579 enc_dbcs = enc_dbcs_new; 580 has_mbyte = (enc_dbcs != 0 || enc_utf8); 581 582 #ifdef WIN3264 583 enc_codepage = encname2codepage(p_enc); 584 enc_latin9 = (STRCMP(p_enc, "iso-8859-15") == 0); 585 #endif 586 587 /* 588 * Set the function pointers. 589 */ 590 if (enc_utf8) 591 { 592 mb_ptr2len = utfc_ptr2len; 593 mb_char2len = utf_char2len; 594 mb_char2bytes = utf_char2bytes; 595 mb_ptr2cells = utf_ptr2cells; 596 mb_char2cells = utf_char2cells; 597 mb_off2cells = utf_off2cells; 598 mb_ptr2char = utf_ptr2char; 599 mb_head_off = utf_head_off; 600 } 601 else if (enc_dbcs != 0) 602 { 603 mb_ptr2len = dbcs_ptr2len; 604 mb_char2len = dbcs_char2len; 605 mb_char2bytes = dbcs_char2bytes; 606 mb_ptr2cells = dbcs_ptr2cells; 607 mb_char2cells = dbcs_char2cells; 608 mb_off2cells = dbcs_off2cells; 609 mb_ptr2char = dbcs_ptr2char; 610 mb_head_off = dbcs_head_off; 611 } 612 else 613 { 614 mb_ptr2len = latin_ptr2len; 615 mb_char2len = latin_char2len; 616 mb_char2bytes = latin_char2bytes; 617 mb_ptr2cells = latin_ptr2cells; 618 mb_char2cells = latin_char2cells; 619 mb_off2cells = latin_off2cells; 620 mb_ptr2char = latin_ptr2char; 621 mb_head_off = latin_head_off; 622 } 623 624 /* 625 * Fill the mb_bytelen_tab[] for MB_BYTE2LEN(). 626 */ 627 #ifdef LEN_FROM_CONV 628 /* When 'encoding' is different from the current locale mblen() won't 629 * work. Use conversion to "utf-8" instead. */ 630 vimconv.vc_type = CONV_NONE; 631 if (enc_dbcs) 632 { 633 p = enc_locale(); 634 if (p == NULL || STRCMP(p, p_enc) != 0) 635 { 636 convert_setup(&vimconv, p_enc, (char_u *)"utf-8"); 637 vimconv.vc_fail = TRUE; 638 } 639 vim_free(p); 640 } 641 #endif 642 643 for (i = 0; i < 256; ++i) 644 { 645 /* Our own function to reliably check the length of UTF-8 characters, 646 * independent of mblen(). */ 647 if (enc_utf8) 648 n = utf8len_tab[i]; 649 else if (enc_dbcs == 0) 650 n = 1; 651 else 652 { 653 #if defined(WIN3264) || defined(WIN32UNIX) 654 /* enc_dbcs is set by setting 'fileencoding'. It becomes a Windows 655 * CodePage identifier, which we can pass directly in to Windows 656 * API */ 657 n = IsDBCSLeadByteEx(enc_dbcs, (BYTE)i) ? 2 : 1; 658 #else 659 # ifdef MACOS 660 /* 661 * if mblen() is not available, character which MSB is turned on 662 * are treated as leading byte character. (note : This assumption 663 * is not always true.) 664 */ 665 n = (i & 0x80) ? 2 : 1; 666 # else 667 char buf[MB_MAXBYTES]; 668 # ifdef X_LOCALE 669 # ifndef mblen 670 # define mblen _Xmblen 671 # endif 672 # endif 673 if (i == NUL) /* just in case mblen() can't handle "" */ 674 n = 1; 675 else 676 { 677 buf[0] = i; 678 buf[1] = 0; 679 #ifdef LEN_FROM_CONV 680 if (vimconv.vc_type != CONV_NONE) 681 { 682 /* 683 * string_convert() should fail when converting the first 684 * byte of a double-byte character. 685 */ 686 p = string_convert(&vimconv, (char_u *)buf, NULL); 687 if (p != NULL) 688 { 689 vim_free(p); 690 n = 1; 691 } 692 else 693 n = 2; 694 } 695 else 696 #endif 697 { 698 /* 699 * mblen() should return -1 for invalid (means the leading 700 * multibyte) character. However there are some platforms 701 * where mblen() returns 0 for invalid character. 702 * Therefore, following condition includes 0. 703 */ 704 (void)mblen(NULL, 0); /* First reset the state. */ 705 if (mblen(buf, (size_t)1) <= 0) 706 n = 2; 707 else 708 n = 1; 709 } 710 } 711 # endif 712 #endif 713 } 714 715 mb_bytelen_tab[i] = n; 716 } 717 718 #ifdef LEN_FROM_CONV 719 convert_setup(&vimconv, NULL, NULL); 720 #endif 721 722 /* The cell width depends on the type of multi-byte characters. */ 723 (void)init_chartab(); 724 725 /* When enc_utf8 is set or reset, (de)allocate ScreenLinesUC[] */ 726 screenalloc(FALSE); 727 728 /* When using Unicode, set default for 'fileencodings'. */ 729 if (enc_utf8 && !option_was_set((char_u *)"fencs")) 730 set_string_option_direct((char_u *)"fencs", -1, 731 (char_u *)"ucs-bom,utf-8,default,latin1", OPT_FREE); 732 #if defined(HAVE_BIND_TEXTDOMAIN_CODESET) && defined(FEAT_GETTEXT) 733 /* GNU gettext 0.10.37 supports this feature: set the codeset used for 734 * translated messages independently from the current locale. */ 735 (void)bind_textdomain_codeset(VIMPACKAGE, 736 enc_utf8 ? "utf-8" : (char *)p_enc); 737 #endif 738 739 #ifdef WIN32 740 /* When changing 'encoding' while starting up, then convert the command 741 * line arguments from the active codepage to 'encoding'. */ 742 if (starting != 0) 743 fix_arg_enc(); 744 #endif 745 746 #ifdef FEAT_AUTOCMD 747 /* Fire an autocommand to let people do custom font setup. This must be 748 * after Vim has been setup for the new encoding. */ 749 apply_autocmds(EVENT_ENCODINGCHANGED, NULL, (char_u *)"", FALSE, curbuf); 750 #endif 751 752 #ifdef FEAT_GUI_KDE 753 if (gui.in_use) 754 gui_mch_update_codec(); 755 #endif 756 757 #ifdef FEAT_SYN_HL 758 /* Need to reload spell dictionaries */ 759 spell_reload(); 760 #endif 761 762 return NULL; 763 } 764 765 /* 766 * Return the size of the BOM for the current buffer: 767 * 0 - no BOM 768 * 2 - UCS-2 or UTF-16 BOM 769 * 4 - UCS-4 BOM 770 * 3 - UTF-8 BOM 771 */ 772 int 773 bomb_size() 774 { 775 int n = 0; 776 777 if (curbuf->b_p_bomb && !curbuf->b_p_bin) 778 { 779 if (*curbuf->b_p_fenc == NUL) 780 { 781 if (enc_utf8) 782 { 783 if (enc_unicode != 0) 784 n = enc_unicode; 785 else 786 n = 3; 787 } 788 } 789 else if (STRCMP(curbuf->b_p_fenc, "utf-8") == 0) 790 n = 3; 791 else if (STRNCMP(curbuf->b_p_fenc, "ucs-2", 5) == 0 792 || STRNCMP(curbuf->b_p_fenc, "utf-16", 6) == 0) 793 n = 2; 794 else if (STRNCMP(curbuf->b_p_fenc, "ucs-4", 5) == 0) 795 n = 4; 796 } 797 return n; 798 } 799 800 /* 801 * Get class of pointer: 802 * 0 for blank or NUL 803 * 1 for punctuation 804 * 2 for an (ASCII) word character 805 * >2 for other word characters 806 */ 807 int 808 mb_get_class(p) 809 char_u *p; 810 { 811 if (MB_BYTE2LEN(p[0]) == 1) 812 { 813 if (p[0] == NUL || vim_iswhite(p[0])) 814 return 0; 815 if (vim_iswordc(p[0])) 816 return 2; 817 return 1; 818 } 819 if (enc_dbcs != 0 && p[0] != NUL && p[1] != NUL) 820 return dbcs_class(p[0], p[1]); 821 if (enc_utf8) 822 return utf_class(utf_ptr2char(p)); 823 return 0; 824 } 825 826 /* 827 * Get class of a double-byte character. This always returns 3 or bigger. 828 * TODO: Should return 1 for punctuation. 829 */ 830 int 831 dbcs_class(lead, trail) 832 unsigned lead; 833 unsigned trail; 834 { 835 switch (enc_dbcs) 836 { 837 /* please add classfy routine for your language in here */ 838 839 case DBCS_JPNU: /* ? */ 840 case DBCS_JPN: 841 { 842 /* JIS code classification */ 843 unsigned char lb = lead; 844 unsigned char tb = trail; 845 846 /* convert process code to JIS */ 847 # if defined(WIN3264) || defined(WIN32UNIX) || defined(MACOS) 848 /* process code is SJIS */ 849 if (lb <= 0x9f) 850 lb = (lb - 0x81) * 2 + 0x21; 851 else 852 lb = (lb - 0xc1) * 2 + 0x21; 853 if (tb <= 0x7e) 854 tb -= 0x1f; 855 else if (tb <= 0x9e) 856 tb -= 0x20; 857 else 858 { 859 tb -= 0x7e; 860 lb += 1; 861 } 862 # else 863 /* 864 * XXX: Code page identification can not use with all 865 * system! So, some other encoding information 866 * will be needed. 867 * In japanese: SJIS,EUC,UNICODE,(JIS) 868 * Note that JIS-code system don't use as 869 * process code in most system because it uses 870 * escape sequences(JIS is context depend encoding). 871 */ 872 /* assume process code is JAPANESE-EUC */ 873 lb &= 0x7f; 874 tb &= 0x7f; 875 # endif 876 /* exceptions */ 877 switch (lb << 8 | tb) 878 { 879 case 0x2121: /* ZENKAKU space */ 880 return 0; 881 case 0x2122: /* KU-TEN (Japanese comma) */ 882 case 0x2123: /* TOU-TEN (Japanese period) */ 883 case 0x2124: /* ZENKAKU comma */ 884 case 0x2125: /* ZENKAKU period */ 885 return 1; 886 case 0x213c: /* prolongedsound handled as KATAKANA */ 887 return 13; 888 } 889 /* sieved by KU code */ 890 switch (lb) 891 { 892 case 0x21: 893 case 0x22: 894 /* special symbols */ 895 return 10; 896 case 0x23: 897 /* alpha-numeric */ 898 return 11; 899 case 0x24: 900 /* hiragana */ 901 return 12; 902 case 0x25: 903 /* katakana */ 904 return 13; 905 case 0x26: 906 /* greek */ 907 return 14; 908 case 0x27: 909 /* russian */ 910 return 15; 911 case 0x28: 912 /* lines */ 913 return 16; 914 default: 915 /* kanji */ 916 return 17; 917 } 918 } 919 920 case DBCS_KORU: /* ? */ 921 case DBCS_KOR: 922 { 923 /* KS code classification */ 924 unsigned char c1 = lead; 925 unsigned char c2 = trail; 926 927 /* 928 * 20 : Hangul 929 * 21 : Hanja 930 * 22 : Symbols 931 * 23 : Alpha-numeric/Roman Letter (Full width) 932 * 24 : Hangul Letter(Alphabet) 933 * 25 : Roman Numeral/Greek Letter 934 * 26 : Box Drawings 935 * 27 : Unit Symbols 936 * 28 : Circled/Parenthesized Letter 937 * 29 : Hirigana/Katakana 938 * 30 : Cyrillic Letter 939 */ 940 941 if (c1 >= 0xB0 && c1 <= 0xC8) 942 /* Hangul */ 943 return 20; 944 #if defined(WIN3264) || defined(WIN32UNIX) 945 else if (c1 <= 0xA0 || c2 <= 0xA0) 946 /* Extended Hangul Region : MS UHC(Unified Hangul Code) */ 947 /* c1: 0x81-0xA0 with c2: 0x41-0x5A, 0x61-0x7A, 0x81-0xFE 948 * c1: 0xA1-0xC6 with c2: 0x41-0x5A, 0x61-0x7A, 0x81-0xA0 949 */ 950 return 20; 951 #endif 952 953 else if (c1 >= 0xCA && c1 <= 0xFD) 954 /* Hanja */ 955 return 21; 956 else switch (c1) 957 { 958 case 0xA1: 959 case 0xA2: 960 /* Symbols */ 961 return 22; 962 case 0xA3: 963 /* Alpha-numeric */ 964 return 23; 965 case 0xA4: 966 /* Hangul Letter(Alphabet) */ 967 return 24; 968 case 0xA5: 969 /* Roman Numeral/Greek Letter */ 970 return 25; 971 case 0xA6: 972 /* Box Drawings */ 973 return 26; 974 case 0xA7: 975 /* Unit Symbols */ 976 return 27; 977 case 0xA8: 978 case 0xA9: 979 if (c2 <= 0xAF) 980 return 25; /* Roman Letter */ 981 else if (c2 >= 0xF6) 982 return 22; /* Symbols */ 983 else 984 /* Circled/Parenthesized Letter */ 985 return 28; 986 case 0xAA: 987 case 0xAB: 988 /* Hirigana/Katakana */ 989 return 29; 990 case 0xAC: 991 /* Cyrillic Letter */ 992 return 30; 993 } 994 } 995 default: 996 break; 997 } 998 return 3; 999 } 1000 1001 /* 1002 * mb_char2len() function pointer. 1003 * Return length in bytes of character "c". 1004 * Returns 1 for a single-byte character. 1005 */ 1006 /* ARGSUSED */ 1007 int 1008 latin_char2len(c) 1009 int c; 1010 { 1011 return 1; 1012 } 1013 1014 static int 1015 dbcs_char2len(c) 1016 int c; 1017 { 1018 if (c >= 0x100) 1019 return 2; 1020 return 1; 1021 } 1022 1023 /* 1024 * mb_char2bytes() function pointer. 1025 * Convert a character to its bytes. 1026 * Returns the length in bytes. 1027 */ 1028 int 1029 latin_char2bytes(c, buf) 1030 int c; 1031 char_u *buf; 1032 { 1033 buf[0] = c; 1034 return 1; 1035 } 1036 1037 static int 1038 dbcs_char2bytes(c, buf) 1039 int c; 1040 char_u *buf; 1041 { 1042 if (c >= 0x100) 1043 { 1044 buf[0] = (unsigned)c >> 8; 1045 buf[1] = c; 1046 /* Never use a NUL byte, it causes lots of trouble. It's an invalid 1047 * character anyway. */ 1048 if (buf[1] == NUL) 1049 buf[1] = '\n'; 1050 return 2; 1051 } 1052 buf[0] = c; 1053 return 1; 1054 } 1055 1056 /* 1057 * mb_ptr2len() function pointer. 1058 * Get byte length of character at "*p" but stop at a NUL. 1059 * For UTF-8 this includes following composing characters. 1060 * Returns 0 when *p is NUL. 1061 * 1062 */ 1063 int 1064 latin_ptr2len(p) 1065 char_u *p; 1066 { 1067 return MB_BYTE2LEN(*p); 1068 } 1069 1070 static int 1071 dbcs_ptr2len(p) 1072 char_u *p; 1073 { 1074 int len; 1075 1076 /* Check if second byte is not missing. */ 1077 len = MB_BYTE2LEN(*p); 1078 if (len == 2 && p[1] == NUL) 1079 len = 1; 1080 return len; 1081 } 1082 1083 struct interval 1084 { 1085 unsigned short first; 1086 unsigned short last; 1087 }; 1088 static int intable __ARGS((struct interval *table, size_t size, int c)); 1089 1090 /* 1091 * Return TRUE if "c" is in "table[size / sizeof(struct interval)]". 1092 */ 1093 static int 1094 intable(table, size, c) 1095 struct interval *table; 1096 size_t size; 1097 int c; 1098 { 1099 int mid, bot, top; 1100 1101 /* first quick check for Latin1 etc. characters */ 1102 if (c < table[0].first) 1103 return FALSE; 1104 1105 /* binary search in table */ 1106 bot = 0; 1107 top = size / sizeof(struct interval) - 1; 1108 while (top >= bot) 1109 { 1110 mid = (bot + top) / 2; 1111 if (table[mid].last < c) 1112 bot = mid + 1; 1113 else if (table[mid].first > c) 1114 top = mid - 1; 1115 else 1116 return TRUE; 1117 } 1118 return FALSE; 1119 } 1120 1121 /* 1122 * For UTF-8 character "c" return 2 for a double-width character, 1 for others. 1123 * Returns 4 or 6 for an unprintable character. 1124 * Is only correct for characters >= 0x80. 1125 * When p_ambw is "double", return 2 for a character with East Asian Width 1126 * class 'A'(mbiguous). 1127 */ 1128 int 1129 utf_char2cells(c) 1130 int c; 1131 { 1132 /* sorted list of non-overlapping intervals of East Asian Ambiguous 1133 * characters, generated with: 1134 * "uniset +WIDTH-A -cat=Me -cat=Mn -cat=Cf c" */ 1135 static struct interval ambiguous[] = { 1136 {0x00A1, 0x00A1}, {0x00A4, 0x00A4}, {0x00A7, 0x00A8}, 1137 {0x00AA, 0x00AA}, {0x00AE, 0x00AE}, {0x00B0, 0x00B4}, 1138 {0x00B6, 0x00BA}, {0x00BC, 0x00BF}, {0x00C6, 0x00C6}, 1139 {0x00D0, 0x00D0}, {0x00D7, 0x00D8}, {0x00DE, 0x00E1}, 1140 {0x00E6, 0x00E6}, {0x00E8, 0x00EA}, {0x00EC, 0x00ED}, 1141 {0x00F0, 0x00F0}, {0x00F2, 0x00F3}, {0x00F7, 0x00FA}, 1142 {0x00FC, 0x00FC}, {0x00FE, 0x00FE}, {0x0101, 0x0101}, 1143 {0x0111, 0x0111}, {0x0113, 0x0113}, {0x011B, 0x011B}, 1144 {0x0126, 0x0127}, {0x012B, 0x012B}, {0x0131, 0x0133}, 1145 {0x0138, 0x0138}, {0x013F, 0x0142}, {0x0144, 0x0144}, 1146 {0x0148, 0x014B}, {0x014D, 0x014D}, {0x0152, 0x0153}, 1147 {0x0166, 0x0167}, {0x016B, 0x016B}, {0x01CE, 0x01CE}, 1148 {0x01D0, 0x01D0}, {0x01D2, 0x01D2}, {0x01D4, 0x01D4}, 1149 {0x01D6, 0x01D6}, {0x01D8, 0x01D8}, {0x01DA, 0x01DA}, 1150 {0x01DC, 0x01DC}, {0x0251, 0x0251}, {0x0261, 0x0261}, 1151 {0x02C4, 0x02C4}, {0x02C7, 0x02C7}, {0x02C9, 0x02CB}, 1152 {0x02CD, 0x02CD}, {0x02D0, 0x02D0}, {0x02D8, 0x02DB}, 1153 {0x02DD, 0x02DD}, {0x02DF, 0x02DF}, {0x0391, 0x03A1}, 1154 {0x03A3, 0x03A9}, {0x03B1, 0x03C1}, {0x03C3, 0x03C9}, 1155 {0x0401, 0x0401}, {0x0410, 0x044F}, {0x0451, 0x0451}, 1156 {0x2010, 0x2010}, {0x2013, 0x2016}, {0x2018, 0x2019}, 1157 {0x201C, 0x201D}, {0x2020, 0x2022}, {0x2024, 0x2027}, 1158 {0x2030, 0x2030}, {0x2032, 0x2033}, {0x2035, 0x2035}, 1159 {0x203B, 0x203B}, {0x203E, 0x203E}, {0x2074, 0x2074}, 1160 {0x207F, 0x207F}, {0x2081, 0x2084}, {0x20AC, 0x20AC}, 1161 {0x2103, 0x2103}, {0x2105, 0x2105}, {0x2109, 0x2109}, 1162 {0x2113, 0x2113}, {0x2116, 0x2116}, {0x2121, 0x2122}, 1163 {0x2126, 0x2126}, {0x212B, 0x212B}, {0x2153, 0x2154}, 1164 {0x215B, 0x215E}, {0x2160, 0x216B}, {0x2170, 0x2179}, 1165 {0x2190, 0x2199}, {0x21B8, 0x21B9}, {0x21D2, 0x21D2}, 1166 {0x21D4, 0x21D4}, {0x21E7, 0x21E7}, {0x2200, 0x2200}, 1167 {0x2202, 0x2203}, {0x2207, 0x2208}, {0x220B, 0x220B}, 1168 {0x220F, 0x220F}, {0x2211, 0x2211}, {0x2215, 0x2215}, 1169 {0x221A, 0x221A}, {0x221D, 0x2220}, {0x2223, 0x2223}, 1170 {0x2225, 0x2225}, {0x2227, 0x222C}, {0x222E, 0x222E}, 1171 {0x2234, 0x2237}, {0x223C, 0x223D}, {0x2248, 0x2248}, 1172 {0x224C, 0x224C}, {0x2252, 0x2252}, {0x2260, 0x2261}, 1173 {0x2264, 0x2267}, {0x226A, 0x226B}, {0x226E, 0x226F}, 1174 {0x2282, 0x2283}, {0x2286, 0x2287}, {0x2295, 0x2295}, 1175 {0x2299, 0x2299}, {0x22A5, 0x22A5}, {0x22BF, 0x22BF}, 1176 {0x2312, 0x2312}, {0x2460, 0x24E9}, {0x24EB, 0x254B}, 1177 {0x2550, 0x2573}, {0x2580, 0x258F}, {0x2592, 0x2595}, 1178 {0x25A0, 0x25A1}, {0x25A3, 0x25A9}, {0x25B2, 0x25B3}, 1179 {0x25B6, 0x25B7}, {0x25BC, 0x25BD}, {0x25C0, 0x25C1}, 1180 {0x25C6, 0x25C8}, {0x25CB, 0x25CB}, {0x25CE, 0x25D1}, 1181 {0x25E2, 0x25E5}, {0x25EF, 0x25EF}, {0x2605, 0x2606}, 1182 {0x2609, 0x2609}, {0x260E, 0x260F}, {0x2614, 0x2615}, 1183 {0x261C, 0x261C}, {0x261E, 0x261E}, {0x2640, 0x2640}, 1184 {0x2642, 0x2642}, {0x2660, 0x2661}, {0x2663, 0x2665}, 1185 {0x2667, 0x266A}, {0x266C, 0x266D}, {0x266F, 0x266F}, 1186 {0x273D, 0x273D}, {0x2776, 0x277F}, {0xE000, 0xF8FF}, 1187 {0xFFFD, 0xFFFD}, /* {0xF0000, 0xFFFFD}, {0x100000, 0x10FFFD} */ 1188 }; 1189 1190 if (c >= 0x100) 1191 { 1192 #ifdef USE_WCHAR_FUNCTIONS 1193 /* 1194 * Assume the library function wcwidth() works better than our own 1195 * stuff. It should return 1 for ambiguous width chars! 1196 */ 1197 int n = wcwidth(c); 1198 1199 if (n < 0) 1200 return 6; /* unprintable, displays <xxxx> */ 1201 if (n > 1) 1202 return n; 1203 #else 1204 if (!utf_printable(c)) 1205 return 6; /* unprintable, displays <xxxx> */ 1206 if (c >= 0x1100 1207 && (c <= 0x115f /* Hangul Jamo */ 1208 || c == 0x2329 1209 || c == 0x232a 1210 || (c >= 0x2e80 && c <= 0xa4cf 1211 && c != 0x303f) /* CJK ... Yi */ 1212 || (c >= 0xac00 && c <= 0xd7a3) /* Hangul Syllables */ 1213 || (c >= 0xf900 && c <= 0xfaff) /* CJK Compatibility 1214 Ideographs */ 1215 || (c >= 0xfe30 && c <= 0xfe6f) /* CJK Compatibility Forms */ 1216 || (c >= 0xff00 && c <= 0xff60) /* Fullwidth Forms */ 1217 || (c >= 0xffe0 && c <= 0xffe6) 1218 || (c >= 0x20000 && c <= 0x2fffd) 1219 || (c >= 0x30000 && c <= 0x3fffd))) 1220 return 2; 1221 #endif 1222 } 1223 1224 /* Characters below 0x100 are influenced by 'isprint' option */ 1225 else if (c >= 0x80 && !vim_isprintc(c)) 1226 return 4; /* unprintable, displays <xx> */ 1227 1228 if (c >= 0x80 && *p_ambw == 'd' && intable(ambiguous, sizeof(ambiguous), c)) 1229 return 2; 1230 1231 return 1; 1232 } 1233 1234 /* 1235 * mb_ptr2cells() function pointer. 1236 * Return the number of display cells character at "*p" occupies. 1237 * This doesn't take care of unprintable characters, use ptr2cells() for that. 1238 */ 1239 /*ARGSUSED*/ 1240 int 1241 latin_ptr2cells(p) 1242 char_u *p; 1243 { 1244 return 1; 1245 } 1246 1247 int 1248 utf_ptr2cells(p) 1249 char_u *p; 1250 { 1251 int c; 1252 1253 /* Need to convert to a wide character. */ 1254 if (*p >= 0x80) 1255 { 1256 c = utf_ptr2char(p); 1257 /* An illegal byte is displayed as <xx>. */ 1258 if (utf_ptr2len(p) == 1 || c == NUL) 1259 return 4; 1260 /* If the char is ASCII it must be an overlong sequence. */ 1261 if (c < 0x80) 1262 return char2cells(c); 1263 return utf_char2cells(c); 1264 } 1265 return 1; 1266 } 1267 1268 int 1269 dbcs_ptr2cells(p) 1270 char_u *p; 1271 { 1272 /* Number of cells is equal to number of bytes, except for euc-jp when 1273 * the first byte is 0x8e. */ 1274 if (enc_dbcs == DBCS_JPNU && *p == 0x8e) 1275 return 1; 1276 return MB_BYTE2LEN(*p); 1277 } 1278 1279 /* 1280 * mb_char2cells() function pointer. 1281 * Return the number of display cells character "c" occupies. 1282 * Only takes care of multi-byte chars, not "^C" and such. 1283 */ 1284 /*ARGSUSED*/ 1285 int 1286 latin_char2cells(c) 1287 int c; 1288 { 1289 return 1; 1290 } 1291 1292 static int 1293 dbcs_char2cells(c) 1294 int c; 1295 { 1296 /* Number of cells is equal to number of bytes, except for euc-jp when 1297 * the first byte is 0x8e. */ 1298 if (enc_dbcs == DBCS_JPNU && ((unsigned)c >> 8) == 0x8e) 1299 return 1; 1300 /* use the first byte */ 1301 return MB_BYTE2LEN((unsigned)c >> 8); 1302 } 1303 1304 /* 1305 * mb_off2cells() function pointer. 1306 * Return number of display cells for char at ScreenLines[off]. 1307 * Caller must make sure "off" and "off + 1" are valid! 1308 */ 1309 /*ARGSUSED*/ 1310 int 1311 latin_off2cells(off) 1312 unsigned off; 1313 { 1314 return 1; 1315 } 1316 1317 int 1318 dbcs_off2cells(off) 1319 unsigned off; 1320 { 1321 /* Number of cells is equal to number of bytes, except for euc-jp when 1322 * the first byte is 0x8e. */ 1323 if (enc_dbcs == DBCS_JPNU && ScreenLines[off] == 0x8e) 1324 return 1; 1325 return MB_BYTE2LEN(ScreenLines[off]); 1326 } 1327 1328 int 1329 utf_off2cells(off) 1330 unsigned off; 1331 { 1332 return ScreenLines[off + 1] == 0 ? 2 : 1; 1333 } 1334 1335 /* 1336 * mb_ptr2char() function pointer. 1337 * Convert a byte sequence into a character. 1338 */ 1339 int 1340 latin_ptr2char(p) 1341 char_u *p; 1342 { 1343 return *p; 1344 } 1345 1346 static int 1347 dbcs_ptr2char(p) 1348 char_u *p; 1349 { 1350 if (MB_BYTE2LEN(*p) > 1 && p[1] != NUL) 1351 return (p[0] << 8) + p[1]; 1352 return *p; 1353 } 1354 1355 /* 1356 * Convert a UTF-8 byte sequence to a wide character. 1357 * If the sequence is illegal or truncated by a NUL the first byte is 1358 * returned. 1359 * Does not include composing characters, of course. 1360 */ 1361 int 1362 utf_ptr2char(p) 1363 char_u *p; 1364 { 1365 int len; 1366 1367 if (p[0] < 0x80) /* be quick for ASCII */ 1368 return p[0]; 1369 1370 len = utf8len_tab[p[0]]; 1371 if ((p[1] & 0xc0) == 0x80) 1372 { 1373 if (len == 2) 1374 return ((p[0] & 0x1f) << 6) + (p[1] & 0x3f); 1375 if ((p[2] & 0xc0) == 0x80) 1376 { 1377 if (len == 3) 1378 return ((p[0] & 0x0f) << 12) + ((p[1] & 0x3f) << 6) 1379 + (p[2] & 0x3f); 1380 if ((p[3] & 0xc0) == 0x80) 1381 { 1382 if (len == 4) 1383 return ((p[0] & 0x07) << 18) + ((p[1] & 0x3f) << 12) 1384 + ((p[2] & 0x3f) << 6) + (p[3] & 0x3f); 1385 if ((p[4] & 0xc0) == 0x80) 1386 { 1387 if (len == 5) 1388 return ((p[0] & 0x03) << 24) + ((p[1] & 0x3f) << 18) 1389 + ((p[2] & 0x3f) << 12) + ((p[3] & 0x3f) << 6) 1390 + (p[4] & 0x3f); 1391 if ((p[5] & 0xc0) == 0x80 && len == 6) 1392 return ((p[0] & 0x01) << 30) + ((p[1] & 0x3f) << 24) 1393 + ((p[2] & 0x3f) << 18) + ((p[3] & 0x3f) << 12) 1394 + ((p[4] & 0x3f) << 6) + (p[5] & 0x3f); 1395 } 1396 } 1397 } 1398 } 1399 /* Illegal value, just return the first byte */ 1400 return p[0]; 1401 } 1402 1403 /* 1404 * Get character at **pp and advance *pp to the next character. 1405 * Note: composing characters are skipped! 1406 */ 1407 int 1408 mb_ptr2char_adv(pp) 1409 char_u **pp; 1410 { 1411 int c; 1412 1413 c = (*mb_ptr2char)(*pp); 1414 *pp += (*mb_ptr2len)(*pp); 1415 return c; 1416 } 1417 1418 /* 1419 * Get character at **pp and advance *pp to the next character. 1420 * Note: composing characters are returned as separate characters. 1421 */ 1422 int 1423 mb_cptr2char_adv(pp) 1424 char_u **pp; 1425 { 1426 int c; 1427 1428 c = (*mb_ptr2char)(*pp); 1429 if (enc_utf8) 1430 *pp += utf_ptr2len(*pp); 1431 else 1432 *pp += (*mb_ptr2len)(*pp); 1433 return c; 1434 } 1435 1436 #if defined(FEAT_ARABIC) || defined(PROTO) 1437 /* 1438 * Check whether we are dealing with Arabic combining characters. 1439 * Note: these are NOT really composing characters! 1440 */ 1441 int 1442 arabic_combine(one, two) 1443 int one; /* first character */ 1444 int two; /* character just after "one" */ 1445 { 1446 if (one == a_LAM) 1447 return arabic_maycombine(two); 1448 return FALSE; 1449 } 1450 1451 /* 1452 * Check whether we are dealing with a character that could be regarded as an 1453 * Arabic combining character, need to check the character before this. 1454 */ 1455 int 1456 arabic_maycombine(two) 1457 int two; 1458 { 1459 if (p_arshape && !p_tbidi) 1460 return (two == a_ALEF_MADDA 1461 || two == a_ALEF_HAMZA_ABOVE 1462 || two == a_ALEF_HAMZA_BELOW 1463 || two == a_ALEF); 1464 return FALSE; 1465 } 1466 1467 /* 1468 * Check if the character pointed to by "p2" is a composing character when it 1469 * comes after "p1". For Arabic sometimes "ab" is replaced with "c", which 1470 * behaves like a composing character. 1471 */ 1472 int 1473 utf_composinglike(p1, p2) 1474 char_u *p1; 1475 char_u *p2; 1476 { 1477 int c2; 1478 1479 c2 = utf_ptr2char(p2); 1480 if (utf_iscomposing(c2)) 1481 return TRUE; 1482 if (!arabic_maycombine(c2)) 1483 return FALSE; 1484 return arabic_combine(utf_ptr2char(p1), c2); 1485 } 1486 #endif 1487 1488 /* 1489 * Convert a UTF-8 byte string to a wide chararacter. Also get up to two 1490 * composing characters. 1491 */ 1492 int 1493 utfc_ptr2char(p, p1, p2) 1494 char_u *p; 1495 int *p1; /* return: first composing char or 0 */ 1496 int *p2; /* return: second composing char or 0 */ 1497 { 1498 int len; 1499 int c; 1500 int cc; 1501 1502 c = utf_ptr2char(p); 1503 len = utf_ptr2len(p); 1504 /* Only accept a composing char when the first char isn't illegal. */ 1505 if ((len > 1 || *p < 0x80) 1506 && p[len] >= 0x80 1507 && UTF_COMPOSINGLIKE(p, p + len)) 1508 { 1509 *p1 = utf_ptr2char(p + len); 1510 len += utf_ptr2len(p + len); 1511 if (p[len] >= 0x80 && utf_iscomposing(cc = utf_ptr2char(p + len))) 1512 *p2 = cc; 1513 else 1514 *p2 = 0; 1515 } 1516 else 1517 { 1518 *p1 = 0; 1519 *p2 = 0; 1520 } 1521 return c; 1522 } 1523 1524 /* 1525 * Convert a UTF-8 byte string to a wide chararacter. Also get up to two 1526 * composing characters. Use no more than p[maxlen]. 1527 */ 1528 int 1529 utfc_ptr2char_len(p, p1, p2, maxlen) 1530 char_u *p; 1531 int *p1; /* return: first composing char or 0 */ 1532 int *p2; /* return: second composing char or 0 */ 1533 int maxlen; 1534 { 1535 int len; 1536 int c; 1537 int cc; 1538 1539 c = utf_ptr2char(p); 1540 len = utf_ptr2len_len(p, maxlen); 1541 /* Only accept a composing char when the first char isn't illegal. */ 1542 if ((len > 1 || *p < 0x80) 1543 && len < maxlen 1544 && p[len] >= 0x80 1545 && UTF_COMPOSINGLIKE(p, p + len)) 1546 { 1547 *p1 = utf_ptr2char(p + len); 1548 len += utf_ptr2len_len(p + len, maxlen - len); 1549 if (len < maxlen 1550 && p[len] >= 0x80 1551 && utf_iscomposing(cc = utf_ptr2char(p + len))) 1552 *p2 = cc; 1553 else 1554 *p2 = 0; 1555 } 1556 else 1557 { 1558 *p1 = 0; 1559 *p2 = 0; 1560 } 1561 return c; 1562 } 1563 1564 /* 1565 * Convert the character at screen position "off" to a sequence of bytes. 1566 * Includes the composing characters. 1567 * "buf" must at least have the length MB_MAXBYTES. 1568 * Returns the produced number of bytes. 1569 */ 1570 int 1571 utfc_char2bytes(off, buf) 1572 int off; 1573 char_u *buf; 1574 { 1575 int len; 1576 1577 len = utf_char2bytes(ScreenLinesUC[off], buf); 1578 if (ScreenLinesC1[off] != 0) 1579 { 1580 len += utf_char2bytes(ScreenLinesC1[off], buf + len); 1581 if (ScreenLinesC2[off] != 0) 1582 len += utf_char2bytes(ScreenLinesC2[off], buf + len); 1583 } 1584 return len; 1585 } 1586 1587 /* 1588 * Get the length of a UTF-8 byte sequence, not including any following 1589 * composing characters. 1590 * Returns 0 for "". 1591 * Returns 1 for an illegal byte sequence. 1592 */ 1593 int 1594 utf_ptr2len(p) 1595 char_u *p; 1596 { 1597 int len; 1598 int i; 1599 1600 if (*p == NUL) 1601 return 0; 1602 len = utf8len_tab[*p]; 1603 for (i = 1; i < len; ++i) 1604 if ((p[i] & 0xc0) != 0x80) 1605 return 1; 1606 return len; 1607 } 1608 1609 /* 1610 * Return length of UTF-8 character, obtained from the first byte. 1611 * "b" must be between 0 and 255! 1612 */ 1613 int 1614 utf_byte2len(b) 1615 int b; 1616 { 1617 return utf8len_tab[b]; 1618 } 1619 1620 /* 1621 * Get the length of UTF-8 byte sequence "p[size]". Does not include any 1622 * following composing characters. 1623 * Returns 1 for "". 1624 * Returns 1 for an illegal byte sequence. 1625 * Returns number > "size" for an incomplete byte sequence. 1626 */ 1627 int 1628 utf_ptr2len_len(p, size) 1629 char_u *p; 1630 int size; 1631 { 1632 int len; 1633 int i; 1634 1635 if (*p == NUL) 1636 return 1; 1637 len = utf8len_tab[*p]; 1638 if (len > size) 1639 return len; /* incomplete byte sequence. */ 1640 for (i = 1; i < len; ++i) 1641 if ((p[i] & 0xc0) != 0x80) 1642 return 1; 1643 return len; 1644 } 1645 1646 /* 1647 * Return the number of bytes the UTF-8 encoding of the character at "p" takes. 1648 * This includes following composing characters. 1649 */ 1650 int 1651 utfc_ptr2len(p) 1652 char_u *p; 1653 { 1654 int len; 1655 int b0 = *p; 1656 #ifdef FEAT_ARABIC 1657 int prevlen; 1658 #endif 1659 1660 if (b0 == NUL) 1661 return 0; 1662 if (b0 < 0x80 && p[1] < 0x80) /* be quick for ASCII */ 1663 return 1; 1664 1665 /* Skip over first UTF-8 char, stopping at a NUL byte. */ 1666 len = utf_ptr2len(p); 1667 1668 /* Check for illegal byte. */ 1669 if (len == 1 && b0 >= 0x80) 1670 return 1; 1671 1672 /* 1673 * Check for composing characters. We can handle only the first two, but 1674 * skip all of them (otherwise the cursor would get stuck). 1675 */ 1676 #ifdef FEAT_ARABIC 1677 prevlen = 0; 1678 #endif 1679 for (;;) 1680 { 1681 if (p[len] < 0x80 || !UTF_COMPOSINGLIKE(p + prevlen, p + len)) 1682 return len; 1683 1684 /* Skip over composing char */ 1685 #ifdef FEAT_ARABIC 1686 prevlen = len; 1687 #endif 1688 len += utf_ptr2len(p + len); 1689 } 1690 } 1691 1692 /* 1693 * Return the number of bytes the UTF-8 encoding of the character at "p[size]" 1694 * takes. This includes following composing characters. 1695 * Returns 1 for an illegal char or an incomplete byte sequence. 1696 */ 1697 int 1698 utfc_ptr2len_len(p, size) 1699 char_u *p; 1700 int size; 1701 { 1702 int len; 1703 #ifdef FEAT_ARABIC 1704 int prevlen; 1705 #endif 1706 1707 if (*p == NUL) 1708 return 0; 1709 if (p[0] < 0x80 && (size == 1 || p[1] < 0x80)) /* be quick for ASCII */ 1710 return 1; 1711 1712 /* Skip over first UTF-8 char, stopping at a NUL byte. */ 1713 len = utf_ptr2len_len(p, size); 1714 1715 /* Check for illegal byte and incomplete byte sequence. */ 1716 if ((len == 1 && p[0] >= 0x80) || len > size) 1717 return 1; 1718 1719 /* 1720 * Check for composing characters. We can handle only the first two, but 1721 * skip all of them (otherwise the cursor would get stuck). 1722 */ 1723 #ifdef FEAT_ARABIC 1724 prevlen = 0; 1725 #endif 1726 while (len < size) 1727 { 1728 if (p[len] < 0x80 || !UTF_COMPOSINGLIKE(p + prevlen, p + len)) 1729 break; 1730 1731 /* Skip over composing char */ 1732 #ifdef FEAT_ARABIC 1733 prevlen = len; 1734 #endif 1735 len += utf_ptr2len_len(p + len, size - len); 1736 } 1737 return len; 1738 } 1739 1740 /* 1741 * Return the number of bytes the UTF-8 encoding of character "c" takes. 1742 * This does not include composing characters. 1743 */ 1744 int 1745 utf_char2len(c) 1746 int c; 1747 { 1748 if (c < 0x80) 1749 return 1; 1750 if (c < 0x800) 1751 return 2; 1752 if (c < 0x10000) 1753 return 3; 1754 if (c < 0x200000) 1755 return 4; 1756 if (c < 0x4000000) 1757 return 5; 1758 return 6; 1759 } 1760 1761 /* 1762 * Convert Unicode character "c" to UTF-8 string in "buf[]". 1763 * Returns the number of bytes. 1764 * This does not include composing characters. 1765 */ 1766 int 1767 utf_char2bytes(c, buf) 1768 int c; 1769 char_u *buf; 1770 { 1771 if (c < 0x80) /* 7 bits */ 1772 { 1773 buf[0] = c; 1774 return 1; 1775 } 1776 if (c < 0x800) /* 11 bits */ 1777 { 1778 buf[0] = 0xc0 + ((unsigned)c >> 6); 1779 buf[1] = 0x80 + (c & 0x3f); 1780 return 2; 1781 } 1782 if (c < 0x10000) /* 16 bits */ 1783 { 1784 buf[0] = 0xe0 + ((unsigned)c >> 12); 1785 buf[1] = 0x80 + (((unsigned)c >> 6) & 0x3f); 1786 buf[2] = 0x80 + (c & 0x3f); 1787 return 3; 1788 } 1789 if (c < 0x200000) /* 21 bits */ 1790 { 1791 buf[0] = 0xf0 + ((unsigned)c >> 18); 1792 buf[1] = 0x80 + (((unsigned)c >> 12) & 0x3f); 1793 buf[2] = 0x80 + (((unsigned)c >> 6) & 0x3f); 1794 buf[3] = 0x80 + (c & 0x3f); 1795 return 4; 1796 } 1797 if (c < 0x4000000) /* 26 bits */ 1798 { 1799 buf[0] = 0xf8 + ((unsigned)c >> 24); 1800 buf[1] = 0x80 + (((unsigned)c >> 18) & 0x3f); 1801 buf[2] = 0x80 + (((unsigned)c >> 12) & 0x3f); 1802 buf[3] = 0x80 + (((unsigned)c >> 6) & 0x3f); 1803 buf[4] = 0x80 + (c & 0x3f); 1804 return 5; 1805 } 1806 /* 31 bits */ 1807 buf[0] = 0xfc + ((unsigned)c >> 30); 1808 buf[1] = 0x80 + (((unsigned)c >> 24) & 0x3f); 1809 buf[2] = 0x80 + (((unsigned)c >> 18) & 0x3f); 1810 buf[3] = 0x80 + (((unsigned)c >> 12) & 0x3f); 1811 buf[4] = 0x80 + (((unsigned)c >> 6) & 0x3f); 1812 buf[5] = 0x80 + (c & 0x3f); 1813 return 6; 1814 } 1815 1816 /* 1817 * Return TRUE if "c" is a composing UTF-8 character. This means it will be 1818 * drawn on top of the preceding character. 1819 * Based on code from Markus Kuhn. 1820 */ 1821 int 1822 utf_iscomposing(c) 1823 int c; 1824 { 1825 /* sorted list of non-overlapping intervals */ 1826 static struct interval combining[] = 1827 { 1828 {0x0300, 0x034f}, {0x0360, 0x036f}, {0x0483, 0x0486}, {0x0488, 0x0489}, 1829 {0x0591, 0x05a1}, {0x05a3, 0x05b9}, {0x05bb, 0x05bd}, {0x05bf, 0x05bf}, 1830 {0x05c1, 0x05c2}, {0x05c4, 0x05c4}, {0x0610, 0x0615}, {0x064b, 0x0658}, 1831 {0x0670, 0x0670}, {0x06d6, 0x06dc}, {0x06de, 0x06e4}, {0x06e7, 0x06e8}, 1832 {0x06ea, 0x06ed}, {0x0711, 0x0711}, {0x0730, 0x074a}, {0x07a6, 0x07b0}, 1833 {0x0901, 0x0903}, {0x093c, 0x093c}, {0x093e, 0x094d}, {0x0951, 0x0954}, 1834 {0x0962, 0x0963}, {0x0981, 0x0983}, {0x09bc, 0x09bc}, {0x09be, 0x09c4}, 1835 {0x09c7, 0x09c8}, {0x09cb, 0x09cd}, {0x09d7, 0x09d7}, {0x09e2, 0x09e3}, 1836 {0x0a01, 0x0a03}, {0x0a3c, 0x0a3c}, {0x0a3e, 0x0a42}, {0x0a47, 0x0a48}, 1837 {0x0a4b, 0x0a4d}, {0x0a70, 0x0a71}, {0x0a81, 0x0a83}, {0x0abc, 0x0abc}, 1838 {0x0abe, 0x0ac5}, {0x0ac7, 0x0ac9}, {0x0acb, 0x0acd}, {0x0ae2, 0x0ae3}, 1839 {0x0b01, 0x0b03}, {0x0b3c, 0x0b3c}, {0x0b3e, 0x0b43}, {0x0b47, 0x0b48}, 1840 {0x0b4b, 0x0b4d}, {0x0b56, 0x0b57}, {0x0b82, 0x0b82}, {0x0bbe, 0x0bc2}, 1841 {0x0bc6, 0x0bc8}, {0x0bca, 0x0bcd}, {0x0bd7, 0x0bd7}, {0x0c01, 0x0c03}, 1842 {0x0c3e, 0x0c44}, {0x0c46, 0x0c48}, {0x0c4a, 0x0c4d}, {0x0c55, 0x0c56}, 1843 {0x0c82, 0x0c83}, {0x0cbc, 0x0cbc}, {0x0cbe, 0x0cc4}, {0x0cc6, 0x0cc8}, 1844 {0x0cca, 0x0ccd}, {0x0cd5, 0x0cd6}, {0x0d02, 0x0d03}, {0x0d3e, 0x0d43}, 1845 {0x0d46, 0x0d48}, {0x0d4a, 0x0d4d}, {0x0d57, 0x0d57}, {0x0d82, 0x0d83}, 1846 {0x0dca, 0x0dca}, {0x0dcf, 0x0dd4}, {0x0dd6, 0x0dd6}, {0x0dd8, 0x0ddf}, 1847 {0x0df2, 0x0df3}, {0x0e31, 0x0e31}, {0x0e34, 0x0e3a}, {0x0e47, 0x0e4e}, 1848 {0x0eb1, 0x0eb1}, {0x0eb4, 0x0eb9}, {0x0ebb, 0x0ebc}, {0x0ec8, 0x0ecd}, 1849 {0x0f18, 0x0f19}, {0x0f35, 0x0f35}, {0x0f37, 0x0f37}, {0x0f39, 0x0f39}, 1850 {0x0f3e, 0x0f3f}, {0x0f71, 0x0f84}, {0x0f86, 0x0f87}, {0x0f90, 0x0f97}, 1851 {0x0f99, 0x0fbc}, {0x0fc6, 0x0fc6}, {0x102c, 0x1032}, {0x1036, 0x1039}, 1852 {0x1056, 0x1059}, {0x1712, 0x1714}, {0x1732, 0x1734}, {0x1752, 0x1753}, 1853 {0x1772, 0x1773}, {0x17b6, 0x17d3}, {0x17dd, 0x17dd}, {0x180b, 0x180d}, 1854 {0x18a9, 0x18a9}, {0x1920, 0x192b}, {0x1930, 0x193b}, {0x20d0, 0x20ea}, 1855 {0x302a, 0x302f}, {0x3099, 0x309a}, {0xfb1e, 0xfb1e}, {0xfe00, 0xfe0f}, 1856 {0xfe20, 0xfe23}, 1857 }; 1858 1859 return intable(combining, sizeof(combining), c); 1860 } 1861 1862 /* 1863 * Return TRUE for characters that can be displayed in a normal way. 1864 * Only for characters of 0x100 and above! 1865 */ 1866 int 1867 utf_printable(c) 1868 int c; 1869 { 1870 #ifdef USE_WCHAR_FUNCTIONS 1871 /* 1872 * Assume the iswprint() library function works better than our own stuff. 1873 */ 1874 return iswprint(c); 1875 #else 1876 /* Sorted list of non-overlapping intervals. 1877 * 0xd800-0xdfff is reserved for UTF-16, actually illegal. */ 1878 static struct interval nonprint[] = 1879 { 1880 {0x070f, 0x070f}, {0x180b, 0x180e}, {0x200b, 0x200f}, {0x202a, 0x202e}, 1881 {0x206a, 0x206f}, {0xd800, 0xdfff}, {0xfeff, 0xfeff}, {0xfff9, 0xfffb}, 1882 {0xfffe, 0xffff} 1883 }; 1884 1885 return !intable(nonprint, sizeof(nonprint), c); 1886 #endif 1887 } 1888 1889 /* 1890 * Get class of a Unicode character. 1891 * 0: white space 1892 * 1: punctuation 1893 * 2 or bigger: some class of word character. 1894 */ 1895 int 1896 utf_class(c) 1897 int c; 1898 { 1899 /* sorted list of non-overlapping intervals */ 1900 static struct clinterval 1901 { 1902 unsigned short first; 1903 unsigned short last; 1904 unsigned short class; 1905 } classes[] = 1906 { 1907 {0x037e, 0x037e, 1}, /* Greek question mark */ 1908 {0x0387, 0x0387, 1}, /* Greek ano teleia */ 1909 {0x055a, 0x055f, 1}, /* Armenian punctuation */ 1910 {0x0589, 0x0589, 1}, /* Armenian full stop */ 1911 {0x05be, 0x05be, 1}, 1912 {0x05c0, 0x05c0, 1}, 1913 {0x05c3, 0x05c3, 1}, 1914 {0x05f3, 0x05f4, 1}, 1915 {0x060c, 0x060c, 1}, 1916 {0x061b, 0x061b, 1}, 1917 {0x061f, 0x061f, 1}, 1918 {0x066a, 0x066d, 1}, 1919 {0x06d4, 0x06d4, 1}, 1920 {0x0700, 0x070d, 1}, /* Syriac punctuation */ 1921 {0x0964, 0x0965, 1}, 1922 {0x0970, 0x0970, 1}, 1923 {0x0df4, 0x0df4, 1}, 1924 {0x0e4f, 0x0e4f, 1}, 1925 {0x0e5a, 0x0e5b, 1}, 1926 {0x0f04, 0x0f12, 1}, 1927 {0x0f3a, 0x0f3d, 1}, 1928 {0x0f85, 0x0f85, 1}, 1929 {0x104a, 0x104f, 1}, /* Myanmar punctuation */ 1930 {0x10fb, 0x10fb, 1}, /* Georgian punctuation */ 1931 {0x1361, 0x1368, 1}, /* Ethiopic punctuation */ 1932 {0x166d, 0x166e, 1}, /* Canadian Syl. punctuation */ 1933 {0x1680, 0x1680, 0}, 1934 {0x169b, 0x169c, 1}, 1935 {0x16eb, 0x16ed, 1}, 1936 {0x1735, 0x1736, 1}, 1937 {0x17d4, 0x17dc, 1}, /* Khmer punctuation */ 1938 {0x1800, 0x180a, 1}, /* Mongolian punctuation */ 1939 {0x2000, 0x200b, 0}, /* spaces */ 1940 {0x200c, 0x2027, 1}, /* punctuation and symbols */ 1941 {0x2028, 0x2029, 0}, 1942 {0x202a, 0x202e, 1}, /* punctuation and symbols */ 1943 {0x202f, 0x202f, 0}, 1944 {0x2030, 0x205e, 1}, /* punctuation and symbols */ 1945 {0x205f, 0x205f, 0}, 1946 {0x2060, 0x27ff, 1}, /* punctuation and symbols */ 1947 {0x2070, 0x207f, 0x2070}, /* superscript */ 1948 {0x2080, 0x208f, 0x2080}, /* subscript */ 1949 {0x2983, 0x2998, 1}, 1950 {0x29d8, 0x29db, 1}, 1951 {0x29fc, 0x29fd, 1}, 1952 {0x3000, 0x3000, 0}, /* ideographic space */ 1953 {0x3001, 0x3020, 1}, /* ideographic punctuation */ 1954 {0x3030, 0x3030, 1}, 1955 {0x303d, 0x303d, 1}, 1956 {0x3040, 0x309f, 0x3040}, /* Hiragana */ 1957 {0x30a0, 0x30ff, 0x30a0}, /* Katakana */ 1958 {0x3300, 0x9fff, 0x4e00}, /* CJK Ideographs */ 1959 {0xac00, 0xd7a3, 0xac00}, /* Hangul Syllables */ 1960 {0xf900, 0xfaff, 0x4e00}, /* CJK Ideographs */ 1961 {0xfd3e, 0xfd3f, 1}, 1962 {0xfe30, 0xfe6b, 1}, /* punctuation forms */ 1963 {0xff00, 0xff0f, 1}, /* half/fullwidth ASCII */ 1964 {0xff1a, 0xff20, 1}, /* half/fullwidth ASCII */ 1965 {0xff3b, 0xff40, 1}, /* half/fullwidth ASCII */ 1966 {0xff5b, 0xff65, 1}, /* half/fullwidth ASCII */ 1967 }; 1968 int bot = 0; 1969 int top = sizeof(classes) / sizeof(struct clinterval) - 1; 1970 int mid; 1971 1972 /* First quick check for Latin1 characters, use 'iskeyword'. */ 1973 if (c < 0x100) 1974 { 1975 if (c == ' ' || c == '\t' || c == NUL || c == 0xa0) 1976 return 0; /* blank */ 1977 if (vim_iswordc(c)) 1978 return 2; /* word character */ 1979 return 1; /* punctuation */ 1980 } 1981 1982 /* binary search in table */ 1983 while (top >= bot) 1984 { 1985 mid = (bot + top) / 2; 1986 if (classes[mid].last < c) 1987 bot = mid + 1; 1988 else if (classes[mid].first > c) 1989 top = mid - 1; 1990 else 1991 return (int)classes[mid].class; 1992 } 1993 1994 /* most other characters are "word" characters */ 1995 return 2; 1996 } 1997 1998 /* 1999 * Code for Unicode case-dependent operations. Based on notes in 2000 * http://www.unicode.org/Public/UNIDATA/CaseFolding.txt 2001 * This code uses simple case folding, not full case folding. 2002 */ 2003 2004 /* 2005 * The following table is built by foldExtract.pl < CaseFolding.txt . 2006 * It must be in numeric order, because we use binary search on it. 2007 * An entry such as {0x41,0x5a,1,32} means that UCS-4 characters in the range 2008 * from 0x41 to 0x5a inclusive, stepping by 1, are folded by adding 32. 2009 */ 2010 2011 typedef struct 2012 { 2013 int rangeStart; 2014 int rangeEnd; 2015 int step; 2016 int offset; 2017 } convertStruct; 2018 2019 static convertStruct foldCase[] = 2020 { 2021 {0x41,0x5a,1,32}, {0xc0,0xd6,1,32}, {0xd8,0xde,1,32}, 2022 {0x100,0x12e,2,1}, {0x130,0x130,-1,-199}, {0x132,0x136,2,1}, 2023 {0x139,0x147,2,1}, {0x14a,0x176,2,1}, {0x178,0x178,-1,-121}, 2024 {0x179,0x17d,2,1}, {0x181,0x181,-1,210}, {0x182,0x184,2,1}, 2025 {0x186,0x186,-1,206}, {0x187,0x187,-1,1}, {0x189,0x18a,1,205}, 2026 {0x18b,0x18b,-1,1}, {0x18e,0x18e,-1,79}, {0x18f,0x18f,-1,202}, 2027 {0x190,0x190,-1,203}, {0x191,0x191,-1,1}, {0x193,0x193,-1,205}, 2028 {0x194,0x194,-1,207}, {0x196,0x196,-1,211}, {0x197,0x197,-1,209}, 2029 {0x198,0x198,-1,1}, {0x19c,0x19c,-1,211}, {0x19d,0x19d,-1,213}, 2030 {0x19f,0x19f,-1,214}, {0x1a0,0x1a4,2,1}, {0x1a6,0x1a6,-1,218}, 2031 {0x1a7,0x1a7,-1,1}, {0x1a9,0x1a9,-1,218}, {0x1ac,0x1ac,-1,1}, 2032 {0x1ae,0x1ae,-1,218}, {0x1af,0x1af,-1,1}, {0x1b1,0x1b2,1,217}, 2033 {0x1b3,0x1b5,2,1}, {0x1b7,0x1b7,-1,219}, {0x1b8,0x1bc,4,1}, 2034 {0x1c4,0x1c4,-1,2}, {0x1c5,0x1c5,-1,1}, {0x1c7,0x1c7,-1,2}, 2035 {0x1c8,0x1c8,-1,1}, {0x1ca,0x1ca,-1,2}, {0x1cb,0x1db,2,1}, 2036 {0x1de,0x1ee,2,1}, {0x1f1,0x1f1,-1,2}, {0x1f2,0x1f4,2,1}, 2037 {0x1f6,0x1f6,-1,-97}, {0x1f7,0x1f7,-1,-56}, {0x1f8,0x21e,2,1}, 2038 {0x220,0x220,-1,-130}, {0x222,0x232,2,1}, {0x386,0x386,-1,38}, 2039 {0x388,0x38a,1,37}, {0x38c,0x38c,-1,64}, {0x38e,0x38f,1,63}, 2040 {0x391,0x3a1,1,32}, {0x3a3,0x3ab,1,32}, {0x3d8,0x3ee,2,1}, 2041 {0x3f4,0x3f4,-1,-60}, {0x3f7,0x3f7,-1,1}, {0x3f9,0x3f9,-1,-7}, 2042 {0x3fa,0x3fa,-1,1}, {0x400,0x40f,1,80}, {0x410,0x42f,1,32}, 2043 {0x460,0x480,2,1}, {0x48a,0x4be,2,1}, {0x4c1,0x4cd,2,1}, 2044 {0x4d0,0x4f4,2,1}, {0x4f8,0x500,8,1}, {0x502,0x50e,2,1}, 2045 {0x531,0x556,1,48}, {0x1e00,0x1e94,2,1}, {0x1ea0,0x1ef8,2,1}, 2046 {0x1f08,0x1f0f,1,-8}, {0x1f18,0x1f1d,1,-8}, {0x1f28,0x1f2f,1,-8}, 2047 {0x1f38,0x1f3f,1,-8}, {0x1f48,0x1f4d,1,-8}, {0x1f59,0x1f5f,2,-8}, 2048 {0x1f68,0x1f6f,1,-8}, {0x1f88,0x1f8f,1,-8}, {0x1f98,0x1f9f,1,-8}, 2049 {0x1fa8,0x1faf,1,-8}, {0x1fb8,0x1fb9,1,-8}, {0x1fba,0x1fbb,1,-74}, 2050 {0x1fbc,0x1fbc,-1,-9}, {0x1fc8,0x1fcb,1,-86}, {0x1fcc,0x1fcc,-1,-9}, 2051 {0x1fd8,0x1fd9,1,-8}, {0x1fda,0x1fdb,1,-100}, {0x1fe8,0x1fe9,1,-8}, 2052 {0x1fea,0x1feb,1,-112}, {0x1fec,0x1fec,-1,-7}, {0x1ff8,0x1ff9,1,-128}, 2053 {0x1ffa,0x1ffb,1,-126}, {0x1ffc,0x1ffc,-1,-9}, {0x2126,0x2126,-1,-7517}, 2054 {0x212a,0x212a,-1,-8383}, {0x212b,0x212b,-1,-8262}, 2055 {0x2160,0x216f,1,16}, {0x24b6,0x24cf,1,26}, {0xff21,0xff3a,1,32}, 2056 {0x10400,0x10427,1,40} 2057 }; 2058 2059 static int utf_convert(int a, convertStruct table[], int tableSize); 2060 2061 /* 2062 * Generic conversion function for case operations. 2063 * Return the converted equivalent of "a", which is a UCS-4 character. Use 2064 * the given conversion "table". Uses binary search on "table". 2065 */ 2066 static int 2067 utf_convert(a, table, tableSize) 2068 int a; 2069 convertStruct table[]; 2070 int tableSize; 2071 { 2072 int start, mid, end; /* indices into table */ 2073 2074 start = 0; 2075 end = tableSize / sizeof(convertStruct); 2076 while (start < end) 2077 { 2078 /* need to search further */ 2079 mid = (end + start) /2; 2080 if (table[mid].rangeEnd < a) 2081 start = mid + 1; 2082 else 2083 end = mid; 2084 } 2085 if (table[start].rangeStart <= a && a <= table[start].rangeEnd 2086 && (a - table[start].rangeStart) % table[start].step == 0) 2087 return (a + table[start].offset); 2088 else 2089 return a; 2090 } 2091 2092 /* 2093 * Return the folded-case equivalent of "a", which is a UCS-4 character. Uses 2094 * simple case folding. 2095 */ 2096 int 2097 utf_fold(a) 2098 int a; 2099 { 2100 return utf_convert(a, foldCase, sizeof(foldCase)); 2101 } 2102 2103 /* 2104 * The following tables are built by upperLowerExtract.pl < UnicodeData.txt . 2105 * They must be in numeric order, because we use binary search on them. 2106 * An entry such as {0x41,0x5a,1,32} means that UCS-4 characters in the range 2107 * from 0x41 to 0x5a inclusive, stepping by 1, are switched to lower (for 2108 * example) by adding 32. 2109 */ 2110 static convertStruct toLower[] = 2111 { 2112 {0x41,0x5a,1,32}, {0xc0,0xd6,1,32}, {0xd8,0xde,1,32}, 2113 {0x100,0x12e,2,1}, {0x130,0x130,-1,-199}, {0x132,0x136,2,1}, 2114 {0x139,0x147,2,1}, {0x14a,0x176,2,1}, {0x178,0x178,-1,-121}, 2115 {0x179,0x17d,2,1}, {0x181,0x181,-1,210}, {0x182,0x184,2,1}, 2116 {0x186,0x186,-1,206}, {0x187,0x187,-1,1}, {0x189,0x18a,1,205}, 2117 {0x18b,0x18b,-1,1}, {0x18e,0x18e,-1,79}, {0x18f,0x18f,-1,202}, 2118 {0x190,0x190,-1,203}, {0x191,0x191,-1,1}, {0x193,0x193,-1,205}, 2119 {0x194,0x194,-1,207}, {0x196,0x196,-1,211}, {0x197,0x197,-1,209}, 2120 {0x198,0x198,-1,1}, {0x19c,0x19c,-1,211}, {0x19d,0x19d,-1,213}, 2121 {0x19f,0x19f,-1,214}, {0x1a0,0x1a4,2,1}, {0x1a6,0x1a6,-1,218}, 2122 {0x1a7,0x1a7,-1,1}, {0x1a9,0x1a9,-1,218}, {0x1ac,0x1ac,-1,1}, 2123 {0x1ae,0x1ae,-1,218}, {0x1af,0x1af,-1,1}, {0x1b1,0x1b2,1,217}, 2124 {0x1b3,0x1b5,2,1}, {0x1b7,0x1b7,-1,219}, {0x1b8,0x1bc,4,1}, 2125 {0x1c4,0x1ca,3,2}, {0x1cd,0x1db,2,1}, {0x1de,0x1ee,2,1}, 2126 {0x1f1,0x1f1,-1,2}, {0x1f4,0x1f4,-1,1}, {0x1f6,0x1f6,-1,-97}, 2127 {0x1f7,0x1f7,-1,-56}, {0x1f8,0x21e,2,1}, {0x220,0x220,-1,-130}, 2128 {0x222,0x232,2,1}, {0x386,0x386,-1,38}, {0x388,0x38a,1,37}, 2129 {0x38c,0x38c,-1,64}, {0x38e,0x38f,1,63}, {0x391,0x3a1,1,32}, 2130 {0x3a3,0x3ab,1,32}, {0x3d8,0x3ee,2,1}, {0x3f4,0x3f4,-1,-60}, 2131 {0x3f7,0x3f7,-1,1}, {0x3f9,0x3f9,-1,-7}, {0x3fa,0x3fa,-1,1}, 2132 {0x400,0x40f,1,80}, {0x410,0x42f,1,32}, {0x460,0x480,2,1}, 2133 {0x48a,0x4be,2,1}, {0x4c1,0x4cd,2,1}, {0x4d0,0x4f4,2,1}, 2134 {0x4f8,0x500,8,1}, {0x502,0x50e,2,1}, {0x531,0x556,1,48}, 2135 {0x1e00,0x1e94,2,1}, {0x1ea0,0x1ef8,2,1}, {0x1f08,0x1f0f,1,-8}, 2136 {0x1f18,0x1f1d,1,-8}, {0x1f28,0x1f2f,1,-8}, {0x1f38,0x1f3f,1,-8}, 2137 {0x1f48,0x1f4d,1,-8}, {0x1f59,0x1f5f,2,-8}, {0x1f68,0x1f6f,1,-8}, 2138 {0x1fb8,0x1fb9,1,-8}, {0x1fba,0x1fbb,1,-74}, {0x1fc8,0x1fcb,1,-86}, 2139 {0x1fd8,0x1fd9,1,-8}, {0x1fda,0x1fdb,1,-100}, {0x1fe8,0x1fe9,1,-8}, 2140 {0x1fea,0x1feb,1,-112}, {0x1fec,0x1fec,-1,-7}, {0x1ff8,0x1ff9,1,-128}, 2141 {0x1ffa,0x1ffb,1,-126}, {0x2126,0x2126,-1,-7517}, {0x212a,0x212a,-1,-8383}, 2142 {0x212b,0x212b,-1,-8262}, {0xff21,0xff3a,1,32}, {0x10400,0x10427,1,40} 2143 }; 2144 2145 static convertStruct toUpper[] = 2146 { 2147 {0x61,0x7a,1,-32}, {0xb5,0xb5,-1,743}, {0xe0,0xf6,1,-32}, 2148 {0xf8,0xfe,1,-32}, {0xff,0xff,-1,121}, {0x101,0x12f,2,-1}, 2149 {0x131,0x131,-1,-232}, {0x133,0x137,2,-1}, {0x13a,0x148,2,-1}, 2150 {0x14b,0x177,2,-1}, {0x17a,0x17e,2,-1}, {0x17f,0x17f,-1,-300}, 2151 {0x183,0x185,2,-1}, {0x188,0x18c,4,-1}, {0x192,0x192,-1,-1}, 2152 {0x195,0x195,-1,97}, {0x199,0x199,-1,-1}, {0x19e,0x19e,-1,130}, 2153 {0x1a1,0x1a5,2,-1}, {0x1a8,0x1ad,5,-1}, {0x1b0,0x1b4,4,-1}, 2154 {0x1b6,0x1b9,3,-1}, {0x1bd,0x1bd,-1,-1}, {0x1bf,0x1bf,-1,56}, 2155 {0x1c5,0x1c6,1,-1}, {0x1c8,0x1c9,1,-1}, {0x1cb,0x1cc,1,-1}, 2156 {0x1ce,0x1dc,2,-1}, {0x1dd,0x1dd,-1,-79}, {0x1df,0x1ef,2,-1}, 2157 {0x1f2,0x1f3,1,-1}, {0x1f5,0x1f9,4,-1}, {0x1fb,0x21f,2,-1}, 2158 {0x223,0x233,2,-1}, {0x253,0x253,-1,-210}, {0x254,0x254,-1,-206}, 2159 {0x256,0x257,1,-205}, {0x259,0x259,-1,-202}, {0x25b,0x25b,-1,-203}, 2160 {0x260,0x260,-1,-205}, {0x263,0x263,-1,-207}, {0x268,0x268,-1,-209}, 2161 {0x269,0x26f,6,-211}, {0x272,0x272,-1,-213}, {0x275,0x275,-1,-214}, 2162 {0x280,0x283,3,-218}, {0x288,0x288,-1,-218}, {0x28a,0x28b,1,-217}, 2163 {0x292,0x292,-1,-219}, {0x3ac,0x3ac,-1,-38}, {0x3ad,0x3af,1,-37}, 2164 {0x3b1,0x3c1,1,-32}, {0x3c2,0x3c2,-1,-31}, {0x3c3,0x3cb,1,-32}, 2165 {0x3cc,0x3cc,-1,-64}, {0x3cd,0x3ce,1,-63}, {0x3d0,0x3d0,-1,-62}, 2166 {0x3d1,0x3d1,-1,-57}, {0x3d5,0x3d5,-1,-47}, {0x3d6,0x3d6,-1,-54}, 2167 {0x3d9,0x3ef,2,-1}, {0x3f0,0x3f0,-1,-86}, {0x3f1,0x3f1,-1,-80}, 2168 {0x3f2,0x3f2,-1,7}, {0x3f5,0x3f5,-1,-96}, {0x3f8,0x3fb,3,-1}, 2169 {0x430,0x44f,1,-32}, {0x450,0x45f,1,-80}, {0x461,0x481,2,-1}, 2170 {0x48b,0x4bf,2,-1}, {0x4c2,0x4ce,2,-1}, {0x4d1,0x4f5,2,-1}, 2171 {0x4f9,0x501,8,-1}, {0x503,0x50f,2,-1}, {0x561,0x586,1,-48}, 2172 {0x1e01,0x1e95,2,-1}, {0x1e9b,0x1e9b,-1,-59}, {0x1ea1,0x1ef9,2,-1}, 2173 {0x1f00,0x1f07,1,8}, {0x1f10,0x1f15,1,8}, {0x1f20,0x1f27,1,8}, 2174 {0x1f30,0x1f37,1,8}, {0x1f40,0x1f45,1,8}, {0x1f51,0x1f57,2,8}, 2175 {0x1f60,0x1f67,1,8}, {0x1f70,0x1f71,1,74}, {0x1f72,0x1f75,1,86}, 2176 {0x1f76,0x1f77,1,100}, {0x1f78,0x1f79,1,128}, {0x1f7a,0x1f7b,1,112}, 2177 {0x1f7c,0x1f7d,1,126}, {0x1f80,0x1f87,1,8}, {0x1f90,0x1f97,1,8}, 2178 {0x1fa0,0x1fa7,1,8}, {0x1fb0,0x1fb1,1,8}, {0x1fb3,0x1fb3,-1,9}, 2179 {0x1fbe,0x1fbe,-1,-7205}, {0x1fc3,0x1fc3,-1,9}, {0x1fd0,0x1fd1,1,8}, 2180 {0x1fe0,0x1fe1,1,8}, {0x1fe5,0x1fe5,-1,7}, {0x1ff3,0x1ff3,-1,9}, 2181 {0xff41,0xff5a,1,-32}, {0x10428,0x1044f,1,-40} 2182 }; 2183 2184 /* 2185 * Return the upper-case equivalent of "a", which is a UCS-4 character. Use 2186 * simple case folding. 2187 */ 2188 int 2189 utf_toupper(a) 2190 int a; 2191 { 2192 /* If 'casemap' contains "keepascii" use ASCII style toupper(). */ 2193 if (a < 128 && (cmp_flags & CMP_KEEPASCII)) 2194 return TOUPPER_ASC(a); 2195 2196 #if defined(HAVE_TOWUPPER) && defined(__STDC__ISO_10646__) 2197 /* If towupper() is availble and handles Unicode, use it. */ 2198 if (!(cmp_flags & CMP_INTERNAL)) 2199 return towupper(a); 2200 #endif 2201 2202 /* For characters below 128 use locale sensitive toupper(). */ 2203 if (a < 128) 2204 return TOUPPER_LOC(a); 2205 2206 /* For any other characters use the above mapping table. */ 2207 return utf_convert(a, toUpper, sizeof(toUpper)); 2208 } 2209 2210 int 2211 utf_islower(a) 2212 int a; 2213 { 2214 return (utf_toupper(a) != a); 2215 } 2216 2217 /* 2218 * Return the lower-case equivalent of "a", which is a UCS-4 character. Use 2219 * simple case folding. 2220 */ 2221 int 2222 utf_tolower(a) 2223 int a; 2224 { 2225 /* If 'casemap' contains "keepascii" use ASCII style tolower(). */ 2226 if (a < 128 && (cmp_flags & CMP_KEEPASCII)) 2227 return TOLOWER_ASC(a); 2228 2229 #if defined(HAVE_TOWLOWER) && defined(__STDC__ISO_10646__) 2230 /* If towlower() is available and handles Unicode, use it. */ 2231 if (!(cmp_flags & CMP_INTERNAL)) 2232 return towlower(a); 2233 #endif 2234 2235 /* For characters below 128 use locale sensitive tolower(). */ 2236 if (a < 128) 2237 return TOLOWER_LOC(a); 2238 2239 /* For any other characters use the above mapping table. */ 2240 return utf_convert(a, toLower, sizeof(toLower)); 2241 } 2242 2243 int 2244 utf_isupper(a) 2245 int a; 2246 { 2247 return (utf_tolower(a) != a); 2248 } 2249 2250 /* 2251 * Version of strnicmp() that handles multi-byte characters. 2252 * Needed for Big5, Sjift-JIS and UTF-8 encoding. Other DBCS encodings can 2253 * probably use strnicmp(), because there are no ASCII characters in the 2254 * second byte. 2255 * Returns zero if s1 and s2 are equal (ignoring case), the difference between 2256 * two characters otherwise. 2257 */ 2258 int 2259 mb_strnicmp(s1, s2, nn) 2260 char_u *s1, *s2; 2261 size_t nn; 2262 { 2263 int i, j, l; 2264 int cdiff; 2265 int incomplete = FALSE; 2266 int n = nn; 2267 2268 for (i = 0; i < n; i += l) 2269 { 2270 if (s1[i] == NUL && s2[i] == NUL) /* both strings end */ 2271 return 0; 2272 if (enc_utf8) 2273 { 2274 l = utf_byte2len(s1[i]); 2275 if (l > n - i) 2276 { 2277 l = n - i; /* incomplete character */ 2278 incomplete = TRUE; 2279 } 2280 /* Check directly first, it's faster. */ 2281 for (j = 0; j < l; ++j) 2282 if (s1[i + j] != s2[i + j]) 2283 break; 2284 if (j < l) 2285 { 2286 /* If one of the two characters is incomplete return -1. */ 2287 if (incomplete || i + utf_byte2len(s2[i]) > n) 2288 return -1; 2289 cdiff = utf_fold(utf_ptr2char(s1 + i)) 2290 - utf_fold(utf_ptr2char(s2 + i)); 2291 if (cdiff != 0) 2292 return cdiff; 2293 } 2294 } 2295 else 2296 { 2297 l = (*mb_ptr2len)(s1 + i); 2298 if (l <= 1) 2299 { 2300 /* Single byte: first check normally, then with ignore case. */ 2301 if (s1[i] != s2[i]) 2302 { 2303 cdiff = TOLOWER_LOC(s1[i]) - TOLOWER_LOC(s2[i]); 2304 if (cdiff != 0) 2305 return cdiff; 2306 } 2307 } 2308 else 2309 { 2310 /* For non-Unicode multi-byte don't ignore case. */ 2311 if (l > n - i) 2312 l = n - i; 2313 cdiff = STRNCMP(s1 + i, s2 + i, l); 2314 if (cdiff != 0) 2315 return cdiff; 2316 } 2317 } 2318 } 2319 return 0; 2320 } 2321 2322 /* 2323 * "g8": show bytes of the UTF-8 char under the cursor. Doesn't matter what 2324 * 'encoding' has been set to. 2325 */ 2326 void 2327 show_utf8() 2328 { 2329 int len; 2330 int rlen = 0; 2331 char_u *line; 2332 int clen; 2333 int i; 2334 2335 /* Get the byte length of the char under the cursor, including composing 2336 * characters. */ 2337 line = ml_get_cursor(); 2338 len = utfc_ptr2len(line); 2339 if (len == 0) 2340 { 2341 MSG("NUL"); 2342 return; 2343 } 2344 2345 clen = 0; 2346 for (i = 0; i < len; ++i) 2347 { 2348 if (clen == 0) 2349 { 2350 /* start of (composing) character, get its length */ 2351 if (i > 0) 2352 { 2353 STRCPY(IObuff + rlen, "+ "); 2354 rlen += 2; 2355 } 2356 clen = utf_ptr2len(line + i); 2357 } 2358 sprintf((char *)IObuff + rlen, "%02x ", line[i]); 2359 --clen; 2360 rlen += STRLEN(IObuff + rlen); 2361 if (rlen > IOSIZE - 20) 2362 break; 2363 } 2364 2365 msg(IObuff); 2366 } 2367 2368 /* 2369 * mb_head_off() function pointer. 2370 * Return offset from "p" to the first byte of the character it points into. 2371 * Returns 0 when already at the first byte of a character. 2372 */ 2373 /*ARGSUSED*/ 2374 int 2375 latin_head_off(base, p) 2376 char_u *base; 2377 char_u *p; 2378 { 2379 return 0; 2380 } 2381 2382 int 2383 dbcs_head_off(base, p) 2384 char_u *base; 2385 char_u *p; 2386 { 2387 char_u *q; 2388 2389 /* It can't be a trailing byte when not using DBCS, at the start of the 2390 * string or the previous byte can't start a double-byte. */ 2391 if (p <= base || MB_BYTE2LEN(p[-1]) == 1) 2392 return 0; 2393 2394 /* This is slow: need to start at the base and go forward until the 2395 * byte we are looking for. Return 1 when we went past it, 0 otherwise. */ 2396 q = base; 2397 while (q < p) 2398 q += dbcs_ptr2len(q); 2399 return (q == p) ? 0 : 1; 2400 } 2401 2402 #if defined(FEAT_CLIPBOARD) || defined(FEAT_GUI) || defined(FEAT_RIGHTLEFT) \ 2403 || defined(PROTO) 2404 /* 2405 * Special version of dbcs_head_off() that works for ScreenLines[], where 2406 * single-width DBCS_JPNU characters are stored separately. 2407 */ 2408 int 2409 dbcs_screen_head_off(base, p) 2410 char_u *base; 2411 char_u *p; 2412 { 2413 char_u *q; 2414 2415 /* It can't be a trailing byte when not using DBCS, at the start of the 2416 * string or the previous byte can't start a double-byte. 2417 * For euc-jp an 0x8e byte in the previous cell always means we have a 2418 * lead byte in the current cell. */ 2419 if (p <= base 2420 || (enc_dbcs == DBCS_JPNU && p[-1] == 0x8e) 2421 || MB_BYTE2LEN(p[-1]) == 1) 2422 return 0; 2423 2424 /* This is slow: need to start at the base and go forward until the 2425 * byte we are looking for. Return 1 when we went past it, 0 otherwise. 2426 * For DBCS_JPNU look out for 0x8e, which means the second byte is not 2427 * stored as the next byte. */ 2428 q = base; 2429 while (q < p) 2430 { 2431 if (enc_dbcs == DBCS_JPNU && *q == 0x8e) 2432 ++q; 2433 else 2434 q += dbcs_ptr2len(q); 2435 } 2436 return (q == p) ? 0 : 1; 2437 } 2438 #endif 2439 2440 int 2441 utf_head_off(base, p) 2442 char_u *base; 2443 char_u *p; 2444 { 2445 char_u *q; 2446 char_u *s; 2447 int c; 2448 #ifdef FEAT_ARABIC 2449 char_u *j; 2450 #endif 2451 2452 if (*p < 0x80) /* be quick for ASCII */ 2453 return 0; 2454 2455 /* Skip backwards over trailing bytes: 10xx.xxxx 2456 * Skip backwards again if on a composing char. */ 2457 for (q = p; ; --q) 2458 { 2459 /* Move s to the last byte of this char. */ 2460 for (s = q; (s[1] & 0xc0) == 0x80; ++s) 2461 ; 2462 /* Move q to the first byte of this char. */ 2463 while (q > base && (*q & 0xc0) == 0x80) 2464 --q; 2465 /* Check for illegal sequence. Do allow an illegal byte after where we 2466 * started. */ 2467 if (utf8len_tab[*q] != (int)(s - q + 1) 2468 && utf8len_tab[*q] != (int)(p - q + 1)) 2469 return 0; 2470 2471 if (q <= base) 2472 break; 2473 2474 c = utf_ptr2char(q); 2475 if (utf_iscomposing(c)) 2476 continue; 2477 2478 #ifdef FEAT_ARABIC 2479 if (arabic_maycombine(c)) 2480 { 2481 /* Advance to get a sneak-peak at the next char */ 2482 j = q; 2483 --j; 2484 /* Move j to the first byte of this char. */ 2485 while (j > base && (*j & 0xc0) == 0x80) 2486 --j; 2487 if (arabic_combine(utf_ptr2char(j), c)) 2488 continue; 2489 } 2490 #endif 2491 break; 2492 } 2493 2494 return (int)(p - q); 2495 } 2496 2497 #if defined(FEAT_EVAL) || defined(PROTO) 2498 /* 2499 * Copy a character from "*fp" to "*tp" and advance the pointers. 2500 */ 2501 void 2502 mb_copy_char(fp, tp) 2503 char_u **fp; 2504 char_u **tp; 2505 { 2506 int l = (*mb_ptr2len)(*fp); 2507 2508 mch_memmove(*tp, *fp, (size_t)l); 2509 *tp += l; 2510 *fp += l; 2511 } 2512 #endif 2513 2514 /* 2515 * Return the offset from "p" to the first byte of a character. When "p" is 2516 * at the start of a character 0 is returned, otherwise the offset to the next 2517 * character. Can start anywhere in a stream of bytes. 2518 */ 2519 int 2520 mb_off_next(base, p) 2521 char_u *base; 2522 char_u *p; 2523 { 2524 int i; 2525 int j; 2526 2527 if (enc_utf8) 2528 { 2529 if (*p < 0x80) /* be quick for ASCII */ 2530 return 0; 2531 2532 /* Find the next character that isn't 10xx.xxxx */ 2533 for (i = 0; (p[i] & 0xc0) == 0x80; ++i) 2534 ; 2535 if (i > 0) 2536 { 2537 /* Check for illegal sequence. */ 2538 for (j = 0; p - j > base; ++j) 2539 if ((p[-j] & 0xc0) != 0x80) 2540 break; 2541 if (utf8len_tab[p[-j]] != i + j) 2542 return 0; 2543 } 2544 return i; 2545 } 2546 2547 /* Only need to check if we're on a trail byte, it doesn't matter if we 2548 * want the offset to the next or current character. */ 2549 return (*mb_head_off)(base, p); 2550 } 2551 2552 /* 2553 * Return the offset from "p" to the last byte of the character it points 2554 * into. Can start anywhere in a stream of bytes. 2555 */ 2556 int 2557 mb_tail_off(base, p) 2558 char_u *base; 2559 char_u *p; 2560 { 2561 int i; 2562 int j; 2563 2564 if (*p == NUL) 2565 return 0; 2566 2567 if (enc_utf8) 2568 { 2569 /* Find the last character that is 10xx.xxxx */ 2570 for (i = 0; (p[i + 1] & 0xc0) == 0x80; ++i) 2571 ; 2572 /* Check for illegal sequence. */ 2573 for (j = 0; p - j > base; ++j) 2574 if ((p[-j] & 0xc0) != 0x80) 2575 break; 2576 if (utf8len_tab[p[-j]] != i + j + 1) 2577 return 0; 2578 return i; 2579 } 2580 2581 /* It can't be the first byte if a double-byte when not using DBCS, at the 2582 * end of the string or the byte can't start a double-byte. */ 2583 if (enc_dbcs == 0 || p[1] == NUL || MB_BYTE2LEN(*p) == 1) 2584 return 0; 2585 2586 /* Return 1 when on the lead byte, 0 when on the tail byte. */ 2587 return 1 - dbcs_head_off(base, p); 2588 } 2589 2590 #if defined(HAVE_GTK2) || defined(PROTO) 2591 /* 2592 * Return TRUE if string "s" is a valid utf-8 string. 2593 * When "end" is NULL stop at the first NUL. 2594 * When "end" is positive stop there. 2595 */ 2596 int 2597 utf_valid_string(s, end) 2598 char_u *s; 2599 char_u *end; 2600 { 2601 int l; 2602 char_u *p = s; 2603 2604 while (end == NULL ? *p != NUL : p < end) 2605 { 2606 if ((*p & 0xc0) == 0x80) 2607 return FALSE; /* invalid lead byte */ 2608 l = utf8len_tab[*p]; 2609 if (end != NULL && p + l > end) 2610 return FALSE; /* incomplete byte sequence */ 2611 ++p; 2612 while (--l > 0) 2613 if ((*p++ & 0xc0) != 0x80) 2614 return FALSE; /* invalid trail byte */ 2615 } 2616 return TRUE; 2617 } 2618 #endif 2619 2620 #if defined(FEAT_GUI) || defined(PROTO) 2621 /* 2622 * Special version of mb_tail_off() for use in ScreenLines[]. 2623 */ 2624 int 2625 dbcs_screen_tail_off(base, p) 2626 char_u *base; 2627 char_u *p; 2628 { 2629 /* It can't be the first byte if a double-byte when not using DBCS, at the 2630 * end of the string or the byte can't start a double-byte. 2631 * For euc-jp an 0x8e byte always means we have a lead byte in the current 2632 * cell. */ 2633 if (*p == NUL || p[1] == NUL 2634 || (enc_dbcs == DBCS_JPNU && *p == 0x8e) 2635 || MB_BYTE2LEN(*p) == 1) 2636 return 0; 2637 2638 /* Return 1 when on the lead byte, 0 when on the tail byte. */ 2639 return 1 - dbcs_screen_head_off(base, p); 2640 } 2641 #endif 2642 2643 /* 2644 * If the cursor moves on an trail byte, set the cursor on the lead byte. 2645 * Thus it moves left if necessary. 2646 * Return TRUE when the cursor was adjusted. 2647 */ 2648 void 2649 mb_adjust_cursor() 2650 { 2651 mb_adjustpos(&curwin->w_cursor); 2652 } 2653 2654 /* 2655 * Adjust position "*lp" to point to the first byte of a multi-byte character. 2656 * If it points to a tail byte it's moved backwards to the head byte. 2657 */ 2658 void 2659 mb_adjustpos(lp) 2660 pos_T *lp; 2661 { 2662 char_u *p; 2663 2664 if (lp->col > 0 2665 #ifdef FEAT_VIRTUALEDIT 2666 || lp->coladd > 1 2667 #endif 2668 ) 2669 { 2670 p = ml_get(lp->lnum); 2671 lp->col -= (*mb_head_off)(p, p + lp->col); 2672 #ifdef FEAT_VIRTUALEDIT 2673 /* Reset "coladd" when the cursor would be on the right half of a 2674 * double-wide character. */ 2675 if (lp->coladd == 1 2676 && p[lp->col] != TAB 2677 && vim_isprintc((*mb_ptr2char)(p + lp->col)) 2678 && ptr2cells(p + lp->col) > 1) 2679 lp->coladd = 0; 2680 #endif 2681 } 2682 } 2683 2684 /* 2685 * Return a pointer to the character before "*p", if there is one. 2686 */ 2687 char_u * 2688 mb_prevptr(line, p) 2689 char_u *line; /* start of the string */ 2690 char_u *p; 2691 { 2692 if (p > line) 2693 mb_ptr_back(line, p); 2694 return p; 2695 } 2696 2697 /* 2698 * Return the character length of "str". Each multi-byte character (with 2699 * following composing characters) counts as one. 2700 */ 2701 int 2702 mb_charlen(str) 2703 char_u *str; 2704 { 2705 int count; 2706 2707 if (str == NULL) 2708 return 0; 2709 2710 for (count = 0; *str != NUL; count++) 2711 str += (*mb_ptr2len)(str); 2712 2713 return count; 2714 } 2715 2716 /* 2717 * Try to un-escape a multi-byte character. 2718 * Used for the "to" and "from" part of a mapping. 2719 * Return the un-escaped string if it is a multi-byte character, and advance 2720 * "pp" to just after the bytes that formed it. 2721 * Return NULL if no multi-byte char was found. 2722 */ 2723 char_u * 2724 mb_unescape(pp) 2725 char_u **pp; 2726 { 2727 static char_u buf[MB_MAXBYTES + 1]; 2728 int n, m = 0; 2729 char_u *str = *pp; 2730 2731 /* Must translate K_SPECIAL KS_SPECIAL KE_FILLER to K_SPECIAL and CSI 2732 * KS_EXTRA KE_CSI to CSI. */ 2733 for (n = 0; str[n] != NUL && m <= MB_MAXBYTES; ++n) 2734 { 2735 if (str[n] == K_SPECIAL 2736 && str[n + 1] == KS_SPECIAL 2737 && str[n + 2] == KE_FILLER) 2738 { 2739 buf[m++] = K_SPECIAL; 2740 n += 2; 2741 } 2742 # ifdef FEAT_GUI 2743 else if (str[n] == CSI 2744 && str[n + 1] == KS_EXTRA 2745 && str[n + 2] == (int)KE_CSI) 2746 { 2747 buf[m++] = CSI; 2748 n += 2; 2749 } 2750 # endif 2751 else if (str[n] == K_SPECIAL 2752 # ifdef FEAT_GUI 2753 || str[n] == CSI 2754 # endif 2755 ) 2756 break; /* a special key can't be a multibyte char */ 2757 else 2758 buf[m++] = str[n]; 2759 buf[m] = NUL; 2760 2761 /* Return a multi-byte character if it's found. An illegal sequence 2762 * will result in a 1 here. */ 2763 if ((*mb_ptr2len)(buf) > 1) 2764 { 2765 *pp = str + n + 1; 2766 return buf; 2767 } 2768 } 2769 return NULL; 2770 } 2771 2772 /* 2773 * Return TRUE if the character at "row"/"col" on the screen is the left side 2774 * of a double-width character. 2775 * Caller must make sure "row" and "col" are not invalid! 2776 */ 2777 int 2778 mb_lefthalve(row, col) 2779 int row; 2780 int col; 2781 { 2782 #ifdef FEAT_HANGULIN 2783 if (composing_hangul) 2784 return TRUE; 2785 #endif 2786 if (enc_dbcs != 0) 2787 return dbcs_off2cells(LineOffset[row] + col) > 1; 2788 if (enc_utf8) 2789 return (col + 1 < Columns 2790 && ScreenLines[LineOffset[row] + col + 1] == 0); 2791 return FALSE; 2792 } 2793 2794 # if defined(FEAT_CLIPBOARD) || defined(FEAT_GUI) || defined(FEAT_RIGHTLEFT) \ 2795 || defined(PROTO) 2796 /* 2797 * Correct a position on the screen, if it's the right halve of a double-wide 2798 * char move it to the left halve. Returns the corrected column. 2799 */ 2800 int 2801 mb_fix_col(col, row) 2802 int col; 2803 int row; 2804 { 2805 col = check_col(col); 2806 row = check_row(row); 2807 if (has_mbyte && ScreenLines != NULL && col > 0 2808 && ((enc_dbcs 2809 && ScreenLines[LineOffset[row] + col] != NUL 2810 && dbcs_screen_head_off(ScreenLines + LineOffset[row], 2811 ScreenLines + LineOffset[row] + col)) 2812 || (enc_utf8 && ScreenLines[LineOffset[row] + col] == 0))) 2813 --col; 2814 return col; 2815 } 2816 # endif 2817 #endif 2818 2819 #if defined(FEAT_MBYTE) || defined(FEAT_POSTSCRIPT) || defined(PROTO) 2820 static int enc_alias_search __ARGS((char_u *name)); 2821 2822 /* 2823 * Skip the Vim specific head of a 'encoding' name. 2824 */ 2825 char_u * 2826 enc_skip(p) 2827 char_u *p; 2828 { 2829 if (STRNCMP(p, "2byte-", 6) == 0) 2830 return p + 6; 2831 if (STRNCMP(p, "8bit-", 5) == 0) 2832 return p + 5; 2833 return p; 2834 } 2835 2836 /* 2837 * Find the canonical name for encoding "enc". 2838 * When the name isn't recognized, returns "enc" itself, but with all lower 2839 * case characters and '_' replaced with '-'. 2840 * Returns an allocated string. NULL for out-of-memory. 2841 */ 2842 char_u * 2843 enc_canonize(enc) 2844 char_u *enc; 2845 { 2846 char_u *r; 2847 char_u *p, *s; 2848 int i; 2849 2850 # ifdef FEAT_MBYTE 2851 if (STRCMP(enc, "default") == 0) 2852 { 2853 /* Use the default encoding as it's found by set_init_1(). */ 2854 r = get_encoding_default(); 2855 if (r == NULL) 2856 r = (char_u *)"latin1"; 2857 return vim_strsave(r); 2858 } 2859 # endif 2860 2861 /* copy "enc" to allocted memory, with room for two '-' */ 2862 r = alloc((unsigned)(STRLEN(enc) + 3)); 2863 if (r != NULL) 2864 { 2865 /* Make it all lower case and replace '_' with '-'. */ 2866 p = r; 2867 for (s = enc; *s != NUL; ++s) 2868 { 2869 if (*s == '_') 2870 *p++ = '-'; 2871 else 2872 *p++ = TOLOWER_ASC(*s); 2873 } 2874 *p = NUL; 2875 2876 /* Skip "2byte-" and "8bit-". */ 2877 p = enc_skip(r); 2878 2879 /* Change "microsoft-cp" to "cp". Used in some spell files. */ 2880 if (STRNCMP(p, "microsoft-cp", 12) == 0) 2881 mch_memmove(p, p + 10, STRLEN(p + 10) + 1); 2882 2883 /* "iso8859" -> "iso-8859" */ 2884 if (STRNCMP(p, "iso8859", 7) == 0) 2885 { 2886 mch_memmove(p + 4, p + 3, STRLEN(p + 2)); 2887 p[3] = '-'; 2888 } 2889 2890 /* "iso-8859n" -> "iso-8859-n" */ 2891 if (STRNCMP(p, "iso-8859", 8) == 0 && p[8] != '-') 2892 { 2893 mch_memmove(p + 9, p + 8, STRLEN(p + 7)); 2894 p[8] = '-'; 2895 } 2896 2897 /* "latin-N" -> "latinN" */ 2898 if (STRNCMP(p, "latin-", 6) == 0) 2899 mch_memmove(p + 5, p + 6, STRLEN(p + 5)); 2900 2901 if (enc_canon_search(p) >= 0) 2902 { 2903 /* canonical name can be used unmodified */ 2904 if (p != r) 2905 mch_memmove(r, p, STRLEN(p) + 1); 2906 } 2907 else if ((i = enc_alias_search(p)) >= 0) 2908 { 2909 /* alias recognized, get canonical name */ 2910 vim_free(r); 2911 r = vim_strsave((char_u *)enc_canon_table[i].name); 2912 } 2913 } 2914 return r; 2915 } 2916 2917 /* 2918 * Search for an encoding alias of "name". 2919 * Returns -1 when not found. 2920 */ 2921 static int 2922 enc_alias_search(name) 2923 char_u *name; 2924 { 2925 int i; 2926 2927 for (i = 0; enc_alias_table[i].name != NULL; ++i) 2928 if (STRCMP(name, enc_alias_table[i].name) == 0) 2929 return enc_alias_table[i].canon; 2930 return -1; 2931 } 2932 #endif 2933 2934 #if defined(FEAT_MBYTE) || defined(PROTO) 2935 2936 #ifdef HAVE_LANGINFO_H 2937 # include <langinfo.h> 2938 #endif 2939 2940 /* 2941 * Get the canonicalized encoding of the current locale. 2942 * Returns an allocated string when successful, NULL when not. 2943 */ 2944 char_u * 2945 enc_locale() 2946 { 2947 #ifndef WIN3264 2948 char *s; 2949 char *p; 2950 int i; 2951 #endif 2952 char buf[50]; 2953 #ifdef WIN3264 2954 long acp = GetACP(); 2955 2956 if (acp == 1200) 2957 STRCPY(buf, "ucs-2le"); 2958 else if (acp == 1252) /* cp1252 is used as latin1 */ 2959 STRCPY(buf, "latin1"); 2960 else 2961 sprintf(buf, "cp%ld", acp); 2962 #else 2963 # ifdef HAVE_NL_LANGINFO_CODESET 2964 if ((s = nl_langinfo(CODESET)) == NULL || *s == NUL) 2965 # endif 2966 # ifdef MACOS 2967 s = "utf-8"; 2968 # else 2969 # if defined(HAVE_LOCALE_H) || defined(X_LOCALE) 2970 if ((s = setlocale(LC_CTYPE, NULL)) == NULL || *s == NUL) 2971 # endif 2972 if ((s = getenv("LC_ALL")) == NULL || *s == NUL) 2973 if ((s = getenv("LC_CTYPE")) == NULL || *s == NUL) 2974 s = getenv("LANG"); 2975 # endif 2976 2977 if (s == NULL || *s == NUL) 2978 return FAIL; 2979 2980 /* The most generic locale format is: 2981 * language[_territory][.codeset][@modifier][+special][,[sponsor][_revision]] 2982 * If there is a '.' remove the part before it. 2983 * if there is something after the codeset, remove it. 2984 * Make the name lowercase and replace '_' with '-'. 2985 * Exception: "ja_JP.EUC" == "euc-jp", "zh_CN.EUC" = "euc-cn", 2986 * "ko_KR.EUC" == "euc-kr" 2987 */ 2988 if ((p = (char *)vim_strchr((char_u *)s, '.')) != NULL) 2989 { 2990 if (p > s + 2 && STRNICMP(p + 1, "EUC", 3) == 0 2991 && !isalnum((int)p[4]) && p[4] != '-' && p[-3] == '_') 2992 { 2993 /* copy "XY.EUC" to "euc-XY" to buf[10] */ 2994 STRCPY(buf + 10, "euc-"); 2995 buf[14] = p[-2]; 2996 buf[15] = p[-1]; 2997 buf[16] = 0; 2998 s = buf + 10; 2999 } 3000 else 3001 s = p + 1; 3002 } 3003 for (i = 0; s[i] != NUL && i < sizeof(buf) - 1; ++i) 3004 { 3005 if (s[i] == '_' || s[i] == '-') 3006 buf[i] = '-'; 3007 else if (isalnum((int)s[i])) 3008 buf[i] = TOLOWER_ASC(s[i]); 3009 else 3010 break; 3011 } 3012 buf[i] = NUL; 3013 #endif 3014 3015 return enc_canonize((char_u *)buf); 3016 } 3017 3018 #if defined(WIN3264) || defined(PROTO) 3019 /* 3020 * Convert an encoding name to an MS-Windows codepage. 3021 * Returns zero if no codepage can be figured out. 3022 */ 3023 int 3024 encname2codepage(name) 3025 char_u *name; 3026 { 3027 int cp; 3028 char_u *p = name; 3029 int idx; 3030 3031 if (STRNCMP(p, "8bit-", 5) == 0) 3032 p += 5; 3033 else if (STRNCMP(p_enc, "2byte-", 6) == 0) 3034 p += 6; 3035 3036 if (p[0] == 'c' && p[1] == 'p') 3037 cp = atoi(p + 2); 3038 else if ((idx = enc_canon_search(p)) >= 0) 3039 cp = enc_canon_table[idx].codepage; 3040 else 3041 return 0; 3042 if (IsValidCodePage(cp)) 3043 return cp; 3044 return 0; 3045 } 3046 #endif 3047 3048 # if defined(USE_ICONV) || defined(PROTO) 3049 3050 static char_u *iconv_string __ARGS((vimconv_T *vcp, char_u *str, int slen, int *unconvlenp)); 3051 3052 /* 3053 * Call iconv_open() with a check if iconv() works properly (there are broken 3054 * versions). 3055 * Returns (void *)-1 if failed. 3056 * (should return iconv_t, but that causes problems with prototypes). 3057 */ 3058 void * 3059 my_iconv_open(to, from) 3060 char_u *to; 3061 char_u *from; 3062 { 3063 iconv_t fd; 3064 #define ICONV_TESTLEN 400 3065 char_u tobuf[ICONV_TESTLEN]; 3066 char *p; 3067 size_t tolen; 3068 static int iconv_ok = -1; 3069 3070 if (iconv_ok == FALSE) 3071 return (void *)-1; /* detected a broken iconv() previously */ 3072 3073 #ifdef DYNAMIC_ICONV 3074 /* Check if the iconv.dll can be found. */ 3075 if (!iconv_enabled(TRUE)) 3076 return (void *)-1; 3077 #endif 3078 3079 fd = iconv_open((char *)enc_skip(to), (char *)enc_skip(from)); 3080 3081 if (fd != (iconv_t)-1 && iconv_ok == -1) 3082 { 3083 /* 3084 * Do a dummy iconv() call to check if it actually works. There is a 3085 * version of iconv() on Linux that is broken. We can't ignore it, 3086 * because it's wide-spread. The symptoms are that after outputting 3087 * the initial shift state the "to" pointer is NULL and conversion 3088 * stops for no apparent reason after about 8160 characters. 3089 */ 3090 p = (char *)tobuf; 3091 tolen = ICONV_TESTLEN; 3092 (void)iconv(fd, NULL, NULL, &p, &tolen); 3093 if (p == NULL) 3094 { 3095 iconv_ok = FALSE; 3096 iconv_close(fd); 3097 fd = (iconv_t)-1; 3098 } 3099 else 3100 iconv_ok = TRUE; 3101 } 3102 3103 return (void *)fd; 3104 } 3105 3106 /* 3107 * Convert the string "str[slen]" with iconv(). 3108 * If "unconvlenp" is not NULL handle the string ending in an incomplete 3109 * sequence and set "*unconvlenp" to the length of it. 3110 * Returns the converted string in allocated memory. NULL for an error. 3111 */ 3112 static char_u * 3113 iconv_string(vcp, str, slen, unconvlenp) 3114 vimconv_T *vcp; 3115 char_u *str; 3116 int slen; 3117 int *unconvlenp; 3118 { 3119 const char *from; 3120 size_t fromlen; 3121 char *to; 3122 size_t tolen; 3123 size_t len = 0; 3124 size_t done = 0; 3125 char_u *result = NULL; 3126 char_u *p; 3127 int l; 3128 3129 from = (char *)str; 3130 fromlen = slen; 3131 for (;;) 3132 { 3133 if (len == 0 || ICONV_ERRNO == ICONV_E2BIG) 3134 { 3135 /* Allocate enough room for most conversions. When re-allocating 3136 * increase the buffer size. */ 3137 len = len + fromlen * 2 + 40; 3138 p = alloc((unsigned)len); 3139 if (p != NULL && done > 0) 3140 mch_memmove(p, result, done); 3141 vim_free(result); 3142 result = p; 3143 if (result == NULL) /* out of memory */ 3144 break; 3145 } 3146 3147 to = (char *)result + done; 3148 tolen = len - done - 2; 3149 /* Avoid a warning for systems with a wrong iconv() prototype by 3150 * casting the second argument to void *. */ 3151 if (iconv(vcp->vc_fd, (void *)&from, &fromlen, &to, &tolen) 3152 != (size_t)-1) 3153 { 3154 /* Finished, append a NUL. */ 3155 *to = NUL; 3156 break; 3157 } 3158 3159 /* Check both ICONV_EINVAL and EINVAL, because the dynamically loaded 3160 * iconv library may use one of them. */ 3161 if (!vcp->vc_fail && unconvlenp != NULL 3162 && (ICONV_ERRNO == ICONV_EINVAL || ICONV_ERRNO == EINVAL)) 3163 { 3164 /* Handle an incomplete sequence at the end. */ 3165 *to = NUL; 3166 *unconvlenp = fromlen; 3167 break; 3168 } 3169 3170 /* Check both ICONV_EILSEQ and EILSEQ, because the dynamically loaded 3171 * iconv library may use one of them. */ 3172 else if (!vcp->vc_fail 3173 && (ICONV_ERRNO == ICONV_EILSEQ || ICONV_ERRNO == EILSEQ 3174 || ICONV_ERRNO == ICONV_EINVAL || ICONV_ERRNO == EINVAL)) 3175 { 3176 /* Can't convert: insert a '?' and skip a character. This assumes 3177 * conversion from 'encoding' to something else. In other 3178 * situations we don't know what to skip anyway. */ 3179 *to++ = '?'; 3180 if ((*mb_ptr2cells)((char_u *)from) > 1) 3181 *to++ = '?'; 3182 if (enc_utf8) 3183 l = utfc_ptr2len_len((char_u *)from, fromlen); 3184 else 3185 { 3186 l = (*mb_ptr2len)((char_u *)from); 3187 if (l > (int)fromlen) 3188 l = fromlen; 3189 } 3190 from += l; 3191 fromlen -= l; 3192 } 3193 else if (ICONV_ERRNO != ICONV_E2BIG) 3194 { 3195 /* conversion failed */ 3196 vim_free(result); 3197 result = NULL; 3198 break; 3199 } 3200 /* Not enough room or skipping illegal sequence. */ 3201 done = to - (char *)result; 3202 } 3203 return result; 3204 } 3205 3206 # if defined(DYNAMIC_ICONV) || defined(PROTO) 3207 /* 3208 * Dynamically load the "iconv.dll" on Win32. 3209 */ 3210 3211 #ifndef DYNAMIC_ICONV /* just generating prototypes */ 3212 # define HINSTANCE int 3213 #endif 3214 static HINSTANCE hIconvDLL = 0; 3215 static HINSTANCE hMsvcrtDLL = 0; 3216 3217 # ifndef DYNAMIC_ICONV_DLL 3218 # define DYNAMIC_ICONV_DLL "iconv.dll" 3219 # define DYNAMIC_ICONV_DLL_ALT "libiconv.dll" 3220 # endif 3221 # ifndef DYNAMIC_MSVCRT_DLL 3222 # define DYNAMIC_MSVCRT_DLL "msvcrt.dll" 3223 # endif 3224 3225 /* 3226 * Try opening the iconv.dll and return TRUE if iconv() can be used. 3227 */ 3228 int 3229 iconv_enabled(verbose) 3230 int verbose; 3231 { 3232 if (hIconvDLL != 0 && hMsvcrtDLL != 0) 3233 return TRUE; 3234 hIconvDLL = LoadLibrary(DYNAMIC_ICONV_DLL); 3235 if (hIconvDLL == 0) /* sometimes it's called libiconv.dll */ 3236 hIconvDLL = LoadLibrary(DYNAMIC_ICONV_DLL_ALT); 3237 if (hIconvDLL != 0) 3238 hMsvcrtDLL = LoadLibrary(DYNAMIC_MSVCRT_DLL); 3239 if (hIconvDLL == 0 || hMsvcrtDLL == 0) 3240 { 3241 /* Only give the message when 'verbose' is set, otherwise it might be 3242 * done whenever a conversion is attempted. */ 3243 if (verbose && p_verbose > 0) 3244 { 3245 verbose_enter(); 3246 EMSG2(_(e_loadlib), 3247 hIconvDLL == 0 ? DYNAMIC_ICONV_DLL : DYNAMIC_MSVCRT_DLL); 3248 verbose_leave(); 3249 } 3250 iconv_end(); 3251 return FALSE; 3252 } 3253 3254 iconv = (void *)GetProcAddress(hIconvDLL, "libiconv"); 3255 iconv_open = (void *)GetProcAddress(hIconvDLL, "libiconv_open"); 3256 iconv_close = (void *)GetProcAddress(hIconvDLL, "libiconv_close"); 3257 iconvctl = (void *)GetProcAddress(hIconvDLL, "libiconvctl"); 3258 iconv_errno = (void *)GetProcAddress(hMsvcrtDLL, "_errno"); 3259 if (iconv == NULL || iconv_open == NULL || iconv_close == NULL 3260 || iconvctl == NULL || iconv_errno == NULL) 3261 { 3262 iconv_end(); 3263 if (verbose && p_verbose > 0) 3264 { 3265 verbose_enter(); 3266 EMSG2(_(e_loadfunc), "for libiconv"); 3267 verbose_leave(); 3268 } 3269 return FALSE; 3270 } 3271 return TRUE; 3272 } 3273 3274 void 3275 iconv_end() 3276 { 3277 /* Don't use iconv() when inputting or outputting characters. */ 3278 if (input_conv.vc_type == CONV_ICONV) 3279 convert_setup(&input_conv, NULL, NULL); 3280 if (output_conv.vc_type == CONV_ICONV) 3281 convert_setup(&output_conv, NULL, NULL); 3282 3283 if (hIconvDLL != 0) 3284 FreeLibrary(hIconvDLL); 3285 if (hMsvcrtDLL != 0) 3286 FreeLibrary(hMsvcrtDLL); 3287 hIconvDLL = 0; 3288 hMsvcrtDLL = 0; 3289 } 3290 # endif /* DYNAMIC_ICONV */ 3291 # endif /* USE_ICONV */ 3292 3293 #endif /* FEAT_MBYTE */ 3294 3295 #if defined(FEAT_XIM) || defined(PROTO) 3296 3297 # ifdef FEAT_GUI_GTK 3298 static int xim_has_preediting INIT(= FALSE); /* IM current status */ 3299 3300 /* 3301 * Set preedit_start_col to the current cursor position. 3302 */ 3303 static void 3304 init_preedit_start_col(void) 3305 { 3306 if (State & CMDLINE) 3307 preedit_start_col = cmdline_getvcol_cursor(); 3308 else if (curwin != NULL) 3309 getvcol(curwin, &curwin->w_cursor, &preedit_start_col, NULL, NULL); 3310 /* Prevent that preediting marks the buffer as changed. */ 3311 xim_changed_while_preediting = curbuf->b_changed; 3312 } 3313 # endif 3314 3315 # if defined(HAVE_GTK2) && !defined(PROTO) 3316 3317 static int im_is_active = FALSE; /* IM is enabled for current mode */ 3318 static int im_preedit_cursor = 0; /* cursor offset in characters */ 3319 static int im_preedit_trailing = 0; /* number of characters after cursor */ 3320 3321 static unsigned long im_commit_handler_id = 0; 3322 static unsigned int im_activatekey_keyval = GDK_VoidSymbol; 3323 static unsigned int im_activatekey_state = 0; 3324 3325 void 3326 im_set_active(int active) 3327 { 3328 int was_active; 3329 3330 was_active = !!im_is_active; 3331 im_is_active = (active && !p_imdisable); 3332 3333 if (im_is_active != was_active) 3334 xim_reset(); 3335 } 3336 3337 void 3338 xim_set_focus(int focus) 3339 { 3340 if (xic != NULL) 3341 { 3342 if (focus) 3343 gtk_im_context_focus_in(xic); 3344 else 3345 gtk_im_context_focus_out(xic); 3346 } 3347 } 3348 3349 void 3350 im_set_position(int row, int col) 3351 { 3352 if (xic != NULL) 3353 { 3354 GdkRectangle area; 3355 3356 area.x = FILL_X(col); 3357 area.y = FILL_Y(row); 3358 area.width = gui.char_width * (mb_lefthalve(row, col) ? 2 : 1); 3359 area.height = gui.char_height; 3360 3361 gtk_im_context_set_cursor_location(xic, &area); 3362 } 3363 } 3364 3365 # if 0 || defined(PROTO) /* apparently only used in gui_x11.c */ 3366 void 3367 xim_set_preedit(void) 3368 { 3369 im_set_position(gui.row, gui.col); 3370 } 3371 # endif 3372 3373 static void 3374 im_add_to_input(char_u *str, int len) 3375 { 3376 /* Convert from 'termencoding' (always "utf-8") to 'encoding' */ 3377 if (input_conv.vc_type != CONV_NONE) 3378 { 3379 str = string_convert(&input_conv, str, &len); 3380 g_return_if_fail(str != NULL); 3381 } 3382 3383 add_to_input_buf_csi(str, len); 3384 3385 if (input_conv.vc_type != CONV_NONE) 3386 vim_free(str); 3387 3388 if (p_mh) /* blank out the pointer if necessary */ 3389 gui_mch_mousehide(TRUE); 3390 } 3391 3392 static void 3393 im_delete_preedit(void) 3394 { 3395 char_u bskey[] = {CSI, 'k', 'b'}; 3396 char_u delkey[] = {CSI, 'k', 'D'}; 3397 3398 if (State & NORMAL) 3399 { 3400 im_preedit_cursor = 0; 3401 return; 3402 } 3403 for (; im_preedit_cursor > 0; --im_preedit_cursor) 3404 add_to_input_buf(bskey, (int)sizeof(bskey)); 3405 3406 for (; im_preedit_trailing > 0; --im_preedit_trailing) 3407 add_to_input_buf(delkey, (int)sizeof(delkey)); 3408 } 3409 3410 static void 3411 im_correct_cursor(int num_move_back) 3412 { 3413 char_u backkey[] = {CSI, 'k', 'l'}; 3414 3415 if (State & NORMAL) 3416 return; 3417 # ifdef FEAT_RIGHTLEFT 3418 if ((State & CMDLINE) == 0 && curwin != NULL && curwin->w_p_rl) 3419 backkey[2] = 'r'; 3420 # endif 3421 for (; num_move_back > 0; --num_move_back) 3422 add_to_input_buf(backkey, (int)sizeof(backkey)); 3423 } 3424 3425 static int xim_expected_char = NUL; 3426 static int xim_ignored_char = FALSE; 3427 3428 /* 3429 * Update the mode and cursor while in an IM callback. 3430 */ 3431 static void 3432 im_show_info(void) 3433 { 3434 int old_vgetc_busy; 3435 old_vgetc_busy = vgetc_busy; 3436 vgetc_busy = TRUE; 3437 showmode(); 3438 vgetc_busy = old_vgetc_busy; 3439 setcursor(); 3440 out_flush(); 3441 } 3442 3443 /* 3444 * Callback invoked when the user finished preediting. 3445 * Put the final string into the input buffer. 3446 */ 3447 /*ARGSUSED0*/ 3448 static void 3449 im_commit_cb(GtkIMContext *context, const gchar *str, gpointer data) 3450 { 3451 int slen = (int)STRLEN(str); 3452 int add_to_input = TRUE; 3453 int clen; 3454 int len = slen; 3455 int commit_with_preedit = TRUE; 3456 char_u *im_str, *p; 3457 3458 #ifdef XIM_DEBUG 3459 xim_log("im_commit_cb(): %s\n", str); 3460 #endif 3461 3462 /* The imhangul module doesn't reset the preedit string before 3463 * committing. Call im_delete_preedit() to work around that. */ 3464 im_delete_preedit(); 3465 3466 /* Indicate that preediting has finished. */ 3467 if (preedit_start_col == MAXCOL) 3468 { 3469 init_preedit_start_col(); 3470 commit_with_preedit = FALSE; 3471 } 3472 3473 /* The thing which setting "preedit_start_col" to MAXCOL means that 3474 * "preedit_start_col" will be set forcely when calling 3475 * preedit_changed_cb() next time. 3476 * "preedit_start_col" should not reset with MAXCOL on this part. Vim 3477 * is simulating the preediting by using add_to_input_str(). when 3478 * preedit begin immediately before committed, the typebuf is not 3479 * flushed to screen, then it can't get correct "preedit_start_col". 3480 * Thus, it should calculate the cells by adding cells of the committed 3481 * string. */ 3482 if (input_conv.vc_type != CONV_NONE) 3483 { 3484 im_str = string_convert(&input_conv, (char_u *)str, &len); 3485 g_return_if_fail(im_str != NULL); 3486 } 3487 else 3488 im_str = (char_u *)str; 3489 clen = 0; 3490 for (p = im_str; p < im_str + len; p += (*mb_ptr2len)(p)) 3491 clen += (*mb_ptr2cells)(p); 3492 if (input_conv.vc_type != CONV_NONE) 3493 vim_free(im_str); 3494 preedit_start_col += clen; 3495 3496 /* Is this a single character that matches a keypad key that's just 3497 * been pressed? If so, we don't want it to be entered as such - let 3498 * us carry on processing the raw keycode so that it may be used in 3499 * mappings as <kSomething>. */ 3500 if (xim_expected_char != NUL) 3501 { 3502 /* We're currently processing a keypad or other special key */ 3503 if (slen == 1 && str[0] == xim_expected_char) 3504 { 3505 /* It's a match - don't do it here */ 3506 xim_ignored_char = TRUE; 3507 add_to_input = FALSE; 3508 } 3509 else 3510 { 3511 /* Not a match */ 3512 xim_ignored_char = FALSE; 3513 } 3514 } 3515 3516 if (add_to_input) 3517 im_add_to_input((char_u *)str, slen); 3518 3519 /* Inserting chars while "im_is_active" is set does not cause a change of 3520 * buffer. When the chars are committed the buffer must be marked as 3521 * changed. */ 3522 if (!commit_with_preedit) 3523 preedit_start_col = MAXCOL; 3524 3525 /* This flag is used in changed() at next call. */ 3526 xim_changed_while_preediting = TRUE; 3527 3528 if (gtk_main_level() > 0) 3529 gtk_main_quit(); 3530 } 3531 3532 /* 3533 * Callback invoked after start to the preedit. 3534 */ 3535 /*ARGSUSED*/ 3536 static void 3537 im_preedit_start_cb(GtkIMContext *context, gpointer data) 3538 { 3539 #ifdef XIM_DEBUG 3540 xim_log("im_preedit_start_cb()\n"); 3541 #endif 3542 3543 im_is_active = TRUE; 3544 gui_update_cursor(TRUE, FALSE); 3545 } 3546 3547 /* 3548 * Callback invoked after end to the preedit. 3549 */ 3550 /*ARGSUSED*/ 3551 static void 3552 im_preedit_end_cb(GtkIMContext *context, gpointer data) 3553 { 3554 #ifdef XIM_DEBUG 3555 xim_log("im_preedit_end_cb()\n"); 3556 #endif 3557 im_delete_preedit(); 3558 3559 /* Indicate that preediting has finished */ 3560 preedit_start_col = MAXCOL; 3561 xim_has_preediting = FALSE; 3562 3563 im_is_active = FALSE; 3564 gui_update_cursor(TRUE, FALSE); 3565 im_show_info(); 3566 } 3567 3568 /* 3569 * Callback invoked after changes to the preedit string. If the preedit 3570 * string was empty before, remember the preedit start column so we know 3571 * where to apply feedback attributes. Delete the previous preedit string 3572 * if there was one, save the new preedit cursor offset, and put the new 3573 * string into the input buffer. 3574 * 3575 * TODO: The pragmatic "put into input buffer" approach used here has 3576 * several fundamental problems: 3577 * 3578 * - The characters in the preedit string are subject to remapping. 3579 * That's broken, only the finally committed string should be remapped. 3580 * 3581 * - There is a race condition involved: The retrieved value for the 3582 * current cursor position will be wrong if any unprocessed characters 3583 * are still queued in the input buffer. 3584 * 3585 * - Due to the lack of synchronization between the file buffer in memory 3586 * and any typed characters, it's practically impossible to implement the 3587 * "retrieve_surrounding" and "delete_surrounding" signals reliably. IM 3588 * modules for languages such as Thai are likely to rely on this feature 3589 * for proper operation. 3590 * 3591 * Conclusions: I think support for preediting needs to be moved to the 3592 * core parts of Vim. Ideally, until it has been committed, the preediting 3593 * string should only be displayed and not affect the buffer content at all. 3594 * The question how to deal with the synchronization issue still remains. 3595 * Circumventing the input buffer is probably not desirable. Anyway, I think 3596 * implementing "retrieve_surrounding" is the only hard problem. 3597 * 3598 * One way to solve all of this in a clean manner would be to queue all key 3599 * press/release events "as is" in the input buffer, and apply the IM filtering 3600 * at the receiving end of the queue. This, however, would have a rather large 3601 * impact on the code base. If there is an easy way to force processing of all 3602 * remaining input from within the "retrieve_surrounding" signal handler, this 3603 * might not be necessary. Gotta ask on vim-dev for opinions. 3604 */ 3605 /*ARGSUSED1*/ 3606 static void 3607 im_preedit_changed_cb(GtkIMContext *context, gpointer data) 3608 { 3609 char *preedit_string = NULL; 3610 int cursor_index = 0; 3611 int num_move_back = 0; 3612 char_u *str; 3613 char_u *p; 3614 int i; 3615 3616 gtk_im_context_get_preedit_string(context, 3617 &preedit_string, NULL, 3618 &cursor_index); 3619 3620 #ifdef XIM_DEBUG 3621 xim_log("im_preedit_changed_cb(): %s\n", preedit_string); 3622 #endif 3623 3624 g_return_if_fail(preedit_string != NULL); /* just in case */ 3625 3626 /* If preedit_start_col is MAXCOL set it to the current cursor position. */ 3627 if (preedit_start_col == MAXCOL && preedit_string[0] != '\0') 3628 { 3629 xim_has_preediting = TRUE; 3630 3631 /* Urgh, this breaks if the input buffer isn't empty now */ 3632 init_preedit_start_col(); 3633 } 3634 else if (cursor_index == 0 && preedit_string[0] == '\0') 3635 { 3636 if (preedit_start_col == MAXCOL) 3637 xim_has_preediting = FALSE; 3638 3639 /* If at the start position (after typing backspace) 3640 * preedit_start_col must be reset. */ 3641 preedit_start_col = MAXCOL; 3642 } 3643 3644 im_delete_preedit(); 3645 3646 /* 3647 * Compute the end of the preediting area: "preedit_end_col". 3648 * According to the documentation of gtk_im_context_get_preedit_string(), 3649 * the cursor_pos output argument returns the offset in bytes. This is 3650 * unfortunately not true -- real life shows the offset is in characters, 3651 * and the GTK+ source code agrees with me. Will file a bug later. 3652 */ 3653 if (preedit_start_col != MAXCOL) 3654 preedit_end_col = preedit_start_col; 3655 str = (char_u *)preedit_string; 3656 for (p = str, i = 0; *p != NUL; p += utf_byte2len(*p), ++i) 3657 { 3658 int is_composing; 3659 3660 is_composing = ((*p & 0x80) != 0 && utf_iscomposing(utf_ptr2char(p))); 3661 /* 3662 * These offsets are used as counters when generating <BS> and <Del> 3663 * to delete the preedit string. So don't count composing characters 3664 * unless 'delcombine' is enabled. 3665 */ 3666 if (!is_composing || p_deco) 3667 { 3668 if (i < cursor_index) 3669 ++im_preedit_cursor; 3670 else 3671 ++im_preedit_trailing; 3672 } 3673 if (!is_composing && i >= cursor_index) 3674 { 3675 /* This is essentially the same as im_preedit_trailing, except 3676 * composing characters are not counted even if p_deco is set. */ 3677 ++num_move_back; 3678 } 3679 if (preedit_start_col != MAXCOL) 3680 preedit_end_col += utf_ptr2cells(p); 3681 } 3682 3683 if (p > str) 3684 { 3685 im_add_to_input(str, (int)(p - str)); 3686 im_correct_cursor(num_move_back); 3687 } 3688 3689 g_free(preedit_string); 3690 3691 if (gtk_main_level() > 0) 3692 gtk_main_quit(); 3693 } 3694 3695 /* 3696 * Translate the Pango attributes at iter to Vim highlighting attributes. 3697 * Ignore attributes not supported by Vim highlighting. This shouldn't have 3698 * too much impact -- right now we handle even more attributes than necessary 3699 * for the IM modules I tested with. 3700 */ 3701 static int 3702 translate_pango_attributes(PangoAttrIterator *iter) 3703 { 3704 PangoAttribute *attr; 3705 int char_attr = HL_NORMAL; 3706 3707 attr = pango_attr_iterator_get(iter, PANGO_ATTR_UNDERLINE); 3708 if (attr != NULL && ((PangoAttrInt *)attr)->value 3709 != (int)PANGO_UNDERLINE_NONE) 3710 char_attr |= HL_UNDERLINE; 3711 3712 attr = pango_attr_iterator_get(iter, PANGO_ATTR_WEIGHT); 3713 if (attr != NULL && ((PangoAttrInt *)attr)->value >= (int)PANGO_WEIGHT_BOLD) 3714 char_attr |= HL_BOLD; 3715 3716 attr = pango_attr_iterator_get(iter, PANGO_ATTR_STYLE); 3717 if (attr != NULL && ((PangoAttrInt *)attr)->value 3718 != (int)PANGO_STYLE_NORMAL) 3719 char_attr |= HL_ITALIC; 3720 3721 attr = pango_attr_iterator_get(iter, PANGO_ATTR_BACKGROUND); 3722 if (attr != NULL) 3723 { 3724 const PangoColor *color = &((PangoAttrColor *)attr)->color; 3725 3726 /* Assume inverse if black background is requested */ 3727 if ((color->red | color->green | color->blue) == 0) 3728 char_attr |= HL_INVERSE; 3729 } 3730 3731 return char_attr; 3732 } 3733 3734 /* 3735 * Retrieve the highlighting attributes at column col in the preedit string. 3736 * Return -1 if not in preediting mode or if col is out of range. 3737 */ 3738 int 3739 im_get_feedback_attr(int col) 3740 { 3741 char *preedit_string = NULL; 3742 PangoAttrList *attr_list = NULL; 3743 int char_attr = -1; 3744 3745 if (xic == NULL) 3746 return char_attr; 3747 3748 gtk_im_context_get_preedit_string(xic, &preedit_string, &attr_list, NULL); 3749 3750 if (preedit_string != NULL && attr_list != NULL) 3751 { 3752 int index; 3753 3754 /* Get the byte index as used by PangoAttrIterator */ 3755 for (index = 0; col > 0 && preedit_string[index] != '\0'; --col) 3756 index += utfc_ptr2len((char_u *)preedit_string + index); 3757 3758 if (preedit_string[index] != '\0') 3759 { 3760 PangoAttrIterator *iter; 3761 int start, end; 3762 3763 char_attr = HL_NORMAL; 3764 iter = pango_attr_list_get_iterator(attr_list); 3765 3766 /* Extract all relevant attributes from the list. */ 3767 do 3768 { 3769 pango_attr_iterator_range(iter, &start, &end); 3770 3771 if (index >= start && index < end) 3772 char_attr |= translate_pango_attributes(iter); 3773 } 3774 while (pango_attr_iterator_next(iter)); 3775 3776 pango_attr_iterator_destroy(iter); 3777 } 3778 } 3779 3780 if (attr_list != NULL) 3781 pango_attr_list_unref(attr_list); 3782 g_free(preedit_string); 3783 3784 return char_attr; 3785 } 3786 3787 void 3788 xim_init(void) 3789 { 3790 #ifdef XIM_DEBUG 3791 xim_log("xim_init()\n"); 3792 #endif 3793 3794 g_return_if_fail(gui.drawarea != NULL); 3795 g_return_if_fail(gui.drawarea->window != NULL); 3796 3797 xic = gtk_im_multicontext_new(); 3798 g_object_ref(xic); 3799 3800 im_commit_handler_id = g_signal_connect(G_OBJECT(xic), "commit", 3801 G_CALLBACK(&im_commit_cb), NULL); 3802 g_signal_connect(G_OBJECT(xic), "preedit_changed", 3803 G_CALLBACK(&im_preedit_changed_cb), NULL); 3804 g_signal_connect(G_OBJECT(xic), "preedit_start", 3805 G_CALLBACK(&im_preedit_start_cb), NULL); 3806 g_signal_connect(G_OBJECT(xic), "preedit_end", 3807 G_CALLBACK(&im_preedit_end_cb), NULL); 3808 3809 gtk_im_context_set_client_window(xic, gui.drawarea->window); 3810 } 3811 3812 void 3813 im_shutdown(void) 3814 { 3815 #ifdef XIM_DEBUG 3816 xim_log("im_shutdown()\n"); 3817 #endif 3818 3819 if (xic != NULL) 3820 { 3821 gtk_im_context_focus_out(xic); 3822 g_object_unref(xic); 3823 xic = NULL; 3824 } 3825 im_is_active = FALSE; 3826 im_commit_handler_id = 0; 3827 preedit_start_col = MAXCOL; 3828 xim_has_preediting = FALSE; 3829 } 3830 3831 /* 3832 * Convert the string argument to keyval and state for GdkEventKey. 3833 * If str is valid return TRUE, otherwise FALSE. 3834 * 3835 * See 'imactivatekey' for documentation of the format. 3836 */ 3837 static int 3838 im_string_to_keyval(const char *str, unsigned int *keyval, unsigned int *state) 3839 { 3840 const char *mods_end; 3841 unsigned tmp_keyval; 3842 unsigned tmp_state = 0; 3843 3844 mods_end = strrchr(str, '-'); 3845 mods_end = (mods_end != NULL) ? mods_end + 1 : str; 3846 3847 /* Parse modifier keys */ 3848 while (str < mods_end) 3849 switch (*str++) 3850 { 3851 case '-': break; 3852 case 'S': case 's': tmp_state |= (unsigned)GDK_SHIFT_MASK; break; 3853 case 'L': case 'l': tmp_state |= (unsigned)GDK_LOCK_MASK; break; 3854 case 'C': case 'c': tmp_state |= (unsigned)GDK_CONTROL_MASK;break; 3855 case '1': tmp_state |= (unsigned)GDK_MOD1_MASK; break; 3856 case '2': tmp_state |= (unsigned)GDK_MOD2_MASK; break; 3857 case '3': tmp_state |= (unsigned)GDK_MOD3_MASK; break; 3858 case '4': tmp_state |= (unsigned)GDK_MOD4_MASK; break; 3859 case '5': tmp_state |= (unsigned)GDK_MOD5_MASK; break; 3860 default: 3861 return FALSE; 3862 } 3863 3864 tmp_keyval = gdk_keyval_from_name(str); 3865 3866 if (tmp_keyval == 0 || tmp_keyval == GDK_VoidSymbol) 3867 return FALSE; 3868 3869 if (keyval != NULL) 3870 *keyval = tmp_keyval; 3871 if (state != NULL) 3872 *state = tmp_state; 3873 3874 return TRUE; 3875 } 3876 3877 /* 3878 * Return TRUE if p_imak is valid, otherwise FALSE. As a special case, an 3879 * empty string is also regarded as valid. 3880 * 3881 * Note: The numerical key value of p_imak is cached if it was valid; thus 3882 * boldly assuming im_xim_isvalid_imactivate() will always be called whenever 3883 * 'imak' changes. This is currently the case but not obvious -- should 3884 * probably rename the function for clarity. 3885 */ 3886 int 3887 im_xim_isvalid_imactivate(void) 3888 { 3889 if (p_imak[0] == NUL) 3890 { 3891 im_activatekey_keyval = GDK_VoidSymbol; 3892 im_activatekey_state = 0; 3893 return TRUE; 3894 } 3895 3896 return im_string_to_keyval((const char *)p_imak, 3897 &im_activatekey_keyval, 3898 &im_activatekey_state); 3899 } 3900 3901 static void 3902 im_synthesize_keypress(unsigned int keyval, unsigned int state) 3903 { 3904 GdkEventKey *event; 3905 3906 # ifdef HAVE_GTK_MULTIHEAD 3907 event = (GdkEventKey *)gdk_event_new(GDK_KEY_PRESS); 3908 g_object_ref(gui.drawarea->window); /* unreffed by gdk_event_free() */ 3909 # else 3910 event = (GdkEventKey *)g_malloc0((gulong)sizeof(GdkEvent)); 3911 event->type = GDK_KEY_PRESS; 3912 # endif 3913 event->window = gui.drawarea->window; 3914 event->send_event = TRUE; 3915 event->time = GDK_CURRENT_TIME; 3916 event->state = state; 3917 event->keyval = keyval; 3918 event->hardware_keycode = /* needed for XIM */ 3919 XKeysymToKeycode(GDK_WINDOW_XDISPLAY(event->window), (KeySym)keyval); 3920 event->length = 0; 3921 event->string = NULL; 3922 3923 gtk_im_context_filter_keypress(xic, event); 3924 3925 /* For consistency, also send the corresponding release event. */ 3926 event->type = GDK_KEY_RELEASE; 3927 event->send_event = FALSE; 3928 gtk_im_context_filter_keypress(xic, event); 3929 3930 # ifdef HAVE_GTK_MULTIHEAD 3931 gdk_event_free((GdkEvent *)event); 3932 # else 3933 g_free(event); 3934 # endif 3935 } 3936 3937 void 3938 xim_reset(void) 3939 { 3940 if (xic != NULL) 3941 { 3942 /* 3943 * The third-party imhangul module (and maybe others too) ignores 3944 * gtk_im_context_reset() or at least doesn't reset the active state. 3945 * Thus sending imactivatekey would turn it off if it was on before, 3946 * which is clearly not what we want. Fortunately we can work around 3947 * that for imhangul by sending GDK_Escape, but I don't know if it 3948 * works with all IM modules that support an activation key :/ 3949 * 3950 * An alternative approach would be to destroy the IM context and 3951 * recreate it. But that means loading/unloading the IM module on 3952 * every mode switch, which causes a quite noticable delay even on 3953 * my rather fast box... 3954 * * 3955 * Moreover, there are some XIM which cannot respond to 3956 * im_synthesize_keypress(). we hope that they reset by 3957 * xim_shutdown(). 3958 */ 3959 if (im_activatekey_keyval != GDK_VoidSymbol && im_is_active) 3960 im_synthesize_keypress(GDK_Escape, 0U); 3961 3962 gtk_im_context_reset(xic); 3963 3964 /* 3965 * HACK for Ami: This sequence of function calls makes Ami handle 3966 * the IM reset gratiously, without breaking loads of other stuff. 3967 * It seems to force English mode as well, which is exactly what we 3968 * want because it makes the Ami status display work reliably. 3969 */ 3970 gtk_im_context_set_use_preedit(xic, FALSE); 3971 3972 if (p_imdisable) 3973 im_shutdown(); 3974 else 3975 { 3976 gtk_im_context_set_use_preedit(xic, TRUE); 3977 xim_set_focus(gui.in_focus); 3978 3979 if (im_activatekey_keyval != GDK_VoidSymbol) 3980 { 3981 if (im_is_active) 3982 { 3983 g_signal_handler_block(xic, im_commit_handler_id); 3984 im_synthesize_keypress(im_activatekey_keyval, 3985 im_activatekey_state); 3986 g_signal_handler_unblock(xic, im_commit_handler_id); 3987 } 3988 } 3989 else 3990 { 3991 im_shutdown(); 3992 xim_init(); 3993 xim_set_focus(gui.in_focus); 3994 } 3995 } 3996 } 3997 3998 preedit_start_col = MAXCOL; 3999 xim_has_preediting = FALSE; 4000 } 4001 4002 int 4003 xim_queue_key_press_event(GdkEventKey *event, int down) 4004 { 4005 if (down) 4006 { 4007 /* 4008 * Workaround GTK2 XIM 'feature' that always converts keypad keys to 4009 * chars., even when not part of an IM sequence (ref. feature of 4010 * gdk/gdkkeyuni.c). 4011 * Flag any keypad keys that might represent a single char. 4012 * If this (on its own - i.e., not part of an IM sequence) is 4013 * committed while we're processing one of these keys, we can ignore 4014 * that commit and go ahead & process it ourselves. That way we can 4015 * still distinguish keypad keys for use in mappings. 4016 */ 4017 switch (event->keyval) 4018 { 4019 case GDK_KP_Add: xim_expected_char = '+'; break; 4020 case GDK_KP_Subtract: xim_expected_char = '-'; break; 4021 case GDK_KP_Divide: xim_expected_char = '/'; break; 4022 case GDK_KP_Multiply: xim_expected_char = '*'; break; 4023 case GDK_KP_Decimal: xim_expected_char = '.'; break; 4024 case GDK_KP_Equal: xim_expected_char = '='; break; 4025 case GDK_KP_0: xim_expected_char = '0'; break; 4026 case GDK_KP_1: xim_expected_char = '1'; break; 4027 case GDK_KP_2: xim_expected_char = '2'; break; 4028 case GDK_KP_3: xim_expected_char = '3'; break; 4029 case GDK_KP_4: xim_expected_char = '4'; break; 4030 case GDK_KP_5: xim_expected_char = '5'; break; 4031 case GDK_KP_6: xim_expected_char = '6'; break; 4032 case GDK_KP_7: xim_expected_char = '7'; break; 4033 case GDK_KP_8: xim_expected_char = '8'; break; 4034 case GDK_KP_9: xim_expected_char = '9'; break; 4035 default: xim_expected_char = NUL; 4036 } 4037 xim_ignored_char = FALSE; 4038 } 4039 4040 /* 4041 * When typing fFtT, XIM may be activated. Thus it must pass 4042 * gtk_im_context_filter_keypress() in Normal mode. 4043 * And while doing :sh too. 4044 */ 4045 if (xic != NULL && !p_imdisable 4046 && (State & (INSERT | CMDLINE | NORMAL | EXTERNCMD)) != 0) 4047 { 4048 /* 4049 * Filter 'imactivatekey' and map it to CTRL-^. This way, Vim is 4050 * always aware of the current status of IM, and can even emulate 4051 * the activation key for modules that don't support one. 4052 */ 4053 if (event->keyval == im_activatekey_keyval 4054 && (event->state & im_activatekey_state) == im_activatekey_state) 4055 { 4056 unsigned int state_mask; 4057 4058 /* Require the state of the 3 most used modifiers to match exactly. 4059 * Otherwise e.g. <S-C-space> would be unusable for other purposes 4060 * if the IM activate key is <S-space>. */ 4061 state_mask = im_activatekey_state; 4062 state_mask |= ((int)GDK_SHIFT_MASK | (int)GDK_CONTROL_MASK 4063 | (int)GDK_MOD1_MASK); 4064 4065 if ((event->state & state_mask) != im_activatekey_state) 4066 return FALSE; 4067 4068 /* Don't send it a second time on GDK_KEY_RELEASE. */ 4069 if (event->type != GDK_KEY_PRESS) 4070 return TRUE; 4071 4072 if (map_to_exists_mode((char_u *)"", LANGMAP)) 4073 { 4074 im_set_active(FALSE); 4075 4076 /* ":lmap" mappings exists, toggle use of mappings. */ 4077 State ^= LANGMAP; 4078 if (State & LANGMAP) 4079 { 4080 curbuf->b_p_iminsert = B_IMODE_NONE; 4081 State &= ~LANGMAP; 4082 } 4083 else 4084 { 4085 curbuf->b_p_iminsert = B_IMODE_LMAP; 4086 State |= LANGMAP; 4087 } 4088 return TRUE; 4089 } 4090 4091 return gtk_im_context_filter_keypress(xic, event); 4092 } 4093 4094 /* Don't filter events through the IM context if IM isn't active 4095 * right now. Unlike with GTK+ 1.2 we cannot rely on the IM module 4096 * not doing anything before the activation key was sent. */ 4097 if (im_activatekey_keyval == GDK_VoidSymbol || im_is_active) 4098 { 4099 int imresult = gtk_im_context_filter_keypress(xic, event); 4100 4101 /* Some XIM send following sequence: 4102 * 1. preedited string. 4103 * 2. committed string. 4104 * 3. line changed key. 4105 * 4. preedited string. 4106 * 5. remove preedited string. 4107 * if 3, Vim can't move back the above line for 5. 4108 * thus, this part should not parse the key. */ 4109 if (!imresult && preedit_start_col != MAXCOL 4110 && event->keyval == GDK_Return) 4111 { 4112 im_synthesize_keypress(GDK_Return, 0U); 4113 return FALSE; 4114 } 4115 4116 /* If XIM tried to commit a keypad key as a single char., 4117 * ignore it so we can use the keypad key 'raw', for mappings. */ 4118 if (xim_expected_char != NUL && xim_ignored_char) 4119 /* We had a keypad key, and XIM tried to thieve it */ 4120 return FALSE; 4121 4122 /* Normal processing */ 4123 return imresult; 4124 } 4125 } 4126 4127 return FALSE; 4128 } 4129 4130 int 4131 im_get_status(void) 4132 { 4133 return im_is_active; 4134 } 4135 4136 # else /* !HAVE_GTK2 */ 4137 4138 static int xim_is_active = FALSE; /* XIM should be active in the current 4139 mode */ 4140 static int xim_has_focus = FALSE; /* XIM is really being used for Vim */ 4141 #ifdef FEAT_GUI_X11 4142 static XIMStyle input_style; 4143 static int status_area_enabled = TRUE; 4144 #endif 4145 4146 #ifdef FEAT_GUI_GTK 4147 # ifdef WIN3264 4148 # include <gdk/gdkwin32.h> 4149 # else 4150 # include <gdk/gdkx.h> 4151 # endif 4152 #else 4153 # ifdef PROTO 4154 /* Define a few things to be able to generate prototypes while not configured 4155 * for GTK. */ 4156 # define GSList int 4157 # define gboolean int 4158 typedef int GdkEvent; 4159 typedef int GdkEventKey; 4160 # define GdkIC int 4161 # endif 4162 #endif 4163 4164 #if defined(FEAT_GUI_GTK) || defined(PROTO) || defined(FEAT_GUI_KDE) 4165 static int preedit_buf_len = 0; 4166 static int xim_can_preediting INIT(= FALSE); /* XIM in showmode() */ 4167 static int xim_input_style; 4168 #ifndef FEAT_GUI_GTK 4169 # define gboolean int 4170 #endif 4171 static gboolean use_status_area = 0; 4172 4173 static int im_xim_str2keycode __ARGS((unsigned int *code, unsigned int *state)); 4174 static void im_xim_send_event_imactivate __ARGS((void)); 4175 4176 /* 4177 * Convert string to keycode and state for XKeyEvent. 4178 * When string is valid return OK, when invalid return FAIL. 4179 * 4180 * See 'imactivatekey' documentation for the format. 4181 */ 4182 static int 4183 im_xim_str2keycode(code, state) 4184 unsigned int *code; 4185 unsigned int *state; 4186 { 4187 int retval = OK; 4188 int len; 4189 unsigned keycode = 0, keystate = 0; 4190 Window window; 4191 Display *display; 4192 char_u *flag_end; 4193 char_u *str; 4194 4195 if (*p_imak != NUL) 4196 { 4197 len = STRLEN(p_imak); 4198 for (flag_end = p_imak + len - 1; 4199 flag_end > p_imak && *flag_end != '-'; --flag_end) 4200 ; 4201 4202 /* Parse modifier keys */ 4203 for (str = p_imak; str < flag_end; ++str) 4204 { 4205 switch (*str) 4206 { 4207 case 's': case 'S': 4208 keystate |= ShiftMask; 4209 break; 4210 case 'l': case 'L': 4211 keystate |= LockMask; 4212 break; 4213 case 'c': case 'C': 4214 keystate |= ControlMask; 4215 break; 4216 case '1': 4217 keystate |= Mod1Mask; 4218 break; 4219 case '2': 4220 keystate |= Mod2Mask; 4221 break; 4222 case '3': 4223 keystate |= Mod3Mask; 4224 break; 4225 case '4': 4226 keystate |= Mod4Mask; 4227 break; 4228 case '5': 4229 keystate |= Mod5Mask; 4230 break; 4231 case '-': 4232 break; 4233 default: 4234 retval = FAIL; 4235 } 4236 } 4237 if (*str == '-') 4238 ++str; 4239 4240 /* Get keycode from string. */ 4241 gui_get_x11_windis(&window, &display); 4242 if (display) 4243 keycode = XKeysymToKeycode(display, XStringToKeysym((char *)str)); 4244 if (keycode == 0) 4245 retval = FAIL; 4246 4247 if (code != NULL) 4248 *code = keycode; 4249 if (state != NULL) 4250 *state = keystate; 4251 } 4252 return retval; 4253 } 4254 4255 static void 4256 im_xim_send_event_imactivate() 4257 { 4258 /* Force turn on preedit state by symulate keypress event. 4259 * Keycode and state is specified by 'imactivatekey'. 4260 */ 4261 XKeyEvent ev; 4262 4263 gui_get_x11_windis(&ev.window, &ev.display); 4264 ev.root = RootWindow(ev.display, DefaultScreen(ev.display)); 4265 ev.subwindow = None; 4266 ev.time = CurrentTime; 4267 ev.x = 1; 4268 ev.y = 1; 4269 ev.x_root = 1; 4270 ev.y_root = 1; 4271 ev.same_screen = 1; 4272 ev.type = KeyPress; 4273 if (im_xim_str2keycode(&ev.keycode, &ev.state) == OK) 4274 XSendEvent(ev.display, ev.window, 1, KeyPressMask, (XEvent*)&ev); 4275 } 4276 4277 /* 4278 * Return TRUE if 'imactivatekey' has a valid value. 4279 */ 4280 int 4281 im_xim_isvalid_imactivate() 4282 { 4283 return im_xim_str2keycode(NULL, NULL) == OK; 4284 } 4285 #endif /* FEAT_GUI_GTK */ 4286 4287 /* 4288 * Switch using XIM on/off. This is used by the code that changes "State". 4289 */ 4290 void 4291 im_set_active(active) 4292 int active; 4293 { 4294 if (xic == NULL) 4295 return; 4296 4297 /* If 'imdisable' is set, XIM is never active. */ 4298 if (p_imdisable) 4299 active = FALSE; 4300 #if !defined (FEAT_GUI_GTK) && !defined (FEAT_GUI_KDE) 4301 else if (input_style & XIMPreeditPosition) 4302 /* There is a problem in switching XIM off when preediting is used, 4303 * and it is not clear how this can be solved. For now, keep XIM on 4304 * all the time, like it was done in Vim 5.8. */ 4305 active = TRUE; 4306 #endif 4307 4308 /* Remember the active state, it is needed when Vim gets keyboard focus. */ 4309 xim_is_active = active; 4310 4311 #ifdef FEAT_GUI_GTK 4312 /* When 'imactivatekey' has valid key-string, try to control XIM preedit 4313 * state. When 'imactivatekey' has no or invalid string, try old XIM 4314 * focus control. 4315 */ 4316 if (*p_imak != NUL) 4317 { 4318 /* BASIC STRATEGY: 4319 * Destroy old Input Context (XIC), and create new one. New XIC 4320 * would have a state of preedit that is off. When argument:active 4321 * is false, that's all. Else argument:active is true, send a key 4322 * event specified by 'imactivatekey' to activate XIM preedit state. 4323 */ 4324 4325 xim_is_active = TRUE; /* Disable old XIM focus control */ 4326 /* If we can monitor preedit state with preedit callback functions, 4327 * try least creation of new XIC. 4328 */ 4329 if (xim_input_style & (int)GDK_IM_PREEDIT_CALLBACKS) 4330 { 4331 if (xim_can_preediting && !active) 4332 { 4333 /* Force turn off preedit state. With some IM 4334 * implementations, we cannot turn off preedit state by 4335 * symulate keypress event. It is why using such a method 4336 * that destroy old IC (input context), and create new one. 4337 * When create new IC, its preedit state is usually off. 4338 */ 4339 xim_reset(); 4340 xim_set_focus(FALSE); 4341 gdk_ic_destroy(xic); 4342 xim_init(); 4343 xim_can_preediting = FALSE; 4344 } 4345 else if (!xim_can_preediting && active) 4346 im_xim_send_event_imactivate(); 4347 } 4348 else 4349 { 4350 /* First, force destroy old IC, and create new one. It 4351 * symulates "turning off preedit state". 4352 */ 4353 xim_set_focus(FALSE); 4354 gdk_ic_destroy(xic); 4355 xim_init(); 4356 xim_can_preediting = FALSE; 4357 4358 /* 2nd, when requested to activate IM, symulate this by sending 4359 * the event. 4360 */ 4361 if (active) 4362 { 4363 im_xim_send_event_imactivate(); 4364 xim_can_preediting = TRUE; 4365 } 4366 } 4367 } 4368 else 4369 { 4370 # ifndef XIMPreeditUnKnown 4371 /* X11R5 doesn't have these, it looks safe enough to define here. */ 4372 typedef unsigned long XIMPreeditState; 4373 # define XIMPreeditUnKnown 0L 4374 # define XIMPreeditEnable 1L 4375 # define XIMPreeditDisable (1L<<1) 4376 # define XNPreeditState "preeditState" 4377 # endif 4378 XIMPreeditState preedit_state = XIMPreeditUnKnown; 4379 XVaNestedList preedit_attr; 4380 XIC pxic; 4381 4382 preedit_attr = XVaCreateNestedList(0, 4383 XNPreeditState, &preedit_state, 4384 NULL); 4385 pxic = ((GdkICPrivate *)xic)->xic; 4386 4387 if (!XGetICValues(pxic, XNPreeditAttributes, preedit_attr, NULL)) 4388 { 4389 XFree(preedit_attr); 4390 preedit_attr = XVaCreateNestedList(0, 4391 XNPreeditState, 4392 active ? XIMPreeditEnable : XIMPreeditDisable, 4393 NULL); 4394 XSetICValues(pxic, XNPreeditAttributes, preedit_attr, NULL); 4395 xim_can_preediting = active; 4396 xim_is_active = active; 4397 } 4398 XFree(preedit_attr); 4399 } 4400 if (xim_input_style & XIMPreeditCallbacks) 4401 { 4402 preedit_buf_len = 0; 4403 init_preedit_start_col(); 4404 } 4405 #else 4406 # if 0 4407 /* When had tested kinput2 + canna + Athena GUI version with 4408 * 'imactivatekey' is "s-space", im_xim_send_event_imactivate() did not 4409 * work correctly. It just inserted one space. I don't know why we 4410 * couldn't switch state of XIM preediting. This is reason why these 4411 * codes are commented out. 4412 */ 4413 /* First, force destroy old IC, and create new one. It symulates 4414 * "turning off preedit state". 4415 */ 4416 xim_set_focus(FALSE); 4417 XDestroyIC(xic); 4418 xic = NULL; 4419 xim_init(); 4420 4421 /* 2nd, when requested to activate IM, symulate this by sending the 4422 * event. 4423 */ 4424 if (active) 4425 im_xim_send_event_imactivate(); 4426 # endif 4427 #endif 4428 xim_set_preedit(); 4429 } 4430 4431 /* 4432 * Adjust using XIM for gaining or losing keyboard focus. Also called when 4433 * "xim_is_active" changes. 4434 */ 4435 void 4436 xim_set_focus(focus) 4437 int focus; 4438 { 4439 if (xic == NULL) 4440 return; 4441 4442 /* 4443 * XIM only gets focus when the Vim window has keyboard focus and XIM has 4444 * been set active for the current mode. 4445 */ 4446 if (focus && xim_is_active) 4447 { 4448 if (!xim_has_focus) 4449 { 4450 xim_has_focus = TRUE; 4451 #ifdef FEAT_GUI_GTK 4452 gdk_im_begin(xic, gui.drawarea->window); 4453 #else 4454 XSetICFocus(xic); 4455 #endif 4456 } 4457 } 4458 else 4459 { 4460 if (xim_has_focus) 4461 { 4462 xim_has_focus = FALSE; 4463 #ifdef FEAT_GUI_GTK 4464 gdk_im_end(); 4465 #else 4466 XUnsetICFocus(xic); 4467 #endif 4468 } 4469 } 4470 } 4471 4472 #ifndef FEAT_GUI_KDE 4473 /*ARGSUSED*/ 4474 void 4475 im_set_position(row, col) 4476 int row; 4477 int col; 4478 { 4479 xim_set_preedit(); 4480 } 4481 #endif 4482 4483 /* 4484 * Set the XIM to the current cursor position. 4485 */ 4486 void 4487 xim_set_preedit() 4488 { 4489 if (xic == NULL) 4490 return; 4491 4492 xim_set_focus(TRUE); 4493 4494 #ifdef FEAT_GUI_GTK 4495 if (gdk_im_ready()) 4496 { 4497 int attrmask; 4498 GdkICAttr *attr; 4499 4500 if (!xic_attr) 4501 return; 4502 4503 attr = xic_attr; 4504 attrmask = 0; 4505 4506 # ifdef FEAT_XFONTSET 4507 if ((xim_input_style & (int)GDK_IM_PREEDIT_POSITION) 4508 && gui.fontset != NOFONTSET 4509 && gui.fontset->type == GDK_FONT_FONTSET) 4510 { 4511 if (!xim_has_focus) 4512 { 4513 if (attr->spot_location.y >= 0) 4514 { 4515 attr->spot_location.x = 0; 4516 attr->spot_location.y = -100; 4517 attrmask |= (int)GDK_IC_SPOT_LOCATION; 4518 } 4519 } 4520 else 4521 { 4522 gint width, height; 4523 4524 if (attr->spot_location.x != TEXT_X(gui.col) 4525 || attr->spot_location.y != TEXT_Y(gui.row)) 4526 { 4527 attr->spot_location.x = TEXT_X(gui.col); 4528 attr->spot_location.y = TEXT_Y(gui.row); 4529 attrmask |= (int)GDK_IC_SPOT_LOCATION; 4530 } 4531 4532 gdk_window_get_size(gui.drawarea->window, &width, &height); 4533 width -= 2 * gui.border_offset; 4534 height -= 2 * gui.border_offset; 4535 if (xim_input_style & (int)GDK_IM_STATUS_AREA) 4536 height -= gui.char_height; 4537 if (attr->preedit_area.width != width 4538 || attr->preedit_area.height != height) 4539 { 4540 attr->preedit_area.x = gui.border_offset; 4541 attr->preedit_area.y = gui.border_offset; 4542 attr->preedit_area.width = width; 4543 attr->preedit_area.height = height; 4544 attrmask |= (int)GDK_IC_PREEDIT_AREA; 4545 } 4546 4547 if (attr->preedit_fontset != gui.current_font) 4548 { 4549 attr->preedit_fontset = gui.current_font; 4550 attrmask |= (int)GDK_IC_PREEDIT_FONTSET; 4551 } 4552 } 4553 } 4554 # endif /* FEAT_XFONTSET */ 4555 4556 if (xim_fg_color == INVALCOLOR) 4557 { 4558 xim_fg_color = gui.def_norm_pixel; 4559 xim_bg_color = gui.def_back_pixel; 4560 } 4561 if (attr->preedit_foreground.pixel != xim_fg_color) 4562 { 4563 attr->preedit_foreground.pixel = xim_fg_color; 4564 attrmask |= (int)GDK_IC_PREEDIT_FOREGROUND; 4565 } 4566 if (attr->preedit_background.pixel != xim_bg_color) 4567 { 4568 attr->preedit_background.pixel = xim_bg_color; 4569 attrmask |= (int)GDK_IC_PREEDIT_BACKGROUND; 4570 } 4571 4572 if (attrmask != 0) 4573 gdk_ic_set_attr(xic, attr, (GdkICAttributesType)attrmask); 4574 } 4575 #else /* FEAT_GUI_GTK */ 4576 # ifdef FEAT_GUI_KDE 4577 # else 4578 { 4579 XVaNestedList attr_list; 4580 XRectangle spot_area; 4581 XPoint over_spot; 4582 int line_space; 4583 4584 if (!xim_has_focus) 4585 { 4586 /* hide XIM cursor */ 4587 over_spot.x = 0; 4588 over_spot.y = -100; /* arbitrary invisible position */ 4589 attr_list = (XVaNestedList) XVaCreateNestedList(0, 4590 XNSpotLocation, 4591 &over_spot, 4592 NULL); 4593 XSetICValues(xic, XNPreeditAttributes, attr_list, NULL); 4594 XFree(attr_list); 4595 return; 4596 } 4597 4598 if (input_style & XIMPreeditPosition) 4599 { 4600 if (xim_fg_color == INVALCOLOR) 4601 { 4602 xim_fg_color = gui.def_norm_pixel; 4603 xim_bg_color = gui.def_back_pixel; 4604 } 4605 over_spot.x = TEXT_X(gui.col); 4606 over_spot.y = TEXT_Y(gui.row); 4607 spot_area.x = 0; 4608 spot_area.y = 0; 4609 spot_area.height = gui.char_height * Rows; 4610 spot_area.width = gui.char_width * Columns; 4611 line_space = gui.char_height; 4612 attr_list = (XVaNestedList) XVaCreateNestedList(0, 4613 XNSpotLocation, &over_spot, 4614 XNForeground, (Pixel) xim_fg_color, 4615 XNBackground, (Pixel) xim_bg_color, 4616 XNArea, &spot_area, 4617 XNLineSpace, line_space, 4618 NULL); 4619 if (XSetICValues(xic, XNPreeditAttributes, attr_list, NULL)) 4620 EMSG(_("E284: Cannot set IC values")); 4621 XFree(attr_list); 4622 } 4623 } 4624 # endif /* FEAT_GUI_KDE */ 4625 #endif /* FEAT_GUI_GTK */ 4626 } 4627 4628 /* 4629 * Set up the status area. 4630 * 4631 * This should use a separate Widget, but that seems not possible, because 4632 * preedit_area and status_area should be set to the same window as for the 4633 * text input. Unfortunately this means the status area pollutes the text 4634 * window... 4635 */ 4636 void 4637 xim_set_status_area() 4638 { 4639 if (xic == NULL) 4640 return; 4641 4642 #ifdef FEAT_GUI_GTK 4643 # if defined(FEAT_XFONTSET) 4644 if (use_status_area) 4645 { 4646 GdkICAttr *attr; 4647 int style; 4648 gint width, height; 4649 GtkWidget *widget; 4650 int attrmask; 4651 4652 if (!xic_attr) 4653 return; 4654 4655 attr = xic_attr; 4656 attrmask = 0; 4657 style = (int)gdk_ic_get_style(xic); 4658 if ((style & (int)GDK_IM_STATUS_MASK) == (int)GDK_IM_STATUS_AREA) 4659 { 4660 if (gui.fontset != NOFONTSET 4661 && gui.fontset->type == GDK_FONT_FONTSET) 4662 { 4663 widget = gui.mainwin; 4664 gdk_window_get_size(widget->window, &width, &height); 4665 4666 attrmask |= (int)GDK_IC_STATUS_AREA; 4667 attr->status_area.x = 0; 4668 attr->status_area.y = height - gui.char_height - 1; 4669 attr->status_area.width = width; 4670 attr->status_area.height = gui.char_height; 4671 } 4672 } 4673 if (attrmask != 0) 4674 gdk_ic_set_attr(xic, attr, (GdkICAttributesType)attrmask); 4675 } 4676 # endif 4677 #else 4678 # ifdef FEAT_GUI_KDE 4679 # else 4680 { 4681 XVaNestedList preedit_list = 0, status_list = 0, list = 0; 4682 XRectangle pre_area, status_area; 4683 4684 if (input_style & XIMStatusArea) 4685 { 4686 if (input_style & XIMPreeditArea) 4687 { 4688 XRectangle *needed_rect; 4689 4690 /* to get status_area width */ 4691 status_list = XVaCreateNestedList(0, XNAreaNeeded, 4692 &needed_rect, NULL); 4693 XGetICValues(xic, XNStatusAttributes, status_list, NULL); 4694 XFree(status_list); 4695 4696 status_area.width = needed_rect->width; 4697 } 4698 else 4699 status_area.width = gui.char_width * Columns; 4700 4701 status_area.x = 0; 4702 status_area.y = gui.char_height * Rows + gui.border_offset; 4703 if (gui.which_scrollbars[SBAR_BOTTOM]) 4704 status_area.y += gui.scrollbar_height; 4705 #ifdef FEAT_MENU 4706 if (gui.menu_is_active) 4707 status_area.y += gui.menu_height; 4708 #endif 4709 status_area.height = gui.char_height; 4710 status_list = XVaCreateNestedList(0, XNArea, &status_area, NULL); 4711 } 4712 else 4713 { 4714 status_area.x = 0; 4715 status_area.y = gui.char_height * Rows + gui.border_offset; 4716 if (gui.which_scrollbars[SBAR_BOTTOM]) 4717 status_area.y += gui.scrollbar_height; 4718 #ifdef FEAT_MENU 4719 if (gui.menu_is_active) 4720 status_area.y += gui.menu_height; 4721 #endif 4722 status_area.width = 0; 4723 status_area.height = gui.char_height; 4724 } 4725 4726 if (input_style & XIMPreeditArea) /* off-the-spot */ 4727 { 4728 pre_area.x = status_area.x + status_area.width; 4729 pre_area.y = gui.char_height * Rows + gui.border_offset; 4730 pre_area.width = gui.char_width * Columns - pre_area.x; 4731 if (gui.which_scrollbars[SBAR_BOTTOM]) 4732 pre_area.y += gui.scrollbar_height; 4733 #ifdef FEAT_MENU 4734 if (gui.menu_is_active) 4735 pre_area.y += gui.menu_height; 4736 #endif 4737 pre_area.height = gui.char_height; 4738 preedit_list = XVaCreateNestedList(0, XNArea, &pre_area, NULL); 4739 } 4740 else if (input_style & XIMPreeditPosition) /* over-the-spot */ 4741 { 4742 pre_area.x = 0; 4743 pre_area.y = 0; 4744 pre_area.height = gui.char_height * Rows; 4745 pre_area.width = gui.char_width * Columns; 4746 preedit_list = XVaCreateNestedList(0, XNArea, &pre_area, NULL); 4747 } 4748 4749 if (preedit_list && status_list) 4750 list = XVaCreateNestedList(0, XNPreeditAttributes, preedit_list, 4751 XNStatusAttributes, status_list, NULL); 4752 else if (preedit_list) 4753 list = XVaCreateNestedList(0, XNPreeditAttributes, preedit_list, 4754 NULL); 4755 else if (status_list) 4756 list = XVaCreateNestedList(0, XNStatusAttributes, status_list, 4757 NULL); 4758 else 4759 list = NULL; 4760 4761 if (list) 4762 { 4763 XSetICValues(xic, XNVaNestedList, list, NULL); 4764 XFree(list); 4765 } 4766 if (status_list) 4767 XFree(status_list); 4768 if (preedit_list) 4769 XFree(preedit_list); 4770 } 4771 # endif /* FEAT_GUI_KDE */ 4772 #endif 4773 } 4774 4775 #if defined(FEAT_GUI_X11) || defined(FEAT_GUI_GTK) || defined(FEAT_GUI_KDE) 4776 static char e_xim[] = N_("E285: Failed to create input context"); 4777 #endif 4778 4779 #if defined(FEAT_GUI_X11) || defined(PROTO) 4780 # if defined(XtSpecificationRelease) && XtSpecificationRelease >= 6 && !defined(sun) 4781 # define USE_X11R6_XIM 4782 # endif 4783 4784 static int xim_real_init __ARGS((Window x11_window, Display *x11_display)); 4785 4786 4787 #ifdef USE_X11R6_XIM 4788 static void xim_instantiate_cb __ARGS((Display *display, XPointer client_data, XPointer call_data)); 4789 static void xim_destroy_cb __ARGS((XIM im, XPointer client_data, XPointer call_data)); 4790 4791 /*ARGSUSED*/ 4792 static void 4793 xim_instantiate_cb(display, client_data, call_data) 4794 Display *display; 4795 XPointer client_data; 4796 XPointer call_data; 4797 { 4798 Window x11_window; 4799 Display *x11_display; 4800 4801 #ifdef XIM_DEBUG 4802 xim_log("xim_instantiate_cb()\n"); 4803 #endif 4804 4805 gui_get_x11_windis(&x11_window, &x11_display); 4806 if (display != x11_display) 4807 return; 4808 4809 xim_real_init(x11_window, x11_display); 4810 gui_set_shellsize(FALSE, FALSE); 4811 if (xic != NULL) 4812 XUnregisterIMInstantiateCallback(x11_display, NULL, NULL, NULL, 4813 xim_instantiate_cb, NULL); 4814 } 4815 4816 /*ARGSUSED*/ 4817 static void 4818 xim_destroy_cb(im, client_data, call_data) 4819 XIM im; 4820 XPointer client_data; 4821 XPointer call_data; 4822 { 4823 Window x11_window; 4824 Display *x11_display; 4825 4826 #ifdef XIM_DEBUG 4827 xim_log("xim_destroy_cb()\n"); 4828 #endif 4829 gui_get_x11_windis(&x11_window, &x11_display); 4830 4831 xic = NULL; 4832 status_area_enabled = FALSE; 4833 4834 gui_set_shellsize(FALSE, FALSE); 4835 4836 XRegisterIMInstantiateCallback(x11_display, NULL, NULL, NULL, 4837 xim_instantiate_cb, NULL); 4838 } 4839 #endif 4840 4841 void 4842 xim_init() 4843 { 4844 Window x11_window; 4845 Display *x11_display; 4846 4847 #ifdef XIM_DEBUG 4848 xim_log("xim_init()\n"); 4849 #endif 4850 4851 gui_get_x11_windis(&x11_window, &x11_display); 4852 4853 xic = NULL; 4854 4855 if (xim_real_init(x11_window, x11_display)) 4856 return; 4857 4858 gui_set_shellsize(FALSE, FALSE); 4859 4860 #ifdef USE_X11R6_XIM 4861 XRegisterIMInstantiateCallback(x11_display, NULL, NULL, NULL, 4862 xim_instantiate_cb, NULL); 4863 #endif 4864 } 4865 4866 static int 4867 xim_real_init(x11_window, x11_display) 4868 Window x11_window; 4869 Display *x11_display; 4870 { 4871 int i; 4872 char *p, 4873 *s, 4874 *ns, 4875 *end, 4876 tmp[1024]; 4877 #define IMLEN_MAX 40 4878 char buf[IMLEN_MAX + 7]; 4879 XIM xim = NULL; 4880 XIMStyles *xim_styles; 4881 XIMStyle this_input_style = 0; 4882 Boolean found; 4883 XPoint over_spot; 4884 XVaNestedList preedit_list, status_list; 4885 4886 input_style = 0; 4887 status_area_enabled = FALSE; 4888 4889 if (xic != NULL) 4890 return FALSE; 4891 4892 if (gui.rsrc_input_method != NULL && *gui.rsrc_input_method != NUL) 4893 { 4894 strcpy(tmp, gui.rsrc_input_method); 4895 for (ns = s = tmp; ns != NULL && *s != NUL;) 4896 { 4897 s = (char *)skipwhite((char_u *)s); 4898 if (*s == NUL) 4899 break; 4900 if ((ns = end = strchr(s, ',')) == NULL) 4901 end = s + strlen(s); 4902 while (isspace(((char_u *)end)[-1])) 4903 end--; 4904 *end = NUL; 4905 4906 if (strlen(s) <= IMLEN_MAX) 4907 { 4908 strcpy(buf, "@im="); 4909 strcat(buf, s); 4910 if ((p = XSetLocaleModifiers(buf)) != NULL && *p != NUL 4911 && (xim = XOpenIM(x11_display, NULL, NULL, NULL)) 4912 != NULL) 4913 break; 4914 } 4915 4916 s = ns + 1; 4917 } 4918 } 4919 4920 if (xim == NULL && (p = XSetLocaleModifiers("")) != NULL && *p != NUL) 4921 xim = XOpenIM(x11_display, NULL, NULL, NULL); 4922 4923 /* This is supposed to be useful to obtain characters through 4924 * XmbLookupString() without really using a XIM. */ 4925 if (xim == NULL && (p = XSetLocaleModifiers("@im=none")) != NULL 4926 && *p != NUL) 4927 xim = XOpenIM(x11_display, NULL, NULL, NULL); 4928 4929 if (xim == NULL) 4930 { 4931 /* Only give this message when verbose is set, because too many people 4932 * got this message when they didn't want to use a XIM. */ 4933 if (p_verbose > 0) 4934 { 4935 verbose_enter(); 4936 EMSG(_("E286: Failed to open input method")); 4937 verbose_leave(); 4938 } 4939 return FALSE; 4940 } 4941 4942 #ifdef USE_X11R6_XIM 4943 { 4944 XIMCallback destroy_cb; 4945 4946 destroy_cb.callback = xim_destroy_cb; 4947 destroy_cb.client_data = NULL; 4948 if (XSetIMValues(xim, XNDestroyCallback, &destroy_cb, NULL)) 4949 EMSG(_("E287: Warning: Could not set destroy callback to IM")); 4950 } 4951 #endif 4952 4953 if (XGetIMValues(xim, XNQueryInputStyle, &xim_styles, NULL) || !xim_styles) 4954 { 4955 EMSG(_("E288: input method doesn't support any style")); 4956 XCloseIM(xim); 4957 return FALSE; 4958 } 4959 4960 found = False; 4961 strcpy(tmp, gui.rsrc_preedit_type_name); 4962 for (s = tmp; s && !found; ) 4963 { 4964 while (*s && isspace((unsigned char)*s)) 4965 s++; 4966 if (!*s) 4967 break; 4968 if ((ns = end = strchr(s, ',')) != 0) 4969 ns++; 4970 else 4971 end = s + strlen(s); 4972 while (isspace((unsigned char)*end)) 4973 end--; 4974 *end = '\0'; 4975 4976 if (!strcmp(s, "OverTheSpot")) 4977 this_input_style = (XIMPreeditPosition | XIMStatusArea); 4978 else if (!strcmp(s, "OffTheSpot")) 4979 this_input_style = (XIMPreeditArea | XIMStatusArea); 4980 else if (!strcmp(s, "Root")) 4981 this_input_style = (XIMPreeditNothing | XIMStatusNothing); 4982 4983 for (i = 0; (unsigned short)i < xim_styles->count_styles; i++) 4984 { 4985 if (this_input_style == xim_styles->supported_styles[i]) 4986 { 4987 found = True; 4988 break; 4989 } 4990 } 4991 if (!found) 4992 for (i = 0; (unsigned short)i < xim_styles->count_styles; i++) 4993 { 4994 if ((xim_styles->supported_styles[i] & this_input_style) 4995 == (this_input_style & ~XIMStatusArea)) 4996 { 4997 this_input_style &= ~XIMStatusArea; 4998 found = True; 4999 break; 5000 } 5001 } 5002 5003 s = ns; 5004 } 5005 XFree(xim_styles); 5006 5007 if (!found) 5008 { 5009 /* Only give this message when verbose is set, because too many people 5010 * got this message when they didn't want to use a XIM. */ 5011 if (p_verbose > 0) 5012 { 5013 verbose_enter(); 5014 EMSG(_("E289: input method doesn't support my preedit type")); 5015 verbose_leave(); 5016 } 5017 XCloseIM(xim); 5018 return FALSE; 5019 } 5020 5021 over_spot.x = TEXT_X(gui.col); 5022 over_spot.y = TEXT_Y(gui.row); 5023 input_style = this_input_style; 5024 5025 /* A crash was reported when trying to pass gui.norm_font as XNFontSet, 5026 * thus that has been removed. Hopefully the default works... */ 5027 #ifdef FEAT_XFONTSET 5028 if (gui.fontset != NOFONTSET) 5029 { 5030 preedit_list = XVaCreateNestedList(0, 5031 XNSpotLocation, &over_spot, 5032 XNForeground, (Pixel)gui.def_norm_pixel, 5033 XNBackground, (Pixel)gui.def_back_pixel, 5034 XNFontSet, (XFontSet)gui.fontset, 5035 NULL); 5036 status_list = XVaCreateNestedList(0, 5037 XNForeground, (Pixel)gui.def_norm_pixel, 5038 XNBackground, (Pixel)gui.def_back_pixel, 5039 XNFontSet, (XFontSet)gui.fontset, 5040 NULL); 5041 } 5042 else 5043 #endif 5044 { 5045 preedit_list = XVaCreateNestedList(0, 5046 XNSpotLocation, &over_spot, 5047 XNForeground, (Pixel)gui.def_norm_pixel, 5048 XNBackground, (Pixel)gui.def_back_pixel, 5049 NULL); 5050 status_list = XVaCreateNestedList(0, 5051 XNForeground, (Pixel)gui.def_norm_pixel, 5052 XNBackground, (Pixel)gui.def_back_pixel, 5053 NULL); 5054 } 5055 5056 xic = XCreateIC(xim, 5057 XNInputStyle, input_style, 5058 XNClientWindow, x11_window, 5059 XNFocusWindow, gui.wid, 5060 XNPreeditAttributes, preedit_list, 5061 XNStatusAttributes, status_list, 5062 NULL); 5063 XFree(status_list); 5064 XFree(preedit_list); 5065 if (xic != NULL) 5066 { 5067 if (input_style & XIMStatusArea) 5068 { 5069 xim_set_status_area(); 5070 status_area_enabled = TRUE; 5071 } 5072 else 5073 gui_set_shellsize(FALSE, FALSE); 5074 } 5075 else 5076 { 5077 EMSG(_(e_xim)); 5078 XCloseIM(xim); 5079 return FALSE; 5080 } 5081 5082 return TRUE; 5083 } 5084 5085 #endif /* FEAT_GUI_X11 */ 5086 5087 #if defined(FEAT_GUI_GTK) || defined(PROTO) 5088 5089 # ifdef FEAT_XFONTSET 5090 static char e_overthespot[] = N_("E290: over-the-spot style requires fontset"); 5091 # endif 5092 5093 # ifdef PROTO 5094 typedef int GdkIC; 5095 # endif 5096 5097 void 5098 xim_decide_input_style() 5099 { 5100 /* GDK_IM_STATUS_CALLBACKS was disabled, enabled it to allow Japanese 5101 * OverTheSpot. */ 5102 int supported_style = (int)GDK_IM_PREEDIT_NONE | 5103 (int)GDK_IM_PREEDIT_NOTHING | 5104 (int)GDK_IM_PREEDIT_POSITION | 5105 (int)GDK_IM_PREEDIT_CALLBACKS | 5106 (int)GDK_IM_STATUS_CALLBACKS | 5107 (int)GDK_IM_STATUS_AREA | 5108 (int)GDK_IM_STATUS_NONE | 5109 (int)GDK_IM_STATUS_NOTHING; 5110 5111 #ifdef XIM_DEBUG 5112 xim_log("xim_decide_input_style()\n"); 5113 #endif 5114 5115 if (!gdk_im_ready()) 5116 xim_input_style = 0; 5117 else 5118 { 5119 if (gtk_major_version > 1 5120 || (gtk_major_version == 1 5121 && (gtk_minor_version > 2 5122 || (gtk_minor_version == 2 && gtk_micro_version >= 3)))) 5123 use_status_area = TRUE; 5124 else 5125 { 5126 EMSG(_("E291: Your GTK+ is older than 1.2.3. Status area disabled")); 5127 use_status_area = FALSE; 5128 } 5129 #ifdef FEAT_XFONTSET 5130 if (gui.fontset == NOFONTSET || gui.fontset->type != GDK_FONT_FONTSET) 5131 #endif 5132 supported_style &= ~((int)GDK_IM_PREEDIT_POSITION 5133 | (int)GDK_IM_STATUS_AREA); 5134 if (!use_status_area) 5135 supported_style &= ~(int)GDK_IM_STATUS_AREA; 5136 xim_input_style = (int)gdk_im_decide_style((GdkIMStyle)supported_style); 5137 } 5138 } 5139 5140 /*ARGSUSED*/ 5141 static void 5142 preedit_start_cbproc(XIC xic, XPointer client_data, XPointer call_data) 5143 { 5144 #ifdef XIM_DEBUG 5145 xim_log("xim_decide_input_style()\n"); 5146 #endif 5147 5148 draw_feedback = NULL; 5149 xim_can_preediting = TRUE; 5150 xim_has_preediting = TRUE; 5151 gui_update_cursor(TRUE, FALSE); 5152 if (showmode() > 0) 5153 { 5154 setcursor(); 5155 out_flush(); 5156 } 5157 } 5158 5159 static void 5160 xim_back_delete(int n) 5161 { 5162 char_u str[3]; 5163 5164 str[0] = CSI; 5165 str[1] = 'k'; 5166 str[2] = 'b'; 5167 while (n-- > 0) 5168 add_to_input_buf(str, 3); 5169 } 5170 5171 static GSList *key_press_event_queue = NULL; 5172 static gboolean processing_queued_event = FALSE; 5173 5174 /*ARGSUSED*/ 5175 static void 5176 preedit_draw_cbproc(XIC xic, XPointer client_data, XPointer call_data) 5177 { 5178 XIMPreeditDrawCallbackStruct *draw_data; 5179 XIMText *text; 5180 char *src; 5181 GSList *event_queue; 5182 5183 #ifdef XIM_DEBUG 5184 xim_log("preedit_draw_cbproc()\n"); 5185 #endif 5186 5187 draw_data = (XIMPreeditDrawCallbackStruct *) call_data; 5188 text = (XIMText *) draw_data->text; 5189 5190 if ((text == NULL && draw_data->chg_length == preedit_buf_len) 5191 || preedit_buf_len == 0) 5192 { 5193 init_preedit_start_col(); 5194 vim_free(draw_feedback); 5195 draw_feedback = NULL; 5196 } 5197 if (draw_data->chg_length > 0) 5198 { 5199 int bs_cnt; 5200 5201 if (draw_data->chg_length > preedit_buf_len) 5202 bs_cnt = preedit_buf_len; 5203 else 5204 bs_cnt = draw_data->chg_length; 5205 xim_back_delete(bs_cnt); 5206 preedit_buf_len -= bs_cnt; 5207 } 5208 if (text != NULL) 5209 { 5210 int len; 5211 #ifdef FEAT_MBYTE 5212 char_u *buf = NULL; 5213 unsigned int nfeedback = 0; 5214 #endif 5215 char_u *ptr; 5216 5217 src = text->string.multi_byte; 5218 if (src != NULL && !text->encoding_is_wchar) 5219 { 5220 len = strlen(src); 5221 ptr = (char_u *)src; 5222 /* Avoid the enter for decision */ 5223 if (*ptr == '\n') 5224 return; 5225 5226 #ifdef FEAT_MBYTE 5227 if (input_conv.vc_type != CONV_NONE 5228 && (buf = string_convert(&input_conv, 5229 (char_u *)src, &len)) != NULL) 5230 { 5231 /* Converted from 'termencoding' to 'encoding'. */ 5232 add_to_input_buf_csi(buf, len); 5233 ptr = buf; 5234 } 5235 else 5236 #endif 5237 add_to_input_buf_csi((char_u *)src, len); 5238 /* Add count of character to preedit_buf_len */ 5239 while (*ptr != NUL) 5240 { 5241 #ifdef FEAT_MBYTE 5242 if (draw_data->text->feedback != NULL) 5243 { 5244 if (draw_feedback == NULL) 5245 draw_feedback = (char *)alloc(draw_data->chg_first 5246 + text->length); 5247 else 5248 draw_feedback = realloc(draw_feedback, 5249 draw_data->chg_first + text->length); 5250 if (draw_feedback != NULL) 5251 { 5252 draw_feedback[nfeedback + draw_data->chg_first] 5253 = draw_data->text->feedback[nfeedback]; 5254 nfeedback++; 5255 } 5256 } 5257 if (has_mbyte) 5258 ptr += (*mb_ptr2len)(ptr); 5259 else 5260 #endif 5261 ptr++; 5262 preedit_buf_len++; 5263 } 5264 #ifdef FEAT_MBYTE 5265 vim_free(buf); 5266 #endif 5267 preedit_end_col = MAXCOL; 5268 } 5269 } 5270 if (text != NULL || draw_data->chg_length > 0) 5271 { 5272 event_queue = key_press_event_queue; 5273 processing_queued_event = TRUE; 5274 while (event_queue != NULL && processing_queued_event) 5275 { 5276 GdkEvent *ev = event_queue->data; 5277 5278 gboolean *ret; 5279 gtk_signal_emit_by_name((GtkObject*)gui.mainwin, "key_press_event", 5280 ev, &ret); 5281 gdk_event_free(ev); 5282 event_queue = event_queue->next; 5283 } 5284 processing_queued_event = FALSE; 5285 if (key_press_event_queue) 5286 { 5287 g_slist_free(key_press_event_queue); 5288 key_press_event_queue = NULL; 5289 } 5290 } 5291 if (gtk_main_level() > 0) 5292 gtk_main_quit(); 5293 } 5294 5295 /* 5296 * Retrieve the highlighting attributes at column col in the preedit string. 5297 * Return -1 if not in preediting mode or if col is out of range. 5298 */ 5299 int 5300 im_get_feedback_attr(int col) 5301 { 5302 if (draw_feedback != NULL && col < preedit_buf_len) 5303 { 5304 if (draw_feedback[col] & XIMReverse) 5305 return HL_INVERSE; 5306 else if (draw_feedback[col] & XIMUnderline) 5307 return HL_UNDERLINE; 5308 else 5309 return hl_attr(HLF_V); 5310 } 5311 5312 return -1; 5313 } 5314 5315 /*ARGSUSED*/ 5316 static void 5317 preedit_caret_cbproc(XIC xic, XPointer client_data, XPointer call_data) 5318 { 5319 #ifdef XIM_DEBUG 5320 xim_log("preedit_caret_cbproc()\n"); 5321 #endif 5322 } 5323 5324 /*ARGSUSED*/ 5325 static void 5326 preedit_done_cbproc(XIC xic, XPointer client_data, XPointer call_data) 5327 { 5328 #ifdef XIM_DEBUG 5329 xim_log("preedit_done_cbproc()\n"); 5330 #endif 5331 5332 vim_free(draw_feedback); 5333 draw_feedback = NULL; 5334 xim_can_preediting = FALSE; 5335 xim_has_preediting = FALSE; 5336 gui_update_cursor(TRUE, FALSE); 5337 if (showmode() > 0) 5338 { 5339 setcursor(); 5340 out_flush(); 5341 } 5342 } 5343 5344 void 5345 xim_reset(void) 5346 { 5347 char *text; 5348 5349 #ifdef XIM_DEBUG 5350 xim_log("xim_reset()\n"); 5351 #endif 5352 5353 if (xic != NULL) 5354 { 5355 text = XmbResetIC(((GdkICPrivate *)xic)->xic); 5356 if (text != NULL && !(xim_input_style & (int)GDK_IM_PREEDIT_CALLBACKS)) 5357 add_to_input_buf_csi((char_u *)text, strlen(text)); 5358 else 5359 preedit_buf_len = 0; 5360 if (text != NULL) 5361 XFree(text); 5362 } 5363 } 5364 5365 /*ARGSUSED*/ 5366 int 5367 xim_queue_key_press_event(GdkEventKey *event, int down) 5368 { 5369 #ifdef XIM_DEBUG 5370 xim_log("xim_queue_key_press_event()\n"); 5371 #endif 5372 5373 if (preedit_buf_len <= 0) 5374 return FALSE; 5375 if (processing_queued_event) 5376 processing_queued_event = FALSE; 5377 5378 key_press_event_queue = g_slist_append(key_press_event_queue, 5379 gdk_event_copy((GdkEvent *)event)); 5380 return TRUE; 5381 } 5382 5383 /*ARGSUSED*/ 5384 static void 5385 preedit_callback_setup(GdkIC *ic) 5386 { 5387 XIC xxic; 5388 XVaNestedList preedit_attr; 5389 XIMCallback preedit_start_cb; 5390 XIMCallback preedit_draw_cb; 5391 XIMCallback preedit_caret_cb; 5392 XIMCallback preedit_done_cb; 5393 5394 xxic = ((GdkICPrivate*)xic)->xic; 5395 preedit_start_cb.callback = (XIMProc)preedit_start_cbproc; 5396 preedit_draw_cb.callback = (XIMProc)preedit_draw_cbproc; 5397 preedit_caret_cb.callback = (XIMProc)preedit_caret_cbproc; 5398 preedit_done_cb.callback = (XIMProc)preedit_done_cbproc; 5399 preedit_attr 5400 = XVaCreateNestedList (0, 5401 XNPreeditStartCallback, &preedit_start_cb, 5402 XNPreeditDrawCallback, &preedit_draw_cb, 5403 XNPreeditCaretCallback, &preedit_caret_cb, 5404 XNPreeditDoneCallback, &preedit_done_cb, 5405 0); 5406 XSetICValues (xxic, XNPreeditAttributes, preedit_attr, 0); 5407 XFree(preedit_attr); 5408 } 5409 5410 /*ARGSUSED*/ 5411 static void 5412 reset_state_setup(GdkIC *ic) 5413 { 5414 #ifdef USE_X11R6_XIM 5415 /* don't change the input context when we call reset */ 5416 XSetICValues(((GdkICPrivate*)ic)->xic, XNResetState, XIMPreserveState, 0); 5417 #endif 5418 } 5419 5420 void 5421 xim_init(void) 5422 { 5423 #ifdef XIM_DEBUG 5424 xim_log("xim_init()\n"); 5425 #endif 5426 5427 xic = NULL; 5428 xic_attr = NULL; 5429 5430 if (!gdk_im_ready()) 5431 { 5432 if (p_verbose > 0) 5433 { 5434 verbose_enter(); 5435 EMSG(_("E292: Input Method Server is not running")); 5436 verbose_leave(); 5437 } 5438 return; 5439 } 5440 if ((xic_attr = gdk_ic_attr_new()) != NULL) 5441 { 5442 #ifdef FEAT_XFONTSET 5443 gint width, height; 5444 #endif 5445 int mask; 5446 GdkColormap *colormap; 5447 GdkICAttr *attr = xic_attr; 5448 int attrmask = (int)GDK_IC_ALL_REQ; 5449 GtkWidget *widget = gui.drawarea; 5450 5451 attr->style = (GdkIMStyle)xim_input_style; 5452 attr->client_window = gui.mainwin->window; 5453 5454 if ((colormap = gtk_widget_get_colormap(widget)) != 5455 gtk_widget_get_default_colormap()) 5456 { 5457 attrmask |= (int)GDK_IC_PREEDIT_COLORMAP; 5458 attr->preedit_colormap = colormap; 5459 } 5460 attrmask |= (int)GDK_IC_PREEDIT_FOREGROUND; 5461 attrmask |= (int)GDK_IC_PREEDIT_BACKGROUND; 5462 attr->preedit_foreground = widget->style->fg[GTK_STATE_NORMAL]; 5463 attr->preedit_background = widget->style->base[GTK_STATE_NORMAL]; 5464 5465 #ifdef FEAT_XFONTSET 5466 if ((xim_input_style & (int)GDK_IM_PREEDIT_MASK) 5467 == (int)GDK_IM_PREEDIT_POSITION) 5468 { 5469 if (gui.fontset == NOFONTSET 5470 || gui.fontset->type != GDK_FONT_FONTSET) 5471 { 5472 EMSG(_(e_overthespot)); 5473 } 5474 else 5475 { 5476 gdk_window_get_size(widget->window, &width, &height); 5477 5478 attrmask |= (int)GDK_IC_PREEDIT_POSITION_REQ; 5479 attr->spot_location.x = TEXT_X(0); 5480 attr->spot_location.y = TEXT_Y(0); 5481 attr->preedit_area.x = gui.border_offset; 5482 attr->preedit_area.y = gui.border_offset; 5483 attr->preedit_area.width = width - 2*gui.border_offset; 5484 attr->preedit_area.height = height - 2*gui.border_offset; 5485 attr->preedit_fontset = gui.fontset; 5486 } 5487 } 5488 5489 if ((xim_input_style & (int)GDK_IM_STATUS_MASK) 5490 == (int)GDK_IM_STATUS_AREA) 5491 { 5492 if (gui.fontset == NOFONTSET 5493 || gui.fontset->type != GDK_FONT_FONTSET) 5494 { 5495 EMSG(_(e_overthespot)); 5496 } 5497 else 5498 { 5499 gdk_window_get_size(gui.mainwin->window, &width, &height); 5500 attrmask |= (int)GDK_IC_STATUS_AREA_REQ; 5501 attr->status_area.x = 0; 5502 attr->status_area.y = height - gui.char_height - 1; 5503 attr->status_area.width = width; 5504 attr->status_area.height = gui.char_height; 5505 attr->status_fontset = gui.fontset; 5506 } 5507 } 5508 else if ((xim_input_style & (int)GDK_IM_STATUS_MASK) 5509 == (int)GDK_IM_STATUS_CALLBACKS) 5510 { 5511 /* FIXME */ 5512 } 5513 #endif 5514 5515 xic = gdk_ic_new(attr, (GdkICAttributesType)attrmask); 5516 5517 if (xic == NULL) 5518 EMSG(_(e_xim)); 5519 else 5520 { 5521 mask = (int)gdk_window_get_events(widget->window); 5522 mask |= (int)gdk_ic_get_events(xic); 5523 gdk_window_set_events(widget->window, (GdkEventMask)mask); 5524 if (xim_input_style & (int)GDK_IM_PREEDIT_CALLBACKS) 5525 preedit_callback_setup(xic); 5526 reset_state_setup(xic); 5527 } 5528 } 5529 } 5530 5531 void 5532 im_shutdown(void) 5533 { 5534 #ifdef XIM_DEBUG 5535 xim_log("im_shutdown()\n"); 5536 #endif 5537 5538 if (xic != NULL) 5539 { 5540 gdk_im_end(); 5541 gdk_ic_destroy(xic); 5542 xic = NULL; 5543 } 5544 xim_is_active = FALSE; 5545 xim_can_preediting = FALSE; 5546 preedit_start_col = MAXCOL; 5547 xim_has_preediting = FALSE; 5548 } 5549 5550 #endif /* FEAT_GUI_GTK */ 5551 5552 int 5553 xim_get_status_area_height() 5554 { 5555 #ifdef FEAT_GUI_GTK 5556 if (xim_input_style & (int)GDK_IM_STATUS_AREA) 5557 return gui.char_height; 5558 #else 5559 # if defined FEAT_GUI_KDE 5560 /* always return zero? */ 5561 # else 5562 if (status_area_enabled) 5563 return gui.char_height; 5564 # endif 5565 #endif 5566 return 0; 5567 } 5568 5569 /* 5570 * Get IM status. When IM is on, return TRUE. Else return FALSE. 5571 * FIXME: This doesn't work correctly: Having focus doesn't always mean XIM is 5572 * active, when not having focus XIM may still be active (e.g., when using a 5573 * tear-off menu item). 5574 */ 5575 int 5576 im_get_status() 5577 { 5578 # ifdef FEAT_GUI_GTK 5579 if (xim_input_style & (int)GDK_IM_PREEDIT_CALLBACKS) 5580 return xim_can_preediting; 5581 # endif 5582 # ifdef FEAT_GUI_KDE 5583 if (preedit_start_col != MAXCOL) 5584 return TRUE; 5585 # endif 5586 return xim_has_focus; 5587 } 5588 5589 # endif /* !HAVE_GTK2 */ 5590 5591 # if defined(FEAT_GUI_GTK) || defined(PROTO) 5592 int 5593 im_is_preediting() 5594 { 5595 return xim_has_preediting; 5596 } 5597 # endif 5598 #endif /* FEAT_XIM */ 5599 5600 #if defined(FEAT_MBYTE) || defined(PROTO) 5601 5602 /* 5603 * Setup "vcp" for conversion from "from" to "to". 5604 * The names must have been made canonical with enc_canonize(). 5605 * vcp->vc_type must have been initialized to CONV_NONE. 5606 * Note: cannot be used for conversion from/to ucs-2 and ucs-4 (will use utf-8 5607 * instead). 5608 * Afterwards invoke with "from" and "to" equal to NULL to cleanup. 5609 * Return FAIL when conversion is not supported, OK otherwise. 5610 */ 5611 int 5612 convert_setup(vcp, from, to) 5613 vimconv_T *vcp; 5614 char_u *from; 5615 char_u *to; 5616 { 5617 int from_prop; 5618 int to_prop; 5619 5620 /* Reset to no conversion. */ 5621 # ifdef USE_ICONV 5622 if (vcp->vc_type == CONV_ICONV && vcp->vc_fd != (iconv_t)-1) 5623 iconv_close(vcp->vc_fd); 5624 # endif 5625 vcp->vc_type = CONV_NONE; 5626 vcp->vc_factor = 1; 5627 vcp->vc_fail = FALSE; 5628 5629 /* No conversion when one of the names is empty or they are equal. */ 5630 if (from == NULL || *from == NUL || to == NULL || *to == NUL 5631 || STRCMP(from, to) == 0) 5632 return OK; 5633 5634 from_prop = enc_canon_props(from); 5635 to_prop = enc_canon_props(to); 5636 if ((from_prop & ENC_LATIN1) && (to_prop & ENC_UNICODE)) 5637 { 5638 /* Internal latin1 -> utf-8 conversion. */ 5639 vcp->vc_type = CONV_TO_UTF8; 5640 vcp->vc_factor = 2; /* up to twice as long */ 5641 } 5642 else if ((from_prop & ENC_LATIN9) && (to_prop & ENC_UNICODE)) 5643 { 5644 /* Internal latin9 -> utf-8 conversion. */ 5645 vcp->vc_type = CONV_9_TO_UTF8; 5646 vcp->vc_factor = 3; /* up to three as long (euro sign) */ 5647 } 5648 else if ((from_prop & ENC_UNICODE) && (to_prop & ENC_LATIN1)) 5649 { 5650 /* Internal utf-8 -> latin1 conversion. */ 5651 vcp->vc_type = CONV_TO_LATIN1; 5652 } 5653 else if ((from_prop & ENC_UNICODE) && (to_prop & ENC_LATIN9)) 5654 { 5655 /* Internal utf-8 -> latin9 conversion. */ 5656 vcp->vc_type = CONV_TO_LATIN9; 5657 } 5658 #ifdef WIN3264 5659 /* Win32-specific codepage <-> codepage conversion without iconv. */ 5660 else if (((from_prop & ENC_UNICODE) || encname2codepage(from) > 0) 5661 && ((to_prop & ENC_UNICODE) || encname2codepage(to) > 0)) 5662 { 5663 vcp->vc_type = CONV_CODEPAGE; 5664 vcp->vc_factor = 2; /* up to twice as long */ 5665 vcp->vc_cpfrom = (from_prop & ENC_UNICODE) ? 0 : encname2codepage(from); 5666 vcp->vc_cpto = (to_prop & ENC_UNICODE) ? 0 : encname2codepage(to); 5667 } 5668 #endif 5669 #ifdef MACOS_X 5670 else if ((from_prop & ENC_MACROMAN) && (to_prop & ENC_LATIN1)) 5671 { 5672 vcp->vc_type = CONV_MAC_LATIN1; 5673 } 5674 else if ((from_prop & ENC_MACROMAN) && (to_prop & ENC_UNICODE)) 5675 { 5676 vcp->vc_type = CONV_MAC_UTF8; 5677 vcp->vc_factor = 2; /* up to twice as long */ 5678 } 5679 else if ((from_prop & ENC_LATIN1) && (to_prop & ENC_MACROMAN)) 5680 { 5681 vcp->vc_type = CONV_LATIN1_MAC; 5682 } 5683 else if ((from_prop & ENC_UNICODE) && (to_prop & ENC_MACROMAN)) 5684 { 5685 vcp->vc_type = CONV_UTF8_MAC; 5686 } 5687 #endif 5688 # ifdef USE_ICONV 5689 else 5690 { 5691 /* Use iconv() for conversion. */ 5692 vcp->vc_fd = (iconv_t)my_iconv_open( 5693 (to_prop & ENC_UNICODE) ? (char_u *)"utf-8" : to, 5694 (from_prop & ENC_UNICODE) ? (char_u *)"utf-8" : from); 5695 if (vcp->vc_fd != (iconv_t)-1) 5696 { 5697 vcp->vc_type = CONV_ICONV; 5698 vcp->vc_factor = 4; /* could be longer too... */ 5699 } 5700 } 5701 # endif 5702 if (vcp->vc_type == CONV_NONE) 5703 return FAIL; 5704 5705 return OK; 5706 } 5707 5708 #if defined(FEAT_GUI) || defined(AMIGA) || defined(WIN3264) \ 5709 || defined(MSDOS) || defined(PROTO) 5710 /* 5711 * Do conversion on typed input characters in-place. 5712 * The input and output are not NUL terminated! 5713 * Returns the length after conversion. 5714 */ 5715 int 5716 convert_input(ptr, len, maxlen) 5717 char_u *ptr; 5718 int len; 5719 int maxlen; 5720 { 5721 return convert_input_safe(ptr, len, maxlen, NULL, NULL); 5722 } 5723 #endif 5724 5725 /* 5726 * Like convert_input(), but when there is an incomplete byte sequence at the 5727 * end return that as an allocated string in "restp" and set "*restlenp" to 5728 * the length. If "restp" is NULL it is not used. 5729 */ 5730 int 5731 convert_input_safe(ptr, len, maxlen, restp, restlenp) 5732 char_u *ptr; 5733 int len; 5734 int maxlen; 5735 char_u **restp; 5736 int *restlenp; 5737 { 5738 char_u *d; 5739 int dlen = len; 5740 int unconvertlen = 0; 5741 5742 d = string_convert_ext(&input_conv, ptr, &dlen, 5743 restp == NULL ? NULL : &unconvertlen); 5744 if (d != NULL) 5745 { 5746 if (dlen <= maxlen) 5747 { 5748 if (unconvertlen > 0) 5749 { 5750 /* Move the unconverted characters to allocated memory. */ 5751 *restp = alloc(unconvertlen); 5752 if (*restp != NULL) 5753 mch_memmove(*restp, ptr + len - unconvertlen, unconvertlen); 5754 *restlenp = unconvertlen; 5755 } 5756 mch_memmove(ptr, d, dlen); 5757 } 5758 else 5759 /* result is too long, keep the unconverted text (the caller must 5760 * have done something wrong!) */ 5761 dlen = len; 5762 vim_free(d); 5763 } 5764 return dlen; 5765 } 5766 5767 #if defined(MACOS_X) 5768 /* This is in os_mac_conv.c. */ 5769 extern char_u *mac_string_convert __ARGS((char_u *ptr, int len, int *lenp, int fail_on_error, int from, int to, int *unconvlenp)); 5770 #endif 5771 5772 /* 5773 * Convert text "ptr[*lenp]" according to "vcp". 5774 * Returns the result in allocated memory and sets "*lenp". 5775 * When "lenp" is NULL, use NUL terminated strings. 5776 * Illegal chars are often changed to "?", unless vcp->vc_fail is set. 5777 * When something goes wrong, NULL is returned and "*lenp" is unchanged. 5778 */ 5779 char_u * 5780 string_convert(vcp, ptr, lenp) 5781 vimconv_T *vcp; 5782 char_u *ptr; 5783 int *lenp; 5784 { 5785 return string_convert_ext(vcp, ptr, lenp, NULL); 5786 } 5787 5788 /* 5789 * Like string_convert(), but when "unconvlenp" is not NULL and there are is 5790 * an incomplete sequence at the end it is not converted and "*unconvlenp" is 5791 * set to the number of remaining bytes. 5792 */ 5793 char_u * 5794 string_convert_ext(vcp, ptr, lenp, unconvlenp) 5795 vimconv_T *vcp; 5796 char_u *ptr; 5797 int *lenp; 5798 int *unconvlenp; 5799 { 5800 char_u *retval = NULL; 5801 char_u *d; 5802 int len; 5803 int i; 5804 int l; 5805 int c; 5806 5807 if (lenp == NULL) 5808 len = (int)STRLEN(ptr); 5809 else 5810 len = *lenp; 5811 if (len == 0) 5812 return vim_strsave((char_u *)""); 5813 5814 switch (vcp->vc_type) 5815 { 5816 case CONV_TO_UTF8: /* latin1 to utf-8 conversion */ 5817 retval = alloc(len * 2 + 1); 5818 if (retval == NULL) 5819 break; 5820 d = retval; 5821 for (i = 0; i < len; ++i) 5822 { 5823 c = ptr[i]; 5824 if (c < 0x80) 5825 *d++ = c; 5826 else 5827 { 5828 *d++ = 0xc0 + ((unsigned)c >> 6); 5829 *d++ = 0x80 + (c & 0x3f); 5830 } 5831 } 5832 *d = NUL; 5833 if (lenp != NULL) 5834 *lenp = (int)(d - retval); 5835 break; 5836 5837 case CONV_9_TO_UTF8: /* latin9 to utf-8 conversion */ 5838 retval = alloc(len * 3 + 1); 5839 if (retval == NULL) 5840 break; 5841 d = retval; 5842 for (i = 0; i < len; ++i) 5843 { 5844 c = ptr[i]; 5845 switch (c) 5846 { 5847 case 0xa4: c = 0x20ac; break; /* euro */ 5848 case 0xa6: c = 0x0160; break; /* S hat */ 5849 case 0xa8: c = 0x0161; break; /* S -hat */ 5850 case 0xb4: c = 0x017d; break; /* Z hat */ 5851 case 0xb8: c = 0x017e; break; /* Z -hat */ 5852 case 0xbc: c = 0x0152; break; /* OE */ 5853 case 0xbd: c = 0x0153; break; /* oe */ 5854 case 0xbe: c = 0x0178; break; /* Y */ 5855 } 5856 d += utf_char2bytes(c, d); 5857 } 5858 *d = NUL; 5859 if (lenp != NULL) 5860 *lenp = (int)(d - retval); 5861 break; 5862 5863 case CONV_TO_LATIN1: /* utf-8 to latin1 conversion */ 5864 case CONV_TO_LATIN9: /* utf-8 to latin9 conversion */ 5865 retval = alloc(len + 1); 5866 if (retval == NULL) 5867 break; 5868 d = retval; 5869 for (i = 0; i < len; ++i) 5870 { 5871 l = utf_ptr2len(ptr + i); 5872 if (l == 0) 5873 *d++ = NUL; 5874 else if (l == 1) 5875 { 5876 if (unconvlenp != NULL && utf8len_tab[ptr[i]] > len - i) 5877 { 5878 /* Incomplete sequence at the end. */ 5879 *unconvlenp = len - i; 5880 break; 5881 } 5882 *d++ = ptr[i]; 5883 } 5884 else 5885 { 5886 c = utf_ptr2char(ptr + i); 5887 if (vcp->vc_type == CONV_TO_LATIN9) 5888 switch (c) 5889 { 5890 case 0x20ac: c = 0xa4; break; /* euro */ 5891 case 0x0160: c = 0xa6; break; /* S hat */ 5892 case 0x0161: c = 0xa8; break; /* S -hat */ 5893 case 0x017d: c = 0xb4; break; /* Z hat */ 5894 case 0x017e: c = 0xb8; break; /* Z -hat */ 5895 case 0x0152: c = 0xbc; break; /* OE */ 5896 case 0x0153: c = 0xbd; break; /* oe */ 5897 case 0x0178: c = 0xbe; break; /* Y */ 5898 case 0xa4: 5899 case 0xa6: 5900 case 0xa8: 5901 case 0xb4: 5902 case 0xb8: 5903 case 0xbc: 5904 case 0xbd: 5905 case 0xbe: c = 0x100; break; /* not in latin9 */ 5906 } 5907 if (!utf_iscomposing(c)) /* skip composing chars */ 5908 { 5909 if (c < 0x100) 5910 *d++ = c; 5911 else if (vcp->vc_fail) 5912 { 5913 vim_free(retval); 5914 return NULL; 5915 } 5916 else 5917 { 5918 *d++ = 0xbf; 5919 if (utf_char2cells(c) > 1) 5920 *d++ = '?'; 5921 } 5922 } 5923 i += l - 1; 5924 } 5925 } 5926 *d = NUL; 5927 if (lenp != NULL) 5928 *lenp = (int)(d - retval); 5929 break; 5930 5931 # ifdef MACOS_X 5932 case CONV_MAC_LATIN1: 5933 retval = mac_string_convert(ptr, len, lenp, vcp->vc_fail, 5934 'm', 'l', unconvlenp); 5935 break; 5936 5937 case CONV_LATIN1_MAC: 5938 retval = mac_string_convert(ptr, len, lenp, vcp->vc_fail, 5939 'l', 'm', unconvlenp); 5940 break; 5941 5942 case CONV_MAC_UTF8: 5943 retval = mac_string_convert(ptr, len, lenp, vcp->vc_fail, 5944 'm', 'u', unconvlenp); 5945 break; 5946 5947 case CONV_UTF8_MAC: 5948 retval = mac_string_convert(ptr, len, lenp, vcp->vc_fail, 5949 'u', 'm', unconvlenp); 5950 break; 5951 # endif 5952 5953 # ifdef USE_ICONV 5954 case CONV_ICONV: /* conversion with output_conv.vc_fd */ 5955 retval = iconv_string(vcp, ptr, len, unconvlenp); 5956 if (retval != NULL && lenp != NULL) 5957 *lenp = (int)STRLEN(retval); 5958 break; 5959 # endif 5960 # ifdef WIN3264 5961 case CONV_CODEPAGE: /* codepage -> codepage */ 5962 { 5963 int retlen; 5964 int tmp_len; 5965 short_u *tmp; 5966 5967 /* 1. codepage/UTF-8 -> ucs-2. */ 5968 if (vcp->vc_cpfrom == 0) 5969 tmp_len = utf8_to_ucs2(ptr, len, NULL, NULL); 5970 else 5971 tmp_len = MultiByteToWideChar(vcp->vc_cpfrom, 0, 5972 ptr, len, 0, 0); 5973 tmp = (short_u *)alloc(sizeof(short_u) * tmp_len); 5974 if (tmp == NULL) 5975 break; 5976 if (vcp->vc_cpfrom == 0) 5977 utf8_to_ucs2(ptr, len, tmp, unconvlenp); 5978 else 5979 MultiByteToWideChar(vcp->vc_cpfrom, 0, ptr, len, tmp, tmp_len); 5980 5981 /* 2. ucs-2 -> codepage/UTF-8. */ 5982 if (vcp->vc_cpto == 0) 5983 retlen = ucs2_to_utf8(tmp, tmp_len, NULL); 5984 else 5985 retlen = WideCharToMultiByte(vcp->vc_cpto, 0, 5986 tmp, tmp_len, 0, 0, 0, 0); 5987 retval = alloc(retlen + 1); 5988 if (retval != NULL) 5989 { 5990 if (vcp->vc_cpto == 0) 5991 ucs2_to_utf8(tmp, tmp_len, retval); 5992 else 5993 WideCharToMultiByte(vcp->vc_cpto, 0, 5994 tmp, tmp_len, retval, retlen, 0, 0); 5995 retval[retlen] = NUL; 5996 if (lenp != NULL) 5997 *lenp = retlen; 5998 } 5999 vim_free(tmp); 6000 break; 6001 } 6002 # endif 6003 } 6004 6005 return retval; 6006 } 6007 #endif 6008