| 1 | /********************************************************************** | 
| 2 | parsmart.cpp - SMARTS parser. | 
| 3 |  | 
| 4 | Copyright (C) 1998-2001 by OpenEye Scientific Software, Inc. | 
| 5 | Some portions Copyright (C) 2001-2005 by Geoffrey R. Hutchison | 
| 6 |  | 
| 7 | This file is part of the Open Babel project. | 
| 8 | For more information, see <http://openbabel.sourceforge.net/> | 
| 9 |  | 
| 10 | This program is free software; you can redistribute it and/or modify | 
| 11 | it under the terms of the GNU General Public License as published by | 
| 12 | the Free Software Foundation version 2 of the License. | 
| 13 |  | 
| 14 | This program is distributed in the hope that it will be useful, | 
| 15 | but WITHOUT ANY WARRANTY; without even the implied warranty of | 
| 16 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the | 
| 17 | GNU General Public License for more details. | 
| 18 | ***********************************************************************/ | 
| 19 |  | 
| 20 | #include <ctype.h> | 
| 21 |  | 
| 22 | #include "mol.hpp" | 
| 23 | #include "bitvec.hpp" | 
| 24 | #include "parsmart.hpp" | 
| 25 |  | 
| 26 | #ifndef True | 
| 27 | #define True   1 | 
| 28 | #define False  0 | 
| 29 | #endif | 
| 30 |  | 
| 31 | /* Strict syntax checking! */ | 
| 32 | // Currently causes problems with aromatic flags in atomtyp.txt | 
| 33 | // #define STRICT | 
| 34 | #define VERBOSE | 
| 35 |  | 
| 36 | #ifdef __sgi | 
| 37 | #define UnusedArgument(x)   ((x)=(x)) | 
| 38 | #else | 
| 39 | #define UnusedArgument(x) | 
| 40 | #endif | 
| 41 |  | 
| 42 | using namespace std; | 
| 43 |  | 
| 44 | namespace OpenBabel | 
| 45 | { | 
| 46 |  | 
| 47 | /*! \class OBSmartsPattern | 
| 48 |  | 
| 49 | Substructure search is an incredibly useful tool in the context of a | 
| 50 | small molecule programming library. Having an efficient substructure | 
| 51 | search engine reduces the amount of hard code needed for molecule | 
| 52 | perception, as well as increases the flexibility of certain | 
| 53 | operations. For instance, atom typing can be easily performed based on | 
| 54 | hard coded rules of element type and bond orders (or | 
| 55 | hybridization). Alternatively, atom typing can also be done by | 
| 56 | matching a set of substructure rules read at run time. In the latter | 
| 57 | case customization based on application (such as changing the pH) | 
| 58 | becomes a facile operation. Fortunately for Open Babel and its users, | 
| 59 | Roger Sayle donated a SMARTS parser which became the basis for SMARTS | 
| 60 | matching in Open Babel. | 
| 61 |  | 
| 62 | The SMARTS matcher, or OBSmartsPattern, is a separate object which can | 
| 63 | match patterns in the OBMol class. The following code demonstrates how | 
| 64 | to use the OBSmartsPattern class: | 
| 65 | \code | 
| 66 | OBMol mol; | 
| 67 | ... | 
| 68 | OBSmartsPattern sp; | 
| 69 | sp.Init("CC"); | 
| 70 | sp.Match(mol); | 
| 71 | vector<vector<int> > maplist; | 
| 72 | maplist = sp.GetMapList(); | 
| 73 | //or maplist = sp.GetUMapList(); | 
| 74 | //print out the results | 
| 75 | vector<vector<int> >::iterator i; | 
| 76 | vector<int>::iterator j; | 
| 77 | for (i = maplist.begin();i != maplist.end();i++) | 
| 78 | { | 
| 79 | for (j = i->begin();j != i->end();j++) | 
| 80 | cout << j << ' `; | 
| 81 | cout << endl; | 
| 82 | } | 
| 83 | \endcode | 
| 84 | The preceding code reads in a molecule, initializes a smarts pattern | 
| 85 | of two single-bonded carbons, and locates all instances of the | 
| 86 | pattern in the molecule. Note that calling the Match() function | 
| 87 | does not return the results of the substructure match. The results | 
| 88 | from a match are stored in the OBSmartsPattern, and a call to | 
| 89 | GetMapList() or GetUMapList() must be made to extract the | 
| 90 | results. The function GetMapList() returns all matches of a | 
| 91 | particular pattern while GetUMapList() returns only the unique | 
| 92 | matches. For instance, the pattern [OD1]~C~[OD1] describes a | 
| 93 | carboxylate group. This pattern will match both atom number | 
| 94 | permutations of the carboxylate, and if GetMapList() is called, both | 
| 95 | matches will be returned. If GetUMapList() is called only unique | 
| 96 | matches of the pattern will be returned. A unique match is defined as | 
| 97 | one which does not cover the identical atoms that a previous match | 
| 98 | has covered. | 
| 99 | */ | 
| 100 |  | 
| 101 | /*============================*/ | 
| 102 | /*  Period Table of Elements  */ | 
| 103 | /*============================*/ | 
| 104 |  | 
| 105 | std::vector<std::pair<Pattern*,std::vector<bool> > > RSCACHE; //recursive smarts cache | 
| 106 |  | 
| 107 | typedef struct | 
| 108 | { | 
| 109 | char *symbol; | 
| 110 | int organic; | 
| 111 | int aromflag; | 
| 112 | double weight; | 
| 113 | } | 
| 114 | Element; | 
| 115 |  | 
| 116 | #define ELEMMAX  104 | 
| 117 |  | 
| 118 | typedef struct | 
| 119 | { | 
| 120 | BondExpr *closord[100]; | 
| 121 | int       closure[100]; | 
| 122 | int       closindex; | 
| 123 | } | 
| 124 | ParseState; | 
| 125 |  | 
| 126 | /* | 
| 127 | #define ATOMEXPRPOOL  16 | 
| 128 | #define BONDEXPRPOOL  16 | 
| 129 | #define ATOMPOOL      16 | 
| 130 | #define BONDPOOL      16 | 
| 131 | */ | 
| 132 |  | 
| 133 | #define ATOMEXPRPOOL  1 | 
| 134 | #define BONDEXPRPOOL  1 | 
| 135 | #define ATOMPOOL      1 | 
| 136 | #define BONDPOOL      1 | 
| 137 |  | 
| 138 | /*=====================*/ | 
| 139 | /*  BondExpr Bit Sets  */ | 
| 140 | /*=====================*/ | 
| 141 |  | 
| 142 | #define BF_NONRINGUNSPEC   0x0001 | 
| 143 | #define BF_NONRINGDOWN     0x0002 | 
| 144 | #define BF_NONRINGUP       0x0004 | 
| 145 | #define BF_NONRINGDOUBLE   0x0008 | 
| 146 | #define BF_NONRINGTRIPLE   0x0010 | 
| 147 | #define BF_RINGUNSPEC      0x0020 | 
| 148 | #define BF_RINGDOWN        0x0040 | 
| 149 | #define BF_RINGUP          0x0080 | 
| 150 | #define BF_RINGAROM        0x0100 | 
| 151 | #define BF_RINGDOUBLE      0x0200 | 
| 152 | #define BF_RINGTRIPLE      0x0400 | 
| 153 |  | 
| 154 | #define BS_ALL             0x07FF | 
| 155 | #define BS_SINGLE          0x00E7 | 
| 156 | #define BS_DOUBLE          0x0208 | 
| 157 | #define BS_TRIPLE          0x0410 | 
| 158 | #define BS_AROM            0x0100 | 
| 159 | #define BS_UP              0x0084 | 
| 160 | #define BS_DOWN            0x0042 | 
| 161 | #define BS_UPUNSPEC        0x00A5 | 
| 162 | #define BS_DOWNUNSPEC      0x0063 | 
| 163 | #define BS_RING            0x07E0 | 
| 164 | #define BS_DEFAULT         0x01E7 | 
| 165 |  | 
| 166 | static char *MainPtr; | 
| 167 | static char *LexPtr; | 
| 168 |  | 
| 169 | #define BUFMAX  1024 | 
| 170 | static char Buffer[BUFMAX]; | 
| 171 | static char Descr[BUFMAX]; | 
| 172 |  | 
| 173 | static bool match(OBMol &mol,Pattern *pat,std::vector<std::vector<int> > &mlist,bool single=false); | 
| 174 | static bool EvalAtomExpr(AtomExpr *expr,OBAtom *atom); | 
| 175 | static bool EvalBondExpr(BondExpr *expr,OBBond *bond); | 
| 176 | static int GetVectorBinding(); | 
| 177 | static int CreateAtom(Pattern*,AtomExpr*,int,int vb=0); | 
| 178 |  | 
| 179 | /*=============================*/ | 
| 180 | /*  Standard Utility Routines  */ | 
| 181 | /*=============================*/ | 
| 182 |  | 
| 183 | static void FatalAllocationError( char *ptr ) | 
| 184 | { | 
| 185 | printf("Error: Unable to allocate %s!\n",ptr); | 
| 186 | //    exit(1); | 
| 187 | } | 
| 188 |  | 
| 189 | /*================================*/ | 
| 190 | /*  Atom Expression Manipulation  */ | 
| 191 | /*================================*/ | 
| 192 |  | 
| 193 | static void FreePattern( Pattern* ); | 
| 194 | static Pattern *CopyPattern( Pattern* ); | 
| 195 |  | 
| 196 | static AtomExpr *AllocAtomExpr( void ) | 
| 197 | { | 
| 198 | register AtomExpr *result; | 
| 199 |  | 
| 200 | result = (AtomExpr*)malloc(sizeof(AtomExpr)); | 
| 201 | return result; | 
| 202 | } | 
| 203 |  | 
| 204 | static AtomExpr *CopyAtomExpr( AtomExpr *expr ) | 
| 205 | { | 
| 206 | register AtomExpr *result; | 
| 207 |  | 
| 208 | result = AllocAtomExpr(); | 
| 209 | result->type = expr->type; | 
| 210 | switch( expr->type ) | 
| 211 | { | 
| 212 | case(AE_ANDHI): | 
| 213 | case(AE_ANDLO): | 
| 214 | case(AE_OR):    result->bin.lft = CopyAtomExpr(expr->bin.lft); | 
| 215 | result->bin.rgt = CopyAtomExpr(expr->bin.rgt); | 
| 216 | break; | 
| 217 |  | 
| 218 | case(AE_NOT):   result->mon.arg = CopyAtomExpr(expr->mon.arg); | 
| 219 | break; | 
| 220 |  | 
| 221 | case(AE_RECUR): result->recur.recur = CopyPattern( | 
| 222 | (Pattern*)expr->recur.recur ); | 
| 223 | break; | 
| 224 |  | 
| 225 | case(AE_LEAF):  result->leaf.prop = expr->leaf.prop; | 
| 226 | result->leaf.value = expr->leaf.value; | 
| 227 | break; | 
| 228 | } | 
| 229 | return result; | 
| 230 | } | 
| 231 |  | 
| 232 | static void FreeAtomExpr( AtomExpr *expr ) | 
| 233 | { | 
| 234 | if( expr ) | 
| 235 | { | 
| 236 | switch( expr->type ) | 
| 237 | { | 
| 238 | case(AE_ANDHI): | 
| 239 | case(AE_ANDLO): | 
| 240 | case(AE_OR):     FreeAtomExpr(expr->bin.lft); | 
| 241 | FreeAtomExpr(expr->bin.rgt); | 
| 242 | break; | 
| 243 |  | 
| 244 | case(AE_NOT):    FreeAtomExpr(expr->mon.arg); | 
| 245 | break; | 
| 246 |  | 
| 247 | case(AE_RECUR):  FreePattern( (Pattern*)expr->recur.recur ); | 
| 248 | break; | 
| 249 | } | 
| 250 | if (expr) | 
| 251 | { | 
| 252 | free(expr); | 
| 253 | expr = (AtomExpr*)NULL; | 
| 254 | } | 
| 255 | } | 
| 256 | } | 
| 257 |  | 
| 258 | static AtomExpr *BuildAtomLeaf( int prop, int val ) | 
| 259 | { | 
| 260 | register AtomExpr *result; | 
| 261 |  | 
| 262 | result = AllocAtomExpr(); | 
| 263 | result->leaf.type = AE_LEAF; | 
| 264 | result->leaf.prop = prop; | 
| 265 | result->leaf.value = val; | 
| 266 | return result; | 
| 267 | } | 
| 268 |  | 
| 269 | static AtomExpr *BuildAtomNot( AtomExpr *expr ) | 
| 270 | { | 
| 271 | register AtomExpr *result; | 
| 272 |  | 
| 273 | result = AllocAtomExpr(); | 
| 274 | result->mon.type = AE_NOT; | 
| 275 | result->mon.arg = expr; | 
| 276 | return result; | 
| 277 | } | 
| 278 |  | 
| 279 | static AtomExpr *BuildAtomBin( int op, AtomExpr *lft, AtomExpr *rgt ) | 
| 280 | { | 
| 281 | register AtomExpr *result; | 
| 282 |  | 
| 283 | result = AllocAtomExpr(); | 
| 284 | result->bin.type = op; | 
| 285 | result->bin.lft = lft; | 
| 286 | result->bin.rgt = rgt; | 
| 287 | return result; | 
| 288 | } | 
| 289 |  | 
| 290 | static AtomExpr *BuildAtomRecurs( Pattern *pat ) | 
| 291 | { | 
| 292 | register AtomExpr *result; | 
| 293 |  | 
| 294 | result = AllocAtomExpr(); | 
| 295 | result->recur.type = AE_RECUR; | 
| 296 | result->recur.recur = (void*)pat; | 
| 297 | return result; | 
| 298 | } | 
| 299 |  | 
| 300 | static AtomExpr *GenerateElement( int elem ) | 
| 301 | { | 
| 302 | return BuildAtomLeaf(AL_ELEM,elem); | 
| 303 | } | 
| 304 |  | 
| 305 | static AtomExpr *GenerateAromElem( int elem, int flag ) | 
| 306 | { | 
| 307 | AtomExpr *expr1; | 
| 308 | AtomExpr *expr2; | 
| 309 |  | 
| 310 | expr1 = BuildAtomLeaf(AL_AROM,flag); | 
| 311 | expr2 = BuildAtomLeaf(AL_ELEM,elem); | 
| 312 | return BuildAtomBin(AE_ANDHI,expr1,expr2); | 
| 313 | } | 
| 314 |  | 
| 315 | static int IsInvalidAtom( AtomExpr *expr ) | 
| 316 | { | 
| 317 | if( !expr ) | 
| 318 | return True; | 
| 319 | return( (expr->type==AE_LEAF) && | 
| 320 | (expr->leaf.prop==AL_CONST) | 
| 321 | && !expr->leaf.value ); | 
| 322 | } | 
| 323 |  | 
| 324 | /*================================*/ | 
| 325 | /*  Bond Expression Manipulation  */ | 
| 326 | /*================================*/ | 
| 327 |  | 
| 328 | static BondExpr *AllocBondExpr( void ) | 
| 329 | { | 
| 330 | register BondExpr *result; | 
| 331 |  | 
| 332 | result = (BondExpr*)malloc(sizeof(BondExpr)); | 
| 333 | return result; | 
| 334 | } | 
| 335 |  | 
| 336 | static BondExpr *CopyBondExpr( BondExpr *expr ) | 
| 337 | { | 
| 338 | register BondExpr *result; | 
| 339 |  | 
| 340 | result = AllocBondExpr(); | 
| 341 | result->type = expr->type; | 
| 342 | switch( expr->type ) | 
| 343 | { | 
| 344 | case(AE_ANDHI): | 
| 345 | case(AE_ANDLO): | 
| 346 | case(AE_OR):    result->bin.lft = CopyBondExpr(expr->bin.lft); | 
| 347 | result->bin.rgt = CopyBondExpr(expr->bin.rgt); | 
| 348 | break; | 
| 349 |  | 
| 350 | case(AE_NOT):   result->mon.arg = CopyBondExpr(expr->mon.arg); | 
| 351 | break; | 
| 352 |  | 
| 353 | case(AE_LEAF):  result->leaf.prop = expr->leaf.prop; | 
| 354 | result->leaf.value = expr->leaf.value; | 
| 355 | break; | 
| 356 | } | 
| 357 | return result; | 
| 358 | } | 
| 359 |  | 
| 360 | static void FreeBondExpr( BondExpr *expr ) | 
| 361 | { | 
| 362 | if( expr ) | 
| 363 | { | 
| 364 | switch( expr->type ) | 
| 365 | { | 
| 366 | case(BE_ANDHI): | 
| 367 | case(BE_ANDLO): | 
| 368 | case(BE_OR):     FreeBondExpr(expr->bin.lft); | 
| 369 | FreeBondExpr(expr->bin.rgt); | 
| 370 | break; | 
| 371 |  | 
| 372 | case(BE_NOT):    FreeBondExpr(expr->mon.arg); | 
| 373 | break; | 
| 374 | } | 
| 375 |  | 
| 376 | if (expr) | 
| 377 | { | 
| 378 | free(expr); | 
| 379 | expr = (BondExpr*)NULL; | 
| 380 | } | 
| 381 | } | 
| 382 | } | 
| 383 |  | 
| 384 | static BondExpr *BuildBondLeaf( int prop, int val ) | 
| 385 | { | 
| 386 | register BondExpr *result; | 
| 387 |  | 
| 388 | result = AllocBondExpr(); | 
| 389 | result->leaf.type = BE_LEAF; | 
| 390 | result->leaf.prop = prop; | 
| 391 | result->leaf.value = val; | 
| 392 | return result; | 
| 393 | } | 
| 394 |  | 
| 395 | static BondExpr *BuildBondNot( BondExpr *expr ) | 
| 396 | { | 
| 397 | register BondExpr *result; | 
| 398 |  | 
| 399 | result = AllocBondExpr(); | 
| 400 | result->mon.type = BE_NOT; | 
| 401 | result->mon.arg = expr; | 
| 402 | return result; | 
| 403 | } | 
| 404 |  | 
| 405 | static BondExpr *BuildBondBin( int op, BondExpr *lft, BondExpr *rgt ) | 
| 406 | { | 
| 407 | register BondExpr *result; | 
| 408 |  | 
| 409 | result = AllocBondExpr(); | 
| 410 | result->bin.type = op; | 
| 411 | result->bin.lft = lft; | 
| 412 | result->bin.rgt = rgt; | 
| 413 | return result; | 
| 414 | } | 
| 415 |  | 
| 416 | static BondExpr *GenerateDefaultBond( void ) | 
| 417 | { | 
| 418 | register BondExpr *expr1; | 
| 419 | register BondExpr *expr2; | 
| 420 |  | 
| 421 | expr1 = BuildBondLeaf(BL_TYPE,BT_SINGLE); | 
| 422 | expr2 = BuildBondLeaf(BL_TYPE,BT_AROM); | 
| 423 | return(BuildBondBin(BE_OR,expr1,expr2)); | 
| 424 | } | 
| 425 |  | 
| 426 | /*===============================*/ | 
| 427 | /*  SMARTS Pattern Manipulation  */ | 
| 428 | /*===============================*/ | 
| 429 |  | 
| 430 | static Pattern *AllocPattern( void ) | 
| 431 | { | 
| 432 | Pattern *ptr; | 
| 433 |  | 
| 434 | ptr = (Pattern*)malloc(sizeof(Pattern)); | 
| 435 | if( !ptr ) | 
| 436 | FatalAllocationError("pattern"); | 
| 437 |  | 
| 438 | ptr->atom = (AtomSpec*)0; | 
| 439 | ptr->aalloc = 0; | 
| 440 | ptr->acount = 0; | 
| 441 |  | 
| 442 | ptr->bond = (BondSpec*)0; | 
| 443 | ptr->balloc = 0; | 
| 444 | ptr->bcount = 0; | 
| 445 |  | 
| 446 | ptr->parts = 1; | 
| 447 | return ptr; | 
| 448 | } | 
| 449 |  | 
| 450 | static int CreateAtom( Pattern *pat, AtomExpr *expr, int part,int vb) | 
| 451 | { | 
| 452 | int index,size; | 
| 453 |  | 
| 454 | if( pat->acount == pat->aalloc ) | 
| 455 | { | 
| 456 | pat->aalloc += ATOMPOOL; | 
| 457 | size = (int)(pat->aalloc*sizeof(AtomSpec)); | 
| 458 | if( pat->atom ) | 
| 459 | { | 
| 460 | pat->atom = (AtomSpec*)realloc(pat->atom,size); | 
| 461 | } | 
| 462 | else | 
| 463 | pat->atom = (AtomSpec*)malloc(size); | 
| 464 | if( !pat->atom ) | 
| 465 | FatalAllocationError("atom pool"); | 
| 466 | } | 
| 467 |  | 
| 468 | index = pat->acount++; | 
| 469 | pat->atom[index].part = part; | 
| 470 | pat->atom[index].expr = expr; | 
| 471 | pat->atom[index].vb = vb; //std::vector binding | 
| 472 |  | 
| 473 | return index; | 
| 474 | } | 
| 475 |  | 
| 476 | static int CreateBond( Pattern *pat, BondExpr *expr, int src, int dst ) | 
| 477 | { | 
| 478 | int index,size; | 
| 479 |  | 
| 480 | if( pat->bcount == pat->balloc ) | 
| 481 | { | 
| 482 | pat->balloc += BONDPOOL; | 
| 483 | size = (int)(pat->balloc*sizeof(BondSpec)); | 
| 484 | if( pat->bond ) | 
| 485 | { | 
| 486 | pat->bond = (BondSpec*)realloc(pat->bond,size); | 
| 487 | } | 
| 488 | else | 
| 489 | pat->bond = (BondSpec*)malloc(size); | 
| 490 | if( !pat->bond ) | 
| 491 | FatalAllocationError("bond pool"); | 
| 492 | } | 
| 493 |  | 
| 494 | index = pat->bcount++; | 
| 495 | pat->bond[index].expr = expr; | 
| 496 | pat->bond[index].src = src; | 
| 497 | pat->bond[index].dst = dst; | 
| 498 | return(index); | 
| 499 | } | 
| 500 |  | 
| 501 | static Pattern *CopyPattern( Pattern *pat ) | 
| 502 | { | 
| 503 | Pattern *result; | 
| 504 | AtomExpr *aexpr; | 
| 505 | BondExpr *bexpr; | 
| 506 | int i; | 
| 507 |  | 
| 508 | result = AllocPattern(); | 
| 509 | result->parts = pat->parts; | 
| 510 | for( i=0; i<pat->acount; i++ ) | 
| 511 | { | 
| 512 | aexpr = CopyAtomExpr(pat->atom[i].expr); | 
| 513 | CreateAtom(result,aexpr,pat->atom[i].part); | 
| 514 | } | 
| 515 |  | 
| 516 | for( i=0; i<pat->bcount; i++ ) | 
| 517 | { | 
| 518 | bexpr = CopyBondExpr(pat->bond[i].expr); | 
| 519 | CreateBond(result,bexpr,pat->bond[i].src,pat->bond[i].dst); | 
| 520 | } | 
| 521 |  | 
| 522 | return result; | 
| 523 | } | 
| 524 |  | 
| 525 | static void FreePattern( Pattern *pat ) | 
| 526 | { | 
| 527 | int i; | 
| 528 |  | 
| 529 | if( pat ) | 
| 530 | { | 
| 531 | if( pat->aalloc ) | 
| 532 | { | 
| 533 | for( i=0; i<pat->acount; i++ ) | 
| 534 | FreeAtomExpr(pat->atom[i].expr); | 
| 535 | free(pat->atom); | 
| 536 | } | 
| 537 |  | 
| 538 | if( pat->balloc ) | 
| 539 | { | 
| 540 | for( i=0; i<pat->bcount; i++ ) | 
| 541 | FreeBondExpr(pat->bond[i].expr); | 
| 542 | free(pat->bond); | 
| 543 | } | 
| 544 | free(pat); | 
| 545 | } | 
| 546 | } | 
| 547 |  | 
| 548 | /*=========================*/ | 
| 549 | /*  SMARTS Syntax Parsing  */ | 
| 550 | /*=========================*/ | 
| 551 |  | 
| 552 | static Pattern *ParseSMARTSPattern( void ); | 
| 553 | static Pattern *ParseSMARTSPart( Pattern*, int ); | 
| 554 |  | 
| 555 | static Pattern *SMARTSError( Pattern *pat ) | 
| 556 | { | 
| 557 | char *ptr; | 
| 558 |  | 
| 559 | fprintf(stderr,"SMARTS Error: %s\n",MainPtr); | 
| 560 |  | 
| 561 | fputs("              ",stdout); | 
| 562 | for( ptr=MainPtr; ptr<LexPtr; ptr++ ) | 
| 563 | fputc(' ',stdout); | 
| 564 | fputs("^\n",stdout); | 
| 565 |  | 
| 566 | FreePattern(pat); | 
| 567 | return (Pattern*)0; | 
| 568 | } | 
| 569 |  | 
| 570 | static AtomExpr *ParseSimpleAtomPrimitive( void ) | 
| 571 | { | 
| 572 | switch( *LexPtr++ ) | 
| 573 | { | 
| 574 | case '*': | 
| 575 | return BuildAtomLeaf(AL_CONST,True); | 
| 576 | #ifndef STRICT | 
| 577 |  | 
| 578 | case 'A': | 
| 579 | return BuildAtomLeaf(AL_AROM,False); | 
| 580 | #endif | 
| 581 |  | 
| 582 | case 'B': | 
| 583 | if( *LexPtr == 'r' ) | 
| 584 | { | 
| 585 | LexPtr++; | 
| 586 | return GenerateElement(35); | 
| 587 | } | 
| 588 | return GenerateElement(5); | 
| 589 |  | 
| 590 | case 'C': | 
| 591 | if( *LexPtr == 'l' ) | 
| 592 | { | 
| 593 | LexPtr++; | 
| 594 | return GenerateElement(17); | 
| 595 | } | 
| 596 | return GenerateAromElem(6,False); | 
| 597 |  | 
| 598 | case 'F': | 
| 599 | return GenerateElement( 9); | 
| 600 | case 'I': | 
| 601 | return GenerateElement(53); | 
| 602 | case 'N': | 
| 603 | return GenerateAromElem( 7,False); | 
| 604 | case 'O': | 
| 605 | return GenerateAromElem( 8,False); | 
| 606 | case 'P': | 
| 607 | return GenerateElement(15); | 
| 608 | case 'S': | 
| 609 | return GenerateAromElem(16,False); | 
| 610 |  | 
| 611 | #ifndef STRICT | 
| 612 |  | 
| 613 | case 'a': | 
| 614 | return BuildAtomLeaf(AL_AROM,True); | 
| 615 | #endif | 
| 616 |  | 
| 617 | case 'c': | 
| 618 | return GenerateAromElem( 6,True); | 
| 619 | case 'n': | 
| 620 | return GenerateAromElem( 7,True); | 
| 621 | case 'o': | 
| 622 | return GenerateAromElem( 8,True); | 
| 623 | case 'p': | 
| 624 | return GenerateAromElem(15,True); | 
| 625 | case 's': | 
| 626 | return GenerateAromElem(16,True); | 
| 627 | } | 
| 628 | LexPtr--; | 
| 629 | return (AtomExpr*)0; | 
| 630 | } | 
| 631 |  | 
| 632 | static AtomExpr *ParseComplexAtomPrimitive( void ) | 
| 633 | { | 
| 634 | register Pattern *pat; | 
| 635 | register int index; | 
| 636 |  | 
| 637 | switch( *LexPtr++ ) | 
| 638 | { | 
| 639 | case('#'):  if( !isdigit(*LexPtr) ) | 
| 640 | return( (AtomExpr*)0 ); | 
| 641 |  | 
| 642 | index = 0; | 
| 643 | while( isdigit(*LexPtr) ) | 
| 644 | index = index*10 + ((*LexPtr++)-'0'); | 
| 645 | if( index > ELEMMAX ) | 
| 646 | { | 
| 647 | LexPtr--; | 
| 648 | return( (AtomExpr*)0 ); | 
| 649 | } | 
| 650 | else if( !index ) | 
| 651 | return( (AtomExpr*)0 ); | 
| 652 | return( GenerateElement(index) ); | 
| 653 |  | 
| 654 | case('$'):  if( *LexPtr != '(' ) | 
| 655 | return( (AtomExpr*)0 ); | 
| 656 | LexPtr++; | 
| 657 | #ifdef STRICT | 
| 658 |  | 
| 659 | pat = ParseSMARTSPart(AllocPattern(),0); | 
| 660 | #else | 
| 661 |  | 
| 662 | pat = ParseSMARTSPattern(); | 
| 663 | #endif | 
| 664 |  | 
| 665 | if( !pat ) | 
| 666 | return( (AtomExpr*)0 ); | 
| 667 | if( *LexPtr != ')' ) | 
| 668 | { | 
| 669 | FreePattern(pat); | 
| 670 | return( (AtomExpr*)0 ); | 
| 671 | } | 
| 672 | LexPtr++; | 
| 673 | return( BuildAtomRecurs(pat) ); | 
| 674 |  | 
| 675 | case('*'):  return( BuildAtomLeaf(AL_CONST,True) ); | 
| 676 |  | 
| 677 | case('+'):  if( isdigit(*LexPtr) ) | 
| 678 | { | 
| 679 | index = 0; | 
| 680 | while( isdigit(*LexPtr) ) | 
| 681 | index = index*10 + ((*LexPtr++)-'0'); | 
| 682 | } | 
| 683 | else | 
| 684 | { | 
| 685 | index = 1; | 
| 686 | while( *LexPtr == '+' ) | 
| 687 | { | 
| 688 | LexPtr++; | 
| 689 | index++; | 
| 690 | } | 
| 691 | } | 
| 692 | return( BuildAtomLeaf(AL_POSITIVE,index) ); | 
| 693 |  | 
| 694 | case('-'):  if( isdigit(*LexPtr) ) | 
| 695 | { | 
| 696 | index = 0; | 
| 697 | while( isdigit(*LexPtr) ) | 
| 698 | index = index*10 + ((*LexPtr++)-'0'); | 
| 699 | } | 
| 700 | else | 
| 701 | { | 
| 702 | index = 1; | 
| 703 | while( *LexPtr == '-' ) | 
| 704 | { | 
| 705 | LexPtr++; | 
| 706 | index++; | 
| 707 | } | 
| 708 | } | 
| 709 | return BuildAtomLeaf(AL_NEGATIVE,index); | 
| 710 |  | 
| 711 | case '@': | 
| 712 | if (*LexPtr != '@') | 
| 713 | return(BuildAtomLeaf(AL_CHIRAL,AL_ANTICLOCKWISE)); | 
| 714 | LexPtr++; | 
| 715 | return(BuildAtomLeaf(AL_CHIRAL,AL_CLOCKWISE)); | 
| 716 |  | 
| 717 | case '^': | 
| 718 | if (isdigit(*LexPtr)) | 
| 719 | { | 
| 720 | index = 0; | 
| 721 | while( isdigit(*LexPtr) ) | 
| 722 | index = index*10 + ((*LexPtr++)-'0'); | 
| 723 | return(BuildAtomLeaf(AL_HYB,index)); | 
| 724 | } | 
| 725 | else | 
| 726 | return(BuildAtomLeaf(AL_HYB,1)); | 
| 727 |  | 
| 728 | case('0'): case('1'): case('2'): case('3'): case('4'): | 
| 729 | case('5'): case('6'): case('7'): case('8'): case('9'): | 
| 730 | index = LexPtr[-1]-'0'; | 
| 731 | while( isdigit(*LexPtr) ) | 
| 732 | index = index*10 + ((*LexPtr++)-'0'); | 
| 733 | return BuildAtomLeaf(AL_MASS,index); | 
| 734 |  | 
| 735 | case('A'):  switch( *LexPtr++ ) | 
| 736 | { | 
| 737 | case('c'):  return GenerateElement(89); | 
| 738 | case('g'):  return GenerateElement(47); | 
| 739 | case('l'):  return GenerateElement(13); | 
| 740 | case('m'):  return GenerateElement(95); | 
| 741 | case('r'):  return GenerateElement(18); | 
| 742 | case('s'):  return GenerateElement(33); | 
| 743 | case('t'):  return GenerateElement(85); | 
| 744 | case('u'):  return GenerateElement(79); | 
| 745 | } | 
| 746 | LexPtr--; | 
| 747 | return BuildAtomLeaf(AL_AROM,False); | 
| 748 |  | 
| 749 | case('B'):  switch( *LexPtr++ ) | 
| 750 | { | 
| 751 | case('a'):  return GenerateElement(56); | 
| 752 | case('e'):  return GenerateElement( 4); | 
| 753 | case('i'):  return GenerateElement(83); | 
| 754 | case('k'):  return GenerateElement(97); | 
| 755 | case('r'):  return GenerateElement(35); | 
| 756 | } | 
| 757 | LexPtr--; | 
| 758 | return GenerateElement(5); | 
| 759 |  | 
| 760 | case('C'):  switch( *LexPtr++ ) | 
| 761 | { | 
| 762 | case('a'):  return GenerateElement(20); | 
| 763 | case('d'):  return GenerateElement(48); | 
| 764 | case('e'):  return GenerateElement(58); | 
| 765 | case('f'):  return GenerateElement(98); | 
| 766 | case('l'):  return GenerateElement(17); | 
| 767 | case('m'):  return GenerateElement(96); | 
| 768 | case('o'):  return GenerateElement(27); | 
| 769 | case('r'):  return GenerateElement(24); | 
| 770 | case('s'):  return GenerateElement(55); | 
| 771 | case('u'):  return GenerateElement(29); | 
| 772 | } | 
| 773 | LexPtr--; | 
| 774 | return GenerateAromElem(6,False); | 
| 775 |  | 
| 776 | case('D'):  if( *LexPtr == 'y' ) | 
| 777 | { | 
| 778 | LexPtr++; | 
| 779 | return GenerateElement(66); | 
| 780 | } | 
| 781 | else if( isdigit(*LexPtr) ) | 
| 782 | { | 
| 783 | index = 0; | 
| 784 | while( isdigit(*LexPtr) ) | 
| 785 | index = index*10 + ((*LexPtr++)-'0'); | 
| 786 | return BuildAtomLeaf(AL_DEGREE,index); | 
| 787 | } | 
| 788 | break; | 
| 789 |  | 
| 790 | case('E'):  if( *LexPtr == 'r' ) | 
| 791 | { | 
| 792 | LexPtr++; | 
| 793 | return GenerateElement(68); | 
| 794 | } | 
| 795 | else if( *LexPtr == 's' ) | 
| 796 | { | 
| 797 | LexPtr++; | 
| 798 | return GenerateElement(99); | 
| 799 | } | 
| 800 | else if( *LexPtr == 'u' ) | 
| 801 | { | 
| 802 | LexPtr++; | 
| 803 | return GenerateElement(63); | 
| 804 | } | 
| 805 | break; | 
| 806 |  | 
| 807 | case('F'):  if( *LexPtr == 'e' ) | 
| 808 | { | 
| 809 | LexPtr++; | 
| 810 | return GenerateElement(26); | 
| 811 | } | 
| 812 | else if( *LexPtr == 'm' ) | 
| 813 | { | 
| 814 | LexPtr++; | 
| 815 | return GenerateElement(100); | 
| 816 | } | 
| 817 | else if( *LexPtr == 'r' ) | 
| 818 | { | 
| 819 | LexPtr++; | 
| 820 | return GenerateElement(87); | 
| 821 | } | 
| 822 | return GenerateElement(9); | 
| 823 |  | 
| 824 | case('G'):  if( *LexPtr == 'a' ) | 
| 825 | { | 
| 826 | LexPtr++; | 
| 827 | return( GenerateElement(31) ); | 
| 828 | } | 
| 829 | else if( *LexPtr == 'd' ) | 
| 830 | { | 
| 831 | LexPtr++; | 
| 832 | return( GenerateElement(64) ); | 
| 833 | } | 
| 834 | else if( *LexPtr == 'e' ) | 
| 835 | { | 
| 836 | LexPtr++; | 
| 837 | return( GenerateElement(32) ); | 
| 838 | } | 
| 839 | break; | 
| 840 |  | 
| 841 | case('H'):      if( *LexPtr == 'e' ) | 
| 842 | { | 
| 843 | LexPtr++; | 
| 844 | return( GenerateElement( 2) ); | 
| 845 | } | 
| 846 | else if( *LexPtr == 'f' ) | 
| 847 | { | 
| 848 | LexPtr++; | 
| 849 | return( GenerateElement(72) ); | 
| 850 | } | 
| 851 | else if( *LexPtr == 'g' ) | 
| 852 | { | 
| 853 | LexPtr++; | 
| 854 | return( GenerateElement(80) ); | 
| 855 | } | 
| 856 | else if( *LexPtr == 'o' ) | 
| 857 | { | 
| 858 | LexPtr++; | 
| 859 | return( GenerateElement(67) ); | 
| 860 | } | 
| 861 | else if( isdigit(*LexPtr) ) | 
| 862 | { | 
| 863 | index = 0; | 
| 864 | while( isdigit(*LexPtr) ) | 
| 865 | index = index*10 + ((*LexPtr++)-'0'); | 
| 866 | return( BuildAtomLeaf(AL_HCOUNT,index) ); | 
| 867 | } | 
| 868 | return( BuildAtomLeaf(AL_HCOUNT,1) ); | 
| 869 | /* BuildAtomLeaf(AL_HCOUNT,1) ??? */ | 
| 870 | /* or else GenerateElement(1) ??? */ | 
| 871 |  | 
| 872 | case('I'):  if( *LexPtr == 'n' ) | 
| 873 | { | 
| 874 | LexPtr++; | 
| 875 | return( GenerateElement(49) ); | 
| 876 | } | 
| 877 | else if( *LexPtr == 'r' ) | 
| 878 | { | 
| 879 | LexPtr++; | 
| 880 | return( GenerateElement(77) ); | 
| 881 | } | 
| 882 | return( GenerateElement(53) ); | 
| 883 |  | 
| 884 | case('K'):  if( *LexPtr == 'r' ) | 
| 885 | { | 
| 886 | LexPtr++; | 
| 887 | return( GenerateElement(36) ); | 
| 888 | } | 
| 889 | return( GenerateElement(19) ); | 
| 890 |  | 
| 891 | case('L'):  if( *LexPtr == 'a' ) | 
| 892 | { | 
| 893 | LexPtr++; | 
| 894 | return( GenerateElement( 57) ); | 
| 895 | } | 
| 896 | else if( *LexPtr == 'i' ) | 
| 897 | { | 
| 898 | LexPtr++; | 
| 899 | return( GenerateElement(  3) ); | 
| 900 | } | 
| 901 | else if( *LexPtr == 'r' ) | 
| 902 | { | 
| 903 | LexPtr++; | 
| 904 | return( GenerateElement(103) ); | 
| 905 | } | 
| 906 | else if( *LexPtr == 'u' ) | 
| 907 | { | 
| 908 | LexPtr++; | 
| 909 | return( GenerateElement( 71) ); | 
| 910 | } | 
| 911 | break; | 
| 912 |  | 
| 913 | case('M'):  if( *LexPtr == 'd' ) | 
| 914 | { | 
| 915 | LexPtr++; | 
| 916 | return( GenerateElement(101) ); | 
| 917 | } | 
| 918 | else if( *LexPtr == 'g' ) | 
| 919 | { | 
| 920 | LexPtr++; | 
| 921 | return( GenerateElement( 12) ); | 
| 922 | } | 
| 923 | else if( *LexPtr == 'n' ) | 
| 924 | { | 
| 925 | LexPtr++; | 
| 926 | return( GenerateElement( 25) ); | 
| 927 | } | 
| 928 | else if( *LexPtr == 'o' ) | 
| 929 | { | 
| 930 | LexPtr++; | 
| 931 | return( GenerateElement( 42) ); | 
| 932 | } | 
| 933 | break; | 
| 934 |  | 
| 935 | case('N'):  switch( *LexPtr++ ) | 
| 936 | { | 
| 937 | case('a'):  return( GenerateElement( 11) ); | 
| 938 | case('b'):  return( GenerateElement( 41) ); | 
| 939 | case('d'):  return( GenerateElement( 60) ); | 
| 940 | case('e'):  return( GenerateElement( 10) ); | 
| 941 | case('i'):  return( GenerateElement( 28) ); | 
| 942 | case('o'):  return( GenerateElement(102) ); | 
| 943 | case('p'):  return( GenerateElement( 93) ); | 
| 944 | } | 
| 945 | LexPtr--; | 
| 946 | return( GenerateAromElem(7,False) ); | 
| 947 |  | 
| 948 | case('O'):  if( *LexPtr == 's' ) | 
| 949 | { | 
| 950 | LexPtr++; | 
| 951 | return( GenerateElement(76) ); | 
| 952 | } | 
| 953 | return( GenerateAromElem(8,False) ); | 
| 954 |  | 
| 955 | case('P'):  switch( *LexPtr++ ) | 
| 956 | { | 
| 957 | case('a'):  return( GenerateElement(91) ); | 
| 958 | case('b'):  return( GenerateElement(82) ); | 
| 959 | case('d'):  return( GenerateElement(46) ); | 
| 960 | case('m'):  return( GenerateElement(61) ); | 
| 961 | case('o'):  return( GenerateElement(84) ); | 
| 962 | case('r'):  return( GenerateElement(59) ); | 
| 963 | case('t'):  return( GenerateElement(78) ); | 
| 964 | case('u'):  return( GenerateElement(94) ); | 
| 965 | } | 
| 966 | LexPtr--; | 
| 967 | return( GenerateElement(15) ); | 
| 968 |  | 
| 969 | case('R'):  switch( *LexPtr++ ) | 
| 970 | { | 
| 971 | case('a'):  return( GenerateElement(88) ); | 
| 972 | case('b'):  return( GenerateElement(37) ); | 
| 973 | case('e'):  return( GenerateElement(75) ); | 
| 974 | case('h'):  return( GenerateElement(45) ); | 
| 975 | case('n'):  return( GenerateElement(86) ); | 
| 976 | case('u'):  return( GenerateElement(44) ); | 
| 977 | } | 
| 978 | LexPtr--; | 
| 979 | if( isdigit(*LexPtr) ) | 
| 980 | { | 
| 981 | index = 0; | 
| 982 | while( isdigit(*LexPtr) ) | 
| 983 | index = index*10 + ((*LexPtr++)-'0'); | 
| 984 | } | 
| 985 | else | 
| 986 | index = -1; | 
| 987 | return( BuildAtomLeaf(AL_RINGS,index) ); | 
| 988 |  | 
| 989 | case('S'):  switch( *LexPtr++ ) | 
| 990 | { | 
| 991 | case('b'):  return( GenerateElement(51) ); | 
| 992 | case('c'):  return( GenerateElement(21) ); | 
| 993 | case('e'):  return( GenerateElement(34) ); | 
| 994 | case('i'):  return( GenerateElement(14) ); | 
| 995 | case('m'):  return( GenerateElement(62) ); | 
| 996 | case('n'):  return( GenerateElement(50) ); | 
| 997 | case('r'):  return( GenerateElement(38) ); | 
| 998 | } | 
| 999 | LexPtr--; | 
| 1000 | return( GenerateAromElem(16,False) ); | 
| 1001 |  | 
| 1002 | case('T'):  switch( *LexPtr++ ) | 
| 1003 | { | 
| 1004 | case('a'):  return( GenerateElement(73) ); | 
| 1005 | case('b'):  return( GenerateElement(65) ); | 
| 1006 | case('c'):  return( GenerateElement(43) ); | 
| 1007 | case('e'):  return( GenerateElement(52) ); | 
| 1008 | case('h'):  return( GenerateElement(90) ); | 
| 1009 | case('i'):  return( GenerateElement(22) ); | 
| 1010 | case('l'):  return( GenerateElement(81) ); | 
| 1011 | case('m'):  return( GenerateElement(69) ); | 
| 1012 | } | 
| 1013 | LexPtr--; | 
| 1014 | break; | 
| 1015 |  | 
| 1016 | case('U'):  return( GenerateElement(92) ); | 
| 1017 | case('V'):  return( GenerateElement(23) ); | 
| 1018 | case('W'):  return( GenerateElement(74) ); | 
| 1019 |  | 
| 1020 | case('X'):  if( *LexPtr == 'e' ) | 
| 1021 | { | 
| 1022 | LexPtr++; | 
| 1023 | return( GenerateElement(54) ); | 
| 1024 | } | 
| 1025 | else if( isdigit(*LexPtr) ) | 
| 1026 | { | 
| 1027 | index = 0; | 
| 1028 | while( isdigit(*LexPtr) ) | 
| 1029 | index = index*10 + ((*LexPtr++)-'0'); | 
| 1030 | return( BuildAtomLeaf(AL_CONNECT,index) ); | 
| 1031 | } | 
| 1032 | break; | 
| 1033 |  | 
| 1034 | case('Y'):  if( *LexPtr == 'b' ) | 
| 1035 | { | 
| 1036 | LexPtr++; | 
| 1037 | return( GenerateElement(70) ); | 
| 1038 | } | 
| 1039 | return( GenerateElement(39) ); | 
| 1040 |  | 
| 1041 | case('Z'):  if( *LexPtr == 'n' ) | 
| 1042 | { | 
| 1043 | LexPtr++; | 
| 1044 | return GenerateElement(30); | 
| 1045 | } | 
| 1046 | else if( *LexPtr == 'r' ) | 
| 1047 | { | 
| 1048 | LexPtr++; | 
| 1049 | return GenerateElement(40); | 
| 1050 | } | 
| 1051 | break; | 
| 1052 |  | 
| 1053 | case('a'):  if( *LexPtr == 's' ) | 
| 1054 | { | 
| 1055 | LexPtr++; | 
| 1056 | return GenerateAromElem(33,True); | 
| 1057 | } | 
| 1058 | return BuildAtomLeaf(AL_AROM,True); | 
| 1059 |  | 
| 1060 | case('c'):  return GenerateAromElem(6,True); | 
| 1061 |  | 
| 1062 | case('h'):  if( isdigit(*LexPtr) ) | 
| 1063 | { | 
| 1064 | index = 0; | 
| 1065 | while( isdigit(*LexPtr) ) | 
| 1066 | index = index*10 + ((*LexPtr++)-'0'); | 
| 1067 | } | 
| 1068 | else | 
| 1069 | index = 1; | 
| 1070 | return BuildAtomLeaf(AL_IMPLICIT,index); | 
| 1071 |  | 
| 1072 | case('n'):  return GenerateAromElem(7,True); | 
| 1073 | case('o'):  return GenerateAromElem(8,True); | 
| 1074 | case('p'):  return GenerateAromElem(15,True); | 
| 1075 |  | 
| 1076 | case('r'):  if( isdigit(*LexPtr) ) | 
| 1077 | { | 
| 1078 | index = 0; | 
| 1079 | while( isdigit(*LexPtr) ) | 
| 1080 | index = index*10 + ((*LexPtr++)-'0'); | 
| 1081 | if( index == 0 ) | 
| 1082 | return BuildAtomLeaf(AL_RINGS,0); | 
| 1083 | return BuildAtomLeaf(AL_SIZE,index); | 
| 1084 | } | 
| 1085 | return BuildAtomLeaf(AL_RINGS,-1); | 
| 1086 |  | 
| 1087 | case('s'):  if( *LexPtr == 'i' ) | 
| 1088 | { | 
| 1089 | LexPtr++; | 
| 1090 | return GenerateAromElem(14,True); | 
| 1091 | } | 
| 1092 | return GenerateAromElem(16,True); | 
| 1093 |  | 
| 1094 | case('v'):  if( isdigit(*LexPtr) ) | 
| 1095 | { | 
| 1096 | index = 0; | 
| 1097 | while( isdigit(*LexPtr) ) | 
| 1098 | index = index*10 + ((*LexPtr++)-'0'); | 
| 1099 | return BuildAtomLeaf(AL_VALENCE,index); | 
| 1100 | } | 
| 1101 | break; | 
| 1102 | } | 
| 1103 | LexPtr--; | 
| 1104 | return (AtomExpr*)0; | 
| 1105 | } | 
| 1106 |  | 
| 1107 | static AtomExpr *ParseAtomExpr( int level ) | 
| 1108 | { | 
| 1109 | register AtomExpr *expr1; | 
| 1110 | register AtomExpr *expr2; | 
| 1111 | register char *prev; | 
| 1112 |  | 
| 1113 | switch( level ) | 
| 1114 | { | 
| 1115 | case(0): /* Low Precedence Conjunction */ | 
| 1116 | if( !(expr1=ParseAtomExpr(1)) ) | 
| 1117 | return (AtomExpr*)0; | 
| 1118 |  | 
| 1119 | while( *LexPtr == ';' ) | 
| 1120 | { | 
| 1121 | LexPtr++; | 
| 1122 | if( !(expr2=ParseAtomExpr(1)) ) | 
| 1123 | { | 
| 1124 | FreeAtomExpr(expr1); | 
| 1125 | return (AtomExpr*)0; | 
| 1126 | } | 
| 1127 | expr1 = BuildAtomBin(AE_ANDLO,expr1,expr2); | 
| 1128 | } | 
| 1129 | return expr1; | 
| 1130 |  | 
| 1131 | case(1): /* Disjunction */ | 
| 1132 | if( !(expr1=ParseAtomExpr(2)) ) | 
| 1133 | return (AtomExpr*)0; | 
| 1134 |  | 
| 1135 | while( *LexPtr == ',' ) | 
| 1136 | { | 
| 1137 | LexPtr++; | 
| 1138 | if( !(expr2=ParseAtomExpr(2)) ) | 
| 1139 | { | 
| 1140 | FreeAtomExpr(expr1); | 
| 1141 | return( (AtomExpr*)0 ); | 
| 1142 | } | 
| 1143 | expr1 = BuildAtomBin(AE_OR,expr1,expr2); | 
| 1144 | } | 
| 1145 | return( expr1 ); | 
| 1146 |  | 
| 1147 | case(2): /* High Precedence Conjunction */ | 
| 1148 | if( !(expr1=ParseAtomExpr(3)) ) | 
| 1149 | return( (AtomExpr*)0 ); | 
| 1150 |  | 
| 1151 | while( (*LexPtr!=']') && (*LexPtr!=';') && | 
| 1152 | (*LexPtr!=',') && *LexPtr ) | 
| 1153 | { | 
| 1154 | if( *LexPtr=='&' ) | 
| 1155 | LexPtr++; | 
| 1156 | prev = LexPtr; | 
| 1157 | if( !(expr2=ParseAtomExpr(3)) ) | 
| 1158 | { | 
| 1159 | if( prev != LexPtr ) | 
| 1160 | { | 
| 1161 | FreeAtomExpr(expr1); | 
| 1162 | return( (AtomExpr*)0 ); | 
| 1163 | } | 
| 1164 | else | 
| 1165 | return( expr1 ); | 
| 1166 | } | 
| 1167 | expr1 = BuildAtomBin(AE_ANDHI,expr1,expr2); | 
| 1168 | } | 
| 1169 | return( expr1 ); | 
| 1170 |  | 
| 1171 | case(3): /* Negation or Primitive */ | 
| 1172 | if( *LexPtr == '!' ) | 
| 1173 | { | 
| 1174 | LexPtr++; | 
| 1175 | if( !(expr1=ParseAtomExpr(3)) ) | 
| 1176 | return( (AtomExpr*)0 ); | 
| 1177 | return( BuildAtomNot(expr1) ); | 
| 1178 | } | 
| 1179 | return( ParseComplexAtomPrimitive() ); | 
| 1180 | } | 
| 1181 | return (AtomExpr*)0; | 
| 1182 | } | 
| 1183 |  | 
| 1184 | static BondExpr *ParseBondPrimitive( void ) | 
| 1185 | { | 
| 1186 | switch( *LexPtr++ ) | 
| 1187 | { | 
| 1188 | case('-'):  return BuildBondLeaf(BL_TYPE,BT_SINGLE); | 
| 1189 | case('='):  return BuildBondLeaf(BL_TYPE,BT_DOUBLE); | 
| 1190 | case('#'):  return BuildBondLeaf(BL_TYPE,BT_TRIPLE); | 
| 1191 | case(':'):  return BuildBondLeaf(BL_TYPE,BT_AROM); | 
| 1192 | case('@'):  return BuildBondLeaf(BL_TYPE,BT_RING); | 
| 1193 | case('~'):  return BuildBondLeaf(BL_CONST,True); | 
| 1194 |  | 
| 1195 | case('/'):  if( *LexPtr == '?' ) | 
| 1196 | { | 
| 1197 | LexPtr++; | 
| 1198 | return BuildBondLeaf(BL_TYPE,BT_UPUNSPEC); | 
| 1199 | } | 
| 1200 | return BuildBondLeaf(BL_TYPE,BT_UP); | 
| 1201 |  | 
| 1202 | case('\\'): if( *LexPtr == '?' ) | 
| 1203 | { | 
| 1204 | LexPtr++; | 
| 1205 | return BuildBondLeaf(BL_TYPE,BT_DOWNUNSPEC); | 
| 1206 | } | 
| 1207 |  | 
| 1208 | return BuildBondLeaf(BL_TYPE,BT_DOWN); | 
| 1209 | } | 
| 1210 | LexPtr--; | 
| 1211 | return (BondExpr*)0; | 
| 1212 | } | 
| 1213 |  | 
| 1214 | static BondExpr *ParseBondExpr( int level ) | 
| 1215 | { | 
| 1216 | register BondExpr *expr1; | 
| 1217 | register BondExpr *expr2; | 
| 1218 | register char *prev; | 
| 1219 |  | 
| 1220 | switch( level ) | 
| 1221 | { | 
| 1222 | case(0): /* Low Precedence Conjunction */ | 
| 1223 | if( !(expr1=ParseBondExpr(1)) ) | 
| 1224 | return (BondExpr*)0; | 
| 1225 |  | 
| 1226 | while( *LexPtr == ';' ) | 
| 1227 | { | 
| 1228 | LexPtr++; | 
| 1229 | if( !(expr2=ParseBondExpr(1)) ) | 
| 1230 | { | 
| 1231 | FreeBondExpr(expr1); | 
| 1232 | return (BondExpr*)0; | 
| 1233 | } | 
| 1234 | expr1 = BuildBondBin(BE_ANDLO,expr1,expr2); | 
| 1235 | } | 
| 1236 | return expr1; | 
| 1237 |  | 
| 1238 | case(1): /* Disjunction */ | 
| 1239 | if( !(expr1=ParseBondExpr(2)) ) | 
| 1240 | return (BondExpr*)0; | 
| 1241 |  | 
| 1242 | while( *LexPtr == ',' ) | 
| 1243 | { | 
| 1244 | LexPtr++; | 
| 1245 | if( !(expr2=ParseBondExpr(2)) ) | 
| 1246 | { | 
| 1247 | FreeBondExpr(expr1); | 
| 1248 | return (BondExpr*)0; | 
| 1249 | } | 
| 1250 | expr1 = BuildBondBin(BE_OR,expr1,expr2); | 
| 1251 | } | 
| 1252 | return expr1; | 
| 1253 |  | 
| 1254 | case(2): /* High Precedence Conjunction */ | 
| 1255 | if( !(expr1=ParseBondExpr(3)) ) | 
| 1256 | return (BondExpr*)0; | 
| 1257 |  | 
| 1258 | while( (*LexPtr!=']') && (*LexPtr!=';') && | 
| 1259 | (*LexPtr!=',') && *LexPtr ) | 
| 1260 | { | 
| 1261 | if( *LexPtr == '&' ) | 
| 1262 | LexPtr++; | 
| 1263 | prev = LexPtr; | 
| 1264 | if( !(expr2=ParseBondExpr(3)) ) | 
| 1265 | { | 
| 1266 | if( prev != LexPtr ) | 
| 1267 | { | 
| 1268 | FreeBondExpr(expr1); | 
| 1269 | return (BondExpr*)0; | 
| 1270 | } | 
| 1271 | else | 
| 1272 | return expr1; | 
| 1273 | } | 
| 1274 | expr1 = BuildBondBin(BE_ANDHI,expr1,expr2); | 
| 1275 | } | 
| 1276 | return expr1; | 
| 1277 |  | 
| 1278 | case(3): /* Negation or Primitive */ | 
| 1279 | if( *LexPtr == '!' ) | 
| 1280 | { | 
| 1281 | LexPtr++; | 
| 1282 | if( !(expr1=ParseBondExpr(3)) ) | 
| 1283 | return (BondExpr*)0; | 
| 1284 | return BuildBondNot(expr1); | 
| 1285 | } | 
| 1286 | return ParseBondPrimitive(); | 
| 1287 | } | 
| 1288 | return (BondExpr*)0; | 
| 1289 | } | 
| 1290 |  | 
| 1291 | static int GetVectorBinding() | 
| 1292 | { | 
| 1293 | int vb=0; | 
| 1294 |  | 
| 1295 | LexPtr++; //skip colon | 
| 1296 | if(isdigit(*LexPtr)) | 
| 1297 | { | 
| 1298 | vb = 0; | 
| 1299 | while( isdigit(*LexPtr) ) | 
| 1300 | vb = vb*10 + ((*LexPtr++)-'0'); | 
| 1301 | } | 
| 1302 |  | 
| 1303 | return(vb); | 
| 1304 | } | 
| 1305 |  | 
| 1306 | static Pattern *ParseSMARTSError( Pattern *pat, BondExpr *expr ) | 
| 1307 | { | 
| 1308 | if( expr ) | 
| 1309 | FreeBondExpr(expr); | 
| 1310 | return SMARTSError(pat); | 
| 1311 | } | 
| 1312 |  | 
| 1313 | static Pattern *SMARTSParser( Pattern *pat, ParseState *stat, | 
| 1314 | int prev, int part ) | 
| 1315 | { | 
| 1316 | int vb = 0; | 
| 1317 | register AtomExpr *aexpr; | 
| 1318 | register BondExpr *bexpr; | 
| 1319 | register int index; | 
| 1320 |  | 
| 1321 | bexpr = (BondExpr*)0; | 
| 1322 |  | 
| 1323 | while( *LexPtr ) | 
| 1324 | { | 
| 1325 | switch( *LexPtr++ ) | 
| 1326 | { | 
| 1327 | case('.'):  if( bexpr || (prev==-1) ) | 
| 1328 | return ParseSMARTSError(pat,bexpr); | 
| 1329 | prev = -1; | 
| 1330 | break; | 
| 1331 |  | 
| 1332 | case('-'):  case('='):  case('#'): | 
| 1333 | case(':'):  case('~'):  case('@'): | 
| 1334 | case('/'):  case('\\'): case('!'): | 
| 1335 | LexPtr--; | 
| 1336 | if( (prev==-1) || bexpr ) | 
| 1337 | return ParseSMARTSError(pat,bexpr); | 
| 1338 | if( !(bexpr=ParseBondExpr(0)) ) | 
| 1339 | return ParseSMARTSError(pat,bexpr); | 
| 1340 | break; | 
| 1341 |  | 
| 1342 | case('('): | 
| 1343 | #ifdef STRICT | 
| 1344 | if( (prev==-1) || bexpr ) | 
| 1345 | { | 
| 1346 | LexPtr--; | 
| 1347 | return ParseSMARTSError(pat,bexpr); | 
| 1348 | } | 
| 1349 | pat = SMARTSParser(pat,stat,prev,part); | 
| 1350 | if( !pat ) | 
| 1351 | return (Pattern*)0; | 
| 1352 | #else /* STRICT */ | 
| 1353 |  | 
| 1354 | if( bexpr ) | 
| 1355 | { | 
| 1356 | LexPtr--; | 
| 1357 | return ParseSMARTSError(pat,bexpr); | 
| 1358 | } | 
| 1359 | if( prev == -1 ) | 
| 1360 | { | 
| 1361 | index = pat->acount; | 
| 1362 | pat = SMARTSParser(pat,stat,-1,part); | 
| 1363 | if( !pat ) | 
| 1364 | return( (Pattern*)0 ); | 
| 1365 | if( index == pat->acount ) | 
| 1366 | return ParseSMARTSError(pat,bexpr); | 
| 1367 | prev = index; | 
| 1368 | } | 
| 1369 | else | 
| 1370 | { | 
| 1371 | pat = SMARTSParser(pat,stat,prev,part); | 
| 1372 | if( !pat ) | 
| 1373 | return (Pattern*)0; | 
| 1374 | } | 
| 1375 | #endif /* STRICT */ | 
| 1376 |  | 
| 1377 | if( *LexPtr != ')' ) | 
| 1378 | return ParseSMARTSError(pat,bexpr); | 
| 1379 | LexPtr++; | 
| 1380 | break; | 
| 1381 |  | 
| 1382 | case(')'):  LexPtr--; | 
| 1383 | if( (prev==-1) || bexpr ) | 
| 1384 | return ParseSMARTSError(pat,bexpr); | 
| 1385 | return pat; | 
| 1386 |  | 
| 1387 | case('%'):  if( prev == -1 ) | 
| 1388 | { | 
| 1389 | LexPtr--; | 
| 1390 | return ParseSMARTSError(pat,bexpr); | 
| 1391 | } | 
| 1392 |  | 
| 1393 | if( isdigit(LexPtr[0]) && isdigit(LexPtr[1]) ) | 
| 1394 | { | 
| 1395 | index = 10*(LexPtr[0]-'0') + (LexPtr[1]-'0'); | 
| 1396 | LexPtr += 2; | 
| 1397 | } | 
| 1398 | else | 
| 1399 | return ParseSMARTSError(pat,bexpr); | 
| 1400 |  | 
| 1401 | if( stat->closure[index] == -1 ) | 
| 1402 | { | 
| 1403 | stat->closord[index] = bexpr; | 
| 1404 | stat->closure[index] = prev; | 
| 1405 | } | 
| 1406 | else if( stat->closure[index] != prev ) | 
| 1407 | { | 
| 1408 | FreeBondExpr(stat->closord[index]); | 
| 1409 | if( !bexpr ) | 
| 1410 | bexpr = GenerateDefaultBond(); | 
| 1411 | CreateBond(pat,bexpr,prev,stat->closure[index]); | 
| 1412 | stat->closure[index] = -1; | 
| 1413 | bexpr = (BondExpr*)0; | 
| 1414 | } | 
| 1415 | else | 
| 1416 | return ParseSMARTSError(pat,bexpr); | 
| 1417 | break; | 
| 1418 |  | 
| 1419 | case('0'):  case('1'):  case('2'): | 
| 1420 | case('3'):  case('4'):  case('5'): | 
| 1421 | case('6'):  case('7'):  case('8'): | 
| 1422 | case('9'):  LexPtr--; | 
| 1423 | if( prev == -1 ) | 
| 1424 | return ParseSMARTSError(pat,bexpr); | 
| 1425 | index = (*LexPtr++)-'0'; | 
| 1426 |  | 
| 1427 | if( stat->closure[index] == -1 ) | 
| 1428 | { | 
| 1429 | stat->closord[index] = bexpr; | 
| 1430 | stat->closure[index] = prev; | 
| 1431 | bexpr = (BondExpr*)0; | 
| 1432 | } | 
| 1433 | else if( stat->closure[index] != prev ) | 
| 1434 | { | 
| 1435 | FreeBondExpr(stat->closord[index]); | 
| 1436 | if( !bexpr ) | 
| 1437 | bexpr = GenerateDefaultBond(); | 
| 1438 | CreateBond(pat,bexpr,prev,stat->closure[index]); | 
| 1439 | stat->closure[index] = -1; | 
| 1440 | bexpr = (BondExpr*)0; | 
| 1441 | } | 
| 1442 | else | 
| 1443 | return ParseSMARTSError(pat,bexpr); | 
| 1444 | break; | 
| 1445 |  | 
| 1446 | case('['):  aexpr = ParseAtomExpr(0); | 
| 1447 | vb = (*LexPtr == ':') ? GetVectorBinding():0; | 
| 1448 | if( !aexpr || (*LexPtr!=']') ) | 
| 1449 | return ParseSMARTSError(pat,bexpr); | 
| 1450 | index = CreateAtom(pat,aexpr,part,vb); | 
| 1451 | if( prev != -1 ) | 
| 1452 | { | 
| 1453 | if( !bexpr ) | 
| 1454 | bexpr = GenerateDefaultBond(); | 
| 1455 | CreateBond(pat,bexpr,prev,index); | 
| 1456 | bexpr = (BondExpr*)0; | 
| 1457 | } | 
| 1458 | prev = index; | 
| 1459 | LexPtr++; | 
| 1460 | break; | 
| 1461 |  | 
| 1462 | default: | 
| 1463 | LexPtr--; | 
| 1464 | aexpr = ParseSimpleAtomPrimitive(); | 
| 1465 | if( !aexpr ) | 
| 1466 | return ParseSMARTSError(pat,bexpr); | 
| 1467 | index = CreateAtom(pat,aexpr,part); | 
| 1468 | if( prev != -1 ) | 
| 1469 | { | 
| 1470 | if( !bexpr ) | 
| 1471 | bexpr = GenerateDefaultBond(); | 
| 1472 | CreateBond(pat,bexpr,prev,index); | 
| 1473 | bexpr = (BondExpr*)0; | 
| 1474 | } | 
| 1475 | prev = index; | 
| 1476 | } | 
| 1477 | } | 
| 1478 |  | 
| 1479 | if( (prev==-1) || bexpr ) | 
| 1480 | return ParseSMARTSError(pat,bexpr); | 
| 1481 |  | 
| 1482 | return pat; | 
| 1483 | } | 
| 1484 |  | 
| 1485 | static void MarkGrowBonds(Pattern *pat) | 
| 1486 | { | 
| 1487 | int i; | 
| 1488 | OBBitVec bv; | 
| 1489 |  | 
| 1490 | for (i = 0;i < pat->bcount;i++) | 
| 1491 | { | 
| 1492 | pat->bond[i].grow = (bv[pat->bond[i].src] && bv[pat->bond[i].dst])? | 
| 1493 | false:true; | 
| 1494 |  | 
| 1495 | bv.SetBitOn(pat->bond[i].src); | 
| 1496 | bv.SetBitOn(pat->bond[i].dst); | 
| 1497 | } | 
| 1498 | } | 
| 1499 |  | 
| 1500 | static int GetChiralFlag(AtomExpr *expr) | 
| 1501 | { | 
| 1502 | int size=0; | 
| 1503 | #define OB_EVAL_STACKSIZE 40 | 
| 1504 |  | 
| 1505 | AtomExpr *stack[OB_EVAL_STACKSIZE]; | 
| 1506 | memset(stack,'\0',sizeof(AtomExpr*)*OB_EVAL_STACKSIZE); | 
| 1507 | #undef OB_EVAL_STACKSIZE | 
| 1508 |  | 
| 1509 | bool lftest=true; | 
| 1510 |  | 
| 1511 | for (size=0,stack[size] = expr;size >= 0;expr=stack[size]) | 
| 1512 | { | 
| 1513 | switch (expr->type) | 
| 1514 | { | 
| 1515 | case AE_LEAF: | 
| 1516 | if (expr->leaf.prop == AL_CHIRAL) | 
| 1517 | return(expr->leaf.value); | 
| 1518 | size--; | 
| 1519 | break; | 
| 1520 |  | 
| 1521 | case AE_ANDHI: | 
| 1522 | case AE_ANDLO: | 
| 1523 |  | 
| 1524 | if (stack[size+1] == expr->bin.rgt) | 
| 1525 | size--; | 
| 1526 | else if (stack[size+1] == expr->bin.lft) | 
| 1527 | { | 
| 1528 | if (lftest) | 
| 1529 | { | 
| 1530 | size++; | 
| 1531 | stack[size] = expr->bin.rgt; | 
| 1532 | } | 
| 1533 | else | 
| 1534 | size--; | 
| 1535 | } | 
| 1536 | else | 
| 1537 | { | 
| 1538 | size++; | 
| 1539 | stack[size] = expr->bin.lft; | 
| 1540 | } | 
| 1541 | break; | 
| 1542 |  | 
| 1543 | case AE_OR: | 
| 1544 |  | 
| 1545 | if (stack[size+1] == expr->bin.rgt) | 
| 1546 | size--; | 
| 1547 | else if (stack[size+1] == expr->bin.lft) | 
| 1548 | { | 
| 1549 | if (!lftest) | 
| 1550 | { | 
| 1551 | size++; | 
| 1552 | stack[size] = expr->bin.rgt; | 
| 1553 | } | 
| 1554 | else | 
| 1555 | size--; | 
| 1556 | } | 
| 1557 | else | 
| 1558 | { | 
| 1559 | size++; | 
| 1560 | stack[size] = expr->bin.lft; | 
| 1561 | } | 
| 1562 | break; | 
| 1563 |  | 
| 1564 | case AE_NOT: | 
| 1565 | if (stack[size+1] != expr->mon.arg) | 
| 1566 | { | 
| 1567 | size++; | 
| 1568 | stack[size] = expr->mon.arg; | 
| 1569 | } | 
| 1570 | else | 
| 1571 | { | 
| 1572 | lftest = !lftest; | 
| 1573 | size--; | 
| 1574 | } | 
| 1575 | break; | 
| 1576 |  | 
| 1577 | case AE_RECUR: | 
| 1578 | size--; | 
| 1579 | break; | 
| 1580 | } | 
| 1581 | } | 
| 1582 |  | 
| 1583 | return((int)false); | 
| 1584 | } | 
| 1585 |  | 
| 1586 | static Pattern *ParseSMARTSPart( Pattern *result, int part ) | 
| 1587 | { | 
| 1588 | auto ParseState stat; | 
| 1589 | int i,flag; | 
| 1590 |  | 
| 1591 | for( i=0; i<100; i++ ) | 
| 1592 | stat.closure[i] = -1; | 
| 1593 |  | 
| 1594 | result = SMARTSParser(result,&stat,-1,part); | 
| 1595 |  | 
| 1596 | flag = False; | 
| 1597 | for( i=0; i<100; i++ ) | 
| 1598 | if( stat.closure[i] != -1 ) | 
| 1599 | { | 
| 1600 | FreeBondExpr(stat.closord[i]); | 
| 1601 | flag = True; | 
| 1602 | } | 
| 1603 |  | 
| 1604 | if( result ) | 
| 1605 | { | 
| 1606 | if( flag ) | 
| 1607 | return(SMARTSError(result)); | 
| 1608 | else | 
| 1609 | { | 
| 1610 | MarkGrowBonds(result); | 
| 1611 | result->ischiral = false; | 
| 1612 | for (i = 0;i < result->acount;i++) | 
| 1613 | { | 
| 1614 | result->atom[i].chiral_flag = GetChiralFlag(result->atom[i].expr); | 
| 1615 | if (result->atom[i].chiral_flag) | 
| 1616 | result->ischiral = true; | 
| 1617 | } | 
| 1618 | return(result); | 
| 1619 | } | 
| 1620 | } | 
| 1621 | else | 
| 1622 | return (Pattern*)0; | 
| 1623 | } | 
| 1624 |  | 
| 1625 |  | 
| 1626 | static Pattern *ParseSMARTSPattern( void ) | 
| 1627 | { | 
| 1628 | Pattern *result; | 
| 1629 | result = AllocPattern(); | 
| 1630 |  | 
| 1631 | while( *LexPtr == '(' ) | 
| 1632 | { | 
| 1633 | LexPtr++; | 
| 1634 | result = ParseSMARTSPart(result,result->parts); | 
| 1635 | if( !result ) | 
| 1636 | return (Pattern*)0; | 
| 1637 | result->parts++; | 
| 1638 |  | 
| 1639 | if( *LexPtr != ')' ) | 
| 1640 | return SMARTSError(result); | 
| 1641 | LexPtr++; | 
| 1642 |  | 
| 1643 | if( !*LexPtr || (*LexPtr==')') ) | 
| 1644 | return result; | 
| 1645 |  | 
| 1646 | if( *LexPtr != '.' ) | 
| 1647 | return SMARTSError(result); | 
| 1648 | LexPtr++; | 
| 1649 | } | 
| 1650 |  | 
| 1651 | return ParseSMARTSPart(result,0); | 
| 1652 | } | 
| 1653 |  | 
| 1654 | static Pattern *ParseSMARTSString( char *ptr ) | 
| 1655 | { | 
| 1656 | register Pattern *result; | 
| 1657 |  | 
| 1658 | if( !ptr || !*ptr ) | 
| 1659 | return (Pattern*)0; | 
| 1660 |  | 
| 1661 | LexPtr = MainPtr = ptr; | 
| 1662 | result = ParseSMARTSPattern(); | 
| 1663 | if( result && *LexPtr ) | 
| 1664 | return SMARTSError(result); | 
| 1665 | return result; | 
| 1666 | } | 
| 1667 |  | 
| 1668 | Pattern *ParseSMARTSRecord( char *ptr ) | 
| 1669 | { | 
| 1670 | register char *src,*dst; | 
| 1671 |  | 
| 1672 | src = ptr; | 
| 1673 | while( *src && !isspace(*src) ) | 
| 1674 | src++; | 
| 1675 |  | 
| 1676 | if( isspace(*src) ) | 
| 1677 | { | 
| 1678 | *src++ = '\0'; | 
| 1679 | while( isspace(*src) ) | 
| 1680 | src++; | 
| 1681 | } | 
| 1682 |  | 
| 1683 | dst = Descr; | 
| 1684 | while( *src && (dst<Descr+78) ) | 
| 1685 | { | 
| 1686 | if( isspace(*src) ) | 
| 1687 | { | 
| 1688 | *dst++ = ' '; | 
| 1689 | while( isspace(*src) ) | 
| 1690 | src++; | 
| 1691 | } | 
| 1692 | else | 
| 1693 | *dst++ = *src++; | 
| 1694 | } | 
| 1695 | *dst = '\0'; | 
| 1696 |  | 
| 1697 | return ParseSMARTSString(Buffer); | 
| 1698 | } | 
| 1699 |  | 
| 1700 | /*==============================*/ | 
| 1701 | /*  SMARTS Component Traversal  */ | 
| 1702 | /*==============================*/ | 
| 1703 |  | 
| 1704 | static void TraverseSMARTS( Pattern *pat, int i ) | 
| 1705 | { | 
| 1706 | register int j,k; | 
| 1707 |  | 
| 1708 | pat->atom[i].visit = True; | 
| 1709 | for( j=0; j<pat->bcount; j++ ) | 
| 1710 | if( pat->bond[j].visit == -1 ) | 
| 1711 | { | 
| 1712 | if( pat->bond[j].src == i ) | 
| 1713 | { | 
| 1714 | pat->bond[j].visit = i; | 
| 1715 | k = pat->bond[j].dst; | 
| 1716 | if( !pat->atom[k].visit ) | 
| 1717 | TraverseSMARTS(pat,k); | 
| 1718 | } | 
| 1719 | else if( pat->bond[j].dst == i ) | 
| 1720 | { | 
| 1721 | pat->bond[j].visit = i; | 
| 1722 | k = pat->bond[j].src; | 
| 1723 | if( !pat->atom[k].visit ) | 
| 1724 | TraverseSMARTS(pat,k); | 
| 1725 | } | 
| 1726 | } | 
| 1727 | } | 
| 1728 |  | 
| 1729 | /*============================*/ | 
| 1730 | /*  Canonical SMARTS Pattern  */ | 
| 1731 | /*============================*/ | 
| 1732 |  | 
| 1733 | static AtomExpr *NotAtomExpr( AtomExpr* ); | 
| 1734 | static AtomExpr *AndAtomExpr( AtomExpr*, AtomExpr* ); | 
| 1735 | static AtomExpr *OrAtomExpr( AtomExpr*, AtomExpr* ); | 
| 1736 | //static AtomExpr *TransformAtomExpr( AtomExpr* ); | 
| 1737 | //static Pattern *CanonicaliseSMARTS( Pattern* ); | 
| 1738 |  | 
| 1739 | static int IsBooleanAtomLeaf( AtomExpr *expr ) | 
| 1740 | { | 
| 1741 | return (expr->leaf.prop==AL_AROM) || | 
| 1742 | (expr->leaf.prop==AL_CONST); | 
| 1743 | } | 
| 1744 |  | 
| 1745 | static int IsNegatingAtomLeaf( AtomExpr *expr ) | 
| 1746 | { | 
| 1747 | return (expr->leaf.prop==AL_RINGS); | 
| 1748 | } | 
| 1749 |  | 
| 1750 | static int EqualAtomExpr( AtomExpr *lft, AtomExpr *rgt ) | 
| 1751 | { | 
| 1752 | if( lft->type != rgt->type ) | 
| 1753 | return False; | 
| 1754 |  | 
| 1755 | if( lft->type == AE_LEAF ) | 
| 1756 | { | 
| 1757 | return( (lft->leaf.prop==rgt->leaf.prop) && | 
| 1758 | (lft->leaf.value==rgt->leaf.value) ); | 
| 1759 | } | 
| 1760 | else if( lft->type == AE_NOT ) | 
| 1761 | { | 
| 1762 | return EqualAtomExpr(lft->mon.arg,rgt->mon.arg); | 
| 1763 | } | 
| 1764 | else if( lft->type == AE_RECUR ) | 
| 1765 | return False; | 
| 1766 |  | 
| 1767 | return EqualAtomExpr(lft->bin.lft,rgt->bin.lft) && | 
| 1768 | EqualAtomExpr(lft->bin.rgt,rgt->bin.rgt); | 
| 1769 | } | 
| 1770 |  | 
| 1771 | static int OrderAtomExpr( AtomExpr *lft, AtomExpr *rgt ) | 
| 1772 | { | 
| 1773 | register AtomExpr *larg; | 
| 1774 | register AtomExpr *rarg; | 
| 1775 | register int stat; | 
| 1776 |  | 
| 1777 | if( lft->type == AE_NOT ) | 
| 1778 | {   /* larg->type == AE_LEAF */ | 
| 1779 | larg = lft->mon.arg; | 
| 1780 | } | 
| 1781 | else | 
| 1782 | larg = lft; | 
| 1783 |  | 
| 1784 | if( rgt->type == AE_NOT ) | 
| 1785 | {   /* rarg->type == AE_LEAF */ | 
| 1786 | rarg = rgt->mon.arg; | 
| 1787 | } | 
| 1788 | else | 
| 1789 | rarg = rgt; | 
| 1790 |  | 
| 1791 | if( larg->type > rarg->type ) | 
| 1792 | { | 
| 1793 | return  1; | 
| 1794 | } | 
| 1795 | else if( larg->type < rarg->type ) | 
| 1796 | return -1; | 
| 1797 |  | 
| 1798 | if( larg->type == AE_LEAF ) | 
| 1799 | { | 
| 1800 | if( larg->leaf.prop > rarg->leaf.prop ) | 
| 1801 | return  1; | 
| 1802 | if( larg->leaf.prop < rarg->leaf.prop ) | 
| 1803 | return -1; | 
| 1804 | return( larg->leaf.value - rarg->leaf.value ); | 
| 1805 | } | 
| 1806 |  | 
| 1807 | stat = OrderAtomExpr(lft->bin.lft,rgt->bin.lft); | 
| 1808 | if( stat != 0 ) | 
| 1809 | return stat; | 
| 1810 | return OrderAtomExpr(lft->bin.rgt,rgt->bin.rgt); | 
| 1811 | } | 
| 1812 |  | 
| 1813 | static int AtomLeafConflict( AtomExpr *lft, AtomExpr *rgt ) | 
| 1814 | { | 
| 1815 | register AtomExpr *tmp; | 
| 1816 |  | 
| 1817 | if( (lft->type==AE_LEAF) && (rgt->type==AE_LEAF) ) | 
| 1818 | { | 
| 1819 | if( lft->leaf.prop == rgt->leaf.prop ) | 
| 1820 | { | 
| 1821 | if( IsNegatingAtomLeaf(lft) ) | 
| 1822 | { | 
| 1823 | if( lft->leaf.value == 0 ) | 
| 1824 | { | 
| 1825 | return rgt->leaf.value != 0; | 
| 1826 | } | 
| 1827 | else if( lft->leaf.value == -1 ) | 
| 1828 | return rgt->leaf.value == 0; | 
| 1829 |  | 
| 1830 | if( rgt->leaf.value == 0 ) | 
| 1831 | { | 
| 1832 | return lft->leaf.value != 0; | 
| 1833 | } | 
| 1834 | else if( rgt->leaf.value == -1 ) | 
| 1835 | return lft->leaf.value == 0; | 
| 1836 | } | 
| 1837 | return lft->leaf.value != rgt->leaf.value; | 
| 1838 | } | 
| 1839 |  | 
| 1840 | if( lft->leaf.prop > rgt->leaf.prop ) | 
| 1841 | { | 
| 1842 | tmp = lft; | 
| 1843 | lft = rgt; | 
| 1844 | rgt = tmp; | 
| 1845 | } | 
| 1846 |  | 
| 1847 | /* Aromaticity -> Ring */ | 
| 1848 | if( (lft->leaf.prop==AL_AROM) && (rgt->leaf.prop==AL_RINGS) ) | 
| 1849 | return( lft->leaf.value && !rgt->leaf.value ); | 
| 1850 |  | 
| 1851 | /* Positive charge ~ Negative charge */ | 
| 1852 | if( (lft->leaf.prop==AL_NEGATIVE) && (rgt->leaf.prop==AL_POSITIVE) ) | 
| 1853 | return( (lft->leaf.value!=0) || (rgt->leaf.value!=0) ); | 
| 1854 |  | 
| 1855 | /* Total hcount >= Implicit hcount */ | 
| 1856 | if( (lft->leaf.prop==AL_HCOUNT) && (rgt->leaf.prop==AL_IMPLICIT) ) | 
| 1857 | return( lft->leaf.value < rgt->leaf.value ); | 
| 1858 | } | 
| 1859 |  | 
| 1860 | if( (lft->type==AE_LEAF) && (rgt->type==AE_NOT) ) | 
| 1861 | { | 
| 1862 | rgt = rgt->mon.arg; | 
| 1863 | if( (lft->leaf.prop==AL_NEGATIVE) && (rgt->leaf.prop==AL_POSITIVE) ) | 
| 1864 | return( (lft->leaf.value==0) && (rgt->leaf.value==0) ); | 
| 1865 | if( (lft->leaf.prop==AL_POSITIVE) && (rgt->leaf.prop==AL_NEGATIVE) ) | 
| 1866 | return( (lft->leaf.value==0) && (rgt->leaf.value==0) ); | 
| 1867 | return False; | 
| 1868 | } | 
| 1869 |  | 
| 1870 | if( (lft->type==AE_NOT) && (rgt->type==AE_LEAF) ) | 
| 1871 | { | 
| 1872 | lft = lft->mon.arg; | 
| 1873 | if( (lft->leaf.prop==AL_NEGATIVE) && (rgt->leaf.prop==AL_POSITIVE) ) | 
| 1874 | return( (lft->leaf.value==0) && (rgt->leaf.value==0) ); | 
| 1875 | if( (lft->leaf.prop==AL_POSITIVE) && (rgt->leaf.prop==AL_NEGATIVE) ) | 
| 1876 | return( (lft->leaf.value==0) && (rgt->leaf.value==0) ); | 
| 1877 | return False; | 
| 1878 | } | 
| 1879 |  | 
| 1880 | return False; | 
| 1881 | } | 
| 1882 |  | 
| 1883 | static int AtomExprConflict( AtomExpr *lft, AtomExpr *rgt ) | 
| 1884 | { | 
| 1885 | while( rgt->type == AE_ANDHI ) | 
| 1886 | { | 
| 1887 | if( AtomLeafConflict(lft,rgt->bin.lft) ) | 
| 1888 | return True; | 
| 1889 | rgt = rgt->bin.rgt; | 
| 1890 | } | 
| 1891 | return AtomLeafConflict(lft,rgt); | 
| 1892 | } | 
| 1893 |  | 
| 1894 | /* return LEAF(lft) => LEAF(rgt); */ | 
| 1895 | static int AtomLeafImplies( AtomExpr *lft, AtomExpr *rgt ) | 
| 1896 | { | 
| 1897 | if( (lft->type==AE_LEAF) && (rgt->type==AE_LEAF) ) | 
| 1898 | {   /* Implied Ring Membership */ | 
| 1899 | if( (rgt->leaf.prop==AL_RINGS) && (rgt->leaf.value==-1) ) | 
| 1900 | { | 
| 1901 | if( lft->leaf.prop == AL_AROM ) | 
| 1902 | return lft->leaf.value; | 
| 1903 |  | 
| 1904 | if( lft->leaf.prop == AL_RINGS ) | 
| 1905 | return lft->leaf.value > 0; | 
| 1906 |  | 
| 1907 | if( lft->leaf.prop == AL_SIZE ) | 
| 1908 | return lft->leaf.value > 0; | 
| 1909 | } | 
| 1910 |  | 
| 1911 | /* Positive charge ~ Negative charge */ | 
| 1912 | if( (lft->leaf.prop==AL_POSITIVE) && (rgt->leaf.prop==AL_NEGATIVE) ) | 
| 1913 | return (lft->leaf.value==0) && (rgt->leaf.value==0); | 
| 1914 | return False; | 
| 1915 | } | 
| 1916 |  | 
| 1917 | if( (lft->type==AE_LEAF) && (rgt->type==AE_NOT) ) | 
| 1918 | { | 
| 1919 | rgt = rgt->mon.arg; | 
| 1920 | if( lft->leaf.prop == rgt->leaf.prop ) | 
| 1921 | return lft->leaf.value != rgt->leaf.value; | 
| 1922 |  | 
| 1923 | if( (lft->leaf.prop==AL_POSITIVE) && (rgt->leaf.prop==AL_NEGATIVE) ) | 
| 1924 | return True; | 
| 1925 | if( (lft->leaf.prop==AL_NEGATIVE) && (rgt->leaf.prop==AL_POSITIVE) ) | 
| 1926 | return True; | 
| 1927 | return False; | 
| 1928 | } | 
| 1929 |  | 
| 1930 | return False; | 
| 1931 | } | 
| 1932 |  | 
| 1933 | /* return EXPR(rgt) => LEAF(lft); */ | 
| 1934 | static int AtomExprImplied( AtomExpr *lft, AtomExpr *rgt ) | 
| 1935 | { | 
| 1936 | while( rgt->type == AE_ANDHI ) | 
| 1937 | { | 
| 1938 | if( AtomLeafImplies(rgt->bin.lft,lft) ) | 
| 1939 | return True; | 
| 1940 | rgt = rgt->bin.rgt; | 
| 1941 | } | 
| 1942 | return AtomLeafImplies(rgt,lft); | 
| 1943 | } | 
| 1944 |  | 
| 1945 | /* remove implied nodes from EXPR(rgt) */ | 
| 1946 | static AtomExpr *AtomExprImplies( AtomExpr *lft, AtomExpr *rgt ) | 
| 1947 | { | 
| 1948 | register AtomExpr *tmp; | 
| 1949 |  | 
| 1950 | if( rgt->type != AE_ANDHI ) | 
| 1951 | { | 
| 1952 | if( AtomLeafImplies(lft,rgt) ) | 
| 1953 | { | 
| 1954 | FreeAtomExpr(rgt); | 
| 1955 | return (AtomExpr*)0; | 
| 1956 | } | 
| 1957 | return rgt; | 
| 1958 | } | 
| 1959 |  | 
| 1960 | tmp = AtomExprImplies(lft,rgt->bin.rgt); | 
| 1961 |  | 
| 1962 | if( tmp ) | 
| 1963 | { | 
| 1964 | if( AtomLeafImplies(lft,rgt->bin.lft) ) | 
| 1965 | { | 
| 1966 | rgt->bin.rgt = (AtomExpr*)0; | 
| 1967 | FreeAtomExpr(rgt); | 
| 1968 | return tmp; | 
| 1969 | } | 
| 1970 | rgt->bin.rgt = tmp; | 
| 1971 | return rgt; | 
| 1972 | } | 
| 1973 | else | 
| 1974 | { | 
| 1975 | rgt->bin.rgt = (AtomExpr*)0; | 
| 1976 | if( AtomLeafImplies(lft,rgt->bin.lft) ) | 
| 1977 | { | 
| 1978 | FreeAtomExpr(rgt); | 
| 1979 | return (AtomExpr*)0; | 
| 1980 | } | 
| 1981 | tmp = rgt->bin.lft; | 
| 1982 | rgt->bin.lft = (AtomExpr*)0; | 
| 1983 | FreeAtomExpr(rgt); | 
| 1984 | return tmp; | 
| 1985 | } | 
| 1986 | } | 
| 1987 |  | 
| 1988 | static AtomExpr *AndAtomExprLeaf( AtomExpr *lft, AtomExpr *rgt ) | 
| 1989 | { | 
| 1990 | if( AtomExprConflict(lft,rgt) ) | 
| 1991 | { | 
| 1992 | FreeAtomExpr(lft); | 
| 1993 | FreeAtomExpr(rgt); | 
| 1994 | return BuildAtomLeaf(AL_CONST,False); | 
| 1995 | } | 
| 1996 |  | 
| 1997 | if( AtomExprImplied(lft,rgt) ) | 
| 1998 | { | 
| 1999 | FreeAtomExpr(lft); | 
| 2000 | return rgt; | 
| 2001 | } | 
| 2002 |  | 
| 2003 | rgt = AtomExprImplies(lft,rgt); | 
| 2004 | if( !rgt ) | 
| 2005 | return lft; | 
| 2006 |  | 
| 2007 | return BuildAtomBin(AE_ANDHI,lft,rgt); | 
| 2008 | } | 
| 2009 |  | 
| 2010 | static AtomExpr *ConstrainRecursion( AtomExpr *recur, AtomExpr *expr ) | 
| 2011 | { | 
| 2012 | register AtomExpr *head; | 
| 2013 | register Pattern *pat; | 
| 2014 |  | 
| 2015 | pat = (Pattern*)recur->recur.recur; | 
| 2016 | head = AndAtomExpr(pat->atom[0].expr,expr); | 
| 2017 | pat->atom[0].expr = head; | 
| 2018 |  | 
| 2019 | if( IsInvalidAtom(head) ) | 
| 2020 | { | 
| 2021 | FreePattern(pat); | 
| 2022 | return BuildAtomLeaf(AL_CONST,False); | 
| 2023 | } | 
| 2024 | return recur; | 
| 2025 | } | 
| 2026 |  | 
| 2027 | static AtomExpr *AndAtomExpr( AtomExpr *lft, AtomExpr *rgt ) | 
| 2028 | { | 
| 2029 | register AtomExpr *expr; | 
| 2030 | register int order; | 
| 2031 |  | 
| 2032 | /* Identities */ | 
| 2033 | if( EqualAtomExpr(lft,rgt) ) | 
| 2034 | { | 
| 2035 | FreeAtomExpr(rgt); | 
| 2036 | return lft; | 
| 2037 | } | 
| 2038 |  | 
| 2039 | if( (lft->type==AE_LEAF) && (lft->leaf.prop==AL_CONST) ) | 
| 2040 | { | 
| 2041 | if( lft->leaf.value ) | 
| 2042 | { | 
| 2043 | FreeAtomExpr(lft); | 
| 2044 | return rgt; | 
| 2045 | } | 
| 2046 | else | 
| 2047 | { | 
| 2048 | FreeAtomExpr(rgt); | 
| 2049 | return lft; | 
| 2050 | } | 
| 2051 | } | 
| 2052 |  | 
| 2053 | if( (rgt->type==AE_LEAF) && (rgt->leaf.prop==AL_CONST) ) | 
| 2054 | { | 
| 2055 | if( rgt->leaf.value ) | 
| 2056 | { | 
| 2057 | FreeAtomExpr(rgt); | 
| 2058 | return lft; | 
| 2059 | } | 
| 2060 | else | 
| 2061 | { | 
| 2062 | FreeAtomExpr(lft); | 
| 2063 | return rgt; | 
| 2064 | } | 
| 2065 | } | 
| 2066 |  | 
| 2067 | /*  Distributivity  */ | 
| 2068 | if( lft->type == AE_OR ) | 
| 2069 | { | 
| 2070 | expr = CopyAtomExpr(rgt); | 
| 2071 | expr = OrAtomExpr(AndAtomExpr(expr,lft->bin.lft), | 
| 2072 | AndAtomExpr(rgt, lft->bin.rgt)); | 
| 2073 | lft->bin.lft = (AtomExpr*)0; | 
| 2074 | lft->bin.rgt = (AtomExpr*)0; | 
| 2075 | FreeAtomExpr(lft); | 
| 2076 | return( expr ); | 
| 2077 | } | 
| 2078 |  | 
| 2079 | if( rgt->type == AE_OR ) | 
| 2080 | { | 
| 2081 | expr = CopyAtomExpr(lft); | 
| 2082 | expr = OrAtomExpr(AndAtomExpr(expr,rgt->bin.lft), | 
| 2083 | AndAtomExpr(lft, rgt->bin.rgt)); | 
| 2084 | rgt->bin.lft = (AtomExpr*)0; | 
| 2085 | rgt->bin.rgt = (AtomExpr*)0; | 
| 2086 | FreeAtomExpr(rgt); | 
| 2087 | return( expr ); | 
| 2088 | } | 
| 2089 |  | 
| 2090 | /* Recursion */ | 
| 2091 | if( (rgt->type==AE_RECUR) && (lft->type!=AE_RECUR) ) | 
| 2092 | return ConstrainRecursion(rgt,lft); | 
| 2093 |  | 
| 2094 | if( (rgt->type!=AE_RECUR) && (lft->type==AE_RECUR) ) | 
| 2095 | return ConstrainRecursion(lft,rgt); | 
| 2096 |  | 
| 2097 | order = OrderAtomExpr(lft,rgt); | 
| 2098 | if( order > 0 ) | 
| 2099 | { | 
| 2100 | expr = lft; | 
| 2101 | lft = rgt; | 
| 2102 | rgt = expr; | 
| 2103 | } | 
| 2104 |  | 
| 2105 | if( lft->type == AE_ANDHI ) | 
| 2106 | { | 
| 2107 | expr = AndAtomExpr(lft->bin.rgt,rgt); | 
| 2108 | expr = AndAtomExpr(lft->bin.lft,expr); | 
| 2109 | lft->bin.lft = (AtomExpr*)0; | 
| 2110 | lft->bin.rgt = (AtomExpr*)0; | 
| 2111 | FreeAtomExpr(lft); | 
| 2112 | return expr; | 
| 2113 | } | 
| 2114 |  | 
| 2115 | if( rgt->type == AE_ANDHI ) | 
| 2116 | { | 
| 2117 | if( OrderAtomExpr(lft,rgt->bin.lft) > 0 ) | 
| 2118 | { | 
| 2119 | expr = AndAtomExpr(lft,rgt->bin.rgt); | 
| 2120 | expr = AndAtomExpr(rgt->bin.lft,expr); | 
| 2121 | rgt->bin.lft = (AtomExpr*)0; | 
| 2122 | rgt->bin.rgt = (AtomExpr*)0; | 
| 2123 | FreeAtomExpr(rgt); | 
| 2124 | return expr; | 
| 2125 | } | 
| 2126 |  | 
| 2127 | if( EqualAtomExpr(lft,rgt->bin.lft) ) | 
| 2128 | { | 
| 2129 | FreeAtomExpr(lft); | 
| 2130 | return rgt; | 
| 2131 | } | 
| 2132 | } | 
| 2133 |  | 
| 2134 | return AndAtomExprLeaf(lft,rgt); | 
| 2135 | } | 
| 2136 |  | 
| 2137 | static AtomExpr *OrAtomExprLeaf( AtomExpr *lft, AtomExpr *rgt ) | 
| 2138 | { | 
| 2139 | return BuildAtomBin(AE_OR,lft,rgt); | 
| 2140 | } | 
| 2141 |  | 
| 2142 | static AtomExpr *OrAtomExpr( AtomExpr *lft, AtomExpr *rgt ) | 
| 2143 | { | 
| 2144 | register AtomExpr *expr; | 
| 2145 | register int order; | 
| 2146 |  | 
| 2147 | /* Identities */ | 
| 2148 | if( EqualAtomExpr(lft,rgt) ) | 
| 2149 | { | 
| 2150 | FreeAtomExpr(rgt); | 
| 2151 | return lft; | 
| 2152 | } | 
| 2153 |  | 
| 2154 | if( (lft->type==AE_LEAF) && (lft->leaf.prop==AL_CONST) ) | 
| 2155 | { | 
| 2156 | if( lft->leaf.value ) | 
| 2157 | { | 
| 2158 | FreeAtomExpr(rgt); | 
| 2159 | return lft; | 
| 2160 | } | 
| 2161 | else | 
| 2162 | { | 
| 2163 | FreeAtomExpr(lft); | 
| 2164 | return rgt; | 
| 2165 | } | 
| 2166 | } | 
| 2167 |  | 
| 2168 | if( (rgt->type==AE_LEAF) && (rgt->leaf.prop==AL_CONST) ) | 
| 2169 | { | 
| 2170 | if( rgt->leaf.value ) | 
| 2171 | { | 
| 2172 | FreeAtomExpr(lft); | 
| 2173 | return rgt; | 
| 2174 | } | 
| 2175 | else | 
| 2176 | { | 
| 2177 | FreeAtomExpr(rgt); | 
| 2178 | return lft; | 
| 2179 | } | 
| 2180 | } | 
| 2181 |  | 
| 2182 | order = OrderAtomExpr(lft,rgt); | 
| 2183 | if( order > 0 ) | 
| 2184 | { | 
| 2185 | expr = lft; | 
| 2186 | lft = rgt; | 
| 2187 | rgt = expr; | 
| 2188 | } | 
| 2189 |  | 
| 2190 | if( lft->type == AE_OR ) | 
| 2191 | { | 
| 2192 | expr = OrAtomExpr(lft->bin.rgt,rgt); | 
| 2193 | expr = OrAtomExpr(lft->bin.lft,expr); | 
| 2194 | lft->bin.lft = (AtomExpr*)0; | 
| 2195 | lft->bin.rgt = (AtomExpr*)0; | 
| 2196 | FreeAtomExpr(lft); | 
| 2197 | return expr; | 
| 2198 | } | 
| 2199 |  | 
| 2200 | if( rgt->type == AE_OR ) | 
| 2201 | { | 
| 2202 | if( OrderAtomExpr(lft,rgt->bin.lft) > 0 ) | 
| 2203 | { | 
| 2204 | expr = OrAtomExpr(lft,rgt->bin.rgt); | 
| 2205 | expr = OrAtomExpr(rgt->bin.lft,expr); | 
| 2206 | rgt->bin.lft = (AtomExpr*)0; | 
| 2207 | rgt->bin.rgt = (AtomExpr*)0; | 
| 2208 | FreeAtomExpr(rgt); | 
| 2209 | return expr; | 
| 2210 | } | 
| 2211 |  | 
| 2212 | if( EqualAtomExpr(lft,rgt->bin.lft) ) | 
| 2213 | { | 
| 2214 | FreeAtomExpr(lft); | 
| 2215 | return rgt; | 
| 2216 | } | 
| 2217 | } | 
| 2218 |  | 
| 2219 | return OrAtomExprLeaf(lft,rgt); | 
| 2220 | } | 
| 2221 |  | 
| 2222 | static AtomExpr *NotAtomExpr( AtomExpr *expr ) | 
| 2223 | { | 
| 2224 | register AtomExpr *result; | 
| 2225 | register AtomExpr *lft; | 
| 2226 | register AtomExpr *rgt; | 
| 2227 |  | 
| 2228 | if( expr->type == AE_LEAF ) | 
| 2229 | { | 
| 2230 | if( IsBooleanAtomLeaf(expr) ) | 
| 2231 | { | 
| 2232 | expr->leaf.value = !expr->leaf.value; | 
| 2233 | return expr; | 
| 2234 | } | 
| 2235 | else if( IsNegatingAtomLeaf(expr) ) | 
| 2236 | { | 
| 2237 | if( expr->leaf.value == -1 ) | 
| 2238 | { | 
| 2239 | expr->leaf.value = 0; | 
| 2240 | return expr; | 
| 2241 | } | 
| 2242 | else if( expr->leaf.value == 0 ) | 
| 2243 | { | 
| 2244 | expr->leaf.value = -1; | 
| 2245 | return expr; | 
| 2246 | } | 
| 2247 | } | 
| 2248 | } | 
| 2249 | else if( expr->type == AE_NOT ) | 
| 2250 | { | 
| 2251 | result = expr->mon.arg; | 
| 2252 | expr->mon.arg = (AtomExpr*)0; | 
| 2253 | FreeAtomExpr(expr); | 
| 2254 | return result; | 
| 2255 | } | 
| 2256 | else if( (expr->type==AE_ANDHI) || | 
| 2257 | (expr->type==AE_ANDLO) ) | 
| 2258 | { | 
| 2259 | lft = NotAtomExpr(expr->bin.lft); | 
| 2260 | rgt = NotAtomExpr(expr->bin.rgt); | 
| 2261 | expr->bin.lft = (AtomExpr*)0; | 
| 2262 | expr->bin.rgt = (AtomExpr*)0; | 
| 2263 | FreeAtomExpr(expr); | 
| 2264 | return OrAtomExpr(lft,rgt); | 
| 2265 | } | 
| 2266 | else if( expr->type == AE_OR ) | 
| 2267 | { | 
| 2268 | lft = NotAtomExpr(expr->bin.lft); | 
| 2269 | rgt = NotAtomExpr(expr->bin.rgt); | 
| 2270 | expr->bin.lft = (AtomExpr*)0; | 
| 2271 | expr->bin.rgt = (AtomExpr*)0; | 
| 2272 | FreeAtomExpr(expr); | 
| 2273 | return AndAtomExpr(lft,rgt); | 
| 2274 | } | 
| 2275 | return BuildAtomNot(expr); | 
| 2276 | } | 
| 2277 |  | 
| 2278 | /*==============================*/ | 
| 2279 | /*  Canonical Bond Expressions  */ | 
| 2280 | /*==============================*/ | 
| 2281 |  | 
| 2282 | static int GetBondLeafIndex( BondExpr *expr ) | 
| 2283 | { | 
| 2284 | if( expr->leaf.prop == BL_CONST ) | 
| 2285 | { | 
| 2286 | if( expr->leaf.value ) | 
| 2287 | { | 
| 2288 | return( BS_ALL ); | 
| 2289 | } | 
| 2290 | else | 
| 2291 | return( 0 ); | 
| 2292 | } | 
| 2293 | else /* expr->leaf.prop == BL_TYPE */ | 
| 2294 | switch( expr->leaf.value ) | 
| 2295 | { | 
| 2296 | case(BT_SINGLE):     return( BS_SINGLE ); | 
| 2297 | case(BT_DOUBLE):     return( BS_DOUBLE ); | 
| 2298 | case(BT_TRIPLE):     return( BS_TRIPLE ); | 
| 2299 | case(BT_AROM):       return( BS_AROM ); | 
| 2300 | case(BT_UP):         return( BS_UP ); | 
| 2301 | case(BT_DOWN):       return( BS_DOWN ); | 
| 2302 | case(BT_UPUNSPEC):   return( BS_UPUNSPEC ); | 
| 2303 | case(BT_DOWNUNSPEC): return( BS_DOWNUNSPEC ); | 
| 2304 | case(BT_RING):       return( BS_RING ); | 
| 2305 | } | 
| 2306 | return 0; | 
| 2307 | } | 
| 2308 |  | 
| 2309 | static int GetBondExprIndex( BondExpr *expr ) | 
| 2310 | { | 
| 2311 | register int lft,rgt; | 
| 2312 | register int arg; | 
| 2313 |  | 
| 2314 | switch( expr->type ) | 
| 2315 | { | 
| 2316 | case(BE_LEAF):   return GetBondLeafIndex(expr); | 
| 2317 |  | 
| 2318 | case(BE_NOT):    arg = GetBondExprIndex(expr->mon.arg); | 
| 2319 | return( arg ^ BS_ALL ); | 
| 2320 |  | 
| 2321 | case(BE_ANDHI): | 
| 2322 | case(BE_ANDLO):  lft = GetBondExprIndex(expr->bin.lft); | 
| 2323 | rgt = GetBondExprIndex(expr->bin.rgt); | 
| 2324 | return( lft & rgt ); | 
| 2325 |  | 
| 2326 | case(BE_OR):     lft = GetBondExprIndex(expr->bin.lft); | 
| 2327 | rgt = GetBondExprIndex(expr->bin.rgt); | 
| 2328 | return( lft | rgt ); | 
| 2329 | } | 
| 2330 | /* Avoid Compiler Warning */ | 
| 2331 | return 0; | 
| 2332 | } | 
| 2333 |  | 
| 2334 | static BondExpr *NotBondExpr( BondExpr *expr ) | 
| 2335 | { | 
| 2336 | register BondExpr *result; | 
| 2337 |  | 
| 2338 | if( expr->type == BE_LEAF ) | 
| 2339 | { | 
| 2340 | if( expr->leaf.prop == BL_CONST ) | 
| 2341 | { | 
| 2342 | expr->leaf.value = !expr->leaf.value; | 
| 2343 | return expr; | 
| 2344 | } | 
| 2345 | } | 
| 2346 | else if( expr->type == BE_NOT ) | 
| 2347 | { | 
| 2348 | result = expr->mon.arg; | 
| 2349 | expr->mon.arg = (BondExpr*)0; | 
| 2350 | FreeBondExpr(expr); | 
| 2351 | return result; | 
| 2352 | } | 
| 2353 | return BuildBondNot(expr); | 
| 2354 | } | 
| 2355 |  | 
| 2356 | static BondExpr *TransformBondExpr( BondExpr *expr ) | 
| 2357 | { | 
| 2358 | register BondExpr *lft,*rgt; | 
| 2359 | register BondExpr *arg; | 
| 2360 |  | 
| 2361 | if( expr->type == BE_LEAF ) | 
| 2362 | { | 
| 2363 | return expr; | 
| 2364 | } | 
| 2365 | else if( expr->type == BE_NOT ) | 
| 2366 | { | 
| 2367 | arg = expr->mon.arg; | 
| 2368 | arg = TransformBondExpr(arg); | 
| 2369 | expr->mon.arg = (BondExpr*)0; | 
| 2370 | FreeBondExpr(expr); | 
| 2371 | return NotBondExpr(arg); | 
| 2372 | } | 
| 2373 | else if( expr->type == BE_ANDHI ) | 
| 2374 | { | 
| 2375 | lft = expr->bin.lft; | 
| 2376 | rgt = expr->bin.rgt; | 
| 2377 | lft = TransformBondExpr(lft); | 
| 2378 | rgt = TransformBondExpr(rgt); | 
| 2379 | expr->bin.lft = lft; | 
| 2380 | expr->bin.rgt = rgt; | 
| 2381 | return expr; | 
| 2382 | } | 
| 2383 | else if( expr->type == BE_ANDLO ) | 
| 2384 | { | 
| 2385 | lft = expr->bin.lft; | 
| 2386 | rgt = expr->bin.rgt; | 
| 2387 | lft = TransformBondExpr(lft); | 
| 2388 | rgt = TransformBondExpr(rgt); | 
| 2389 | expr->bin.lft = lft; | 
| 2390 | expr->bin.rgt = rgt; | 
| 2391 | return expr; | 
| 2392 | } | 
| 2393 | else if( expr->type == BE_OR ) | 
| 2394 | { | 
| 2395 | lft = expr->bin.lft; | 
| 2396 | rgt = expr->bin.rgt; | 
| 2397 | lft = TransformBondExpr(lft); | 
| 2398 | rgt = TransformBondExpr(rgt); | 
| 2399 | expr->bin.lft = lft; | 
| 2400 | expr->bin.rgt = rgt; | 
| 2401 | return expr; | 
| 2402 | } | 
| 2403 | return expr; | 
| 2404 | } | 
| 2405 |  | 
| 2406 | #ifdef FOO | 
| 2407 | static BondExpr *CanonicaliseBond( BondExpr *expr ) | 
| 2408 | { | 
| 2409 | #ifndef ORIG | 
| 2410 | register int index; | 
| 2411 |  | 
| 2412 | index = GetBondExprIndex(expr); | 
| 2413 | FreeBondExpr(expr); | 
| 2414 |  | 
| 2415 | LexPtr = CanBondExpr[index]; | 
| 2416 | if( *LexPtr ) | 
| 2417 | { | 
| 2418 | expr = ParseBondExpr(0); | 
| 2419 | } | 
| 2420 | else | 
| 2421 | expr = GenerateDefaultBond(); | 
| 2422 | #endif | 
| 2423 |  | 
| 2424 | return TransformBondExpr(expr); | 
| 2425 | } | 
| 2426 | #endif | 
| 2427 |  | 
| 2428 |  | 
| 2429 | //********************************** | 
| 2430 | //********Pattern Matching********** | 
| 2431 | //********************************** | 
| 2432 |  | 
| 2433 | bool OBSmartsPattern::Init(const char *buffer) | 
| 2434 | { | 
| 2435 | strcpy(Buffer,buffer); | 
| 2436 |  | 
| 2437 | _pat = ParseSMARTSRecord(Buffer); | 
| 2438 | _str = buffer; | 
| 2439 |  | 
| 2440 | return(_pat != (Pattern*)NULL); | 
| 2441 | } | 
| 2442 |  | 
| 2443 | bool OBSmartsPattern::Init(const std::string &s) | 
| 2444 | { | 
| 2445 | strcpy(Buffer, s.c_str()); | 
| 2446 |  | 
| 2447 | _pat = ParseSMARTSRecord(Buffer); | 
| 2448 | _str = s; | 
| 2449 |  | 
| 2450 | return(_pat != (Pattern*)NULL); | 
| 2451 | } | 
| 2452 |  | 
| 2453 | OBSmartsPattern::~OBSmartsPattern() | 
| 2454 | { | 
| 2455 | if (_pat) | 
| 2456 | FreePattern(_pat); | 
| 2457 | } | 
| 2458 |  | 
| 2459 | bool OBSmartsPattern::Match(OBMol &mol,bool single) | 
| 2460 | { | 
| 2461 | RSCACHE.clear(); | 
| 2462 | return(match(mol,_pat,_mlist,single)); | 
| 2463 | } | 
| 2464 |  | 
| 2465 | bool OBSmartsPattern::RestrictedMatch(OBMol &mol,std::vector<std::pair<int,int> > &pr,bool single) | 
| 2466 | { | 
| 2467 | bool ok; | 
| 2468 | std::vector<std::vector<int> > mlist; | 
| 2469 | std::vector<std::vector<int> >::iterator i; | 
| 2470 | std::vector<std::pair<int,int> >::iterator j; | 
| 2471 |  | 
| 2472 | RSCACHE.clear(); | 
| 2473 | match(mol,_pat,mlist); | 
| 2474 | _mlist.clear(); | 
| 2475 | if (mlist.empty()) | 
| 2476 | return(false); | 
| 2477 |  | 
| 2478 | for (i = mlist.begin();i != mlist.end();i++) | 
| 2479 | { | 
| 2480 | ok = true; | 
| 2481 | for (j = pr.begin();j != pr.end() && ok;j++) | 
| 2482 | if ((*i)[j->first] != j->second) | 
| 2483 | ok = false; | 
| 2484 |  | 
| 2485 | if (ok) | 
| 2486 | _mlist.push_back(*i); | 
| 2487 | if (single && !_mlist.empty()) | 
| 2488 | return(true); | 
| 2489 | } | 
| 2490 |  | 
| 2491 | return((_mlist.empty()) ? false:true); | 
| 2492 | } | 
| 2493 |  | 
| 2494 | bool OBSmartsPattern::RestrictedMatch(OBMol &mol,OBBitVec &vres,bool single) | 
| 2495 | { | 
| 2496 | bool ok; | 
| 2497 | std::vector<int>::iterator j; | 
| 2498 | std::vector<std::vector<int> > mlist; | 
| 2499 | std::vector<std::vector<int> >::iterator i; | 
| 2500 |  | 
| 2501 | RSCACHE.clear(); | 
| 2502 | match(mol,_pat,mlist); | 
| 2503 |  | 
| 2504 | _mlist.clear(); | 
| 2505 | if (mlist.empty()) | 
| 2506 | return(false); | 
| 2507 |  | 
| 2508 | for (i = mlist.begin();i != mlist.end();i++) | 
| 2509 | { | 
| 2510 | ok = true; | 
| 2511 | for (j = i->begin();j != i->end();j++) | 
| 2512 | if (!vres[*j]) | 
| 2513 | { | 
| 2514 | ok = false; | 
| 2515 | break; | 
| 2516 | } | 
| 2517 | if (!ok) | 
| 2518 | continue; | 
| 2519 |  | 
| 2520 | _mlist.push_back(*i); | 
| 2521 | if (single && !_mlist.empty()) | 
| 2522 | return(true); | 
| 2523 | } | 
| 2524 |  | 
| 2525 | return((_mlist.empty()) ? false:true); | 
| 2526 | } | 
| 2527 |  | 
| 2528 | void SetupAtomMatchTable(std::vector<std::vector<bool> > &ttab,Pattern *pat,OBMol &mol) | 
| 2529 | { | 
| 2530 | int i; | 
| 2531 |  | 
| 2532 | ttab.resize(pat->acount); | 
| 2533 | for (i = 0;i < pat->acount;i++) | 
| 2534 | ttab[i].resize(mol.NumAtoms()+1); | 
| 2535 |  | 
| 2536 | OBAtom *atom; | 
| 2537 | std::vector<OBNodeBase*>::iterator j; | 
| 2538 | for (i = 0;i < pat->acount;i++) | 
| 2539 | for (atom = mol.BeginAtom(j);atom;atom = mol.NextAtom(j)) | 
| 2540 | if (EvalAtomExpr(pat->atom[0].expr,atom)) | 
| 2541 | ttab[i][atom->GetIdx()] = true; | 
| 2542 | } | 
| 2543 |  | 
| 2544 | static void FastSingleMatch(OBMol &mol,Pattern *pat,std::vector<std::vector<int> > &mlist) | 
| 2545 | { | 
| 2546 | OBAtom *atom,*a1,*nbr; | 
| 2547 | std::vector<OBNodeBase*>::iterator i; | 
| 2548 |  | 
| 2549 | OBBitVec bv(mol.NumAtoms()+1); | 
| 2550 | std::vector<int> map; | 
| 2551 | map.resize(pat->acount); | 
| 2552 | std::vector<std::vector<OBEdgeBase*>::iterator> vi; | 
| 2553 | std::vector<bool> vif; | 
| 2554 |  | 
| 2555 | if (pat->bcount) | 
| 2556 | { | 
| 2557 | vif.resize(pat->bcount); | 
| 2558 | vi.resize(pat->bcount); | 
| 2559 | } | 
| 2560 |  | 
| 2561 | int bcount; | 
| 2562 | for (atom = mol.BeginAtom(i);atom;atom=mol.NextAtom(i)) | 
| 2563 | if (EvalAtomExpr(pat->atom[0].expr,atom)) | 
| 2564 | { | 
| 2565 | map[0] = atom->GetIdx(); | 
| 2566 | if (pat->bcount) | 
| 2567 | vif[0] = false; | 
| 2568 | bv.Clear(); | 
| 2569 | bv.SetBitOn(atom->GetIdx()); | 
| 2570 |  | 
| 2571 | for (bcount=0;bcount >=0;) | 
| 2572 | { | 
| 2573 | //***entire pattern matched*** | 
| 2574 | if (bcount == pat->bcount) //save full match here | 
| 2575 | { | 
| 2576 | mlist.push_back(map); | 
| 2577 | bcount--; | 
| 2578 | return; //found a single match | 
| 2579 | } | 
| 2580 |  | 
| 2581 | //***match the next bond*** | 
| 2582 | if (!pat->bond[bcount].grow) //just check bond here | 
| 2583 | { | 
| 2584 | if ( !vif[bcount] ) | 
| 2585 | { | 
| 2586 | OBBond *bond = mol.GetBond(map[pat->bond[bcount].src], | 
| 2587 | map[pat->bond[bcount].dst]); | 
| 2588 | if (bond && EvalBondExpr(pat->bond[bcount].expr,bond)) | 
| 2589 | { | 
| 2590 | vif[bcount++] = true; | 
| 2591 | if (bcount < pat->bcount) | 
| 2592 | vif[bcount] = false; | 
| 2593 | } | 
| 2594 | else | 
| 2595 | bcount--; | 
| 2596 | } | 
| 2597 | else //bond must have already been visited - backtrack | 
| 2598 | bcount--; | 
| 2599 | } | 
| 2600 | else //need to map atom and check bond | 
| 2601 | { | 
| 2602 | a1 = mol.GetAtom(map[pat->bond[bcount].src]); | 
| 2603 |  | 
| 2604 | if (!vif[bcount]) //figure out which nbr atom we are mapping | 
| 2605 | { | 
| 2606 | nbr = a1->BeginNbrAtom(vi[bcount]); | 
| 2607 | } | 
| 2608 | else | 
| 2609 | { | 
| 2610 | bv.SetBitOff(map[pat->bond[bcount].dst]); | 
| 2611 | nbr = a1->NextNbrAtom(vi[bcount]); | 
| 2612 | } | 
| 2613 |  | 
| 2614 | for (;nbr;nbr=a1->NextNbrAtom(vi[bcount])) | 
| 2615 | if (!bv[nbr->GetIdx()]) | 
| 2616 | if (EvalAtomExpr(pat->atom[pat->bond[bcount].dst].expr,nbr) | 
| 2617 | && EvalBondExpr(pat->bond[bcount].expr,(OBBond *)*(vi[bcount]))) | 
| 2618 | { | 
| 2619 | bv.SetBitOn(nbr->GetIdx()); | 
| 2620 | map[pat->bond[bcount].dst] = nbr->GetIdx(); | 
| 2621 | vif[bcount] = true; | 
| 2622 | bcount++; | 
| 2623 | if (bcount < pat->bcount) | 
| 2624 | vif[bcount] = false; | 
| 2625 | break; | 
| 2626 | } | 
| 2627 |  | 
| 2628 | if (!nbr)//no match - time to backtrack | 
| 2629 | bcount--; | 
| 2630 | } | 
| 2631 | } | 
| 2632 | } | 
| 2633 | } | 
| 2634 |  | 
| 2635 |  | 
| 2636 | static bool match(OBMol &mol,Pattern *pat,std::vector<std::vector<int> > &mlist,bool single) | 
| 2637 | { | 
| 2638 | mlist.clear(); | 
| 2639 | if (!pat || pat->acount == 0) | 
| 2640 | return(false);//shouldn't ever happen | 
| 2641 |  | 
| 2642 | if (single && !pat->ischiral) | 
| 2643 | FastSingleMatch(mol,pat,mlist); | 
| 2644 | else | 
| 2645 | { | 
| 2646 | OBSSMatch ssm(mol,pat); | 
| 2647 | ssm.Match(mlist); | 
| 2648 | } | 
| 2649 |  | 
| 2650 | if (pat->ischiral && mol.Has3D()) | 
| 2651 | { | 
| 2652 | int j,k,r1,r2,r3,r4; | 
| 2653 | std::vector<std::vector<int> >::iterator m; | 
| 2654 | OBAtom *ra1,*ra2,*ra3,*ra4; | 
| 2655 | std::vector<std::vector<int> > tmpmlist; | 
| 2656 |  | 
| 2657 | for (j = 0;j < pat->acount;j++) | 
| 2658 | if (pat->atom[j].chiral_flag) | 
| 2659 | { | 
| 2660 | r1 = r2 = r3 = r4 = -1; | 
| 2661 | r2 = j; | 
| 2662 | for (k = 0;k < pat->bcount;k++) | 
| 2663 | if (pat->bond[k].dst == r2) | 
| 2664 | if (r1 == -1) | 
| 2665 | r1 = pat->bond[k].src; | 
| 2666 | else if (r3 == -1) | 
| 2667 | r3 = pat->bond[k].src; | 
| 2668 | else if (r4 == -1) | 
| 2669 | r4 = pat->bond[k].src; | 
| 2670 |  | 
| 2671 | for (k = 0;k < pat->bcount;k++) | 
| 2672 | if (pat->bond[k].src == r2) | 
| 2673 | if (r1 == -1) | 
| 2674 | r1 = pat->bond[k].dst; | 
| 2675 | else if (r3 == -1) | 
| 2676 | r3 = pat->bond[k].dst; | 
| 2677 | else if (r4 == -1) | 
| 2678 | r4 = pat->bond[k].dst; | 
| 2679 |  | 
| 2680 | if (r1 == -1 || r2 == -1 || r3 == -1 || r4 == -1) | 
| 2681 | continue; | 
| 2682 |  | 
| 2683 | tmpmlist.clear(); | 
| 2684 | for (m = mlist.begin();m != mlist.end();m++) | 
| 2685 | { | 
| 2686 | ra1 = mol.GetAtom((*m)[r1]); | 
| 2687 | ra2 = mol.GetAtom((*m)[r2]); | 
| 2688 | ra3 = mol.GetAtom((*m)[r3]); | 
| 2689 | ra4 = mol.GetAtom((*m)[r4]); | 
| 2690 | double sign = CalcTorsionAngle(ra1->GetVector(), | 
| 2691 | ra2->GetVector(), | 
| 2692 | ra3->GetVector(), | 
| 2693 | ra4->GetVector()); | 
| 2694 | if (sign > 0.0 && pat->atom[j].chiral_flag == AL_ANTICLOCKWISE) | 
| 2695 | continue; | 
| 2696 | if (sign < 0.0 && pat->atom[j].chiral_flag == AL_CLOCKWISE) | 
| 2697 | continue; | 
| 2698 |  | 
| 2699 | //ok - go ahead and save it | 
| 2700 | tmpmlist.push_back(*m); | 
| 2701 | } | 
| 2702 | mlist = tmpmlist; | 
| 2703 | } | 
| 2704 | } | 
| 2705 |  | 
| 2706 | return(!mlist.empty()); | 
| 2707 | } | 
| 2708 |  | 
| 2709 | #define RECURSIVE | 
| 2710 |  | 
| 2711 | #ifdef RECURSIVE | 
| 2712 | static bool EvalAtomExpr(AtomExpr *expr,OBAtom *atom) | 
| 2713 | { | 
| 2714 | for (;;) | 
| 2715 | switch (expr->type) | 
| 2716 | { | 
| 2717 | case AE_LEAF: | 
| 2718 | switch( expr->leaf.prop ) | 
| 2719 | { | 
| 2720 | case AL_ELEM: | 
| 2721 | return(expr->leaf.value == (int)atom->GetAtomicNum()); | 
| 2722 | case AL_AROM: | 
| 2723 | if( !expr->leaf.value ) | 
| 2724 | return !atom->IsAromatic(); | 
| 2725 | return atom->IsAromatic(); | 
| 2726 | case AL_HCOUNT: // should always return the number of explicit Hs. | 
| 2727 | return (expr->leaf.value==(signed int)atom->ExplicitHydrogenCount()); | 
| 2728 | case AL_DEGREE: | 
| 2729 | return(expr->leaf.value == (int)atom->GetValence()); | 
| 2730 | case AL_VALENCE: | 
| 2731 | return(expr->leaf.value == (int)atom->KBOSum()); | 
| 2732 | case AL_CONNECT: | 
| 2733 | return(expr->leaf.value == (int)atom->GetImplicitValence()); | 
| 2734 | case AL_NEGATIVE: | 
| 2735 | return(expr->leaf.value == -(atom->GetFormalCharge())); | 
| 2736 | case AL_POSITIVE: | 
| 2737 | return(expr->leaf.value == atom->GetFormalCharge()); | 
| 2738 | case AL_HYB: | 
| 2739 | return(expr->leaf.value == (int)atom->GetHyb()); | 
| 2740 |  | 
| 2741 | case AL_RINGS: | 
| 2742 | if( expr->leaf.value == -1 ) | 
| 2743 | return atom->IsInRing(); | 
| 2744 | else if( expr->leaf.value == 0 ) | 
| 2745 | return !atom->IsInRing(); | 
| 2746 | else | 
| 2747 | return expr->leaf.value == (int)atom->MemberOfRingCount(); | 
| 2748 |  | 
| 2749 | case AL_SIZE: | 
| 2750 | if( expr->leaf.value == -1 ) | 
| 2751 | return atom->IsInRing(); | 
| 2752 | if (!expr->leaf.value) | 
| 2753 | return !atom->IsInRing(); | 
| 2754 | else | 
| 2755 | return atom->IsInRingSize(expr->leaf.value); | 
| 2756 |  | 
| 2757 | case AL_IMPLICIT: | 
| 2758 | return expr->leaf.value == (int)atom->ImplicitHydrogenCount(); | 
| 2759 |  | 
| 2760 | case AL_CONST: | 
| 2761 | if( !expr->leaf.value ) | 
| 2762 | return false; | 
| 2763 | return(true); | 
| 2764 | default: | 
| 2765 | return false; | 
| 2766 | } | 
| 2767 |  | 
| 2768 | case AE_NOT: | 
| 2769 | return(!EvalAtomExpr(expr->mon.arg,atom)); | 
| 2770 | case AE_ANDHI: /* Same as AE_ANDLO */ | 
| 2771 | case AE_ANDLO: | 
| 2772 | if( !EvalAtomExpr(expr->bin.lft,atom)) | 
| 2773 | return(false); | 
| 2774 | expr = expr->bin.rgt; | 
| 2775 | break; | 
| 2776 | case AE_OR: | 
| 2777 | if(EvalAtomExpr(expr->bin.lft,atom)) | 
| 2778 | return(true); | 
| 2779 | expr = expr->bin.rgt; | 
| 2780 | break; | 
| 2781 |  | 
| 2782 | case AE_RECUR: | 
| 2783 | { | 
| 2784 | //see if pattern has been matched | 
| 2785 | std::vector<std::pair<Pattern*,std::vector<bool> > >::iterator i; | 
| 2786 | for (i = RSCACHE.begin();i != RSCACHE.end();i++) | 
| 2787 | if (i->first == (Pattern*)expr->recur.recur) | 
| 2788 | return(i->second[atom->GetIdx()]); | 
| 2789 |  | 
| 2790 | //perceive and match pattern | 
| 2791 | std::vector<std::vector<int> >::iterator j; | 
| 2792 | std::vector<bool> vb(((OBMol*) atom->GetParent())->NumAtoms()+1); | 
| 2793 | std::vector<std::vector<int> > mlist; | 
| 2794 | if (match( *((OBMol *) atom->GetParent()), | 
| 2795 | (Pattern*)expr->recur.recur,mlist)) | 
| 2796 | for (j = mlist.begin();j != mlist.end();j++) | 
| 2797 | vb[(*j)[0]] = true; | 
| 2798 |  | 
| 2799 | RSCACHE.push_back(std::pair<Pattern*,std::vector<bool> > ((Pattern*)expr->recur.recur,vb)); | 
| 2800 |  | 
| 2801 | return(vb[atom->GetIdx()]); | 
| 2802 | } | 
| 2803 |  | 
| 2804 | default: | 
| 2805 | return(false); | 
| 2806 | } | 
| 2807 | } | 
| 2808 |  | 
| 2809 | #else | 
| 2810 |  | 
| 2811 | static bool EvalAtomExpr(AtomExpr *expr,OBAtom *atom) | 
| 2812 | { | 
| 2813 | int size=0; | 
| 2814 | #define OB_EVAL_STACKSIZE 40 | 
| 2815 |  | 
| 2816 | AtomExpr *stack[OB_EVAL_STACKSIZE]; | 
| 2817 | memset(stack,'\0',sizeof(AtomExpr*)*OB_EVAL_STACKSIZE); | 
| 2818 | #undef OB_EVAL_STACKSIZE | 
| 2819 |  | 
| 2820 | bool lftest=true; | 
| 2821 |  | 
| 2822 | for (size=0,stack[size] = expr;size >= 0;expr=stack[size]) | 
| 2823 | { | 
| 2824 | switch (expr->type) | 
| 2825 | { | 
| 2826 | case AE_LEAF: | 
| 2827 | switch( expr->leaf.prop ) | 
| 2828 | { | 
| 2829 | //expr->leaf.value | 
| 2830 | case AL_ELEM: | 
| 2831 | lftest = (expr->leaf.value == atom->GetAtomicNum()); | 
| 2832 | break; | 
| 2833 | case AL_AROM: | 
| 2834 | lftest = (expr->leaf.value == (int)atom->IsAromatic()); | 
| 2835 | break; | 
| 2836 | case AL_HCOUNT: | 
| 2837 | if (atom->ExplicitHydrogenCount() > atom->ImplicitHydrogenCount()) | 
| 2838 | lftest=(expr->leaf.value==atom->ExplicitHydrogenCount()); | 
| 2839 | else | 
| 2840 | lftest=(expr->leaf.value==atom->ImplicitHydrogenCount()); | 
| 2841 | break; | 
| 2842 | case AL_DEGREE: | 
| 2843 | lftest = (expr->leaf.value == atom->GetHvyValence()); | 
| 2844 | break; | 
| 2845 | case AL_VALENCE: | 
| 2846 | lftest = (expr->leaf.value == atom->BOSum()); | 
| 2847 | break; | 
| 2848 | case AL_CONNECT:   //X | 
| 2849 | lftest = (expr->leaf.value == atom->GetImplicitValence()); | 
| 2850 | break; | 
| 2851 | case AL_NEGATIVE: | 
| 2852 | lftest=(expr->leaf.value == -1*(atom->GetFormalCharge())); | 
| 2853 | break; | 
| 2854 | case AL_POSITIVE: | 
| 2855 | lftest=(expr->leaf.value == atom->GetFormalCharge()); | 
| 2856 | break; | 
| 2857 | case AL_HYB: | 
| 2858 | lftest=(expr->leaf.value == atom->GetHyb()); | 
| 2859 | break; | 
| 2860 | case AL_RINGS: | 
| 2861 | if (expr->leaf.value == -1) | 
| 2862 | lftest = (atom->IsInRing()); | 
| 2863 | else | 
| 2864 | if (expr->leaf.value == 0) | 
| 2865 | lftest = !(atom->IsInRing()); | 
| 2866 | else | 
| 2867 | lftest=(atom->MemberOfRingCount()==expr->leaf.value); | 
| 2868 | break; | 
| 2869 | case AL_SIZE: | 
| 2870 | if (!expr->leaf.value) | 
| 2871 | lftest = !atom->IsInRing(); | 
| 2872 | else | 
| 2873 | lftest = atom->IsInRingSize(expr->leaf.value); | 
| 2874 | break; | 
| 2875 |  | 
| 2876 | case AL_IMPLICIT: | 
| 2877 | lftest=(expr->leaf.value==atom->ImplicitHydrogenCount()); | 
| 2878 | break; | 
| 2879 | case AL_CONST: | 
| 2880 | lftest= true; // not limited to non-hydrogens | 
| 2881 | break; | 
| 2882 | case AL_MASS: | 
| 2883 | break; | 
| 2884 | default: | 
| 2885 | break; | 
| 2886 | } | 
| 2887 | size--; | 
| 2888 | break; | 
| 2889 |  | 
| 2890 | case AE_ANDHI: | 
| 2891 |  | 
| 2892 | if (stack[size+1] == expr->bin.rgt) | 
| 2893 | size--; | 
| 2894 | else if (stack[size+1] == expr->bin.lft) | 
| 2895 | { | 
| 2896 | if (lftest) | 
| 2897 | { | 
| 2898 | size++; | 
| 2899 | stack[size] = expr->bin.rgt; | 
| 2900 | } | 
| 2901 | else | 
| 2902 | size--; | 
| 2903 | } | 
| 2904 | else | 
| 2905 | { | 
| 2906 | size++; | 
| 2907 | stack[size] = expr->bin.lft; | 
| 2908 | } | 
| 2909 | break; | 
| 2910 |  | 
| 2911 | case AE_OR: | 
| 2912 |  | 
| 2913 | if (stack[size+1] == expr->bin.rgt) | 
| 2914 | size--; | 
| 2915 | else if (stack[size+1] == expr->bin.lft) | 
| 2916 | { | 
| 2917 | if (!lftest) | 
| 2918 | { | 
| 2919 | size++; | 
| 2920 | stack[size] = expr->bin.rgt; | 
| 2921 | } | 
| 2922 | else | 
| 2923 | size--; | 
| 2924 | } | 
| 2925 | else | 
| 2926 | { | 
| 2927 | size++; | 
| 2928 | stack[size] = expr->bin.lft; | 
| 2929 | } | 
| 2930 | break; | 
| 2931 |  | 
| 2932 | case AE_ANDLO: | 
| 2933 |  | 
| 2934 | if (stack[size+1] == expr->bin.rgt) | 
| 2935 | size--; | 
| 2936 | else if (stack[size+1] == expr->bin.lft) | 
| 2937 | { | 
| 2938 | if (lftest) | 
| 2939 | { | 
| 2940 | size++; | 
| 2941 | stack[size] = expr->bin.rgt; | 
| 2942 | } | 
| 2943 | else | 
| 2944 | size--; | 
| 2945 | } | 
| 2946 | else | 
| 2947 | { | 
| 2948 | size++; | 
| 2949 | stack[size] = expr->bin.lft; | 
| 2950 | } | 
| 2951 | break; | 
| 2952 |  | 
| 2953 | case AE_NOT: | 
| 2954 | if (stack[size+1] != expr->mon.arg) | 
| 2955 | { | 
| 2956 | size++; | 
| 2957 | stack[size] = expr->mon.arg; | 
| 2958 | } | 
| 2959 | else | 
| 2960 | { | 
| 2961 | lftest = !lftest; | 
| 2962 | size--; | 
| 2963 | } | 
| 2964 | break; | 
| 2965 |  | 
| 2966 | case AE_RECUR: | 
| 2967 | //see if pattern has been matched | 
| 2968 | bool matched=false; | 
| 2969 |  | 
| 2970 | std::vector<std::pair<Pattern*,std::vector<bool> > >::iterator i; | 
| 2971 | for (i = RSCACHE.begin();i != RSCACHE.end();i++) | 
| 2972 | if (i->first == (Pattern*)expr->recur.recur) | 
| 2973 | { | 
| 2974 | lftest = i->second[atom->GetIdx()]; | 
| 2975 | matched = true; | 
| 2976 | break; | 
| 2977 | } | 
| 2978 |  | 
| 2979 | if (!matched) | 
| 2980 | { | 
| 2981 | std::vector<bool> vb(atom->GetParent()->NumAtoms()+1); | 
| 2982 | std::vector<std::vector<int> > mlist; | 
| 2983 | lftest = false; | 
| 2984 | if (match((*atom->GetParent()),(Pattern*)expr->recur.recur,mlist)) | 
| 2985 | { | 
| 2986 | std::vector<std::vector<int> >::iterator i; | 
| 2987 | for (i = mlist.begin();i != mlist.end();i++) | 
| 2988 | { | 
| 2989 | if ((*i)[0] == atom->GetIdx()) | 
| 2990 | lftest = true; | 
| 2991 | vb[(*i)[0]] = true; | 
| 2992 | } | 
| 2993 | } | 
| 2994 | RSCACHE.push_back(std::pair<Pattern*,std::vector<bool> > ((Pattern*)expr->recur.recur,vb)); | 
| 2995 | } | 
| 2996 |  | 
| 2997 | size--; | 
| 2998 | break; | 
| 2999 | } | 
| 3000 | } | 
| 3001 |  | 
| 3002 | return(lftest); | 
| 3003 | } | 
| 3004 | #endif | 
| 3005 |  | 
| 3006 | #ifdef RECURSIVE | 
| 3007 |  | 
| 3008 | static bool EvalBondExpr(BondExpr *expr,OBBond *bond) | 
| 3009 | { | 
| 3010 | for (;;) | 
| 3011 | switch( expr->type ) | 
| 3012 | { | 
| 3013 | case BE_LEAF: | 
| 3014 |  | 
| 3015 | if( expr->leaf.prop == BL_CONST ) | 
| 3016 | return((expr->leaf.value != 0) ? true : false); | 
| 3017 | else | 
| 3018 | switch( expr->leaf.value ) | 
| 3019 | { | 
| 3020 | case BT_SINGLE: | 
| 3021 | return(bond->GetBO() == 1 && !bond->IsAromatic()); | 
| 3022 | case BT_AROM: | 
| 3023 | return(bond->IsAromatic()); | 
| 3024 | case BT_DOUBLE: | 
| 3025 | return(bond->GetBO()==2 && !bond->IsAromatic()); | 
| 3026 | case BT_TRIPLE: | 
| 3027 | return(bond->GetBO()==3); | 
| 3028 | case BT_RING: | 
| 3029 | return(bond->IsInRing()); | 
| 3030 | case BT_UP: | 
| 3031 | return(bond->IsUp()); | 
| 3032 | case BT_DOWN: | 
| 3033 | return(bond->IsDown()); | 
| 3034 | case BT_UPUNSPEC: // up or unspecified (i.e., not down) | 
| 3035 | return(!bond->IsDown()); | 
| 3036 | case BT_DOWNUNSPEC: // down or unspecified (i.e., not up) | 
| 3037 | return(!bond->IsUp()); | 
| 3038 | default: | 
| 3039 | return(false); | 
| 3040 | } | 
| 3041 |  | 
| 3042 |  | 
| 3043 | case BE_NOT: | 
| 3044 | return(!EvalBondExpr(expr->mon.arg,bond)); | 
| 3045 | case BE_ANDHI: | 
| 3046 | case BE_ANDLO: | 
| 3047 | if (!EvalBondExpr(expr->bin.lft,bond)) | 
| 3048 | return(false); | 
| 3049 | expr = expr->bin.rgt; | 
| 3050 | break; | 
| 3051 |  | 
| 3052 | case BE_OR: | 
| 3053 | if (EvalBondExpr(expr->bin.lft,bond)) | 
| 3054 | return(true); | 
| 3055 | expr = expr->bin.rgt; | 
| 3056 | break; | 
| 3057 | default: | 
| 3058 | return false; | 
| 3059 | } | 
| 3060 | } | 
| 3061 |  | 
| 3062 | #else | 
| 3063 |  | 
| 3064 | static bool EvalBondExpr(BondExpr *expr,OBBond *bond) | 
| 3065 | { | 
| 3066 | int size=0; | 
| 3067 | #define OB_EVAL_STACKSIZE 40 | 
| 3068 |  | 
| 3069 | BondExpr *stack[OB_EVAL_STACKSIZE]; | 
| 3070 | memset(stack,'\0',sizeof(AtomExpr*)*OB_EVAL_STACKSIZE); | 
| 3071 | #undef OB_EVAL_STACKSIZE | 
| 3072 |  | 
| 3073 | bool lftest=true; | 
| 3074 | for (size=0,stack[size] = expr;size >= 0;expr=stack[size]) | 
| 3075 | switch( expr->type ) | 
| 3076 | { | 
| 3077 | case(BE_LEAF): | 
| 3078 |  | 
| 3079 | if( expr->leaf.prop == BL_CONST ) | 
| 3080 | lftest = (expr->leaf.value)?true:false; | 
| 3081 | else /* expr->leaf.prop == BL_TYPE */ | 
| 3082 | switch( expr->leaf.value ) | 
| 3083 | { | 
| 3084 | case(BT_SINGLE): | 
| 3085 | lftest = (bond->GetBO() == 1 && !bond->IsAromatic()); | 
| 3086 | break; | 
| 3087 | case(BT_DOUBLE): | 
| 3088 | lftest = (bond->GetBO()==2 && !bond->IsAromatic()); | 
| 3089 | break; | 
| 3090 | case(BT_TRIPLE): | 
| 3091 | lftest = (bond->GetBO()==3); | 
| 3092 | break; | 
| 3093 | case(BT_AROM): lftest=bond->IsAromatic(); | 
| 3094 | break; | 
| 3095 | case(BT_RING): lftest=bond->IsInRing(); | 
| 3096 | break; | 
| 3097 | case(BT_UP): lftest= (bond->IsUp() && bond->GetBO()==1 && !bond->IsAromatic()); | 
| 3098 | break; | 
| 3099 | case(BT_DOWN): lftest= (bond->IsDown() && bond->GetBO()==1 && !bond->IsAromatic()); | 
| 3100 | break; | 
| 3101 | case(BT_UPUNSPEC): lftest= !bond->IsDown(); | 
| 3102 | break; | 
| 3103 | case(BT_DOWNUNSPEC): lftest= !bond->IsUp(); | 
| 3104 | break; | 
| 3105 | } | 
| 3106 | size--; | 
| 3107 | break; | 
| 3108 |  | 
| 3109 | case(BE_NOT): | 
| 3110 | if (stack[size+1] != expr->mon.arg) | 
| 3111 | { | 
| 3112 | size++; | 
| 3113 | stack[size] = expr->mon.arg; | 
| 3114 | } | 
| 3115 | else | 
| 3116 | { | 
| 3117 | lftest = !lftest; | 
| 3118 | size--; | 
| 3119 | } | 
| 3120 | break; | 
| 3121 |  | 
| 3122 | case(BE_ANDHI): | 
| 3123 | if (stack[size+1] == expr->bin.rgt) | 
| 3124 | size--; | 
| 3125 | else if (stack[size+1] == expr->bin.lft) | 
| 3126 | { | 
| 3127 | if (lftest) | 
| 3128 | { | 
| 3129 | size++; | 
| 3130 | stack[size] = expr->bin.rgt; | 
| 3131 | } | 
| 3132 | else | 
| 3133 | size--; | 
| 3134 | } | 
| 3135 | else | 
| 3136 | { | 
| 3137 | size++; | 
| 3138 | stack[size] = expr->bin.lft; | 
| 3139 | } | 
| 3140 | break; | 
| 3141 |  | 
| 3142 | case(BE_ANDLO): | 
| 3143 | if (stack[size+1] == expr->bin.rgt) | 
| 3144 | size--; | 
| 3145 | else if (stack[size+1] == expr->bin.lft) | 
| 3146 | { | 
| 3147 | if (lftest) | 
| 3148 | { | 
| 3149 | size++; | 
| 3150 | stack[size] = expr->bin.rgt; | 
| 3151 | } | 
| 3152 | else | 
| 3153 | size--; | 
| 3154 | } | 
| 3155 | else | 
| 3156 | { | 
| 3157 | size++; | 
| 3158 | stack[size] = expr->bin.lft; | 
| 3159 | } | 
| 3160 | break; | 
| 3161 |  | 
| 3162 | case(BE_OR): | 
| 3163 | if (stack[size+1] == expr->bin.rgt) | 
| 3164 | size--; | 
| 3165 | else if (stack[size+1] == expr->bin.lft) | 
| 3166 | { | 
| 3167 | if (!lftest) | 
| 3168 | { | 
| 3169 | size++; | 
| 3170 | stack[size] = expr->bin.rgt; | 
| 3171 | } | 
| 3172 | else | 
| 3173 | size--; | 
| 3174 | } | 
| 3175 | else | 
| 3176 | { | 
| 3177 | size++; | 
| 3178 | stack[size] = expr->bin.lft; | 
| 3179 | } | 
| 3180 | break; | 
| 3181 | } | 
| 3182 | return(lftest); | 
| 3183 | } | 
| 3184 | #endif | 
| 3185 |  | 
| 3186 | std::vector<std::vector<int> > &OBSmartsPattern::GetUMapList() | 
| 3187 | { | 
| 3188 | if (_mlist.empty() || _mlist.size() == 1) | 
| 3189 | return(_mlist); | 
| 3190 |  | 
| 3191 | bool ok; | 
| 3192 | OBBitVec bv; | 
| 3193 | std::vector<OBBitVec> vbv; | 
| 3194 | std::vector<std::vector<int> > mlist; | 
| 3195 | std::vector<std::vector<int> >::iterator i; | 
| 3196 | std::vector<OBBitVec>::iterator j; | 
| 3197 |  | 
| 3198 | for (i = _mlist.begin();i != _mlist.end();i++) | 
| 3199 | { | 
| 3200 | ok = true; | 
| 3201 | bv.Clear(); | 
| 3202 | bv.FromVecInt(*i); | 
| 3203 | for (j = vbv.begin();j != vbv.end() && ok;j++) | 
| 3204 | if ((*j) == bv) | 
| 3205 | ok = false; | 
| 3206 |  | 
| 3207 | if (ok) | 
| 3208 | { | 
| 3209 | mlist.push_back(*i); | 
| 3210 | vbv.push_back(bv); | 
| 3211 | } | 
| 3212 | } | 
| 3213 |  | 
| 3214 | _mlist = mlist; | 
| 3215 | return(_mlist); | 
| 3216 | } | 
| 3217 |  | 
| 3218 | void OBSmartsPattern::WriteMapList(ostream &ofs) | 
| 3219 | { | 
| 3220 | std::vector<std::vector<int> >::iterator i; | 
| 3221 | std::vector<int>::iterator j; | 
| 3222 |  | 
| 3223 | for ( i = _mlist.begin() ; i != _mlist.end() ; i++ ) | 
| 3224 | { | 
| 3225 | for (j = (*i).begin();j != (*i).end();j++) | 
| 3226 | ofs << *j << ' ' << ends; | 
| 3227 | ofs << endl; | 
| 3228 | } | 
| 3229 | } | 
| 3230 |  | 
| 3231 | //******************************************************************* | 
| 3232 | //  The OBSSMatch class performs exhaustive matching using recursion | 
| 3233 | //  Explicit stack handling is used to find just a single match in | 
| 3234 | //  match() | 
| 3235 | //******************************************************************* | 
| 3236 |  | 
| 3237 | OBSSMatch::OBSSMatch(OBMol &mol,Pattern *pat) | 
| 3238 | { | 
| 3239 | _mol = &mol; | 
| 3240 | _pat = pat; | 
| 3241 | _map.resize(pat->acount); | 
| 3242 |  | 
| 3243 | if (!mol.Empty()) | 
| 3244 | { | 
| 3245 | _uatoms = new bool [mol.NumAtoms()+1]; | 
| 3246 | memset((char*)_uatoms,'\0',sizeof(bool)*(mol.NumAtoms()+1)); | 
| 3247 | } | 
| 3248 | else | 
| 3249 | _uatoms = (bool*)NULL; | 
| 3250 | } | 
| 3251 |  | 
| 3252 | OBSSMatch::~OBSSMatch() | 
| 3253 | { | 
| 3254 | if (_uatoms) | 
| 3255 | delete [] _uatoms; | 
| 3256 | } | 
| 3257 |  | 
| 3258 | void OBSSMatch::Match(std::vector<std::vector<int> > &mlist,int bidx) | 
| 3259 | { | 
| 3260 | if (bidx == -1) | 
| 3261 | { | 
| 3262 | OBAtom *atom; | 
| 3263 | std::vector<OBNodeBase*>::iterator i; | 
| 3264 | for (atom = _mol->BeginAtom(i);atom;atom = _mol->NextAtom(i)) | 
| 3265 | if (EvalAtomExpr(_pat->atom[0].expr,atom)) | 
| 3266 | { | 
| 3267 | _map[0] = atom->GetIdx(); | 
| 3268 | _uatoms[atom->GetIdx()] = true; | 
| 3269 | Match(mlist,0); | 
| 3270 | _map[0] = 0; | 
| 3271 | _uatoms[atom->GetIdx()] = false; | 
| 3272 | } | 
| 3273 | return; | 
| 3274 | } | 
| 3275 |  | 
| 3276 | if (bidx == _pat->bcount) //save full match here | 
| 3277 | { | 
| 3278 | mlist.push_back(_map); | 
| 3279 | return; | 
| 3280 | } | 
| 3281 |  | 
| 3282 | if (_pat->bond[bidx].grow) //match the next bond | 
| 3283 | { | 
| 3284 | int src,dst; | 
| 3285 | src = _pat->bond[bidx].src; | 
| 3286 | dst = _pat->bond[bidx].dst; | 
| 3287 |  | 
| 3288 | if (_map[src] <= 0 || _map[src] > _mol->NumAtoms()) | 
| 3289 | return; | 
| 3290 |  | 
| 3291 | AtomExpr *aexpr = _pat->atom[dst].expr; | 
| 3292 | BondExpr *bexpr = _pat->bond[bidx].expr; | 
| 3293 | OBAtom *atom,*nbr; | 
| 3294 | std::vector<OBEdgeBase*>::iterator i; | 
| 3295 |  | 
| 3296 | atom = _mol->GetAtom(_map[src]); | 
| 3297 | for (nbr = atom->BeginNbrAtom(i);nbr;nbr = atom->NextNbrAtom(i)) | 
| 3298 | if (!_uatoms[nbr->GetIdx()] && EvalAtomExpr(aexpr,nbr) && | 
| 3299 | EvalBondExpr(bexpr,((OBBond*) *i))) | 
| 3300 | { | 
| 3301 | _map[dst] = nbr->GetIdx(); | 
| 3302 | _uatoms[nbr->GetIdx()] = true; | 
| 3303 | Match(mlist,bidx+1); | 
| 3304 | _uatoms[nbr->GetIdx()] = false; | 
| 3305 | _map[dst] = 0; | 
| 3306 | } | 
| 3307 | } | 
| 3308 | else //just check bond here | 
| 3309 | { | 
| 3310 | OBBond *bond = _mol->GetBond(_map[_pat->bond[bidx].src], | 
| 3311 | _map[_pat->bond[bidx].dst]); | 
| 3312 | if (bond && EvalBondExpr(_pat->bond[bidx].expr,bond)) | 
| 3313 | Match(mlist,bidx+1); | 
| 3314 | } | 
| 3315 | } | 
| 3316 |  | 
| 3317 | static int GetExprOrder(BondExpr *expr) | 
| 3318 | { | 
| 3319 | int size=0; | 
| 3320 | BondExpr *stack[15]; | 
| 3321 | memset(stack,'\0',sizeof(AtomExpr*)*15); | 
| 3322 | bool lftest=true; | 
| 3323 |  | 
| 3324 | for (size=0,stack[size] = expr;size >= 0;expr=stack[size]) | 
| 3325 | switch( expr->type ) | 
| 3326 | { | 
| 3327 | case(BE_LEAF): | 
| 3328 |  | 
| 3329 | if( expr->leaf.prop == BL_CONST ) | 
| 3330 | lftest = true; | 
| 3331 | else /* expr->leaf.prop == BL_TYPE */ | 
| 3332 | switch( expr->leaf.value ) | 
| 3333 | { | 
| 3334 | case(BT_SINGLE):    return(1); | 
| 3335 | case(BT_DOUBLE):    return(2); | 
| 3336 | case(BT_TRIPLE):    return(3); | 
| 3337 | case(BT_AROM):      return(5); | 
| 3338 | default: | 
| 3339 | lftest = true; | 
| 3340 | } | 
| 3341 | size--; | 
| 3342 | break; | 
| 3343 |  | 
| 3344 | case(BE_NOT):    return(0); | 
| 3345 | case(BE_ANDHI): | 
| 3346 | case(BE_ANDLO): | 
| 3347 | case(BE_OR): | 
| 3348 | if (stack[size+1] == expr->bin.rgt) | 
| 3349 | size--; | 
| 3350 | else if (stack[size+1] == expr->bin.lft) | 
| 3351 | { | 
| 3352 | if (lftest) | 
| 3353 | { | 
| 3354 | size++; | 
| 3355 | stack[size] = expr->bin.rgt; | 
| 3356 | } | 
| 3357 | else | 
| 3358 | size--; | 
| 3359 | } | 
| 3360 | else | 
| 3361 | { | 
| 3362 | size++; | 
| 3363 | stack[size] = expr->bin.lft; | 
| 3364 | } | 
| 3365 | break; | 
| 3366 | } | 
| 3367 |  | 
| 3368 | return(0); | 
| 3369 | } | 
| 3370 |  | 
| 3371 | int OBSmartsPattern::GetCharge(int idx) | 
| 3372 | { | 
| 3373 | AtomExpr *expr = _pat->atom[idx].expr; | 
| 3374 |  | 
| 3375 | int size=0; | 
| 3376 | AtomExpr *stack[15]; | 
| 3377 | memset(stack,'\0',sizeof(AtomExpr*)*15); | 
| 3378 | bool lftest=true; | 
| 3379 |  | 
| 3380 | for (size=0,stack[size] = expr;size >= 0;expr=stack[size]) | 
| 3381 | { | 
| 3382 | switch (expr->type) | 
| 3383 | { | 
| 3384 | case AE_LEAF: | 
| 3385 | switch( expr->leaf.prop ) | 
| 3386 | { | 
| 3387 | case AL_NEGATIVE: | 
| 3388 | return(-1*(int)expr->leaf.value); | 
| 3389 | case AL_POSITIVE: | 
| 3390 | return((int)expr->leaf.value); | 
| 3391 | default: | 
| 3392 | lftest=true; | 
| 3393 | } | 
| 3394 | size--; | 
| 3395 | break; | 
| 3396 |  | 
| 3397 | case AE_OR: | 
| 3398 | case AE_ANDHI: | 
| 3399 | case AE_ANDLO: | 
| 3400 |  | 
| 3401 | if (stack[size+1] == expr->bin.rgt) | 
| 3402 | size--; | 
| 3403 | else if (stack[size+1] == expr->bin.lft) | 
| 3404 | { | 
| 3405 | if (lftest) | 
| 3406 | { | 
| 3407 | size++; | 
| 3408 | stack[size] = expr->bin.rgt; | 
| 3409 | } | 
| 3410 | else | 
| 3411 | size--; | 
| 3412 | } | 
| 3413 | else | 
| 3414 | { | 
| 3415 | size++; | 
| 3416 | stack[size] = expr->bin.lft; | 
| 3417 | } | 
| 3418 | break; | 
| 3419 |  | 
| 3420 | case AE_NOT: | 
| 3421 | return(0); | 
| 3422 | case AE_RECUR: | 
| 3423 | return(0); | 
| 3424 | } | 
| 3425 | } | 
| 3426 |  | 
| 3427 | return(0); | 
| 3428 | } | 
| 3429 |  | 
| 3430 | int OBSmartsPattern::GetAtomicNum(int idx) | 
| 3431 | { | 
| 3432 | AtomExpr *expr = _pat->atom[idx].expr; | 
| 3433 |  | 
| 3434 | int size=0; | 
| 3435 | AtomExpr *stack[15]; | 
| 3436 | memset(stack,'\0',sizeof(AtomExpr*)*15); | 
| 3437 | bool lftest=true; | 
| 3438 |  | 
| 3439 | for (size=0,stack[size] = expr;size >= 0;expr=stack[size]) | 
| 3440 | { | 
| 3441 | switch (expr->type) | 
| 3442 | { | 
| 3443 | case AE_LEAF: | 
| 3444 | if ( expr->leaf.prop == AL_ELEM) | 
| 3445 | return(expr->leaf.value); | 
| 3446 | lftest = true; | 
| 3447 | size--; | 
| 3448 | break; | 
| 3449 |  | 
| 3450 | case AE_OR: | 
| 3451 | case AE_ANDHI: | 
| 3452 | case AE_ANDLO: | 
| 3453 |  | 
| 3454 | if (stack[size+1] == expr->bin.rgt) | 
| 3455 | size--; | 
| 3456 | else if (stack[size+1] == expr->bin.lft) | 
| 3457 | { | 
| 3458 | if (lftest) | 
| 3459 | { | 
| 3460 | size++; | 
| 3461 | stack[size] = expr->bin.rgt; | 
| 3462 | } | 
| 3463 | else | 
| 3464 | size--; | 
| 3465 | } | 
| 3466 | else | 
| 3467 | { | 
| 3468 | size++; | 
| 3469 | stack[size] = expr->bin.lft; | 
| 3470 | } | 
| 3471 | break; | 
| 3472 |  | 
| 3473 | case AE_NOT: | 
| 3474 | return(0); | 
| 3475 | case AE_RECUR: | 
| 3476 | return(0); | 
| 3477 | } | 
| 3478 | } | 
| 3479 |  | 
| 3480 | return(0); | 
| 3481 | } | 
| 3482 |  | 
| 3483 | void OBSmartsPattern::GetBond(int &src,int &dst,int &ord,int idx) | 
| 3484 | { | 
| 3485 | src = _pat->bond[idx].src; | 
| 3486 | dst = _pat->bond[idx].dst; | 
| 3487 | ord = GetExprOrder(_pat->bond[idx].expr); | 
| 3488 | } | 
| 3489 |  | 
| 3490 | void SmartsLexReplace(std::string &s,std::vector<std::pair<std::string,std::string> > &vlex) | 
| 3491 | { | 
| 3492 | size_t j,pos; | 
| 3493 | std::string token,repstr; | 
| 3494 | std::vector<std::pair<std::string,std::string> >::iterator i; | 
| 3495 |  | 
| 3496 | for (pos = 0,pos = s.find("$",pos);pos < s.size();pos = s.find("$",pos)) | 
| 3497 | //for (pos = 0,pos = s.find("$",pos);pos != std::string::npos;pos = s.find("$",pos)) | 
| 3498 | { | 
| 3499 | pos++; | 
| 3500 | for (j = pos;j < s.size();j++) | 
| 3501 | if (!isalpha(s[j]) && !isdigit(s[j]) && s[j] != '_') | 
| 3502 | break; | 
| 3503 | if (pos == j) | 
| 3504 | continue; | 
| 3505 |  | 
| 3506 | token = s.substr(pos,j-pos); | 
| 3507 | for (i = vlex.begin();i != vlex.end();i++) | 
| 3508 | if (token == i->first) | 
| 3509 | { | 
| 3510 | repstr = "(" + i->second + ")"; | 
| 3511 | s.replace(pos,j-pos,repstr); | 
| 3512 | j = 0; | 
| 3513 | } | 
| 3514 | pos = j; | 
| 3515 | } | 
| 3516 | } | 
| 3517 |  | 
| 3518 | } // end namespace OpenBabel | 
| 3519 |  | 
| 3520 | //! \file parsmart.cpp | 
| 3521 | //! \brief Implementation of Daylight SMARTS parser. |