4 ** The author disclaims copyright to this source code. In place of
5 ** a legal notice, here is a blessing:
7 ** May you do good and not evil.
8 ** May you find forgiveness for yourself and forgive others.
9 ** May you share freely, never taking more than you give.
11 *************************************************************************
12 ** Implementation of the full-text-search tokenizer that implements
17 ** The code in this file is only compiled if:
19 ** * The FTS1 module is being built as an extension
20 ** (in which case SQLITE_CORE is not defined), or
22 ** * The FTS1 module is being built into the core of
23 ** SQLite (in which case SQLITE_ENABLE_FTS1 is defined).
25 #if !defined(SQLITE_CORE) || defined(SQLITE_ENABLE_FTS1)
34 #include "fts1_tokenizer.h"
37 ** Class derived from sqlite3_tokenizer
39 typedef struct porter_tokenizer
{
40 sqlite3_tokenizer base
; /* Base class */
44 ** Class derived from sqlit3_tokenizer_cursor
46 typedef struct porter_tokenizer_cursor
{
47 sqlite3_tokenizer_cursor base
;
48 const char *zInput
; /* input we are tokenizing */
49 int nInput
; /* size of the input */
50 int iOffset
; /* current position in zInput */
51 int iToken
; /* index of next token to be returned */
52 char *zToken
; /* storage for current token */
53 int nAllocated
; /* space allocated to zToken buffer */
54 } porter_tokenizer_cursor
;
57 /* Forward declaration */
58 static const sqlite3_tokenizer_module porterTokenizerModule
;
62 ** Create a new tokenizer instance.
64 static int porterCreate(
65 int argc
, const char * const *argv
,
66 sqlite3_tokenizer
**ppTokenizer
69 t
= (porter_tokenizer
*) calloc(sizeof(*t
), 1);
70 if( t
==NULL
) return SQLITE_NOMEM
;
72 *ppTokenizer
= &t
->base
;
77 ** Destroy a tokenizer
79 static int porterDestroy(sqlite3_tokenizer
*pTokenizer
){
85 ** Prepare to begin tokenizing a particular string. The input
86 ** string to be tokenized is zInput[0..nInput-1]. A cursor
87 ** used to incrementally tokenize this string is returned in
90 static int porterOpen(
91 sqlite3_tokenizer
*pTokenizer
, /* The tokenizer */
92 const char *zInput
, int nInput
, /* String to be tokenized */
93 sqlite3_tokenizer_cursor
**ppCursor
/* OUT: Tokenization cursor */
95 porter_tokenizer_cursor
*c
;
97 c
= (porter_tokenizer_cursor
*) malloc(sizeof(*c
));
98 if( c
==NULL
) return SQLITE_NOMEM
;
103 }else if( nInput
<0 ){
104 c
->nInput
= (int)strlen(zInput
);
108 c
->iOffset
= 0; /* start tokenizing at the beginning */
110 c
->zToken
= NULL
; /* no space allocated, yet. */
113 *ppCursor
= &c
->base
;
118 ** Close a tokenization cursor previously opened by a call to
119 ** porterOpen() above.
121 static int porterClose(sqlite3_tokenizer_cursor
*pCursor
){
122 porter_tokenizer_cursor
*c
= (porter_tokenizer_cursor
*) pCursor
;
128 ** Vowel or consonant
130 static const char cType
[] = {
131 0, 1, 1, 1, 0, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0, 1, 1, 1, 1, 1, 0,
136 ** isConsonant() and isVowel() determine if their first character in
137 ** the string they point to is a consonant or a vowel, according
140 ** A consonate is any letter other than 'a', 'e', 'i', 'o', or 'u'.
141 ** 'Y' is a consonant unless it follows another consonant,
142 ** in which case it is a vowel.
144 ** In these routine, the letters are in reverse order. So the 'y' rule
145 ** is that 'y' is a consonant unless it is followed by another
148 static int isVowel(const char*);
149 static int isConsonant(const char *z
){
153 assert( x
>='a' && x
<='z' );
156 return z
[1]==0 || isVowel(z
+ 1);
158 static int isVowel(const char *z
){
162 assert( x
>='a' && x
<='z' );
164 if( j
<2 ) return 1-j
;
165 return isConsonant(z
+ 1);
169 ** Let any sequence of one or more vowels be represented by V and let
170 ** C be sequence of one or more consonants. Then every word can be
175 ** In prose: A word is an optional consonant followed by zero or
176 ** vowel-consonant pairs followed by an optional vowel. "m" is the
177 ** number of vowel consonant pairs. This routine computes the value
178 ** of m for the first i bytes of a word.
180 ** Return true if the m-value for z is 1 or more. In other words,
181 ** return true if z contains at least one vowel that is followed
184 ** In this routine z[] is in reverse order. So we are really looking
185 ** for an instance of of a consonant followed by a vowel.
187 static int m_gt_0(const char *z
){
188 while( isVowel(z
) ){ z
++; }
189 if( *z
==0 ) return 0;
190 while( isConsonant(z
) ){ z
++; }
194 /* Like mgt0 above except we are looking for a value of m which is
197 static int m_eq_1(const char *z
){
198 while( isVowel(z
) ){ z
++; }
199 if( *z
==0 ) return 0;
200 while( isConsonant(z
) ){ z
++; }
201 if( *z
==0 ) return 0;
202 while( isVowel(z
) ){ z
++; }
203 if( *z
==0 ) return 1;
204 while( isConsonant(z
) ){ z
++; }
208 /* Like mgt0 above except we are looking for a value of m>1 instead
211 static int m_gt_1(const char *z
){
212 while( isVowel(z
) ){ z
++; }
213 if( *z
==0 ) return 0;
214 while( isConsonant(z
) ){ z
++; }
215 if( *z
==0 ) return 0;
216 while( isVowel(z
) ){ z
++; }
217 if( *z
==0 ) return 0;
218 while( isConsonant(z
) ){ z
++; }
223 ** Return TRUE if there is a vowel anywhere within z[0..n-1]
225 static int hasVowel(const char *z
){
226 while( isConsonant(z
) ){ z
++; }
231 ** Return TRUE if the word ends in a double consonant.
233 ** The text is reversed here. So we are really looking at
234 ** the first two characters of z[].
236 static int doubleConsonant(const char *z
){
237 return isConsonant(z
) && z
[0]==z
[1] && isConsonant(z
+1);
241 ** Return TRUE if the word ends with three letters which
242 ** are consonant-vowel-consonent and where the final consonant
243 ** is not 'w', 'x', or 'y'.
245 ** The word is reversed here. So we are really checking the
246 ** first three letters and the first one cannot be in [wxy].
248 static int star_oh(const char *z
){
250 z
[0]!=0 && isConsonant(z
) &&
251 z
[0]!='w' && z
[0]!='x' && z
[0]!='y' &&
252 z
[1]!=0 && isVowel(z
+1) &&
253 z
[2]!=0 && isConsonant(z
+2);
257 ** If the word ends with zFrom and xCond() is true for the stem
258 ** of the word that preceeds the zFrom ending, then change the
261 ** The input word *pz and zFrom are both in reverse order. zTo
262 ** is in normal order.
264 ** Return TRUE if zFrom matches. Return FALSE if zFrom does not
265 ** match. Not that TRUE is returned even if xCond() fails and
266 ** no substitution occurs.
269 char **pz
, /* The word being stemmed (Reversed) */
270 const char *zFrom
, /* If the ending matches this... (Reversed) */
271 const char *zTo
, /* ... change the ending to this (not reversed) */
272 int (*xCond
)(const char*) /* Condition that must be true */
275 while( *zFrom
&& *zFrom
==*z
){ z
++; zFrom
++; }
276 if( *zFrom
!=0 ) return 0;
277 if( xCond
&& !xCond(z
) ) return 1;
286 ** This is the fallback stemmer used when the porter stemmer is
287 ** inappropriate. The input word is copied into the output with
288 ** US-ASCII case folding. If the input word is too long (more
289 ** than 20 bytes if it contains no digits or more than 6 bytes if
290 ** it contains digits) then word is truncated to 20 or 6 bytes
291 ** by taking 10 or 3 bytes from the beginning and end.
293 static void copy_stemmer(const char *zIn
, int nIn
, char *zOut
, int *pnOut
){
296 for(i
=0; i
<nIn
; i
++){
298 if( c
>='A' && c
<='Z' ){
299 zOut
[i
] = c
- 'A' + 'a';
301 if( c
>='0' && c
<='9' ) hasDigit
= 1;
305 mx
= hasDigit
? 3 : 10;
307 for(j
=mx
, i
=nIn
-mx
; i
<nIn
; i
++, j
++){
318 ** Stem the input word zIn[0..nIn-1]. Store the output in zOut.
319 ** zOut is at least big enough to hold nIn bytes. Write the actual
320 ** size of the output word (exclusive of the '\0' terminator) into *pnOut.
322 ** Any upper-case characters in the US-ASCII character set ([A-Z])
323 ** are converted to lower case. Upper-case UTF characters are
326 ** Words that are longer than about 20 bytes are stemmed by retaining
327 ** a few bytes from the beginning and the end of the word. If the
328 ** word contains digits, 3 bytes are taken from the beginning and
329 ** 3 bytes from the end. For long words without digits, 10 bytes
330 ** are taken from each end. US-ASCII case folding still applies.
332 ** If the input word contains not digits but does characters not
333 ** in [a-zA-Z] then no stemming is attempted and this routine just
334 ** copies the input into the input into the output with US-ASCII
337 ** Stemming never increases the length of the word. So there is
338 ** no chance of overflowing the zOut buffer.
340 static void porter_stemmer(const char *zIn
, int nIn
, char *zOut
, int *pnOut
){
344 if( nIn
<3 || nIn
>=sizeof(zReverse
)-7 ){
345 /* The word is too big or too small for the porter stemmer.
346 ** Fallback to the copy stemmer */
347 copy_stemmer(zIn
, nIn
, zOut
, pnOut
);
350 for(i
=0, j
=sizeof(zReverse
)-6; i
<nIn
; i
++, j
--){
352 if( c
>='A' && c
<='Z' ){
353 zReverse
[j
] = c
+ 'a' - 'A';
354 }else if( c
>='a' && c
<='z' ){
357 /* The use of a character not in [a-zA-Z] means that we fallback
358 ** to the copy stemmer */
359 copy_stemmer(zIn
, nIn
, zOut
, pnOut
);
363 memset(&zReverse
[sizeof(zReverse
)-5], 0, 5);
370 !stem(&z
, "sess", "ss", 0) &&
371 !stem(&z
, "sei", "i", 0) &&
372 !stem(&z
, "ss", "ss", 0)
380 if( stem(&z
, "dee", "ee", m_gt_0
) ){
381 /* Do nothing. The work was all in the test */
383 (stem(&z
, "gni", "", hasVowel
) || stem(&z
, "de", "", hasVowel
))
386 if( stem(&z
, "ta", "ate", 0) ||
387 stem(&z
, "lb", "ble", 0) ||
388 stem(&z
, "zi", "ize", 0) ){
389 /* Do nothing. The work was all in the test */
390 }else if( doubleConsonant(z
) && (*z
!='l' && *z
!='s' && *z
!='z') ){
392 }else if( m_eq_1(z
) && star_oh(z
) ){
398 if( z
[0]=='y' && hasVowel(z
+1) ){
405 stem(&z
, "lanoita", "ate", m_gt_0
) ||
406 stem(&z
, "lanoit", "tion", m_gt_0
);
409 stem(&z
, "icne", "ence", m_gt_0
) ||
410 stem(&z
, "icna", "ance", m_gt_0
);
413 stem(&z
, "rezi", "ize", m_gt_0
);
416 stem(&z
, "igol", "log", m_gt_0
);
419 stem(&z
, "ilb", "ble", m_gt_0
) ||
420 stem(&z
, "illa", "al", m_gt_0
) ||
421 stem(&z
, "iltne", "ent", m_gt_0
) ||
422 stem(&z
, "ile", "e", m_gt_0
) ||
423 stem(&z
, "ilsuo", "ous", m_gt_0
);
426 stem(&z
, "noitazi", "ize", m_gt_0
) ||
427 stem(&z
, "noita", "ate", m_gt_0
) ||
428 stem(&z
, "rota", "ate", m_gt_0
);
431 stem(&z
, "msila", "al", m_gt_0
) ||
432 stem(&z
, "ssenevi", "ive", m_gt_0
) ||
433 stem(&z
, "ssenluf", "ful", m_gt_0
) ||
434 stem(&z
, "ssensuo", "ous", m_gt_0
);
437 stem(&z
, "itila", "al", m_gt_0
) ||
438 stem(&z
, "itivi", "ive", m_gt_0
) ||
439 stem(&z
, "itilib", "ble", m_gt_0
);
446 stem(&z
, "etaci", "ic", m_gt_0
) ||
447 stem(&z
, "evita", "", m_gt_0
) ||
448 stem(&z
, "ezila", "al", m_gt_0
);
451 stem(&z
, "itici", "ic", m_gt_0
);
454 stem(&z
, "laci", "ic", m_gt_0
) ||
455 stem(&z
, "luf", "", m_gt_0
);
458 stem(&z
, "ssen", "", m_gt_0
);
465 if( z
[0]=='l' && m_gt_1(z
+2) ){
470 if( z
[0]=='e' && z
[2]=='n' && (z
[3]=='a' || z
[3]=='e') && m_gt_1(z
+4) ){
475 if( z
[0]=='r' && m_gt_1(z
+2) ){
480 if( z
[0]=='c' && m_gt_1(z
+2) ){
485 if( z
[0]=='e' && z
[2]=='b' && (z
[3]=='a' || z
[3]=='i') && m_gt_1(z
+4) ){
495 }else if( z
[2]=='e' ){
496 stem(&z
, "tneme", "", m_gt_1
) ||
497 stem(&z
, "tnem", "", m_gt_1
) ||
498 stem(&z
, "tne", "", m_gt_1
);
507 }else if( z
[3]=='s' || z
[3]=='t' ){
508 stem(&z
, "noi", "", m_gt_1
);
512 if( z
[0]=='m' && z
[2]=='i' && m_gt_1(z
+3) ){
517 stem(&z
, "eta", "", m_gt_1
) ||
518 stem(&z
, "iti", "", m_gt_1
);
521 if( z
[0]=='s' && z
[2]=='o' && m_gt_1(z
+3) ){
527 if( z
[0]=='e' && z
[2]=='i' && m_gt_1(z
+3) ){
537 }else if( m_eq_1(z
+1) && !star_oh(z
+1) ){
543 if( m_gt_1(z
) && z
[0]=='l' && z
[1]=='l' ){
547 /* z[] is now the stemmed word in reverse order. Flip it back
548 ** around into forward order and return.
550 *pnOut
= i
= strlen(z
);
558 ** Characters that can be part of a token. We assume any character
559 ** whose value is greater than 0x80 (any UTF character) can be
560 ** part of a token. In other words, delimiters all must have
561 ** values of 0x7f or lower.
563 static const char isIdChar
[] = {
564 /* x0 x1 x2 x3 x4 x5 x6 x7 x8 x9 xA xB xC xD xE xF */
565 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0, 0, /* 3x */
566 0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 4x */
567 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 1, /* 5x */
568 0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* 6x */
569 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0, /* 7x */
571 #define idChar(C) (((ch=C)&0x80)!=0 || (ch>0x2f && isIdChar[ch-0x30]))
572 #define isDelim(C) (((ch=C)&0x80)==0 && (ch<0x30 || !isIdChar[ch-0x30]))
575 ** Extract the next token from a tokenization cursor. The cursor must
576 ** have been opened by a prior call to porterOpen().
578 static int porterNext(
579 sqlite3_tokenizer_cursor
*pCursor
, /* Cursor returned by porterOpen */
580 const char **pzToken
, /* OUT: *pzToken is the token text */
581 int *pnBytes
, /* OUT: Number of bytes in token */
582 int *piStartOffset
, /* OUT: Starting offset of token */
583 int *piEndOffset
, /* OUT: Ending offset of token */
584 int *piPosition
/* OUT: Position integer of token */
586 porter_tokenizer_cursor
*c
= (porter_tokenizer_cursor
*) pCursor
;
587 const char *z
= c
->zInput
;
589 while( c
->iOffset
<c
->nInput
){
590 int iStartOffset
, ch
;
592 /* Scan past delimiter characters */
593 while( c
->iOffset
<c
->nInput
&& isDelim(z
[c
->iOffset
]) ){
597 /* Count non-delimiter characters. */
598 iStartOffset
= c
->iOffset
;
599 while( c
->iOffset
<c
->nInput
&& !isDelim(z
[c
->iOffset
]) ){
603 if( c
->iOffset
>iStartOffset
){
604 int n
= c
->iOffset
-iStartOffset
;
605 if( n
>c
->nAllocated
){
606 c
->nAllocated
= n
+20;
607 c
->zToken
= realloc(c
->zToken
, c
->nAllocated
);
608 if( c
->zToken
==NULL
) return SQLITE_NOMEM
;
610 porter_stemmer(&z
[iStartOffset
], n
, c
->zToken
, pnBytes
);
611 *pzToken
= c
->zToken
;
612 *piStartOffset
= iStartOffset
;
613 *piEndOffset
= c
->iOffset
;
614 *piPosition
= c
->iToken
++;
622 ** The set of routines that implement the porter-stemmer tokenizer
624 static const sqlite3_tokenizer_module porterTokenizerModule
= {
634 ** Allocate a new porter tokenizer. Return a pointer to the new
635 ** tokenizer in *ppModule
637 void sqlite3Fts1PorterTokenizerModule(
638 sqlite3_tokenizer_module
const**ppModule
640 *ppModule
= &porterTokenizerModule
;
643 #endif /* !defined(SQLITE_CORE) || defined(SQLITE_ENABLE_FTS1) */