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satok30088252010-12-01 21:22:15 +09001/*
2**
3** Copyright 2010, The Android Open Source Project
4**
5** Licensed under the Apache License, Version 2.0 (the "License");
6** you may not use this file except in compliance with the License.
7** You may obtain a copy of the License at
8**
9** http://www.apache.org/licenses/LICENSE-2.0
10**
11** Unless required by applicable law or agreed to in writing, software
12** distributed under the License is distributed on an "AS IS" BASIS,
13** WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
14** See the License for the specific language governing permissions and
15** limitations under the License.
16*/
17
satok48e432c2010-12-06 17:38:58 +090018#include <assert.h>
satok30088252010-12-01 21:22:15 +090019#include <string.h>
20
satoke808e432010-12-02 14:53:24 +090021#define LOG_TAG "LatinIME: unigram_dictionary.cpp"
satok30088252010-12-01 21:22:15 +090022
satok30088252010-12-01 21:22:15 +090023#include "char_utils.h"
satoke808e432010-12-02 14:53:24 +090024#include "dictionary.h"
25#include "unigram_dictionary.h"
satok30088252010-12-01 21:22:15 +090026
Jean Chalard1059f272011-06-28 20:45:05 +090027#include "binary_format.h"
Jean Chalard1059f272011-06-28 20:45:05 +090028
satok30088252010-12-01 21:22:15 +090029namespace latinime {
30
Jean Chalardc2bbc6a2011-02-25 17:56:53 +090031const UnigramDictionary::digraph_t UnigramDictionary::GERMAN_UMLAUT_DIGRAPHS[] =
32 { { 'a', 'e' },
33 { 'o', 'e' },
34 { 'u', 'e' } };
35
Jean Chalard293ece02011-06-16 20:55:16 +090036// TODO: check the header
37UnigramDictionary::UnigramDictionary(const uint8_t* const streamStart, int typedLetterMultiplier,
satok662fe692010-12-08 17:05:39 +090038 int fullWordMultiplier, int maxWordLength, int maxWords, int maxProximityChars,
satok18c28f42010-12-02 18:11:54 +090039 const bool isLatestDictVersion)
Jean Chalard1059f272011-06-28 20:45:05 +090040 : DICT_ROOT(streamStart + NEW_DICTIONARY_HEADER_SIZE),
Jean Chalard293ece02011-06-16 20:55:16 +090041 MAX_WORD_LENGTH(maxWordLength), MAX_WORDS(maxWords),
satok662fe692010-12-08 17:05:39 +090042 MAX_PROXIMITY_CHARS(maxProximityChars), IS_LATEST_DICT_VERSION(isLatestDictVersion),
43 TYPED_LETTER_MULTIPLIER(typedLetterMultiplier), FULL_WORD_MULTIPLIER(fullWordMultiplier),
Jean Chalard1059f272011-06-28 20:45:05 +090044 // TODO : remove this variable.
45 ROOT_POS(0),
satok1d7eaf82011-07-13 10:32:02 +090046 BYTES_IN_ONE_CHAR(MAX_PROXIMITY_CHARS * sizeof(int)),
Jean Chalarda787dba2011-03-04 12:17:48 +090047 MAX_UMLAUT_SEARCH_DEPTH(DEFAULT_MAX_UMLAUT_SEARCH_DEPTH) {
Ken Wakasade3070a2011-03-19 09:16:42 +090048 if (DEBUG_DICT) {
49 LOGI("UnigramDictionary - constructor");
50 }
satok612c6e42011-08-01 19:35:27 +090051 mCorrectionState = new CorrectionState(typedLetterMultiplier, fullWordMultiplier);
satok30088252010-12-01 21:22:15 +090052}
53
satok2df30602011-07-15 13:49:00 +090054UnigramDictionary::~UnigramDictionary() {
55 delete mCorrectionState;
56}
satok30088252010-12-01 21:22:15 +090057
Jean Chalardc2bbc6a2011-02-25 17:56:53 +090058static inline unsigned int getCodesBufferSize(const int* codes, const int codesSize,
59 const int MAX_PROXIMITY_CHARS) {
60 return sizeof(*codes) * MAX_PROXIMITY_CHARS * codesSize;
61}
62
63bool UnigramDictionary::isDigraph(const int* codes, const int i, const int codesSize) const {
64
65 // There can't be a digraph if we don't have at least 2 characters to examine
66 if (i + 2 > codesSize) return false;
67
68 // Search for the first char of some digraph
69 int lastDigraphIndex = -1;
70 const int thisChar = codes[i * MAX_PROXIMITY_CHARS];
71 for (lastDigraphIndex = sizeof(GERMAN_UMLAUT_DIGRAPHS) / sizeof(GERMAN_UMLAUT_DIGRAPHS[0]) - 1;
72 lastDigraphIndex >= 0; --lastDigraphIndex) {
73 if (thisChar == GERMAN_UMLAUT_DIGRAPHS[lastDigraphIndex].first) break;
74 }
75 // No match: return early
76 if (lastDigraphIndex < 0) return false;
77
78 // It's an interesting digraph if the second char matches too.
79 return GERMAN_UMLAUT_DIGRAPHS[lastDigraphIndex].second == codes[(i + 1) * MAX_PROXIMITY_CHARS];
80}
81
82// Mostly the same arguments as the non-recursive version, except:
83// codes is the original value. It points to the start of the work buffer, and gets passed as is.
84// codesSize is the size of the user input (thus, it is the size of codesSrc).
85// codesDest is the current point in the work buffer.
86// codesSrc is the current point in the user-input, original, content-unmodified buffer.
87// codesRemain is the remaining size in codesSrc.
satok1d7eaf82011-07-13 10:32:02 +090088void UnigramDictionary::getWordWithDigraphSuggestionsRec(ProximityInfo *proximityInfo,
Jean Chalardc2bbc6a2011-02-25 17:56:53 +090089 const int *xcoordinates, const int* ycoordinates, const int *codesBuffer,
90 const int codesBufferSize, const int flags, const int* codesSrc, const int codesRemain,
satok3c4bb772011-03-04 22:50:19 -080091 const int currentDepth, int* codesDest, unsigned short* outWords, int* frequencies) {
Jean Chalardc2bbc6a2011-02-25 17:56:53 +090092
Jean Chalarda787dba2011-03-04 12:17:48 +090093 if (currentDepth < MAX_UMLAUT_SEARCH_DEPTH) {
94 for (int i = 0; i < codesRemain; ++i) {
95 if (isDigraph(codesSrc, i, codesRemain)) {
96 // Found a digraph. We will try both spellings. eg. the word is "pruefen"
Jean Chalardc2bbc6a2011-02-25 17:56:53 +090097
Jean Chalarda787dba2011-03-04 12:17:48 +090098 // Copy the word up to the first char of the digraph, then continue processing
99 // on the remaining part of the word, skipping the second char of the digraph.
100 // In our example, copy "pru" and continue running on "fen"
101 // Make i the index of the second char of the digraph for simplicity. Forgetting
102 // to do that results in an infinite recursion so take care!
103 ++i;
104 memcpy(codesDest, codesSrc, i * BYTES_IN_ONE_CHAR);
105 getWordWithDigraphSuggestionsRec(proximityInfo, xcoordinates, ycoordinates,
106 codesBuffer, codesBufferSize, flags,
107 codesSrc + (i + 1) * MAX_PROXIMITY_CHARS, codesRemain - i - 1,
108 currentDepth + 1, codesDest + i * MAX_PROXIMITY_CHARS, outWords,
109 frequencies);
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900110
Jean Chalarda787dba2011-03-04 12:17:48 +0900111 // Copy the second char of the digraph in place, then continue processing on
112 // the remaining part of the word.
113 // In our example, after "pru" in the buffer copy the "e", and continue on "fen"
114 memcpy(codesDest + i * MAX_PROXIMITY_CHARS, codesSrc + i * MAX_PROXIMITY_CHARS,
115 BYTES_IN_ONE_CHAR);
116 getWordWithDigraphSuggestionsRec(proximityInfo, xcoordinates, ycoordinates,
117 codesBuffer, codesBufferSize, flags, codesSrc + i * MAX_PROXIMITY_CHARS,
118 codesRemain - i, currentDepth + 1, codesDest + i * MAX_PROXIMITY_CHARS,
119 outWords, frequencies);
120 return;
121 }
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900122 }
123 }
124
125 // If we come here, we hit the end of the word: let's check it against the dictionary.
126 // In our example, we'll come here once for "prufen" and then once for "pruefen".
127 // If the word contains several digraphs, we'll come it for the product of them.
128 // eg. if the word is "ueberpruefen" we'll test, in order, against
129 // "uberprufen", "uberpruefen", "ueberprufen", "ueberpruefen".
130 const unsigned int remainingBytes = BYTES_IN_ONE_CHAR * codesRemain;
131 if (0 != remainingBytes)
132 memcpy(codesDest, codesSrc, remainingBytes);
133
134 getWordSuggestions(proximityInfo, xcoordinates, ycoordinates, codesBuffer,
135 (codesDest - codesBuffer) / MAX_PROXIMITY_CHARS + codesRemain, outWords, frequencies);
136}
137
satok1d7eaf82011-07-13 10:32:02 +0900138int UnigramDictionary::getSuggestions(ProximityInfo *proximityInfo, const int *xcoordinates,
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900139 const int *ycoordinates, const int *codes, const int codesSize, const int flags,
140 unsigned short *outWords, int *frequencies) {
141
142 if (REQUIRES_GERMAN_UMLAUT_PROCESSING & flags)
143 { // Incrementally tune the word and try all possibilities
144 int codesBuffer[getCodesBufferSize(codes, codesSize, MAX_PROXIMITY_CHARS)];
145 getWordWithDigraphSuggestionsRec(proximityInfo, xcoordinates, ycoordinates, codesBuffer,
Jean Chalarda787dba2011-03-04 12:17:48 +0900146 codesSize, flags, codes, codesSize, 0, codesBuffer, outWords, frequencies);
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900147 } else { // Normal processing
148 getWordSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, codesSize,
149 outWords, frequencies);
150 }
151
satok817e5172011-03-04 06:06:45 -0800152 PROF_START(20);
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900153 // Get the word count
154 int suggestedWordsCount = 0;
155 while (suggestedWordsCount < MAX_WORDS && mFrequencies[suggestedWordsCount] > 0) {
156 suggestedWordsCount++;
157 }
158
159 if (DEBUG_DICT) {
160 LOGI("Returning %d words", suggestedWordsCount);
Jean Chalard980d6b62011-06-30 17:02:23 +0900161 /// Print the returned words
162 for (int j = 0; j < suggestedWordsCount; ++j) {
Doug Kwance9efbf2011-07-07 22:53:50 -0700163#ifdef FLAG_DBG
Jean Chalard980d6b62011-06-30 17:02:23 +0900164 short unsigned int* w = mOutputChars + j * MAX_WORD_LENGTH;
165 char s[MAX_WORD_LENGTH];
166 for (int i = 0; i <= MAX_WORD_LENGTH; i++) s[i] = w[i];
167 LOGI("%s %i", s, mFrequencies[j]);
satok787945b2011-07-14 08:32:57 +0900168#endif
Jean Chalard980d6b62011-06-30 17:02:23 +0900169 }
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900170 }
satok817e5172011-03-04 06:06:45 -0800171 PROF_END(20);
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900172 PROF_CLOSE;
173 return suggestedWordsCount;
174}
175
satok1d7eaf82011-07-13 10:32:02 +0900176void UnigramDictionary::getWordSuggestions(ProximityInfo *proximityInfo,
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900177 const int *xcoordinates, const int *ycoordinates, const int *codes, const int codesSize,
178 unsigned short *outWords, int *frequencies) {
179
satok61e2f852011-01-05 14:13:07 +0900180 PROF_OPEN;
181 PROF_START(0);
satok1d7eaf82011-07-13 10:32:02 +0900182 initSuggestions(
183 proximityInfo, xcoordinates, ycoordinates, codes, codesSize, outWords, frequencies);
satok612c6e42011-08-01 19:35:27 +0900184 mCorrectionState->initCorrectionState(mProximityInfo, mInputLength);
satok54fe9e02010-12-13 14:42:35 +0900185 if (DEBUG_DICT) assert(codesSize == mInputLength);
186
satoka3d78f62010-12-09 22:08:33 +0900187 const int MAX_DEPTH = min(mInputLength * MAX_DEPTH_MULTIPLIER, MAX_WORD_LENGTH);
satok61e2f852011-01-05 14:13:07 +0900188 PROF_END(0);
satok30088252010-12-01 21:22:15 +0900189
satok61e2f852011-01-05 14:13:07 +0900190 PROF_START(1);
satok0f6c8e82011-08-03 02:19:44 +0900191 getSuggestionCandidates(-1, -1, -1, MAX_DEPTH);
satok61e2f852011-01-05 14:13:07 +0900192 PROF_END(1);
193
194 PROF_START(2);
satok662fe692010-12-08 17:05:39 +0900195 // Suggestion with missing character
196 if (SUGGEST_WORDS_WITH_MISSING_CHARACTER) {
satok30088252010-12-01 21:22:15 +0900197 for (int i = 0; i < codesSize; ++i) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900198 if (DEBUG_DICT) {
199 LOGI("--- Suggest missing characters %d", i);
200 }
satok0f6c8e82011-08-03 02:19:44 +0900201 getSuggestionCandidates(i, -1, -1, MAX_DEPTH);
satokcdbbea72010-12-08 16:04:16 +0900202 }
203 }
satok61e2f852011-01-05 14:13:07 +0900204 PROF_END(2);
satokcdbbea72010-12-08 16:04:16 +0900205
satok61e2f852011-01-05 14:13:07 +0900206 PROF_START(3);
satok662fe692010-12-08 17:05:39 +0900207 // Suggestion with excessive character
satok54fe9e02010-12-13 14:42:35 +0900208 if (SUGGEST_WORDS_WITH_EXCESSIVE_CHARACTER
209 && mInputLength >= MIN_USER_TYPED_LENGTH_FOR_EXCESSIVE_CHARACTER_SUGGESTION) {
satokcdbbea72010-12-08 16:04:16 +0900210 for (int i = 0; i < codesSize; ++i) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900211 if (DEBUG_DICT) {
212 LOGI("--- Suggest excessive characters %d", i);
213 }
satok0f6c8e82011-08-03 02:19:44 +0900214 getSuggestionCandidates(-1, i, -1, MAX_DEPTH);
satok30088252010-12-01 21:22:15 +0900215 }
216 }
satok61e2f852011-01-05 14:13:07 +0900217 PROF_END(3);
satok30088252010-12-01 21:22:15 +0900218
satok61e2f852011-01-05 14:13:07 +0900219 PROF_START(4);
satoka3d78f62010-12-09 22:08:33 +0900220 // Suggestion with transposed characters
221 // Only suggest words that length is mInputLength
222 if (SUGGEST_WORDS_WITH_TRANSPOSED_CHARACTERS) {
223 for (int i = 0; i < codesSize; ++i) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900224 if (DEBUG_DICT) {
225 LOGI("--- Suggest transposed characters %d", i);
226 }
satok0f6c8e82011-08-03 02:19:44 +0900227 getSuggestionCandidates(-1, -1, i, mInputLength - 1);
satoka3d78f62010-12-09 22:08:33 +0900228 }
229 }
satok61e2f852011-01-05 14:13:07 +0900230 PROF_END(4);
satoka3d78f62010-12-09 22:08:33 +0900231
satok61e2f852011-01-05 14:13:07 +0900232 PROF_START(5);
satok662fe692010-12-08 17:05:39 +0900233 // Suggestions with missing space
satok54fe9e02010-12-13 14:42:35 +0900234 if (SUGGEST_WORDS_WITH_MISSING_SPACE_CHARACTER
235 && mInputLength >= MIN_USER_TYPED_LENGTH_FOR_MISSING_SPACE_SUGGESTION) {
satok662fe692010-12-08 17:05:39 +0900236 for (int i = 1; i < codesSize; ++i) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900237 if (DEBUG_DICT) {
238 LOGI("--- Suggest missing space characters %d", i);
239 }
satok612c6e42011-08-01 19:35:27 +0900240 getMissingSpaceWords(mInputLength, i, mCorrectionState);
satok662fe692010-12-08 17:05:39 +0900241 }
242 }
satok61e2f852011-01-05 14:13:07 +0900243 PROF_END(5);
satok817e5172011-03-04 06:06:45 -0800244
245 PROF_START(6);
Jean Chalarde93b1f222011-06-01 17:12:25 +0900246 if (SUGGEST_WORDS_WITH_SPACE_PROXIMITY && proximityInfo) {
satok817e5172011-03-04 06:06:45 -0800247 // The first and last "mistyped spaces" are taken care of by excessive character handling
248 for (int i = 1; i < codesSize - 1; ++i) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900249 if (DEBUG_DICT) {
250 LOGI("--- Suggest words with proximity space %d", i);
251 }
satok817e5172011-03-04 06:06:45 -0800252 const int x = xcoordinates[i];
253 const int y = ycoordinates[i];
Ken Wakasade3070a2011-03-19 09:16:42 +0900254 if (DEBUG_PROXIMITY_INFO) {
satok817e5172011-03-04 06:06:45 -0800255 LOGI("Input[%d] x = %d, y = %d, has space proximity = %d",
256 i, x, y, proximityInfo->hasSpaceProximity(x, y));
Ken Wakasade3070a2011-03-19 09:16:42 +0900257 }
satok817e5172011-03-04 06:06:45 -0800258 if (proximityInfo->hasSpaceProximity(x, y)) {
satok612c6e42011-08-01 19:35:27 +0900259 getMistypedSpaceWords(mInputLength, i, mCorrectionState);
satok817e5172011-03-04 06:06:45 -0800260 }
satok817e5172011-03-04 06:06:45 -0800261 }
262 }
263 PROF_END(6);
satok30088252010-12-01 21:22:15 +0900264}
265
satok1d7eaf82011-07-13 10:32:02 +0900266void UnigramDictionary::initSuggestions(ProximityInfo *proximityInfo, const int *xcoordinates,
267 const int *ycoordinates, const int *codes, const int codesSize,
Jean Chalardc2bbc6a2011-02-25 17:56:53 +0900268 unsigned short *outWords, int *frequencies) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900269 if (DEBUG_DICT) {
270 LOGI("initSuggest");
271 }
satok30088252010-12-01 21:22:15 +0900272 mFrequencies = frequencies;
273 mOutputChars = outWords;
satok30088252010-12-01 21:22:15 +0900274 mInputLength = codesSize;
275 mMaxEditDistance = mInputLength < 5 ? 2 : mInputLength / 2;
satok1d7eaf82011-07-13 10:32:02 +0900276 proximityInfo->setInputParams(codes, codesSize);
277 mProximityInfo = proximityInfo;
satok30088252010-12-01 21:22:15 +0900278}
279
Jean Chalard8124e642011-06-16 22:33:41 +0900280static inline void registerNextLetter(unsigned short c, int *nextLetters, int nextLettersSize) {
satok30088252010-12-01 21:22:15 +0900281 if (c < nextLettersSize) {
282 nextLetters[c]++;
283 }
284}
285
satok662fe692010-12-08 17:05:39 +0900286// TODO: We need to optimize addWord by using STL or something
Jean Chalardca5ef282011-06-17 15:36:26 +0900287// TODO: This needs to take an const unsigned short* and not tinker with its contents
satok28bd03b2010-12-03 16:39:16 +0900288bool UnigramDictionary::addWord(unsigned short *word, int length, int frequency) {
satok30088252010-12-01 21:22:15 +0900289 word[length] = 0;
satok662fe692010-12-08 17:05:39 +0900290 if (DEBUG_DICT && DEBUG_SHOW_FOUND_WORD) {
Doug Kwance9efbf2011-07-07 22:53:50 -0700291#ifdef FLAG_DBG
satok30088252010-12-01 21:22:15 +0900292 char s[length + 1];
293 for (int i = 0; i <= length; i++) s[i] = word[i];
satok662fe692010-12-08 17:05:39 +0900294 LOGI("Found word = %s, freq = %d", s, frequency);
satok787945b2011-07-14 08:32:57 +0900295#endif
satok30088252010-12-01 21:22:15 +0900296 }
satokf5cded12010-12-06 21:28:24 +0900297 if (length > MAX_WORD_LENGTH) {
Ken Wakasade3070a2011-03-19 09:16:42 +0900298 if (DEBUG_DICT) {
299 LOGI("Exceeded max word length.");
300 }
satokf5cded12010-12-06 21:28:24 +0900301 return false;
302 }
satok30088252010-12-01 21:22:15 +0900303
304 // Find the right insertion point
305 int insertAt = 0;
306 while (insertAt < MAX_WORDS) {
Jean Chalard17e44a72011-06-16 22:51:11 +0900307 // TODO: How should we sort words with the same frequency?
308 if (frequency > mFrequencies[insertAt]) {
satok30088252010-12-01 21:22:15 +0900309 break;
310 }
311 insertAt++;
312 }
313 if (insertAt < MAX_WORDS) {
satokcdbbea72010-12-08 16:04:16 +0900314 if (DEBUG_DICT) {
Doug Kwance9efbf2011-07-07 22:53:50 -0700315#ifdef FLAG_DBG
satokcdbbea72010-12-08 16:04:16 +0900316 char s[length + 1];
317 for (int i = 0; i <= length; i++) s[i] = word[i];
satokb2e5e592011-04-26 14:50:54 +0900318 LOGI("Added word = %s, freq = %d, %d", s, frequency, S_INT_MAX);
satok787945b2011-07-14 08:32:57 +0900319#endif
satokcdbbea72010-12-08 16:04:16 +0900320 }
satok30088252010-12-01 21:22:15 +0900321 memmove((char*) mFrequencies + (insertAt + 1) * sizeof(mFrequencies[0]),
322 (char*) mFrequencies + insertAt * sizeof(mFrequencies[0]),
323 (MAX_WORDS - insertAt - 1) * sizeof(mFrequencies[0]));
324 mFrequencies[insertAt] = frequency;
325 memmove((char*) mOutputChars + (insertAt + 1) * MAX_WORD_LENGTH * sizeof(short),
satok715514d2010-12-02 20:19:59 +0900326 (char*) mOutputChars + insertAt * MAX_WORD_LENGTH * sizeof(short),
satok30088252010-12-01 21:22:15 +0900327 (MAX_WORDS - insertAt - 1) * sizeof(short) * MAX_WORD_LENGTH);
satok715514d2010-12-02 20:19:59 +0900328 unsigned short *dest = mOutputChars + insertAt * MAX_WORD_LENGTH;
satok30088252010-12-01 21:22:15 +0900329 while (length--) {
330 *dest++ = *word++;
331 }
332 *dest = 0; // NULL terminate
Ken Wakasade3070a2011-03-19 09:16:42 +0900333 if (DEBUG_DICT) {
334 LOGI("Added word at %d", insertAt);
335 }
satok30088252010-12-01 21:22:15 +0900336 return true;
337 }
338 return false;
339}
340
satok715514d2010-12-02 20:19:59 +0900341static const char QUOTE = '\'';
satok662fe692010-12-08 17:05:39 +0900342static const char SPACE = ' ';
satok30088252010-12-01 21:22:15 +0900343
satok54fe9e02010-12-13 14:42:35 +0900344void UnigramDictionary::getSuggestionCandidates(const int skipPos,
satok0f6c8e82011-08-03 02:19:44 +0900345 const int excessivePos, const int transposedPos, const int maxDepth) {
satok54fe9e02010-12-13 14:42:35 +0900346 if (DEBUG_DICT) {
347 LOGI("getSuggestionCandidates %d", maxDepth);
348 assert(transposedPos + 1 < mInputLength);
349 assert(excessivePos < mInputLength);
350 assert(missingPos < mInputLength);
351 }
satok612c6e42011-08-01 19:35:27 +0900352 mCorrectionState->setCorrectionParams(skipPos, excessivePos, transposedPos,
353 -1 /* spaceProximityPos */, -1 /* missingSpacePos */);
satok662fe692010-12-08 17:05:39 +0900354 int rootPosition = ROOT_POS;
Jean Chalard980d6b62011-06-30 17:02:23 +0900355 // Get the number of children of root, then increment the position
Jean Chalard293ece02011-06-16 20:55:16 +0900356 int childCount = Dictionary::getCount(DICT_ROOT, &rootPosition);
satokd2997922010-12-07 13:08:39 +0900357 int depth = 0;
358
359 mStackChildCount[0] = childCount;
360 mStackTraverseAll[0] = (mInputLength <= 0);
satokd2997922010-12-07 13:08:39 +0900361 mStackInputIndex[0] = 0;
362 mStackDiffs[0] = 0;
363 mStackSiblingPos[0] = rootPosition;
Jean Chalard17e44a72011-06-16 22:51:11 +0900364 mStackOutputIndex[0] = 0;
satok0f6c8e82011-08-03 02:19:44 +0900365 mStackMatchedCount[0] = 0;
satokd2997922010-12-07 13:08:39 +0900366
satok662fe692010-12-08 17:05:39 +0900367 // Depth first search
satokd2997922010-12-07 13:08:39 +0900368 while (depth >= 0) {
369 if (mStackChildCount[depth] > 0) {
370 --mStackChildCount[depth];
371 bool traverseAllNodes = mStackTraverseAll[depth];
satokd2997922010-12-07 13:08:39 +0900372 int diffs = mStackDiffs[depth];
373 int siblingPos = mStackSiblingPos[depth];
374 int firstChildPos;
satok4e4e74e2011-08-03 23:27:32 +0900375 mCorrectionState->initProcessState(
376 mStackMatchedCount[depth], mStackInputIndex[depth], mStackOutputIndex[depth]);
satok0f6c8e82011-08-03 02:19:44 +0900377
satoka3d78f62010-12-09 22:08:33 +0900378 // depth will never be greater than maxDepth because in that case,
satokd2997922010-12-07 13:08:39 +0900379 // needsToTraverseChildrenNodes should be false
satok4e4e74e2011-08-03 23:27:32 +0900380 const bool needsToTraverseChildrenNodes = processCurrentNode(siblingPos,
381 maxDepth, traverseAllNodes, diffs,
satok0f6c8e82011-08-03 02:19:44 +0900382 mCorrectionState, &childCount,
satok4e4e74e2011-08-03 23:27:32 +0900383 &firstChildPos, &traverseAllNodes, &diffs,
384 &siblingPos);
satok662fe692010-12-08 17:05:39 +0900385 // Update next sibling pos
satokd2997922010-12-07 13:08:39 +0900386 mStackSiblingPos[depth] = siblingPos;
387 if (needsToTraverseChildrenNodes) {
388 // Goes to child node
389 ++depth;
390 mStackChildCount[depth] = childCount;
391 mStackTraverseAll[depth] = traverseAllNodes;
satokd2997922010-12-07 13:08:39 +0900392 mStackDiffs[depth] = diffs;
393 mStackSiblingPos[depth] = firstChildPos;
satok0f6c8e82011-08-03 02:19:44 +0900394
satok4e4e74e2011-08-03 23:27:32 +0900395 mCorrectionState->getProcessState(&mStackMatchedCount[depth],
396 &mStackInputIndex[depth], &mStackOutputIndex[depth]);
satokd2997922010-12-07 13:08:39 +0900397 }
398 } else {
satokcdbbea72010-12-08 16:04:16 +0900399 // Goes to parent sibling node
satokd2997922010-12-07 13:08:39 +0900400 --depth;
401 }
402 }
403}
404
satokb2e5e592011-04-26 14:50:54 +0900405static const int TWO_31ST_DIV_2 = S_INT_MAX / 2;
406inline static void multiplyIntCapped(const int multiplier, int *base) {
407 const int temp = *base;
408 if (temp != S_INT_MAX) {
409 // Branch if multiplier == 2 for the optimization
410 if (multiplier == 2) {
411 *base = TWO_31ST_DIV_2 >= temp ? temp << 1 : S_INT_MAX;
412 } else {
413 const int tempRetval = temp * multiplier;
414 *base = tempRetval >= temp ? tempRetval : S_INT_MAX;
415 }
416 }
417}
418
satok612c6e42011-08-01 19:35:27 +0900419void UnigramDictionary::getMissingSpaceWords(
420 const int inputLength, const int missingSpacePos, CorrectionState *correctionState) {
421 correctionState->setCorrectionParams(-1 /* skipPos */, -1 /* excessivePos */,
422 -1 /* transposedPos */, -1 /* spaceProximityPos */, missingSpacePos);
423 getSplitTwoWordsSuggestion(inputLength, correctionState);
satokb2e5e592011-04-26 14:50:54 +0900424}
425
satok612c6e42011-08-01 19:35:27 +0900426void UnigramDictionary::getMistypedSpaceWords(
427 const int inputLength, const int spaceProximityPos, CorrectionState *correctionState) {
428 correctionState->setCorrectionParams(-1 /* skipPos */, -1 /* excessivePos */,
429 -1 /* transposedPos */, spaceProximityPos, -1 /* missingSpacePos */);
430 getSplitTwoWordsSuggestion(inputLength, correctionState);
satok54fe9e02010-12-13 14:42:35 +0900431}
satoka3d78f62010-12-09 22:08:33 +0900432
satok28bd03b2010-12-03 16:39:16 +0900433inline bool UnigramDictionary::needsToSkipCurrentNode(const unsigned short c,
satok68319262010-12-03 19:38:08 +0900434 const int inputIndex, const int skipPos, const int depth) {
satokd24df432011-07-14 15:43:42 +0900435 const unsigned short userTypedChar = mProximityInfo->getPrimaryCharAt(inputIndex);
satok28bd03b2010-12-03 16:39:16 +0900436 // Skip the ' or other letter and continue deeper
437 return (c == QUOTE && userTypedChar != QUOTE) || skipPos == depth;
438}
439
satok28bd03b2010-12-03 16:39:16 +0900440
satok4e4e74e2011-08-03 23:27:32 +0900441inline void UnigramDictionary::onTerminal(
442 unsigned short int* word, const int freq, CorrectionState *correctionState) {
443 const int finalFreq = correctionState->getFinalFreq(word, freq);
444 if (finalFreq >= 0) {
445 addWord(word, correctionState->getOutputIndex() + 1, finalFreq);
Jean Chalardca5ef282011-06-17 15:36:26 +0900446 }
447}
448
satok612c6e42011-08-01 19:35:27 +0900449void UnigramDictionary::getSplitTwoWordsSuggestion(
450 const int inputLength, CorrectionState* correctionState) {
451 const int spaceProximityPos = correctionState->getSpaceProximityPos();
452 const int missingSpacePos = correctionState->getMissingSpacePos();
453 if (DEBUG_DICT) {
454 int inputCount = 0;
455 if (spaceProximityPos >= 0) ++inputCount;
456 if (missingSpacePos >= 0) ++inputCount;
457 assert(inputCount <= 1);
458 }
459 const bool isSpaceProximity = spaceProximityPos >= 0;
460 const int firstWordStartPos = 0;
461 const int secondWordStartPos = isSpaceProximity ? (spaceProximityPos + 1) : missingSpacePos;
462 const int firstWordLength = isSpaceProximity ? spaceProximityPos : missingSpacePos;
463 const int secondWordLength = isSpaceProximity
464 ? (inputLength - spaceProximityPos - 1)
465 : (inputLength - missingSpacePos);
466
467 if (inputLength >= MAX_WORD_LENGTH) return;
Jean Chalarde6715e32011-06-30 19:47:25 +0900468 if (0 >= firstWordLength || 0 >= secondWordLength || firstWordStartPos >= secondWordStartPos
469 || firstWordStartPos < 0 || secondWordStartPos + secondWordLength > inputLength)
satok612c6e42011-08-01 19:35:27 +0900470 return;
471
Jean Chalarde6715e32011-06-30 19:47:25 +0900472 const int newWordLength = firstWordLength + secondWordLength + 1;
473 // Allocating variable length array on stack
474 unsigned short word[newWordLength];
475 const int firstFreq = getMostFrequentWordLike(firstWordStartPos, firstWordLength, mWord);
476 if (DEBUG_DICT) {
477 LOGI("First freq: %d", firstFreq);
478 }
satok612c6e42011-08-01 19:35:27 +0900479 if (firstFreq <= 0) return;
Jean Chalarde6715e32011-06-30 19:47:25 +0900480
481 for (int i = 0; i < firstWordLength; ++i) {
482 word[i] = mWord[i];
483 }
484
485 const int secondFreq = getMostFrequentWordLike(secondWordStartPos, secondWordLength, mWord);
486 if (DEBUG_DICT) {
487 LOGI("Second freq: %d", secondFreq);
488 }
satok612c6e42011-08-01 19:35:27 +0900489 if (secondFreq <= 0) return;
Jean Chalarde6715e32011-06-30 19:47:25 +0900490
491 word[firstWordLength] = SPACE;
492 for (int i = (firstWordLength + 1); i < newWordLength; ++i) {
493 word[i] = mWord[i - firstWordLength - 1];
494 }
495
satok612c6e42011-08-01 19:35:27 +0900496 const int pairFreq = mCorrectionState->getFreqForSplitTwoWords(firstFreq, secondFreq);
Jean Chalarde6715e32011-06-30 19:47:25 +0900497 if (DEBUG_DICT) {
satok612c6e42011-08-01 19:35:27 +0900498 LOGI("Split two words: %d, %d, %d, %d", firstFreq, secondFreq, pairFreq, inputLength);
Jean Chalarde6715e32011-06-30 19:47:25 +0900499 }
500 addWord(word, newWordLength, pairFreq);
satok612c6e42011-08-01 19:35:27 +0900501 return;
Jean Chalarde6715e32011-06-30 19:47:25 +0900502}
503
Jean Chalard1059f272011-06-28 20:45:05 +0900504// Wrapper for getMostFrequentWordLikeInner, which matches it to the previous
505// interface.
506inline int UnigramDictionary::getMostFrequentWordLike(const int startInputIndex,
507 const int inputLength, unsigned short *word) {
508 uint16_t inWord[inputLength];
509
510 for (int i = 0; i < inputLength; ++i) {
satokd24df432011-07-14 15:43:42 +0900511 inWord[i] = (uint16_t)mProximityInfo->getPrimaryCharAt(startInputIndex + i);
Jean Chalard1059f272011-06-28 20:45:05 +0900512 }
513 return getMostFrequentWordLikeInner(inWord, inputLength, word);
514}
515
516// This function will take the position of a character array within a CharGroup,
517// and check it actually like-matches the word in inWord starting at startInputIndex,
518// that is, it matches it with case and accents squashed.
519// The function returns true if there was a full match, false otherwise.
520// The function will copy on-the-fly the characters in the CharGroup to outNewWord.
521// It will also place the end position of the array in outPos; in outInputIndex,
522// it will place the index of the first char AFTER the match if there was a match,
523// and the initial position if there was not. It makes sense because if there was
524// a match we want to continue searching, but if there was not, we want to go to
525// the next CharGroup.
526// In and out parameters may point to the same location. This function takes care
527// not to use any input parameters after it wrote into its outputs.
528static inline bool testCharGroupForContinuedLikeness(const uint8_t flags,
529 const uint8_t* const root, const int startPos,
530 const uint16_t* const inWord, const int startInputIndex,
531 int32_t* outNewWord, int* outInputIndex, int* outPos) {
532 const bool hasMultipleChars = (0 != (UnigramDictionary::FLAG_HAS_MULTIPLE_CHARS & flags));
533 int pos = startPos;
534 int32_t character = BinaryFormat::getCharCodeAndForwardPointer(root, &pos);
satokd24df432011-07-14 15:43:42 +0900535 int32_t baseChar = Dictionary::toBaseLowerCase(character);
536 const uint16_t wChar = Dictionary::toBaseLowerCase(inWord[startInputIndex]);
Jean Chalard1059f272011-06-28 20:45:05 +0900537
538 if (baseChar != wChar) {
539 *outPos = hasMultipleChars ? BinaryFormat::skipOtherCharacters(root, pos) : pos;
540 *outInputIndex = startInputIndex;
541 return false;
542 }
543 int inputIndex = startInputIndex;
544 outNewWord[inputIndex] = character;
545 if (hasMultipleChars) {
546 character = BinaryFormat::getCharCodeAndForwardPointer(root, &pos);
547 while (NOT_A_CHARACTER != character) {
satokd24df432011-07-14 15:43:42 +0900548 baseChar = Dictionary::toBaseLowerCase(character);
549 if (Dictionary::toBaseLowerCase(inWord[++inputIndex]) != baseChar) {
Jean Chalard1059f272011-06-28 20:45:05 +0900550 *outPos = BinaryFormat::skipOtherCharacters(root, pos);
551 *outInputIndex = startInputIndex;
552 return false;
553 }
554 outNewWord[inputIndex] = character;
555 character = BinaryFormat::getCharCodeAndForwardPointer(root, &pos);
556 }
557 }
558 *outInputIndex = inputIndex + 1;
559 *outPos = pos;
560 return true;
561}
562
563// This function is invoked when a word like the word searched for is found.
564// It will compare the frequency to the max frequency, and if greater, will
565// copy the word into the output buffer. In output value maxFreq, it will
566// write the new maximum frequency if it changed.
567static inline void onTerminalWordLike(const int freq, int32_t* newWord, const int length,
568 short unsigned int* outWord, int* maxFreq) {
569 if (freq > *maxFreq) {
570 for (int q = 0; q < length; ++q)
571 outWord[q] = newWord[q];
572 outWord[length] = 0;
573 *maxFreq = freq;
574 }
575}
576
577// Will find the highest frequency of the words like the one passed as an argument,
578// that is, everything that only differs by case/accents.
579int UnigramDictionary::getMostFrequentWordLikeInner(const uint16_t * const inWord,
580 const int length, short unsigned int* outWord) {
581 int32_t newWord[MAX_WORD_LENGTH_INTERNAL];
582 int depth = 0;
583 int maxFreq = -1;
584 const uint8_t* const root = DICT_ROOT;
585
586 mStackChildCount[0] = root[0];
587 mStackInputIndex[0] = 0;
588 mStackSiblingPos[0] = 1;
589 while (depth >= 0) {
590 const int charGroupCount = mStackChildCount[depth];
591 int pos = mStackSiblingPos[depth];
592 for (int charGroupIndex = charGroupCount - 1; charGroupIndex >= 0; --charGroupIndex) {
593 int inputIndex = mStackInputIndex[depth];
594 const uint8_t flags = BinaryFormat::getFlagsAndForwardPointer(root, &pos);
595 // Test whether all chars in this group match with the word we are searching for. If so,
596 // we want to traverse its children (or if the length match, evaluate its frequency).
597 // Note that this function will output the position regardless, but will only write
598 // into inputIndex if there is a match.
599 const bool isAlike = testCharGroupForContinuedLikeness(flags, root, pos, inWord,
600 inputIndex, newWord, &inputIndex, &pos);
601 if (isAlike && (FLAG_IS_TERMINAL & flags) && (inputIndex == length)) {
602 const int frequency = BinaryFormat::readFrequencyWithoutMovingPointer(root, pos);
603 onTerminalWordLike(frequency, newWord, inputIndex, outWord, &maxFreq);
604 }
605 pos = BinaryFormat::skipFrequency(flags, pos);
606 const int siblingPos = BinaryFormat::skipChildrenPosAndAttributes(root, flags, pos);
607 const int childrenNodePos = BinaryFormat::readChildrenPosition(root, flags, pos);
608 // If we had a match and the word has children, we want to traverse them. We don't have
609 // to traverse words longer than the one we are searching for, since they will not match
610 // anyway, so don't traverse unless inputIndex < length.
611 if (isAlike && (-1 != childrenNodePos) && (inputIndex < length)) {
612 // Save position for this depth, to get back to this once children are done
613 mStackChildCount[depth] = charGroupIndex;
614 mStackSiblingPos[depth] = siblingPos;
615 // Prepare stack values for next depth
616 ++depth;
617 int childrenPos = childrenNodePos;
618 mStackChildCount[depth] =
619 BinaryFormat::getGroupCountAndForwardPointer(root, &childrenPos);
620 mStackSiblingPos[depth] = childrenPos;
621 mStackInputIndex[depth] = inputIndex;
622 pos = childrenPos;
623 // Go to the next depth level.
624 ++depth;
625 break;
626 } else {
627 // No match, or no children, or word too long to ever match: go the next sibling.
628 pos = siblingPos;
629 }
630 }
631 --depth;
632 }
633 return maxFreq;
634}
635
Jean Chalard1059f272011-06-28 20:45:05 +0900636bool UnigramDictionary::isValidWord(const uint16_t* const inWord, const int length) const {
Jean Chalard6a0e9642011-07-25 18:17:11 +0900637 return NOT_VALID_WORD != BinaryFormat::getTerminalPosition(DICT_ROOT, inWord, length);
Jean Chalard1059f272011-06-28 20:45:05 +0900638}
639
640// TODO: remove this function.
641int UnigramDictionary::getBigramPosition(int pos, unsigned short *word, int offset,
642 int length) const {
643 return -1;
644}
645
646// ProcessCurrentNode returns a boolean telling whether to traverse children nodes or not.
647// If the return value is false, then the caller should read in the output "nextSiblingPosition"
648// to find out the address of the next sibling node and pass it to a new call of processCurrentNode.
649// It is worthy to note that when false is returned, the output values other than
650// nextSiblingPosition are undefined.
651// If the return value is true, then the caller must proceed to traverse the children of this
652// node. processCurrentNode will output the information about the children: their count in
653// newCount, their position in newChildrenPosition, the traverseAllNodes flag in
654// newTraverseAllNodes, the match weight into newMatchRate, the input index into newInputIndex, the
655// diffs into newDiffs, the sibling position in nextSiblingPosition, and the output index into
656// newOutputIndex. Please also note the following caveat: processCurrentNode does not know when
657// there aren't any more nodes at this level, it merely returns the address of the first byte after
658// the current node in nextSiblingPosition. Thus, the caller must keep count of the nodes at any
659// given level, as output into newCount when traversing this level's parent.
satok4e4e74e2011-08-03 23:27:32 +0900660inline bool UnigramDictionary::processCurrentNode(const int initialPos, const int maxDepth,
661 const bool initialTraverseAllNodes, const int initialDiffs,
satok2df30602011-07-15 13:49:00 +0900662 CorrectionState *correctionState, int *newCount, int *newChildrenPosition,
satok4e4e74e2011-08-03 23:27:32 +0900663 bool *newTraverseAllNodes, int *newDiffs, int *nextSiblingPosition) {
satok2df30602011-07-15 13:49:00 +0900664 const int skipPos = correctionState->getSkipPos();
665 const int excessivePos = correctionState->getExcessivePos();
666 const int transposedPos = correctionState->getTransposedPos();
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900667 if (DEBUG_DICT) {
satok2df30602011-07-15 13:49:00 +0900668 correctionState->checkState();
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900669 }
Jean Chalard0584f022011-06-30 19:23:16 +0900670 int pos = initialPos;
Jean Chalard0584f022011-06-30 19:23:16 +0900671 int traverseAllNodes = initialTraverseAllNodes;
672 int diffs = initialDiffs;
satok4e4e74e2011-08-03 23:27:32 +0900673 const int initialInputIndex = correctionState->getInputIndex();
Jean Chalard0584f022011-06-30 19:23:16 +0900674
Jean Chalard1059f272011-06-28 20:45:05 +0900675 // Flags contain the following information:
676 // - Address type (MASK_GROUP_ADDRESS_TYPE) on two bits:
677 // - FLAG_GROUP_ADDRESS_TYPE_{ONE,TWO,THREE}_BYTES means there are children and their address
678 // is on the specified number of bytes.
679 // - FLAG_GROUP_ADDRESS_TYPE_NOADDRESS means there are no children, and therefore no address.
680 // - FLAG_HAS_MULTIPLE_CHARS: whether this node has multiple char or not.
681 // - FLAG_IS_TERMINAL: whether this node is a terminal or not (it may still have children)
682 // - FLAG_HAS_BIGRAMS: whether this node has bigrams or not
683 const uint8_t flags = BinaryFormat::getFlagsAndForwardPointer(DICT_ROOT, &pos);
684 const bool hasMultipleChars = (0 != (FLAG_HAS_MULTIPLE_CHARS & flags));
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900685
Jean Chalard1059f272011-06-28 20:45:05 +0900686 // This gets only ONE character from the stream. Next there will be:
687 // if FLAG_HAS_MULTIPLE CHARS: the other characters of the same node
688 // else if FLAG_IS_TERMINAL: the frequency
689 // else if MASK_GROUP_ADDRESS_TYPE is not NONE: the children address
690 // Note that you can't have a node that both is not a terminal and has no children.
691 int32_t c = BinaryFormat::getCharCodeAndForwardPointer(DICT_ROOT, &pos);
692 assert(NOT_A_CHARACTER != c);
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900693
Jean Chalard1059f272011-06-28 20:45:05 +0900694 // We are going to loop through each character and make it look like it's a different
695 // node each time. To do that, we will process characters in this node in order until
696 // we find the character terminator. This is signalled by getCharCode* returning
697 // NOT_A_CHARACTER.
698 // As a special case, if there is only one character in this node, we must not read the
699 // next bytes so we will simulate the NOT_A_CHARACTER return by testing the flags.
700 // This way, each loop run will look like a "virtual node".
701 do {
702 // We prefetch the next char. If 'c' is the last char of this node, we will have
703 // NOT_A_CHARACTER in the next char. From this we can decide whether this virtual node
704 // should behave as a terminal or not and whether we have children.
705 const int32_t nextc = hasMultipleChars
706 ? BinaryFormat::getCharCodeAndForwardPointer(DICT_ROOT, &pos) : NOT_A_CHARACTER;
707 const bool isLastChar = (NOT_A_CHARACTER == nextc);
708 // If there are more chars in this nodes, then this virtual node is not a terminal.
709 // If we are on the last char, this virtual node is a terminal if this node is.
710 const bool isTerminal = isLastChar && (0 != (FLAG_IS_TERMINAL & flags));
711 // If there are more chars in this node, then this virtual node has children.
712 // If we are on the last char, this virtual node has children if this node has.
713 const bool hasChildren = (!isLastChar) || BinaryFormat::hasChildrenInFlags(flags);
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900714
Jean Chalard1059f272011-06-28 20:45:05 +0900715 // This has to be done for each virtual char (this forwards the "inputIndex" which
satokd24df432011-07-14 15:43:42 +0900716 // is the index in the user-inputted chars, as read by proximity chars.
satok4e4e74e2011-08-03 23:27:32 +0900717 if (excessivePos == correctionState->getOutputIndex()
718 && correctionState->getInputIndex() < mInputLength - 1) {
719 correctionState->incrementInputIndex();
satok0f6c8e82011-08-03 02:19:44 +0900720 }
satok4e4e74e2011-08-03 23:27:32 +0900721 if (traverseAllNodes || needsToSkipCurrentNode(
722 c, correctionState->getInputIndex(), skipPos, correctionState->getOutputIndex())) {
723 mWord[correctionState->getOutputIndex()] = c;
Jean Chalard1059f272011-06-28 20:45:05 +0900724 if (traverseAllNodes && isTerminal) {
725 // The frequency should be here, because we come here only if this is actually
726 // a terminal node, and we are on its last char.
727 const int freq = BinaryFormat::readFrequencyWithoutMovingPointer(DICT_ROOT, pos);
satok4e4e74e2011-08-03 23:27:32 +0900728 onTerminal(mWord, freq, mCorrectionState);
Jean Chalard1059f272011-06-28 20:45:05 +0900729 }
730 if (!hasChildren) {
731 // If we don't have children here, that means we finished processing all
732 // characters of this node (we are on the last virtual node), AND we are in
733 // traverseAllNodes mode, which means we are searching for *completions*. We
734 // should skip the frequency if we have a terminal, and report the position
735 // of the next sibling. We don't have to return other values because we are
736 // returning false, as in "don't traverse children".
737 if (isTerminal) pos = BinaryFormat::skipFrequency(flags, pos);
738 *nextSiblingPosition =
739 BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos);
740 return false;
741 }
742 } else {
satok4e4e74e2011-08-03 23:27:32 +0900743 int inputIndexForProximity = correctionState->getInputIndex();
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900744
Jean Chalard1059f272011-06-28 20:45:05 +0900745 if (transposedPos >= 0) {
satok4e4e74e2011-08-03 23:27:32 +0900746 if (correctionState->getInputIndex() == transposedPos) {
747 ++inputIndexForProximity;
748 }
749 if (correctionState->getInputIndex() == (transposedPos + 1)) {
750 --inputIndexForProximity;
751 }
Jean Chalard1059f272011-06-28 20:45:05 +0900752 }
753
satokd24df432011-07-14 15:43:42 +0900754 int matchedProximityCharId = mProximityInfo->getMatchedProximityId(
satok2df30602011-07-15 13:49:00 +0900755 inputIndexForProximity, c, mCorrectionState);
satokd24df432011-07-14 15:43:42 +0900756 if (ProximityInfo::UNRELATED_CHAR == matchedProximityCharId) {
Jean Chalard1059f272011-06-28 20:45:05 +0900757 // We found that this is an unrelated character, so we should give up traversing
758 // this node and its children entirely.
759 // However we may not be on the last virtual node yet so we skip the remaining
760 // characters in this node, the frequency if it's there, read the next sibling
761 // position to output it, then return false.
762 // We don't have to output other values because we return false, as in
763 // "don't traverse children".
764 if (!isLastChar) {
765 pos = BinaryFormat::skipOtherCharacters(DICT_ROOT, pos);
766 }
767 pos = BinaryFormat::skipFrequency(flags, pos);
768 *nextSiblingPosition =
769 BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos);
770 return false;
771 }
satok4e4e74e2011-08-03 23:27:32 +0900772 mWord[correctionState->getOutputIndex()] = c;
Jean Chalard1059f272011-06-28 20:45:05 +0900773 // If inputIndex is greater than mInputLength, that means there is no
774 // proximity chars. So, we don't need to check proximity.
satokd24df432011-07-14 15:43:42 +0900775 if (ProximityInfo::SAME_OR_ACCENTED_OR_CAPITALIZED_CHAR == matchedProximityCharId) {
satok0f6c8e82011-08-03 02:19:44 +0900776 correctionState->charMatched();
Jean Chalard1059f272011-06-28 20:45:05 +0900777 }
satok4e4e74e2011-08-03 23:27:32 +0900778 const bool isSameAsUserTypedLength = mInputLength
779 == correctionState->getInputIndex() + 1
780 || (excessivePos == mInputLength - 1
781 && correctionState->getInputIndex() == mInputLength - 2);
Jean Chalard1059f272011-06-28 20:45:05 +0900782 if (isSameAsUserTypedLength && isTerminal) {
783 const int freq = BinaryFormat::readFrequencyWithoutMovingPointer(DICT_ROOT, pos);
satok4e4e74e2011-08-03 23:27:32 +0900784 onTerminal(mWord, freq, mCorrectionState);
Jean Chalard1059f272011-06-28 20:45:05 +0900785 }
satok4e4e74e2011-08-03 23:27:32 +0900786 // Start traversing all nodes after the index exceeds the user typed length
787 traverseAllNodes = isSameAsUserTypedLength;
788 diffs = diffs
789 + ((ProximityInfo::NEAR_PROXIMITY_CHAR == matchedProximityCharId) ? 1 : 0);
790 // Finally, we are ready to go to the next character, the next "virtual node".
791 // We should advance the input index.
792 // We do this in this branch of the 'if traverseAllNodes' because we are still matching
793 // characters to input; the other branch is not matching them but searching for
794 // completions, this is why it does not have to do it.
795 correctionState->incrementInputIndex();
796
Jean Chalard1059f272011-06-28 20:45:05 +0900797 // This character matched the typed character (enough to traverse the node at least)
798 // so we just evaluated it. Now we should evaluate this virtual node's children - that
799 // is, if it has any. If it has no children, we're done here - so we skip the end of
800 // the node, output the siblings position, and return false "don't traverse children".
801 // Note that !hasChildren implies isLastChar, so we know we don't have to skip any
802 // remaining char in this group for there can't be any.
803 if (!hasChildren) {
804 pos = BinaryFormat::skipFrequency(flags, pos);
805 *nextSiblingPosition =
806 BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos);
807 return false;
808 }
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900809 }
Jean Chalard1059f272011-06-28 20:45:05 +0900810 // Optimization: Prune out words that are too long compared to how much was typed.
satok4e4e74e2011-08-03 23:27:32 +0900811 if (correctionState->getOutputIndex() >= maxDepth || diffs > mMaxEditDistance) {
Jean Chalard1059f272011-06-28 20:45:05 +0900812 // We are giving up parsing this node and its children. Skip the rest of the node,
813 // output the sibling position, and return that we don't want to traverse children.
814 if (!isLastChar) {
815 pos = BinaryFormat::skipOtherCharacters(DICT_ROOT, pos);
816 }
817 pos = BinaryFormat::skipFrequency(flags, pos);
818 *nextSiblingPosition =
819 BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos);
820 return false;
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900821 }
satok4e4e74e2011-08-03 23:27:32 +0900822 // Also, the next char is one "virtual node" depth more than this char.
823 correctionState->incrementOutputIndex();
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900824
Jean Chalard1059f272011-06-28 20:45:05 +0900825 // Prepare for the next character. Promote the prefetched char to current char - the loop
826 // will take care of prefetching the next. If we finally found our last char, nextc will
827 // contain NOT_A_CHARACTER.
828 c = nextc;
Jean Chalard1059f272011-06-28 20:45:05 +0900829 } while (NOT_A_CHARACTER != c);
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900830
831 // If inputIndex is greater than mInputLength, that means there are no proximity chars.
Jean Chalard1059f272011-06-28 20:45:05 +0900832 // Here, that's all we are interested in so we don't need to check for isSameAsUserTypedLength.
satok4e4e74e2011-08-03 23:27:32 +0900833 if (mInputLength <= initialInputIndex) {
Jean Chalard1059f272011-06-28 20:45:05 +0900834 traverseAllNodes = true;
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900835 }
Jean Chalard1059f272011-06-28 20:45:05 +0900836
837 // All the output values that are purely computation by this function are held in local
838 // variables. Output them to the caller.
839 *newTraverseAllNodes = traverseAllNodes;
Jean Chalard1059f272011-06-28 20:45:05 +0900840 *newDiffs = diffs;
Jean Chalard1059f272011-06-28 20:45:05 +0900841
842 // Now we finished processing this node, and we want to traverse children. If there are no
843 // children, we can't come here.
844 assert(BinaryFormat::hasChildrenInFlags(flags));
845
846 // If this node was a terminal it still has the frequency under the pointer (it may have been
847 // read, but not skipped - see readFrequencyWithoutMovingPointer).
848 // Next come the children position, then possibly attributes (attributes are bigrams only for
849 // now, maybe something related to shortcuts in the future).
850 // Once this is read, we still need to output the number of nodes in the immediate children of
851 // this node, so we read and output it before returning true, as in "please traverse children".
852 pos = BinaryFormat::skipFrequency(flags, pos);
853 int childrenPos = BinaryFormat::readChildrenPosition(DICT_ROOT, flags, pos);
854 *nextSiblingPosition = BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos);
855 *newCount = BinaryFormat::getGroupCountAndForwardPointer(DICT_ROOT, &childrenPos);
856 *newChildrenPosition = childrenPos;
857 return true;
Jean Chalard85a1d1e2011-06-21 22:23:21 +0900858}
859
satok30088252010-12-01 21:22:15 +0900860} // namespace latinime