satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 1 | /* |
| 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 | |
satok | 48e432c | 2010-12-06 17:38:58 +0900 | [diff] [blame] | 18 | #include <assert.h> |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 19 | #include <string.h> |
| 20 | |
satok | e808e43 | 2010-12-02 14:53:24 +0900 | [diff] [blame] | 21 | #define LOG_TAG "LatinIME: unigram_dictionary.cpp" |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 22 | |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 23 | #include "char_utils.h" |
satok | e808e43 | 2010-12-02 14:53:24 +0900 | [diff] [blame] | 24 | #include "dictionary.h" |
| 25 | #include "unigram_dictionary.h" |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 26 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 27 | #include "binary_format.h" |
Jean Chalard | cf9dbbd | 2011-12-26 15:16:59 +0900 | [diff] [blame] | 28 | #include "terminal_attributes.h" |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 29 | |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 30 | namespace latinime { |
| 31 | |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 32 | const UnigramDictionary::digraph_t UnigramDictionary::GERMAN_UMLAUT_DIGRAPHS[] = |
| 33 | { { 'a', 'e' }, |
| 34 | { 'o', 'e' }, |
| 35 | { 'u', 'e' } }; |
| 36 | |
Jean Chalard | 293ece0 | 2011-06-16 20:55:16 +0900 | [diff] [blame] | 37 | // TODO: check the header |
| 38 | UnigramDictionary::UnigramDictionary(const uint8_t* const streamStart, int typedLetterMultiplier, |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 39 | int fullWordMultiplier, int maxWordLength, int maxWords, int maxProximityChars, |
satok | 18c28f4 | 2010-12-02 18:11:54 +0900 | [diff] [blame] | 40 | const bool isLatestDictVersion) |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 41 | : DICT_ROOT(streamStart + NEW_DICTIONARY_HEADER_SIZE), |
Jean Chalard | 293ece0 | 2011-06-16 20:55:16 +0900 | [diff] [blame] | 42 | MAX_WORD_LENGTH(maxWordLength), MAX_WORDS(maxWords), |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 43 | MAX_PROXIMITY_CHARS(maxProximityChars), IS_LATEST_DICT_VERSION(isLatestDictVersion), |
| 44 | TYPED_LETTER_MULTIPLIER(typedLetterMultiplier), FULL_WORD_MULTIPLIER(fullWordMultiplier), |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 45 | // TODO : remove this variable. |
| 46 | ROOT_POS(0), |
satok | 1d7eaf8 | 2011-07-13 10:32:02 +0900 | [diff] [blame] | 47 | BYTES_IN_ONE_CHAR(MAX_PROXIMITY_CHARS * sizeof(int)), |
Jean Chalard | a787dba | 2011-03-04 12:17:48 +0900 | [diff] [blame] | 48 | MAX_UMLAUT_SEARCH_DEPTH(DEFAULT_MAX_UMLAUT_SEARCH_DEPTH) { |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 49 | if (DEBUG_DICT) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 50 | AKLOGI("UnigramDictionary - constructor"); |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 51 | } |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 52 | } |
| 53 | |
satok | 2df3060 | 2011-07-15 13:49:00 +0900 | [diff] [blame] | 54 | UnigramDictionary::~UnigramDictionary() { |
satok | 2df3060 | 2011-07-15 13:49:00 +0900 | [diff] [blame] | 55 | } |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 56 | |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 57 | static inline unsigned int getCodesBufferSize(const int *codes, const int codesSize, |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 58 | const int MAX_PROXIMITY_CHARS) { |
| 59 | return sizeof(*codes) * MAX_PROXIMITY_CHARS * codesSize; |
| 60 | } |
| 61 | |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 62 | // TODO: This needs to take an const unsigned short* and not tinker with its contents |
| 63 | static inline void addWord( |
| 64 | unsigned short *word, int length, int frequency, WordsPriorityQueue *queue) { |
| 65 | queue->push(frequency, word, length); |
| 66 | } |
| 67 | |
| 68 | bool UnigramDictionary::isDigraph(const int *codes, const int i, const int codesSize) const { |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 69 | |
| 70 | // There can't be a digraph if we don't have at least 2 characters to examine |
| 71 | if (i + 2 > codesSize) return false; |
| 72 | |
| 73 | // Search for the first char of some digraph |
| 74 | int lastDigraphIndex = -1; |
| 75 | const int thisChar = codes[i * MAX_PROXIMITY_CHARS]; |
| 76 | for (lastDigraphIndex = sizeof(GERMAN_UMLAUT_DIGRAPHS) / sizeof(GERMAN_UMLAUT_DIGRAPHS[0]) - 1; |
| 77 | lastDigraphIndex >= 0; --lastDigraphIndex) { |
| 78 | if (thisChar == GERMAN_UMLAUT_DIGRAPHS[lastDigraphIndex].first) break; |
| 79 | } |
| 80 | // No match: return early |
| 81 | if (lastDigraphIndex < 0) return false; |
| 82 | |
| 83 | // It's an interesting digraph if the second char matches too. |
| 84 | return GERMAN_UMLAUT_DIGRAPHS[lastDigraphIndex].second == codes[(i + 1) * MAX_PROXIMITY_CHARS]; |
| 85 | } |
| 86 | |
| 87 | // Mostly the same arguments as the non-recursive version, except: |
| 88 | // codes is the original value. It points to the start of the work buffer, and gets passed as is. |
| 89 | // codesSize is the size of the user input (thus, it is the size of codesSrc). |
| 90 | // codesDest is the current point in the work buffer. |
| 91 | // codesSrc is the current point in the user-input, original, content-unmodified buffer. |
| 92 | // codesRemain is the remaining size in codesSrc. |
satok | 1d7eaf8 | 2011-07-13 10:32:02 +0900 | [diff] [blame] | 93 | void UnigramDictionary::getWordWithDigraphSuggestionsRec(ProximityInfo *proximityInfo, |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 94 | const int *xcoordinates, const int *ycoordinates, const int *codesBuffer, |
| 95 | const int codesBufferSize, const int flags, const int *codesSrc, |
| 96 | const int codesRemain, const int currentDepth, int *codesDest, Correction *correction, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 97 | WordsPriorityQueuePool *queuePool) { |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 98 | |
Jean Chalard | a787dba | 2011-03-04 12:17:48 +0900 | [diff] [blame] | 99 | if (currentDepth < MAX_UMLAUT_SEARCH_DEPTH) { |
| 100 | for (int i = 0; i < codesRemain; ++i) { |
| 101 | if (isDigraph(codesSrc, i, codesRemain)) { |
| 102 | // Found a digraph. We will try both spellings. eg. the word is "pruefen" |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 103 | |
Jean Chalard | a787dba | 2011-03-04 12:17:48 +0900 | [diff] [blame] | 104 | // Copy the word up to the first char of the digraph, then continue processing |
| 105 | // on the remaining part of the word, skipping the second char of the digraph. |
| 106 | // In our example, copy "pru" and continue running on "fen" |
| 107 | // Make i the index of the second char of the digraph for simplicity. Forgetting |
| 108 | // to do that results in an infinite recursion so take care! |
| 109 | ++i; |
| 110 | memcpy(codesDest, codesSrc, i * BYTES_IN_ONE_CHAR); |
| 111 | getWordWithDigraphSuggestionsRec(proximityInfo, xcoordinates, ycoordinates, |
| 112 | codesBuffer, codesBufferSize, flags, |
| 113 | codesSrc + (i + 1) * MAX_PROXIMITY_CHARS, codesRemain - i - 1, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 114 | currentDepth + 1, codesDest + i * MAX_PROXIMITY_CHARS, correction, |
| 115 | queuePool); |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 116 | |
Jean Chalard | a787dba | 2011-03-04 12:17:48 +0900 | [diff] [blame] | 117 | // Copy the second char of the digraph in place, then continue processing on |
| 118 | // the remaining part of the word. |
| 119 | // In our example, after "pru" in the buffer copy the "e", and continue on "fen" |
| 120 | memcpy(codesDest + i * MAX_PROXIMITY_CHARS, codesSrc + i * MAX_PROXIMITY_CHARS, |
| 121 | BYTES_IN_ONE_CHAR); |
| 122 | getWordWithDigraphSuggestionsRec(proximityInfo, xcoordinates, ycoordinates, |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 123 | codesBuffer, codesBufferSize, flags, |
| 124 | codesSrc + i * MAX_PROXIMITY_CHARS, codesRemain - i, currentDepth + 1, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 125 | codesDest + i * MAX_PROXIMITY_CHARS, correction, queuePool); |
Jean Chalard | a787dba | 2011-03-04 12:17:48 +0900 | [diff] [blame] | 126 | return; |
| 127 | } |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 128 | } |
| 129 | } |
| 130 | |
| 131 | // If we come here, we hit the end of the word: let's check it against the dictionary. |
| 132 | // In our example, we'll come here once for "prufen" and then once for "pruefen". |
| 133 | // If the word contains several digraphs, we'll come it for the product of them. |
| 134 | // eg. if the word is "ueberpruefen" we'll test, in order, against |
| 135 | // "uberprufen", "uberpruefen", "ueberprufen", "ueberpruefen". |
| 136 | const unsigned int remainingBytes = BYTES_IN_ONE_CHAR * codesRemain; |
| 137 | if (0 != remainingBytes) |
| 138 | memcpy(codesDest, codesSrc, remainingBytes); |
| 139 | |
| 140 | getWordSuggestions(proximityInfo, xcoordinates, ycoordinates, codesBuffer, |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 141 | (codesDest - codesBuffer) / MAX_PROXIMITY_CHARS + codesRemain, flags, correction, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 142 | queuePool); |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 143 | } |
| 144 | |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 145 | int UnigramDictionary::getSuggestions(ProximityInfo *proximityInfo, |
| 146 | WordsPriorityQueuePool *queuePool, Correction *correction, const int *xcoordinates, |
| 147 | const int *ycoordinates, const int *codes, const int codesSize, const int flags, |
| 148 | unsigned short *outWords, int *frequencies) { |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 149 | |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 150 | Correction* masterCorrection = correction; |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 151 | if (REQUIRES_GERMAN_UMLAUT_PROCESSING & flags) |
| 152 | { // Incrementally tune the word and try all possibilities |
| 153 | int codesBuffer[getCodesBufferSize(codes, codesSize, MAX_PROXIMITY_CHARS)]; |
| 154 | getWordWithDigraphSuggestionsRec(proximityInfo, xcoordinates, ycoordinates, codesBuffer, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 155 | codesSize, flags, codes, codesSize, 0, codesBuffer, masterCorrection, queuePool); |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 156 | } else { // Normal processing |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 157 | getWordSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, codesSize, flags, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 158 | masterCorrection, queuePool); |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 159 | } |
| 160 | |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 161 | PROF_START(20); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 162 | if (DEBUG_DICT) { |
| 163 | double ns = queuePool->getMasterQueue()->getHighestNormalizedScore( |
| 164 | proximityInfo->getPrimaryInputWord(), codesSize, 0, 0, 0); |
| 165 | ns += 0; |
| 166 | AKLOGI("Max normalized score = %f", ns); |
| 167 | } |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 168 | const int suggestedWordsCount = |
| 169 | queuePool->getMasterQueue()->outputSuggestions(frequencies, outWords); |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 170 | |
| 171 | if (DEBUG_DICT) { |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 172 | double ns = queuePool->getMasterQueue()->getHighestNormalizedScore( |
| 173 | proximityInfo->getPrimaryInputWord(), codesSize, 0, 0, 0); |
| 174 | ns += 0; |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 175 | AKLOGI("Returning %d words", suggestedWordsCount); |
Jean Chalard | 980d6b6 | 2011-06-30 17:02:23 +0900 | [diff] [blame] | 176 | /// Print the returned words |
| 177 | for (int j = 0; j < suggestedWordsCount; ++j) { |
satok | 16379df | 2011-12-12 20:53:22 +0900 | [diff] [blame] | 178 | short unsigned int* w = outWords + j * MAX_WORD_LENGTH; |
Jean Chalard | 980d6b6 | 2011-06-30 17:02:23 +0900 | [diff] [blame] | 179 | char s[MAX_WORD_LENGTH]; |
| 180 | for (int i = 0; i <= MAX_WORD_LENGTH; i++) s[i] = w[i]; |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 181 | AKLOGI("%s %i", s, frequencies[j]); |
Jean Chalard | 980d6b6 | 2011-06-30 17:02:23 +0900 | [diff] [blame] | 182 | } |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 183 | } |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 184 | PROF_END(20); |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 185 | PROF_CLOSE; |
| 186 | return suggestedWordsCount; |
| 187 | } |
| 188 | |
satok | 1d7eaf8 | 2011-07-13 10:32:02 +0900 | [diff] [blame] | 189 | void UnigramDictionary::getWordSuggestions(ProximityInfo *proximityInfo, |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 190 | const int *xcoordinates, const int *ycoordinates, const int *codes, |
satok | a7e5a5a | 2011-12-15 16:49:12 +0900 | [diff] [blame] | 191 | const int inputLength, const int flags, Correction *correction, |
| 192 | WordsPriorityQueuePool *queuePool) { |
Jean Chalard | c2bbc6a | 2011-02-25 17:56:53 +0900 | [diff] [blame] | 193 | |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 194 | PROF_OPEN; |
| 195 | PROF_START(0); |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 196 | queuePool->clearAll(); |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 197 | PROF_END(0); |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 198 | |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 199 | PROF_START(1); |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 200 | const bool useFullEditDistance = USE_FULL_EDIT_DISTANCE & flags; |
| 201 | getOneWordSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, useFullEditDistance, |
| 202 | inputLength, correction, queuePool); |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 203 | PROF_END(1); |
| 204 | |
| 205 | PROF_START(2); |
satok | 10266c0 | 2011-08-19 22:05:59 +0900 | [diff] [blame] | 206 | // Note: This line is intentionally left blank |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 207 | PROF_END(2); |
satok | cdbbea7 | 2010-12-08 16:04:16 +0900 | [diff] [blame] | 208 | |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 209 | PROF_START(3); |
satok | 10266c0 | 2011-08-19 22:05:59 +0900 | [diff] [blame] | 210 | // Note: This line is intentionally left blank |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 211 | PROF_END(3); |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 212 | |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 213 | PROF_START(4); |
satok | 10266c0 | 2011-08-19 22:05:59 +0900 | [diff] [blame] | 214 | // Note: This line is intentionally left blank |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 215 | bool hasAutoCorrectionCandidate = false; |
| 216 | WordsPriorityQueue* masterQueue = queuePool->getMasterQueue(); |
| 217 | if (masterQueue->size() > 0) { |
| 218 | double nsForMaster = masterQueue->getHighestNormalizedScore( |
| 219 | proximityInfo->getPrimaryInputWord(), inputLength, 0, 0, 0); |
| 220 | hasAutoCorrectionCandidate = (nsForMaster > START_TWO_WORDS_CORRECTION_THRESHOLD); |
| 221 | } |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 222 | PROF_END(4); |
satok | a3d78f6 | 2010-12-09 22:08:33 +0900 | [diff] [blame] | 223 | |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 224 | PROF_START(5); |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 225 | // Suggestions with missing space |
satok | 54fe9e0 | 2010-12-13 14:42:35 +0900 | [diff] [blame] | 226 | if (SUGGEST_WORDS_WITH_MISSING_SPACE_CHARACTER |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 227 | && inputLength >= MIN_USER_TYPED_LENGTH_FOR_MISSING_SPACE_SUGGESTION) { |
| 228 | for (int i = 1; i < inputLength; ++i) { |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 229 | if (DEBUG_DICT) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 230 | AKLOGI("--- Suggest missing space characters %d", i); |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 231 | } |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 232 | getMissingSpaceWords(proximityInfo, xcoordinates, ycoordinates, codes, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 233 | useFullEditDistance, inputLength, i, correction, queuePool, |
| 234 | hasAutoCorrectionCandidate); |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 235 | } |
| 236 | } |
satok | 61e2f85 | 2011-01-05 14:13:07 +0900 | [diff] [blame] | 237 | PROF_END(5); |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 238 | |
| 239 | PROF_START(6); |
Jean Chalard | e93b1f22 | 2011-06-01 17:12:25 +0900 | [diff] [blame] | 240 | if (SUGGEST_WORDS_WITH_SPACE_PROXIMITY && proximityInfo) { |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 241 | // The first and last "mistyped spaces" are taken care of by excessive character handling |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 242 | for (int i = 1; i < inputLength - 1; ++i) { |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 243 | if (DEBUG_DICT) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 244 | AKLOGI("--- Suggest words with proximity space %d", i); |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 245 | } |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 246 | const int x = xcoordinates[i]; |
| 247 | const int y = ycoordinates[i]; |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 248 | if (DEBUG_PROXIMITY_INFO) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 249 | AKLOGI("Input[%d] x = %d, y = %d, has space proximity = %d", |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 250 | i, x, y, proximityInfo->hasSpaceProximity(x, y)); |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 251 | } |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 252 | if (proximityInfo->hasSpaceProximity(x, y)) { |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 253 | getMistypedSpaceWords(proximityInfo, xcoordinates, ycoordinates, codes, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 254 | useFullEditDistance, inputLength, i, correction, queuePool, |
| 255 | hasAutoCorrectionCandidate); |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 256 | } |
satok | 817e517 | 2011-03-04 06:06:45 -0800 | [diff] [blame] | 257 | } |
| 258 | } |
| 259 | PROF_END(6); |
satok | 29dc806 | 2012-01-17 15:59:15 +0900 | [diff] [blame] | 260 | if (DEBUG_DICT) { |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 261 | queuePool->dumpSubQueue1TopSuggestions(); |
satok | 29dc806 | 2012-01-17 15:59:15 +0900 | [diff] [blame] | 262 | for (int i = 0; i < SUB_QUEUE_MAX_COUNT; ++i) { |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 263 | WordsPriorityQueue* queue = queuePool->getSubQueue(FIRST_WORD_INDEX, i); |
satok | 29dc806 | 2012-01-17 15:59:15 +0900 | [diff] [blame] | 264 | if (queue->size() > 0) { |
| 265 | WordsPriorityQueue::SuggestedWord* sw = queue->top(); |
| 266 | const int score = sw->mScore; |
| 267 | const unsigned short* word = sw->mWord; |
| 268 | const int wordLength = sw->mWordLength; |
| 269 | double ns = Correction::RankingAlgorithm::calcNormalizedScore( |
| 270 | proximityInfo->getPrimaryInputWord(), i, word, wordLength, score); |
| 271 | ns += 0; |
| 272 | AKLOGI("--- TOP SUB WORDS for %d --- %d %f [%d]", i, score, ns, |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 273 | (ns > TWO_WORDS_CORRECTION_WITH_OTHER_ERROR_THRESHOLD)); |
satok | 29dc806 | 2012-01-17 15:59:15 +0900 | [diff] [blame] | 274 | DUMP_WORD(proximityInfo->getPrimaryInputWord(), i); |
| 275 | DUMP_WORD(word, wordLength); |
| 276 | } |
| 277 | } |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 278 | } |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 279 | } |
| 280 | |
Yusuke Nojima | 258bfe6 | 2011-09-28 12:59:43 +0900 | [diff] [blame] | 281 | void UnigramDictionary::initSuggestions(ProximityInfo *proximityInfo, const int *xCoordinates, |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 282 | const int *yCoordinates, const int *codes, const int inputLength, Correction *correction) { |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 283 | if (DEBUG_DICT) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 284 | AKLOGI("initSuggest"); |
Ken Wakasa | de3070a | 2011-03-19 09:16:42 +0900 | [diff] [blame] | 285 | } |
satok | 1a6da63 | 2011-12-16 23:15:06 +0900 | [diff] [blame] | 286 | proximityInfo->setInputParams(codes, inputLength, xCoordinates, yCoordinates); |
satok | 1a6da63 | 2011-12-16 23:15:06 +0900 | [diff] [blame] | 287 | const int maxDepth = min(inputLength * MAX_DEPTH_MULTIPLIER, MAX_WORD_LENGTH); |
| 288 | correction->initCorrection(proximityInfo, inputLength, maxDepth); |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 289 | } |
| 290 | |
satok | 715514d | 2010-12-02 20:19:59 +0900 | [diff] [blame] | 291 | static const char QUOTE = '\''; |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 292 | static const char SPACE = ' '; |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 293 | |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 294 | void UnigramDictionary::getOneWordSuggestions(ProximityInfo *proximityInfo, |
| 295 | const int *xcoordinates, const int *ycoordinates, const int *codes, |
| 296 | const bool useFullEditDistance, const int inputLength, Correction *correction, |
| 297 | WordsPriorityQueuePool *queuePool) { |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 298 | initSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, inputLength, correction); |
| 299 | getSuggestionCandidates(useFullEditDistance, inputLength, correction, queuePool, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 300 | true /* doAutoCompletion */, DEFAULT_MAX_ERRORS, FIRST_WORD_INDEX); |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 301 | } |
| 302 | |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 303 | void UnigramDictionary::getSuggestionCandidates(const bool useFullEditDistance, |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 304 | const int inputLength, Correction *correction, WordsPriorityQueuePool *queuePool, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 305 | const bool doAutoCompletion, const int maxErrors, const int currentWordIndex) { |
satok | 10266c0 | 2011-08-19 22:05:59 +0900 | [diff] [blame] | 306 | // TODO: Remove setCorrectionParams |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 307 | correction->setCorrectionParams(0, 0, 0, |
satok | d03317c | 2011-12-14 21:38:11 +0900 | [diff] [blame] | 308 | -1 /* spaceProximityPos */, -1 /* missingSpacePos */, useFullEditDistance, |
satok | 1a6da63 | 2011-12-16 23:15:06 +0900 | [diff] [blame] | 309 | doAutoCompletion, maxErrors); |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 310 | int rootPosition = ROOT_POS; |
Jean Chalard | 980d6b6 | 2011-06-30 17:02:23 +0900 | [diff] [blame] | 311 | // Get the number of children of root, then increment the position |
Jean Chalard | 6d41981 | 2012-01-16 15:19:47 +0900 | [diff] [blame] | 312 | int childCount = BinaryFormat::getGroupCountAndForwardPointer(DICT_ROOT, &rootPosition); |
satok | 208268d | 2011-08-10 15:44:08 +0900 | [diff] [blame] | 313 | int outputIndex = 0; |
satok | d299792 | 2010-12-07 13:08:39 +0900 | [diff] [blame] | 314 | |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 315 | correction->initCorrectionState(rootPosition, childCount, (inputLength <= 0)); |
satok | d299792 | 2010-12-07 13:08:39 +0900 | [diff] [blame] | 316 | |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 317 | // Depth first search |
satok | 208268d | 2011-08-10 15:44:08 +0900 | [diff] [blame] | 318 | while (outputIndex >= 0) { |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 319 | if (correction->initProcessState(outputIndex)) { |
| 320 | int siblingPos = correction->getTreeSiblingPos(outputIndex); |
satok | d299792 | 2010-12-07 13:08:39 +0900 | [diff] [blame] | 321 | int firstChildPos; |
satok | 0f6c8e8 | 2011-08-03 02:19:44 +0900 | [diff] [blame] | 322 | |
satok | 4e4e74e | 2011-08-03 23:27:32 +0900 | [diff] [blame] | 323 | const bool needsToTraverseChildrenNodes = processCurrentNode(siblingPos, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 324 | correction, &childCount, &firstChildPos, &siblingPos, queuePool, |
| 325 | currentWordIndex); |
satok | 662fe69 | 2010-12-08 17:05:39 +0900 | [diff] [blame] | 326 | // Update next sibling pos |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 327 | correction->setTreeSiblingPos(outputIndex, siblingPos); |
satok | 208268d | 2011-08-10 15:44:08 +0900 | [diff] [blame] | 328 | |
satok | d299792 | 2010-12-07 13:08:39 +0900 | [diff] [blame] | 329 | if (needsToTraverseChildrenNodes) { |
| 330 | // Goes to child node |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 331 | outputIndex = correction->goDownTree(outputIndex, childCount, firstChildPos); |
satok | d299792 | 2010-12-07 13:08:39 +0900 | [diff] [blame] | 332 | } |
| 333 | } else { |
satok | cdbbea7 | 2010-12-08 16:04:16 +0900 | [diff] [blame] | 334 | // Goes to parent sibling node |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 335 | outputIndex = correction->getTreeParentIndex(outputIndex); |
satok | d299792 | 2010-12-07 13:08:39 +0900 | [diff] [blame] | 336 | } |
| 337 | } |
| 338 | } |
| 339 | |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 340 | void UnigramDictionary::getMissingSpaceWords(ProximityInfo *proximityInfo, const int *xcoordinates, |
| 341 | const int *ycoordinates, const int *codes, const bool useFullEditDistance, |
| 342 | const int inputLength, const int missingSpacePos, Correction *correction, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 343 | WordsPriorityQueuePool* queuePool, const bool hasAutoCorrectionCandidate) { |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 344 | getSplitTwoWordsSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, |
| 345 | useFullEditDistance, inputLength, missingSpacePos, -1/* spaceProximityPos */, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 346 | correction, queuePool, hasAutoCorrectionCandidate); |
satok | b2e5e59 | 2011-04-26 14:50:54 +0900 | [diff] [blame] | 347 | } |
| 348 | |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 349 | void UnigramDictionary::getMistypedSpaceWords(ProximityInfo *proximityInfo, const int *xcoordinates, |
| 350 | const int *ycoordinates, const int *codes, const bool useFullEditDistance, |
| 351 | const int inputLength, const int spaceProximityPos, Correction *correction, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 352 | WordsPriorityQueuePool* queuePool, const bool hasAutoCorrectionCandidate) { |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 353 | getSplitTwoWordsSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, |
| 354 | useFullEditDistance, inputLength, -1 /* missingSpacePos */, spaceProximityPos, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 355 | correction, queuePool, hasAutoCorrectionCandidate); |
satok | 54fe9e0 | 2010-12-13 14:42:35 +0900 | [diff] [blame] | 356 | } |
satok | a3d78f6 | 2010-12-09 22:08:33 +0900 | [diff] [blame] | 357 | |
Jean Chalard | cf9dbbd | 2011-12-26 15:16:59 +0900 | [diff] [blame] | 358 | inline void UnigramDictionary::onTerminal(const int freq, |
| 359 | const TerminalAttributes& terminalAttributes, Correction *correction, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 360 | WordsPriorityQueuePool *queuePool, const bool addToMasterQueue, |
| 361 | const int currentWordIndex) { |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 362 | const int inputIndex = correction->getInputIndex(); |
| 363 | const bool addToSubQueue = inputIndex < SUB_QUEUE_MAX_COUNT; |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 364 | |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 365 | int wordLength; |
| 366 | unsigned short* wordPointer; |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 367 | |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 368 | if ((currentWordIndex == 1) && addToMasterQueue) { |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 369 | WordsPriorityQueue *masterQueue = queuePool->getMasterQueue(); |
| 370 | const int finalFreq = correction->getFinalFreq(freq, &wordPointer, &wordLength); |
| 371 | if (finalFreq != NOT_A_FREQUENCY) { |
| 372 | if (!terminalAttributes.isShortcutOnly()) { |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 373 | addWord(wordPointer, wordLength, finalFreq, masterQueue); |
| 374 | } |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 375 | |
| 376 | // Please note that the shortcut candidates will be added to the master queue only. |
| 377 | TerminalAttributes::ShortcutIterator iterator = |
| 378 | terminalAttributes.getShortcutIterator(); |
| 379 | while (iterator.hasNextShortcutTarget()) { |
| 380 | // TODO: addWord only supports weak ordering, meaning we have no means |
| 381 | // to control the order of the shortcuts relative to one another or to the word. |
| 382 | // We need to either modulate the frequency of each shortcut according |
| 383 | // to its own shortcut frequency or to make the queue |
| 384 | // so that the insert order is protected inside the queue for words |
| 385 | // with the same score. |
| 386 | uint16_t shortcutTarget[MAX_WORD_LENGTH_INTERNAL]; |
| 387 | const int shortcutTargetStringLength = iterator.getNextShortcutTarget( |
| 388 | MAX_WORD_LENGTH_INTERNAL, shortcutTarget); |
| 389 | addWord(shortcutTarget, shortcutTargetStringLength, finalFreq, masterQueue); |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 390 | } |
Jean Chalard | cf9dbbd | 2011-12-26 15:16:59 +0900 | [diff] [blame] | 391 | } |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 392 | } |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 393 | |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 394 | // We only allow two words + other error correction for words with SUB_QUEUE_MIN_WORD_LENGTH |
| 395 | // or more length. |
| 396 | if (inputIndex >= SUB_QUEUE_MIN_WORD_LENGTH && addToSubQueue) { |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 397 | WordsPriorityQueue *subQueue; |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 398 | subQueue = queuePool->getSubQueue(currentWordIndex, inputIndex); |
| 399 | if (!subQueue) { |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 400 | return; |
| 401 | } |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 402 | const int finalFreq = correction->getFinalFreqForSubQueue(freq, &wordPointer, &wordLength, |
| 403 | inputIndex); |
| 404 | addWord(wordPointer, wordLength, finalFreq, subQueue); |
Jean Chalard | ca5ef28 | 2011-06-17 15:36:26 +0900 | [diff] [blame] | 405 | } |
| 406 | } |
| 407 | |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 408 | int UnigramDictionary::getSubStringSuggestion( |
| 409 | ProximityInfo *proximityInfo, const int *xcoordinates, const int *ycoordinates, |
| 410 | const int *codes, const bool useFullEditDistance, const Correction *correction, |
| 411 | WordsPriorityQueuePool* queuePool, const bool hasAutoCorrectionCandidate, |
| 412 | const int currentWordIndex, const int inputWordStartPos, const int inputWordLength, |
| 413 | const int outputWordStartPos, unsigned short* outputWord, int *outputWordLength) { |
| 414 | // under constructiong |
| 415 | // unsigned short* tempOutputWord = 0; |
| 416 | // int tempOutputWordLength = 0; |
| 417 | // int freq = getMostFrequentWordLike( |
| 418 | // inputWordStartPos, inputWordLength, proximityInfo, mWord); |
| 419 | // if (freq > 0) { |
| 420 | // tempOutputWordLength = inputWordLength; |
| 421 | // tempOutputWord = mWord; |
| 422 | // } else if (!hasAutoCorrectionCandidate) { |
| 423 | // } |
| 424 | return 0; |
| 425 | } |
| 426 | |
satok | 744dab6 | 2011-12-15 22:29:05 +0900 | [diff] [blame] | 427 | void UnigramDictionary::getSplitTwoWordsSuggestions(ProximityInfo *proximityInfo, |
| 428 | const int *xcoordinates, const int *ycoordinates, const int *codes, |
| 429 | const bool useFullEditDistance, const int inputLength, const int missingSpacePos, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 430 | const int spaceProximityPos, Correction *correction, WordsPriorityQueuePool* queuePool, |
| 431 | const bool hasAutoCorrectionCandidate) { |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 432 | if (inputLength >= MAX_WORD_LENGTH) return; |
satok | 612c6e4 | 2011-08-01 19:35:27 +0900 | [diff] [blame] | 433 | if (DEBUG_DICT) { |
| 434 | int inputCount = 0; |
| 435 | if (spaceProximityPos >= 0) ++inputCount; |
| 436 | if (missingSpacePos >= 0) ++inputCount; |
| 437 | assert(inputCount <= 1); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 438 | // MAX_PROXIMITY_CHARS_SIZE in ProximityInfo.java should be 16 |
| 439 | assert(MAX_PROXIMITY_CHARS == 16); |
satok | 612c6e4 | 2011-08-01 19:35:27 +0900 | [diff] [blame] | 440 | } |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 441 | |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 442 | initSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, |
| 443 | inputLength, correction); |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 444 | WordsPriorityQueue *masterQueue = queuePool->getMasterQueue(); |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 445 | const bool isSpaceProximity = spaceProximityPos >= 0; |
| 446 | |
| 447 | // First word |
| 448 | const int firstInputWordStartPos = 0; |
| 449 | const int firstInputWordLength = isSpaceProximity ? spaceProximityPos : missingSpacePos; |
| 450 | int firstFreq = getMostFrequentWordLike( |
| 451 | firstInputWordStartPos, firstInputWordLength, proximityInfo, mWord); |
| 452 | unsigned short* firstOutputWord = 0; |
| 453 | int firstOutputWordLength = 0; |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 454 | if (firstFreq > 0) { |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 455 | firstOutputWordLength = firstInputWordLength; |
| 456 | firstOutputWord = mWord; |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 457 | } else if (!hasAutoCorrectionCandidate) { |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 458 | WordsPriorityQueue* firstWordQueue = queuePool->getSubQueue( |
| 459 | FIRST_WORD_INDEX, firstInputWordLength); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 460 | if (!firstWordQueue || firstWordQueue->size() < 1) { |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 461 | return; |
| 462 | } |
| 463 | int score = 0; |
| 464 | const double ns = firstWordQueue->getHighestNormalizedScore( |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 465 | proximityInfo->getPrimaryInputWord(), firstInputWordLength, |
| 466 | &firstOutputWord, &score, &firstOutputWordLength); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 467 | if (DEBUG_DICT) { |
| 468 | AKLOGI("NS1 = %f, Score = %d", ns, score); |
| 469 | } |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 470 | // Two words correction won't be done if the score of the first word doesn't exceed the |
| 471 | // threshold. |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 472 | if (ns < TWO_WORDS_CORRECTION_WITH_OTHER_ERROR_THRESHOLD |
| 473 | || firstOutputWordLength < SUB_QUEUE_MIN_WORD_LENGTH) { |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 474 | return; |
| 475 | } |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 476 | firstFreq = score >> (firstOutputWordLength |
satok | 54af64a | 2012-01-17 15:58:23 +0900 | [diff] [blame] | 477 | + TWO_WORDS_PLUS_OTHER_ERROR_CORRECTION_DEMOTION_DIVIDER); |
| 478 | } |
| 479 | |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 480 | if (DEBUG_DICT) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 481 | AKLOGI("First freq: %d", firstFreq); |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 482 | } |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 483 | |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 484 | if (firstFreq <= 0 || firstOutputWordLength <= 0 || MAX_WORD_LENGTH <= firstOutputWordLength) { |
| 485 | return; |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 486 | } |
| 487 | |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 488 | // Allocating fixed length array on stack |
| 489 | unsigned short outputWord[MAX_WORD_LENGTH]; |
| 490 | int outputWordLength = 0; |
| 491 | |
| 492 | for (int i = 0; i < firstOutputWordLength; ++i) { |
| 493 | outputWord[i] = firstOutputWord[i]; |
| 494 | } |
| 495 | |
| 496 | outputWord[firstOutputWordLength] = SPACE; |
| 497 | outputWordLength = firstOutputWordLength + 1; |
| 498 | |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 499 | // Second word |
| 500 | const int secondInputWordLength = isSpaceProximity |
| 501 | ? (inputLength - spaceProximityPos - 1) |
| 502 | : (inputLength - missingSpacePos); |
| 503 | const int secondInputWordStartPos = |
| 504 | isSpaceProximity ? (spaceProximityPos + 1) : missingSpacePos; |
| 505 | int secondFreq = getMostFrequentWordLike( |
| 506 | secondInputWordStartPos, secondInputWordLength, proximityInfo, mWord); |
| 507 | unsigned short* secondOutputWord = 0; |
| 508 | int secondOutputWordLength = 0; |
| 509 | |
| 510 | if (secondFreq > 0) { |
| 511 | secondOutputWordLength = secondInputWordLength; |
| 512 | secondOutputWord = mWord; |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 513 | } else if (!hasAutoCorrectionCandidate) { |
| 514 | const int offset = secondInputWordStartPos; |
| 515 | initSuggestions(proximityInfo, &xcoordinates[offset], &ycoordinates[offset], |
| 516 | codes + offset * MAX_PROXIMITY_CHARS, secondInputWordLength, correction); |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 517 | queuePool->clearSubQueue(SECOND_WORD_INDEX); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 518 | getSuggestionCandidates(useFullEditDistance, secondInputWordLength, correction, |
| 519 | queuePool, false, MAX_ERRORS_FOR_TWO_WORDS, SECOND_WORD_INDEX); |
| 520 | if (DEBUG_DICT) { |
| 521 | AKLOGI("Dump second word candidates %d", secondInputWordLength); |
| 522 | for (int i = 0; i < SUB_QUEUE_MAX_COUNT; ++i) { |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 523 | queuePool->getSubQueue(SECOND_WORD_INDEX, i)->dumpTopWord(); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 524 | } |
| 525 | } |
satok | 7409d15 | 2012-01-26 16:13:25 +0900 | [diff] [blame^] | 526 | WordsPriorityQueue* secondWordQueue = queuePool->getSubQueue( |
| 527 | SECOND_WORD_INDEX, secondInputWordLength); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 528 | if (!secondWordQueue || secondWordQueue->size() < 1) { |
| 529 | return; |
| 530 | } |
| 531 | int score = 0; |
| 532 | const double ns = secondWordQueue->getHighestNormalizedScore( |
| 533 | proximityInfo->getPrimaryInputWord(), secondInputWordLength, |
| 534 | &secondOutputWord, &score, &secondOutputWordLength); |
| 535 | if (DEBUG_DICT) { |
| 536 | AKLOGI("NS2 = %f, Score = %d", ns, score); |
| 537 | } |
| 538 | // Two words correction won't be done if the score of the first word doesn't exceed the |
| 539 | // threshold. |
| 540 | if (ns < TWO_WORDS_CORRECTION_WITH_OTHER_ERROR_THRESHOLD |
| 541 | || secondOutputWordLength < SUB_QUEUE_MIN_WORD_LENGTH) { |
| 542 | return; |
| 543 | } |
| 544 | secondFreq = score >> (secondOutputWordLength |
| 545 | + TWO_WORDS_PLUS_OTHER_ERROR_CORRECTION_DEMOTION_DIVIDER); |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 546 | } |
| 547 | |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 548 | if (DEBUG_DICT) { |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 549 | DUMP_WORD(secondOutputWord, secondOutputWordLength); |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 550 | AKLOGI("Second freq: %d", secondFreq); |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 551 | } |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 552 | |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 553 | if (secondFreq <= 0 || secondOutputWordLength <= 0 |
| 554 | || MAX_WORD_LENGTH <= (firstOutputWordLength + 1 + secondOutputWordLength)) { |
| 555 | return; |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 556 | } |
| 557 | |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 558 | for (int i = 0; i < secondOutputWordLength; ++i) { |
| 559 | outputWord[firstOutputWordLength + 1 + i] = secondOutputWord[i]; |
| 560 | } |
| 561 | |
| 562 | outputWordLength += secondOutputWordLength; |
| 563 | |
satok | 1a6da63 | 2011-12-16 23:15:06 +0900 | [diff] [blame] | 564 | // TODO: Remove initSuggestions and correction->setCorrectionParams |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 565 | initSuggestions(proximityInfo, xcoordinates, ycoordinates, codes, inputLength, correction); |
satok | 1a6da63 | 2011-12-16 23:15:06 +0900 | [diff] [blame] | 566 | |
| 567 | correction->setCorrectionParams(-1 /* skipPos */, -1 /* excessivePos */, |
| 568 | -1 /* transposedPos */, spaceProximityPos, missingSpacePos, |
| 569 | useFullEditDistance, false /* doAutoCompletion */, MAX_ERRORS_FOR_TWO_WORDS); |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 570 | const int pairFreq = correction->getFreqForSplitTwoWords(firstFreq, secondFreq, outputWord); |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 571 | if (DEBUG_DICT) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 572 | AKLOGI("Split two words: %d, %d, %d, %d", firstFreq, secondFreq, pairFreq, inputLength); |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 573 | } |
satok | bd6ccdd | 2012-01-23 12:30:20 +0900 | [diff] [blame] | 574 | addWord(outputWord, outputWordLength, pairFreq, masterQueue); |
satok | 612c6e4 | 2011-08-01 19:35:27 +0900 | [diff] [blame] | 575 | return; |
Jean Chalard | e6715e3 | 2011-06-30 19:47:25 +0900 | [diff] [blame] | 576 | } |
| 577 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 578 | // Wrapper for getMostFrequentWordLikeInner, which matches it to the previous |
| 579 | // interface. |
| 580 | inline int UnigramDictionary::getMostFrequentWordLike(const int startInputIndex, |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 581 | const int inputLength, ProximityInfo *proximityInfo, unsigned short *word) { |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 582 | uint16_t inWord[inputLength]; |
| 583 | |
| 584 | for (int i = 0; i < inputLength; ++i) { |
satok | 1147c7b | 2011-12-14 15:04:58 +0900 | [diff] [blame] | 585 | inWord[i] = (uint16_t)proximityInfo->getPrimaryCharAt(startInputIndex + i); |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 586 | } |
| 587 | return getMostFrequentWordLikeInner(inWord, inputLength, word); |
| 588 | } |
| 589 | |
| 590 | // This function will take the position of a character array within a CharGroup, |
| 591 | // and check it actually like-matches the word in inWord starting at startInputIndex, |
| 592 | // that is, it matches it with case and accents squashed. |
| 593 | // The function returns true if there was a full match, false otherwise. |
| 594 | // The function will copy on-the-fly the characters in the CharGroup to outNewWord. |
| 595 | // It will also place the end position of the array in outPos; in outInputIndex, |
| 596 | // it will place the index of the first char AFTER the match if there was a match, |
| 597 | // and the initial position if there was not. It makes sense because if there was |
| 598 | // a match we want to continue searching, but if there was not, we want to go to |
| 599 | // the next CharGroup. |
| 600 | // In and out parameters may point to the same location. This function takes care |
| 601 | // not to use any input parameters after it wrote into its outputs. |
| 602 | static inline bool testCharGroupForContinuedLikeness(const uint8_t flags, |
| 603 | const uint8_t* const root, const int startPos, |
| 604 | const uint16_t* const inWord, const int startInputIndex, |
| 605 | int32_t* outNewWord, int* outInputIndex, int* outPos) { |
| 606 | const bool hasMultipleChars = (0 != (UnigramDictionary::FLAG_HAS_MULTIPLE_CHARS & flags)); |
| 607 | int pos = startPos; |
| 608 | int32_t character = BinaryFormat::getCharCodeAndForwardPointer(root, &pos); |
Tadashi G. Takaoka | 6e3cb27 | 2011-11-11 14:26:13 +0900 | [diff] [blame] | 609 | int32_t baseChar = toBaseLowerCase(character); |
| 610 | const uint16_t wChar = toBaseLowerCase(inWord[startInputIndex]); |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 611 | |
| 612 | if (baseChar != wChar) { |
| 613 | *outPos = hasMultipleChars ? BinaryFormat::skipOtherCharacters(root, pos) : pos; |
| 614 | *outInputIndex = startInputIndex; |
| 615 | return false; |
| 616 | } |
| 617 | int inputIndex = startInputIndex; |
| 618 | outNewWord[inputIndex] = character; |
| 619 | if (hasMultipleChars) { |
| 620 | character = BinaryFormat::getCharCodeAndForwardPointer(root, &pos); |
| 621 | while (NOT_A_CHARACTER != character) { |
Tadashi G. Takaoka | 6e3cb27 | 2011-11-11 14:26:13 +0900 | [diff] [blame] | 622 | baseChar = toBaseLowerCase(character); |
| 623 | if (toBaseLowerCase(inWord[++inputIndex]) != baseChar) { |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 624 | *outPos = BinaryFormat::skipOtherCharacters(root, pos); |
| 625 | *outInputIndex = startInputIndex; |
| 626 | return false; |
| 627 | } |
| 628 | outNewWord[inputIndex] = character; |
| 629 | character = BinaryFormat::getCharCodeAndForwardPointer(root, &pos); |
| 630 | } |
| 631 | } |
| 632 | *outInputIndex = inputIndex + 1; |
| 633 | *outPos = pos; |
| 634 | return true; |
| 635 | } |
| 636 | |
| 637 | // This function is invoked when a word like the word searched for is found. |
| 638 | // It will compare the frequency to the max frequency, and if greater, will |
| 639 | // copy the word into the output buffer. In output value maxFreq, it will |
| 640 | // write the new maximum frequency if it changed. |
| 641 | static inline void onTerminalWordLike(const int freq, int32_t* newWord, const int length, |
| 642 | short unsigned int* outWord, int* maxFreq) { |
| 643 | if (freq > *maxFreq) { |
| 644 | for (int q = 0; q < length; ++q) |
| 645 | outWord[q] = newWord[q]; |
| 646 | outWord[length] = 0; |
| 647 | *maxFreq = freq; |
| 648 | } |
| 649 | } |
| 650 | |
| 651 | // Will find the highest frequency of the words like the one passed as an argument, |
| 652 | // that is, everything that only differs by case/accents. |
| 653 | int UnigramDictionary::getMostFrequentWordLikeInner(const uint16_t * const inWord, |
| 654 | const int length, short unsigned int* outWord) { |
| 655 | int32_t newWord[MAX_WORD_LENGTH_INTERNAL]; |
| 656 | int depth = 0; |
| 657 | int maxFreq = -1; |
| 658 | const uint8_t* const root = DICT_ROOT; |
| 659 | |
Jean Chalard | 4c0eca6 | 2012-01-16 15:15:53 +0900 | [diff] [blame] | 660 | int startPos = 0; |
| 661 | mStackChildCount[0] = BinaryFormat::getGroupCountAndForwardPointer(root, &startPos); |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 662 | mStackInputIndex[0] = 0; |
Jean Chalard | 4c0eca6 | 2012-01-16 15:15:53 +0900 | [diff] [blame] | 663 | mStackSiblingPos[0] = startPos; |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 664 | while (depth >= 0) { |
| 665 | const int charGroupCount = mStackChildCount[depth]; |
| 666 | int pos = mStackSiblingPos[depth]; |
| 667 | for (int charGroupIndex = charGroupCount - 1; charGroupIndex >= 0; --charGroupIndex) { |
| 668 | int inputIndex = mStackInputIndex[depth]; |
| 669 | const uint8_t flags = BinaryFormat::getFlagsAndForwardPointer(root, &pos); |
| 670 | // Test whether all chars in this group match with the word we are searching for. If so, |
| 671 | // we want to traverse its children (or if the length match, evaluate its frequency). |
| 672 | // Note that this function will output the position regardless, but will only write |
| 673 | // into inputIndex if there is a match. |
| 674 | const bool isAlike = testCharGroupForContinuedLikeness(flags, root, pos, inWord, |
| 675 | inputIndex, newWord, &inputIndex, &pos); |
| 676 | if (isAlike && (FLAG_IS_TERMINAL & flags) && (inputIndex == length)) { |
| 677 | const int frequency = BinaryFormat::readFrequencyWithoutMovingPointer(root, pos); |
| 678 | onTerminalWordLike(frequency, newWord, inputIndex, outWord, &maxFreq); |
| 679 | } |
| 680 | pos = BinaryFormat::skipFrequency(flags, pos); |
| 681 | const int siblingPos = BinaryFormat::skipChildrenPosAndAttributes(root, flags, pos); |
| 682 | const int childrenNodePos = BinaryFormat::readChildrenPosition(root, flags, pos); |
| 683 | // If we had a match and the word has children, we want to traverse them. We don't have |
| 684 | // to traverse words longer than the one we are searching for, since they will not match |
| 685 | // anyway, so don't traverse unless inputIndex < length. |
| 686 | if (isAlike && (-1 != childrenNodePos) && (inputIndex < length)) { |
| 687 | // Save position for this depth, to get back to this once children are done |
| 688 | mStackChildCount[depth] = charGroupIndex; |
| 689 | mStackSiblingPos[depth] = siblingPos; |
| 690 | // Prepare stack values for next depth |
| 691 | ++depth; |
| 692 | int childrenPos = childrenNodePos; |
| 693 | mStackChildCount[depth] = |
| 694 | BinaryFormat::getGroupCountAndForwardPointer(root, &childrenPos); |
| 695 | mStackSiblingPos[depth] = childrenPos; |
| 696 | mStackInputIndex[depth] = inputIndex; |
| 697 | pos = childrenPos; |
| 698 | // Go to the next depth level. |
| 699 | ++depth; |
| 700 | break; |
| 701 | } else { |
| 702 | // No match, or no children, or word too long to ever match: go the next sibling. |
| 703 | pos = siblingPos; |
| 704 | } |
| 705 | } |
| 706 | --depth; |
| 707 | } |
| 708 | return maxFreq; |
| 709 | } |
| 710 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 711 | bool UnigramDictionary::isValidWord(const uint16_t* const inWord, const int length) const { |
Jean Chalard | 6a0e964 | 2011-07-25 18:17:11 +0900 | [diff] [blame] | 712 | return NOT_VALID_WORD != BinaryFormat::getTerminalPosition(DICT_ROOT, inWord, length); |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 713 | } |
| 714 | |
| 715 | // TODO: remove this function. |
| 716 | int UnigramDictionary::getBigramPosition(int pos, unsigned short *word, int offset, |
| 717 | int length) const { |
| 718 | return -1; |
| 719 | } |
| 720 | |
| 721 | // ProcessCurrentNode returns a boolean telling whether to traverse children nodes or not. |
| 722 | // If the return value is false, then the caller should read in the output "nextSiblingPosition" |
| 723 | // to find out the address of the next sibling node and pass it to a new call of processCurrentNode. |
| 724 | // It is worthy to note that when false is returned, the output values other than |
| 725 | // nextSiblingPosition are undefined. |
| 726 | // If the return value is true, then the caller must proceed to traverse the children of this |
| 727 | // node. processCurrentNode will output the information about the children: their count in |
| 728 | // newCount, their position in newChildrenPosition, the traverseAllNodes flag in |
| 729 | // newTraverseAllNodes, the match weight into newMatchRate, the input index into newInputIndex, the |
| 730 | // diffs into newDiffs, the sibling position in nextSiblingPosition, and the output index into |
| 731 | // newOutputIndex. Please also note the following caveat: processCurrentNode does not know when |
| 732 | // there aren't any more nodes at this level, it merely returns the address of the first byte after |
| 733 | // the current node in nextSiblingPosition. Thus, the caller must keep count of the nodes at any |
| 734 | // given level, as output into newCount when traversing this level's parent. |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 735 | inline bool UnigramDictionary::processCurrentNode(const int initialPos, |
satok | cfca3c6 | 2011-08-10 14:30:10 +0900 | [diff] [blame] | 736 | Correction *correction, int *newCount, |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 737 | int *newChildrenPosition, int *nextSiblingPosition, WordsPriorityQueuePool *queuePool, |
| 738 | const int currentWordIndex) { |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 739 | if (DEBUG_DICT) { |
satok | cfca3c6 | 2011-08-10 14:30:10 +0900 | [diff] [blame] | 740 | correction->checkState(); |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 741 | } |
Jean Chalard | 0584f02 | 2011-06-30 19:23:16 +0900 | [diff] [blame] | 742 | int pos = initialPos; |
Jean Chalard | 0584f02 | 2011-06-30 19:23:16 +0900 | [diff] [blame] | 743 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 744 | // Flags contain the following information: |
| 745 | // - Address type (MASK_GROUP_ADDRESS_TYPE) on two bits: |
| 746 | // - FLAG_GROUP_ADDRESS_TYPE_{ONE,TWO,THREE}_BYTES means there are children and their address |
| 747 | // is on the specified number of bytes. |
| 748 | // - FLAG_GROUP_ADDRESS_TYPE_NOADDRESS means there are no children, and therefore no address. |
| 749 | // - FLAG_HAS_MULTIPLE_CHARS: whether this node has multiple char or not. |
| 750 | // - FLAG_IS_TERMINAL: whether this node is a terminal or not (it may still have children) |
| 751 | // - FLAG_HAS_BIGRAMS: whether this node has bigrams or not |
| 752 | const uint8_t flags = BinaryFormat::getFlagsAndForwardPointer(DICT_ROOT, &pos); |
| 753 | const bool hasMultipleChars = (0 != (FLAG_HAS_MULTIPLE_CHARS & flags)); |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 754 | const bool isTerminalNode = (0 != (FLAG_IS_TERMINAL & flags)); |
| 755 | |
| 756 | bool needsToInvokeOnTerminal = false; |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 757 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 758 | // This gets only ONE character from the stream. Next there will be: |
| 759 | // if FLAG_HAS_MULTIPLE CHARS: the other characters of the same node |
| 760 | // else if FLAG_IS_TERMINAL: the frequency |
| 761 | // else if MASK_GROUP_ADDRESS_TYPE is not NONE: the children address |
| 762 | // Note that you can't have a node that both is not a terminal and has no children. |
| 763 | int32_t c = BinaryFormat::getCharCodeAndForwardPointer(DICT_ROOT, &pos); |
| 764 | assert(NOT_A_CHARACTER != c); |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 765 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 766 | // We are going to loop through each character and make it look like it's a different |
| 767 | // node each time. To do that, we will process characters in this node in order until |
| 768 | // we find the character terminator. This is signalled by getCharCode* returning |
| 769 | // NOT_A_CHARACTER. |
| 770 | // As a special case, if there is only one character in this node, we must not read the |
| 771 | // next bytes so we will simulate the NOT_A_CHARACTER return by testing the flags. |
| 772 | // This way, each loop run will look like a "virtual node". |
| 773 | do { |
| 774 | // We prefetch the next char. If 'c' is the last char of this node, we will have |
| 775 | // NOT_A_CHARACTER in the next char. From this we can decide whether this virtual node |
| 776 | // should behave as a terminal or not and whether we have children. |
| 777 | const int32_t nextc = hasMultipleChars |
| 778 | ? BinaryFormat::getCharCodeAndForwardPointer(DICT_ROOT, &pos) : NOT_A_CHARACTER; |
| 779 | const bool isLastChar = (NOT_A_CHARACTER == nextc); |
| 780 | // If there are more chars in this nodes, then this virtual node is not a terminal. |
| 781 | // If we are on the last char, this virtual node is a terminal if this node is. |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 782 | const bool isTerminal = isLastChar && isTerminalNode; |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 783 | |
satok | cfca3c6 | 2011-08-10 14:30:10 +0900 | [diff] [blame] | 784 | Correction::CorrectionType stateType = correction->processCharAndCalcState( |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 785 | c, isTerminal); |
satok | cfca3c6 | 2011-08-10 14:30:10 +0900 | [diff] [blame] | 786 | if (stateType == Correction::TRAVERSE_ALL_ON_TERMINAL |
| 787 | || stateType == Correction::ON_TERMINAL) { |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 788 | needsToInvokeOnTerminal = true; |
satok | d03317c | 2011-12-14 21:38:11 +0900 | [diff] [blame] | 789 | } else if (stateType == Correction::UNRELATED || correction->needsToPrune()) { |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 790 | // We found that this is an unrelated character, so we should give up traversing |
| 791 | // this node and its children entirely. |
| 792 | // However we may not be on the last virtual node yet so we skip the remaining |
| 793 | // characters in this node, the frequency if it's there, read the next sibling |
| 794 | // position to output it, then return false. |
| 795 | // We don't have to output other values because we return false, as in |
| 796 | // "don't traverse children". |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 797 | if (!isLastChar) { |
| 798 | pos = BinaryFormat::skipOtherCharacters(DICT_ROOT, pos); |
| 799 | } |
| 800 | pos = BinaryFormat::skipFrequency(flags, pos); |
| 801 | *nextSiblingPosition = |
| 802 | BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos); |
| 803 | return false; |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 804 | } |
| 805 | |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 806 | // Prepare for the next character. Promote the prefetched char to current char - the loop |
| 807 | // will take care of prefetching the next. If we finally found our last char, nextc will |
| 808 | // contain NOT_A_CHARACTER. |
| 809 | c = nextc; |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 810 | } while (NOT_A_CHARACTER != c); |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 811 | |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 812 | if (isTerminalNode) { |
satok | 6ad15fc | 2012-01-16 16:21:21 +0900 | [diff] [blame] | 813 | // The frequency should be here, because we come here only if this is actually |
| 814 | // a terminal node, and we are on its last char. |
| 815 | const int freq = BinaryFormat::readFrequencyWithoutMovingPointer(DICT_ROOT, pos); |
| 816 | const int childrenAddressPos = BinaryFormat::skipFrequency(flags, pos); |
| 817 | const int attributesPos = BinaryFormat::skipChildrenPosition(flags, childrenAddressPos); |
| 818 | TerminalAttributes terminalAttributes(DICT_ROOT, flags, attributesPos); |
satok | 8330b48 | 2012-01-23 16:52:37 +0900 | [diff] [blame] | 819 | onTerminal(freq, terminalAttributes, correction, queuePool, needsToInvokeOnTerminal, |
| 820 | currentWordIndex); |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 821 | |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 822 | // If there are more chars in this node, then this virtual node has children. |
| 823 | // If we are on the last char, this virtual node has children if this node has. |
| 824 | const bool hasChildren = BinaryFormat::hasChildrenInFlags(flags); |
| 825 | |
| 826 | // This character matched the typed character (enough to traverse the node at least) |
| 827 | // so we just evaluated it. Now we should evaluate this virtual node's children - that |
| 828 | // is, if it has any. If it has no children, we're done here - so we skip the end of |
| 829 | // the node, output the siblings position, and return false "don't traverse children". |
| 830 | // Note that !hasChildren implies isLastChar, so we know we don't have to skip any |
| 831 | // remaining char in this group for there can't be any. |
| 832 | if (!hasChildren) { |
| 833 | pos = BinaryFormat::skipFrequency(flags, pos); |
| 834 | *nextSiblingPosition = |
| 835 | BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos); |
| 836 | return false; |
| 837 | } |
| 838 | |
| 839 | // Optimization: Prune out words that are too long compared to how much was typed. |
satok | cfca3c6 | 2011-08-10 14:30:10 +0900 | [diff] [blame] | 840 | if (correction->needsToPrune()) { |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 841 | pos = BinaryFormat::skipFrequency(flags, pos); |
| 842 | *nextSiblingPosition = |
| 843 | BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos); |
satok | 10266c0 | 2011-08-19 22:05:59 +0900 | [diff] [blame] | 844 | if (DEBUG_DICT_FULL) { |
satok | 9fb6f47 | 2012-01-13 18:01:22 +0900 | [diff] [blame] | 845 | AKLOGI("Traversing was pruned."); |
satok | 10266c0 | 2011-08-19 22:05:59 +0900 | [diff] [blame] | 846 | } |
satok | 8876b75 | 2011-08-04 18:31:57 +0900 | [diff] [blame] | 847 | return false; |
| 848 | } |
| 849 | } |
Jean Chalard | 1059f27 | 2011-06-28 20:45:05 +0900 | [diff] [blame] | 850 | |
| 851 | // Now we finished processing this node, and we want to traverse children. If there are no |
| 852 | // children, we can't come here. |
| 853 | assert(BinaryFormat::hasChildrenInFlags(flags)); |
| 854 | |
| 855 | // If this node was a terminal it still has the frequency under the pointer (it may have been |
| 856 | // read, but not skipped - see readFrequencyWithoutMovingPointer). |
| 857 | // Next come the children position, then possibly attributes (attributes are bigrams only for |
| 858 | // now, maybe something related to shortcuts in the future). |
| 859 | // Once this is read, we still need to output the number of nodes in the immediate children of |
| 860 | // this node, so we read and output it before returning true, as in "please traverse children". |
| 861 | pos = BinaryFormat::skipFrequency(flags, pos); |
| 862 | int childrenPos = BinaryFormat::readChildrenPosition(DICT_ROOT, flags, pos); |
| 863 | *nextSiblingPosition = BinaryFormat::skipChildrenPosAndAttributes(DICT_ROOT, flags, pos); |
| 864 | *newCount = BinaryFormat::getGroupCountAndForwardPointer(DICT_ROOT, &childrenPos); |
| 865 | *newChildrenPosition = childrenPos; |
| 866 | return true; |
Jean Chalard | 85a1d1e | 2011-06-21 22:23:21 +0900 | [diff] [blame] | 867 | } |
| 868 | |
satok | 3008825 | 2010-12-01 21:22:15 +0900 | [diff] [blame] | 869 | } // namespace latinime |