| 1 | // © 2016 and later: Unicode, Inc. and others. | 
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| 2 | // License & terms of use: http://www.unicode.org/copyright.html | 
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| 3 | /* | 
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| 4 | ********************************************************************** | 
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| 5 | *   Copyright (C) 1999-2011, International Business Machines | 
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| 6 | *   Corporation and others.  All Rights Reserved. | 
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| 7 | ********************************************************************** | 
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| 8 | *   Date        Name        Description | 
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| 9 | *   11/17/99    aliu        Creation. | 
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| 10 | ********************************************************************** | 
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| 11 | */ | 
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| 12 |  | 
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| 13 | #include "unicode/utypes.h" | 
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| 14 |  | 
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| 15 | #if !UCONFIG_NO_TRANSLITERATION | 
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| 16 |  | 
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| 17 | #include "unicode/unistr.h" | 
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| 18 | #include "unicode/uniset.h" | 
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| 19 | #include "unicode/utf16.h" | 
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| 20 | #include "rbt_set.h" | 
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| 21 | #include "rbt_rule.h" | 
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| 22 | #include "cmemory.h" | 
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| 23 | #include "putilimp.h" | 
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| 24 |  | 
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| 25 | U_CDECL_BEGIN | 
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| 26 | static void U_CALLCONV _deleteRule(void *rule) { | 
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| 27 | delete (icu::TransliterationRule *)rule; | 
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| 28 | } | 
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| 29 | U_CDECL_END | 
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| 30 |  | 
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| 31 | //---------------------------------------------------------------------- | 
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| 32 | // BEGIN Debugging support | 
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| 33 | //---------------------------------------------------------------------- | 
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| 34 |  | 
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| 35 | // #define DEBUG_RBT | 
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| 36 |  | 
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| 37 | #ifdef DEBUG_RBT | 
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| 38 | #include <stdio.h> | 
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| 39 | #include "charstr.h" | 
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| 40 |  | 
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| 41 | /** | 
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| 42 | * @param appendTo result is appended to this param. | 
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| 43 | * @param input the string being transliterated | 
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| 44 | * @param pos the index struct | 
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| 45 | */ | 
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| 46 | static UnicodeString& _formatInput(UnicodeString &appendTo, | 
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| 47 | const UnicodeString& input, | 
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| 48 | const UTransPosition& pos) { | 
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| 49 | // Output a string of the form aaa{bbb|ccc|ddd}eee, where | 
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| 50 | // the {} indicate the context start and limit, and the || | 
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| 51 | // indicate the start and limit. | 
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| 52 | if (0 <= pos.contextStart && | 
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| 53 | pos.contextStart <= pos.start && | 
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| 54 | pos.start <= pos.limit && | 
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| 55 | pos.limit <= pos.contextLimit && | 
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| 56 | pos.contextLimit <= input.length()) { | 
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| 57 |  | 
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| 58 | UnicodeString a, b, c, d, e; | 
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| 59 | input.extractBetween(0, pos.contextStart, a); | 
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| 60 | input.extractBetween(pos.contextStart, pos.start, b); | 
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| 61 | input.extractBetween(pos.start, pos.limit, c); | 
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| 62 | input.extractBetween(pos.limit, pos.contextLimit, d); | 
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| 63 | input.extractBetween(pos.contextLimit, input.length(), e); | 
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| 64 | appendTo.append(a).append((UChar)123/*{*/).append(b). | 
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| 65 | append((UChar)124/*|*/).append(c).append((UChar)124/*|*/).append(d). | 
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| 66 | append((UChar)125/*}*/).append(e); | 
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| 67 | } else { | 
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| 68 | appendTo.append( "INVALID UTransPosition"); | 
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| 69 | //appendTo.append((UnicodeString)"INVALID UTransPosition {cs=" + | 
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| 70 | //                pos.contextStart + ", s=" + pos.start + ", l=" + | 
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| 71 | //                pos.limit + ", cl=" + pos.contextLimit + "} on " + | 
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| 72 | //                input); | 
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| 73 | } | 
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| 74 | return appendTo; | 
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| 75 | } | 
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| 76 |  | 
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| 77 | // Append a hex string to the target | 
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| 78 | UnicodeString& _appendHex(uint32_t number, | 
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| 79 | int32_t digits, | 
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| 80 | UnicodeString& target) { | 
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| 81 | static const UChar digitString[] = { | 
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| 82 | 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39, | 
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| 83 | 0x41, 0x42, 0x43, 0x44, 0x45, 0x46, 0 | 
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| 84 | }; | 
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| 85 | while (digits--) { | 
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| 86 | target += digitString[(number >> (digits*4)) & 0xF]; | 
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| 87 | } | 
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| 88 | return target; | 
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| 89 | } | 
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| 90 |  | 
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| 91 | // Replace nonprintable characters with unicode escapes | 
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| 92 | UnicodeString& _escape(const UnicodeString &source, | 
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| 93 | UnicodeString &target) { | 
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| 94 | for (int32_t i = 0; i < source.length(); ) { | 
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| 95 | UChar32 ch = source.char32At(i); | 
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| 96 | i += U16_LENGTH(ch); | 
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| 97 | if (ch < 0x09 || (ch > 0x0A && ch < 0x20)|| ch > 0x7E) { | 
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| 98 | if (ch <= 0xFFFF) { | 
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| 99 | target += "\\u"; | 
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| 100 | _appendHex(ch, 4, target); | 
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| 101 | } else { | 
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| 102 | target += "\\U"; | 
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| 103 | _appendHex(ch, 8, target); | 
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| 104 | } | 
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| 105 | } else { | 
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| 106 | target += ch; | 
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| 107 | } | 
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| 108 | } | 
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| 109 | return target; | 
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| 110 | } | 
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| 111 |  | 
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| 112 | inline void _debugOut(const char* msg, TransliterationRule* rule, | 
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| 113 | const Replaceable& theText, UTransPosition& pos) { | 
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| 114 | UnicodeString buf(msg, ""); | 
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| 115 | if (rule) { | 
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| 116 | UnicodeString r; | 
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| 117 | rule->toRule(r, TRUE); | 
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| 118 | buf.append((UChar)32).append(r); | 
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| 119 | } | 
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| 120 | buf.append(UnicodeString( " => ", "")); | 
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| 121 | UnicodeString* text = (UnicodeString*)&theText; | 
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| 122 | _formatInput(buf, *text, pos); | 
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| 123 | UnicodeString esc; | 
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| 124 | _escape(buf, esc); | 
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| 125 | CharString cbuf(esc); | 
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| 126 | printf( "%s\n", (const char*) cbuf); | 
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| 127 | } | 
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| 128 |  | 
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| 129 | #else | 
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| 130 | #define _debugOut(msg, rule, theText, pos) | 
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| 131 | #endif | 
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| 132 |  | 
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| 133 | //---------------------------------------------------------------------- | 
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| 134 | // END Debugging support | 
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| 135 | //---------------------------------------------------------------------- | 
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| 136 |  | 
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| 137 | // Fill the precontext and postcontext with the patterns of the rules | 
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| 138 | // that are masking one another. | 
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| 139 | static void maskingError(const icu::TransliterationRule& rule1, | 
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| 140 | const icu::TransliterationRule& rule2, | 
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| 141 | UParseError& parseError) { | 
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| 142 | icu::UnicodeString r; | 
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| 143 | int32_t len; | 
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| 144 |  | 
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| 145 | parseError.line = parseError.offset = -1; | 
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| 146 |  | 
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| 147 | // for pre-context | 
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| 148 | rule1.toRule(r, FALSE); | 
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| 149 | len = uprv_min(r.length(), U_PARSE_CONTEXT_LEN-1); | 
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| 150 | r.extract(0, len, parseError.preContext); | 
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| 151 | parseError.preContext[len] = 0; | 
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| 152 |  | 
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| 153 | //for post-context | 
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| 154 | r.truncate(0); | 
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| 155 | rule2.toRule(r, FALSE); | 
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| 156 | len = uprv_min(r.length(), U_PARSE_CONTEXT_LEN-1); | 
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| 157 | r.extract(0, len, parseError.postContext); | 
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| 158 | parseError.postContext[len] = 0; | 
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| 159 | } | 
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| 160 |  | 
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| 161 | U_NAMESPACE_BEGIN | 
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| 162 |  | 
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| 163 | /** | 
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| 164 | * Construct a new empty rule set. | 
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| 165 | */ | 
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| 166 | TransliterationRuleSet::TransliterationRuleSet(UErrorCode& status) : UMemory() { | 
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| 167 | ruleVector = new UVector(&_deleteRule, NULL, status); | 
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| 168 | if (U_FAILURE(status)) { | 
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| 169 | return; | 
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| 170 | } | 
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| 171 | if (ruleVector == NULL) { | 
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| 172 | status = U_MEMORY_ALLOCATION_ERROR; | 
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| 173 | } | 
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| 174 | rules = NULL; | 
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| 175 | maxContextLength = 0; | 
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| 176 | } | 
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| 177 |  | 
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| 178 | /** | 
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| 179 | * Copy constructor. | 
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| 180 | */ | 
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| 181 | TransliterationRuleSet::TransliterationRuleSet(const TransliterationRuleSet& other) : | 
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| 182 | UMemory(other), | 
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| 183 | ruleVector(0), | 
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| 184 | rules(0), | 
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| 185 | maxContextLength(other.maxContextLength) { | 
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| 186 |  | 
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| 187 | int32_t i, len; | 
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| 188 | uprv_memcpy(index, other.index, sizeof(index)); | 
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| 189 | UErrorCode status = U_ZERO_ERROR; | 
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| 190 | ruleVector = new UVector(&_deleteRule, NULL, status); | 
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| 191 | if (other.ruleVector != 0 && ruleVector != 0 && U_SUCCESS(status)) { | 
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| 192 | len = other.ruleVector->size(); | 
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| 193 | for (i=0; i<len && U_SUCCESS(status); ++i) { | 
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| 194 | TransliterationRule *tempTranslitRule = new TransliterationRule(*(TransliterationRule*)other.ruleVector->elementAt(i)); | 
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| 195 | // Null pointer test | 
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| 196 | if (tempTranslitRule == NULL) { | 
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| 197 | status = U_MEMORY_ALLOCATION_ERROR; | 
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| 198 | break; | 
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| 199 | } | 
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| 200 | ruleVector->addElement(tempTranslitRule, status); | 
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| 201 | if (U_FAILURE(status)) { | 
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| 202 | break; | 
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| 203 | } | 
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| 204 | } | 
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| 205 | } | 
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| 206 | if (other.rules != 0 && U_SUCCESS(status)) { | 
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| 207 | UParseError p; | 
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| 208 | freeze(p, status); | 
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| 209 | } | 
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| 210 | } | 
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| 211 |  | 
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| 212 | /** | 
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| 213 | * Destructor. | 
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| 214 | */ | 
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| 215 | TransliterationRuleSet::~TransliterationRuleSet() { | 
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| 216 | delete ruleVector; // This deletes the contained rules | 
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| 217 | uprv_free(rules); | 
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| 218 | } | 
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| 219 |  | 
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| 220 | void TransliterationRuleSet::setData(const TransliterationRuleData* d) { | 
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| 221 | /** | 
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| 222 | * We assume that the ruleset has already been frozen. | 
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| 223 | */ | 
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| 224 | int32_t len = index[256]; // see freeze() | 
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| 225 | for (int32_t i=0; i<len; ++i) { | 
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| 226 | rules[i]->setData(d); | 
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| 227 | } | 
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| 228 | } | 
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| 229 |  | 
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| 230 | /** | 
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| 231 | * Return the maximum context length. | 
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| 232 | * @return the length of the longest preceding context. | 
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| 233 | */ | 
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| 234 | int32_t TransliterationRuleSet::getMaximumContextLength(void) const { | 
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| 235 | return maxContextLength; | 
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| 236 | } | 
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| 237 |  | 
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| 238 | /** | 
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| 239 | * Add a rule to this set.  Rules are added in order, and order is | 
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| 240 | * significant.  The last call to this method must be followed by | 
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| 241 | * a call to <code>freeze()</code> before the rule set is used. | 
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| 242 | * | 
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| 243 | * <p>If freeze() has already been called, calling addRule() | 
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| 244 | * unfreezes the rules, and freeze() must be called again. | 
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| 245 | * | 
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| 246 | * @param adoptedRule the rule to add | 
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| 247 | */ | 
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| 248 | void TransliterationRuleSet::addRule(TransliterationRule* adoptedRule, | 
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| 249 | UErrorCode& status) { | 
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| 250 | if (U_FAILURE(status)) { | 
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| 251 | delete adoptedRule; | 
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| 252 | return; | 
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| 253 | } | 
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| 254 | ruleVector->addElement(adoptedRule, status); | 
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| 255 |  | 
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| 256 | int32_t len; | 
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| 257 | if ((len = adoptedRule->getContextLength()) > maxContextLength) { | 
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| 258 | maxContextLength = len; | 
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| 259 | } | 
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| 260 |  | 
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| 261 | uprv_free(rules); | 
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| 262 | rules = 0; | 
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| 263 | } | 
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| 264 |  | 
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| 265 | /** | 
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| 266 | * Check this for masked rules and index it to optimize performance. | 
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| 267 | * The sequence of operations is: (1) add rules to a set using | 
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| 268 | * <code>addRule()</code>; (2) freeze the set using | 
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| 269 | * <code>freeze()</code>; (3) use the rule set.  If | 
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| 270 | * <code>addRule()</code> is called after calling this method, it | 
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| 271 | * invalidates this object, and this method must be called again. | 
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| 272 | * That is, <code>freeze()</code> may be called multiple times, | 
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| 273 | * although for optimal performance it shouldn't be. | 
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| 274 | */ | 
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| 275 | void TransliterationRuleSet::freeze(UParseError& parseError,UErrorCode& status) { | 
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| 276 | /* Construct the rule array and index table.  We reorder the | 
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| 277 | * rules by sorting them into 256 bins.  Each bin contains all | 
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| 278 | * rules matching the index value for that bin.  A rule | 
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| 279 | * matches an index value if string whose first key character | 
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| 280 | * has a low byte equal to the index value can match the rule. | 
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| 281 | * | 
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| 282 | * Each bin contains zero or more rules, in the same order | 
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| 283 | * they were found originally.  However, the total rules in | 
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| 284 | * the bins may exceed the number in the original vector, | 
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| 285 | * since rules that have a variable as their first key | 
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| 286 | * character will generally fall into more than one bin. | 
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| 287 | * | 
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| 288 | * That is, each bin contains all rules that either have that | 
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| 289 | * first index value as their first key character, or have | 
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| 290 | * a set containing the index value as their first character. | 
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| 291 | */ | 
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| 292 | int32_t n = ruleVector->size(); | 
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| 293 | int32_t j; | 
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| 294 | int16_t x; | 
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| 295 | UVector v(2*n, status); // heuristic; adjust as needed | 
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| 296 |  | 
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| 297 | if (U_FAILURE(status)) { | 
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| 298 | return; | 
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| 299 | } | 
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| 300 |  | 
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| 301 | /* Precompute the index values.  This saves a LOT of time. | 
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| 302 | * Be careful not to call malloc(0). | 
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| 303 | */ | 
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| 304 | int16_t* indexValue = (int16_t*) uprv_malloc( sizeof(int16_t) * (n > 0 ? n : 1) ); | 
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| 305 | /* test for NULL */ | 
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| 306 | if (indexValue == 0) { | 
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| 307 | status = U_MEMORY_ALLOCATION_ERROR; | 
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| 308 | return; | 
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| 309 | } | 
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| 310 | for (j=0; j<n; ++j) { | 
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| 311 | TransliterationRule* r = (TransliterationRule*) ruleVector->elementAt(j); | 
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| 312 | indexValue[j] = r->getIndexValue(); | 
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| 313 | } | 
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| 314 | for (x=0; x<256; ++x) { | 
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| 315 | index[x] = v.size(); | 
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| 316 | for (j=0; j<n; ++j) { | 
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| 317 | if (indexValue[j] >= 0) { | 
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| 318 | if (indexValue[j] == x) { | 
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| 319 | v.addElement(ruleVector->elementAt(j), status); | 
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| 320 | } | 
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| 321 | } else { | 
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| 322 | // If the indexValue is < 0, then the first key character is | 
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| 323 | // a set, and we must use the more time-consuming | 
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| 324 | // matchesIndexValue check.  In practice this happens | 
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| 325 | // rarely, so we seldom tread this code path. | 
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| 326 | TransliterationRule* r = (TransliterationRule*) ruleVector->elementAt(j); | 
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| 327 | if (r->matchesIndexValue((uint8_t)x)) { | 
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| 328 | v.addElement(r, status); | 
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| 329 | } | 
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| 330 | } | 
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| 331 | } | 
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| 332 | } | 
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| 333 | uprv_free(indexValue); | 
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| 334 | index[256] = v.size(); | 
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| 335 |  | 
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| 336 | /* Freeze things into an array. | 
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| 337 | */ | 
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| 338 | uprv_free(rules); // Contains alias pointers | 
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| 339 |  | 
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| 340 | /* You can't do malloc(0)! */ | 
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| 341 | if (v.size() == 0) { | 
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| 342 | rules = NULL; | 
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| 343 | return; | 
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| 344 | } | 
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| 345 | rules = (TransliterationRule **)uprv_malloc(v.size() * sizeof(TransliterationRule *)); | 
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| 346 | /* test for NULL */ | 
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| 347 | if (rules == 0) { | 
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| 348 | status = U_MEMORY_ALLOCATION_ERROR; | 
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| 349 | return; | 
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| 350 | } | 
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| 351 | for (j=0; j<v.size(); ++j) { | 
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| 352 | rules[j] = (TransliterationRule*) v.elementAt(j); | 
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| 353 | } | 
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| 354 |  | 
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| 355 | // TODO Add error reporting that indicates the rules that | 
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| 356 | //      are being masked. | 
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| 357 | //UnicodeString errors; | 
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| 358 |  | 
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| 359 | /* Check for masking.  This is MUCH faster than our old check, | 
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| 360 | * which was each rule against each following rule, since we | 
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| 361 | * only have to check for masking within each bin now.  It's | 
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| 362 | * 256*O(n2^2) instead of O(n1^2), where n1 is the total rule | 
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| 363 | * count, and n2 is the per-bin rule count.  But n2<<n1, so | 
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| 364 | * it's a big win. | 
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| 365 | */ | 
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| 366 | for (x=0; x<256; ++x) { | 
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| 367 | for (j=index[x]; j<index[x+1]-1; ++j) { | 
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| 368 | TransliterationRule* r1 = rules[j]; | 
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| 369 | for (int32_t k=j+1; k<index[x+1]; ++k) { | 
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| 370 | TransliterationRule* r2 = rules[k]; | 
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| 371 | if (r1->masks(*r2)) { | 
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| 372 | //|                 if (errors == null) { | 
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| 373 | //|                     errors = new StringBuffer(); | 
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| 374 | //|                 } else { | 
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| 375 | //|                     errors.append("\n"); | 
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| 376 | //|                 } | 
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| 377 | //|                 errors.append("Rule " + r1 + " masks " + r2); | 
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| 378 | status = U_RULE_MASK_ERROR; | 
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| 379 | maskingError(*r1, *r2, parseError); | 
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| 380 | return; | 
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| 381 | } | 
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| 382 | } | 
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| 383 | } | 
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| 384 | } | 
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| 385 |  | 
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| 386 | //if (errors != null) { | 
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| 387 | //    throw new IllegalArgumentException(errors.toString()); | 
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| 388 | //} | 
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| 389 | } | 
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| 390 |  | 
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| 391 | /** | 
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| 392 | * Transliterate the given text with the given UTransPosition | 
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| 393 | * indices.  Return TRUE if the transliteration should continue | 
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| 394 | * or FALSE if it should halt (because of a U_PARTIAL_MATCH match). | 
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| 395 | * Note that FALSE is only ever returned if isIncremental is TRUE. | 
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| 396 | * @param text the text to be transliterated | 
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| 397 | * @param pos the position indices, which will be updated | 
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| 398 | * @param incremental if TRUE, assume new text may be inserted | 
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| 399 | * at index.limit, and return FALSE if thre is a partial match. | 
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| 400 | * @return TRUE unless a U_PARTIAL_MATCH has been obtained, | 
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| 401 | * indicating that transliteration should stop until more text | 
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| 402 | * arrives. | 
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| 403 | */ | 
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| 404 | UBool TransliterationRuleSet::transliterate(Replaceable& text, | 
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| 405 | UTransPosition& pos, | 
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| 406 | UBool incremental) { | 
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| 407 | int16_t indexByte = (int16_t) (text.char32At(pos.start) & 0xFF); | 
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| 408 | for (int32_t i=index[indexByte]; i<index[indexByte+1]; ++i) { | 
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| 409 | UMatchDegree m = rules[i]->matchAndReplace(text, pos, incremental); | 
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| 410 | switch (m) { | 
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| 411 | case U_MATCH: | 
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| 412 | _debugOut( "match", rules[i], text, pos); | 
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| 413 | return TRUE; | 
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| 414 | case U_PARTIAL_MATCH: | 
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| 415 | _debugOut( "partial match", rules[i], text, pos); | 
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| 416 | return FALSE; | 
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| 417 | default: /* Ram: added default to make GCC happy */ | 
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| 418 | break; | 
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| 419 | } | 
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| 420 | } | 
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| 421 | // No match or partial match from any rule | 
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| 422 | pos.start += U16_LENGTH(text.char32At(pos.start)); | 
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| 423 | _debugOut( "no match", NULL, text, pos); | 
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| 424 | return TRUE; | 
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| 425 | } | 
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| 426 |  | 
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| 427 | /** | 
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| 428 | * Create rule strings that represents this rule set. | 
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| 429 | */ | 
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| 430 | UnicodeString& TransliterationRuleSet::toRules(UnicodeString& ruleSource, | 
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| 431 | UBool escapeUnprintable) const { | 
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| 432 | int32_t i; | 
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| 433 | int32_t count = ruleVector->size(); | 
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| 434 | ruleSource.truncate(0); | 
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| 435 | for (i=0; i<count; ++i) { | 
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| 436 | if (i != 0) { | 
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| 437 | ruleSource.append((UChar) 0x000A /*\n*/); | 
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| 438 | } | 
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| 439 | TransliterationRule *r = | 
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| 440 | (TransliterationRule*) ruleVector->elementAt(i); | 
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| 441 | r->toRule(ruleSource, escapeUnprintable); | 
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| 442 | } | 
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| 443 | return ruleSource; | 
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| 444 | } | 
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| 445 |  | 
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| 446 | /** | 
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| 447 | * Return the set of all characters that may be modified | 
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| 448 | * (getTarget=false) or emitted (getTarget=true) by this set. | 
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| 449 | */ | 
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| 450 | UnicodeSet& TransliterationRuleSet::getSourceTargetSet(UnicodeSet& result, | 
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| 451 | UBool getTarget) const | 
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| 452 | { | 
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| 453 | result.clear(); | 
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| 454 | int32_t count = ruleVector->size(); | 
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| 455 | for (int32_t i=0; i<count; ++i) { | 
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| 456 | TransliterationRule* r = | 
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| 457 | (TransliterationRule*) ruleVector->elementAt(i); | 
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| 458 | if (getTarget) { | 
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| 459 | r->addTargetSetTo(result); | 
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| 460 | } else { | 
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| 461 | r->addSourceSetTo(result); | 
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| 462 | } | 
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| 463 | } | 
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| 464 | return result; | 
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| 465 | } | 
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| 466 |  | 
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| 467 | U_NAMESPACE_END | 
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| 468 |  | 
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| 469 | #endif /* #if !UCONFIG_NO_TRANSLITERATION */ | 
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| 470 |  | 
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