e977c057a9
X-SVN-Rev: 35227
442 lines
17 KiB
C++
442 lines
17 KiB
C++
/*
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*******************************************************************************
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* Copyright (C) 2013-2014, International Business Machines
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* Corporation and others. All Rights Reserved.
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*******************************************************************************
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* collationdatareader.cpp
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*
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* created on: 2013feb07
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* created by: Markus W. Scherer
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*/
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#include "unicode/utypes.h"
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#if !UCONFIG_NO_COLLATION
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#include "unicode/ucol.h"
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#include "unicode/udata.h"
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#include "unicode/uscript.h"
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#include "cmemory.h"
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#include "collation.h"
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#include "collationdata.h"
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#include "collationdatareader.h"
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#include "collationfastlatin.h"
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#include "collationkeys.h"
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#include "collationrootelements.h"
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#include "collationsettings.h"
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#include "collationtailoring.h"
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#include "normalizer2impl.h"
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#include "uassert.h"
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#include "ucmndata.h"
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#include "utrie2.h"
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#define LENGTHOF(array) (int32_t)(sizeof(array)/sizeof((array)[0]))
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U_NAMESPACE_BEGIN
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namespace {
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int32_t getIndex(const int32_t *indexes, int32_t length, int32_t i) {
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return (i < length) ? indexes[i] : -1;
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}
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} // namespace
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void
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CollationDataReader::read(const CollationTailoring *base, const uint8_t *inBytes, int32_t inLength,
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CollationTailoring &tailoring, UErrorCode &errorCode) {
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if(U_FAILURE(errorCode)) { return; }
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if(base != NULL) {
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if(inBytes == NULL || (0 <= inLength && inLength < 24)) {
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errorCode = U_ILLEGAL_ARGUMENT_ERROR;
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return;
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}
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const DataHeader *header = reinterpret_cast<const DataHeader *>(inBytes);
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if(!(header->dataHeader.magic1 == 0xda && header->dataHeader.magic2 == 0x27 &&
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isAcceptable(tailoring.version, NULL, NULL, &header->info))) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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if(base->getUCAVersion() != tailoring.getUCAVersion()) {
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errorCode = U_COLLATOR_VERSION_MISMATCH;
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return;
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}
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int32_t headerLength = header->dataHeader.headerSize;
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inBytes += headerLength;
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if(inLength >= 0) {
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inLength -= headerLength;
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}
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}
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if(inBytes == NULL || (0 <= inLength && inLength < 8)) {
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errorCode = U_ILLEGAL_ARGUMENT_ERROR;
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return;
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}
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const int32_t *inIndexes = reinterpret_cast<const int32_t *>(inBytes);
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int32_t indexesLength = inIndexes[IX_INDEXES_LENGTH];
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if(indexesLength < 2 || (0 <= inLength && inLength < indexesLength * 4)) {
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errorCode = U_INVALID_FORMAT_ERROR; // Not enough indexes.
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return;
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}
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// Assume that the tailoring data is in initial state,
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// with NULL pointers and 0 lengths.
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// Set pointers to non-empty data parts.
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// Do this in order of their byte offsets. (Should help porting to Java.)
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int32_t index; // one of the indexes[] slots
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int32_t offset; // byte offset for the index part
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int32_t length; // number of bytes in the index part
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if(indexesLength > IX_TOTAL_SIZE) {
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length = inIndexes[IX_TOTAL_SIZE];
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} else if(indexesLength > IX_REORDER_CODES_OFFSET) {
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length = inIndexes[indexesLength - 1];
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} else {
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length = 0; // only indexes, and inLength was already checked for them
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}
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if(0 <= inLength && inLength < length) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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const CollationData *baseData = base == NULL ? NULL : base->data;
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const int32_t *reorderCodes = NULL;
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int32_t reorderCodesLength = 0;
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index = IX_REORDER_CODES_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 4) {
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if(baseData == NULL) {
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// We assume for collation settings that
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// the base data does not have a reordering.
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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reorderCodes = reinterpret_cast<const int32_t *>(inBytes + offset);
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reorderCodesLength = length / 4;
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}
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// There should be a reorder table only if there are reorder codes.
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// However, when there are reorder codes the reorder table may be omitted to reduce
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// the data size.
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const uint8_t *reorderTable = NULL;
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index = IX_REORDER_TABLE_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 256) {
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if(reorderCodesLength == 0) {
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errorCode = U_INVALID_FORMAT_ERROR; // Reordering table without reordering codes.
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return;
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}
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reorderTable = inBytes + offset;
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} else {
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// If we have reorder codes, then build the reorderTable at the end,
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// when the CollationData is otherwise complete.
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}
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if(baseData != NULL && baseData->numericPrimary != (inIndexes[IX_OPTIONS] & 0xff000000)) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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CollationData *data = NULL; // Remains NULL if there are no mappings.
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index = IX_TRIE_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 8) {
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if(!tailoring.ensureOwnedData(errorCode)) { return; }
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data = tailoring.ownedData;
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data->base = baseData;
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data->numericPrimary = inIndexes[IX_OPTIONS] & 0xff000000;
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data->trie = tailoring.trie = utrie2_openFromSerialized(
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UTRIE2_32_VALUE_BITS, inBytes + offset, length, NULL,
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&errorCode);
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if(U_FAILURE(errorCode)) { return; }
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} else if(baseData != NULL) {
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// Use the base data. Only the settings are tailored.
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tailoring.data = baseData;
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} else {
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errorCode = U_INVALID_FORMAT_ERROR; // No mappings.
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return;
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}
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index = IX_CES_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 8) {
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if(data == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR; // Tailored ces without tailored trie.
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return;
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}
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data->ces = reinterpret_cast<const int64_t *>(inBytes + offset);
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data->cesLength = length / 8;
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}
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index = IX_CE32S_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 4) {
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if(data == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR; // Tailored ce32s without tailored trie.
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return;
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}
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data->ce32s = reinterpret_cast<const uint32_t *>(inBytes + offset);
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data->ce32sLength = length / 4;
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}
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int32_t jamoCE32sStart = getIndex(inIndexes, indexesLength, IX_JAMO_CE32S_START);
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if(jamoCE32sStart >= 0) {
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if(data == NULL || data->ce32s == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR; // Index into non-existent ce32s[].
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return;
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}
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data->jamoCE32s = data->ce32s + jamoCE32sStart;
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} else if(data == NULL) {
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// Nothing to do.
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} else if(baseData != NULL) {
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data->jamoCE32s = baseData->jamoCE32s;
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} else {
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errorCode = U_INVALID_FORMAT_ERROR; // No Jamo CE32s for Hangul processing.
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return;
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}
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index = IX_ROOT_ELEMENTS_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 4) {
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length /= 4;
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if(data == NULL || length <= CollationRootElements::IX_SEC_TER_BOUNDARIES) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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data->rootElements = reinterpret_cast<const uint32_t *>(inBytes + offset);
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data->rootElementsLength = length;
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uint32_t commonSecTer = data->rootElements[CollationRootElements::IX_COMMON_SEC_AND_TER_CE];
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if(commonSecTer != Collation::COMMON_SEC_AND_TER_CE) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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uint32_t secTerBoundaries = data->rootElements[CollationRootElements::IX_SEC_TER_BOUNDARIES];
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if((secTerBoundaries >> 24) < CollationKeys::SEC_COMMON_HIGH) {
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// [fixed last secondary common byte] is too low,
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// and secondary weights would collide with compressed common secondaries.
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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}
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index = IX_CONTEXTS_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 2) {
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if(data == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR; // Tailored contexts without tailored trie.
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return;
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}
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data->contexts = reinterpret_cast<const UChar *>(inBytes + offset);
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data->contextsLength = length / 2;
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}
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index = IX_UNSAFE_BWD_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 2) {
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if(data == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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if(baseData == NULL) {
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// Create the unsafe-backward set for the root collator.
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// Include all non-zero combining marks and trail surrogates.
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// We do this at load time, rather than at build time,
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// to simplify Unicode version bootstrapping:
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// The root data builder only needs the new FractionalUCA.txt data,
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// but it need not be built with a version of ICU already updated to
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// the corresponding new Unicode Character Database.
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//
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// The following is an optimized version of
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// new UnicodeSet("[[:^lccc=0:][\\udc00-\\udfff]]").
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// It is faster and requires fewer code dependencies.
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tailoring.unsafeBackwardSet = new UnicodeSet(0xdc00, 0xdfff); // trail surrogates
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if(tailoring.unsafeBackwardSet == NULL) {
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errorCode = U_MEMORY_ALLOCATION_ERROR;
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return;
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}
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data->nfcImpl.addLcccChars(*tailoring.unsafeBackwardSet);
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} else {
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// Clone the root collator's set contents.
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tailoring.unsafeBackwardSet = static_cast<UnicodeSet *>(
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baseData->unsafeBackwardSet->cloneAsThawed());
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if(tailoring.unsafeBackwardSet == NULL) {
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errorCode = U_MEMORY_ALLOCATION_ERROR;
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return;
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}
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}
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// Add the ranges from the data file to the unsafe-backward set.
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USerializedSet sset;
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const uint16_t *unsafeData = reinterpret_cast<const uint16_t *>(inBytes + offset);
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if(!uset_getSerializedSet(&sset, unsafeData, length / 2)) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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int32_t count = uset_getSerializedRangeCount(&sset);
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for(int32_t i = 0; i < count; ++i) {
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UChar32 start, end;
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uset_getSerializedRange(&sset, i, &start, &end);
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tailoring.unsafeBackwardSet->add(start, end);
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}
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// Mark each lead surrogate as "unsafe"
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// if any of its 1024 associated supplementary code points is "unsafe".
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UChar32 c = 0x10000;
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for(UChar lead = 0xd800; lead < 0xdc00; ++lead, c += 0x400) {
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if(!tailoring.unsafeBackwardSet->containsNone(c, c + 0x3ff)) {
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tailoring.unsafeBackwardSet->add(lead);
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}
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}
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tailoring.unsafeBackwardSet->freeze();
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data->unsafeBackwardSet = tailoring.unsafeBackwardSet;
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} else if(data == NULL) {
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// Nothing to do.
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} else if(baseData != NULL) {
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// No tailoring-specific data: Alias the root collator's set.
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data->unsafeBackwardSet = baseData->unsafeBackwardSet;
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} else {
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errorCode = U_INVALID_FORMAT_ERROR; // No unsafeBackwardSet.
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return;
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}
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// If the fast Latin format version is different,
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// or the version is set to 0 for "no fast Latin table",
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// then just always use the normal string comparison path.
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if(data != NULL) {
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data->fastLatinTable = NULL;
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data->fastLatinTableLength = 0;
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if(((inIndexes[IX_OPTIONS] >> 16) & 0xff) == CollationFastLatin::VERSION) {
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index = IX_FAST_LATIN_TABLE_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 2) {
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data->fastLatinTable = reinterpret_cast<const uint16_t *>(inBytes + offset);
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data->fastLatinTableLength = length / 2;
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if((*data->fastLatinTable >> 8) != CollationFastLatin::VERSION) {
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errorCode = U_INVALID_FORMAT_ERROR; // header vs. table version mismatch
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return;
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}
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} else if(baseData != NULL) {
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data->fastLatinTable = baseData->fastLatinTable;
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data->fastLatinTableLength = baseData->fastLatinTableLength;
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}
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}
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}
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index = IX_SCRIPTS_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 2) {
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if(data == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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data->scripts = reinterpret_cast<const uint16_t *>(inBytes + offset);
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data->scriptsLength = length / 2;
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} else if(data == NULL) {
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// Nothing to do.
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} else if(baseData != NULL) {
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data->scripts = baseData->scripts;
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data->scriptsLength = baseData->scriptsLength;
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}
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index = IX_COMPRESSIBLE_BYTES_OFFSET;
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offset = getIndex(inIndexes, indexesLength, index);
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length = getIndex(inIndexes, indexesLength, index + 1) - offset;
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if(length >= 256) {
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if(data == NULL) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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data->compressibleBytes = reinterpret_cast<const UBool *>(inBytes + offset);
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} else if(data == NULL) {
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// Nothing to do.
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} else if(baseData != NULL) {
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data->compressibleBytes = baseData->compressibleBytes;
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} else {
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errorCode = U_INVALID_FORMAT_ERROR; // No compressibleBytes[].
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return;
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}
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const CollationSettings &ts = *tailoring.settings;
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int32_t options = inIndexes[IX_OPTIONS] & 0xffff;
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uint16_t fastLatinPrimaries[CollationFastLatin::LATIN_LIMIT];
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int32_t fastLatinOptions = CollationFastLatin::getOptions(
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tailoring.data, ts, fastLatinPrimaries, LENGTHOF(fastLatinPrimaries));
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if(options == ts.options && ts.variableTop != 0 &&
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reorderCodesLength == ts.reorderCodesLength &&
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uprv_memcmp(reorderCodes, ts.reorderCodes, reorderCodesLength * 4) == 0 &&
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fastLatinOptions == ts.fastLatinOptions &&
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(fastLatinOptions < 0 ||
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uprv_memcmp(fastLatinPrimaries, ts.fastLatinPrimaries,
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sizeof(fastLatinPrimaries)) == 0)) {
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return;
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}
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CollationSettings *settings = SharedObject::copyOnWrite(tailoring.settings);
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if(settings == NULL) {
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errorCode = U_MEMORY_ALLOCATION_ERROR;
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return;
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}
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settings->options = options;
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// Set variableTop from options and scripts data.
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settings->variableTop = tailoring.data->getLastPrimaryForGroup(
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UCOL_REORDER_CODE_FIRST + settings->getMaxVariable());
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if(settings->variableTop == 0) {
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errorCode = U_INVALID_FORMAT_ERROR;
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return;
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}
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if(reorderCodesLength == 0 || reorderTable != NULL) {
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settings->aliasReordering(reorderCodes, reorderCodesLength, reorderTable);
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} else {
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uint8_t table[256];
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baseData->makeReorderTable(reorderCodes, reorderCodesLength, table, errorCode);
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if(U_FAILURE(errorCode)) { return; }
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if(!settings->setReordering(reorderCodes, reorderCodesLength,table)) {
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errorCode = U_MEMORY_ALLOCATION_ERROR;
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return;
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}
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}
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settings->fastLatinOptions = CollationFastLatin::getOptions(
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tailoring.data, *settings,
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settings->fastLatinPrimaries, LENGTHOF(settings->fastLatinPrimaries));
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}
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UBool U_CALLCONV
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CollationDataReader::isAcceptable(void *context,
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const char * /* type */, const char * /*name*/,
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const UDataInfo *pInfo) {
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if(
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pInfo->size >= 20 &&
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pInfo->isBigEndian == U_IS_BIG_ENDIAN &&
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pInfo->charsetFamily == U_CHARSET_FAMILY &&
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pInfo->dataFormat[0] == 0x55 && // dataFormat="UCol"
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pInfo->dataFormat[1] == 0x43 &&
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pInfo->dataFormat[2] == 0x6f &&
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pInfo->dataFormat[3] == 0x6c &&
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pInfo->formatVersion[0] == 4
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) {
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UVersionInfo *version = static_cast<UVersionInfo *>(context);
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if(version != NULL) {
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uprv_memcpy(version, pInfo->dataVersion, 4);
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}
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return TRUE;
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} else {
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return FALSE;
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}
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}
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U_NAMESPACE_END
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#endif // !UCONFIG_NO_COLLATION
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