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Before this patch, the font fallback chain iterated all installed font families if a variation selector was specified. This CL narrows down the range of iteration. To decide the font family for the variation sequence, we need to search for both the variation sequence and its base code point. The new range of the iteration is a union of them. With this change, the running time of Paint.hasGlyph for the variation sequence improves 50% and the running time of Paint.measureText for the variation sequence improves 40% for the large text case on Nexus 6 userdebug. Bug: 26784699 Bug: 11750374 Change-Id: Iced1349e3ca750821d8882c551551f65bb569794
204 lines
7.7 KiB
C++
204 lines
7.7 KiB
C++
/*
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* Copyright (C) 2013 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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// Determine coverage of font given its raw "cmap" OpenType table
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#define LOG_TAG "Minikin"
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#include <cutils/log.h>
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#include <vector>
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using std::vector;
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#include <minikin/SparseBitSet.h>
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#include <minikin/CmapCoverage.h>
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namespace android {
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// These could perhaps be optimized to use __builtin_bswap16 and friends.
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static uint32_t readU16(const uint8_t* data, size_t offset) {
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return ((uint32_t)data[offset]) << 8 | ((uint32_t)data[offset + 1]);
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}
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static uint32_t readU32(const uint8_t* data, size_t offset) {
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return ((uint32_t)data[offset]) << 24 | ((uint32_t)data[offset + 1]) << 16 |
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((uint32_t)data[offset + 2]) << 8 | ((uint32_t)data[offset + 3]);
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}
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static void addRange(vector<uint32_t> &coverage, uint32_t start, uint32_t end) {
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#ifdef VERBOSE_DEBUG
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ALOGD("adding range %d-%d\n", start, end);
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#endif
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if (coverage.empty() || coverage.back() < start) {
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coverage.push_back(start);
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coverage.push_back(end);
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} else {
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coverage.back() = end;
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}
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}
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// Get the coverage information out of a Format 4 subtable, storing it in the coverage vector
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static bool getCoverageFormat4(vector<uint32_t>& coverage, const uint8_t* data, size_t size) {
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const size_t kSegCountOffset = 6;
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const size_t kEndCountOffset = 14;
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const size_t kHeaderSize = 16;
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const size_t kSegmentSize = 8; // total size of array elements for one segment
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if (kEndCountOffset > size) {
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return false;
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}
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size_t segCount = readU16(data, kSegCountOffset) >> 1;
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if (kHeaderSize + segCount * kSegmentSize > size) {
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return false;
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}
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for (size_t i = 0; i < segCount; i++) {
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uint32_t end = readU16(data, kEndCountOffset + 2 * i);
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uint32_t start = readU16(data, kHeaderSize + 2 * (segCount + i));
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if (end < start) {
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// invalid segment range: size must be positive
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return false;
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}
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uint32_t rangeOffset = readU16(data, kHeaderSize + 2 * (3 * segCount + i));
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if (rangeOffset == 0) {
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uint32_t delta = readU16(data, kHeaderSize + 2 * (2 * segCount + i));
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if (((end + delta) & 0xffff) > end - start) {
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addRange(coverage, start, end + 1);
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} else {
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for (uint32_t j = start; j < end + 1; j++) {
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if (((j + delta) & 0xffff) != 0) {
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addRange(coverage, j, j + 1);
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}
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}
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}
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} else {
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for (uint32_t j = start; j < end + 1; j++) {
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uint32_t actualRangeOffset = kHeaderSize + 6 * segCount + rangeOffset +
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(i + j - start) * 2;
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if (actualRangeOffset + 2 > size) {
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// invalid rangeOffset is considered a "warning" by OpenType Sanitizer
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continue;
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}
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uint32_t glyphId = readU16(data, actualRangeOffset);
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if (glyphId != 0) {
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addRange(coverage, j, j + 1);
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}
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}
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}
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}
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return true;
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}
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// Get the coverage information out of a Format 12 subtable, storing it in the coverage vector
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static bool getCoverageFormat12(vector<uint32_t>& coverage, const uint8_t* data, size_t size) {
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const size_t kNGroupsOffset = 12;
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const size_t kFirstGroupOffset = 16;
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const size_t kGroupSize = 12;
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const size_t kStartCharCodeOffset = 0;
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const size_t kEndCharCodeOffset = 4;
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const size_t kMaxNGroups = 0xfffffff0 / kGroupSize; // protection against overflow
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// For all values < kMaxNGroups, kFirstGroupOffset + nGroups * kGroupSize fits in 32 bits.
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if (kFirstGroupOffset > size) {
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return false;
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}
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uint32_t nGroups = readU32(data, kNGroupsOffset);
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if (nGroups >= kMaxNGroups || kFirstGroupOffset + nGroups * kGroupSize > size) {
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return false;
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}
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for (uint32_t i = 0; i < nGroups; i++) {
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uint32_t groupOffset = kFirstGroupOffset + i * kGroupSize;
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uint32_t start = readU32(data, groupOffset + kStartCharCodeOffset);
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uint32_t end = readU32(data, groupOffset + kEndCharCodeOffset);
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if (end < start) {
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// invalid group range: size must be positive
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return false;
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}
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addRange(coverage, start, end + 1); // file is inclusive, vector is exclusive
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}
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return true;
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}
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bool CmapCoverage::getCoverage(SparseBitSet& coverage, const uint8_t* cmap_data, size_t cmap_size,
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bool* has_cmap_format14_subtable) {
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vector<uint32_t> coverageVec;
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const size_t kHeaderSize = 4;
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const size_t kNumTablesOffset = 2;
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const size_t kTableSize = 8;
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const size_t kPlatformIdOffset = 0;
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const size_t kEncodingIdOffset = 2;
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const size_t kOffsetOffset = 4;
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const uint16_t kUnicodePlatformId = 0;
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const uint16_t kMicrosoftPlatformId = 3;
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const uint16_t kUnicodeBmpEncodingId = 1;
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const uint16_t kVariationSequencesEncodingId = 5;
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const uint16_t kUnicodeUcs4EncodingId = 10;
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const uint32_t kNoTable = UINT32_MAX;
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if (kHeaderSize > cmap_size) {
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return false;
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}
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uint32_t numTables = readU16(cmap_data, kNumTablesOffset);
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if (kHeaderSize + numTables * kTableSize > cmap_size) {
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return false;
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}
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uint32_t bestTable = kNoTable;
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bool hasCmapFormat14Subtable = false;
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for (uint32_t i = 0; i < numTables; i++) {
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uint16_t platformId = readU16(cmap_data, kHeaderSize + i * kTableSize + kPlatformIdOffset);
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uint16_t encodingId = readU16(cmap_data, kHeaderSize + i * kTableSize + kEncodingIdOffset);
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if (platformId == kMicrosoftPlatformId && encodingId == kUnicodeUcs4EncodingId) {
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bestTable = i;
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break;
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} else if (platformId == kMicrosoftPlatformId && encodingId == kUnicodeBmpEncodingId) {
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bestTable = i;
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} else if (platformId == kUnicodePlatformId &&
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encodingId == kVariationSequencesEncodingId) {
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uint32_t offset = readU32(cmap_data, kHeaderSize + i * kTableSize + kOffsetOffset);
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if (offset <= cmap_size - 2 && readU16(cmap_data, offset) == 14) {
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hasCmapFormat14Subtable = true;
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}
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}
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}
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*has_cmap_format14_subtable = hasCmapFormat14Subtable;
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#ifdef VERBOSE_DEBUG
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ALOGD("best table = %d\n", bestTable);
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#endif
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if (bestTable == kNoTable) {
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return false;
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}
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uint32_t offset = readU32(cmap_data, kHeaderSize + bestTable * kTableSize + kOffsetOffset);
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if (offset > cmap_size - 2) {
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return false;
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}
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uint16_t format = readU16(cmap_data, offset);
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bool success = false;
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const uint8_t* tableData = cmap_data + offset;
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const size_t tableSize = cmap_size - offset;
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if (format == 4) {
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success = getCoverageFormat4(coverageVec, tableData, tableSize);
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} else if (format == 12) {
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success = getCoverageFormat12(coverageVec, tableData, tableSize);
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}
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if (success) {
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coverage.initFromRanges(&coverageVec.front(), coverageVec.size() >> 1);
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}
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#ifdef VERBOSE_DEBUG
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for (size_t i = 0; i < coverageVec.size(); i += 2) {
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ALOGD("%x:%x\n", coverageVec[i], coverageVec[i + 1]);
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}
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ALOGD("success = %d", success);
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#endif
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return success;
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}
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} // namespace android
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