Previously, eng builds included a fingerprint that was a combination of the developers ldap, the date, and the time. This meant that the build system (including RBE) couldn't cache the ouput of aapt. This removes the ldap, day, and time part of that so that caching will work. Fixes: 200741997 Test: ran `aapt2 version` to verify the updated format Change-Id: Id0d1ff99c8fbbf18261d3fc06f21b2969ed2e247
572 lines
16 KiB
C++
572 lines
16 KiB
C++
/*
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* Copyright (C) 2015 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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#include "util/Util.h"
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#include <algorithm>
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#include <ostream>
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#include <string>
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#include <vector>
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#include "android-base/stringprintf.h"
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#include "android-base/strings.h"
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#include "androidfw/StringPiece.h"
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#include "build/version.h"
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#include "text/Unicode.h"
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#include "text/Utf8Iterator.h"
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#include "util/BigBuffer.h"
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#include "utils/Unicode.h"
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using ::aapt::text::Utf8Iterator;
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using ::android::StringPiece;
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using ::android::StringPiece16;
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namespace aapt {
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namespace util {
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// Package name and shared user id would be used as a part of the file name.
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// Limits size to 223 and reserves 32 for the OS.
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// See frameworks/base/core/java/android/content/pm/parsing/ParsingPackageUtils.java
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constexpr static const size_t kMaxPackageNameSize = 223;
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static std::vector<std::string> SplitAndTransform(
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const StringPiece& str, char sep, const std::function<char(char)>& f) {
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std::vector<std::string> parts;
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const StringPiece::const_iterator end = std::end(str);
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StringPiece::const_iterator start = std::begin(str);
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StringPiece::const_iterator current;
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do {
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current = std::find(start, end, sep);
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parts.emplace_back(str.substr(start, current).to_string());
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if (f) {
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std::string& part = parts.back();
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std::transform(part.begin(), part.end(), part.begin(), f);
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}
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start = current + 1;
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} while (current != end);
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return parts;
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}
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std::vector<std::string> Split(const StringPiece& str, char sep) {
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return SplitAndTransform(str, sep, nullptr);
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}
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std::vector<std::string> SplitAndLowercase(const StringPiece& str, char sep) {
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return SplitAndTransform(str, sep, ::tolower);
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}
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bool StartsWith(const StringPiece& str, const StringPiece& prefix) {
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if (str.size() < prefix.size()) {
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return false;
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}
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return str.substr(0, prefix.size()) == prefix;
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}
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bool EndsWith(const StringPiece& str, const StringPiece& suffix) {
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if (str.size() < suffix.size()) {
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return false;
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}
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return str.substr(str.size() - suffix.size(), suffix.size()) == suffix;
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}
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StringPiece TrimLeadingWhitespace(const StringPiece& str) {
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if (str.size() == 0 || str.data() == nullptr) {
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return str;
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}
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const char* start = str.data();
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const char* end = start + str.length();
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while (start != end && isspace(*start)) {
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start++;
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}
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return StringPiece(start, end - start);
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}
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StringPiece TrimTrailingWhitespace(const StringPiece& str) {
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if (str.size() == 0 || str.data() == nullptr) {
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return str;
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}
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const char* start = str.data();
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const char* end = start + str.length();
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while (end != start && isspace(*(end - 1))) {
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end--;
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}
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return StringPiece(start, end - start);
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}
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StringPiece TrimWhitespace(const StringPiece& str) {
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if (str.size() == 0 || str.data() == nullptr) {
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return str;
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}
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const char* start = str.data();
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const char* end = str.data() + str.length();
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while (start != end && isspace(*start)) {
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start++;
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}
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while (end != start && isspace(*(end - 1))) {
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end--;
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}
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return StringPiece(start, end - start);
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}
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static int IsJavaNameImpl(const StringPiece& str) {
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int pieces = 0;
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for (const StringPiece& piece : Tokenize(str, '.')) {
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pieces++;
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if (!text::IsJavaIdentifier(piece)) {
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return -1;
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}
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}
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return pieces;
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}
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bool IsJavaClassName(const StringPiece& str) {
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return IsJavaNameImpl(str) >= 2;
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}
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bool IsJavaPackageName(const StringPiece& str) {
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return IsJavaNameImpl(str) >= 1;
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}
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static int IsAndroidNameImpl(const StringPiece& str) {
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int pieces = 0;
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for (const StringPiece& piece : Tokenize(str, '.')) {
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if (piece.empty()) {
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return -1;
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}
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const char first_character = piece.data()[0];
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if (!::isalpha(first_character)) {
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return -1;
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}
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bool valid = std::all_of(piece.begin() + 1, piece.end(), [](const char c) -> bool {
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return ::isalnum(c) || c == '_';
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});
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if (!valid) {
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return -1;
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}
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pieces++;
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}
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return pieces;
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}
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bool IsAndroidPackageName(const StringPiece& str) {
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if (str.size() > kMaxPackageNameSize) {
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return false;
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}
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return IsAndroidNameImpl(str) > 1 || str == "android";
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}
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bool IsAndroidSharedUserId(const android::StringPiece& package_name,
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const android::StringPiece& shared_user_id) {
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if (shared_user_id.size() > kMaxPackageNameSize) {
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return false;
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}
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return shared_user_id.empty() || IsAndroidNameImpl(shared_user_id) > 1 ||
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package_name == "android";
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}
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bool IsAndroidSplitName(const StringPiece& str) {
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return IsAndroidNameImpl(str) > 0;
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}
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std::optional<std::string> GetFullyQualifiedClassName(const StringPiece& package,
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const StringPiece& classname) {
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if (classname.empty()) {
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return {};
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}
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if (util::IsJavaClassName(classname)) {
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return classname.to_string();
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}
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if (package.empty()) {
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return {};
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}
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std::string result = package.to_string();
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if (classname.data()[0] != '.') {
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result += '.';
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}
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result.append(classname.data(), classname.size());
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if (!IsJavaClassName(result)) {
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return {};
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}
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return result;
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}
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const char* GetToolName() {
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static const char* const sToolName = "Android Asset Packaging Tool (aapt)";
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return sToolName;
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}
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std::string GetToolFingerprint() {
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// DO NOT UPDATE, this is more of a marketing version.
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static const char* const sMajorVersion = "2";
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// Update minor version whenever a feature or flag is added.
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static const char* const sMinorVersion = "19";
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// The build id of aapt2 binary.
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static std::string sBuildId = android::build::GetBuildNumber();
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if (android::base::StartsWith(sBuildId, "eng.")) {
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time_t now = time(0);
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tm* ltm = localtime(&now);
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sBuildId = android::base::StringPrintf("eng.%d%d", 1900 + ltm->tm_year, 1 + ltm->tm_mon);
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}
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return android::base::StringPrintf("%s.%s-%s", sMajorVersion, sMinorVersion, sBuildId.c_str());
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}
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static size_t ConsumeDigits(const char* start, const char* end) {
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const char* c = start;
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for (; c != end && *c >= '0' && *c <= '9'; c++) {
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}
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return static_cast<size_t>(c - start);
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}
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bool VerifyJavaStringFormat(const StringPiece& str) {
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const char* c = str.begin();
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const char* const end = str.end();
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size_t arg_count = 0;
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bool nonpositional = false;
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while (c != end) {
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if (*c == '%' && c + 1 < end) {
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c++;
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if (*c == '%' || *c == 'n') {
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c++;
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continue;
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}
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arg_count++;
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size_t num_digits = ConsumeDigits(c, end);
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if (num_digits > 0) {
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c += num_digits;
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if (c != end && *c != '$') {
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// The digits were a size, but not a positional argument.
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nonpositional = true;
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}
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} else if (*c == '<') {
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// Reusing last argument, bad idea since positions can be moved around
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// during translation.
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nonpositional = true;
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c++;
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// Optionally we can have a $ after
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if (c != end && *c == '$') {
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c++;
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}
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} else {
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nonpositional = true;
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}
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// Ignore size, width, flags, etc.
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while (c != end && (*c == '-' || *c == '#' || *c == '+' || *c == ' ' ||
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*c == ',' || *c == '(' || (*c >= '0' && *c <= '9'))) {
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c++;
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}
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/*
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* This is a shortcut to detect strings that are going to Time.format()
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* instead of String.format()
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*
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* Comparison of String.format() and Time.format() args:
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*
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* String: ABC E GH ST X abcdefgh nost x
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* Time: DEFGHKMS W Za d hkm s w yz
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*
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* Therefore we know it's definitely Time if we have:
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* DFKMWZkmwyz
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*/
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if (c != end) {
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switch (*c) {
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case 'D':
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case 'F':
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case 'K':
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case 'M':
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case 'W':
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case 'Z':
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case 'k':
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case 'm':
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case 'w':
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case 'y':
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case 'z':
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return true;
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}
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}
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}
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if (c != end) {
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c++;
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}
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}
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if (arg_count > 1 && nonpositional) {
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// Multiple arguments were specified, but some or all were non positional.
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// Translated
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// strings may rearrange the order of the arguments, which will break the
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// string.
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return false;
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}
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return true;
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}
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std::string Utf8ToModifiedUtf8(const std::string& utf8) {
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// Java uses Modified UTF-8 which only supports the 1, 2, and 3 byte formats of UTF-8. To encode
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// 4 byte UTF-8 codepoints, Modified UTF-8 allows the use of surrogate pairs in the same format
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// of CESU-8 surrogate pairs. Calculate the size of the utf8 string with all 4 byte UTF-8
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// codepoints replaced with 2 3 byte surrogate pairs
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size_t modified_size = 0;
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const size_t size = utf8.size();
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for (size_t i = 0; i < size; i++) {
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if (((uint8_t) utf8[i] >> 4) == 0xF) {
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modified_size += 6;
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i += 3;
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} else {
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modified_size++;
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}
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}
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// Early out if no 4 byte codepoints are found
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if (size == modified_size) {
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return utf8;
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}
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std::string output;
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output.reserve(modified_size);
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for (size_t i = 0; i < size; i++) {
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if (((uint8_t) utf8[i] >> 4) == 0xF) {
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int32_t codepoint = utf32_from_utf8_at(utf8.data(), size, i, nullptr);
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// Calculate the high and low surrogates as UTF-16 would
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int32_t high = ((codepoint - 0x10000) / 0x400) + 0xD800;
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int32_t low = ((codepoint - 0x10000) % 0x400) + 0xDC00;
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// Encode each surrogate in UTF-8
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output.push_back((char) (0xE4 | ((high >> 12) & 0xF)));
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output.push_back((char) (0x80 | ((high >> 6) & 0x3F)));
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output.push_back((char) (0x80 | (high & 0x3F)));
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output.push_back((char) (0xE4 | ((low >> 12) & 0xF)));
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output.push_back((char) (0x80 | ((low >> 6) & 0x3F)));
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output.push_back((char) (0x80 | (low & 0x3F)));
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i += 3;
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} else {
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output.push_back(utf8[i]);
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}
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}
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return output;
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}
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std::string ModifiedUtf8ToUtf8(const std::string& modified_utf8) {
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// The UTF-8 representation will have a byte length less than or equal to the Modified UTF-8
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// representation.
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std::string output;
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output.reserve(modified_utf8.size());
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size_t index = 0;
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const size_t modified_size = modified_utf8.size();
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while (index < modified_size) {
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size_t next_index;
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int32_t high_surrogate = utf32_from_utf8_at(modified_utf8.data(), modified_size, index,
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&next_index);
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if (high_surrogate < 0) {
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return {};
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}
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// Check that the first codepoint is within the high surrogate range
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if (high_surrogate >= 0xD800 && high_surrogate <= 0xDB7F) {
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int32_t low_surrogate = utf32_from_utf8_at(modified_utf8.data(), modified_size, next_index,
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&next_index);
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if (low_surrogate < 0) {
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return {};
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}
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// Check that the second codepoint is within the low surrogate range
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if (low_surrogate >= 0xDC00 && low_surrogate <= 0xDFFF) {
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const char32_t codepoint = (char32_t) (((high_surrogate - 0xD800) * 0x400)
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+ (low_surrogate - 0xDC00) + 0x10000);
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// The decoded codepoint should represent a 4 byte, UTF-8 character
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const size_t utf8_length = (size_t) utf32_to_utf8_length(&codepoint, 1);
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if (utf8_length != 4) {
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return {};
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}
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// Encode the UTF-8 representation of the codepoint into the string
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char* start = &output[output.size()];
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output.resize(output.size() + utf8_length);
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utf32_to_utf8((char32_t*) &codepoint, 1, start, utf8_length + 1);
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index = next_index;
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continue;
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}
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}
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// Append non-surrogate pairs to the output string
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for (size_t i = index; i < next_index; i++) {
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output.push_back(modified_utf8[i]);
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}
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index = next_index;
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}
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return output;
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}
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std::u16string Utf8ToUtf16(const StringPiece& utf8) {
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ssize_t utf16_length = utf8_to_utf16_length(
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reinterpret_cast<const uint8_t*>(utf8.data()), utf8.length());
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if (utf16_length <= 0) {
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return {};
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}
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std::u16string utf16;
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utf16.resize(utf16_length);
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utf8_to_utf16(reinterpret_cast<const uint8_t*>(utf8.data()), utf8.length(),
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&*utf16.begin(), utf16_length + 1);
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return utf16;
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}
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std::string Utf16ToUtf8(const StringPiece16& utf16) {
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ssize_t utf8_length = utf16_to_utf8_length(utf16.data(), utf16.length());
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if (utf8_length <= 0) {
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return {};
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}
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std::string utf8;
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utf8.resize(utf8_length);
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utf16_to_utf8(utf16.data(), utf16.length(), &*utf8.begin(), utf8_length + 1);
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return utf8;
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}
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bool WriteAll(std::ostream& out, const BigBuffer& buffer) {
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for (const auto& b : buffer) {
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if (!out.write(reinterpret_cast<const char*>(b.buffer.get()), b.size)) {
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return false;
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}
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}
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return true;
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}
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std::unique_ptr<uint8_t[]> Copy(const BigBuffer& buffer) {
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std::unique_ptr<uint8_t[]> data =
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std::unique_ptr<uint8_t[]>(new uint8_t[buffer.size()]);
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uint8_t* p = data.get();
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for (const auto& block : buffer) {
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memcpy(p, block.buffer.get(), block.size);
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p += block.size;
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}
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return data;
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}
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typename Tokenizer::iterator& Tokenizer::iterator::operator++() {
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const char* start = token_.end();
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const char* end = str_.end();
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if (start == end) {
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end_ = true;
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token_.assign(token_.end(), 0);
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return *this;
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}
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start += 1;
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const char* current = start;
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while (current != end) {
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if (*current == separator_) {
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token_.assign(start, current - start);
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return *this;
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}
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++current;
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}
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token_.assign(start, end - start);
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return *this;
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}
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bool Tokenizer::iterator::operator==(const iterator& rhs) const {
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// We check equality here a bit differently.
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// We need to know that the addresses are the same.
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return token_.begin() == rhs.token_.begin() &&
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token_.end() == rhs.token_.end() && end_ == rhs.end_;
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}
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bool Tokenizer::iterator::operator!=(const iterator& rhs) const {
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return !(*this == rhs);
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}
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Tokenizer::iterator::iterator(const StringPiece& s, char sep, const StringPiece& tok, bool end)
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|
: str_(s), separator_(sep), token_(tok), end_(end) {}
|
|
|
|
Tokenizer::Tokenizer(const StringPiece& str, char sep)
|
|
: begin_(++iterator(str, sep, StringPiece(str.begin() - 1, 0), false)),
|
|
end_(str, sep, StringPiece(str.end(), 0), true) {}
|
|
|
|
bool ExtractResFilePathParts(const StringPiece& path, StringPiece* out_prefix,
|
|
StringPiece* out_entry, StringPiece* out_suffix) {
|
|
const StringPiece res_prefix("res/");
|
|
if (!StartsWith(path, res_prefix)) {
|
|
return false;
|
|
}
|
|
|
|
StringPiece::const_iterator last_occurence = path.end();
|
|
for (auto iter = path.begin() + res_prefix.size(); iter != path.end();
|
|
++iter) {
|
|
if (*iter == '/') {
|
|
last_occurence = iter;
|
|
}
|
|
}
|
|
|
|
if (last_occurence == path.end()) {
|
|
return false;
|
|
}
|
|
|
|
auto iter = std::find(last_occurence, path.end(), '.');
|
|
*out_suffix = StringPiece(iter, path.end() - iter);
|
|
*out_entry = StringPiece(last_occurence + 1, iter - last_occurence - 1);
|
|
*out_prefix = StringPiece(path.begin(), last_occurence - path.begin() + 1);
|
|
return true;
|
|
}
|
|
|
|
StringPiece16 GetString16(const android::ResStringPool& pool, size_t idx) {
|
|
if (auto str = pool.stringAt(idx); str.ok()) {
|
|
return *str;
|
|
}
|
|
return StringPiece16();
|
|
}
|
|
|
|
std::string GetString(const android::ResStringPool& pool, size_t idx) {
|
|
if (auto str = pool.string8At(idx); str.ok()) {
|
|
return ModifiedUtf8ToUtf8(str->to_string());
|
|
}
|
|
return Utf16ToUtf8(GetString16(pool, idx));
|
|
}
|
|
|
|
} // namespace util
|
|
} // namespace aapt
|