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409 lines
14 KiB
409 lines
14 KiB
/*
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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 "utf.h"
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#include <map>
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#include <vector>
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#include <android-base/stringprintf.h>
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#include "gtest/gtest.h"
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#include "utf-inl.h"
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namespace art {
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class UtfTest : public testing::Test {};
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TEST_F(UtfTest, GetLeadingUtf16Char) {
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EXPECT_EQ(0xffff, GetLeadingUtf16Char(0xeeeeffff));
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}
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TEST_F(UtfTest, GetTrailingUtf16Char) {
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EXPECT_EQ(0xffff, GetTrailingUtf16Char(0xffffeeee));
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EXPECT_EQ(0, GetTrailingUtf16Char(0x0000aaaa));
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}
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#define EXPECT_ARRAY_POSITION(expected, end, start) \
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EXPECT_EQ(static_cast<uintptr_t>(expected), \
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reinterpret_cast<uintptr_t>(end) - reinterpret_cast<uintptr_t>(start));
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// A test string containing one, two, three and four byte UTF-8 sequences.
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static const uint8_t kAllSequences[] = {
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0x24,
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0xc2, 0xa2,
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0xe2, 0x82, 0xac,
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0xf0, 0x9f, 0x8f, 0xa0,
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0x00
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};
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// A test string that contains a UTF-8 encoding of a surrogate pair
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// (code point = U+10400).
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static const uint8_t kSurrogateEncoding[] = {
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0xed, 0xa0, 0x81,
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0xed, 0xb0, 0x80,
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0x00
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};
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TEST_F(UtfTest, GetUtf16FromUtf8) {
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const char* const start = reinterpret_cast<const char*>(kAllSequences);
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const char* ptr = start;
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uint32_t pair = 0;
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// Single byte sequence.
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0x24, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(1, ptr, start);
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// Two byte sequence.
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0xa2, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(3, ptr, start);
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// Three byte sequence.
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0x20ac, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(6, ptr, start);
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// Four byte sequence
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0xd83c, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0xdfe0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(10, ptr, start);
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// Null terminator.
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(11, ptr, start);
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}
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TEST_F(UtfTest, GetUtf16FromUtf8_SurrogatesPassThrough) {
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const char* const start = reinterpret_cast<const char *>(kSurrogateEncoding);
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const char* ptr = start;
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uint32_t pair = 0;
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0xd801, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(3, ptr, start);
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pair = GetUtf16FromUtf8(&ptr);
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EXPECT_EQ(0xdc00, GetLeadingUtf16Char(pair));
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EXPECT_EQ(0, GetTrailingUtf16Char(pair));
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EXPECT_ARRAY_POSITION(6, ptr, start);
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}
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TEST_F(UtfTest, CountModifiedUtf8Chars) {
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EXPECT_EQ(5u, CountModifiedUtf8Chars(reinterpret_cast<const char *>(kAllSequences)));
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EXPECT_EQ(2u, CountModifiedUtf8Chars(reinterpret_cast<const char *>(kSurrogateEncoding)));
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}
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static void AssertConversion(const std::vector<uint16_t>& input,
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const std::vector<uint8_t>& expected) {
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ASSERT_EQ(expected.size(), CountUtf8Bytes(&input[0], input.size()));
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std::vector<uint8_t> output(expected.size());
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ConvertUtf16ToModifiedUtf8(reinterpret_cast<char*>(&output[0]), expected.size(),
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&input[0], input.size());
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EXPECT_EQ(expected, output);
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}
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TEST_F(UtfTest, CountAndConvertUtf8Bytes) {
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// Surrogate pairs will be converted into 4 byte sequences.
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AssertConversion({ 0xd801, 0xdc00 }, { 0xf0, 0x90, 0x90, 0x80 });
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// Three byte encodings that are below & above the leading surrogate
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// range respectively.
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AssertConversion({ 0xdef0 }, { 0xed, 0xbb, 0xb0 });
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AssertConversion({ 0xdcff }, { 0xed, 0xb3, 0xbf });
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// Two byte encoding.
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AssertConversion({ 0x0101 }, { 0xc4, 0x81 });
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// Two byte special case : 0 must use an overlong encoding.
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AssertConversion({ 0x0101, 0x0000 }, { 0xc4, 0x81, 0xc0, 0x80 });
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// One byte encoding.
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AssertConversion({ 'h', 'e', 'l', 'l', 'o' }, { 0x68, 0x65, 0x6c, 0x6c, 0x6f });
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AssertConversion({
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0xd802, 0xdc02, // Surrogate pair.
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0xdef0, 0xdcff, // Three byte encodings.
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0x0101, 0x0000, // Two byte encodings.
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'p' , 'p' // One byte encoding.
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}, {
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0xf0, 0x90, 0xa0, 0x82,
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0xed, 0xbb, 0xb0, 0xed, 0xb3, 0xbf,
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0xc4, 0x81, 0xc0, 0x80,
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0x70, 0x70
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});
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}
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TEST_F(UtfTest, CountAndConvertUtf8Bytes_UnpairedSurrogate) {
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// Unpaired trailing surrogate at the end of input.
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AssertConversion({ 'h', 'e', 0xd801 }, { 'h', 'e', 0xed, 0xa0, 0x81 });
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// Unpaired (or incorrectly paired) surrogates in the middle of the input.
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const std::map<std::vector<uint16_t>, std::vector<uint8_t>> prefixes {
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{{ 'h' }, { 'h' }},
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{{ 0 }, { 0xc0, 0x80 }},
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{{ 0x81 }, { 0xc2, 0x81 }},
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{{ 0x801 }, { 0xe0, 0xa0, 0x81 }},
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};
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const std::map<std::vector<uint16_t>, std::vector<uint8_t>> suffixes {
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{{ 'e' }, { 'e' }},
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{{ 0 }, { 0xc0, 0x80 }},
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{{ 0x7ff }, { 0xdf, 0xbf }},
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{{ 0xffff }, { 0xef, 0xbf, 0xbf }},
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};
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const std::map<std::vector<uint16_t>, std::vector<uint8_t>> tests {
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{{ 0xd801 }, { 0xed, 0xa0, 0x81 }},
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{{ 0xdc00 }, { 0xed, 0xb0, 0x80 }},
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{{ 0xd801, 0xd801 }, { 0xed, 0xa0, 0x81, 0xed, 0xa0, 0x81 }},
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{{ 0xdc00, 0xdc00 }, { 0xed, 0xb0, 0x80, 0xed, 0xb0, 0x80 }},
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};
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for (const auto& prefix : prefixes) {
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const std::vector<uint16_t>& prefix_in = prefix.first;
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const std::vector<uint8_t>& prefix_out = prefix.second;
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for (const auto& test : tests) {
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const std::vector<uint16_t>& test_in = test.first;
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const std::vector<uint8_t>& test_out = test.second;
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for (const auto& suffix : suffixes) {
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const std::vector<uint16_t>& suffix_in = suffix.first;
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const std::vector<uint8_t>& suffix_out = suffix.second;
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std::vector<uint16_t> in = prefix_in;
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in.insert(in.end(), test_in.begin(), test_in.end());
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in.insert(in.end(), suffix_in.begin(), suffix_in.end());
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std::vector<uint8_t> out = prefix_out;
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out.insert(out.end(), test_out.begin(), test_out.end());
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out.insert(out.end(), suffix_out.begin(), suffix_out.end());
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AssertConversion(in, out);
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}
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}
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}
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}
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// Old versions of functions, here to compare answers with optimized versions.
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size_t CountModifiedUtf8Chars_reference(const char* utf8) {
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size_t len = 0;
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int ic;
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while ((ic = *utf8++) != '\0') {
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len++;
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if ((ic & 0x80) == 0) {
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// one-byte encoding
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continue;
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}
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// two- or three-byte encoding
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utf8++;
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if ((ic & 0x20) == 0) {
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// two-byte encoding
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continue;
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}
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utf8++;
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if ((ic & 0x10) == 0) {
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// three-byte encoding
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continue;
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}
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// four-byte encoding: needs to be converted into a surrogate
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// pair.
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utf8++;
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len++;
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}
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return len;
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}
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static size_t CountUtf8Bytes_reference(const uint16_t* chars, size_t char_count) {
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size_t result = 0;
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while (char_count--) {
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const uint16_t ch = *chars++;
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if (ch > 0 && ch <= 0x7f) {
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++result;
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} else if (ch >= 0xd800 && ch <= 0xdbff) {
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if (char_count > 0) {
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const uint16_t ch2 = *chars;
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// If we find a properly paired surrogate, we emit it as a 4 byte
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// UTF sequence. If we find an unpaired leading or trailing surrogate,
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// we emit it as a 3 byte sequence like would have done earlier.
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if (ch2 >= 0xdc00 && ch2 <= 0xdfff) {
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chars++;
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char_count--;
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result += 4;
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} else {
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result += 3;
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}
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} else {
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// This implies we found an unpaired trailing surrogate at the end
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// of a string.
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result += 3;
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}
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} else if (ch > 0x7ff) {
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result += 3;
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} else {
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result += 2;
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}
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}
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return result;
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}
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static void ConvertUtf16ToModifiedUtf8_reference(char* utf8_out, const uint16_t* utf16_in,
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size_t char_count) {
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while (char_count--) {
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const uint16_t ch = *utf16_in++;
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if (ch > 0 && ch <= 0x7f) {
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*utf8_out++ = ch;
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} else {
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// Char_count == 0 here implies we've encountered an unpaired
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// surrogate and we have no choice but to encode it as 3-byte UTF
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// sequence. Note that unpaired surrogates can occur as a part of
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// "normal" operation.
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if ((ch >= 0xd800 && ch <= 0xdbff) && (char_count > 0)) {
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const uint16_t ch2 = *utf16_in;
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// Check if the other half of the pair is within the expected
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// range. If it isn't, we will have to emit both "halves" as
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// separate 3 byte sequences.
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if (ch2 >= 0xdc00 && ch2 <= 0xdfff) {
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utf16_in++;
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char_count--;
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const uint32_t code_point = (ch << 10) + ch2 - 0x035fdc00;
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*utf8_out++ = (code_point >> 18) | 0xf0;
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*utf8_out++ = ((code_point >> 12) & 0x3f) | 0x80;
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*utf8_out++ = ((code_point >> 6) & 0x3f) | 0x80;
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*utf8_out++ = (code_point & 0x3f) | 0x80;
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continue;
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}
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}
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if (ch > 0x07ff) {
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// Three byte encoding.
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*utf8_out++ = (ch >> 12) | 0xe0;
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*utf8_out++ = ((ch >> 6) & 0x3f) | 0x80;
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*utf8_out++ = (ch & 0x3f) | 0x80;
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} else /*(ch > 0x7f || ch == 0)*/ {
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// Two byte encoding.
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*utf8_out++ = (ch >> 6) | 0xc0;
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*utf8_out++ = (ch & 0x3f) | 0x80;
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}
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}
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}
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}
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// Exhaustive test of converting a single code point to UTF-16, then UTF-8, and back again.
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static void codePointToSurrogatePair(uint32_t code_point, uint16_t &first, uint16_t &second) {
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first = (code_point >> 10) + 0xd7c0;
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second = (code_point & 0x03ff) + 0xdc00;
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}
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static void testConversions(uint16_t *buf, int char_count) {
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char bytes_test[8] = { 0 }, bytes_reference[8] = { 0 };
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uint16_t out_buf_test[4] = { 0 }, out_buf_reference[4] = { 0 };
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int byte_count_test, byte_count_reference;
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int char_count_test, char_count_reference;
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// Calculate the number of utf-8 bytes for the utf-16 chars.
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byte_count_reference = CountUtf8Bytes_reference(buf, char_count);
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byte_count_test = CountUtf8Bytes(buf, char_count);
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EXPECT_EQ(byte_count_reference, byte_count_test);
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// Convert the utf-16 string to utf-8 bytes.
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ConvertUtf16ToModifiedUtf8_reference(bytes_reference, buf, char_count);
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ConvertUtf16ToModifiedUtf8(bytes_test, byte_count_test, buf, char_count);
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for (int i = 0; i < byte_count_test; ++i) {
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EXPECT_EQ(bytes_reference[i], bytes_test[i]);
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}
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// Calculate the number of utf-16 chars from the utf-8 bytes.
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bytes_reference[byte_count_reference] = 0; // Reference function needs null termination.
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char_count_reference = CountModifiedUtf8Chars_reference(bytes_reference);
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char_count_test = CountModifiedUtf8Chars(bytes_test, byte_count_test);
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EXPECT_EQ(char_count, char_count_reference);
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EXPECT_EQ(char_count, char_count_test);
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// Convert the utf-8 bytes back to utf-16 chars.
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// Does not need copied _reference version of the function because the original
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// function with the old API is retained for debug/testing code.
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ConvertModifiedUtf8ToUtf16(out_buf_reference, bytes_reference);
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ConvertModifiedUtf8ToUtf16(out_buf_test, char_count_test, bytes_test, byte_count_test);
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for (int i = 0; i < char_count_test; ++i) {
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EXPECT_EQ(buf[i], out_buf_reference[i]);
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EXPECT_EQ(buf[i], out_buf_test[i]);
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}
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}
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TEST_F(UtfTest, ExhaustiveBidirectionalCodePointCheck) {
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for (int codePoint = 0; codePoint <= 0x10ffff; ++codePoint) {
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uint16_t buf[4] = { 0 };
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if (codePoint <= 0xffff) {
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if (codePoint >= 0xd800 && codePoint <= 0xdfff) {
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// According to the Unicode standard, no character will ever
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// be assigned to these code points, and they cannot be encoded
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// into either utf-16 or utf-8.
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continue;
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}
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buf[0] = 'h';
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buf[1] = codePoint;
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buf[2] = 'e';
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testConversions(buf, 2);
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testConversions(buf, 3);
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testConversions(buf + 1, 1);
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testConversions(buf + 1, 2);
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} else {
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buf[0] = 'h';
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codePointToSurrogatePair(codePoint, buf[1], buf[2]);
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buf[3] = 'e';
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testConversions(buf, 2);
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testConversions(buf, 3);
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testConversions(buf, 4);
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testConversions(buf + 1, 1);
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testConversions(buf + 1, 2);
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testConversions(buf + 1, 3);
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}
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}
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}
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TEST_F(UtfTest, NonAscii) {
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const char kNonAsciiCharacter = '\x80';
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const char input[] = { kNonAsciiCharacter, '\0' };
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uint32_t hash = ComputeModifiedUtf8Hash(input);
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EXPECT_EQ(static_cast<uint8_t>(kNonAsciiCharacter), hash);
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}
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TEST_F(UtfTest, PrintableStringUtf8) {
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// Note: This is UTF-8, not Modified-UTF-8.
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const uint8_t kTestSequence[] = { 0xf0, 0x90, 0x80, 0x80, 0 };
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const char* start = reinterpret_cast<const char*>(kTestSequence);
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const char* ptr = start;
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uint32_t pair = GetUtf16FromUtf8(&ptr);
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ASSERT_EQ(*ptr, '\0');
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uint16_t leading = GetLeadingUtf16Char(pair);
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uint16_t trailing = GetTrailingUtf16Char(pair);
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ASSERT_NE(0u, trailing);
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std::string expected = android::base::StringPrintf("\"\\u%04x\\u%04x\"",
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static_cast<unsigned>(leading),
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static_cast<unsigned>(trailing));
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std::string printable = PrintableString(start);
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EXPECT_EQ(expected, printable);
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}
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} // namespace art
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