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| #ifndef LLVM_FUZZER_FUZZED_DATA_PROVIDER_H_
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| #define LLVM_FUZZER_FUZZED_DATA_PROVIDER_H_
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| #include <algorithm>
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| #include <array>
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| #include <climits>
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| #include <cstddef>
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| #include <cstdint>
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| #include <cstdlib>
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| #include <cstring>
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| #include <initializer_list>
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| #include <limits>
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| #include <string>
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| #include <type_traits>
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| #include <utility>
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| #include <vector>
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| class FuzzedDataProvider {
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| public:
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| FuzzedDataProvider(const uint8_t *data, size_t size)
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| : data_ptr_(data), remaining_bytes_(size) {}
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| ~FuzzedDataProvider() = default;
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| template <typename T> std::vector<T> ConsumeBytes(size_t num_bytes);
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| template <typename T>
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| std::vector<T> ConsumeBytesWithTerminator(size_t num_bytes, T terminator = 0);
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| template <typename T> std::vector<T> ConsumeRemainingBytes();
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| std::string ConsumeBytesAsString(size_t num_bytes);
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| std::string ConsumeRandomLengthString(size_t max_length);
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| std::string ConsumeRandomLengthString();
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| std::string ConsumeRemainingBytesAsString();
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| template <typename T> T ConsumeIntegral();
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| template <typename T> T ConsumeIntegralInRange(T min, T max);
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| template <typename T> T ConsumeFloatingPoint();
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| template <typename T> T ConsumeFloatingPointInRange(T min, T max);
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| template <typename T> T ConsumeProbability();
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| bool ConsumeBool();
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| template <typename T> T ConsumeEnum();
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| template <typename T, size_t size> T PickValueInArray(const T (&array)[size]);
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| template <typename T, size_t size>
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| T PickValueInArray(const std::array<T, size> &array);
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| template <typename T> T PickValueInArray(std::initializer_list<const T> list);
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| size_t ConsumeData(void *destination, size_t num_bytes);
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| size_t remaining_bytes() { return remaining_bytes_; }
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| private:
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| FuzzedDataProvider(const FuzzedDataProvider &) = delete;
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| FuzzedDataProvider &operator=(const FuzzedDataProvider &) = delete;
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| void CopyAndAdvance(void *destination, size_t num_bytes);
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| void Advance(size_t num_bytes);
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| template <typename T>
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| std::vector<T> ConsumeBytes(size_t size, size_t num_bytes);
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| template <typename TS, typename TU> TS ConvertUnsignedToSigned(TU value);
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| const uint8_t *data_ptr_;
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| size_t remaining_bytes_;
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| };
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| template <typename T>
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| std::vector<T> FuzzedDataProvider::ConsumeBytes(size_t num_bytes) {
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| num_bytes = std::min(num_bytes, remaining_bytes_);
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| return ConsumeBytes<T>(num_bytes, num_bytes);
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| }
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| template <typename T>
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| std::vector<T> FuzzedDataProvider::ConsumeBytesWithTerminator(size_t num_bytes,
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| T terminator) {
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| num_bytes = std::min(num_bytes, remaining_bytes_);
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| std::vector<T> result = ConsumeBytes<T>(num_bytes + 1, num_bytes);
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| result.back() = terminator;
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| return result;
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| }
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| template <typename T>
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| std::vector<T> FuzzedDataProvider::ConsumeRemainingBytes() {
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| return ConsumeBytes<T>(remaining_bytes_);
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| }
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| inline std::string FuzzedDataProvider::ConsumeBytesAsString(size_t num_bytes) {
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| static_assert(sizeof(std::string::value_type) == sizeof(uint8_t),
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| "ConsumeBytesAsString cannot convert the data to a string.");
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| num_bytes = std::min(num_bytes, remaining_bytes_);
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| std::string result(
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| reinterpret_cast<const std::string::value_type *>(data_ptr_), num_bytes);
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| Advance(num_bytes);
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| return result;
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| }
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| inline std::string
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| FuzzedDataProvider::ConsumeRandomLengthString(size_t max_length) {
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| std::string result;
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| result.reserve(std::min(max_length, remaining_bytes_));
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| for (size_t i = 0; i < max_length && remaining_bytes_ != 0; ++i) {
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| char next = ConvertUnsignedToSigned<char>(data_ptr_[0]);
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| Advance(1);
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| if (next == '\\' && remaining_bytes_ != 0) {
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| next = ConvertUnsignedToSigned<char>(data_ptr_[0]);
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| Advance(1);
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| if (next != '\\')
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| break;
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| }
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| result += next;
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| }
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| result.shrink_to_fit();
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| return result;
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| }
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| inline std::string FuzzedDataProvider::ConsumeRandomLengthString() {
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| return ConsumeRandomLengthString(remaining_bytes_);
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| }
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| inline std::string FuzzedDataProvider::ConsumeRemainingBytesAsString() {
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| return ConsumeBytesAsString(remaining_bytes_);
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| }
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| template <typename T> T FuzzedDataProvider::ConsumeIntegral() {
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| return ConsumeIntegralInRange(std::numeric_limits<T>::min(),
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| std::numeric_limits<T>::max());
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| }
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| template <typename T>
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| T FuzzedDataProvider::ConsumeIntegralInRange(T min, T max) {
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| static_assert(std::is_integral_v<T>, "An integral type is required.");
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| static_assert(sizeof(T) <= sizeof(uint64_t), "Unsupported integral type.");
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| if (min > max)
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| abort();
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| uint64_t range = static_cast<uint64_t>(max) - static_cast<uint64_t>(min);
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| uint64_t result = 0;
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| size_t offset = 0;
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| while (offset < sizeof(T) * CHAR_BIT && (range >> offset) > 0 &&
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| remaining_bytes_ != 0) {
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| --remaining_bytes_;
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| result = (result << CHAR_BIT) | data_ptr_[remaining_bytes_];
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| offset += CHAR_BIT;
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| }
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| if (range != std::numeric_limits<decltype(range)>::max())
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| result = result % (range + 1);
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| return static_cast<T>(static_cast<uint64_t>(min) + result);
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| }
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| template <typename T> T FuzzedDataProvider::ConsumeFloatingPoint() {
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| return ConsumeFloatingPointInRange<T>(std::numeric_limits<T>::lowest(),
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| std::numeric_limits<T>::max());
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| }
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| template <typename T>
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| T FuzzedDataProvider::ConsumeFloatingPointInRange(T min, T max) {
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| if (min > max)
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| abort();
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| T range = .0;
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| T result = min;
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| constexpr T zero(.0);
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| if (max > zero && min < zero && max > min + std::numeric_limits<T>::max()) {
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| range = (max / 2.0) - (min / 2.0);
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| if (ConsumeBool()) {
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| result += range;
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| }
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| } else {
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| range = max - min;
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| }
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| return result + range * ConsumeProbability<T>();
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| }
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| template <typename T> T FuzzedDataProvider::ConsumeProbability() {
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| static_assert(std::is_floating_point_v<T>,
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| "A floating point type is required.");
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| using IntegralType =
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| typename std::conditional_t<(sizeof(T) <= sizeof(uint32_t)), uint32_t,
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| uint64_t>;
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| T result = static_cast<T>(ConsumeIntegral<IntegralType>());
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| result /= static_cast<T>(std::numeric_limits<IntegralType>::max());
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| return result;
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| }
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| inline bool FuzzedDataProvider::ConsumeBool() {
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| return 1 & ConsumeIntegral<uint8_t>();
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| }
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| template <typename T> T FuzzedDataProvider::ConsumeEnum() {
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| static_assert(std::is_enum_v<T>, "|T| must be an enum type.");
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| return static_cast<T>(
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| ConsumeIntegralInRange<uint32_t>(0, static_cast<uint32_t>(T::kMaxValue)));
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| }
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| template <typename T, size_t size>
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| T FuzzedDataProvider::PickValueInArray(const T (&array)[size]) {
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| static_assert(size > 0, "The array must be non empty.");
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| return array[ConsumeIntegralInRange<size_t>(0, size - 1)];
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| }
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| template <typename T, size_t size>
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| T FuzzedDataProvider::PickValueInArray(const std::array<T, size> &array) {
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| static_assert(size > 0, "The array must be non empty.");
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| return array[ConsumeIntegralInRange<size_t>(0, size - 1)];
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| }
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| template <typename T>
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| T FuzzedDataProvider::PickValueInArray(std::initializer_list<const T> list) {
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| if (!list.size())
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| abort();
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| return *(list.begin() + ConsumeIntegralInRange<size_t>(0, list.size() - 1));
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| }
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| inline size_t FuzzedDataProvider::ConsumeData(void *destination,
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| size_t num_bytes) {
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| num_bytes = std::min(num_bytes, remaining_bytes_);
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| CopyAndAdvance(destination, num_bytes);
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| return num_bytes;
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| }
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| inline void FuzzedDataProvider::CopyAndAdvance(void *destination,
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| size_t num_bytes) {
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| std::memcpy(destination, data_ptr_, num_bytes);
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| Advance(num_bytes);
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| }
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| inline void FuzzedDataProvider::Advance(size_t num_bytes) {
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| if (num_bytes > remaining_bytes_)
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| abort();
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| data_ptr_ += num_bytes;
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| remaining_bytes_ -= num_bytes;
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| }
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| template <typename T>
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| std::vector<T> FuzzedDataProvider::ConsumeBytes(size_t size, size_t num_bytes) {
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| static_assert(sizeof(T) == sizeof(uint8_t), "Incompatible data type.");
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| std::vector<T> result(size);
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| if (size == 0) {
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| if (num_bytes != 0)
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| abort();
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| return result;
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| }
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| CopyAndAdvance(result.data(), num_bytes);
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| result.shrink_to_fit();
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| return result;
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| }
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| template <typename TS, typename TU>
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| TS FuzzedDataProvider::ConvertUnsignedToSigned(TU value) {
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| static_assert(sizeof(TS) == sizeof(TU), "Incompatible data types.");
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| static_assert(!std::numeric_limits<TU>::is_signed,
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| "Source type must be unsigned.");
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| if (std::numeric_limits<TS>::is_modulo)
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| return static_cast<TS>(value);
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| if (value <= std::numeric_limits<TS>::max()) {
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| return static_cast<TS>(value);
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| } else {
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| constexpr auto TS_min = std::numeric_limits<TS>::min();
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| return TS_min + static_cast<TS>(value - TS_min);
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| }
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| }
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| #endif
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