#ifndef BASE_CONTAINERS_SPAN_H_
#define BASE_CONTAINERS_SPAN_H_
#include <stddef.h>
#include <stdint.h>
#include <algorithm>
#include <array>
#include <iterator>
#include <string_view>
#include <type_traits>
#include <utility>
#include "base/logging.h"
#include "base/stl_util.h"
namespace base {
constexpr size_t dynamic_extent = static_cast<size_t>(-1);
template <typename T, size_t Extent = dynamic_extent>
class span;
namespace internal {
template <typename T>
struct IsSpanImpl : std::false_type {};
template <typename T, size_t Extent>
struct IsSpanImpl<span<T, Extent>> : std::true_type {};
template <typename T>
using IsSpan = IsSpanImpl<std::decay_t<T>>;
template <typename T>
struct IsStdArrayImpl : std::false_type {};
template <typename T, size_t N>
struct IsStdArrayImpl<std::array<T, N>> : std::true_type {};
template <typename T>
using IsStdArray = IsStdArrayImpl<std::decay_t<T>>;
template <typename T>
using IsCArray = std::is_array<std::remove_reference_t<T>>;
template <typename From, typename To>
using IsLegalDataConversion = std::is_convertible<From (*)[], To (*)[]>;
template <typename Container, typename T>
using ContainerHasConvertibleData = IsLegalDataConversion<
std::remove_pointer_t<decltype(std::data(std::declval<Container>()))>,
T>;
template <typename Container>
using ContainerHasIntegralSize =
std::is_integral<decltype(std::size(std::declval<Container>()))>;
template <typename From, size_t FromExtent, typename To, size_t ToExtent>
using EnableIfLegalSpanConversion =
std::enable_if_t<(ToExtent == dynamic_extent || ToExtent == FromExtent) &&
IsLegalDataConversion<From, To>::value>;
template <typename Array, size_t N, typename T, size_t Extent>
using EnableIfSpanCompatibleArray =
std::enable_if_t<(Extent == dynamic_extent || Extent == N) &&
ContainerHasConvertibleData<Array, T>::value>;
template <typename Container, typename T>
using EnableIfSpanCompatibleContainer =
std::enable_if_t<!internal::IsSpan<Container>::value &&
!internal::IsStdArray<Container>::value &&
!internal::IsCArray<Container>::value &&
ContainerHasConvertibleData<Container, T>::value &&
ContainerHasIntegralSize<Container>::value>;
}
template <typename T, size_t Extent>
class span {
public:
using element_type = T;
using value_type = std::remove_cv_t<T>;
using index_type = size_t;
using difference_type = ptrdiff_t;
using pointer = T*;
using reference = T&;
using iterator = T*;
using const_iterator = const T*;
using reverse_iterator = std::reverse_iterator<iterator>;
using const_reverse_iterator = std::reverse_iterator<const_iterator>;
static constexpr index_type extent = Extent;
constexpr span() noexcept : data_(nullptr), size_(0) {
static_assert(Extent == dynamic_extent || Extent == 0, "Invalid Extent");
}
constexpr span(T* data, size_t size) noexcept : data_(data), size_(size) {
CHECK(Extent == dynamic_extent || Extent == size);
}
template <typename = void>
constexpr span(T* begin, T* end) noexcept : span(begin, end - begin) {
CHECK(begin <= end);
}
template <
size_t N,
typename = internal::EnableIfSpanCompatibleArray<T (&)[N], N, T, Extent>>
constexpr span(T (&array)[N]) noexcept : span(std::data(array), N) {}
template <
size_t N,
typename = internal::
EnableIfSpanCompatibleArray<std::array<value_type, N>&, N, T, Extent>>
constexpr span(std::array<value_type, N>& array) noexcept
: span(std::data(array), N) {}
template <size_t N,
typename = internal::EnableIfSpanCompatibleArray<
const std::array<value_type, N>&,
N,
T,
Extent>>
constexpr span(const std::array<value_type, N>& array) noexcept
: span(std::data(array), N) {}
template <typename Container,
typename = internal::EnableIfSpanCompatibleContainer<Container&, T>>
constexpr span(Container& container) noexcept
: span(std::data(container), std::size(container)) {}
template <
typename Container,
typename = internal::EnableIfSpanCompatibleContainer<const Container&, T>>
span(const Container& container) noexcept
: span(std::data(container), std::size(container)) {}
constexpr span(const span& other) noexcept = default;
template <
typename U,
size_t OtherExtent,
typename =
internal::EnableIfLegalSpanConversion<U, OtherExtent, T, Extent>>
constexpr span(const span<U, OtherExtent>& other)
: span(other.data(), other.size()) {}
constexpr span& operator=(const span& other) noexcept = default;
~span() noexcept = default;
template <size_t Count>
constexpr span<T, Count> first() const noexcept {
static_assert(Extent == dynamic_extent || Count <= Extent,
"Count must not exceed Extent");
CHECK(Extent != dynamic_extent || Count <= size());
return {data(), Count};
}
template <size_t Count>
constexpr span<T, Count> last() const noexcept {
static_assert(Extent == dynamic_extent || Count <= Extent,
"Count must not exceed Extent");
CHECK(Extent != dynamic_extent || Count <= size());
return {data() + (size() - Count), Count};
}
template <size_t Offset, size_t Count = dynamic_extent>
constexpr span<T,
(Count != dynamic_extent
? Count
: (Extent != dynamic_extent ? Extent - Offset
: dynamic_extent))>
subspan() const noexcept {
static_assert(Extent == dynamic_extent || Offset <= Extent,
"Offset must not exceed Extent");
static_assert(Extent == dynamic_extent || Count == dynamic_extent ||
Count <= Extent - Offset,
"Count must not exceed Extent - Offset");
CHECK(Extent != dynamic_extent || Offset <= size());
CHECK(Extent != dynamic_extent || Count == dynamic_extent ||
Count <= size() - Offset);
return {data() + Offset, Count != dynamic_extent ? Count : size() - Offset};
}
constexpr span<T, dynamic_extent> first(size_t count) const noexcept {
CHECK(count <= size());
return {data(), count};
}
constexpr span<T, dynamic_extent> last(size_t count) const noexcept {
CHECK(count <= size());
return {data() + (size() - count), count};
}
constexpr span<T, dynamic_extent> subspan(
size_t offset,
size_t count = dynamic_extent) const noexcept {
CHECK(offset <= size());
CHECK(count == dynamic_extent || count <= size() - offset);
return {data() + offset, count != dynamic_extent ? count : size() - offset};
}
constexpr size_t size() const noexcept { return size_; }
constexpr size_t size_bytes() const noexcept { return size() * sizeof(T); }
constexpr bool empty() const noexcept { return size() == 0; }
constexpr T& operator[](size_t idx) const noexcept {
CHECK(idx < size());
return *(data() + idx);
}
constexpr T& operator()(size_t idx) const noexcept {
CHECK(idx < size());
return *(data() + idx);
}
constexpr T* data() const noexcept { return data_; }
constexpr iterator begin() const noexcept { return data(); }
constexpr iterator end() const noexcept { return data() + size(); }
constexpr const_iterator cbegin() const noexcept { return begin(); }
constexpr const_iterator cend() const noexcept { return end(); }
constexpr reverse_iterator rbegin() const noexcept {
return reverse_iterator(end());
}
constexpr reverse_iterator rend() const noexcept {
return reverse_iterator(begin());
}
constexpr const_reverse_iterator crbegin() const noexcept {
return const_reverse_iterator(cend());
}
constexpr const_reverse_iterator crend() const noexcept {
return const_reverse_iterator(cbegin());
}
private:
T* data_;
size_t size_;
};
template <class T, size_t Extent>
constexpr size_t span<T, Extent>::extent;
template <typename T, size_t X, typename U, size_t Y>
constexpr bool operator==(span<T, X> lhs, span<U, Y> rhs) noexcept {
return std::equal(lhs.cbegin(), lhs.cend(), rhs.cbegin(), rhs.cend());
}
template <typename T, size_t X, typename U, size_t Y>
constexpr bool operator!=(span<T, X> lhs, span<U, Y> rhs) noexcept {
return !(lhs == rhs);
}
template <typename T, size_t X, typename U, size_t Y>
constexpr bool operator<(span<T, X> lhs, span<U, Y> rhs) noexcept {
return std::lexicographical_compare(lhs.cbegin(), lhs.cend(), rhs.cbegin(),
rhs.cend());
}
template <typename T, size_t X, typename U, size_t Y>
constexpr bool operator<=(span<T, X> lhs, span<U, Y> rhs) noexcept {
return !(rhs < lhs);
}
template <typename T, size_t X, typename U, size_t Y>
constexpr bool operator>(span<T, X> lhs, span<U, Y> rhs) noexcept {
return rhs < lhs;
}
template <typename T, size_t X, typename U, size_t Y>
constexpr bool operator>=(span<T, X> lhs, span<U, Y> rhs) noexcept {
return !(lhs < rhs);
}
template <typename T, size_t X>
span<const uint8_t, (X == dynamic_extent ? dynamic_extent : sizeof(T) * X)>
as_bytes(span<T, X> s) noexcept {
return {reinterpret_cast<const uint8_t*>(s.data()), s.size_bytes()};
}
template <typename T,
size_t X,
typename = std::enable_if_t<!std::is_const<T>::value>>
span<uint8_t, (X == dynamic_extent ? dynamic_extent : sizeof(T) * X)>
as_writable_bytes(span<T, X> s) noexcept {
return {reinterpret_cast<uint8_t*>(s.data()), s.size_bytes()};
}
template <typename T>
constexpr span<T> make_span(T* data, size_t size) noexcept {
return {data, size};
}
template <typename T>
constexpr span<T> make_span(T* begin, T* end) noexcept {
return {begin, end};
}
template <typename T, size_t N>
constexpr span<T, N> make_span(T (&array)[N]) noexcept {
return array;
}
template <typename T, size_t N>
constexpr span<T, N> make_span(std::array<T, N>& array) noexcept {
return array;
}
template <typename T, size_t N>
constexpr span<const T, N> make_span(const std::array<T, N>& array) noexcept {
return array;
}
template <typename Container,
typename T = typename Container::value_type,
typename = internal::EnableIfSpanCompatibleContainer<Container&, T>>
constexpr span<T> make_span(Container& container) noexcept {
return container;
}
template <
typename Container,
typename T = const typename Container::value_type,
typename = internal::EnableIfSpanCompatibleContainer<const Container&, T>>
constexpr span<T> make_span(const Container& container) noexcept {
return container;
}
template <typename T, size_t X>
constexpr span<T, X> make_span(const span<T, X>& span) noexcept {
return span;
}
}
#endif