19 #include <cudf/detail/utilities/assert.cuh>
20 #include <cudf/fixed_point/temporary.hpp>
23 #include <cuda/std/limits>
24 #include <cuda/std/type_traits>
25 #include <cuda/std/utility>
54 enum class Radix : int32_t { BASE_2 = 2, BASE_10 = 10 };
65 return cuda::std::is_same_v<T, int32_t> ||
66 cuda::std::is_same_v<T, int64_t> ||
67 cuda::std::is_same_v<T, __int128_t>;
79 return cuda::std::is_integral<T>() || cuda::std::is_floating_point_v<T>;
95 template <
typename Rep,
98 typename cuda::std::enable_if_t<(cuda::std::is_same_v<int32_t, T> &&
99 is_supported_representation_type<Rep>())>* =
nullptr>
102 cudf_assert(exponent >= 0 &&
"integer exponentiation with negative exponent is not possible.");
104 if constexpr (Base == numeric::Radix::BASE_2) {
return static_cast<Rep
>(1) << exponent; }
110 if (exponent == 0) {
return static_cast<Rep
>(1); }
111 auto extra =
static_cast<Rep
>(1);
112 auto square =
static_cast<Rep
>(Base);
113 while (exponent > 1) {
114 if (exponent & 1) { extra *= square; }
118 return square * extra;
132 template <
typename Rep, Radix Rad,
typename T>
135 return val / ipow<Rep, Rad>(
static_cast<int32_t
>(scale));
149 template <
typename Rep, Radix Rad,
typename T>
152 return val * ipow<Rep, Rad>(
static_cast<int32_t
>(-scale));
168 template <
typename Rep, Radix Rad,
typename T>
171 if (scale == 0) {
return val; }
172 if (scale > 0) {
return right_shift<Rep, Rad>(val, scale); }
173 return left_shift<Rep, Rad>(val, scale);
196 template <
typename Rep,
197 typename cuda::std::enable_if_t<is_supported_representation_type<Rep>()>* =
nullptr>
219 template <
typename Rep, Radix Rad>
235 template <
typename T,
236 typename cuda::std::enable_if_t<cuda::std::is_floating_point<T>() &&
237 is_supported_representation_type<Rep>()>* =
nullptr>
239 : _value{static_cast<Rep>(detail::shift<Rep, Rad>(
value,
scale))}, _scale{
scale}
251 template <
typename T,
252 typename cuda::std::enable_if_t<cuda::std::is_integral<T>() &&
253 is_supported_representation_type<Rep>()>* =
nullptr>
257 : _value{detail::shift<Rep, Rad>(static_cast<Rep>(
value),
scale)}, _scale{
scale}
278 template <
typename T,
279 typename cuda::std::enable_if_t<is_supported_construction_value_type<T>()>* =
nullptr>
297 template <
typename U,
298 typename cuda::std::enable_if_t<cuda::std::is_floating_point_v<U>>* =
nullptr>
299 explicit constexpr
operator U()
const
301 return detail::shift<Rep, Rad>(
static_cast<U
>(_value),
scale_type{-_scale});
310 template <
typename U,
typename cuda::std::enable_if_t<cuda::std::is_
integral_v<U>>* =
nullptr>
311 explicit constexpr
operator U()
const
316 auto const value = std::common_type_t<U, Rep>(_value);
317 return static_cast<U
>(detail::shift<Rep, Rad>(
value,
scale_type{-_scale}));
351 return static_cast<bool>(_value);
362 template <
typename Rep1, Radix Rad1>
377 template <
typename Rep1, Radix Rad1>
392 template <
typename Rep1, Radix Rad1>
407 template <
typename Rep1, Radix Rad1>
438 template <
typename Rep1, Radix Rad1>
455 template <
typename Rep1, Radix Rad1>
470 template <
typename Rep1, Radix Rad1>
485 template <
typename Rep1, Radix Rad1>
502 template <
typename Rep1, Radix Rad1>
519 template <
typename Rep1, Radix Rad1>
536 template <
typename Rep1, Radix Rad1>
553 template <
typename Rep1, Radix Rad1>
570 template <
typename Rep1, Radix Rad1>
587 template <
typename Rep1, Radix Rad1>
604 template <
typename Rep1, Radix Rad1>
619 if (
scale == _scale) {
return *
this; }
627 explicit operator std::string()
const
630 auto const av = detail::abs(_value);
631 Rep
const n = detail::exp10<Rep>(-_scale);
632 Rep
const f = av % n;
633 auto const num_zeros =
634 std::max(0, (-_scale -
static_cast<int32_t
>(detail::to_string(f).size())));
635 auto const zeros = std::string(num_zeros,
'0');
636 auto const sign = _value < 0 ? std::string(
"-") : std::string();
637 return sign + detail::to_string(av / n) + std::string(
".") + zeros +
638 detail::to_string(av % n);
640 auto const zeros = std::string(_scale,
'0');
641 return detail::to_string(_value) + zeros;
654 template <
typename Rep,
typename T>
657 return rhs > 0 ? lhs > cuda::std::numeric_limits<Rep>::max() - rhs
658 : lhs < cuda::std::numeric_limits<Rep>::min() - rhs;
669 template <
typename Rep,
typename T>
672 return rhs > 0 ? lhs < cuda::std::numeric_limits<Rep>::min() + rhs
673 : lhs > cuda::std::numeric_limits<Rep>::max() + rhs;
684 template <
typename Rep,
typename T>
687 return lhs == cuda::std::numeric_limits<Rep>::min() && rhs == -1;
698 template <
typename Rep,
typename T>
701 auto const min = cuda::std::numeric_limits<Rep>::min();
702 auto const max = cuda::std::numeric_limits<Rep>::max();
703 if (rhs > 0) {
return lhs > max / rhs || lhs < min / rhs; }
704 if (rhs < -1) {
return lhs > min / rhs || lhs < max / rhs; }
705 return rhs == -1 && lhs == min;
709 template <
typename Rep1, Radix Rad1>
713 auto const scale = std::min(lhs._scale, rhs._scale);
716 #if defined(__CUDACC_DEBUG__)
718 assert(!addition_overflow<Rep1>(lhs.
rescaled(scale)._value, rhs.
rescaled(scale)._value) &&
719 "fixed_point overflow");
727 template <
typename Rep1, Radix Rad1>
731 auto const scale = std::min(lhs._scale, rhs._scale);
734 #if defined(__CUDACC_DEBUG__)
736 assert(!subtraction_overflow<Rep1>(lhs.
rescaled(scale)._value, rhs.
rescaled(scale)._value) &&
737 "fixed_point overflow");
745 template <
typename Rep1, Radix Rad1>
749 #if defined(__CUDACC_DEBUG__)
751 assert(!multiplication_overflow<Rep1>(lhs._value, rhs._value) &&
"fixed_point overflow");
760 template <
typename Rep1, Radix Rad1>
764 #if defined(__CUDACC_DEBUG__)
766 assert(!division_overflow<Rep1>(lhs._value, rhs._value) &&
"fixed_point overflow");
775 template <
typename Rep1, Radix Rad1>
779 auto const scale = std::min(lhs._scale, rhs._scale);
784 template <
typename Rep1, Radix Rad1>
788 auto const scale = std::min(lhs._scale, rhs._scale);
793 template <
typename Rep1, Radix Rad1>
797 auto const scale = std::min(lhs._scale, rhs._scale);
802 template <
typename Rep1, Radix Rad1>
806 auto const scale = std::min(lhs._scale, rhs._scale);
811 template <
typename Rep1, Radix Rad1>
815 auto const scale = std::min(lhs._scale, rhs._scale);
820 template <
typename Rep1, Radix Rad1>
824 auto const scale = std::min(lhs._scale, rhs._scale);
829 template <
typename Rep1, Radix Rad1>
833 auto const scale = std::min(lhs._scale, rhs._scale);
834 auto const remainder = lhs.
rescaled(scale)._value % rhs.
rescaled(scale)._value;
A type for representing a number with a fixed amount of precision.
CUDF_HOST_DEVICE fixed_point(scaled_integer< Rep > s)
Constructor that will not perform shifting (assumes value already shifted)
CUDF_HOST_DEVICE fixed_point< Rep, Rad > rescaled(scale_type scale) const
Method for creating a fixed_point number with a new scale
CUDF_HOST_DEVICE friend bool operator!=(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator != (for comparing two fixed_point numbers)
CUDF_HOST_DEVICE friend fixed_point< Rep1, Rad1 > operator*(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator * (for multiplying two fixed_point numbers)
CUDF_HOST_DEVICE friend bool operator==(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator == (for comparing two fixed_point numbers)
CUDF_HOST_DEVICE rep value() const
Method that returns the underlying value of the fixed_point number.
CUDF_HOST_DEVICE friend bool operator<(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator < (for comparing two fixed_point numbers)
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > & operator*=(fixed_point< Rep1, Rad1 > const &rhs)
operator *=
CUDF_HOST_DEVICE scale_type scale() const
Method that returns the scale of the fixed_point number.
CUDF_HOST_DEVICE fixed_point(T const &value)
"Scale-less" constructor that constructs fixed_point number with a specified value and scale of zero
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > & operator-=(fixed_point< Rep1, Rad1 > const &rhs)
operator -=
CUDF_HOST_DEVICE friend fixed_point< Rep1, Rad1 > operator/(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator / (for dividing two fixed_point numbers)
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > & operator+=(fixed_point< Rep1, Rad1 > const &rhs)
operator +=
CUDF_HOST_DEVICE friend fixed_point< Rep1, Rad1 > operator+(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator + (for adding two fixed_point numbers)
CUDF_HOST_DEVICE friend bool operator<=(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator <= (for comparing two fixed_point numbers)
Rep rep
The representation type.
CUDF_HOST_DEVICE fixed_point()
Default constructor that constructs fixed_point number with a value and scale of zero.
CUDF_HOST_DEVICE friend fixed_point< Rep1, Rad1 > operator-(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator - (for subtracting two fixed_point numbers)
CUDF_HOST_DEVICE friend bool operator>=(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator >= (for comparing two fixed_point numbers)
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > & operator/=(fixed_point< Rep1, Rad1 > const &rhs)
operator /=
CUDF_HOST_DEVICE friend bool operator>(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator > (for comparing two fixed_point numbers)
CUDF_HOST_DEVICE friend fixed_point< Rep1, Rad1 > operator%(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
operator % (for computing the modulo operation of two fixed_point numbers)
CUDF_HOST_DEVICE fixed_point(T const &value, scale_type const &scale)
Constructor that will perform shifting to store value appropriately (from floating point types)
CUDF_HOST_DEVICE fixed_point< Rep, Rad > & operator++()
operator ++ (post-increment)
constexpr CUDF_HOST_DEVICE T left_shift(T const &val, scale_type const &scale)
Function that performs a left shift scale "times" on the val
constexpr CUDF_HOST_DEVICE T right_shift(T const &val, scale_type const &scale)
Function that performs a right shift scale "times" on the val
CUDF_HOST_DEVICE Rep ipow(T exponent)
A function for integer exponentiation by squaring.
Radix
Scoped enumerator to use when constructing fixed_point
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > operator-(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE bool operator>=(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE bool operator<=(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE bool operator==(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > operator%(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE auto division_overflow(T lhs, T rhs)
Function for identifying integer overflow when dividing.
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > operator/(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
constexpr auto is_supported_construction_value_type()
Returns true if the value type is supported for constructing a fixed_point
scale_type
The scale type for fixed_point.
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > operator*(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE bool operator>(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE auto addition_overflow(T lhs, T rhs)
Function for identifying integer overflow when adding.
CUDF_HOST_DEVICE fixed_point< Rep1, Rad1 > operator+(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE auto multiplication_overflow(T lhs, T rhs)
Function for identifying integer overflow when multiplying.
CUDF_HOST_DEVICE bool operator!=(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
CUDF_HOST_DEVICE auto subtraction_overflow(T lhs, T rhs)
Function for identifying integer overflow when subtracting.
CUDF_HOST_DEVICE bool operator<(fixed_point< Rep1, Rad1 > const &lhs, fixed_point< Rep1, Rad1 > const &rhs)
constexpr auto is_supported_representation_type()
Returns true if the representation type is supported by fixed_point
fixed_point and supporting types
Helper struct for constructing fixed_point when value is already shifted.
Rep value
The value of the fixed point number.
CUDF_HOST_DEVICE scaled_integer(Rep v, scale_type s)
Constructor for scaled_integer
scale_type scale
The scale of the value.
Type declarations for libcudf.
#define CUDF_HOST_DEVICE
Indicates that the function or method is usable on host and device.