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| #ifndef ABSL_RANDOM_GAUSSIAN_DISTRIBUTION_H_ |
| #define ABSL_RANDOM_GAUSSIAN_DISTRIBUTION_H_ |
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| #include <cmath> |
| #include <cstdint> |
| #include <istream> |
| #include <limits> |
| #include <type_traits> |
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| #include "absl/base/config.h" |
| #include "absl/random/internal/fast_uniform_bits.h" |
| #include "absl/random/internal/generate_real.h" |
| #include "absl/random/internal/iostream_state_saver.h" |
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|
| namespace absl { |
| ABSL_NAMESPACE_BEGIN |
| namespace random_internal { |
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| class ABSL_DLL gaussian_distribution_base { |
| public: |
| template <typename URBG> |
| inline double zignor(URBG& g); |
|
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| private: |
| friend class TableGenerator; |
|
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| template <typename URBG> |
| inline double zignor_fallback(URBG& g, |
| bool neg); |
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| |
| static constexpr double kR = 3.442619855899; |
| static constexpr double kRInv = 0.29047645161474317; |
| static constexpr double kV = 9.91256303526217e-3; |
| static constexpr uint64_t kMask = 0x07f; |
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| struct Tables { |
| double x[kMask + 2]; |
| double f[kMask + 2]; |
| }; |
| static const Tables zg_; |
| random_internal::FastUniformBits<uint64_t> fast_u64_; |
| }; |
|
|
| } |
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| |
| |
| template <typename RealType = double> |
| class gaussian_distribution : random_internal::gaussian_distribution_base { |
| public: |
| using result_type = RealType; |
|
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| class param_type { |
| public: |
| using distribution_type = gaussian_distribution; |
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| explicit param_type(result_type mean = 0, result_type stddev = 1) |
| : mean_(mean), stddev_(stddev) {} |
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| result_type mean() const { return mean_; } |
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| result_type stddev() const { return stddev_; } |
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| friend bool operator==(const param_type& a, const param_type& b) { |
| return a.mean_ == b.mean_ && a.stddev_ == b.stddev_; |
| } |
|
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| friend bool operator!=(const param_type& a, const param_type& b) { |
| return !(a == b); |
| } |
|
|
| private: |
| result_type mean_; |
| result_type stddev_; |
|
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| static_assert( |
| std::is_floating_point<RealType>::value, |
| "Class-template absl::gaussian_distribution<> must be parameterized " |
| "using a floating-point type."); |
| }; |
|
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| gaussian_distribution() : gaussian_distribution(0) {} |
|
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| explicit gaussian_distribution(result_type mean, result_type stddev = 1) |
| : param_(mean, stddev) {} |
|
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| explicit gaussian_distribution(const param_type& p) : param_(p) {} |
|
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| void reset() {} |
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| |
| template <typename URBG> |
| result_type operator()(URBG& g) { |
| return (*this)(g, param_); |
| } |
|
|
| template <typename URBG> |
| result_type operator()(URBG& g, |
| const param_type& p); |
|
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| param_type param() const { return param_; } |
| void param(const param_type& p) { param_ = p; } |
|
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| result_type(min)() const { |
| return -std::numeric_limits<result_type>::infinity(); |
| } |
| result_type(max)() const { |
| return std::numeric_limits<result_type>::infinity(); |
| } |
|
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| result_type mean() const { return param_.mean(); } |
| result_type stddev() const { return param_.stddev(); } |
|
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| friend bool operator==(const gaussian_distribution& a, |
| const gaussian_distribution& b) { |
| return a.param_ == b.param_; |
| } |
| friend bool operator!=(const gaussian_distribution& a, |
| const gaussian_distribution& b) { |
| return a.param_ != b.param_; |
| } |
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|
| private: |
| param_type param_; |
| }; |
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| template <typename RealType> |
| template <typename URBG> |
| typename gaussian_distribution<RealType>::result_type |
| gaussian_distribution<RealType>::operator()( |
| URBG& g, |
| const param_type& p) { |
| return p.mean() + p.stddev() * static_cast<result_type>(zignor(g)); |
| } |
|
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| template <typename CharT, typename Traits, typename RealType> |
| std::basic_ostream<CharT, Traits>& operator<<( |
| std::basic_ostream<CharT, Traits>& os, |
| const gaussian_distribution<RealType>& x) { |
| auto saver = random_internal::make_ostream_state_saver(os); |
| os.precision(random_internal::stream_precision_helper<RealType>::kPrecision); |
| os << x.mean() << os.fill() << x.stddev(); |
| return os; |
| } |
|
|
| template <typename CharT, typename Traits, typename RealType> |
| std::basic_istream<CharT, Traits>& operator>>( |
| std::basic_istream<CharT, Traits>& is, |
| gaussian_distribution<RealType>& x) { |
| using result_type = typename gaussian_distribution<RealType>::result_type; |
| using param_type = typename gaussian_distribution<RealType>::param_type; |
|
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| auto saver = random_internal::make_istream_state_saver(is); |
| auto mean = random_internal::read_floating_point<result_type>(is); |
| if (is.fail()) return is; |
| auto stddev = random_internal::read_floating_point<result_type>(is); |
| if (!is.fail()) { |
| x.param(param_type(mean, stddev)); |
| } |
| return is; |
| } |
|
|
| namespace random_internal { |
|
|
| template <typename URBG> |
| inline double gaussian_distribution_base::zignor_fallback(URBG& g, bool neg) { |
| using random_internal::GeneratePositiveTag; |
| using random_internal::GenerateRealFromBits; |
|
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| |
| double x, y; |
| do { |
| |
| x = kRInv * |
| std::log(GenerateRealFromBits<double, GeneratePositiveTag, false>( |
| fast_u64_(g))); |
| y = -std::log( |
| GenerateRealFromBits<double, GeneratePositiveTag, false>(fast_u64_(g))); |
| } while ((y + y) < (x * x)); |
| return neg ? (x - kR) : (kR - x); |
| } |
|
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| template <typename URBG> |
| inline double gaussian_distribution_base::zignor( |
| URBG& g) { |
| using random_internal::GeneratePositiveTag; |
| using random_internal::GenerateRealFromBits; |
| using random_internal::GenerateSignedTag; |
|
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| while (true) { |
| |
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| |
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| uint64_t bits = fast_u64_(g); |
| int i = static_cast<int>(bits & kMask); |
| double j = GenerateRealFromBits<double, GenerateSignedTag, false>( |
| bits); |
| const double x = j * zg_.x[i]; |
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| if (std::abs(x) < zg_.x[i + 1]) { |
| return x; |
| } |
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| if (i == 0) { |
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| return zignor_fallback(g, j < 0); |
| } |
|
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| double v = GenerateRealFromBits<double, GeneratePositiveTag, false>( |
| fast_u64_(g)); |
| if ((zg_.f[i + 1] + v * (zg_.f[i] - zg_.f[i + 1])) < |
| std::exp(-0.5 * x * x)) { |
| return x; |
| } |
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| |
| } |
| } |
|
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| } |
| ABSL_NAMESPACE_END |
| } |
|
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| #endif |
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