| 1 | // (C) Copyright John Maddock 2005. |
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| 2 | // Use, modification and distribution are subject to the |
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| 3 | // Boost Software License, Version 1.0. (See accompanying file |
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| 4 | // LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt) |
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| 5 | |
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| 6 | #ifndef BOOST_MATH_COMPLEX_DETAILS_INCLUDED |
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| 7 | #define BOOST_MATH_COMPLEX_DETAILS_INCLUDED |
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| 8 | // |
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| 9 | // This header contains all the support code that is common to the |
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| 10 | // inverse trig complex functions, it also contains all the includes |
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| 11 | // that we need to implement all these functions. |
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| 12 | // |
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| 13 | #include <boost/detail/workaround.hpp> |
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| 14 | #include <boost/config.hpp> |
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| 15 | #include <boost/config/no_tr1/complex.hpp> |
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| 16 | #include <boost/limits.hpp> |
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| 17 | #include <math.h> // isnan where available |
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| 18 | #include <cmath> |
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| 19 | |
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| 20 | #ifdef BOOST_NO_STDC_NAMESPACE |
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| 21 | namespace std{ using ::sqrt; } |
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| 22 | #endif |
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| 23 | |
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| 24 | namespace boost{ namespace math{ namespace detail{ |
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| 25 | |
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| 26 | template <class T> |
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| 27 | inline bool test_is_nan(T t) |
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| 28 | { |
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| 29 | // Comparisons with Nan's always fail: |
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| 30 | return std::numeric_limits<T>::has_infinity && (!(t <= std::numeric_limits<T>::infinity()) || !(t >= -std::numeric_limits<T>::infinity())); |
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| 31 | } |
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| 32 | #ifdef isnan |
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| 33 | template<> inline bool test_is_nan<float>(float t) { return isnan(t); } |
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| 34 | template<> inline bool test_is_nan<double>(double t) { return isnan(t); } |
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| 35 | template<> inline bool test_is_nan<long double>(long double t) { return isnan(t); } |
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| 36 | #endif |
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| 37 | |
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| 38 | template <class T> |
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| 39 | inline T mult_minus_one(const T& t) |
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| 40 | { |
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| 41 | return test_is_nan(t) ? t : -t; |
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| 42 | } |
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| 43 | |
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| 44 | template <class T> |
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| 45 | inline std::complex<T> mult_i(const std::complex<T>& t) |
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| 46 | { |
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| 47 | return std::complex<T>(mult_minus_one(t.imag()), t.real()); |
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| 48 | } |
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| 49 | |
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| 50 | template <class T> |
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| 51 | inline std::complex<T> mult_minus_i(const std::complex<T>& t) |
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| 52 | { |
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| 53 | return std::complex<T>(t.imag(), mult_minus_one(t.real())); |
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| 54 | } |
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| 55 | |
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| 56 | template <class T> |
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| 57 | inline T safe_max(T t) |
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| 58 | { |
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| 59 | return std::sqrt((std::numeric_limits<T>::max)()) / t; |
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| 60 | } |
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| 61 | inline long double safe_max(long double t) |
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| 62 | { |
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| 63 | // long double sqrt often returns infinity due to |
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| 64 | // insufficient internal precision: |
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| 65 | return std::sqrt((std::numeric_limits<double>::max)()) / t; |
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| 66 | } |
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| 67 | #if BOOST_WORKAROUND(__BORLANDC__, BOOST_TESTED_AT(0x564)) |
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| 68 | // workaround for type deduction bug: |
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| 69 | inline float safe_max(float t) |
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| 70 | { |
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| 71 | return std::sqrt((std::numeric_limits<float>::max)()) / t; |
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| 72 | } |
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| 73 | inline double safe_max(double t) |
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| 74 | { |
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| 75 | return std::sqrt((std::numeric_limits<double>::max)()) / t; |
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| 76 | } |
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| 77 | #endif |
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| 78 | template <class T> |
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| 79 | inline T safe_min(T t) |
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| 80 | { |
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| 81 | return std::sqrt((std::numeric_limits<T>::min)()) * t; |
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| 82 | } |
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| 83 | inline long double safe_min(long double t) |
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| 84 | { |
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| 85 | // long double sqrt often returns zero due to |
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| 86 | // insufficient internal precision: |
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| 87 | return std::sqrt((std::numeric_limits<double>::min)()) * t; |
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| 88 | } |
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| 89 | #if BOOST_WORKAROUND(__BORLANDC__, BOOST_TESTED_AT(0x564)) |
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| 90 | // type deduction workaround: |
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| 91 | inline double safe_min(double t) |
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| 92 | { |
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| 93 | return std::sqrt((std::numeric_limits<double>::min)()) * t; |
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| 94 | } |
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| 95 | inline float safe_min(float t) |
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| 96 | { |
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| 97 | return std::sqrt((std::numeric_limits<float>::min)()) * t; |
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| 98 | } |
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| 99 | #endif |
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| 100 | |
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| 101 | } } } // namespaces |
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| 102 | |
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| 103 | #endif // BOOST_MATH_COMPLEX_DETAILS_INCLUDED |
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| 104 | |
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