Common mathematical functions | |||||||||||||||||||||||||||||||
Mathematical special functions(C++17) | |||||||||||||||||||||||||||||||
Mathematical constants(C++20) | |||||||||||||||||||||||||||||||
Basic linear algebra algorithms(C++26) | |||||||||||||||||||||||||||||||
Data-parallel types (SIMD)(C++26) | |||||||||||||||||||||||||||||||
Floating-point environment(C++11) | |||||||||||||||||||||||||||||||
Complex numbers | |||||||||||||||||||||||||||||||
Numeric array (valarray ) | |||||||||||||||||||||||||||||||
Pseudo-random number generation | |||||||||||||||||||||||||||||||
Bit manipulation(C++20) | |||||||||||||||||||||||||||||||
Saturation arithmetic(C++26) | |||||||||||||||||||||||||||||||
Factor operations | |||||||||||||||||||||||||||||||
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Interpolations | |||||||||||||||||||||||||||||||
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Generic numeric operations | |||||||||||||||||||||||||||||||
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C-style checked integer arithmetic | |||||||||||||||||||||||||||||||
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Functions | ||||||||||||||||
Basic operations | ||||||||||||||||
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Exponential functions | ||||||||||||||||
Power functions | ||||||||||||||||
Trigonometric and hyperbolic functions | ||||||||||||||||
Error and gamma functions | ||||||||||||||||
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Nearest integer floating point operations | |||||||||||||||||||||||||||||||||||||||||
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Floating point manipulation functions | |||||||||||||||||||||||||||||||||||||||||
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Classification and comparison | |||||||||||||||||||||||||||||||||||||||||
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Types | |||||||||||||||||||||||||||||||||||||||||
Macro constants | |||||||||||||||||||||||||||||||||||||||||
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Defined in header <cmath> | ||
(1) | ||
float lgamma(float num); double lgamma(double num); | (until C++23) | |
/*floating-point-type*/ lgamma(/*floating-point-type*/ num); | (since C++23) (constexpr since C++26) | |
float lgammaf(float num); | (2) | (since C++11) (constexpr since C++26) |
longdouble lgammal(longdouble num); | (3) | (since C++11) (constexpr since C++26) |
SIMD overload(since C++26) | ||
Defined in header <simd> | ||
template</*math-floating-point*/ V> constexpr/*deduced-simd-t*/<V> | (S) | (since C++26) |
Additional overloads(since C++11) | ||
Defined in header <cmath> | ||
template<class Integer> double lgamma( Integer num); | (A) | (constexpr since C++26) |
std::lgamma
for all cv-unqualified floating-point types as the type of the parameter.(since C++23)S) The SIMD overload performs an element-wise std::lgamma onv_num.
| (since C++26) |
A) Additional overloads are provided for all integer types, which are treated asdouble. | (since C++11) |
Contents |
num | - | floating-point or integer value |
If no errors occur, the value of the logarithm of the gamma function ofnum, that is\(\log_{e}|{\int_0^\infty t^{num-1} e^{-t} \mathsf{d}t}|\)loge|∫∞
0tnum-1
e-t dt|, is returned.
If a pole error occurs,+HUGE_VAL,+HUGE_VALF
, or+HUGE_VALL
is returned.
If a range error due to overflow occurs,±HUGE_VAL,±HUGE_VALF
, or±HUGE_VALL
is returned.
Errors are reported as specified inmath_errhandling.
Ifnum is zero or is an integer less than zero, a pole error may occur.
If the implementation supports IEEE floating-point arithmetic (IEC 60559),
Ifnum is a natural number,std::lgamma(num) is the logarithm of the factorial ofnum-1.
ThePOSIX version oflgamma
is not thread-safe: each execution of the function stores the sign of the gamma function ofnum in the static external variablesigngam
. Some implementations providelgamma_r
, which takes a pointer to user-provided storage forsinggam
as the second parameter, and is thread-safe.
There is a non-standard function namedgamma
in various implementations, but its definition is inconsistent. For example, glibc and 4.2BSD version ofgamma
executeslgamma
, but 4.4BSD version ofgamma
executestgamma
.
The additional overloads are not required to be provided exactly as(A). They only need to be sufficient to ensure that for their argumentnum of integer type,std::lgamma(num) has the same effect asstd::lgamma(static_cast<double>(num)).
#include <cerrno>#include <cfenv>#include <cmath>#include <cstring>#include <iostream> // #pragma STDC FENV_ACCESS ON constdouble pi=std::acos(-1);// or std::numbers::pi since C++20 int main(){std::cout<<"lgamma(10) = "<< std::lgamma(10)<<", log(9!) = "<<std::log(std::tgamma(10))<<", exp(lgamma(10)) = "<<std::exp(std::lgamma(10))<<'\n'<<"lgamma(0.5) = "<< std::lgamma(0.5)<<", log(sqrt(pi)) = "<<std::log(std::sqrt(pi))<<'\n'; // special valuesstd::cout<<"lgamma(1) = "<< std::lgamma(1)<<'\n'<<"lgamma(+Inf) = "<< std::lgamma(INFINITY)<<'\n'; // error handlingerrno=0;std::feclearexcept(FE_ALL_EXCEPT); std::cout<<"lgamma(0) = "<< std::lgamma(0)<<'\n'; if(errno==ERANGE)std::cout<<" errno == ERANGE: "<<std::strerror(errno)<<'\n';if(std::fetestexcept(FE_DIVBYZERO))std::cout<<" FE_DIVBYZERO raised\n";}
Output:
lgamma(10) = 12.8018, log(9!) = 12.8018, exp(lgamma(10)) = 362880lgamma(0.5) = 0.572365, log(sqrt(pi)) = 0.572365lgamma(1) = 0lgamma(+Inf) = inflgamma(0) = inf errno == ERANGE: Numerical result out of range FE_DIVBYZERO raised
(C++11)(C++11)(C++11) | gamma function (function)[edit] |
C documentation forlgamma |
Weisstein, Eric W. "Log Gamma Function." From MathWorld — A Wolfram Web Resource. |