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Is there a difference between declaring floating point constant as a static constexpr variable and a function as in example below, or is it just a matter of style?

class MY_PI
{
public:
    static constexpr float MY_PI_VAR = 3.14f;
    static constexpr float MY_PI_FUN() { return 3.14f; }
}
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up vote 41 down vote accepted

constexpr functions

Functions have an advantage that free variables do not have (until C++14 that is): they can easily be templated without some class boilerplate. That means you can have your pi with a precision depending on a template argument:

template<typename T>
constexpr T pi();

template<>
constexpr float pi() { return 3.14f; }

template<>
constexpr double pi() { return 3.1415; }

int main()
{
    constexpr float a = pi<float>();
    constexpr double b = pi<double>();
}

However, if you decide to use a static member function instead of a free function, it won't be shorter nor easir to write than a static member variable.

constexpr variables

The main advantage of using a variable is that... well. You want a constant, right? It clarifies the intent and that may be one of the most important points here.

You could still have an equivalent behaviour with a class, but then, you would have to use it like this if your class is a class containing miscellaneous mathematic constants:

constexpr float a = constants<float>::pi;

Or like this if your class is only meant to represent pi:

constexpr double = pi<double>::value;

In the first case, you may prefer to use variables since it will be shorter to write and that will really show that you are using a constant and not trying to compute something. If you just have a class representing pi, you could however go with a free constexpr function instead of a whole class. It would IMHO be simpler.

C++14: constexpr variable templates

However, note that if you choose to use C++14 instead of C++11, you will be able to write the following kind of constexpr variable templates:

template<typename T>
constexpr T pi = T(3.1415);

That will allow you to write your code like this:

constexpr float a = pi<float>;

In C++14, this may be the preferred way to do things. If you are using an older version of the standard, the first two paragraphs still hold.

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4  
@cubuspl42 The next C++ standard that should be available next year. GCC and Clang already started to implement some of the features. – Morwenn Apr 30 '13 at 13:04
6  
@cubuspl42 GCC support of C++14 core features. And each feature has a link to the corresponding paper. – Morwenn Apr 30 '13 at 19:30
3  
@Trout.Z "is it a little too quick?" - I'd rather not call the standard too quick but VS too slow, no? – Christian Rau May 2 '13 at 7:35
1  
@Trout.Z Since some compilers are up to date, the standard is not too quick.Moreover, those early implementations allow to do some tests and apply some corrections that may have been unnoticed by the standard. And this question may be read in a few years also, let's think about the future when answering. – Morwenn May 2 '13 at 7:58
4  
(Shameless plug) I have created an overview of the proposals accepted into the C++14 Committee Draft that is available here that also links to Michael Wong's excellent trip report. – boycy May 2 '13 at 9:19

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