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There is such class:

#include <iostream>
#include <cmath>

class Element {
private:
  int val;
public:
  Element(int val_){ val = val_;}
  friend Element std::pow(Element a, int exp);
};

I'd like to override standard function pow, which is friend of class Element, to work with objects of my class. However, there is following error during compilation:

error: ‘Element std::pow(Element, int)’ should have been declared inside ‘std’

How to override standard pow function?

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Why do you want to override the function from std and not use "standalone" function named similary in another namespace? –  Griwes Jul 28 '11 at 13:48
    
I'd like to write some mathematical function which accepts arguments of standard data types and my own data type, and uses power function. –  scdmb Jul 28 '11 at 13:53
    
Then make that mathematical function templated on types and partially specialize it on your own classes to use your function (note I'm not native English speaker and I'm not sure if "partially specialize" is right expression here, correct me if I'm mistaken). –  Griwes Jul 28 '11 at 13:56
    
@Grives, your English is correct I think :D, but the explanation is not. std::pow and the family are not templates, and you don't need templates here, overloading is sufficient. –  Kos Jul 28 '11 at 13:58
    
@Kos, I was not reffering to std::pow, but to "some mathematical function", which OP was reffering to and make that "some mathematical function" a templated and partially specialized one. But of course the easiest (and accepted ATM) answer is the best ;) –  Griwes Jul 28 '11 at 17:55

4 Answers 4

up vote 7 down vote accepted

First of all, you don't override, you overload. The term override relates to virtual functions, and overload to choosing the right function basing on parameter types.

The solution is simple: don't write std::pow, just write a pow. Or yournamespace::pow, if you prefer - doesn't matter. Yes, it's just that.

Then:

double a;
Element b;

using std::pow;
pow(a, 10.0);    // calls std::pow(double, double)
pow(Element, 10) // calls pow(Element, int)

Explanation: In C++ there's a wild thing called ADL (or Koenig's lookup) which will basically decide which variant to use, and it will choose the overload from any namespace without you needing to specify it at the place of the call.

Have a read: http://en.wikipedia.org/wiki/Argument-dependent_name_lookup

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Basically, you can't do this. For one thing, you are not allowed to put user-defined things inside the std namespace.

You will need to write your own pow function, that is not inside std.

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Well for as start you shouldn't be adding things to namespace std.

Your pow overload should be in a separate namespace. You should then be

using std::pow
using my::pow;

Debatable style point that I endorse: generic functions like this should not be namespace-qualified. That is to say, use the using and call pow() in client code instead of std::pow(), same applies to std::swap and other customisation points.

The only time you can extend the std namespace is with template specialisations. Again, consider std::swap.

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Is it a good practice to specialise std::swap (as opposed to overloading it)? –  Kos Jul 28 '11 at 13:56
1  
It's the only way permitted by the standard. –  spraff Jul 28 '11 at 13:56
1  
@Kos: You can provide a different swap function that will be picked up by ADL and that way you don't need to specialize/overload it. The idiom for calling swap should be, as this answer points out: void foo( Type x, Type y ) { using std::swap; swap( x.a, y.a ); } That way it will lookup swap in both std or the namespace where the type of Type::a is defined. –  David Rodríguez - dribeas Jul 28 '11 at 14:29

You have to define the function in the standard namespace, or else it does not exist:

namespace std {
    Element pow(Element a, int exp) {
        //...
    }
}
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-1, polluting std namespace is not the solution. For solution see Oli's answer. –  Dialecticus Jul 28 '11 at 13:48
    
You are forbidden from doing that by the standard. –  Konrad Rudolph Jul 28 '11 at 13:48

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