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I am trying to complete my assignment.which says In a Distance class create an overloaded * operator so that two distances can be multiplied together. Here is my program:

#include<iostream>
using namespace std;
class distance
{
private:
    int a;
public:
    distance():a(10){}
    distance(int x)
    {
        a=x;
    }
    void print()
    {
    cout<<"\n a = "<<a<<" \n ";
    }
    distance operator *(distance);
};
distance distance :: operator *(distance d)
{
    a=a*d.a;
    return distance(a);
}
int main()
{
distance d1,d2,d3;
d1.print();
d2.print();
d3.print();
d3=d1 * d2;
d3.print();
return 0;
}

But I get a compilation error saying:

'distance' : ambiguous symbol.

when I run it on VC++

But it runs fine on Turbo C (by minor change: #include<iostream.h>).

Please explain where am I getting wrong. Thanks in advance.

share|improve this question
    
your operator*() is implementing operator*=(), since you're assigning the result of the multiplication to this->a. – gred Oct 29 '11 at 19:15
up vote 4 down vote accepted

There's already a function called std::distance, which you're bringing into scope through using namespace std and which clashes with your distance class.

Call your class something else (e.g. Distance) or, better yet, remove using namespace std.

P.S. This is a nice illustration of why using namespace X in this manner usually isn't a good idea.

share|improve this answer

Remove using namespace std; from your code, and prefix the appropriate symbols with std::. There is an std::distance name defined for iterators in the standard templates.

(Your operator* would be better if it took a distance const& d as its parameter.)

share|improve this answer
    
I'll add that this is the reason why using namespace std is "evil" :-) Using it you get to live together with a very full namespace :-) (that get full-er every two/three years) – xanatos Oct 29 '11 at 9:28
    
@mat Thanks ,it works ,from next time I'll be cautious before using "using namespace std".thanks once again. – aj8080 Oct 29 '11 at 9:31
    
@xanatos yea true! :) – aj8080 Oct 29 '11 at 9:33

distanceis also the name of a template function in the standard libary. I strongly suspect that since you are using namespace std; it's ambiguous.

share|improve this answer
    
your doubt is right. :) – aj8080 Oct 29 '11 at 9:34

You don't want to declare a name that is injected by another namespace in the same scope as others have mentioned. Because its name hides the namespace member, you can either use :: scope operator to refer to your own name or you can change the name of your class. Assuming if you named distance as distance1 you want to write your multiplication operator as:

distance1 distance1::operator* (const distance1 &d1)
{
    return distance1(a*d1.a);
}
share|improve this answer

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