Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm making some stack, in which I need to uses this kind of comparison in some function. But I got stuck since I don't know how the prototype for this should look like.

I have the following line in a function.

template <class T>
void function1(T i)
{
   if(i == 'a')
       //do something
}

I wonder know how the overload prototype should look like for it?

EDIT Dunno if it's worth to mention, anyway this is what I have tried so far template

bool Stack<T>::operator==(char c) const
{
    cout << c << endl; // just some test
}

No need to comment how this function works, as I have not finished it yet. This part will compile, however at the part where I call this function for the first time is in the Stack::push(T i). The compiler will complain that there are no matching function for this.

 error: no match for 'operator==' in 'i == '#''
share|improve this question
    
Show us what you've tried so far: I can't tell what you're asking from the question, but an example might clarify. –  Ben Jackson Dec 8 '10 at 21:01
    
Your question isn't clear. Your template function is fine as is when the if statement is completed. But it assumes you can compare i == 'a'. Is the question about how to make that possible for some type T, or about how to generalize that line to not use a char literal? –  aschepler Dec 8 '10 at 21:03
    
@aschepler: I want to make so I can compare type T with a character, since some point when I run this program I need to do that comparison. –  starcorn Dec 8 '10 at 21:35
1  
Sounds like it's T which needs an operator==, so providing Stack<T>::operator== doesn't directly help. So what is T, and can you overload for that type? –  aschepler Dec 8 '10 at 21:53
    
I can't figure out why you would need an operator== to implement push() -- can you show us your implementation. My guess is that there's a syntax error that you're misinterpreting as a need for op==. –  Lou Franco Dec 9 '10 at 0:27
show 1 more comment

3 Answers 3

For overloading operators, the name of the function is operator followed by the actual operator, so operator==. It returns bool. I don't know what your arguments should be based on your code. Probably Stack<T>&, and you need two of them to compare if it's a free function, and one to compare to this if it's a member function.

If you have ways to convert to a Stack<T>, then prefer a free function so that you can convert the left-hand-side.

share|improve this answer
add comment

I'm not sure I understand your question. In order for an instantiation of template function function1 to be well-formed, you'll have to provide a operator== which compares a T and (I'll suppose) a char.

Now, you have two options here :

  • Provide a bool operator==(char) const member function in your type, for example :

    struct A {
        bool operator==(char) const { /* ... */ }
    };
    
    
    function1(A()); // OK : comparison uses A::operator==(char)
    
  • Provide bool operator==(const T &, char) as a free function, for example :

    struct A { /* ... */ };
    bool operator==(const A &, char) { /* ... */ }
    
    
    function1(A()); // OK : comparison uses operator==(const A &, char)
    
share|improve this answer
add comment

So every T in your function1(t) has to implement operator ==;

For example, as a member function

class A
{
public:
   bool operator == (char) const;
};

or a non-member operator:

class A
{
public:
   friend bool operator == (const A&, char);
};
share|improve this answer
    
I have already tried that, it would give me compile error. I have edited my question with that error –  starcorn Dec 8 '10 at 21:38
    
It's hard to say what you actually tried, because there is no complete code fragment, so everybody just tries to guess. As it was said in this thread you need to provide operator == (member function or free) for the type T used in your function1(T i), I don't see what Stack<> has to do with it, unless variable of its type supplied to the function. –  Gene Bushuyev Dec 8 '10 at 23:09
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.