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I have the following class setup that trys mimicks a very basic stack.

template <class T>
class Stack{
    public:
        static const unsigned MAX_STACK_DEPTH =4;
        Stack();
        unsigned elements() const;
        Stack<T> & push(T &value);
        T pop();
        Stack<T> & show();
    private:
        unsigned element;
        T stack[MAX_STACK_DEPTH];
};

template <class T>
Stack<T>::Stack(){
    element=0;
}
/*Other class function definitions*/

My problem is that I'm getting the following error in main

1   IntelliSense: no instance of function template "calc" matches the argument list c:\users\nima\documents\visual studio 2010\projects\calcu\calcu\policalc.cpp    109 6   Calcu

Here is my main

int main(){
    bool run=true;
    while(run){
        if(calc(input()));
    }
}

here are the other two functions declarations

string input();
template <class T>
bool calc(string line);

Here is my calc function, It's not finished.

template <class T>
bool calc(string line){
    static T Ans;
    istringstream sin(line);
    Stack stack;
    for(string token; sin>>token){
        T t;
        if(parse(t, token)){
            push(t);
        }else{
            if(token==operators[i]){
                switch(i){
                case 1:{

                       }
                }
            }
        }
    }
}
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1  
Why is calc() declared as a template function, if it doesnt use T in its signature? I dont see where you use class Stack in main. –  Brady Oct 10 '12 at 6:01
2  
You provided stack template which is useless here. But didnt provide useful calc implementation. –  Denis Ermolin Oct 10 '12 at 6:04
    
i updated the post with the calc function. Does that help? :/ Sorry about that. –  Painguy Oct 10 '12 at 6:12
    
How will the compiler know what value of T you want calc called with? –  user93353 Oct 10 '12 at 6:19
1  
Are you sure that you have only one error? –  besworland Oct 10 '12 at 6:21
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1 Answer 1

up vote 2 down vote accepted

Your calc function is a function template with parameter T, but that parameter isn't used by any of the function arguments – the only argument is defined as a string, regardless of what type T is.

Therefore, the compiler cannot defer T when you call calc like this:

calc(input())

You need to explicitly specify T, e.g.:

calc<int>(input())

(Of course, you should use whatever data type makes sense instead of int.)

share|improve this answer
    
I updated my post to show that I use T inside the function. Does that make things better? :/ –  Painguy Oct 10 '12 at 6:30
    
@NimaGanjehloo No, unfortunately not. The type can only be deferred if it is used as an argument to the function. Using it somewhere inside the function (or even as a return type, but not as argument) is not enough. –  jogojapan Oct 10 '12 at 6:33
    
How would I go about making a variable that takes in any type inside the calc function in that case? –  Painguy Oct 10 '12 at 6:41
    
Hmmm... I think there is some misunderstanding here about what templates are. The type used for T must be known at compile time. (It needs not be known at the time when you write calc, but at the time you write the code that calls calc it must be defined -- either in the form of one of the arguments of calc, or by explicitly specifying it as in my answer.) Just think about what the compiler should do when it gets to the point in calc where T is used. How should it know what type to use? –  jogojapan Oct 10 '12 at 6:45
1  
Well that explains alot haha. Looks like I have to go back a few steps and rethink everything I'm doing. Thanks for the help. –  Painguy Oct 10 '12 at 7:07
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