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#include <iostream>
using namespace std;

template <typename x> x functionA (x, x);

int main ()
{
    functionA <double, double, double> (1, 1) << "\n";
}

template <typename x> x functionA (x arg1, x arg2)
{
    return arg1 + arg2;
}

This code results in:

error: no matching function for call to ‘functionA(int, int)’

What can be the reasons?

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5 Answers 5

up vote 1 down vote accepted

The function template has one template parameter only, and you're passing 3 template arguments to it:

functionA <double, double, double> (1, 1) << "\n";

Why 3 template arguments?

Just write:

functionA <double> (1, 1);

Or you can simply let the compiler deduce the template argument, as:

functionA(1.0, 1.0);  //template argument deduced as double!
functionA(1, 1);     //template argument deduced as int!
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Doesn't functionA <double, double, double> mean that the return type is double and the other two arguments are also double? –  TheIndependentAquarius Sep 1 '11 at 7:27
1  
@Anisha if the arguments are of the same type you don't need to specify the type multiple times. –  Jagannath Sep 1 '11 at 7:32
2  
@Anisha: Even if the template parameter is getting applied in 3 places, two arguments and a return type, All 3 of them have to be of the same type, since the function template takes only one template parameter, so you only need to specify double once. –  Alok Save Sep 1 '11 at 7:32
1  
@Anisha: No, it means when you do it in a wrong way. It's like calling f as f(2,2,2) simply because parameter p has been used 3 times, as : int f(int p) { return p*p;}. –  Nawaz Sep 1 '11 at 7:42
1  
@Anisha: It's compiler's way of saying, I am smarter than the programmer ;-) –  Alok Save Sep 1 '11 at 7:43

There are two things wrong here. First, you only need to specify one type for the template:

functionA<double>(1, 1)

Secondly, you are missing the std::cout at the beginning of that line.

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This is wrong: functionA <double, double, double> (1, 1). You are trying to call the functionA() with three template parameters while your declaration of functionA has only 1 template parameter.

Beside that, the << "\n"; after the call does not make any sense either.

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The line should be,

std::cout << functionA <double> (1, 1) << "\n";
^^^^^^^missing          ^^^^^^only 1 argument

Because, functionA takes only 1 template argument and thus you should call explicitly only with exactly one template argument.

The 3 arguments are needed in the case had there been your functionA was like,

template <typename x, typename y, typename z>
x functionA (y arg1, z arg2)
{
    return arg1 + arg2;
}
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Please see my comment on Nawaz's post. –  TheIndependentAquarius Sep 1 '11 at 7:28
    
@Anisha, see the updated answer –  iammilind Sep 1 '11 at 7:31

You don't need to specify the types multiple times. If your return type and the argument to the function is same, then you don't even need to specify the type. The below code compiles fine.

std::cout << functionA(1, 1) << std::endl;
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