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The following code compiles fine:

template<typename T>
void f(const T &item) { return; }

int main() 
{
  f("const string literal");
}

Compilation succeeded at ideone : http://ideone.com/dR6iZ

But when I mention the return type, it doesn't compile:

template<typename T>
T f(const T &item) { return item; }

int main() 
{
  f("const string literal");
}

Now it gives error:

prog.cpp:6: error: no matching function for call to ‘f(const char [21])’

Code at ideone : http://ideone.com/b9aSb

Even if I make the return type const T, it doesn't compile.

My question is :

  • Why does it not compile?
  • What does the return type has to do with the error and the function template instantiation?
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A good compiler (with warning enabled) should warn you that the top-level const in an argument or return type is ignored, as far as I know. Therefore returning T or T const does not change anything. –  Matthieu M. Mar 15 '11 at 7:07

2 Answers 2

up vote 12 down vote accepted

You cannot return an array from a function, so template instantiation fails, and there's no matching function.

You get this particular error because of SFINAE - It's not really an error that the compiler cannot instantiate your function, it is an error that there's no matching function.

You can return a reference to an array - returning T const & will work.

EDIT: In response to comments:

First, this is actually a decent example of SFINAE.

template<typename T> T f(const T &item) { return item; }
char const * f(void const * item) { return 0; }
int main() {
  f("abc");
}

When the compiler compiles this, it'll first try to instantiate the templated f, to create an exact match for the type const char [3]. This fails, because of the mentioned reasons. It'll then select the inexact match, the plain function, and in the call decay the const char [3] to a const char *.

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@Erik: can't compiler instantiate const char * as well? –  Nawaz Mar 15 '11 at 2:19
    
Could you elaborate on that a bit? How would that code try to return an array? –  Jon Mar 15 '11 at 2:20
1  
@Nawaz: No, your literal is a const char[21] so that's the type that's used. –  Erik Mar 15 '11 at 2:20
    
@Jon: A string literal is an array... It's not a pointer. –  Erik Mar 15 '11 at 2:21
1  
@Nawaz: For the same reason you wouldn't expect: struct foo { operator int() { return 0; } }; f(foo()); to deduce T to int. –  GManNickG Mar 15 '11 at 2:45

it looks as though you tell it that you plan on returning a T, but then you actually return a const T&. maybe try changing the declaration to:

template<typename T>
const T& f(const T& item) { return item; }

or maybe change the return value to a dereferenced version of the argument:

template<typename T>
T f(const T& item) { return (*item); }
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