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I came across a strange situation today where I needed a function to not implicitly convert values.

After some looking on google I found this http://www.devx.com/cplus/10MinuteSolution/37078/1954

But I thought it was a bit stupid to use a function overload for every other type I want to block so instead I did this.


void function(int& ints_only_please){}

int main() { char a=0; int b=0; function(a); function(b); }

I showed the code to a friend and he suggested I added const before int so the variable isn't editable, however when I did started compiling fine but it shouldn't, look below to see what I mean


void function(const int& ints_only_please){}

int main() { char a=0; int b=0; function(a); //Compiler should stop here but it doesn't with const int function(b); }

Does anyone know why this is?

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char is implicitly convertible to int –  John Dibling Jan 5 '11 at 16:25

2 Answers 2

up vote 12 down vote accepted

Use templates to get the desired effect:

template <class T>
void foo(const T& t);

template <>
void foo<int>(const int& t)
{

}

int main(){
  foo(9); // will compile
  foo(9.0); // will not compile
  return 0;
}

Note that we only write a special version of the template for int so that a call that has any other type as a template parameter will result in a compile error.

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2  
Do not forget that, signed int (or int) != unsigned int. You need for each type a function. –  Raphael Bossek Jan 5 '11 at 12:11
    
You could couple it with some SFINAE trickery (like boost::enable_if to selectively allow multiple related types (like signed as well as unsigned int, for example) –  jalf Jan 5 '11 at 12:18
    
Okay thanks, its difficult choosing which answer I think it correct but I think I will choose yours because of the more in depth example –  General Sirhc Jan 5 '11 at 12:31
    
@General Sirhc: I must have misunderstood the question. The only question that you asked directly was "Does anyone know why this is?" which this answer doesn't directly address. –  Charles Bailey Jan 5 '11 at 13:41
    
@Charles Bailey: No actually you completely understood the question and you answered it correctly too. I selected Grigory's answer to be correct because it was more helpful. If you would like I will mark yours as the correct answer instead? seeing as you did have the correct answer. –  General Sirhc Jan 5 '11 at 14:22

It is legal to bind a temporary to a const reference, but not a non-const reference.

A char can be implicitly converted to an int and the temporary that is the result of this conversion can be bound to a const int& function parameter extending the temporary's lifetime until the function exits.

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