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I am trying to write a C++ class that has some overloaded methods:

class Output
{
public:
    static void Print(bool value)
    {
        std::cout << value ? "True" : "False";
    }

    static void Print(std::string value)
    {
        std::cout << value;
    }
};

Now lets say I call the method as follows:

Output::Print("Hello World");

this is the result

True

So, why, when I have defined that the method can accept boolean and string, does it use the boolean overload when I pass in a non-boolean value?

EDIT: I come from a C#/Java environment, so quite new to C++!

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Why static? (..) –  Kiril Kirov Feb 8 '13 at 10:16
    
@meh, because they are not instance functions. –  series0ne Feb 8 '13 at 10:18
1  
your const char* is a native-type promotion to bool and a constructed value type promotion to std::string. Which would you choose. ? Now guess which one the compiler chose.. –  WhozCraig Feb 8 '13 at 10:18
    
You are passing a const char *, not a string, try Output::Print(std::string("Hello World")) –  jmetcalfe Feb 8 '13 at 10:19
    
Regarding "static": In C++, functions can be free from the tyranny of the class system, so you don't need to make quasi-classes like you must in Java. –  molbdnilo Feb 8 '13 at 10:50
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1 Answer 1

up vote 17 down vote accepted

"Hello World" is a string literal of type "array of 12 const char" which can be converted to a "pointer to const char" which can in turn be converted to a bool. That's precisely what is happening. The compiler prefers this to using std::string's conversion constructor.

A conversion sequence involving a conversion constructor is known as a user-defined conversion sequence. The conversion from "Hello World" to a bool is a standard conversion sequence. The standard states that a standard conversion sequence is always better than a user-defined conversion sequence (§13.3.3.2/2):

a standard conversion sequence (13.3.3.1.1) is a better conversion sequence than a user-defined conversion sequence or an ellipsis conversion sequence

This "better conversion sequence" analysis is done for each argument of each viable function (and you only have one argument) and the better function is chosen by overload resolution.

If you want to make sure the std::string version is called, you need to give it an std::string:

Output::Print(std::string("Hello World"));
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1  
@LuchianGrigore I concur that is the deeper question. I'm just not sure the OP even knows he asked it =P –  WhozCraig Feb 8 '13 at 10:20
1  
Yeah I tried that, which worked...just seems untidy!, I've changed the method declaration to Print(const char* value) which seems to work also...Not sure what is best practice here though! –  series0ne Feb 8 '13 at 10:22
    
@LuchianGrigore I've thrown that in there. –  Joseph Mansfield Feb 8 '13 at 10:27
    
Yeah, saw that, much better if you ask me. +1 –  Luchian Grigore Feb 8 '13 at 10:31
1  
@series0ne You can actually have both overloads - on std::string (or preferably const std::string&) and on const char*. –  Angew Feb 8 '13 at 10:45
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