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I have my class, where I overloaded the ! operator:

class obj
{
public:

    bool operator!() const
    { return this->str.length() == 0; }

private:

    string str;

};

With the ! operator i want to check the obj validity, so:

obj o;

// if o is not a valid object
if(!o)
   cerr << "Error";

Now I want to have the possibility to do this:

// if o is a valid object
if(o)
   cout << "OK";

How can I do?

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2 Answers 2

up vote 6 down vote accepted

Using C++11, you can do this by having an explicit operator bool:

explicit operator bool() const {
    return !!*this;
}

This operator is called if you ever need to cast your object to a bool explicitly (which is done by the if statement automatically). The implementation works by calling your operator ! on the receiver object, then returning the opposite result.

Hope this helps!

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3  
Thanks, this is interesting, but if I can't use C++11? –  gliderkite Jun 29 '12 at 17:50
3  
@gliderkite : See this article. –  ildjarn Jun 29 '12 at 18:06

Based on your usage it looks like you need to overload the bool operator and not the ! operator.

class obj
{
public:

    operator bool() const
    { return this->str.length() == 0; }

private:

    string str;

};

EDIT

ildjarn provided a nice link in the comments to the dangers of doing a simple bool overload. It's definitely worth the read

http://en.wikibooks.org/wiki/More_C%2B%2B_Idioms/Safe_bool

share|improve this answer
    
operator bool is very dangerous, hence the existence of the safe bool idiom. –  ildjarn Jun 29 '12 at 18:03
    
Just a note that an implicit operator bool is dangerous, but an explicit one (as @templatetypedef used, but available only in C++11) is much safer. –  Jerry Coffin Jun 29 '12 at 18:09

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