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I need to store the type of an object in a class.
This would look like:

template<class T>
class box
{
private:

    type_info type;
    T data;
}

The reason why I need to store the type information is complex to explain, anyway I would know if this is possibile in C++.
When i try to compile an instruction like:

type=typeid(data);

I get a syntax error:
No matching for initialization of 'std::type_info'
So it seems like type_info hasn't the constructor with no arguments.Is possibile then in some way, to memorize the type of an object into a data?

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3 Answers

up vote 7 down vote accepted

typeinfo is noncopyable - its constructors and assignment operator are private (in C++11 they are flagged deleted). you're probably after something along these lines:

template<class T>
class box
{
public:
    box() : data(), type(typeid(data))
    {
    }
private:
    T data;
    const type_info& type;
};
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You can take a pointer from the object returned by the typeid expression:

const std::type_info* const type = &typeid( data );
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It's possible to take the name of the class/object and store it:

std::string name = typeid(data).name();

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On some systems, typeid(x).name() is 'b' for bools, 'd' for doubles, 'Ss' for std::strings, 'h' for unsigned ints, etc. So you'll have to decipher that output somewhat. –  01100110 Apr 20 '12 at 13:07
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