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namespace std {
 class type_info
 {
 public:
  virtual ~type_info(); //type_info can serve as a base class
 // enable comparison
  bool operator==(const type_info& rhs ) const;
 // return !( *this == rhs)
  bool operator!=(const type_info& rhs ) const;
  bool before(const type_info& rhs ) const; // ordering
 //return a C-string containing the type's name
  const char* name() const;
 private:
  //objects of this type cannot be copied
     type_info(const type_info& rhs );
     type_info& operator=(const type_info& rhs);
 }; //type_info
}  

In the declaration of type_info class ,I can't find any data member .So what is constructed or destructed ?? Also typeid isn't declared in it.So how type_info object is accessed by it?
Is above representation incomplete? Please tell about the type of data member in type_info class

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3 Answers

up vote 4 down vote accepted

It looks like you are looking at the public interface of typeinfo from C++03. The standard doesn't restrict an implementation from adding members to a standard class (so long as there names come from those reserved to the implementation) to make things work.

In the implementation that I am currently using std::typeinfo has a private member const char* __name which is used to implement the public member functions according to the requirements of the standard.

ISO/IEC 14882:2011 17.5.2.3 Private members [objects.within.classes] / 1:

Clauses 18 through 30 and Annex D do not specify the representation of classes, and intentionally omit specification of class members (9.2). An implementation may define static or non-static class members, or both, as needed to implement the semantics of the member functions specified in Clauses 18 through 30 and Annex D.

Similar wording appears in C++03 17.3.2.3.

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Is mechanism to get the type is written by compiler or author of c++ implement it –  T.J. Feb 12 '12 at 12:03
    
@10001001058: Your question isn't very clear to me. The mechanism to get the type has to be implemented by the author of the C++ implementation that you are using. –  Charles Bailey Feb 12 '12 at 13:46
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typeid is a keyword, not a function, so it need not and cannot be declared. It cannot be a function, since then the expression typeid(T) where T is a type would not be valid. It is implemented in the compiler, not in the library.

typeinfo doesn't need to have any data members; its name method is allowed to serve strings from what is effectively a static array of them. For example, consider this simple class that knows its own name:

// foo.h
class Foo {
    // look ma, no data members!
  public:
    char const *name() const;
};

// foo.cpp
char const NAME[] = "Foo";
char const *Foo::name() const { return NAME; }

Apart from name, the main operation on typeinfo objects is ==, which can be implemented by a simple pointer comparison between the objects; in that case, the compiler could construct a big typeinfo [] array somewhere private and typeid would just index into that array to fetch the right typeinfo object. How it works, however, is implementation-dependent.

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If you are asserting that typeinfo isn't allowed any additional members, you should probably explain how it knows which string to serve up through name. –  Charles Bailey Feb 12 '12 at 11:40
    
@larsmans :could you please explain why "typeinfo doesn't need to have any data members" more broadly.thank you –  T.J. Feb 12 '12 at 11:43
    
also explain how typeid works. –  T.J. Feb 12 '12 at 11:45
    
@CharlesBailey: I'm saying typeinfo doesn't need to have additional members, not that it's not allowed to have them. –  larsmans Feb 12 '12 at 11:56
1  
@AlanStokes: yes, I was indeed thinking of fetching the index from its own address. If all typeinfo objects are in an array as well, then the pointer juggling involved is trivial. I was presuming the OP was looking at an actual header file; I only realized later that they were quoting from the standard. –  larsmans Feb 12 '12 at 12:18
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There are no data members you can access. type_info is implemented for you by the compiler; the details are not public. You obtain a type_info by using typeid.

Don't worry, it's the compiler's job to make it all work.

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