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I have 2 files:

/****demo.cpp****/
#include <iostream.h>
#include "gc.h"

class foo{};

int main(){
    gc<foo> x1;
    cout<<x1;
}

/*****gc.h*****/
template <class T> class gc 
{
    T* ptr;
public:
    operator T*(){}
};

If I don't write operator T*(){} then I get a lot of compiler errors.

So plz tell me what is operator T*(void) and when it is invoked?

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2 Answers 2

Regarding your Question

operator type () is a so-called cast operator. if there is a need for conversion to type, then that operator function is used to do the conversion.

in your example, cout uses your operator T* () to convert your x1 object using a user defined implicit conversion to a pointer, which is then output by ostream's (cout is of class std::ostream) operator<< which takes a void* .

Other Problems

To help you figure out other problems, change the header file name from iostream.h to iostream . Standard C++ does not know iostream.h . Those files were called like that before C++ was made a Standard. Also, all C headers you use, like math.h, stdio.h are still valid in C++, but they are so-called backward-compatibility header files. You should include for example cmath and cstdio instead. That will put all names that are not macros in C into the namespace std. Instead of using cout , you use std::cout . Likewise for other identifiers too.

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but how does the compiler know that this line does conversion... i replaced this line with "operator void*(){}"...it also works.How? thx for the comments in other problems... thats quite enlightment...i did not know this... –  Jon Galloway Nov 8 '08 at 21:09
    
what about conio.h for getch()? –  Jon Galloway Nov 8 '08 at 21:16
    
conio.h is windows specific. avoid it. for your other question. The compiler cannot call operator<< with both cout and your object as arguments. Thus it looks for a standard conversion. It doesn't find one. Then it looks for a user-defined conversion, and finds your cast operator. –  Johannes Schaub - litb Nov 8 '08 at 23:12
    
Thx...you've been a real help !! –  Jon Galloway Nov 9 '08 at 3:29

operator T*(){} is a cast operator. You are providing a function that can be used to convert from a gc<T> to a T* ... though it should require that you actually return something, presumably ptr in this case.

The problem is that the compiler doesn't know how to format your gc object to the output stream.

By providing a cast from gc to foo* it is able to output the object as just a pointer value ... probably not what you want.

You likely want to define a custom overload for the << operator to dump out your class:

template <class T>
std::ostream& operator<<( std::ostream& os, const gc<T>& x)
{
    // os << .. something useful here ..
    return os;
}
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thx... but how does the compiler know that this line does conversion... i replaced this line with "operator void*(){}"...it also works. How? –  Jon Galloway Nov 8 '08 at 21:03
    
The cast operator gives the compiler a way to convert a gc<T> to a T*, or in this case a void* For the cout line the compiler has to work out which overload of operator<< it can call based on the arguments. It doesn't know how to deal with a gc<T> directly, but it can deal with pointer types. –  Rob Walker Nov 8 '08 at 21:08
    
Thx Rob !! got it :) –  Jon Galloway Nov 8 '08 at 21:27

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