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I have a function which takes a reference to an object:

void move(Ball& ball);

I have another function calling 'move()' which has a pointer to ball:

void foo(Ball* ball){
 //call move()
}

How is foo() supposed to pass ball to move()?

Should it be like:

move(*ball);

or:

move(ball);

or:

move(&ball);
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Do you have a compiler? why not just test it out yourself. lazy bum. –  shoosh Feb 16 '09 at 9:02
4  
Not that I disagree with doing a minimum of research yourself, but it's generally not a good idea to trust your C++ compiler to tell you what is or isn't legal. "it compiles" is not the same as "it is well-defined C++" –  jalf Feb 16 '09 at 18:45
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4 Answers 4

up vote 11 down vote accepted

The first one, move(*ball).

the second one, move(ball) tries to pass the pointer and the third one, move(&ball) tries to pass a pointer to a pointer.

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move(*ball);

Here's why. You can think of a reference as basically taking a pointer to the object it is handed. Thus you want the object itself, not a pointer. If you call move(ball) you will be taking a reference (pointer) to the pointer, not the object. Instead, move(*ball) dereferences the pointer and the reference then takes the pointer of that dereferenced object.

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With the * operator on a pointer you dereference it, thus obtaining a Ball object. Since you're actually passing your parameter to a function that accepts a Ball& (so a Ball reference) only the reference will be passed, and not the whole object. The right usage is:

move(*ball);

But I suggest you to name the variables in a way that "speaks" about their nature, so ballPtr or ball_ptr would be more appropriate and you will never forget about dereferencing it.

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the first one is correct that is move(*ball) ball is a pointer pointing to the object , you need to dereference it, after dereferencing its the object that is pointed to by ball pointer.

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