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If I have a class called "Animal", and a derived class "Bird : public Animal", I can create a Bird these two ways:

Animal *sparrow = new Bird;
Bird *sparrow = new Bird;

Both compile fine and work as expected. Are they equivalent? Should I prefer one over the other?

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1 Answer 1

up vote 5 down vote accepted

The line, in itself, doesn't demonstrate the difference. However, assume Bird declares a method Fly that doesn't exist on Animal. You wouldn't be able to do:

Animal* a = new Bird;
a->Fly();

on the other hand, this is legal:

Bird* b = new Bird;
b->Fly();

The distinction here is a result of the fact that C++ is a statically typed language. The static type of the variable is what the compiler cares about when it's verifying things like method calls. Since the static type of the variable a is Animal which doesn't have a Fly method, the compiler will not allow you to call Fly on it (not all animals are able to fly, so you'll have to explicitly cast to Bird: dynamic_cast<Bird*>(a)->Fly() is legal).

The expression new Bird will have the type Bird*. If you assign a value of a derived type to a variable of a based type, the compiler will not complain (all Birds are Animals, so it should always work). Basically, the compiler upcasts Bird* to Animal*. The reverse is not true. Not all Animals are Birds, so you'll have to take the responsibility and do the cast explicitly and tell the compiler that I know that object is really a Bird*. Only in that case the compiler will let you to use Bird-specific features. So, in general, if you need to use a Bird-specific member, you'd better use Bird* b = new Bird;.

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I think I understand. A follow up to clear it in my mind: Animal *A = new Animal; Animal *B = new Bird; With these declarations, is there any difference between A and B? (question asked before some edits above) –  Jarred Mar 2 '10 at 19:42
    
@Jarred: Yes, the object pointed by A is not really a Bird whereas the object pointed by B is still really a Bird and you simply decided not to care at the moment that it is (since your function applies to all animals equally and doesn't rely on anything specific to birds). Since B is a Bird, you can successfully downcast it to Bird* again and use Bird specific members. Casting A to Bird* won't succeed. –  Mehrdad Afshari Mar 2 '10 at 19:48
    
Thank you very much for your helpful answers. –  Jarred Mar 2 '10 at 19:54

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