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Is there a general difference between doing

(*ptr).method()

vs

ptr->method()

I saw this question in a comment on another question and thought I would ask it here. Although I just remembered that pretty much every operator in C++ can be overloaded, so I guess the answer will depend. But in general, is there a difference between doing one versus the other?

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BTW, the comment was from this question: stackoverflow.com/questions/4263640/find-mapped-value-of-map/… :) –  wrongusername Nov 24 '10 at 5:42

8 Answers 8

up vote 39 down vote accepted

As "jamesdlin" already noted, the * and -> operators can be overloaded for class types.

And then the two expressions (*ptr).method() and ptr->method() can have different effect.

However, for the built-in operators the two expressions are equivalent.

The -> operator is more convenient when you're following a chain of pointers, because . has higher precedence than *, thus requiring a lot of ungrokkable parentheses.

Consider:

pBook->author->snailMail->zip

versus

(*(*(*pBook).author).snailMail).zip
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For raw pointer types, they are the equivalent.

And yes, for general types, the answer is indeed "it depends", as classes might overload operator* and operator-> to have different behaviors.

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32  
if a class does that, of course, you are authorized to punch the author in the face... Hard. –  jalf Nov 24 '10 at 6:42

Yes. ptr->method() is two characters shorter than (*ptr).method().

It is also prettier.

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C++ Standard 5.2.5/3:

If E1 has the type “pointer to class X,” then the expression E1->E2 is converted to the equivalent form (*(E1)).E2;

For non-pointer values operators could be overloaded.

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But in general, is there a difference between doing one versus the other?

No! (unless -> and * are explicitly overloaded to perform different functions)

ptr->method() and (*ptr).method() are equivalent.

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these operators can be overloaded for classes, and then the two expressions can have different effect. The "No!" is correct for the built-in operators. Cheers, –  Cheers and hth. - Alf Nov 24 '10 at 5:52
    
@Alf : Added the unless part. :) –  Prasoon Saurav Nov 24 '10 at 5:55

The -> sequence serves as a visual indicator that it is pointing to something. Both operators do the exact same sequence of operations.

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They are synonyms. The latter is a shorthand for the former.

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Sorry to dig this post, but even though the expressions in the OP are equivalent for raw pointer types, I think there is at least one important difference to be mentioned in C++, in addition to everything that has been said:

From Wikipedia (http://en.wikipedia.org/wiki/Operators_in_C_and_C%2B%2B#cite_note-arrowptr-6):

The return type of operator->() must be a type for which the -> operation can be applied, such as a pointer type. If x is of type C where C overloads operator->(), x->y gets expanded to x.operator->()->y.

This implies that -> is expected to return a dereferenceable type, whereas * is expected to return a dereferenced type, and therefore this "chaining" applies to -> only.

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