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What is the difference between the dot (.) operator and -> in C++?

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1  
possible duplicate of What is the arrow operator (->) synonym for in C++? –  Roger Pate Nov 6 '10 at 14:06

12 Answers 12

foo->bar() is the same as (*foo).bar().

The parenthesizes above are necessary because of the binding strength of the * and . operators.

*foo.bar() wouldn't work because Dot (.) operator binds stronger and is executed first.

The Dot (.) operator can't be overloaded, arrow (->) operator can be overloaded.

The Dot (.) operator can't be applied to pointers.

Also see: What is the arrow operator (->) synonym for in C++?

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Note that this is only for raw pointers. For class types that overload the operator, it has some other interesting properties... –  David Rodríguez - dribeas Jul 17 '12 at 18:19

Dot operator can't be overloaded, arrow operator can be overloaded. Arrow operator is generally meant to be applied to pointers (or objects that behave like pointers, like smart pointers). Dot operator can't be applied to pointers.

EDIT When applied to pointer arrow operator is equivalent to applying dot operator to pointee (ptr->field is equivalent to (*ptr).field)

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4  
+1 for bringing up a point that others have missed. –  Brian Aug 6 '09 at 13:18
    
Though the indirection operator (*foo) can be overloaded –  user Feb 23 at 23:52

For a pointer, we could just use

*pointervariable.foo

But the . operator has greater precedence than the * operator, so . is evaluated first. So we need to force this with parenthesis:

(*pointervariable).foo

But typing the ()'s all the time is hard, so they developed -> as a shortcut to say the same thing. If you are accessing a property of an object or object reference, use . If you are accessing a property of an object through a pointer, use ->

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The arrow operator is like dot, except it dereferences a pointer first. foo.bar() calls method bar() on object foo, foo->bar calls method bar on the object pointed to by pointer foo.

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pSomething->someMember

is equivalent to

(*pSomething).someMember
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The target. dot works on objects; arrow works on pointers to objects.

std::string str("foo");
std::string * pstr = new std::string("foo");

str.size ();
pstr->size ();
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The . operator is for direct member access.

object.Field

The arrow dereferences a pointer so you can access the object/memory it is pointing to

pClass->Field
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-> use when you have pointer . use when you have structure (class) when you want point attribute that belong to structure use . structure.attribute when want point to attribute that have refference to memory by pointer use -> :

pointer->method;
or same as:
(*pointer).method
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The -> is simply syntactic sugar for a pointer dereference,

As others have said:

pointer->method();

is a simple method of saying:

(*pointer).method();

For more pointer fun, check out Binky, and his magic wand of dereferencing:

http://www.youtube.com/watch?v=UvoHwFvAvQE

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It's simple, whenever you see

 x->y

know it is the same as

 (*x).y
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Except when it isn't, such as when -> is overloaded. –  jmtd Aug 6 '09 at 13:20
3  
When you overload -> you should also overload * such that this relationship holds. To do otherwise will introduce all sorts of confusion anyway. –  Logan Capaldo Aug 6 '09 at 13:39

The . (dot) operator is usually used to get a field / call a method from an instance of class (or a static field / method of a class).

p.myField, p.myMethod() - p instance of a class

The -> (arrow) operator is used to get a field / call a method from the content pointed by the class.

p->myField, p->myMethod() - p points to a class

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Note that the -> operator cannot be used for certain things, for instance, accessing operator[].

#include <vector>

int main()
{
   std::vector<int> iVec;
   iVec.push_back(42);
   std::vector<int>* iVecPtr = &iVec;

   //int i = iVecPtr->[0]; // Does not compile
   int i = (*iVecPtr)[0]; // Compiles.
}
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2  
Clearly not. Because "foo->" does not mean "(*foo)". It means "(*foo).". It also can't be used for addition, subtraction... ;) –  jmtd Aug 6 '09 at 13:21
    
I don't see how that's relevant. member[0] also doesn't mean anything, however syntactic sugar transforms it into member.operator[](0) if applicable. It's noteworthy that -> will not allow you to do what most people generally expect to be able to. –  gparent Aug 6 '09 at 13:56
    
in regards to that operator, I mean. –  gparent Aug 6 '09 at 13:57
    
I would imagine iVecPtr->operator[](0) would work, though. The point being that the syntactic sugar that you site turns [0] into .operator[](0); it does not turn .[0] into .operator[](0). –  Domenic Aug 7 '09 at 1:18

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