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

The header says it all.

What does -> mean in C++?

Thanks :)

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marked as duplicate by Roger Pate, Steve Townsend, Graeme Perrow, Doug T., Steve Jessop Nov 6 '10 at 14:51

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Which language are you familiar with? –  Vlad Nov 6 '10 at 13:58
    
Not sure what you exactly mean about "->" . It is just a deferencing stuff for accessing member variables and functions. Hope this helps. –  Roopesh Majeti Nov 6 '10 at 13:59
3  
Means you need to get a book. –  GManNickG Nov 7 '10 at 11:28

7 Answers 7

up vote 8 down vote accepted

It's to access a member function or member variable of an object through a pointer, as opposed to a regular variable or reference.

For example: with a regular variable or reference, you use the . operator to access member functions or member variables.

std::string s = "abc";
std::cout << s.length() << std::endl;

But if you're working with a pointer, you need to use the -> operator:

std::string* s = new std::string("abc");
std::cout << s->length() << std::endl;

It can also be overloaded to perform a specific function for a certain object type. Smart pointers like shared_ptr and unique_ptr, as well as STL container iterators, overload this operator to mimic native pointer semantics.

For example:

std::map<int, int>::iterator it = mymap.begin(), end = mymap.end();
for (; it != end; ++it)
    std::cout << it->first << std::endl;
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a->b means (*a).b.

If a is a pointer, a->b is the member b of which a points to.

a can also be a pointer like object (like a vector<bool>'s stub) override the operators.

(if you don't know what a pointer is, you have another question)

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Unless it's a class with the operator overloaded. –  Bill Lynch Nov 6 '10 at 14:14
3  
It's a shame this has so many votes, since overloading the operator is common and an important piece of the answer. –  Steve Townsend Nov 6 '10 at 14:21
2  
I don't know what (*a).b means. –  Eric Brotto Nov 6 '10 at 14:23
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@Steve: Anyone that overloads a.operator->() to be different from &*a is evil. –  Roger Pate Nov 6 '10 at 14:23
1  
Steve, I also agree. While I appreciate the effort from J-16 SDiZ it seems like all the votes are probably coming from those who already understand clearly the answer. I will most likely accept an answer that is more descriptive. –  Eric Brotto Nov 6 '10 at 14:24

member b of object pointed to by a a->b

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The -> operator, which is applied exclusively to pointers, is needed to obtain the specified field or method of the object referenced by the pointer. (this applies also to structs just for their fields)

If you have a variable ptr declared as a pointer you can think of it as (*ptr).field.

A side node that I add just to make pedantic people happy: AS ALMOST EVERY OPERATOR you can define a different semantic of the operator by overloading it for your classes.

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It does not apply exclusively to pointers because it can be overloaded as a class operator. The shared pointer component does this as do iterators for containers in the standard library. –  Jon Trauntvein Nov 6 '10 at 14:02
    
yes, of course it can be overloaded (as every operator) but I guess the OP needed to know the original semantics of the operator.. –  Jack Nov 6 '10 at 14:06

http://en.wikipedia.org/wiki/Operators_in_C_and_C%2B%2B#Member_and_pointer_operators

a -> b is member b of object pointed to by a

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x->y can mean 2 things. If x is a pointer, then it means member y of object pointed to by x. If x is an object with operator->() overloaded, then it means x.operator->().

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No. If x is an object with operator-> overloaded, it means x.operator->(), and if the return value also supports operator->, then it means x.operator->().operator->(). Operator-> takes no arguments. –  Puppy Nov 6 '10 at 14:04
    
my bad, now edited –  Chris Card Nov 6 '10 at 14:09
  1. Access operator applicable to (a) all pointer types, (b) all types which explicitely overload this operator
  2. Introducer for the return type of a local lambda expression:

    std::vector<MyType> seq;
    // fill with instances...  
    std::sort(seq.begin(), seq.end(),
                [] (const MyType& a, const MyType& b) -> bool {
                    return a.Content < b.Content;
                });
    
  3. introducing a trailing return type of a function in combination of the re-invented auto:

    struct MyType {
        // declares a member function returning std::string
        auto foo(int) -> std::string;
    };
    
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+1 for the return types. –  Puppy Nov 6 '10 at 14:03
    
Don't forget #2 applies to all deduced return types (lambdas and non-lambdas). –  Roger Pate Nov 6 '10 at 14:22
    
Added to the abve enumeration. Don't know why the code examples do not show up correctly, if anybody knows what's going on, please feel free to correct the formatting. –  Paul Michalik Nov 7 '10 at 11:26
    
After a list element, code has to be indented 8 spaces instead of 4. I also removed the trailing return type from the lambda, it's deduced. –  GManNickG Nov 7 '10 at 11:30
    
@GMan Thanks, but I added it back, since otherwise that becomes quite irrelevant with respect to the OP's question :) I could not (rapidly) come up with a lambda whose return type cannot be deduced, so that trivial one shall serve as an example... –  Paul Michalik Nov 7 '10 at 11:57

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