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I come from a Delphi/Pascal programming world but I also "play" around with C++ or C once in a while, there is a question that bothers me the most: why does C++ use "." to access a structure member and "->" to access method? in Delphi/Pascal we use "." for any of those even properties...

Someone told me it has something to do with how C++ accesses memory, however that answer is NOT enough to help me understand.

Thank you.

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5 Answers 5

up vote 5 down vote accepted

All structure members (fields and methods) are accessed same way. But, in case of pointer to structure, there is two different syntaxes for the same purpose: (*pStruct).member and pStruct->member.

In Pascal (or Delphi):

var pointerToSomeRecord: ^SomeRecord;

pointerToSomeRecord^.field := 42;

In C++:

SomeStruct* pointerToSomeStruct;

(*pointerToSomeStruct).field = 42;

But, in C++ there is also another way:

pointerToSomeStruct->field = 42;

Most C++ programmers like the later form much more.

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now this is a very very very good answer, thank you!! –  ComputerSaysNo Dec 5 '10 at 9:34

Your understanding is incorrect. C++ accesses data members and member functions (the term "method" is not used by C++ programmers) the same way.

. accesses a member of an object. -> accesses a member of the object that is pointed to by a pointer-to-object. foo->bar is exactly equivalent to (*foo).bar.

That is why someone told you "it has something to do with how C++ accesses memory" - because it does.

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thank you, this is very helpful for my understanding –  ComputerSaysNo Dec 4 '10 at 22:27
1  
It's not exactly equivalent, because foo->bar actually means foo {->operator->()} ->bar, where {exp} means "repeat exp any number of times" :) –  FredOverflow Dec 5 '10 at 9:28
    
@FredOverflow: yes, I skipped over that, for hopefully obvious reasons. :) I was careless in my phrasing, though. +1. –  Karl Knechtel Dec 5 '10 at 9:31
1  
@Fred: that should be {.operator->()} –  sellibitze Dec 5 '10 at 10:26

You are confusing them.

foo->bar() is semantically equivalent to (*foo).bar() (barring operator overload.)

-> is used when the left-hand argument is a pointer.

. is used when it is a reference or otherwise not a pointer.

It has nothing whatsoever to do with the right-hand side.

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@James: Durr. Thanks. :P –  greyfade Dec 4 '10 at 22:35

You are mistaken. C++ uses dot for member access and to call methods unless you have a pointer to the object the the -> operator applies.

The -> is functionally the same as (*obj).x()

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The arrow operator is an abbreviation for accessing structure members via pointer:

struct foo {
   int field;
}

struct foo* ptr = ...;

This

(*ptr).field

is essentially the same as

ptr->field

This has nothting to do with accessing member functions or data fields.

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