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In learning C, I've just begun studying pointers to structures and have some questions.

Suppose I were to create a structure named myStructure, and then create a pointer myStructurePointer, pointing to myStructure. Is *myStructurePointer, and myStructure two ways of referencing the same thing? If so, why is it necessary to have the -> operator? It seems simpler to use *myStructurePointer.variable_name than myStructurePointer->variable_name.

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To be more accurate, myStructure and (*myStructurePointer) are two ways of referencing the same thing. –  bta Feb 20 '10 at 1:24
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6 Answers

up vote 7 down vote accepted

You're right,

(*structurePointer).field

is exactly the same as

structurePointer->field

What you have, however, is :

*structurePointer.field

Which really tries to use the . operator on the pointer variable, then dereference the result of that - it won't even compile. You need the parentheses as I have them in the first example above if you want the expressions to be equivalent. The arrow saves at least a couple of keystrokes in this simple case.

The use of -> might make more sense if you think about the case where the structure field has pointer type, maybe to another structure:

structurePointer->field->field2

vs.

(*(*structurePointer).field).field2
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Yeah, it took me a while to figure that one out. Personally, I like the '->' syntax because it reminds me of Perl. –  amphetamachine Feb 20 '10 at 1:20
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The problem with *myStructurePointer.variable_name is that * binds less tight than ., so it would be interpreted as *(myStructurePointer.variable_name). The equivalent of myStructurePointer->variable_name would be (*myStructurePointer).variable_name, where the parenthesis are required.

There is not difference between a->b and (*a).b, but -> is easier to use, especially if there are nested structures. (*(*(*a).b).c).d is much less readable than ´a->b->c->d`.

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To generalize, learn your C operator precedence:

Here the "." operator is processed before the "*" -> hence the need for parentheses

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1  
You can force the * to be processed before the . with liberal use of parenthesis, but the -> notation was created as an easier-to-read alternative. –  bta Feb 20 '10 at 1:23
    
@Michael, I think what the OP is really asking is the difference between (*p).f and p->f. The missing () are due to inexperience, I expect. –  Carl Norum Feb 20 '10 at 1:24
    
Well, apparently not... –  Carl Norum Feb 20 '10 at 1:31
    
My answer made more sense when it was added below yours @Carl :-) –  Michael Mullany Feb 20 '10 at 1:36
    
Sorry Carl. It's hard to choose between multiple helpful answers. I chose Mike's answer because it more thoroughly addressed my confusion; I am new to C, and understand precedence as much as it directly translates from Java, so the link provided by Michael was very helpful; however, you two seem to agree on who deserves credit, so I'm moving it. –  objectivesea Feb 20 '10 at 3:33
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Dennis Ritchie did note once that deref should probably have been a postfix operator1

Right, the following are equivalent:

pointer->field
(*pointer).field
pointer[0].field

If the indirection operator had postfix syntax C would have looked rather different but in that case it would not have needed -> at all.

It's interesting to think about how the common C idioms would look in that alternate universe...

do s1++* = c = s2++*;
   while(c);

while(n-- > 0)
    s++* = '\0';

p*.x = 1;
p*.y = 2;
. . .
. . .
. . .

1. See The Development of the C Language., Dennis M. Ritchie

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Using the * dereferences the pointer, so you can use dot syntax to access the fields. If you don't dereference the pointer, then you use -> to access the fields. You can use whichever you prefer.

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I have been learning C recently, and i found this resource to be extremely helpful.

http://claymore.engineer.gvsu.edu/~steriana/226/C.CheatSheet.pdf

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