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I have declared a structure "node" having a member variable 'm' and then defined two variables as below

struct node t, *p;

Later in the program I assigned the address of t to p:

p = &t;

To access the member variable I need to use p->m.

But I wanted to use the * operator, but writing it *p.m gives error. Why is it so ?

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  • 3
    ummm...what is a? Commented Nov 17, 2016 at 15:01
  • use (*p).memberVariable . . has precedence 1, * precedence 3. en.cppreference.com/w/c/language/operator_precedence
    – user3458
    Commented Nov 17, 2016 at 15:04
  • 1
    Could you perhaps tell us why you want to use the dereference operator? Using it you will be writing two more characters every time you do it, and it might not be so clear for readers of the code. Commented Nov 17, 2016 at 15:05
  • Using (*p).member instead of p->member is highly discouraged. Commented Nov 17, 2016 at 15:13
  • @Someprogrammerdude I just wanted to learn, I am new to C and asked out of curiosity
    – udtya
    Commented Nov 17, 2016 at 15:18

3 Answers 3

10

For this you have to see the precedence of the operators.

The precedence of . operator is higher than * operator.

Writing it like *p.m makes the compiler think that it is *(p.m).

You will have to use (*p).m.

2

It's because of operator precedence.

The expression *p.memberVariable is equal to *(p.memberVariable). I.e. it tries to dereference p.memberVariable as a pointer, not p. This will give you a compiler error because p is a pointer to a structure and you can use the dot-operator to select structure members.

You need to explicitly tell the compiler to dereference the pointer p using parentheses: (*p).memberVariable.

1

Because of operator precedence, *p.memberVariable will not work. Do (*p).memberVariable or p->memberVariable

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