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So I've been looking over structs while reading abut linked lists and came across a thought.

How do I properly access a pointer in a struct using a pointer to the struct?

For example I have a declaration of a struct as such:

typedef struct Sample{
    int x;
    int *y;
} Sample;

Sample test, *pter;  // Declare the struct and a pointer to it.
pter = &test;

So now I have a pointer to the struct and I know I can access the data in int x like this: pter->x and that is the same as this. However I'm having trouble choosing/figuring out how to access *y through the pointer.

One of my friends say I should do it like this: *pter->y, however I'm thinking that it would make more sense to do it as such: pter->*y. Which is the right/only/proper/correct way to do it? Would both of them work perhaps?

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1 Answer 1

up vote 4 down vote accepted

For value of y use pter->y, and for value stored at y use *pter->y (that is equivalent to *(pter->y) ).

Note: precedence of -> operator is higher then * Dereference operator that is why *pter->y == *(pter->y)

Edit: on the basis of comment.

The expression pter-> *y should be a syntax error as it can't be a valid expression because of following reasons.

  1. If * is interpreated as unary dereference operator and applied on y, then y is unknown variable name(without pter).
  2. If * is treated as as multiplication operator then -> can't appear before *.

So in both way it is compilation produces error.

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1  
I don't/can't seem to understand the concept of precedence and how it works here. Why can't/shouldn't it be: pter>*y? –  Link Oct 12 '13 at 15:07
    
See pter-> *y then (1) * is if applied on y then y is unknown (without pter) (2) if * uses as multiplication operator then -> can't appear before * So in both way it is compilation error. –  Grijesh Chauhan Oct 12 '13 at 15:09
    
Aha, that makes much more sense! I see now, thank you! –  Link Oct 12 '13 at 15:10
    
@Link Got it or should I explain in answer. –  Grijesh Chauhan Oct 12 '13 at 15:10
    
Well, I suggest editing the answer for posterity, and easier to read later. But I'll be accepting the answer. –  Link Oct 12 '13 at 15:12

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