here is my code

 #include <stdio.h>
    int main(void)
    {
          int x[] = {10,20,30};
          *(x) ++;
     }

When i try to compile this, I get an error "invalid lvalue in increment". I don't understand why there is any invalid value. I know that array name is a pointer to the first element i the array. Isn't *(x) ++ the same as *(x) = *(x) + 1? So x[0] will now be 11. Is there something i am missing? I am not changing the array pointer. I know that would be an error.

  • Remove the parentheses. – Paul Griffiths Oct 29 '14 at 0:00
  • Didn't work. I have the right idea here don't I ? – committedandroider Oct 29 '14 at 0:01
  • 3
    My bad, change to (*x)++; The post increment operator binds more tightly than the dereference operator, so the parentheses around *x are required. – Paul Griffiths Oct 29 '14 at 0:02
  • Thanks that worked – committedandroider Oct 29 '14 at 0:04
  • or change to ++*x; – BLUEPIXY Oct 29 '14 at 0:09
up vote 3 down vote accepted

The post-increment operator (expr++) binds more tightly than the dereference operator, so you need parentheses around the *x. This is what you need:

(*x)++;

Without them, you're trying to increment x, and then dereference it. Since x is an array, and is therefore not modifiable, that's why you're getting your error, because x++ is not allowed.

  • does bind more tightly just mean precedence? – committedandroider Oct 29 '14 at 0:06
  • Yes, it means the x and the ++ get put together before the x and the * do. – Paul Griffiths Oct 29 '14 at 0:07

An array's name is an lvalue which can't be modified in C, hence your error.

With regard to:

Isn't *(x) ++ the same as *(x) = *(x) + 1?

The answer is "No". ++ (postifix increment) operator has higher precedence than * (dereferencing). So

*(x) ++;

is equivalent to

*(x++);

You could do:

(*x)++;

or another way would be (much easier to read one IMO ;-)

x[0]++;

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