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I have an int pointer (int *count) if i want to increment the integer being pointed at using ++ I thought I would call

*count++;

However, I am getting a build warning "expression result unused". I can call

*count += 1;

But, I would like to know how to use the ++. Any ideas?

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2 Answers 2

up vote 33 down vote accepted

The ++ has equal precedence with the * and the associativity is right-to-left. See here. It's made even more complex because even though the ++ will be associated with the pointer the increment is applied after the statement's evaluation.

The order things happen is:

  1. Post increment, remember the post-incremented pointer address value as a temporary
  2. Dereference non-incremented pointer address
  3. Apply the incremented pointer address to count, count now points to the next possible memory address for an entity of its type.

You get the warning because you never actually use the dereferenced value at step 2. Like @Sidarth says, you'll need parenthesis to force the order of evaluation:

 (*ptr)++
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4  
I'd add that I always write this case as ++*ptr; because the precedence is unambiguous, and if the result isn't used there is no need to distinguish between preincrement and postincrement. –  RBerteig Sep 7 '10 at 6:52
2  
@RBerteig: It may be unambiguous to the compiler but it is still confusing to a human. Much better to use parenthesis as this will make it easier to read. –  Loki Astari Sep 7 '10 at 11:37
1  
@Martin, over use of parenthesis can be just as confusing to a human. When written as I did, there is only one plausible order of operations, and matches the natural reading of "increment", "something pointed to by", "p". –  RBerteig Sep 7 '10 at 18:41
1  
I do so claim, and have for ~25 years. No slaps yet. –  RBerteig Sep 7 '10 at 22:09
5  
@RBerteig: Half a century of Lisp disagrees with you. ;) –  Deniz Dogan Sep 22 '10 at 13:00

Try using (*count)++. *count++ might be incrementing the pointer to next position and then using indirection (which is unintentional).

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