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So I was playing around with increments in C and I ran this code

int main() {
   int a = 3;
   int b = 8;
   b = a++;
   printf("%d %d",a, b);
return 1;

}

Originally I thought, oh yeah that's easy... So I thought it would print out 3 and 3.

This is because a++ is a post increment, and increments the value after it has been used it the function. Instead the answer is

a=4
b=3

I don't understand how post increment a is adding to a before the function has completed, i.e the printf statement.

Can someone explain why the answer is, what it is.

Thank you

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check the syntax tree, how ++ woks in pre-and-post –  Grijesh Chauhan May 24 '13 at 10:43

3 Answers 3

up vote 3 down vote accepted

The post increment is post (after) its use, not after the printf(). It's changed before you reach your printf() call.

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Right ok thank you that clears things up, so if it were ++a, would they both be 4 then? –  Jim May 24 '13 at 10:39
    
Yes, but don't take my word for it, it's too easy to check to be certain :-) –  mah May 24 '13 at 10:40
    
Yeah i just wanted to make sure before I checked to see if I had the right train of thought –  Jim May 24 '13 at 10:40

Imagine postincrement as this function:

int postincrement(int* value)
{
    int priorvalue = *value;
    *value = *value + 1;
    return priorvalue; 
}

So printf has nothing to do with your increment. Instead, when you write

b = a++;

Imagine that

b = postincremnt(&a);

was called, which is perfectly consistent with your results.

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3  
Ah thats a good way of looking at it, thanks –  Jim May 24 '13 at 10:41

The post increment means that first you asign the current value of a to b and then it increases a by 1. If you had done b=++a; then you would get a=4 , b=4

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