3

Could someone explain me why this short line of code is returning 1?

int i = 0;
if(i++) i++;
printf("%d", i);

I mean when checking the if statement i has to be incremented otherwise the result would not be 1. But then as it is incremented is should be incremented once again resulting in 2.

And even better, why this line of code is resulting 2?

int i = 0;
if(++i || i++) i++;

Also this

int i = 0;
if(++i && i++) i++;

Returns 3.

6
  • C11 draft standard n1570: 6.5.2.4 Postfix increment and decrement operators 2 The result of the postfix ++ operator is the value of the operand.[...] The value computation of the result is sequenced before the side effect of updating the stored value of the operand.
    – EOF
    Aug 30, 2016 at 21:23
  • 6
    The result of i++ is 0, so the if() is not taken. Aug 30, 2016 at 21:24
  • 2
    the postfix form increments the value stored in a variable after the expression is evaluated, thus you have 0 as a test expression in if()
    – Serge
    Aug 30, 2016 at 21:24
  • Post increment means it increments after the condition is checked. Put something like cout << "blah" in the condition block to help you understand how this works Aug 30, 2016 at 21:25
  • inside the if statement, the value of i is checked before it's incremented, that's what postfixed ++ means. Is the value is zero still, then goes to 1 then the statement after the if is not executed as the if condition was zero=false.
    – Cecil Ward
    Aug 30, 2016 at 21:26

1 Answer 1

2
  • The line of code if(i++) checks the value of i before incrementing. So the check fails since i=0 and after the check, i will be incremented before leaving the if condition making it equal to 1.
  • But if(++i || i++) passes since ++i is evaluated before the condition is checked which evaluates to 1 and the condition will be true and then i++ which will result to 2.
  • Also, since ++i will be 1 and i++ is also still 1 since i will be used first before its incremented. So 1 && 1 is true and then before leaving the condition, i will be incremented to 2 and also the line below the if will be evaluated to 3 and the new value of i will be 3.
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  • But then again when I have if(++i && i++) i++; the result is 3.
    – Lisek
    Aug 30, 2016 at 21:27
  • 1
    @Liseł: For more fun, what will if(++i && --i) i++; result in?
    – EOF
    Aug 30, 2016 at 21:32
  • 1
    @CecilWard you can rely on the second part not being evaulated, when it involves the firrst part. For example if(n >= 0 && array[n] == 42). The second part cannot be evaluated unless the first part is true. Aug 30, 2016 at 21:37
  • 9
    @EOF: "For more fun, what will if(++i && --i) i++; result in?" -- A failed code review. Aug 30, 2016 at 21:44
  • 4
    please kids, don't write code like this though, don't require other maintainers to look up the fine details of the standard too often. You won't generated better or worse code by cramming lots of stuff into single complex if statements or putting side effects into tests.
    – Cecil Ward
    Aug 30, 2016 at 21:45

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