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So I'm wondering why

var x=5
function foo(){
  return x++
}
foo()

returns 5 and

var x=5
function foo(){
  return ++x
}
foo()

returns 6.

Is it because the precedence of the ++ operator excludes it from being executed before the return - ie. the precedence is (return x)++? Or is there something tricky going on?

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Nothing tricky. That's just the difference between ++x and x++. –  Thilo Oct 9 '13 at 2:56
    
Nothing tricky here. You have it right. Although the use of non-local variable x makes me cringe. –  Floris Oct 9 '13 at 2:56
1  
Look at it logically: x++ returns x before it is incremented. ++x increments x before returning it. Nothing tricky –  Sterling Archer Oct 9 '13 at 2:56
    
@Floris: What's wrong with the non-local variable? How would this even work without it? –  Thilo Oct 9 '13 at 2:57
1  
@Thilo - you could easily use function foo(x) { return ++x; } ; this would be more explicit. As it is, this modifies the variable x "silently` - there is nothing about the call to foo that warns you about this. It violates the concept of encapsulation. Makes my hair stand on end. More intuitive/pragmatic than syntactically profound. Just don't like it. –  Floris Oct 9 '13 at 3:36

1 Answer 1

up vote 4 down vote accepted

It's pre/post increment. It's just how the operators work. ++var is pre increment which means the value is incremented before returning and var++ is post increment, where the value is incremented after returning.

You can find more details about these semantics here.

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The pre-increment ++x increments the variable before the expression is evaluated. The post-increment increments the variable after the expression is evaluated. It is really two operations occuring in one expression, with different orderings. –  ChuckCottrill Oct 9 '13 at 3:00

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