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I've encountered a strange problem with the increment operator. What should the code below output?

$j = 0;
for ($i=0; $i<100; $i++)
{
    $j = $j++;
}
echo $j;

It echoes 0. Why not 100?


Edit: When I change $j = $j++ to $j = ++$j, it echoes 100.

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2  
You're using postfix increment, which will assign the value of the variable before it's incremented. So $j = 0 every time. ++$j would do the incrementing before the assignment. Of course you can just skip the assignment altogether and do $j++ by itself... – Interrobang Feb 18 '12 at 2:46
    
This would be a good interview question. – Umbrella Feb 18 '12 at 2:51
    
@Umbrella: It might be a good phone-screen question, to help you decide whether it's worth inviting a candidate on site. – Adam Liss Feb 18 '12 at 17:43
    
@AdamLiss: An early question, yes, right up there with the FizzBuzz problem. – Umbrella Feb 18 '12 at 18:19
up vote 7 down vote accepted

You're doing a "post-increment", since the ++ appears AFTER the variable it's modifying. The code, written out in less compact form, boils down to:

for ($i = 0; $i < 100; $i++) {
   $temp = $j;  // store j
   $j = $j + 1;  // $j++
   $j = $temp; // pull original j out of storage
}

If you had ++$j, then j would increment FIRST, and the resulting incremented value would be assigned back to J. However, such a structure makes very little sense. you can simply write out

 for (...) {
    $j++;
 }

which boils down to

for (...) {
   $j = $j + 1;
}
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thanks Marc B, you Solve my confusing, the $j++ store the value first, so it change to 0 final. when use ++$j, it add the value first! – steve Feb 18 '12 at 2:55

The problem is with the line

$j = $j++;

This command evaluates $j as 0, then increments $j to 1, and finally does the assignment of 0 back to $j.

Either use $j = $j + 1; or just $j++;.

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1  
or just do $j = ++$j; – Aaron W. Feb 18 '12 at 2:46
3  
@AaronW. That would work, but it's both redundant and confusing. My team would never allow it through a code review. – Adam Liss Feb 18 '12 at 2:47

$j++ is post-increment: the value of the expression is $j, then $j is incremented. So you're getting the value of j, then incrementing j, then setting j to the original value of j.

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