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I vaguely remember running into this problem before, but I'm wondering if this just doesn't work in PHP:

echo $counter; // outputs 4
$output = $counter--;
echo $output; // outputs 4

If I do something like:

$output = $counter - 1;

I have no problems whatsoever.

Can someone shed some light on this?

Thanks, Ryan

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In $counter--. the -- won't occur until after the expression was performed. it's known as a POST decrement. –  Brad Christie Feb 24 '11 at 23:18

2 Answers 2

up vote 5 down vote accepted

Your code, using post-decrement, should be read as:

  • set the value of $counter to $output; then
  • decrement $counter

What you want is the following (pre-decrement), which says

  • decrement $counter; then
  • set the value of $counter to $output

The code is:

<?php
  $counter = 4;
  echo $counter;
  $output = --$counter;
  echo $output;
?>
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Crap :) That absolutely makes sense... and actually, I read about that before, but since I never had to use it, forgot it again. Since #4 gets assigned before it is decremented, whatever happens to #3? It decrements to #3 and then just gets lost in cyberspace? –  NightHawk Feb 24 '11 at 23:47
    
In the original code, $output would have been 4, and $counter would have been 3. You just assigned the value to $output before $counter got decremented. –  Brandon Tilley Feb 25 '11 at 0:42
    
the 3 stays in $counter variable –  Elwhis Feb 25 '11 at 0:44
    
Got it! Thanks! –  NightHawk Feb 25 '11 at 14:50

What you want is the pre-decrement operator:

echo $counter; // outputs 4
$output = --$counter;
echo $output; // outputs 3
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