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I was just playing around with PHP when this happened. Look at the commented code.

    <?php
     error_reporting(0); //turns of errors and notices (which will be shown otherwise)

     //here we would've gotten a notice saying $_ has no value, which is true. But PHP        automatically gives it the value 0, then we add one to it. ($_++), add $_ and add $_. So it's    1 + 1 + 1 which is two somehow
     echo ($_++ + $_ + $_);

So my question is... why does it output 2?

share|improve this question
    
Try echo (++$_ + $_ + $_); and compare the two results and you get your answer. – Hanky Panky Jan 17 '14 at 3:59
    
What should it have output? :P What, in your mind, is the reasonable value of that expression? – cHao Jan 17 '14 at 4:07
    
@cHao It's not that clear if you don't know the difference between pre/postincrement ;-) – Uli Köhler Jan 17 '14 at 4:14
1  
@UliKöhler: It's not that clear anyway. :) Some languages (like C, from which PHP ends up inheriting a lot of its behavior) don't even specify when the increment actually happens. – cHao Jan 19 '14 at 18:19
up vote 1 down vote accepted

Most of the answer is contained in your code.

$_ is 0 initially. By $_++, you increment $_, setting it to one. Therefore, $_ is 1, but the value of the postincrement (!) $_++ is still 0. The value of ++$_ would be 1.

Then, you add two times $_ (which is 1), yielding 2 overall.

See this SO post for a detailed preincrement/postincrement comparison.

share|improve this answer
1  
Thanks, makes sense now! – user3196332 Jan 17 '14 at 4:13

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