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Can someone, for the love of all things natural, please explain why this is happening?

$code = 0;
echo $code == 'item_low_stock' ? 'equal' : 'not equal';

// RESULT: "equal"  

???

A line of code in my app just suddenly stopped working properly, I haven't edited anything around it, changed my php version, anything. When the $code variable contains 0, it is passing as true when I compare it to the string 'item_low_stock'.

I can post the original block of code, but I boiled it down to this comparison and this is what I found.

Halp.

EDIT: PHP version is 5.3.10.

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What you want to use is the equality operator, ===, which will also ensure that the types being compared are the same. Thus, if $code is not 'item_low_stock' or not a string, the comparison works as expected. –  Tim Post Dec 4 '12 at 3:04
    
you can check this too bugs.php.net/bug.php?id=44999 –  Jonathan de M. Dec 4 '12 at 3:07

2 Answers 2

up vote 2 down vote accepted

When one of operands is a number - then php casts another one to a number as well.

So item_low_stock string casted to number is 0, thus it equals to 0, thus it's true

http://php.net/manual/en/language.operators.comparison.php

If you compare a number with a string or the comparison involves numerical strings, then each string is converted to a number and the comparison performed numerically.

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Wow, amazing.. insane! How have I never come across this in all my years of php developing? Thank you! I guess the change in my app was with a library that hadn't been passing the value of 0 in the $code variable before, prior, the codes had all been strings. –  jessica Dec 4 '12 at 3:05

The documentation makes it clear that the two values on either side of == are tested after type juggling. When cast to an integer, your string becomes 0. Try the following:

echo (int) 'item_low_stock'; // 0

Run it: http://codepad.org/z7LIEumk

If you don't want to engage in type juggling, use === or !== instead. This tests whether the two values are * identical*, meaning same value and type.

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1  
Worth mentioning the equality operator, so she gets the results she's expecting. –  Tim Post Dec 4 '12 at 3:06

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