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I'm a curious programmer. So these days I was reading the documentation from the PHP site and this link was "PHP type comparisons" http://www.php.net/manual/en/types.comparisons.php

I decided to do some exercises to fill the tables of comparisons but there are some answers that I can not see why, for example:

<?php
var_dump(false == array()); // Okay, an empty array is considered false. True result
var_dump('' == array()); // false ? Why not true if an empty string is considered false ?
var_dump(0 == array()); // false ? Why ?
var_dump(null == array()); // true. Why ?
?>

Can you help me about this? I can not understand why some comparisons, I can not find anywhere explanation.

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marked as duplicate by PeeHaa, Glavić, MattDMo, gcochard, tereško Jan 1 '14 at 20:45

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
You are missing an equals sign in line 5, aren't you? –  TimWolla Jan 1 '14 at 18:12
    
Php's equality logic is notoriously bizarre, but you should only ever compare like-objects anyway, using ===. Implicit conversions just aren't needed. –  Dave Jan 1 '14 at 18:15
1  
You need to read abut type juggling –  John Conde Jan 1 '14 at 18:15
1  
@Alex they are not the same question. That question is what. This question is why. –  kojiro Jan 1 '14 at 18:16
1  
That question explains it perfectly. It's just type juggling which has been asked here ad naseum. Voting to close. –  John Conde Jan 1 '14 at 18:17

3 Answers 3

Here is the reason why.

Case one will cast the array() to a boolean, resulting in false.

Case two and three are explained here, the scalars are cast to arrays:

For any of the types: integer, float, string, boolean and resource, converting a value to an array results in an array with a single element with index zero and the value of the scalar which was converted. In other words, (array)$scalarValue is exactly the same as array($scalarValue).

Case four is explained here:

Converting NULL to an array results in an empty array.

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So what you're saying is that $x == $someArray causes the value of $x to be implicitly cast to an array. To dig further, why does that happen? Why not implicitly cast the array to the type of $x? –  kojiro Jan 1 '14 at 18:28
    
How would you cast an array to another type? –  Bart Friederichs Jan 1 '14 at 18:30
    
About as arbitrarily as you would cast a scalar to an array. –  kojiro Jan 1 '14 at 18:33
    
@kojiro agree. One of the reasons I am working on moving away from PHP. I reckon it is not possible, will introduce hard-to-debug mistakes and should cause (fatal) errors. –  Bart Friederichs Jan 1 '14 at 18:35
    
Why the 2-3 case, both are transformed into an array with an element inside and not transformed to boolean? Why casting to array takes precedence? I thought the process was this: '' == Array () = (bool)'' == (bool) array () = true But the truth is this: '' == Array () = (array)'' == array () = array ('') == array () = false –  João Silva Jan 2 '14 at 0:46

Ok, so the question is WHY would you want this. This is to make this kind of comparisons easy:

$count = 10;    
while($count){
    echo $count;
    $count--;
}

This allows you to decide whether numbers that model a count, have anything or not.

The same thing happens with null, you can easily check if a variable has a value assigned or not.

In the case of arrays, it allows you to check wether the array is empty.

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It's all about type juggling, which type wins over the other type.

For instance, when you compare an number with a string, the number always wins so the string will be converted into a number. So "12abc" == 12 is true in PHP.

  1. When comparing a boolean (false) with something, that something is converted to a boolean. (bool) array() is false, so false == false is true.
  2. When comparing another value with an array, the other value is converted to array([0] => VALUE_OF_OTHER) (in other words, converted to an array). That means that the comparisation becomes array('') == array(), which is false
  3. Same as (2). array(0) == array() is false
  4. array(null) means just an array with nothing, thus array(null) == array() (which is the comparisation you did), so the result is true.
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So why '' == array('') is false if u said " '' == array() " is the same as " arary('') == array() " ? In your theory it would be true . '' == array('') -> array('') == array('') -> true. But the truth is that this is not true –  João Silva Jan 3 '14 at 7:20
    
@JoãoSilva "" will be converted to areay("") (that's an array with one element). That's not equal to array() (an array with zero elements) –  Wouter J Jan 3 '14 at 8:51

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