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Why am I getting different outputs through print_r in the following two cases!!? This is a bug in php? Is php unable to execute complex hierarchical functions called inside functions?

CASE 1 :
$aa='2,3,4,5,5,5,';
$aa=array_unique(explode(',',$aa));
array_pop($aa);
print_r($aa);

CASE 2 :
$aa='2,3,4,5,5,5,';
array_pop(array_unique(explode(',',$aa)));
print_r($aa)

In the first case, the output is an exploded array :

Array ( [0] => 2 [1] => 3 [2] => 4 [3] => 5 ) 

In the second case, the output is string :

2,3,4,5,5,5,
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3  
If your first question is to ask if there's a bug in the tool, the answer is probably no. – therefromhere May 27 '12 at 10:08
    
What's the output? – Leri May 27 '12 at 10:09
    
Also, it'd be helpful to print what output you get. – therefromhere May 27 '12 at 10:09
    
@Vishal, edit your question to put the example output in. – therefromhere May 27 '12 at 10:13
    
Thanks, I updated the question with the outputs. – Vishal May 27 '12 at 10:15

This is because array_pop alters its input, and you're passing it a temporary variable (not $aa).

Note the signature in the documentation: array_pop ( array &$array ) - the & means it takes a parameter by reference, and it alters that input variable.

Compare with the other two functions:

array explode ( string $delimiter , string $string , int $limit )

and

array array_unique ( array $array , int $sort_flags = SORT_STRING )

In the first case you update $aa with the output of array_unique(), and then pass that to array_pop to be altered.

In the second case the output of array_unique() will be the same, but this temporary value isn't assigned to a variable & therefore it's forgotten after array_pop is called.

It's worth noting that in that in PHP (unlike say, C++), passing by reference is actually slower than passing by value and therefore is only ever used to modify the input parameter of a function.

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Oh yes! Got it! Thanks! – Vishal May 27 '12 at 10:19
    
That's true @therefromhere ! Thanks for helping! Got it finally :) – Vishal May 27 '12 at 10:29
    
yes I'm aware that passing by reference is slow, and I rarely use it. Going by default with the case1 above! – Vishal May 27 '12 at 10:35

In the first case you alter variable as in line 2 bs assigning a new value with the assignment operator =

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