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$arr = array(1);
$a = & $arr[0];

$arr2 = $arr;
$arr2[0]++;

echo $arr[0],$arr2[0];

// Output 2,2

Can you please help me how is it possible?

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1  
You want us to explain how it works? –  Umair Iqbal Sep 6 '12 at 9:43
1  
he only increment on arr2 and wants to know why arr also is increment –  Dukeatcoding Sep 6 '12 at 9:44
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He means that this behavior is peculiar as he sets $a as reference to $arr but never uses $a. This indeed is strange. –  Sherlock Sep 6 '12 at 9:45
    
Not clear if it's what's happening or what he wants –  Bgi Sep 6 '12 at 9:45
2  
Please explain how it works –  som Sep 6 '12 at 9:46

3 Answers 3

up vote 7 down vote accepted

Note, however, that references inside arrays are potentially dangerous. Doing a normal (not by reference) assignment with a reference on the right side does not turn the left side into a reference, but references inside arrays are preserved in these normal assignments. This also applies to function calls where the array is passed by value.

/* Assignment of array variables */
$arr = array(1);
$a =& $arr[0]; //$a and $arr[0] are in the same reference set
$arr2 = $arr; //not an assignment-by-reference!
$arr2[0]++;
/* $a == 2, $arr == array(2) */
/* The contents of $arr are changed even though it's not a reference! */
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Never knew this. +1 –  Sherlock Sep 6 '12 at 9:49
1  
RTFM FTW! :-D +1 –  DaveRandom Sep 6 '12 at 9:49
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@DaveRandom Please abbreviate RTFM FTW. I'm afraid that i'm taking it the wrong way ;) –  Bhuvan Rikka 웃 Sep 6 '12 at 9:51
    
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@xdazz Confusion in assignment.$arr2 = $arr It is not a reference.Then why $arr[0] value is increased. –  som Sep 6 '12 at 10:10

It looks like $arr[0] and $arr2[0] are pointing to the same allocated memory, so if you increment on one of the pointers , the int will be increment in the memory

Link Are there pointers in php?

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2  
The question is why it points to the same allocated memory. –  Sherlock Sep 6 '12 at 9:46
    
i have not read it but, $arr2 = $arr; seems not to copy $arr but only to create a new pointer like in C –  Dukeatcoding Sep 6 '12 at 9:48
$arr = array(1);//creates an Array ( [0] => 1 ) and assigns it to $arr
$a = & $arr[0];//assigns by reference $arr[0] to $a and thus $a is a reference of $arr[0]. 
//Here $arr[0] is also replaced with the reference to the actual value i.e. 1

$arr2 = $arr;//assigns $arr to $arr2

$arr2[0]++;//increments the referenced value by one

echo $arr[0],$arr2[0];//As both $aar[0] and $arr2[0] are referencing the same block of memory so both echo 2

// Output 22
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