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  /* 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!

The output is $a == 2, $arr == array(2). The contents of $arr are changed even though it's not a reference!

Can anyone tell how is this possible?

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1 Answer 1

In PHP all array copying is by reference. You need to explicitly copy something if you want a shallow copy.

So even though you don't assign to $arr2 by reference, since $arr is an array they both end up referring to the same array object.

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