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Take a look to this code, and help me to understand the result

$x = array('hello', 'beautiful', 'world');
$y = array('bye bye','world', 'harsh');

foreach ($x as $n => &$v) { }

$v = "DONT CHANGE!";

foreach ($y as $n => $v){ }

print_r($x);
die;

It prints:

Array
(
    [0] => hello
    [1] => beautiful
    [2] => harsh
)

Why it changes the LAST element of the $x? it just dont follow any logic!

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2  
It is worth noting that there is zero benefit to using references in day to day code unless you understand all of the pitfalls and side-effects. –  Charles Nov 30 '12 at 18:31
    
I was using with big arrays to use less memory usage. The solution I guess is to use unset after the foreach... to break the reference. –  Arnold Roa Nov 30 '12 at 18:35
    
PHP variables are copy-on-write. There is no memory benefit to using references in this way. –  Charles Nov 30 '12 at 18:36
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3 Answers

up vote 4 down vote accepted

After this loop is executed:

foreach ($x as $n => &$v) { }

$v ends up as a reference to $x[2]. Whatever you assign to $v actually gets assigned $x[2]. So at each iteration of the second loop:

foreach ($y as $n => $v) { }

$v (or should I say $x[2]) becomes:

  • 'bye bye'
  • 'world'
  • 'harsh'
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Ok, that makes sense, but shouldnt php remove the reference if using it in a foreach? I always like to use $v as my value and if i pass it as reference all my previous used arrays got broken. Its the first time I notice this beacause im working in a script without OOP. The only way to make it work is to call unset($v) directly after the first foreach –  Arnold Roa Nov 30 '12 at 18:33
    
This is the expected behavior. See the last line of @inhan answer where he has mentioned a good practice in such situations. –  Salman A Nov 30 '12 at 18:34
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// ...
$v = "DONT CHANGE!";
unset($v);
// ...

because $v is still a reference, which later takes the last item in the last foreach loop.

EDIT: See the reference where it reads (in a code block)

unset($value); // break the reference with the last element

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1  
Thanks you so much for the link to the reference, there is a WARNING note also that clarifies this. –  Arnold Roa Nov 30 '12 at 18:39
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Foreach loops are not functions.An ampersand(&) at foreach does not work to preserve the values like at functions. So even if you have $var in the second foreach () do not expect it to be like a "ghost" out of the loop.

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please avoid using abbreviations in sentences –  ekims Nov 30 '12 at 19:20
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