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Bug #33466 Arrays are not handles as Variables
Submitted: 2005-06-24 15:18 UTC Modified: 2005-06-24 15:37 UTC
From: clynx at succont dot de Assigned:
Status: Not a bug Package: Scripting Engine problem
PHP Version: 5CVS-2005-06-24 (dev) OS: FreeBSD 4.10/FreeBSD 5.4/WinXP
Private report: No CVE-ID: None
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From: clynx at succont dot de
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 [2005-06-24 15:18 UTC] clynx at succont dot de
Description:
------------
When you try to use array_intersect in combination with a different Function, it leads to a strange Error Message.

The Reproduce Code give the Error while the following does not:
<?php
$array1 = array('foo', 'bar', 'test');
$array2 = array('foo', 'me' );
$result = array_intersect( $array1, $array2 );
var_dump( array_shift( $result ) );
?>

And as far as array_intersect retuns an Array (a Variable ;o) this Error is a little bit strange.

Reproduce code:
---------------
<?php
$array1 = array('foo', 'bar', 'test');
$array2 = array('foo', 'me' );
var_dump( array_shift( array_intersect( $array1, $array2 ) ) );
?>

Expected result:
----------------
webdev# php /htdocs/beta.webdev/succont.Unitized/test.php
string(3) "foo"

Actual result:
--------------
webdev# php /htdocs/beta.webdev/succont.Unitized/test.php
PHP Fatal error:  Only variables can be passed by reference in /usr/local/htdocs/beta.webdev/succont.Unitized/test.php on line 4

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 [2005-06-24 15:22 UTC] tony2001@php.net
array_shift() accepts only variables passed by reference.
Obviously an expression result is not a variable.
 [2005-06-24 15:34 UTC] clynx at succont dot de
But array_intersect does not return an 'expression' it returns an Array. And IMHO Arrays should be useable where they are returned.

Maybe, could you tell me a little bit more about the word 'expression' you used. Is every return value in PHP a expression until it is assigned to a Variable? If so, is that handled in some part of the Manual?

Thanks
 [2005-06-24 15:37 UTC] tony2001@php.net
See http://www.php.net/manual/en/language.expressions.php for the definition of "expression".
 
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