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I have some code that has been written in for php 5.3.0 using the USE function within PHP

can someone help me change this to work for 5.2.9?

$available  = array_filter($objects, function ($object) use ($week) { 
    return !in_array($object, $week);
});

thanks for the help

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This may help you: stackoverflow.com/questions/1065188/… –  zaf May 3 '11 at 12:01
2  
You probably shouldn't call use() a function, as its a little confusing. –  alex May 3 '11 at 12:08

4 Answers 4

up vote 8 down vote accepted

Not nice, but this would be an equivalent implementation.

class MyWeekFilter {
    protected $_week;

    public function __construct($week) {
        $this->_week = $week;
    }

    public function filter($object) {
        return !in_array($object, $this->_week);
    }
}

$filter    = new MyWeekFilter($week);
$available = array_filter($objects, array($filter, 'filter'));
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1  
Well played, sir, well played. You just saved my life tonight. –  dland Feb 13 '12 at 18:13

Is there any difference between author's code

$available = array_filter($objects, function ($object) use ($week) { 
    return !in_array($object, $week);
});

and

$available = array_diff($objects, $week);

?

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1  
The author may have cut down the problem space to a simple example that is easier to follow. –  dland Feb 14 '12 at 14:36
$available  = array_filter($objects, create_function('$object', '
    $week = '.var_export($week,true).';
    return !in_array($object, $week);
'));
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Try this:

$week = array(...); // defined and instantiated before...

function callback($object) {
    return !in_array($object, $week);
}
$available  = array_filter($objects, "callback");
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1  
This won't work. $week is a global variable, which must be imported into the function scope: function callback($object) { global $week; return !in_array($object, $week); } –  Stefan Gehrig May 3 '11 at 12:04
1  
$week is not available in callback unless pulled in using global –  meouw May 3 '11 at 12:06
    
True. Sorry for missing this. –  shadyyx May 3 '11 at 12:12

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