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I have this little function to filter my array by keys:

 private function filterMyArray( )
 {
      function check( $v )
      {
           return $v['type'] == 'video';
      }
      return array_filter( $array, 'check' );
 }

This works great but since I have more keys to filter, I was thinking in a way to pass a variable from the main function: filterMyArray($key_to_serch) without success, also I've tried a global variable, but seems not work.

Due some confusion in my question :), I need something like this:

 private function filterMyArray( $key_to_serch )
 {
      function check( $v )
      {
           return $v['type'] == $key_to_serch;
      }
      return array_filter( $array, 'check' );
 }

Any idea to pass that variable?

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mmm ... nested functions ... not pretty, especially when php provides functions that do this for you. try array_map() or array_filter() with lambda/closure –  rdlowrey Dec 9 '11 at 1:40

4 Answers 4

up vote 3 down vote accepted

This is where anonymous functions in PHP 5.3 come in handy (note the use of use):

private function filterMyArray($key)
{
     return array_filter(
         $array,
         function check($v) use($key) {
             return $v['type'] == $key;
         }
     );
}
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1  
Pfff, PHP devs should stop putting stuff into the language that shouldn't be there XD –  Halcyon Dec 9 '11 at 1:41
    
This is where identation comes in place: this code is very hard to understand (for me) if it's not properly indented. I've just modified identation, roll back if you think yours is easier to read –  Olivier Pons Apr 20 '14 at 7:42
private function filterMyArray($key_to_search) {
  function check( $v ) {
       return $v[$key_to_search] == 'video';
  }
  return array_filter( $array, 'check' );
}

should work because the inner function has access to the variables in the outer function

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You need to use the use keyword to get the variable in scope, c.f. this example in php's doc.

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Here's a PHP < 5.3 version using create_function.

private function filterMyArray( $key)
{
      $fn = create_function( '$v', "return $v[$key] == 'video';");
      return array_filter( $array, $fn);
}
share|improve this answer
    
Actually, this will not work because the dollar signs inside the double-quoted string will be seen as variable references. –  Jon Dec 9 '11 at 2:05

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