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I saw another post suggesting using this statement to trim string variables contained in the array:

$_POST=array_map('trim', $_POST);

However, if in the first place, the strings are not contained in an array, I would like to have a trim function that can be used like this:

$a='  aaa ';
$b='  bbb ';
$c='  ccc ';
trimAll($a,$b,$c); //arbitrary number of string variables can be passed

I tried to write a function like this:

function trimAll() {

    $args = &func_get_args();
    foreach($args as &$arg) {
        if(isset($arg) && is_string($arg))
            $arg=&trim($arg);
    }
      //no return value is required
}

But without success, the string variables do not get trimmed after function return.

Why and how can this be done??

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Will you need to do trimAll(&$a, &$b); ? –  alex Oct 29 '09 at 0:54
    
possible duplicate of PHP: variable-length argument list by reference? –  newacct Oct 7 '11 at 9:20
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6 Answers

up vote 4 down vote accepted

you cannot pass variable number of parameters by reference. As a workaround, try something like

list($a, $b, $c) = array_map('trim', array($a, $b, $c));

better yet, rewrite the snippet so that it doesn't require to use a bunch of variables, which is a bad idea anyways

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This also works, but will likely make anyone you might happen to work with frustrated as its very unintuitive:

// pass variables by string name
extract(array_map('trim', compact('a', 'b', 'c')));
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I don't think you can pass a variable-length list of args by reference.

You could pass in an array of references.

function trimAll($array) {
    foreach($array as $k => $v) {
        if(isset($array[$k]) && is_string($array[$k]))
            $array[$k]=&trim($array[$k]);
    }
}

... and suitably modify your call to create an array of references.

$a='  aaa ';
$b='  bbb ';
$c='  ccc ';
trimAll(array(&$a,&$b,&$c));
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If you add prefix the argument $array in the function trimAll with &, will that then enable you to use it normally –  alex Oct 29 '09 at 1:15
2  
Remove & beside trim btw. –  lemon Oct 29 '09 at 1:21
    
It won't, it complains Fatal error: Only variables can be passed by reference on line 15 codepad.org/FItzMVjn –  bobo Oct 29 '09 at 1:22
1  
maybe I should adopt approach's stereofrog –  bobo Oct 29 '09 at 1:33
    
@ken: this is not call-time pass by reference. putting references in an array is specifically allowed –  newacct Oct 7 '11 at 9:16
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I'm not convinced that this is possible using func_get_args, though a comment on it's PHP manual page suggests one possible alternative solution: http://uk3.php.net/manual/en/function.func-get-args.php#90095

However user187291's workaround looks far simpler.

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yes, but it requires call-time pass-by-reference, which is deprecated –  newacct Oct 7 '11 at 9:21
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Have you tried passing in the variables by Reference.

trimAll(&$a,&$b,&$c)
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1  
Call-time pass-by-reference (what you suggest) is deprecated in PHP 5. –  ken Oct 29 '09 at 1:27
    
@ken thank you so much for your information –  bobo Oct 29 '09 at 1:33
    
I know its depreciated, but is it not also about the only way he can do what he wants unless there is a way of declaring that all (unknown number of) properties of a method will be passed byref –  Toby Allen Oct 29 '09 at 17:20
    
This will still not work with the trimAll function as it is written (have you tried it?) –  newacct Oct 7 '11 at 9:24
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This works, but uses call-time pass-by-reference, which is deprecated in PHP 5.3:

function trimAll() {
    $backtrace = debug_backtrace();
    foreach($backtrace[0]['args'] as &$arg)
        if(isset($arg) && is_string($arg))
            $arg=trim($arg);
}
$a='  aaa ';
$b='  bbb ';
$c='  ccc ';
trimAll(&$a,&$b,&$c);
echo "$a\n";
echo "$b\n";
echo "$c\n";
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