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Can I use a generated variable name in PHP?

Am stuck here!

$part_one = "abc";
$v = "one";

echo $part_???; // should output "abc"

How do I modify ??? to reference $v?

Thanks!

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marked as duplicate by mario, Jocelyn, Barmar, Peter O., avasal Oct 10 '12 at 4:58

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2 Answers 2

up vote 11 down vote accepted

You need variable variables:

echo ${'part_'.$v};
// or
$var = 'part_'.$v;
echo $$var;
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Bingo - thanks! –  RC. Nov 21 '09 at 9:00
    
Why would this ever be useful? Just curious... –  Ed S. Nov 21 '09 at 9:13
    
Since variable can also be used to call functions (${'part_'.$v}() would call the abc function), you can use this to compact algorithms where only the name of the function may vary. Take the imagecreatefrom… functions for example: Just get the image type, append it to "imagecreatefrom" and call that function: $func = "imagecreatefrom".$type; $func($filename);. –  Gumbo Nov 21 '09 at 10:03
    
Another example is: $sides = array('front' => array(1,2), 'back' => array(2,3)); foreach ($sides as $side_name => $side_value) { ${'side_' . $side_name} = array_sum($side_value); }; At this point, you have $side_front = 3 and $side_back = 5. Very useful to not repeat code that may work well in a foreach loop. –  Charlie S Mar 14 '12 at 21:14

$_part$v;? maybe idk. I know you can do this:

$vname="variable";
$$vname="hello";
echo $variable;

//WOULD output "hello"

try this:

$name="_part";
$name=$name . $v;
$$name=$value;
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