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I am creating a variable from an XML file ($image) and I need to create a new variable that combines $image with '.jpg'. I've tried:

$image = $record->getElementsByTagName( "name_id" ); echo $image.".jpg"; $image = $image->item(0)->nodeValue;

But this doesn't add .jpg to the variable in the script. The reason I need to do this is the XML file doesn't have the jpg file extension only the image reference as a sequence of numbers. Any ideas?

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What is $image? Is it an object, a string, an array? –  andrewsi Sep 21 '12 at 20:31
Is that echo not supposed to come at the end? –  Zlatko Sep 21 '12 at 20:32
This code is of little use :| –  dbf Sep 21 '12 at 20:33

2 Answers 2

If $image is a string, just concoct the strings together with .. You can see this as an example:

   $img = hello;
   $imgfinal = $img . ".jpg";
   echo $img;

As expected the output is hello.jpg. Hope this helped.

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Are you looking for:

$image = $record->getElementsByTagName( "name_id" );
$image = $image->item(0)->nodeValue;
$image = $image . ".jpg";

Now $image should contain the filename with the file extension

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