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I'm a newbie stumped on the following. If I'm including an external file on a page that contains the following variable:

$blurb_78 = "Lorem ipsum dolor.";

How can I echo $blurb_78 on the local page? (where the 78 part is a generated article ID set to a variable labeled, $id)

The following doesn't work:

echo $blurb_.$id;

Thanks much for your help.

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The phrasing is creating some confusion: do you want the output to be "$blurb_78" or "Lorem ipsum dolor."? I answered for the former; many for the latter. –  cbrandolino Oct 4 '11 at 13:41

7 Answers 7

I think you mean a variable variable name like it is mentioned at the Variable variables page on the PHP site. In your case this should work fine:

echo ${'blurb_'.$id}; 

But I highly doubt your approach on this one.

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Try making an array:

$blurb = array();

$blurb[78] = "Lorem ipsum";

echo $blurb[$id];
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OP wanted to output the vas's name. –  cbrandolino Oct 4 '11 at 13:35
    
Perfect. Works...thanks! –  user531380 Oct 4 '11 at 13:38
    
@cbrandolino :) –  Arda Oct 4 '11 at 13:40
    
... And I was wrong. I'm going to upvote a random other question of yours, since I downvoted this more than 7 minutes ago. –  cbrandolino Oct 4 '11 at 13:42
    
@cbrandolino no worries, thanks anyways! –  Arda Oct 4 '11 at 13:47

You should use an associative array instead of variables in your case.

Check this article in PHP official documentation:

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This is your answer:

 echo '$blurb_'.$id;

Still, an associative array is the way to go.

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Try

<?php
$blurb_78 = 'Lorem ipsum dolor.';
$id = 78;
echo ${'blurb_'.$id};
?>
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This should work:

echo ${'blurb_'.$id}

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echo ${'blurb_'.$id};

Demo

Read more on the variable variables article.

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Not really. Op wanted to output the string "$blurb_78" with the "78" part given as a variable. –  cbrandolino Oct 4 '11 at 13:39
    
@cbrandolino Huh? What is mine doing? I have even linked to a demo page so you can see how it's working. Edit: I see what you meant. I don't think OP was that PHP illiterate. –  Shef Oct 4 '11 at 13:40
    
It's echoing the var's value, while I thought OP wanted its name to be displayed. –  cbrandolino Oct 4 '11 at 13:44

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