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I'm trying to display an image file from a directory using a PHP echo command and an IMG tag.

Here is the code:

//These variables represent the file name extensions from a form element from a previous page

$bannerimg=$_POST["banimg"];
$adimage=$_POST["adimage"];

echo "<img src='imgdir/'".$bannerimg."/>";

When I echo out the file variables ($bannerimg and $adimage) I get the proper file name and extension.

In theory, will this work? If so, what is the proper syntax to handle that echo statement?

Thanks for all the help.

Dustin

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3 Answers

up vote 1 down vote accepted

Yes it would work, but you should have tested that already.

Alternative syntaxes to the echo statement that I find a little bit more readable would be:

echo "<img src='imgdir/{$bannerimg}/>";
echo "<img src='imgdir/$bannerimg/>";

You can read all about variable parsing in the manual, the first syntax is the complex one and the second the simple. I prefer the complex one as the end of the variable is clearly defined and you can use it for complex expressions, not just simple variables.

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Thanks Yannis it works, and yes, I did test it before hand, I just wasn't clear in my original question. Thanks for the link, reading it now. –  Dustin James Nov 27 '11 at 23:52
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You're doing it right but you can use the following just to keep it clean.

echo "<img src='imgdir/$bannerimg' />";
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I'd stray away from the word cleaner. It's completely to perspective. –  PhpMyCoder Nov 27 '11 at 21:54
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It should work.

To Sandeep's comment, I would have gone the other way.

echo '<img src="imgdir/'.$bannerimg.'/>';

Using " means the parser needs to check to see if there is anything to evaluate.

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So what? There isn't any noticeable performance issue. It's perfectly fine to use single quotes if you like them better, but "the parser needs to check to see if there is anything to evaluate" is not a valid reason. –  Yannis Nov 27 '11 at 21:43
    
Good link. Very interest on the == vs === in if's and the isset, is_array –  phpmeh Nov 27 '11 at 21:53
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