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I am writing a php function for wordpress that is executed through an XML feed. Therefore we are excepting a feed and then based on the nodes placing those in our website. What I need help with is we have a bunch of different images of credentials (i.e BBB, chamber of commerce etc) What I need therefore is when there is a link to a BBB then it should display a picture, if not then it should be blank. The problem I am running into is because the BBB links will be random based on different businesses. Any help would be greatly appreciated. Thanks.

If URL "pic" else "no pic"

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1  
Can you clarify 1. What kind of data you need to analyze (XML? HTML?) and what you mean by "when there is a link". What does the condition look like? Can you post a real world example? –  Pekka 웃 Feb 2 '10 at 22:30
    
I am getting a XML feed [license1] - therefore if [license1] exists then I am going to display a picture. If [license1] does not exist then nothing will show up. Example - if [license1] = BBB display picture of BBB logo, else [license1] = nothing display nothing hope this helps –  Ben Feb 2 '10 at 22:35
    
Are you asking for a simple if() statement? Your question is either unclear or extraordinarily basic for someone capable of manipulating an XML feed in WordPress. –  ceejayoz Feb 2 '10 at 22:39
    
Well actually I was given this project without knowing any XML and some php and I am trying to figure it out without any help - so I am forced to use forums and google - thanks –  Ben Feb 2 '10 at 23:00

4 Answers 4

up vote 1 down vote accepted

Do you mean this? Otherwise please explain your problem better.

if (!empty($url)) {
    echo '<img src="' .$url. '" />';
}
else {
    echo ' ';
}

Check here when empty returns false (and therefore !empty is true) and really consider if this fits your needs.

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1  
Yeah, are we missing something? Is the OP really asking for how to do an if/else structure? –  ceejayoz Feb 2 '10 at 22:34
    
I think this is what will help me out - I was missing the "!empty" - thank you for your help –  Ben Feb 2 '10 at 22:39

Maybe I'm missing something, but wouldn't this do?

if($license1) { print "<img src=\"/path/to/bbb.logo\" alt=\"BBB Logo\" />"; }
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A method would be creating an array like $feeds = array("pic","xml"); then testing if its in array like

if in_array($url,$feeds)
// your code;

or the second method would be creating an temp var like $tmp = $url =="pic" ? "pic" : "nopic"; or to set just an boolean $tmp = $url =="pic" ? TRUE : FALSE;

then you can test it like this

if($url) // if its == "pic" it would return true otherwise false
 //make your url 
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Also a shorthand way is to do

But when the given var is an array I think you need to use is_array(), or if it's a class objec,t use is_object() to verify that it has content.

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