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I am using the following script to get the POST TITLE and the CONTENT of an RSS feed. The structure of it is: ( I guess i did not make any error)

<div id="feedBody">
<div id="feedContent">
<div class="entry">
<h3>TITLE OF POST</h3>
<div base="http://feeds.feedburner.com/blogspot/hyMBI" 
     class="feedEntryContent"
    > CONTENT OF POST </div>
</div>
</div>
</div>




<?php
$dom = new DOMDocument;
libxml_use_internal_errors(TRUE);
$dom->loadHTMLFile('http://feeds.feedburner.com/blogspot/hyMBI');
libxml_clear_errors();

$xPath = new DOMXPath($dom);
$links = $xPath->query('????????????????');
foreach($links as $link) {
    printf("%s \n", $link->nodeValue);
}
?>

What xPath should I use to get the data? Is there any way of having them seperate? Thanks a million, hopefully this is my last question on my project...

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$dom->load(), not $dom->loadHTMLFile –  SilverbackNet Mar 25 '11 at 0:49

2 Answers 2

up vote 0 down vote accepted

First, you should load the XML using load, not loadHTMLFile.

Judging by your variable name "$links", I guess you're wanting the values of the <link> elements inside the <item> elements. So construct an xpath query that says just that: //item/link.

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Hi there, thanks for your reply. The above code is an example I found through a tutorial. I have done what you said, but how can I get the title and content instead of the link? –  Xalloumokkelos Mar 25 '11 at 1:05
    
The easiest way to do that would be to fetch all <item> nodes with //item, then for each found node use $xPath->query('/title, $item)` to get the title and $xPath->query('/description, $item)` to get the content. –  Anomie Mar 25 '11 at 1:07
    
Exactly the clue I wanted ! As i see in the source of the RSS, I was wrong for the paths I entered. Your item/link item/title item/description made the trick! Now I am trying to seperate the image and the content. I read somewhere about strpos, but if you can have a look at it, that would be great. Thanks again! –  Xalloumokkelos Mar 25 '11 at 15:25
    
Your best bet there might be to use DOMDocument::loadHTML to load up the HTML content of the description and use xpath to extract that too. –  Anomie Mar 25 '11 at 16:12

Basic XPath: //div[@class="entry"] gets you an array of all entries. You can get the first (or only) entry with //div[@class="entry"][1]. With that, you can use h3 to get the text of the title node, and div[1] to get the contents (if it's guaranteed that there's only one, otherwise specify the class).

You can put them together like //div[@class="entry"][1]/h3 if you like, so that you only have to query the root node. Otherwise, save the new node for the next query, like:

$entries = $xPath->query('//div[@class="entry"][1]');
foreach($entry in $entries) {
  $title = $xPath->evaluate('h3[1]',$entry);
  $post = $xPath->evaluate('div[1]',$entry);
}

If your RSS returns a whole group of posts, you can leave off the first [1] and loop through the whole group this way.

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Hi there, thanks for your reply.. But it can't display me anything even with //div[@class="entry"] –  Xalloumokkelos Mar 25 '11 at 1:15
    
Is the HTML above an actual snippet of the feed you're accessing? If not, post part of the actual feed. –  SilverbackNet Mar 25 '11 at 1:22
    
//div[@class="entry"][1]" does not do what you say it does. See here: stackoverflow.com/questions/4672997/… –  lwburk Mar 25 '11 at 14:55

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