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I have build a simple site map script, i am not able to get URL output in URL field.

My PHP Script.

    header("Content-Type: text/xml;charset=iso-8859-1");
    echo '<?xml version="1.0" encoding="UTF-8"?>
    <urlset xmlns="http://www.sitemaps.org/schemas/sitemap/0.9">
          xmlns="http://www.sitemaps.org/schemas/sitemap/0.9"
          xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
          xsi:schemaLocation="http://www.sitemaps.org/schemas/sitemap/0.9
          http://www.sitemaps.org/schemas/sitemap/0.9/sitemap.xsd">
    ';

    require_once('_ls-global/php/sr-connect.php');
    $db = mysql_select_db($database,$connection) or trigger_error("SQL", E_USER_ERROR);
    $sqlquery = mysql_query("SELECT * FROM $tablename ORDER by id")or die (mysql_error());

    while ($list = mysql_fetch_assoc($sqlquery)){

      $pflink=$list['pflink'];
      $pagelink=$list['pagelink'];

      $site="http://mysite.com";

      $url='$site/$pflink/$pagelink';

      $changefreq="weekly";
      $priority="1.0";

      echo '<url>
          <loc>'.$url.'</loc>
          <changefreq>'.$changefreq.'</changefreq>
          <priority>'.$priority.'</priority>
            </url>';

    }

    echo '</urlset>';

The Output of this script is this.

    <url>
    <loc>$site/$pflink/$pagelink</loc>
    <changefreq>weekly</changefreq>
    <priority>1.0</priority>
    </url>

If i change $url='$site/$pflink/$pagelink'; to $url="$site/$pflink/$pagelink";

then i get only one value and error "XML Parsing Error: not well-formed".

Please see and suggest any modification to make it work.

Thanks

share|improve this question

3 Answers 3

up vote 2 down vote accepted

I guess you are having characters in the vars which are messing up the XML.

For example &, ä, <, >... You need to encode the content correctly.

Try wrapping the output: At first change $url to $url = $site .'/'. $pflink .'/'. $pagelink; and then update the output of the XML to:

<?php
// ...
      echo '<url>
          <loc><![CDATA['.$url.']]></loc>
          <changefreq>'.$changefreq.'</changefreq>
          <priority>'.$priority.'</priority>
            </url>';
?>

Explanation to CDATA available at http://en.wikipedia.org/wiki/CDATA

share|improve this answer
    
Tried this getting error XML Parsing Error: junk after document element –  Tall boY Aug 23 '12 at 8:05
    
Can you copy the output of the document to pastie.org or something like that (you might need remove the header() function at first) –  thedom Aug 23 '12 at 8:22
    
I need the entire output (remove the header() function and the first echo() with the document declaration <?xml version="... and pos ta link again please. And: copy the source code (from browser) or encode the entire code with htmlspecialchars() - easier for you would be the first one (copy the source from browser). –  thedom Aug 23 '12 at 8:58
    
I got it right, thanks your answer helped me. –  Tall boY Aug 23 '12 at 9:01
    
your answer helped me most, and @FrontEndJohn comment made it right. –  Tall boY Aug 23 '12 at 9:11

Based on thedom and FrontEndJohn answers and comment I got it right this way.

Changing $url='$site/$pflink/$pagelink'; to $url = $site .'/'. $pflink .'/'. $pagelink;

And modifying.

      echo '<url>
      <loc>'.$url.'</loc>
      <changefreq>'.$changefreq.'</changefreq>
      <priority>'.$priority.'</priority>
        </url>';

to

    echo '<url>';
echo '<loc><![CDATA['.$url.']]></loc>';
echo '<changefreq>'.$changefreq.'</changefreq>';
echo '<priority>'.$priority.'</priority>';
echo '</url>';

Hope this helps others too.

share|improve this answer

If I understand your problem correctly, you cannot currently get the value of the variable due to the use of ' but when trying to use " so that the variables echo the XML gets upset.

Try:

$url = $site . '/' . $pflink . '/' . $pagelink;

This will give the value of the variables without using ". If I have miss-understood you please let me know.

Edit: Thinking about it, it looks more the the value of one or more of the variables may be what is upsetting the XML, assuming the variables are not giving their values while using '. It could be worth checking the contents of the variables for issues if you have not done so already.

share|improve this answer
    
Using your solution or using " i get only one values and still the error XML Parsing Error: not well-formed –  Tall boY Aug 23 '12 at 8:00
1  
Maybe the added white space is giving you some problems then also, as @thedom has mentioned below, encoding could also be playing a part so in conjunction with tidying you variables, encoding your output, also remove as much whitespace as possible such as the white space within the echo statement at the end. Either wrap each line in a new echo or use a single line with inserted . "\r\n" . to break the lines. –  JohnDevelops Aug 23 '12 at 8:09

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