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I'm retrieving the XML Node Value into my HTML page. There is a path in one of my nodes and I would like to place a link around it. The TagName is ("link") I need to add the value of the TagName "link" to be hyperlinked. I tried using

How is this done?

if (window.XMLHttpRequest) {// code for IE7+, Firefox, Chrome, Opera, Safari

                            xmlhttp = new XMLHttpRequest();
                        }
                        else {// code for IE6, IE5
                            xmlhttp = new ActiveXObject("Microsoft.XMLHTTP");
                        }
                        xmlhttp.open("GET", "reports.xml", false);
                        xmlhttp.send();
                        xmlDoc = xmlhttp.responseXML;

                        //document.write("<tr><th width='18%' align='left'>Report</th>");
                        //document.write("<th width='18%' align='left'>Audit Subject</th>");
                        //document.write("<th width='18%' align='left'>Report</th></tr>");

                        var x = xmlDoc.getElementsByTagName("item");
                        for (i = 0; i < x.length; i++) {
                            document.write("<tr><td>");
                            document.write(x[i].getElementsByTagName("title")[0].childNodes[0].nodeValue);
                            document.write("</td><td>");
                            document.write(x[i].getElementsByTagName("description")[0].childNodes[0].nodeValue);
                            document.write("<br>");
                            document.write("<a href='' target='_blank'>");
                            document.write(x[i].getElementsByTagName("link")[0].childNodes[0].nodeValue);
                            document.write("</a></td><td>");
                            document.write(x[i].getElementsByTagName("pubdate")[0].childNodes[0].nodeValue);
                            document.write("</td></tr>");

                        }

XML File:

`<audits>
  <reports>
    <title>Audit Reports</title>
    <rsslink>http://www.somesite.com/</rsslink>
    <item>
      <title>test1</title>
      <description>test for hyperlink path</description>
      <link>../pdf/audits/DeonGeeCert.pdf</link>
      <pubdate>Friday, September 21, 2012</pubdate>
    </item>
    <item>
      <title>test2</title>
      <description>test2</description>
      <link>../pdf/audits/2012-09-10audit-12-14.pdf</link>
      <pubdate>Monday, September 10, 2012</pubdate>
    </item>`
share|improve this question
    
is the code even related to your question.. anyways can you please show us an example of the responseXML and the corresponding output that you expect.. also setup a fiddle at jsfiddle.net too –  Baz1nga Sep 21 '12 at 18:27
    
and if you want it to be a link tag shouldnt you precede it with <a> –  Baz1nga Sep 21 '12 at 18:29
    
I'm sorry - i resubmitted the question. Also what is jsFiddle and how do I use it? I just set up an account don't know what its for. –  Gee Sep 21 '12 at 19:17

1 Answer 1

not sure about what you want, your question is too vague but I am guessing this is probably what you want to do

for (i = 0; i < x.length; i++) {
                            document.write("<tr><td>");
                            document.write(x[i].getElementsByTagName("title")[0].childNodes[0].nodeValue);
                            document.write("</td><td>");
                            document.write(x[i].getElementsByTagName("description")[0].childNodes[0].nodeValue);
                            document.write("<br>");
                            var linkValue=x[i].getElementsByTagName("link")[0].childNodes[0].nodeValue;
                            document.write("<a href='"+linkValue+"' target='_blank'>");
                            document.write(linkValue);  //or some meaningful text, just keeping the last string in the link
                            document.write("</a></td><td>");
                            document.write(x[i].getElementsByTagName("pubdate")[0].childNodes[0].nodeValue);
                            document.write("</td></tr>");

                    }
share|improve this answer
    
That is it, you are brilliant. Thank you so much. I am new with this and was trying to ask the question the best way I could. It worked perfectly. –  Gee Sep 22 '12 at 12:06
2  
mark the answer/upvote if it solved your issue –  Baz1nga Sep 22 '12 at 13:10

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