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I've been working on this problem for a few hours now and I have searched all around with no luck for a solution :(

What I am trying to do is print out names of the nodes, what i have is the amount of nodes that exist so I know how many times to loop but am having the hardest of times retrieving the values

What I have tried:

int num = Convert.ToInt32(queuecount);
var jobs = QueueXML.SelectSingleNode(xpathjobsfilename).InnerText;
PreviousQueue = jobs.ToString();

//foreach(loop < num)
//{
//    if (CurrentQueue == PreviousQueue)
//    {

//    }
//    else
//    {
//        resultsListView.Items.Clear();
//        resultsListView.Items.Add(jobs[num]);
//    }
//    loop++;
//}

foreach (char JobName in jobs.ToString())
{
    if (CurrentQueue == PreviousQueue)
    {
    }
    else
    {
        resultsListView.Items.Clear();
        resultsListView.Items.Add(jobs[num]);
    }
}  

Edit: Example XML

 <jobs>
    <job>
      <timeleft>0:00:00</timeleft>
      <mb>1419.60536003</mb>
      <msgid></msgid>
      <filename>Extended_Final</filename>
      <mbleft>1274.33209419</mbleft>
      <id>nzo_i7qxxq</id>
    </job>
    <job>
      <timeleft>0:00:00</timeleft>
      <mb>9.22459220886</mb>
      <msgid></msgid>
      <filename>Video2</filename>
      <mbleft>9.22459220886</mbleft>
      <id>2m3dv5</id>
    </job>
  </jobs>

I want to retrieve the job details for each individual jobs

share|improve this question
    
Could you show and example XML structure and the result you are looking for? –  Jan Sep 9 '12 at 3:40
    
I just edited the original question with an example –  KPS Sep 9 '12 at 3:44
    
What exactly do you want to extract? –  Jan Sep 9 '12 at 3:45
    
File name and mbleft –  KPS Sep 9 '12 at 3:45
    
why not use LINQ2XML.Its a complete replacement to the underlying XmlReader and writer.Its simple and its cool. –  Anirudha Sep 9 '12 at 4:09

2 Answers 2

up vote 1 down vote accepted

Use LINQ2XML.Its COOL

XElement doc=XElement.Load("yourXMLfile.xml");

string timeleft,mb,msgid,filename,mbleft,id;

foreach(XElement elm in doc.Descendants().Elements("job"))
{

timeleft=elm.Element("timeleft").Value;//time left value
mb=elm.Element("mb").Value;//mb value
msgid=elm.Element("msgid").Value;//msgid value
filename=elm.Element("filename").Value;//filename value
mbleft=elm.Element("mbleft").Value;//mbleft value
id=elm.Element("id").Value;//id value

}
share|improve this answer
    
I get this error: Error 3 Only assignment, call, increment, decrement, await, and new object expressions can be used as a statement –  KPS Sep 9 '12 at 4:16
    
@KPS Check out my edited answer –  Anirudha Sep 9 '12 at 4:17
    
@KPS the error caused because you are not assigning the Value to anything..assign all the values to string... –  Anirudha Sep 9 '12 at 4:20

Use this code to loop through your job-nodes.

XmlDocument doc = new Windows.Data.Xml.Dom.XmlDocument();
doc.Load(@"/path/to/xml/file");

foreach (XmlNode job in doc.SelectNodes("/jobs/job"))
{
    string filename = job.SelectSingleNode("filename").InnerText;
    double mbleft = double.Parse(job.SelectSingleNode("mbleft").InnerText);
}

I am not quite sure what you want to do with it. If you want to use that information throughout your program, I'd create a job datatype and parse the XML document to a List<Job>. In any case the above code will enable you to access the information you are after.

share|improve this answer
    
Hmm this is a metro app that I am trying to make and seems like XmlNode namespace is not available –  KPS Sep 9 '12 at 3:58
    
I have updated the first line of my code. Does that work? –  Jan Sep 9 '12 at 4:02
    
Error 3 The type or namespace name 'XmlNode' could not be found (are you missing a using directive or an assembly reference?) –  KPS Sep 9 '12 at 4:17
1  
Try XmlElement instead. –  Jan Sep 9 '12 at 4:25
    
@KPS please buy some good c# book like c# in a nutshell and clear all the basics..The error is because you have not included System.Xml namespace.. –  Anirudha Sep 9 '12 at 4:30

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