Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can I load the following formatted XML document:

<Settings>
    <MimeTypes>
        <MimeType Type="application/mac-binhex40" Extensions=".hqx"/>
        <MimeType Type="application/msword" Extensions=".doc;.docx"/>
        <MimeType Type="application/pdf" Extensions=".pdf"/>
        <MimeType Type="application/vnd.ms-excel" Extensions=".xla;.xlc;.xlm;.xls;.xlt;.xlw;.xlsx"/>
    </MimeTypes> 
</Settings>

Into a dictionary where the key is an individual extension, and the value is the mimetype.

So, for this line:

<MimeType Type="application/vnd.ms-excel" Extensions=".xla;.xlc;.xlm;.xls;.xlt;.xlw;.xlsx"/>

I would have the following key-value entries:

Key: ".xla" Value: "application/vnd.ms-excel"
Key: ".xlc" Value: "application/vnd.ms-excel"
Key: ".xlm" Value: "application/vnd.ms-excel"
Key: ".xls" Value: "application/vnd.ms-excel"
Key: ".xlt" Value: "application/vnd.ms-excel"

I'm relatively new to the LINQ-To-XML business.

I know that I should load in the document into an XElement like:

 XElement settingsDoc = XElement.Load("Settings.xml");

However, how to do I select all "MimeType" entries?

share|improve this question

3 Answers 3

Something like:

 var dictionary = (from element in settingsDoc.Descendants("MimeType")
                   from extension in element.Attribute("Extensions")
                                         .Value.Split(';')
                   select new { Type = element.Attribute("Type").Value,
                                Extension = extension })
                   .ToDictionary(x => x.Extension,
                                 x => x.Type);
share|improve this answer
    
ok.fine.you win. –  Stan R. Jan 6 '10 at 20:12
    
Exactly what I was looking for, thanks! –  Robert Dougan Jun 28 '10 at 9:46

This is my solution.

 XElement el = XElement.Parse(txt);
            var mimeTypes = el.Element("MimeTypes").Elements("MimeType");
            var transFormed = mimeTypes.Select(x =>
                    new
                    {
                        Type = x.Attribute("Type").Value,
                        Extensions = x.Attribute("Extensions").Value.Split(';')
                    }
                       );
            Dictionary<string, string> mimeDict = new Dictionary<string, string>();
            foreach (var mimeType in transFormed)
            {
                foreach (string ext in mimeType.Extensions)
                {
                    if (mimeDict.ContainsKey(ext))
                        mimeDict[ext] = mimeType.Type;
                    else
                        mimeDict.Add(ext, mimeType.Type);
                }
            }

Okay, after looking at Jonh's code...here is my 2nd solution :)

XElement el = XElement.Parse(txt);
var mimeTypes = el.Element("MimeTypes").Elements("MimeType");
var dictionary = mimeTypes.SelectMany(x => x.Attribute("Extensions").Value.Split(';').Select(
                                               ext => new
                                                {
                                                    Key = ext,
                                                    Value = x.Attribute("Type").Value
                                                 }
                                              )
                                     ).ToDictionary( x => x.Key, y => y.Value);
share|improve this answer

Here is my contribution.

        Dictionary<string, string> dic = new Dictionary<string,string>();
        foreach (XElement element in settingsDoc.Descendants("MimeType"))
        {
            string val = element.Attribute("Type").Value;
            foreach (string str in element.Attribute("Extensions").Value.Split(';'))
                if (!dic.ContainsKey(str)) dic.Add(str, val);
        }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.