Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I'm developing an application that queries MusicBrainz for data and I'm viewing it by binding the results to ListViews using some XPath.

enter image description here

Now, the underlying XML for the second (albums) ListView is here, and as you can see the top result has two artists:

<metadata created="2013-05-10T21:32:13.487Z">
    <release-group-list count="153471" offset="0">
        <release-group id="22315cdd-4ed9-427c-9492-560cf4afed58" type="Album" ext:score="100">
            <title>The Heist</title>
            <primary-type>Album</primary-type>
            <artist-credit>
                <name-credit joinphrase=" & ">
                    <artist id="b6d7ec94-830c-44dd-b699-ce66556b7e55">
                        <name>Macklemore</name>
                        <sort-name>Macklemore</sort-name>
                    </artist>
                </name-credit>
                <name-credit>
                    <artist id="c01560d1-6f69-48cf-a3c6-c94b65f099b1">
                        <name>Ryan Lewis</name>
                        <sort-name>Lewis, Ryan</sort-name>
                    </artist>
                </name-credit>
            </artist-credit>

but using this code

View.SetBinding(ListView.ItemsSourceProperty, new Binding()
{
    Source = Resources["DataProvider"],
    XPath = "//a:metadata/a:release-group-list/a:release-group"
});

GridView.Columns.Add(new GridViewColumn()
{
    DisplayMemberBinding = new Binding() { XPath = "a:artist-credit/a:name-credit/a:artist/a:name" },
    Header = "Artist",
    Width = 128
});

I only get the first result and I have no idea how to go about concatenating them.

Any insight will be greatly appreciated.

share|improve this question
    
Do you have to bind it to an XPath? Could you use Linq-to-Xml to create a collection to bind to? – Jeremy Pridemore May 11 '13 at 3:04
    
Of course it doesn't have to be XPath, that's just what I'm using right now. Thanks for the suggestion, I'll delve into it ASAP. – Kuraj May 11 '13 at 4:00
up vote 1 down vote accepted

Here is a way to get the data that you're talking about via Linq-to-Xml:

public class XmlArtistsConcept
{
    public void Run()
    {
        XDocument artistDocument = XDocument.Load(@"http://musicbrainz.org/ws/2/release-group?query=the%20heist");
        XNamespace artistNamespace = @"http://musicbrainz.org/ns/mmd-2.0#";

        // The purpose of this query is to demonstrate getting this for a particular result.                
        var theHeistNames =
            string.Join(", ",
                artistDocument
                .Element(artistNamespace + "metadata")
                .Element(artistNamespace + "release-group-list")
                .Elements(artistNamespace + "release-group")
                .Where(element => element.Attribute("id").Value == "22315cdd-4ed9-427c-9492-560cf4afed58").Single()
                .Elements(artistNamespace + "artist-credit")
                .Elements(artistNamespace + "name-credit")
                .Elements(artistNamespace + "artist")
                .Select(artist => artist.Element(artistNamespace + "name").Value).ToArray());

        Console.WriteLine(theHeistNames);

        // This query will get it for everything in the XDocument. I made a quick data bucket to dump the values in.
        var allAlbumResults =
            artistDocument
            .Element(artistNamespace + "metadata")
            .Element(artistNamespace + "release-group-list")
            .Elements(artistNamespace + "release-group")
            .Where(releaseGroup => releaseGroup.Attribute("type") != null)
            .Select(releaseGroup =>
            {
                return new AlbumResult()
                {
                    Title = releaseGroup.Element(artistNamespace + "title").Value,
                    Artist = string.Join(", ",
                                    releaseGroup
                                    .Elements(artistNamespace + "artist-credit")
                                    .Elements(artistNamespace + "name-credit")
                                    .Elements(artistNamespace + "artist")
                                    .Select(artist => artist.Element(artistNamespace + "name").Value)
                                    .ToArray()),
                    Type = releaseGroup.Attribute("type").Value,
                };
            });

        allAlbumResults.ToList().ForEach(albumResult => Console.WriteLine("Title: {0}, Artist: {1}, Type: {2}", albumResult.Title, albumResult.Artist, albumResult.Type));
        Console.WriteLine();
        Console.WriteLine("Finished");
    }
}

public class AlbumResult
{
    public string Title { get; set; }
    public string Artist { get; set; }
    public string Type { get; set; }
}
share|improve this answer
    
Yes! Thank you very much! – Kuraj May 11 '13 at 10:40

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.