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.

I have an XML file, which can be viewed here, of data concerning a series of music albums, which I would like to load into javascript into an array called "mymusic" in this form:

mymusic = [
  {
    title:,
    artist:,
    artwork:,
    tracks: [
      {
        tracktitle:,
        trackmp3:
      },
      {
        tracktitle:,
        trackmp3:
      }
    ]
  }
];

etc.; so basically an array of albums, where each album is represented by a record, the fields of which are the album title, album artist, album artwork, and an array of the album's tracks (where each track/index of the array is represented by a record with fields tracktitle and trackmp3.

In order to achieve this I have the following javascript:

function getxml(){
    xmldoc=XML.load('music.xml');
    var xmlalbums=xmldoc.getElementsByTagName('album');
    mymusic=[];
    for(i=0;i<xmlalbums.length;i++){
        xmlalbum=xmlalbums[i];
        mymusic[i]={};
        mymusic[i].title=dataFromTag(xmlalbum,'title');
        mymusic[i].artist=dataFromTag(xmlalbum,'artist');
        mymusic[i].artwork=dataFromTag(xmlalbum, 'artwork');
        tracks=[];
        var xmltracks=xmlalbums[i].getElementsByTagName('track');
        for(var a=0;a<xmltracks.length;a++){
            xmltrack=xmltracks[i];
            tracks[i]={};
            tracks[i].tracktitle=dataFromTag(xmltrack, 'title');
            tracks[i].trackmp3=dataFromTag(xmltrack, 'mp3');
            mymusic[i].tracks=tracks;
        }
    }
}

however, this doesn't load the contents of music.xml in the way I'd like, but I can't see why this is. Any suggestions or help would be appreciated.

Thanks

share|improve this question
1  
Sorry, where do we see the xml file? Are we suppose to click on something on that page? –  Crescent Fresh Nov 26 '09 at 15:56
    
Edited the link to work. Do you have any idea what's wrong with my javascript? –  Deacon Nov 26 '09 at 19:06
2  
Couple more questions: When you say "this doesn't load the contents" the way you'd like, what is currently happening? –  jeremyosborne Nov 26 '09 at 19:43
1  
As an aside, this isn't really an answer to your question, but be careful in general with declaring variables in JavaScript. I'm only guessing, but I believe you may want to make sure mymusic, xmlalbum, tracks and xmltrack all get a 'var' placed before them in your function. –  jeremyosborne Nov 26 '09 at 19:44
    
Hi, thanks for your reply. When i put an alert(mymusic) in, it actually gives a series of 4 alerts in succession: the first is "[object Object]" the second "[object Object],[object Object]" and so on to alert no. 4. I have checked that the alert is not nested in the for-loop so it can't be to do with that. And for your second point...I'll give it a go, in the vain hope it changes something! Thanks –  Deacon Nov 26 '09 at 20:05

1 Answer 1

that's should work

  function getxml(){
        xmldoc=XML.load('music.xml');
        var xmlalbums=xmldoc.getElementsByTagName('album');
        mymusic=[];
        for(i=0;i<xmlalbums.length;i++){
            xmlalbum=xmlalbums[i];
            mymusic[i]={};
            mymusic[i].title=dataFromTag(xmlalbum,'title');
            mymusic[i].artist=dataFromTag(xmlalbum,'artist');
            mymusic[i].artwork=dataFromTag(xmlalbum, 'artwork');

            tracks=[];
            var xmltracks=xmlalbums[i].getElementsByTagName('track');
            for(var a=0;a<xmltracks.length;a++){
                xmltrack=xmltracks[a];
                tracks[a]={};
                tracks[a].tracktitle=dataFromTag(xmltrack, 'title');
                tracks[a].trackmp3=dataFromTag(xmltrack, 'mp3');                
            }

            mymusic[i].tracks=tracks;
        }
    }
share|improve this answer
    
in advice you should use firefox with firebug extention to help you debug your code with "console.log(your_variable)" function –  foxdanni Mar 15 '12 at 22:39

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.