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I have a jquery-plugin, which can cope with a function as dataSource

var plugin = $element.plugin({
   data: function (callback) {
      // TODO
   }
});

It's pretty straight forward, if I only use one dataSource...
But ... I'm in the need of two dataSources

What I've tried so far:

var plugin = $element.plugin({
   data: function (callback) {
      var path1 = 'foo1.json';
      var path2 = 'foo2.json';
      var resultOfPath1 = GetContent(path1);
      var resultOfPath2 = GetContent(path2);
      var result = /* this is where i am stuck !! */;
      callback(result);
   }
});

function GetContent(path) {
   // this is where i am stuck!!
   // which method to take? i would like to force a sync. request here
}

My two problems with this code:

  1. How can I merge two json-lists?
  2. How can I force a sync. request (or does anyone have a better idea?)

Thanks in advance!

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3 Answers 3

up vote 2 down vote accepted
var plugin = $element.plugin({
   data: function (callback) {
      var path1 = 'foo1.json';
      var data1 = {};
      var path2 = 'foo2.json';
      var data2 = {};
      $.getJSON(path1, data1, function (result1) {
         $.getJSON(path2, data2, function (result2) {
            var result = new Array();
            jQuery.each(result1, function (index, element) {
               result.push(element);
            });
            jQuery.each(result2, function (index, element) {
               result.push(element);
            });
            callback(result);
         }
      });
   }
});
share|improve this answer
4  
+1 for chaining the callbacks, but consider using concat() to merge the arrays instead of each() loops. –  Frédéric Hamidi Feb 2 '11 at 11:31
    
@Frédéric: aahhh... did not know about concat() - will this work in IE and co either? will this work with objects (as the result of the query will be an json-object)? –  Andreas Niedermair Feb 2 '11 at 17:56
    
@Andreas, my bad, since you talked about json-lists I was assuming you were working with arrays. concat() won't work with objects, and the each() loops above will merge the values but lose the keys (though it can be fixed). With objects, I'd suggest using $.extend(). –  Frédéric Hamidi Feb 2 '11 at 19:54
    
@Frédéric: as the object is a list, i do not need the keys (these are just the indexes). i do believe that $.extend() will merge the objects based on their keys: if the result1 contains key 1, what will happen with the item of result2 with key 1? –  Andreas Niedermair Feb 3 '11 at 6:51
1  
@Andreas, it will overwrite the item in result1. –  Frédéric Hamidi Feb 3 '11 at 9:36

try this:

var plugin = $element.plugin({
   data: function (callback) {
      var 
         paths = ['foo1.json', 'foo2.json'],
         result = [],
         countState = 0;

       $.each(paths, function() {
           var dataSend = {}; //??
           $.getJSON(this, dataSend, function(data) {

              jQuery.each(data, function (i, el) {
                 result.push(el);
              });

              countState++;
              if (countState == paths.length)
                 callback(result); 
           });
       });


   }
});
share|improve this answer

yes ...

have a global variable and push the data you get from ajax.

var queue = [];

$.ajax({
url:'blabla',
success:function(data){
  queue += data
}
});
$.ajax({
url:'blabla2',
success:function(data){
  queue += data
}
})
share|improve this answer
1  
for this solution i need to poll queue or introduce a flag-enum to request the state of queue (which actions have completed)... –  Andreas Niedermair Feb 2 '11 at 11:26

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