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I want to be able to sort the data after adding a model to the collection. If I don't apply silent:true the collection will be render but everything doubles up. Is there another way?

I'm rendering the template on initialize function and rendering the collection sub view after reset.

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some code always helps, so we can see what you've tried before. – Vincent Briglia May 22 '12 at 8:59
2  
@Dreyfus there is always the Comparator function to keep your models always sorted. – Deeptechtons May 22 '12 at 9:35
    
Yes. But my main problem resides on the rendering part. if i have a collection of 1,2,3 if i use sort without clearing the DOM the result would be 1,2,3,1,2,3 – Dreyfus15 May 22 '12 at 9:51

Just implement a comparator:

Backbone.Collection.extend({

    // ...

    comparator: function( doc ) 
    {
        var str = doc.get('name') || '';
        return str.toLowerCase();
    },

    // ...

});
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up vote 1 down vote accepted

Got it to work though I'll answer my question because i'm not sure if this is the best answer so comments are welcome.

on my view:

    initialize : function(){
        this.$el.html( this._template );
        this.collection.bind('reset', this.LoadItems, this);
        this.collection.bind('add', this.AddOneItem, this);
        $("#settings-category").trigger("create");  
    },

    LoadItems : function(){
        this.collection.each(function(model){
            this.view = new CurrentCategoryView({model : model});
             $("#currentCategoryListContainer").append(this.view.render().el);
        });
        $("#currentCategoryListContainer").listview("refresh");
    },

this results to a normal rendering of DOM elements but if i use sort which eventually triggers a reset my function doesn't include the code above so the result is that it doesn't clear up the DOM elements and proceed on adding more elements causing the Collection models to be rendered twice. So here is my solution.

$("#currentCategoryListContainer").empty();
this.collection.sort();

In this way i clears up the already occupied DOM to make way for the new Items( sorted items) to be rendered.

share|improve this answer
    
The only problem with the DOM.empty() is that the User is gonna feel the flash in the screen and he will lost any scroll position that is affected for this DOM deletion. – fguillen May 22 '12 at 17:34
    
I'm running into the same problem. Is there a better solution? – CamelBlues Aug 7 '12 at 22:57
    
Same here! How do we solve it? – Makromat Oct 23 '15 at 9:36

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