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I'm scratching my head how to combine results of 2 jQuery ajax calls which return the results into the same DOM element. Here is my setup:

  • there are 2 calls: one from a list of foods and second from a list of ingredients
  • both calls return a list of ingredients
  • the idea is to make a shopping list (ingredients to buy) based on 2 sources (list of foods and list of ingredients)
  • user can create shopping list either by selecting foods (ingredients are retrieved from the database) or he can select ingredients directly from a list of ingredients

Problem: these 2 calls are working fine each on its own. But the problem is that result from one call is always replacing the result from the second call and vice-versa.

var postUrl = "http://localhost:8000/ingredients/";
var ingrUrl = "http://localhost:8000/ingrs/";
var selectedFoods = [];
var selectedIngrs = [];


$('.foods a').click(function(event){
    clickedLink = $(this).attr('id');

    if (selectedFoods.indexOf(clickedLink) != -1) {
        var index = selectedFoods.indexOf(clickedLink);
        selectedFoods.splice(index, 1);}   
    else {
        selectedFoods.push(clickedLink);
    };

    var jsonFoods = JSON.stringify(selectedFoods);
    $.ajax({
        url: postUrl,
        type: 'POST',
        data: jsonFoods,
        dataType: 'html',
        success: function(result){
            $('.ingredients').html(result);
            }
    });       
});


$('.ingr-list a').click(function(event) {
    clickedIngr = $(this).attr('id');


    if (selectedIngrs.indexOf(clickedIngr) != -1) {
        var index = selectedIngrs.indexOf(clickedIngr);
        selectedIngrs.splice(index, 1);}   
    else {
        selectedIngrs.push(clickedIngr);
    };

    var jsonIngrs = JSON.stringify(selectedIngrs);
    $.ajax({
        url: ingrUrl,
        type: 'POST',
        data: jsonIngrs,
        dataType: 'html',
        success: function(result){
            $('.ingredients').html(result);
            }
    });

});

I tried to play around with this line $('.ingredients').html(result); using append instead of html but that won't work because the user should be able to take ingredients off the list (see the if conditions in both functions).

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3 Answers 3

up vote 3 down vote accepted

Just use different containers for them

<div class="ingredients">
    <div id="first"></div>
    <div id="second"></diV>
</div>

Then set the .html() of $("#first") and $("#second") instead of .ingredients

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Nice and simple solution. –  Subir Kumar Sao Jul 2 '12 at 7:20
    
@Esailija I considered that but I need to be able to sort the final list as one single list. I thought that having ingredients in 2 different containers would complicate the sorting, wouldn't it? –  finspin Jul 2 '12 at 7:22
    
@finspin For sorting you could just detach them from the containers, sort them, and place them back to ingredients container. When are you doing the sorting anyway? –  Esailija Jul 2 '12 at 7:31
    
@Esailija I'm currently doing sorting when I retrieve the ingredients from the database (at localhost:8000/ingredients and localhost:8000/ingrs). So the ajax response is an html list that is already sorted. –  finspin Jul 2 '12 at 7:38
    
@finspin Right, this won't have any effect on the sorting done in database. –  Esailija Jul 2 '12 at 7:40
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Use .append

 $('.ingredients').append(result);
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That wouldn't work, see the reasoning in my last paragraph. –  finspin Jul 2 '12 at 7:23
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see if this is the answer underscore js template

what you need to do is not passing html back, but passing json back, and using js template to render it at the browser.

some fake code:

var global_ingredients = [];
var list = "<% _.each(ingredients, function(ingredient) \
           { %> <li><%= ingredient.name %></li> <% }); %>;";

$.post('', postdata, function(ingredients){
    global_ingredients.push(ingredients); 
    // here you could also eliminate duplicated ingredients, 
    // sort the ingredients, do whatever you likes
    var new_html = _.template(list,  global_ingredients); 
    $('.ingredients').html(new_html);
});
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