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I have a map in my java sevlet and converting it to a json format that works right.

When I do this function below it creates a drop down, but it puts every character as an option?? This is what I got:

$(document).ready(function(){
    var temp= '${temp}';
    //alert(options);
    var $select = $('#down');                        
    $select.find('option').remove();                          
    $.each(temp, function(key, value) {              
        $('<option>').val(key).text(value).appendTo($select);     
    });
});

map content in JSON format

{"1" : "string","2" : "string"}
share|improve this question
    
Are you sure the temp variable is correct? – FishBasketGordo May 8 '13 at 13:52
1  
You are not reading a json object but a string so $.each is getting each letter of a string. Try to console.log(temp); so u can have an idea of object you are dealling with – joao May 8 '13 at 13:52
2  
You may need to also do a JSON.parse of your temp variable to convert it from a string to an actual js object. – Colin DeClue May 8 '13 at 14:00
    
@ColinDeClue ..Yep...that did it! – Doc Holiday May 8 '13 at 14:11
up vote 31 down vote accepted

I would do something like this:

$.each(temp,function(key, value) 
{
    $select.append('<option value=' + key + '>' + value + '</option>');
});

JSON structure would be appreciated. At first you can experiment with find('element') - it depends on JSON.

share|improve this answer
3  
it should be $.each(temp,function(key, value) – NullPointerException May 8 '13 at 13:58
    
temp is not a jQuery object... it doesn't have .each or .find. – Colin DeClue May 8 '13 at 13:59
    
Yep, code edited. – webrama.pl May 8 '13 at 14:00

Only change the DOM once...

var listitems;
$.each(temp, function(key, value){
    listitems += '<option value=' + key + '>' + value + '</option>';
});
$select.append(listitems);
share|improve this answer
    
Best for performance – Jimmy Kane Apr 29 '15 at 8:50
5  
You must do var listitems = ''; or else you get an undefined on concat – Jimmy Kane Apr 29 '15 at 9:04

A solution is to create your own jquery plugin that take the json map and populate the select with it.

(function($) {     
     $.fn.fillValues = function(options) {
         var settings = $.extend({
             datas : null, 
             complete : null,
         }, options);

         this.each( function(){
            var datas = settings.datas;
            if(datas !=null) {
                $(this).empty();
                for(var key in datas){
                    $(this).append('<option value="'+key+'"+>'+datas[key]+'</option>');
                }
            }
            if($.isFunction(settings.complete)){
                settings.complete.call(this);
            }
        });

    }

}(jQuery));

You can call it by doing this :

$("#select").fillValues({datas:your_map,});

The advantages is that anywhere you will face the same problem you just call

 $("....").fillValues({datas:your_map,});

Et voila !

You can add functions in your plugin as you like

share|improve this answer

fiddle

var $select = $('#down'); 
$select.find('option').remove();  
$.each(temp,function(key, value) 
{
    $select.append('<option value=' + key + '>' + value + '</option>');
});
share|improve this answer
    
That'd work the same as what he already has. There's something wrong with his temp variable, not with how he's generating the options. – Colin DeClue May 8 '13 at 13:58
    
exactly.....I got the same thing – Doc Holiday May 8 '13 at 14:00
1  
If the JSON Map he posted is correct then the code should run fine – NullPointerException May 8 '13 at 14:02
    
print your temp console.log(temp); and see if it is a valid JSON or not – NullPointerException May 8 '13 at 14:05

I just used the javascript console in Chrome to do this. I replaced some of your stuff with placeholders.

var temp= ['one', 'two', 'three']; //'${temp}';
//alert(options);
var $select = $('<select>'); //$('#down');                        
$select.find('option').remove();                          
$.each(temp, function(key, value) {              
    $('<option>').val(key).text(value).appendTo($select);
});
console.log($select.html());

Output:

<option value="0">one</option><option value="1">two</option><option value="2">three</option>

However it looks like your json is probably actually a string because the following will end up doing what you describe. So make your JSON actual JSON not a string.

var temp= "['one', 'two', 'three']"; //'${temp}';
//alert(options);
var $select = $('<select>'); //$('#down');                        
$select.find('option').remove();                          
$.each(temp, function(key, value) {              
    $('<option>').val(key).text(value).appendTo($select);
});
console.log($select.html());
share|improve this answer

I believe this can help you:

$(document).ready(function(){
    var temp = {someKey:"temp value", otherKey:"other value", fooKey:"some value"};
    for (var key in temp) {
        alert('<option value=' + key + '>' + temp[key] + '</option>');
    }
});
share|improve this answer

That work fine in Ajax call back to update select from JSON object

function UpdateList() {
    var lsUrl = '@Url.Action("Action", "Controller")';

    $.get(lsUrl, function (opdata) {

        $.each(opdata, function (key, value) {
            $('#myselect').append('<option value=' + key + '>' + value + '</option>');
        });
    });
}
share|improve this answer

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