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.

Hy! I'm using twitter bootstraps typeahead:

I'm calling a page that returns a response with json_encode the page returns a name and an ID,

I want that the typeahead list will show me the list of names, and when I select one of the name to write the id value to a hidden field.

the calling works fine, and to write a field should be easy. what i dont know what to do is how to divide the name from the id.

now, when i search something, in the suggesstion list I can see the returning results like this:

name1:id1 name2:id2

i only want to see names but to carry the value of id too.

how can i do that?

 $(function(){
    $("#typeahead_<? print $key; ?>").typeahead(
        {
        source: function(query, process)
                    {
                    $.ajax({
                        url:    '/getAjaxProducts',
                        type:   'POST',
                        data:   'query=' + query,
                        dataType: 'JSON',
                        async: true,
                        success: function(data)
                                {
                                process(data);
                                }
                            });                 
                    }
        });
});
share|improve this question

5 Answers 5

up vote 14 down vote accepted

A typical JSON document that contains name/ID pairs is going to look like this:

[
  {
    "id": 1
    "name": "firstName"
  },
  {
    "id": 2
    "name": "secondName"
  }
]

The strategy here is to build an object literal that maps names to IDs as you parse the result, while only using the name to populate the typeahead:

var productNames = new Array();
var productIds = new Object();
$.getJSON( '/getAjaxProducts', null,
        function ( jsonData )
        {
            $.each( jsonData, function ( index, product )
            {
                productNames.push( product.name );
                productIds[product.name] = product.id;
            } );
            $( '#product' ).typeahead( { source:productNames } );
        } );

Once the user selects an item from the typeahead, you can reference the selected item with:

$( '#product' ).val()

and you can get the ID associated with the selected item with:

productIds[$( '#product' ).val()]

From your question, it looks like your JSON document may be structured a little bit differently, so you would change the parsing as appropriate, but the same general strategy applies.

share|improve this answer
7  
This solution implies that the names are unique. In most cases they probably are, but I felt that I needed to point that out. –  RickardN Jun 12 '13 at 10:10
    
With the latest typeahead.js it's local:productNames rather than source:productNames. –  Dunc Dec 4 '13 at 12:25
    
What if names aren't unique? is there a solution for that? –  magicrebirth Jan 11 at 12:50
    
I can't imagine what the use-case would be for a situation where the names are not unique. This means you would have two identical options in the dropdown, with no means for the end-user to differentiate between them. How would the user know what to select? –  cepage Jan 15 at 21:11
......updater: function (item) {
        var item = JSON.parse(item);
        console.log(item.name); 
        $('#VehicleAssignedTechId').val(item.id);       
        return item.name;
    }

On updater of the typeahead call you can put as above code which allows you to add selcted value in the textbox or where you have to put its value in other hidden field.

Full ajax call is as below:

$('#VehicleAssignedTechName').typeahead({
    source: function(query, process) {
        var $url =SITE_URL+ 'api/vehicle_techfield_typeahead/' + query + '.json';
        var $items = new Array;
        $items = [""];
        $.ajax({
            url: $url,
            dataType: "json",
            type: "POST",
            success: function(data) {
                console.log(data);
                $.map(data, function(data){
                    var group;
                    group = {
                        id: data.id,
                        name: data.name,                            
                        toString: function () {
                            return JSON.stringify(this);
                            //return this.app;
                        },
                        toLowerCase: function () {
                            return this.name.toLowerCase();
                        },
                        indexOf: function (string) {
                            return String.prototype.indexOf.apply(this.name, arguments);
                        },
                        replace: function (string) {
                            var value = '';
                            value +=  this.name;
                            if(typeof(this.level) != 'undefined') {
                                value += ' <span class="pull-right muted">';
                                value += this.level;
                                value += '</span>';
                            }
                            return String.prototype.replace.apply('<div style="padding: 10px; font-size: 1.5em;">' + value + '</div>', arguments);
                        }
                    };
                    $items.push(group);
                });

                process($items);
            }
        });
    },
    property: 'name',
    items: 10,
    minLength: 2,
    updater: function (item) {
        var item = JSON.parse(item);
        console.log(item.name); 
        $('#VehicleAssignedTechId').val(item.id);       
        return item.name;
    }
});
share|improve this answer

I noticed when using this code that if the match included the letters 'st', the typeahead suggestions include the style tag in the typeahead suggestions.

For example the suggested matches would show

style="padding: 10px; font-size: 1.5em;">standard

instead of

standard

I changed the replace function to this:

replace: function (string) {
  return String.prototype.replace.apply(this.name, arguments);
}

Obviously you lose the additional formatting, but it doesn't break on 'st' matches (I assume it would also break on 'di', or other substrings of the div tag.

share|improve this answer

I had the same issue when i tried to process username and id.I had a tricky fix but later on i have fixed it with proper solution.

Have a look at this one,

$('#search').typeahead({
 source: function(query, process) {
 var $url = "/controller/function/list_users/?q="+query;
 var $datas = new Array;
 $datas = [""];
 $.ajax({
 url: $url,
 dataType: "json",
 type: "GET",
 success: function(data) {
 $.map(data, function(data){
 var group;
 group = {
 id: data.id,
 name: data.user_name,
 toString: function () {
 return JSON.stringify(this);
 //return this.variable;
 },
 toLowerCase: function () {
 return this.name.toLowerCase();
 },
 indexOf: function (string) {
 return String.prototype.indexOf.apply(this.name, arguments);
 },
 replace: function (string) {
 var value = '';
 value += this.name;
 if(typeof(this.name) != 'undefined') {
 value += ' <span class="pull-right muted">';
 //value += this.name;
 value += '</span>';
 }
 return String.prototype.replace.apply('<div style="padding: 10px; font-size: 1em;">' + value + '</div>', arguments);
 }
 };
 $datas.push(group);
 });
process($datas);
 }
 });
 },
 property: 'user_name',
 items: 10,
 minLength: 2,
 updater: function (item) {
 var item = JSON.parse(item);
 $('#hiddenId').val(item.id);
 $('#username').val(item.name);
//you can perform your actions here
//example</p>
//location = '/controller/function/'+item.id+'/edit';
 //document.redirect = location;
}
});

look at this link also.

http://vaisakhvm.wordpress.com/2013/07/31/twitter-bootstrap-typeahead-process-multiple-values/

share|improve this answer
    
Kleopatra: ok, I understand. –  ysk Jul 31 '13 at 12:01

Sorry to "resurect" this post but i was going to be crazy !

If some of you have problems using theses sample codes ( none of them were working, all were returning "Undefined" instead of showing the name

Just add

displayKey: 'name',

Replace of course 'name' by your label var name returned by your remote source

( Quite hard to find up to date samples on it, most of samples found on the net are for the previous version of typeahead and not compatibles with new ones ... )

share|improve this answer

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.