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.

I am so glad there are places like this so that people can have their problems answered, even for beginners like me! I have no clue were to go from here.

I am trying to create an interdependent that lists car makes, car models, year, driver and scale.

I have created the fields and I can populate the car makes and car models, depending on the selection made. I am stuck on how to populate the 'year' field depending on the selections made in the previous boxes. I understand that the first box needs a function. Here is my code"

HTML:

<form name="selectionForm">
    <select name="makes" id="makes" size="3" style="width:125px">
        <option selected>Select a Make>></option>
    </select>
    <select name="models" id="models" size="3" style="width:125px"></select>
    <select name="years" id="years" size="3" style="width:125px"></select>
    <select name="drivers" id="drivers" size="3" style="width:125px"></select>
    <select name="scales" id="scales" size="3" style="width:125px"></select>
</form>

JavaScript:

jQuery(function($) {
    initModels();

    function initModels() {
        var makesAndModels = {
            'Ford': ['Fiesta', 'Focus', 'Mondeo'],
            'Vauxhall': ['Astra', 'Cavalier', 'Vectra']
        };

        // Populate makes
        $.each(makesAndModels, function (k, v) {
            $('#makes').append('<option>' + k + '</option>');
        });

        // Populate models
        $('#makes').change(function() {
            var $models = $('#models');

            $models.html("");

            var models = makesAndModels[$(this).val()];

            $.each(models, function (k, v) {
                $models.append('<option>' + v + '</option>');
            });
        });
    }
});

I would much appreciate some direction from yourselves because I have no clue where to go from here.

share|improve this question
    
What does the data for year, drivers, and scale look like? Without the data, it's hard to write a solution. –  Christian Varga Apr 9 '12 at 1:39
    
I will try to show how I want is to display in the boxes Vauxhall>>Astra>>2002>>James Thompson>>1:43 Vauxhall>>Vectra>>2000>>Jason Plato>>1:18 Ford>>Mondeo>>1998>>Nigel Mansell>>1:43 It would be great if you could create the select list with these options because there is alot more information to be put in. If you could show me how to lay the code out, I will fill in the rest of the information. –  Frank Mead Apr 9 '12 at 18:39
add comment

2 Answers 2

Ok, so this is a long answer, and has taken me a long time to prepare, so bear with me (and get ready). Also, there is a jsFiddle below if you don't want to read this essay.

You'll be much better off storing each car as an individual object. If you have a database (or plan to have on in the future), this is how your data will be stored. Nested arrays also get exponentially painful, so it's best to stay clear of them. So to begin, we'll change your data structure to this:

var vehicles = [
    { make: 'Ford', model: 'Fiesta', year: '2001', driver: 'me', scale: '1:43' },
    { make: 'Ford', model: 'Fiesta', year: '2005', driver: 'me', scale: '1:33' },
    { make: 'Ford', model: 'Focus', year: '1999', driver: 'you', scale: '1:18' },
    { make: 'Ford', model: 'Modeo', year: '1998', driver: 'Nigel Mansell', scale: '1:43' },
    { make: 'Vauxhall', model: 'Astra', year: '2002', driver: 'James Thompson', scale: '1:43' },
    { make: 'Vauxhall', model: 'Vectra', year: '2000', driver: 'Jason Plato', scale: '1:18' }
];

First thing's first, pre-propuate the initial makes select box:

var makes = get_distinct(vehicles, 'make');
$.each(makes, function(index, value) {
   $('select#make').append('<option value="' + value + '">' + value + '</option>')
});

Once you've that, you need to set up a way to filter the data. You'll need functions for filtering the vehicles by the selected options, and getting distinct values. The below filter_vehicles() is horrible, but I'm tired and it's late, so it'll have to do. You'd be better off making this dynamic, and there'll be an easy solution, but my brain is fried right now.

function filter_vehicles() {
    return $.grep(vehicles, function(n, i) {
        if ($('#driver').val() != '')
            return n.make == $('#make').val() && n.model == $('#model').val() && n.year == $('#year').val() && n.driver == $('#driver').val();
        if ($('#year').val() != '')
            return n.make == $('#make').val() && n.model == $('#model').val() && n.year == $('#year').val();
        if ($('#model').val() != '')
            return n.make == $('#make').val() && n.model == $('#model').val();
        else
            return n.make == $('#make').val();
    });
}

// returns distinct properties from an array of objects
function get_distinct(array, property) {
   var arr = [];

   $.each(array, function(index, value) {
       if ( $.inArray(value[property], arr) == -1 ) {
           arr.push(value[property]);
       }
   });

   return arr;
}

Then you'll need to update the select boxes. You can do it manually by targeting the change event on each individual select box, but you can also do it dynamically by attaching an event to all select boxes. I prefer this method, because it adds no overhead when adding additional fields.

$('select').change(function() {
    // don't execute if this is the last select element
    if ($(this).is(':last')) return;

    // clear all of the following select boxes, leaving a blank option
    $(this).nextAll().html('<option></option>');

    // get list of vehicles filtered by all the previous parameters
    var filtered_vehicles = filter_vehicles();

    // get the next select element
    var next = $(this).next();

    // get the distinct values from our list of filtered vehicles
    var values = get_distinct(filtered_vehicles, next.attr('id'));

    // append our options
    $.each(values, function(index, value) {
        next.append('<option value="' + value + '">' + value + '</option>')
    });
});

All in all, you'll get something like this jsFiddle: http://jsfiddle.net/8FHZK/

This is all easier in SQL. So if you do have a database, you'd execute queries on the server to return the filtered set, which cuts out a bit of the yucky code above.

I have no idea why I wrote all this manually, because there's probably a jQuery plugin that already does it all (and better). But hey, it's done, I had fun, and all the code is commented to assist in your learning :)

share|improve this answer
    
This is absolutely amazing!!! Many, many, MANY thanks!!! I can tell you put alot into this. I feel really bad about asking another question, but... I am trying to put the javascript in to a page I have applied a template to... When I preview the page, the select lists do not work. Is there a <script> I am using incorrectly for the data to not populate the lists? –  Frank Mead Apr 10 '12 at 18:55
    
Have you got a link to the page where it's not working? It could be a few things. Check the console (using Firebug or Chrome developer tools) for any errors, and also chuck in some console.log() throughout the code to see if you can pinpoint the error. –  Christian Varga Apr 11 '12 at 0:44
    
I have replicated the problem I am having by selecting AngularJS 1.0.1 in the dropdown menu in the JSFiddle link at the top of your answer. The dropdown menus do not get populated with the options listed in the javascript. However, obviously it works in jQuery. Can anyone help me to get this feature working? –  Frank Mead Sep 11 '12 at 16:07
    
That's because the code I wrote specifically used jQuery. You can use angularJS and jQuery side by side. Please don't unaccept answers when you change your code; instead post new questions. No one sees it. –  Christian Varga Nov 12 '12 at 19:35
    
I apologies for all the confusion but I am having trouble in getting your code to work still. Just to be completely sure, where/how do you put your code for the webpage to accept and understand it to make it work? Is it added to the page you want it to work on or is it put in a seperate file and linked to the other page? –  Frank Mead Jan 8 '13 at 23:56
show 5 more comments
$('#years').change(function() {
  //do something like Populate models....
}

So, what's the difference?

share|improve this answer
add comment

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.