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I am using the following code to filter my results by using checkboxes. It displays the results which have checked items in common:

$('input').change(function() {

    var room_array = new Array(),
        loc_array = new Array();
    $('.br').each(function() {
        if ($(this).is(':checked')) {
            room_array.push($(this).data('bedrooms'));
        }
    });
    $('.loc').each(function() {
        if ($(this).is(':checked')) {
            loc_array.push($(this).data('location'));
        }
    });
    //console.log(loc_array, room_array);
    $('li').each(function() {
        if ($.inArray($(this).data('location'), loc_array) > -1 && $.inArray($(this).data('bedrooms'), room_array) > -1) {
            $(this).show();
        } else {
            $(this).hide();
        }
    });
});
<input data-bedrooms="1" class="br" type="checkbox">1 bedroom<br>
<input data-bedrooms="2" class="br" type="checkbox">2 bedrooms<br>
<input data-bedrooms="3" class="br" type="checkbox">3 bedrooms<br><br>

<input data-location="london" class="loc" type="checkbox">london<br>
<input data-location="new-york" class="loc" type="checkbox">new york<br>
<input data-location="paris" class="loc" type="checkbox">paris<br><br>    

<ul>
    <li data-bedrooms="1"  data-location="paris">1 bedroom apartment paris</li>
    <li data-bedrooms="1" data-location="paris">1 bedroom apartment</li>
        <! -- similar combinations -->
    <li data-bedrooms="2" data-location="new-york">2 bedroom apartment new yor</li>
</ul>

JSFiddle

The problem is that when only 1 type of checkbox is selected, the results for that checkbox don't display.

However, I want to allow the selection of only one type, e.g. either the number of bedrooms or the location. How can I achieve this?

share|improve this question
    
Id suggest you change your code so that the data about the results are stored as JavaScript and then translate that to HTML with simple function, this would allow you to filter the results easily. –  Luka Aug 1 '12 at 14:50

2 Answers 2

up vote 2 down vote accepted

Replace

if ($.inArray($(this).data('location'), loc_array) > -1 && $.inArray($(this).data('bedrooms'), room_array) > -1) {

With

if (($.inArray($(this).data('location'), loc_array) > -1 || !$('.loc:checked').length) && ($.inArray($(this).data('bedrooms'), room_array) > -1 || !$('.br:checked').length)) {

To accept any value for a group when that group has no checked checkboxes.

By the way, your fiddle had two entries for

<li data-bedrooms="2" data-location="paris">2 bedroom apartment paris</li>

I changed one of them to london as your first example suggested.

jsFiddle

share|improve this answer

this line

if ($.inArray($(this).data('location'), loc_array) > -1 && $.inArray($(this).data('bedrooms'), room_array) > -1)

should be

if ($.inArray($(this).data('location'), loc_array) > -1 || $.inArray($(this).data('bedrooms'), room_array) > -1)
share|improve this answer
    
This will result in too many entries being shown: jsfiddle.net/YEtgM/16. –  Zeta Aug 1 '12 at 14:54
    
how so? can you give the example that proves this? –  malificent Aug 1 '12 at 15:01
2  
Check "1 bedroom" and "paris". It should result only in two entries with "1 bedroom apartment paris", but it also shows London and some "2 bedroom apartments" in Paris. –  Zeta Aug 1 '12 at 15:04
    
ah, i see...good catch –  malificent Aug 1 '12 at 15:05

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