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I previously posted this question as jquery/javascript: arrays - http://stackoverflow.com/questions/3969576/jquery-javascript-arrays. But since I am a complete beginner I have formulated the question wrong and didn't understand the answers either.... :(

After failing to implement the given solutions I did some more looking around I found out that I need to compare 6 arrays of possible choices and intersect them to finally display only the overlapping values.

So this is, hopely, a clearer formulation:

I have 6 questions/6 groups of radio buttons for answers. Each answer has multiple values (they can range from 1 to 38 items to be displayed in final 'advice'). I am collecting the values of checked radios in arrays. I get 6 arrays.

How do I intersect 6 arrays in order to get one final array containing only intersecting values form all 6 choices? How do I turn items of this final array into selectors?

Can someone please help me? Thank you!

My script looks now like:

(function($){
  $.fn.checkboxval = function(){
      var outArr = [];
      this.filter(':checked').each(function(){
            outArr.push(this.getAttribute("value"));
      });
      return outArr;
  };
})
(jQuery);
$(function(){
  $('#link').click(function(){
    var valArr1 = $('#vraag1 input:radio:checked').checkboxval();
    var valArr2 = $('#vraag2 input:radio:checked').checkboxval();
    var valArr3 = $('#vraag3 input:radio:checked').checkboxval();
    var valArr4 = $('#vraag4 input:radio:checked').checkboxval();
    var valArr5 = $('#vraag5 input:radio:checked').checkboxval();
    var valArr6 = $('#vraag6 input:radio:checked').checkboxval();
// var newArray = $.merge(valArr1, valArr2, valArr3, valArr4, valArr5, valArr6); <- test to see if I can merge them
// $('#output').text(newArray.join(',')); <- test to see if I can join them
//$("#output").html($("#output").html().replace(/,/gi, ',#diet')); <- test to see if I can append text so it looks like the selectors of divs I need to display later
//    return false;
  });
});

my form/inputs looks like:

<input name="vraag1" type="radio" value="1a,4,5,12,13,17a,18,19,22,23,24,26,27,28,29,30,33,38,6" class="radio advice" id="vraag1-0" /><label for="vraag1-0">ja</label>
<br />
<input name="vraag1" type="radio" value="1b,1,2,3,7,8,11,9,14,15,16,17,20,21,25,31,34,35,36,37,10,32" class="radio advice" id="vraag1-1" /><label for="vraag1-1">nee</label>
<br />
<input name="vraag1" type="radio" value="1c,1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,17a,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34,35,36,37,38" class="radio advice" id="vraag1-2" /><label for="vraag1-2">maakt mij niet uit</label>
share|improve this question
    
Would this not be $('#vraagX input:radio:checked').val(); and not checkboxval() ? –  mplungjan Oct 23 '10 at 10:28
    
@mplungjan: when i change var valArr1 = $('#vraag1 input:radio:checked').checkboxval(); to var valArr1 = $('#vraag1 input:radio:checked').val(); it doesn't return any values –  tschardak Oct 23 '10 at 11:33
    
Sorry, did you have function checkboxval when I commented???? If so my bad. However it filters and so does the call to it so at least that is a waste –  mplungjan Oct 23 '10 at 13:22
    
nevermind. and yes, i agree with you, but lacking the better knowledge i've put it together like that. any hints on how to intersect 6 arrays? thank you. –  tschardak Oct 23 '10 at 13:34

5 Answers 5

up vote 0 down vote accepted

Your question is still very confusing to me.

But it appears you are getting the value from the inputs and trying to combine them. But they are all strings not arrays.

Try just adding the strings together, then breaking them apart using split() (demo)

$('#link').click(function() {
    var radios = '';
    $('input:radio:checked').each(function() {
        radios += $(this).val() + ',';
    })
    // remove last comma & convert to array
    radios = radios.substring(0, radios.length - 1).split(',');
    // do something with the array
    console.debug(radios);
})

Update: Ok, from your demo HTML, I couldn't get 6 duplicates so in the demo I set it to find 3+ matches. I had to write this script to find duplicates in an array I also made it to return an associative object with the number of duplicates. There may be a better method, but this is what I came up with (updated demo):

$(function() {
    $('#link').click(function() {
        var radios = '';
        $('input:radio:checked').each(function() {
            radios += $(this).val() + ',';
        })
        // remove last comma & convert to array
        var results = [],
            dupes = radios
             .substring(0, radios.length - 1)
             .split(',')
             .getDuplicates(),
            arr = dupes[0],
            arrobj = dupes[1],
            minimumDuplicates = 6; // Change this to set minimum # of dupes to find

        // find duplicates with the minimum # required
        for (var i=0; i < arr.length; i++){
            if ( arrobj[arr[i]] >= minimumDuplicates ){
                results.push(arr[i]);
            }
        }

        // Show id of results
        var diets = $.map(results, function(n,i){ return '#diet' + n; }).join(',');
        $(diets).show(); // you can also slideDown() or fadeIn() here
    })
});


/* Find & return only duplicates from an Array
 * also returned is an object with the # of duplicates found
 * myArray = ["ccc", "aaa", "bbb", "aaa", "aaa", "aaa", "aaa", "bbb"];
 * x = myArray.getDuplicates();
 * // x = [ array of duplicates, associative object with # found]
 * // x = [ ['aaa','bbb'] , { 'aaa' : 5, 'bbb' : 2 } ]
 * alert(x[0]) // x[0] = ['aaa','bbb'] & alerts aaa,bbb
 * alert(x[1]['aaa']) // alerts 5;
 */
Array.prototype.getDuplicates = function(sort) {
    var u = {}, a = [], b = {}, c, i, l = this.length;
    for (i = 0; i < l; ++i) {
        c = this[i];
        if (c in u) {
            if (c in b) { b[c] += 1; } else { a.push(c); b[c] = 2; }
        }
        u[c] = 1;
    }
    // return array and associative array with # found
    return (sort) ? [a.sort(), b] : [a, b];
}
share|improve this answer
    
@fudgey: thanks for you reaction! my aim is to finally get only overlapping values/strings from this 6 inputs. if i understand correctly i need to split the strings, which will give me values?? i wish i knew how to run your code, though... i apologize for my noobness... almost pulling my hair out here... –  tschardak Oct 23 '10 at 14:38
    
Did you look at the demo? Also, when you say overlapping, do you mean that all 6 groups need to have the same number?... this is where it gets confusing because your sample HTML (other question) only has one value in the input whereas your code above have a lot more than one. –  Mottie Oct 23 '10 at 15:02
    
yes, only a numbers (or more numbers) which occurs in all 6 groups need(s) to be returned. there are 6 groups of radios, second one is : –  tschardak Oct 23 '10 at 15:26
    
<input name="vraag2" type="radio" value="2a,1,2,4,5,7,12,13,14,17,17a,19,21,22,23,24,27,28,30,34,35" class="radio advice" id="vraag2-0" /><label for="vraag1-0">eens</label> <br /> <input name="vraag2" type="radio" value="2b,3,8,11,9,15,16,18,20,25,26,29,31,33,35,37,38,6,10,32" class="radio advice" id="vraag2-1" /><label for="vraag1-1">oneens</label> <br /> <input name="vraag2" type="radio" value="2c,1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,17a,18,19,20,21,22,23,24,25,‌​26,27,28,29,30,31,32,33,34,35,36,37,38" class="radio advice" id="vraag2-2" /><label for="vraag1-2">maakt mij niet uit</label> –  tschardak Oct 23 '10 at 15:27
    
What are you doing with the "17" and "17a" are they considered the same? And the reason your question is confusing is like the HTML you just put in the comments.... are those values supposed to represent checked answers? If you put that HTML into the demo, you can only check one radio at a time, so there is no way to get 6 duplicates. –  Mottie Oct 23 '10 at 15:43

If yoou want do do an intersect operation on arrays you can use the jQuery plugin jQuery Array Utilities

Here is an example code line of how to use it:

$.instersect([1, 2, 2, 3], [2, 3, 4, 5, 5])

will return the result [2,3]

share|improve this answer

Was just wondering the same thing and came up with this:

$(["a","b"]).filter(["a","c"])

returns

["a"]
share|improve this answer
    
Amazing! Is this an intended application of .filter? –  David John Smith Mar 21 '13 at 22:55
1  
@david-john-smith The notation above isn't documented, but what is documented is that .filter accepts another jQuery object as a parameter. So $(["a","b"]).filter($(["a","c"])) is perfectly legal. –  Christoph Jun 11 '13 at 7:04
    
Thank you. Great tip! –  Blue Smith Jul 4 '13 at 7:55

With jQuery loaded, you can punch in the console:

a1=[1,2,3]
a2=[2,3,4,5]
$.map(a1,function(a){return $.inArray(a, a2) < 0 ? null : a;})

The output should be:

[2, 3]
share|improve this answer

See Simplest code for array intersection in javascript for an intersection function. Split the strings with split(",") and do an intersection on the resulting arrays of strings.

share|improve this answer

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