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I have an array of people's names along with their knowledge of languages. What I want to do is pass a filter onto the language column and filter out any results that don't match.

This is the sample array

   var myArray = [["Steppen", "Spanish Polish"],
                  ["Wolf", "Spanish Polish Tagalog"],
                  ["Amanda", "Spanish"],
                  ["Ada", "Polish"],
                  ["Rhonda", "Spanish Tagalog"]];

As far as passing in filters, it could be either one language or many. Even if one language from a filter matches - the result should be returned. So for example, a filter of "Tagalog" should return - Wolf and Rhonda. A filter of "Spanish Polish" should return everyone - there's either a match in Spanish or Polish.

I wrote the filter function but for some reason it's getting stuck, when I pass the filter "Tagalog" it only iterates to the second cell in the array (Spanish Polish Tagalog) and repeats itself multiple times instead of going forward.

What am I doing wrong, should I be iterating differently?

 var userPassedFilter = new Array();
 userPassedFilter[0] = "Tagalog";

 newArray = consolidatedFilters(myArray, userPassedFilter);
 console.log(newArray);

 function consolidatedFilters(passedArray, passedFilter)
 {
 var filteredArray = passedArray.filter(    
    function(el)
    {
        for (var i = 0; i < passedArray.length; i++)
         {
            console.log("i is " + i);
             for (var j in passedFilter)
            {
                console.log("Passed Filter j " + passedFilter[j]);
                console.log("Passed Array  i " + passedArray[i][1]);        
                console.log("String Search " + passedArray[i][1].search(passedFilter[j]));

                if (passedArray[i][1].search(passedFilter[j]) != -1)
                {
                    return true;
                }
            }           
        }
         return false;
    }
 );     
 return filteredArray;
 }
share|improve this question
    
you should look into using jQuery.each() api.jquery.com/jQuery.each –  John Hartsock Sep 8 '11 at 20:17
    
Are you using jQuery's .filter or the native array's .filter? It looks like passedArray is the array you described, which is not a jQuery object. –  pimvdb Sep 8 '11 at 20:18
    
I'm using jQuery's .filter(function) to return the array that I want based on the passedFilter. passedArray is just the sample array I described above. –  firedrawndagger Sep 8 '11 at 20:21
    
@firedrawndagger: I'm not sure I understand. If passedArray is that array, then passedArray.filter is not the jQuery version at all. It's the built-in .filter. [...].filter is the native one, $(...).filter is the jQuery one. –  pimvdb Sep 8 '11 at 20:22
    
@pimvdb you're right, I totally confused that. It is is the native JavaScript filter. –  firedrawndagger Sep 8 '11 at 20:26

1 Answer 1

up vote 6 down vote accepted

To me it seems like you're making it a little too complicated.

  1. Iterating three times (filter, for loop, for in loop).
  2. Using a for in loop for an array.
  3. Using both new Array and [...].

I updated it a little and it looks like this is what you want: http://jsfiddle.net/pimvdb/RQ6an/.

var myArray = [["Steppen", "Spanish Polish"],
              ["Wolf", "Spanish Polish Tagalog"],
              ["Amanda", "Spanish"],
              ["Ada", "Polish"],
              ["Rhonda", "Spanish Tagalog"]];

var userPassedFilter = ["Tagalog"];

newArray = consolidatedFilters(myArray, userPassedFilter);
console.log(newArray);

function consolidatedFilters(passedArray, passedFilter) {
    var filteredArray = passedArray.filter(
    function(el) { // executed for each person
        for (var i = 0; i < passedFilter.length; i++) { // iterate over filter
            if (el[1].indexOf(passedFilter[i]) != -1) {
                return true; // if this person knows this language
            }
        }
        return false;
    }
    );     
    return filteredArray;
}
share|improve this answer
    
Yeah indeed, thanks for simplifying the code and the returned result is exactly what I was looking for. –  firedrawndagger Sep 8 '11 at 20:39

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