9

I have an array that I put together in jQuery and I'm wondering if there is a way that I could find the number of occurrences of a given term. Would I have better results if I tried creating a string instead?

37

If you have an array like this:

var arr = [1, 2, 3, 4, 3, 2, 1];

And set your target value:

var target = 1;

Then you can find the number of occurences of target using:

var numOccurences = $.grep(arr, function (elem) {
    return elem === target;
}).length; // Returns 2
  • 1
    ooh, shiny. I've got to take note of this. Never did get around to using $.grep() much. +1 – Richard Neil Ilagan Apr 14 '11 at 4:34
  • 2
    +1 Nice use of grep() utility. – alex Apr 14 '11 at 4:35
3

You can probably do like this -

var myArray = ['a','fgh','dde','a3e','rra','ab','a'];
var occurance = 0;
var lookupVal = 'a';
$(myArray).each(function (index, value) {
     if(value.indexOf(lookupVal)!= -1) 
     {
        occurance++;
     }
});
3

Method with $.grep() is more readable and contains fewer lines but it seems more performant with a little more lines in native javascript :

var myArray = ["youpi", "bla", "bli", "blou", "blou", "bla", "bli", "you", "pi", "youpi", "yep", "yeah", "bla", "bla", "bli", "you", "pi", "youpi", "yep", "yeah", "bla", "bla", "bli", "you", "pi", "youpi", "yep", "yeah", "bla", "bla", "bli", "you", "pi", "youpi", "yep", "yeah", "bla"];

// method 1 
var nbOcc = 0;
for (var i = 0; i < myArray.length; i++) {
  if (myArray[i] == "bla") {
    nbOcc++;
  }
}
console.log(nbOcc); // returns 9


// method 2
var nbOcc = $.grep(myArray, function(elem) {
  return elem == "bla";
}).length;
console.log(nbOcc); // returns 9

Js performances are available here : http://jsperf.com/counting-occurrences-of-a-specific-value-in-an-array

1
var x = [1,2,3,4,5,4,4,6,7];
var item = 4;
var itemsFound = x.filter(function(elem){
                            return elem == item;
                          }).length;

Or

var itemsFound = $.grep(x, function (elem) {
                              return elem == item;
                           }).length;

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