16

Consider the following simple array:

var foods = ['hotdog', 'hamburger', 'soup', 'sandwich', 'hotdog', 'watermelon', 'hotdog'];

With underscore, is there a function or combination of functions I can use to select the most frequently occurring value (in this case it's hotdog)?

42

var foods = ['hotdog', 'hamburger', 'soup', 'sandwich', 'hotdog', 'watermelon', 'hotdog'];
var result = _.chain(foods).countBy().pairs().max(_.last).head().value();
console.log(result);
<script src="https://cdnjs.cloudflare.com/ajax/libs/underscore.js/1.8.3/underscore.js"></script>

countBy: Sorts a list into groups and returns a count for the number of objects in each group.

pairs: Convert an object into a list of [key, value] pairs.

max: Returns the maximum value in list. If an iterator function is provided, it will be used on each value to generate the criterion by which the value is ranked.

last: Returns the last element of an array

head: Returns the first element of an array

chain: Returns a wrapped object. Calling methods on this object will continue to return wrapped objects until value is used.

value: Extracts the value of a wrapped object.

  • 3
    This is very clever :-D – Rocket Hazmat Sep 18 '13 at 17:35
  • Maybe omit the .head so that one does get the count as well: ["hotdog", 3] – Bergi Sep 18 '13 at 17:36
  • 5
    I'd suggest max(_.last) instead of the lambda. – georg Sep 18 '13 at 17:37
  • @thg435 Good call, updated. Thanks. – soldier.moth Sep 18 '13 at 18:20
  • 3
    If you're using lodash, replace .pairs() with .toPairs() and .max to .maxBy – Alex0007 Feb 11 '16 at 22:10
4

You can do this in one pass using _.reduce. The basic idea is to keep track of the word frequencies and the most common word at the same time:

var o = _(foods).reduce(function(o, s) {
    o.freq[s] = (o.freq[s] || 0) + 1;
    if(!o.freq[o.most] || o.freq[s] > o.freq[o.most])
        o.most = s;
    return o;
}, { freq: { }, most: '' });

That leaves 'hotdot' in o.most.

Demo: http://jsfiddle.net/ambiguous/G9W4m/

You can also do it with each (or even a simple for loop) if you don't mind predeclaring the cache variable:

var o = { freq: { }, most: '' };
_(foods).each(function(s) {
    o.freq[s] = (o.freq[s] || 0) + 1;
    if(!o.freq[o.most] || o.freq[s] > o.freq[o.most])
        o.most = s;
});

Demo: http://jsfiddle.net/ambiguous/WvXEV/

You could also break o into two pieces and use a slightly modified version of the above, then you wouldn't have to say o.most to get 'hotdog'.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.