14

I have a large block of text, and I would like to find out the most common words being used (except for a few, like "the", "a", "and", etc).

How would I go about searching this block of text for its most commonly used words?

26

You should split the string into words, then loop through the words and increment a counter for each one:

var wordCounts = { };
var words = str.split(/\b/);

for(var i = 0; i < words.length; i++)
    wordCounts["_" + words[i]] = (wordCounts["_" + words[i]] || 0) + 1;

The "_" + allows it to process words like constructor that are already properties of the object.

You may want to write words[i].toLowerCase() to count case-insensitively.

  • 1
    Just out of curiosity -- did you have this snippet laying around somewhere, or did you come up with the solution just for this answer? Either way, it's awesome. :) – Daniel Szabo Jul 3 '11 at 20:33
  • @ajax: I created it on the spot. Thanks! – SLaks Jul 3 '11 at 20:35
  • Hey thanks a lot, I was just wondering, could you explain the /\b/ argument? That's a regular expression yes? – j.s Jul 3 '11 at 20:49
  • 1
    Yes. It matches a word boundary - the break between two words or a word and a non-word. – SLaks Jul 3 '11 at 20:57
  • 1
    i'm getting _Never: NaN not sure why i'm getting NaN ? – mcgrailm Nov 29 '11 at 4:19
0

Coming from the future, where this question was asked again, but I started too early with the solution and it was marked as answered. Anyway, it's a complement of the answer of SLaks.

function nthMostCommon(string, ammount) {
    var wordsArray = string.split(/\s/);
    var wordOccurrences = {}
    for (var i = 0; i < wordsArray.length; i++) {
        wordOccurrences['_'+wordsArray[i]] = ( wordOccurrences['_'+wordsArray[i]] || 0 ) + 1;
    }
    var result = Object.keys(wordOccurrences).reduce(function(acc, currentKey) {
        /* you may want to include a binary search here */
        for (var i = 0; i < ammount; i++) {
            if (!acc[i]) {
                acc[i] = { word: currentKey.slice(1, currentKey.length), occurences: wordOccurrences[currentKey] };
                break;
            } else if (acc[i].occurences < wordOccurrences[currentKey]) {
                acc.splice(i, 0, { word: currentKey.slice(1, currentKey.length), occurences: wordOccurrences[currentKey] });
                if (acc.length > ammount)
                    acc.pop();
                break;
            }
        }
        return acc;
    }, []);
    return result;
}

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