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How can we find and count the occurrences in the following sentences?

sentences = [
    'black im yello'
    'green black and white'
    'green green green green green greenana'
    'i have no color'
]

find_char = [
    'green',
    'black',
    'white'
]

should return

output = {
   'sentence 1' : 1 // just black
   'sentence 2' : 3 // green black white
   'sentence 3' : 6 // 5 green and green in 'green'ana
   'sentence 4' : 0
}

Here's my current code

var output = {};

for (var i = sentences.length - 1; i >= 0; i--) {
    var output_tmp = {}; 
    var occurance = 0; 
    for (x = 0; x < find_char.length; x++) {        
        j = 0;
        output_tmp[find_char[x]] = 0;
        // search if sentences then -1, if > -1 then there is a match
        while ((j = sentences[i].indexOf(find_char[x], j)) > -1) { 
            output_tmp[find_char[x]]++; 
            j++ 
        }
        occurance += output_tmp[find_char[x]];
    }
    output[i] = { 'sentence_no': i,  'occurance' : occurance};
}

Is there a better way way doing this?

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2 Answers 2

Combine all words into a single regular expression and apply it to each sentence:

sentences = [
    'black im yello',
    'green black and white',
    'green green green green green greenana',
    'i have no color'
]

words = [
    'green',
    'black',
    'white'
]

re = new RegExp(words.join('|'), 'gi')

counts = sentences.map(function(sent) {
    return (sent.match(re) || []).length
})

This prints in the console:

[1, 3, 6, 0]
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You can use Javascript's match method to optimize your code. For example, to find the number of "green"s that appear in a sentence, you could use the expression

sentences[i].match(/green/g).length)

So your code would look like

for( s in sentences ){
  var occurences = 0;
  for( f in find_char )
    occurences += (sentences[s].match(new RegExp(find_char[f], "g")) || []).length
  output[s] = { 'sentence_no': s,  'occurance' : occurences};
}
share|improve this answer
    
Needs some improvements for zero matches - null has no "length" property –  Bergi Jul 12 '12 at 21:23
    
Good point. Fixed that. –  Will Jul 12 '12 at 22:00
    
Uh, and did I forget to fret about the for-in-loop over arrays? :-) –  Bergi Jul 12 '12 at 23:39

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