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How to count the number of times each word appear in a String in Java using Regular Expression?

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Could you post what you have tried yourself? Also, what about if you search for the word abba and the string is ABBA members didn't wear abbadabbas. What would be the count for abba? And why regex? –  Bart Kiers Aug 27 '10 at 10:59

6 Answers 6

up vote 3 down vote accepted

I would split your task into a) identify words and b) count number of each unique word in text.

a) could be solved with splitting the text with a regex. b) could be solved by building a map with the result from a).

String text = "I like good mules. Mules are good :)";
String[] words = text.split("([\\W\\s]+)");
Map<String, Integer> counts = new HashMap<String, Integer>();
for (String word: words) {
    if (counts.containsKey(word)) {
        counts.put(word, counts.get(word) + 1);
    } else {
        counts.put(word, 1);
    }
}

result: {Mules=1, are=1, good=2, mules=1, like=1, I=1}

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2  
\W also matches \s: so there's no need to include \s in the character set. –  Bart Kiers Aug 27 '10 at 12:54

Must you use a regex? If not this might help:

public static int count(final String string, final String substring)
  {
     int count = 0;
     int idx = 0;

     while ((idx = string.indexOf(substring, idx)) != -1)
     {
        idx++;
        count++;
     }

     return count;
  }
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That would count two abba's in the string abbabba, which can't be correct, IMO. –  Bart Kiers Aug 27 '10 at 11:01
    
my actual requirement is "hi hi this" hi --->2 this --> 1 they are separate words.. –  rgksugan Aug 27 '10 at 11:05
    
Make it idx += substring.length to fix the abbabba issue. To match whole words: does indexOf take a regex? –  Amarghosh Aug 27 '10 at 11:34

I don't think a regex can solve your problem completely.

You want to

  1. split a string into words, a regular expression can do this for a very simple definition of word, "parts of a string seperated by whitespace or punctuation", which is not a very good definition even if you just stick to English text

  2. Count the number of occurances of each word derived from step 1. To do that you must store some kind of Mapping, and regexes neither store nor count.

A workable approach could be to

  • split the inputstring (by either regex or other means) into an array of word-strings
  • iterate over the array, and building a Map to keep count of each word
  • iterate over the map to output a list of words and the number of occurances.

If your input is limited to English you still have to consider how you want your algorithm to behave in case of things like they're <->they are etc and compound words. Add other languages to the mix for additional kinds of headaches (different ways of writing the same word, words split into parts, difference in writing depending on where in a sentence the word occurs, etc)

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+1 for also mentioning the linguistic issue, which is indeed a little complex. –  Neil Coffey Aug 27 '10 at 12:12
Pattern p = Pattern.compile("\\babba\\b");
Matcher m = p.matcher("abba is abba with abbabba and abba doing abba");
int count = 0;
while(m.find()){
    count++;
}
System.out.println(count); //4
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Using Guava, this is a one-liner:

Multiset<String> countOfEachWord = 
   HashMultiset.create(Splitter.on(" ").omitEmptyStrings().split(myString));

then to get the count of "dog" for example you would say:

countOfEachWord.count("dog")

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    int CountWords(String t){
        return t.split("([[a-z][A-Z][0-9][\\Q-\\E]]+)",-1).length+(t.replaceAll("([[a-z][A-Z][0-9][\\W]]*)", "")).length()-1;
    }

English Words(chemical names)+Chinese words

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