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Please suggest me the best Java api for removing non English words and blocking incorrect words using

I use an English words list file to parse the given string. The code is responding very slowly. `

String englishword;
    while ((englishword = br.readLine()) != null) {
        //System.out.println("@"+englishword);
        for (String word : wordsArray) {
            //System.out.println("#"+word);
            if(englishword.trim().toUpperCase().equals(word.trim().toUpperCase()))
            {

                linetmp = linetmp.replaceAll(word, " ").trim();
                break;
            }
        }
        }
    if(linetmp!=null)
    for(String nonEnglish:linetmp.split("\\s+"))
    {
        line = line.replaceAll(nonEnglish, "");
    }
    line = line.replaceAll(" +", " ");
    return line;

Please suggest me if there is any faster way to do this Note: i am using Linux OS's dictionary listy

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Do you absolutely, positively have to do this in Java? This application has already been written. man strings –  Paul Hicks Jan 28 at 8:33
1  
englishword.trim().toUpperCase().equals(word.trim().toUpperCase()) can be written as englishword.trim().equalsIgnoreCase(word.trim()). I don't know if it improves the performance, it's just a side note –  BackSlash Jan 28 at 8:37

3 Answers 3

Make trim() and touppercase() of the checked word only once, out of the for (String word : wordsArray) cycle.

If you'll do excessive heavy operations in the inner cycle, no API will help you.

You can use a Java API function for searching

 import org.apache.commons.lang.ArrayUtils;
 ArrayUtils.indexOf(array, string);
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Than you... it is good point. even I feel bettar if I get an API for this. I am expecting a function like {String nonEnglishWord = removeNonEnglishWords()} –  Java_Dinesh Jan 28 at 9:08
    
@Java_Dinesh no SUCH functions. Because no java function can work as you wrote here. It is syntactically impossible. You must do your outer cycle yourself. But you can use a function instead of the inner cycle. Look my edit. –  Gangnus Jan 28 at 9:20

You can make your code a lot faster1 by changing the wordsArray to a HashSet, and using the contains(String) method to do the checks. (Make sure you convert words to upper case when you build the set.)

However, I would point out that this approach doesn't scale. It is not practical to enumerate all possible "non-English or incorrect" words. You would be better off building a set containing all of the words that you are prepared to accept, and then eliminating the words not in the set.


1 - Currently, your inner loop takes time that is proportional to the number of words (N) in wordArray; i.e. O(N). If you use a HashSet, the operation takes O(1) time; i.e. roughly constant time.

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There is a faster way.

Create a HashSet<String> containing all your elements in wordsArray (as lower cases/upper cases).

For each new word englishword check if set.contains(englishword.toLowerCase()).

This solution runs in O(n|S|) pre-processing (creating the HashSet), and checking each word is O(|S|) where |S| is the length of the string and n is number of words in the array, while your solution is basically O(n|S|) per word.

Code snap:

public static class EnglishChecker { 
        private final Set<String> set;
        public EnglishChecker(String[] englishWords) { 
            set = new HashSet<>();
            for (String s : englishWords) {
                set.add(s.toLowerCase());
            }
        }
        public boolean isWord(String s) { 
            return set.contains(s.toLowerCase());
        }
}
 public static void main(String[] args) {
        String[] words = { "Cat", "dog", "mousE" };
        EnglishChecker checker = new EnglishChecker(words);
        System.out.println(checker.isWord("cat"));
        System.out.println(checker.isWord("cccccccat"));
        System.out.println(checker.isWord("MOUSE"));

}
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