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Question: Stemming removes word suffixes to reduce inflected (or sometimes derived) words to their base or root form. E.g. “friendly” is an inflection of “friend”. By stemming (in this case stemming means removing the suffix “ly”), “friendly” is reduced to “friend”. Given a list of tokens and a list of suffixes Your task is to write a function that prints to the standard output (stdout) all the tokens having their suffix removed if found in the list of suffixes (please print one token per line) for each token if there is more than one suffix that can be removed please choose the one that is the longest Note that your function will receive the following arguments: tokens which is an array of strings giving the tokens described above suffixes which is an array of strings giving the suffixes described above Data constraints the length of the tokens array will not exceed 1000 the length of the suffixes array will not exceed 100 all string comparisons are case-sensitive (i.e: Cool != cool) Efficiency constraints your function is expected to print the requested result and return in less than 2 seconds Example Input Output query: "friendly", "outgoing", "powerful", "in" suffixes: "ing", "ly", "ul", "ful" friend outgo power in Explanation For the word “powerful” we can remove either suffix “ul” or “ful”, but we choose the latter because it’s the longest one.

My code:

class MyClass {

       public static void token_stemming(String[] tokens, String[] suffixes) 
  {
        int count=0;
        String[] stemmedList = new String[tokens.length];
        for(int i=0; i<tokens.length; i++)
        {
            int length=0;int flag=0;
            for(int j=0; j<suffixes.length; j++)
            {
               if(tokens[i].contains(suffixes[j]))
               {
                   int strlength = tokens[i].length()-1;
                   int suflegnth = suffixes[j].length()-1;
                   for(int z=suffixes[j].length(); z>0; z--)
                   {
                       if(tokens[i].charAt(strlength--)==suffixes[j].charAt(suflegnth--))
                       {

                       }
                       else
                       {
                           flag=1;
                       }

                   }
                   if(length<suffixes[j].length() && flag==0)
                   {
                        length = suffixes[j].length();
                   }
               }

            }

            stemmedList[count] = tokens[i].substring(0, tokens[i].length()-length);
            System.out.println(stemmedList[count]);
            count++;
        }
  }
}
share|improve this question

closed as not a real question by krlmlr, Bohemian, FDinoff, john.k.doe, yckart Jun 1 '13 at 17:56

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
I'm not entirely sure what you're looking for, but the standard stemmer is by Martin Porter. I have an implementation at my blog: programmingpraxis.com/2009/09/08/porter-stemming. – user448810 May 31 '13 at 21:18
    
There are lots of stemmers. Google "snowball stemmer" – Bohemian May 31 '13 at 22:42

Look for this section of code.

if(tokens[i].charAt(strlength--)==suffixes[j].charAt(suflegnth--))
{
    // this section is where
    // you should code
    // the answer to your homework
}
else
{
    flag=1;
}
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