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I wanted compare multiple strings character by character and want to output a string which contains the characters which are present in most of the string. For example I used three strings: Input:S1= where, S2= wHere, S3=whera Output:S=where.

I could do it for 3 strings using the code :

public class stringc {

    static String S1="where";
    static String S2="wHere";
    static String S3="whera";
    static StringBuilder S=new StringBuilder();

    public static void main(String[] args)
    {
        for (int i=0;i<5;i++)
        {

            if(S1.charAt(i)==S2.charAt(i)||S1.charAt(i)==S3.charAt(i))
            {
                S.append(S1.charAt(i));
            }
        }
    }
}

Can anybody help me how to use it for more than 10 strings.

share|improve this question
    
You say "present in most of the string" should that actually read "present in ALL of the strings"? – Michael Mar 19 '14 at 16:28
    
Is using Guava or Java 8 an option here? Because it is pretty easy with MultiSet or a combination of lambdas to achieve this. What you have to do is to take a majority vote on a bag of characters which is similar to this question about a majority vote on integers. – Nader Hadji Ghanbari Mar 19 '14 at 16:37

use an array/ List of Strings and instead of int i=0;i<5;i++ use int i=0;i<array.length;i++ // use list.size() for lists

share|improve this answer

Here's one I knocked up. It compares the characters in the input strings to check if they are the same in every string in the same position. If the characters in the position match in all input strings, the same character will be in the result string at that position.

public class MultipleStringComparator {

public static void main(String[] args) {

    String[] input = new String[] {"abcdeFgh","abcdefgh","abcdefgh","abcdefgh","abcdefgh"};

    MultipleStringComparator comp = new MultipleStringComparator();
    System.out.println(comp.compare(input, '.'));
}

/**
 * Compare strings character by character
 * @param strings
 * @param substitute - character to insert in result where strings do not match
 * @return result
 */
public String compare(String[] strings, char substitute) {

    //How long is the longest string?
    int longest = 0;
    for (String string : strings) {
        if (string.length()>longest) longest = string.length();
    }

    //Initialise result
    StringBuffer result = new StringBuffer();

    //compare strings character by character
    //If the corresponding characters in all input strings match, append to result
    for (int position=0; position<longest; position++) {
        char character = allCharactersMatch(strings, position);
        if (character!=0) {
            result.append(character);
        } else {
            result.append(substitute);
        }
    }

    return result.toString();
}

/**
 * Compares the character at the specified position in all input strings
 * @param strings
 * @param position
 * @return character found is same in all strings, otherwise 0;
 */
private char allCharactersMatch(String[] strings, int position) {
    char found = 0;
    for (String string : strings) {
        if (string.length()<=position) return 0;
        if (string.charAt(position)!=found && found!=0) return 0;
        found = string.charAt(position);
    }
    return found;
}

}
share|improve this answer
    
Does the work but prints abcde.gh where abcdefgh is expected – user3259851 Mar 21 '14 at 15:43
    
Note that one of my test Strings has an uppercase F, the others lowercase. – NickJ Mar 21 '14 at 15:58
    
Yes when majority voting is done it must print f. – user3259851 Mar 22 '14 at 13:33

How I'd do it:

  1. for each of your strings, call toCharArray()
  2. Add the resulting char[] to a 2D char array
  3. For each word in the 2D array, add the character you are inspecting to a map, incrementing a counter if the character is already in the maps keySet()
  4. The character with the most occurrences (highest counter) in the map is the character to add to the resulting string.
  5. Repeat steps 3 and 5 for all characters in the strings
  6. Output the string you've built

Here's a block of code using your example with a few more strings:

public static void main(final String[] args) {
    final  StringBuilder stringBuilder = new StringBuilder();

    //Points 1 and 2
    final char[][] characters = new char[][]{
            "where".toCharArray(),
            "wHere".toCharArray(),
            "where".toCharArray(),
            "wperg".toCharArray(),
            "where".toCharArray(),
            "w6ere".toCharArray(),
            "where".toCharArray(),
            "where".toCharArray(),
            "wHere".toCharArray(),
            "w4eeg".toCharArray(),
            "where".toCharArray(),
            "wHare".toCharArray(),
            "where".toCharArray(),
            "where".toCharArray(),
            "weede".toCharArray(),
            "whare".toCharArray(),
            "wHect".toCharArray(),
            "where".toCharArray(),
            "wHere".toCharArray(),
            "whara".toCharArray()
    };

    //Point 3
    for (int i=0; i < 5 ; i++) {

        //Point 4
        final Map<String, Integer> occurrences = new HashMap<String, Integer>();
        for(int j = 0; j < characters.length; j++ ) {

            final String character = ""+characters[j][i];

            if( occurrences.containsKey(character) ) {
                Integer currentTotal = occurrences.get(character);
                occurrences.put(character, ++currentTotal);
                continue;
            }

            occurrences.put(character, 1);
        }

        //Point 5
        int mostOccurrences = 0;
        String characterWithMostOccurrences = "";
        for (final String character : occurrences.keySet()) {
            if( occurrences.get(character) > mostOccurrences ) {
                mostOccurrences = occurrences.get(character);
                characterWithMostOccurrences = character;
            }
        }

        stringBuilder.append(characterWithMostOccurrences);

    }

    //Point 6
    System.out.println(stringBuilder.toString());
}
share|improve this answer
    
Thank You it worked. – user3259851 Mar 22 '14 at 13:32
    
string to CharArray can it be simplified? Like using a for loop to convert string to chararray. Since there are more than few strings, manual work would be difficult – user3259851 Mar 22 '14 at 13:34
    
Yes, you could do it in a loop, but you'd need some data structure holding you list of words. If the structure is a list or a set, you could just loop over the collection and then add the char arrays to the array one at a time. If the words were in a file, you could read the file and the split the words up (depending on delimiter) and then add them to the array. I did it this way as a quick example. – Dan Temple Mar 24 '14 at 7:28

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