Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I could not find standard string-function in Java to find matching letters in 2 strings.

Do you know how to make the below code smaller/refactor it using some standard functions?

I only made simplest function: compare every letter of first string to every letter of second string.

public static void compare_letters(String name1, String name2) {
  int equal_letters = 0 ;
  for(int i = 0 ; i < name1.length() ; i++) {
    String current_letter  = name1.substring(i,i+1);

    for(int j = 0 ; j < name2.length() ; j++) {
      if(current_letter.equals(name2.substring(j,j+1)))
        equal_letters++ ;
    }
  }
  System.out.println("num of equal letters " + equal_letters) ;
}

public static void main(String args[]) {
  String n1 = "abc";
  String n2 = "bcd";
  compare_letters(n1,n2);
}

How do i refactor it to make it smaller - I m sure there must be some elegant way to do this! This is so common procedure - there must be elegant way to do that!

share|improve this question

closed as too broad by Raedwald, Jason C, gnat, bjb568, Kedarnath Apr 21 '14 at 3:34

There are either too many possible answers, or good answers would be too long for this format. Please add details to narrow the answer set or to isolate an issue that can be answered in a few paragraphs. If this question can be reworded to fit the rules in the help center, please edit the question.

2  
It you want to compare letters, use char. A char IS a letter, so it makes far more sense to use it than a String of length 1. –  Rainbolt Feb 20 '14 at 21:39
    
For starters, note that as of Java 1.7.0_07, the substring method creates a whole new String, so you should use charAt instead of substring, and then you can just use == instead of equals. –  mbroshi Feb 20 '14 at 21:44

4 Answers 4

up vote 4 down vote accepted

Your code could be simplified a bit:

public static void compare_letters(String name1, String name2) {
    int equal_letters = 0 ;

    for( char c1 : name1.toCharArray() )
        for( char c2 : name2.toCharArray() )
            if( c1 == c2 ) equal_letters++;

    System.out.println("num of equal letters " + equal_letters);
}

But note that this way of comparing will double-count repeated letters, e.g. comparing "aa" to "aa" will return four, because each a in one string will be compared to each a in the other.

If you want to count common letters without double-counting repetitions, you'd need to do something like

public static void compare_letters(String name1, String name2) {

    // Declare a couple of sets: sets don't allow duplicate elements.
    Set<Character> letters1 = new HashSet<Character>();
    Set<Character> letters2 = new HashSet<Character>();

    // Populate the sets with the letters from the strings.
    for( char c : name1.toCharArray() ) letters1.add(c);
    for( char c : name2.toCharArray() ) letters2.add(c);

    // remove anything that isn't in letters2 from letters1
    letters1.retainAll(letters2);

    // letters1 is now the set of letters that appear in both names.
    // Its size is the number of common letters.
    System.out.println("num of equal letters " + letters1.size(););
}
share|improve this answer
    
this is the best answer! –  ERJAN Feb 20 '14 at 22:14

This should be enough

    int count = 0;
    for (char c : n1.toCharArray()) {
        if (n2.contains(String.valueOf(c))) {
            count++;
        }
    }
share|improve this answer
1  
This code is not functionally equivalent to what was posted. For inputs {"nnn", "nnn"}, your code produces 3 matches, while his code produces 9. –  Rainbolt Feb 20 '14 at 21:49

I suppose the most elegant solution would be to use Guava's intersection method:

public static void compare_letters(String name1, String name2) {
    Set<Character> set1= new HashSet<Character>();
    for(char c : name1.toCharArray()) {
        set1.add(c);
    }

    Set<Character> set2 = new HashSet<Character>();
    for(char c : name1.toCharArray()) {
        set2.add(c);
    }

    System.out.println(Sets.intersection(set1, set2));
}
share|improve this answer
    
the last line does not work ! what is Sets? maybe you wanted to use set1.retainAll(set2) ? but it returns bool... help? –  ERJAN Feb 20 '14 at 22:07
    
@ERJAN You have to add the Guava library to your project for this to work. –  trutheality Feb 20 '14 at 22:11
    
@trutheality, thanks, your example without "Sets." works now - i tested it. –  ERJAN Feb 20 '14 at 22:27

Well the original code would give 4 if comparing "aa" to "aa". The code with Set#retainAll would however give 1 which might not be correct as well. Following code will give 2:

char[] letters1 = name1.toCharArray();
char[] letters2 = name2.toCharArray();

Arrays.sort(letters1);
Arrays.sort(letters2);

int index1 = 0;
int index2 = 0;
int sameLetters = 0;
while ((index1 < letters1.length) && (index2 < letters2.length)) {
  switch (Integer.signum(Character.compare(letters1[index1], letters2[index2])))
  {
    case -1: // Letter from name1 before letter from name2
      ++index1;
      break;
    case 0: // Same letters in name1 and name2
      ++index1; ++index2;
      ++sameLetters;
      break;
    case 1: // Letter from name1 after letter from name2
      ++index2;
      break;
  }
}
System.out.println("Same letters: " + sameLetters);
share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.