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import java.util.*;
class set
{
public static void main(String args[])
{
TreeSet<Character> t1 = new TreeSet<Character>();
TreeSet<Character> t2 = new TreeSet<Character>();
String s1 = "Ambitab bachan";
String s2 = "Ranjikanth";
for(char c1:s1.toCharArray())
t1.add(c1);
for(char c2:s2.toCharArray())
t2.add(c2);
t2.retainAll(t1);
System.out.println(t2);
}
}

this program find the common character in two different string. in this program Treeset is used to store the value and retainAll() method is used to find the common characters. can anybody help me reduce the line of coding.thanks in advance

share|improve this question
    
Apart from putting several statements on the same line, it is going to be difficult to reduce the number of lines. In particular, toCharArray returns a char[] so you need to transform each char to Character in a loop st some stage. –  assylias Dec 15 '12 at 16:58
    
Declare two variables in same line? different statements in single line? –  Pradeep Simha Dec 15 '12 at 16:58
    
Why are you concerned about reducing the number of lines in code that's clearly not for production? Is it a metric that you're trying to rate with? –  Tees Maar Khan Dec 15 '12 at 17:26

5 Answers 5

If you use the Guava library, you can simply use Sets.intersection() and avoid the boilerplate.

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am a beginner in java. kindly suggest some idea which help to improve my programming skill in java. thanks in advance. what sort of book i should buy.. –  Venkatesh Ravindran Dec 16 '12 at 9:23
    
See stackoverflow.com/q/11382820/130224 –  reprogrammer Dec 16 '12 at 16:31

As you're dealing with Strings, you can forgo all these objects and use regular expressions.

private static final Pattern REGEX_DEDUPLICATE = Pattern.compile("(.)(?=.*\\1)");

public void intersect(String string1, String string2) {
    String commonChars = string1.replaceAll("[^" + string2 + "]", "");
    String uniqueCommonChars = REGEX_DEDUPLICATE.matcher(commonChars).replaceAll("");
    return uniqueCommonChars;
}

The first replaceAll removes all characters from string1 that are not in string2. commonChars is thus:

itaahan

More in this discussion.

The second replaceAll removes redundant instances of a character, the last two 'a's in this case. uniqueCommonChars becomes:

ithan

A great break down of how this regex works is in this discussion.

Compiling regular expressions is relatively computationally expensive so the we can precompile one as a static final Pattern. As the other regular expression is based on the input, it cannot be precompiled.

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A bit simpler:

    TreeSet<Character> t1 = new TreeSet<Character>();
    String s1 = "Ambitab bachan";
    String s2 = "Ranjikanth";
    for(char c1:s1.toCharArray()) {
      if (s2.contains(new Character(c1).toString())) {
        t1.add(c1);
      }
    }
share|improve this answer

I suppose you could condense this:

TreeSet<Character> t1 = new TreeSet<Character>();
for(char c1:s1.toCharArray())
t1.add(c1);

Into: (Edited)

TreeSet<String> t1 = new TreeSet<String>(Arrays.asList(s1.split("(?<=.)")));
share|improve this answer
    
asList will take a Character[] but not a char[] –  Peter Lawrey Dec 15 '12 at 17:22
    
Ah, you're right, and converting to a Character[] would make it just as long as the original, by any method that springs to mind. Thanks. –  femtoRgon Dec 15 '12 at 19:23
    
All right, this version should work (actually tested to be sure this time). Ugly though. Wouldn't recommend actually doing this sort of thing... –  femtoRgon Dec 15 '12 at 19:38
    
I was thinking .split("") but I think that produces an empty string at the start. –  Peter Lawrey Dec 15 '12 at 19:50
1  
Yes, I had that problem with my first try, but using a lookbehind, as s1.split("(?<=.)") solves that problem. –  femtoRgon Dec 15 '12 at 19:51

You can easily remove the duplicate code to build the character sets

public static void main(String args[]) {
    TreeSet<Character> t1 = asCharacterSet("Ambitab bachan");
    TreeSet<Character> t2 = asCharacterSet("Ranjikanth");
    t2.retainAll(t1);
    System.out.println(t2);
}

private static Set<Character> asCharacterSet(String value) {
    TreeSet<Character> t1 = new TreeSet<Character>();
    for (char c1 : value.toCharArray())
        t1.add(c1);
    return t1;
}
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