2

If I had a string like telephone and wanted the output to come back as tel*phon*, how would I do that?

The program would print back out each letter in the string. If it's the first time that letter is appearing then I'd write it. But if it reappears, I would print an asterisk.

hello would be hel*o

goodbye would be go*dbye

coordination would be co*rdinat***

Please help thanks! And this is not homework... this is practice for the final coming up! Thanks!!

I'm trying something like this... but I just don't get how to get further... Please help

import java.util.Scanner;
public class firstOccurrence{ 
   public static void main(String[] args){
      Scanner keyboard = new Scanner(System.in);
      String s;
      int i, j, count;
      System.out.print("Enter string: ");
      s = keyboard.nextLine();



      for(i = 0; i < s.length(); i++){
         count = 0;
         for(j = i+1; i < s.length(); j++){
            if(s.charAt(i) == s.charAt(j))
               count++;
         }

         if(count < 1)
            System.out.print(s.charAt(i));
         else
            System.out.print("*");
      }
   }
}

How would I edit this exact code to make it work? Please help :(

13
  • 1
    Time to learn regular expressions! – Unihedron Aug 6 '14 at 0:27
  • 3
    for each char, check to see if it is contained in a List. If not contained, print it, add it to the list. If yes printout '*' instead. – blurfus Aug 6 '14 at 0:28
  • @Unihedron Our teacher didn't teach us regular expressions. Basically we should be able to do this program without any of that. – Farah Javed Aug 6 '14 at 0:30
  • 1
    Please show an example of the input and output for the given code, and also wrap the code in a main so we can compile it. BTW, @blurfus`s hint is a good one. – Ken Y-N Aug 6 '14 at 0:31
  • 2
    Your approach looks OK except for the second for, and your if statement that prints out the character is in the wrong place. Start with the for. If i = 5, for example, which characters do you want to look at in your for (j = ...) loop? – ajb Aug 6 '14 at 0:35
2
Scanner keyboard = new Scanner(System.in);

String s;
System.out.print("Enter string: ");

s = keyboard.nextLine();

Set<Character> occur=new HashSet<Character>();

StringBuilder stb=new StringBuilder();

for(int i=0;i<s.length();i++){

    if(occur.contains(s.charAt(i)))
        stb.append("*");
    else
        stb.append(s.charAt(i));

    occur.add(s.charAt(i));         

}

System.out.println(stb.toString());

Use This Code, it is way more decent for two reasons:

  • use StringBuilder because your String is mutable
  • use set to add unique elements characters

PS:Code is already Tested

0

The straightforward approach to solving this problem is given in another answer. It iterates over each character of the input string and builds up a set of characters seen so far, building up an output StringBuilder with the current character or its replacement if the current character has been seen already.

This problem seems like it ought to be amenable to Java 8 streams processing. There's a new function String.chars() which converts a String into a Stream of char. (There's no CharStream, though, so each char is represented as an int and the stream type is IntStream.

To do this, though, we want to write a mapper function that potentially replaces a character with a replacement character, but only if that character has been seen already. We thus want a stateful mapper function, which is a bit unusual. It's not too difficult to write one using a higher-order function, though:

public static IntUnaryOperator replaceIfSeen(int replacement) {
    Map<Integer,Boolean> seen = new ConcurrentHashMap<>();
    return i -> seen.putIfAbsent(i, Boolean.TRUE) == null ? i : replacement;
}

The processing is essentially the same, except it's wrapped up differently. The replaceIfSeen function returns a mapper function that builds up the seen characters in a map. (There's no ConcurrentHashSet so we use a map instead, but it's basically the same.) The mapper function returns the input character if it's encountered for the first time, or it returns the replacement character if it's already been encountered. It's used like this:

static String replace(String input) {
    return input.chars()
        .map(replaceIfSeen('*'))
        .mapToObj(i -> String.valueOf((char)i))
        .collect(joining());
}

We take the input string and turn it into a stream of char (represented as int) and call our conditional mapper function on it, asking it to replace duplicates with the * character. The mapToObj operation is a bit of a wrinkle, as we need to convert the char portion of an int into a one-character String. Then we collect and join those one-character strings into the output. The results are as expected by the OP.

Note that this behaves differently if the stream is run in parallel. It still works, sort of, in that there is exactly one occurrence of any given character, with all others replaced with *. The difference is that the character that isn't replaced might not be the first. For example, given the input string coordination the result might be c**rd*natio*.

0

Here is a regex approach to solve this problem, one that can work without using any external container to keep track of replacements:

String s = "coordination";
while(s.matches(".*?(\\w)(?=.*?\\1).*")) {
    s = s.replaceAll("(?<=(\\w))((?:(?!\\1).)*)\\1", "$2*");
}
System.out.println( s );
//=> co*rdinat***

RegEx Demo

explanation:

  • While loop is used to repeat the replacements as long as there are more than one duplicate characters.
  • This regex uses a zero-width lookbehind to capture the letter in first captured group (?<=(\\w)).
  • ((?:(?!\\1).)*) will match all word characters except the first captured letter
  • \\1 matches next occurrence of the captured letter in group #1
  • Mode details about this regex are available in provided demo link on regex101

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