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I am trying to iterate through a string in order to remove the duplicates characters.

For example the String aabbccdef should become abcdef and the String abcdabcd should become abcd

Here is what I have so far:

public class test {

    public static void main(String[] args) {

        String input = new String("abbc");
        String output = new String();

        for (int i = 0; i < input.length(); i++) {
            for (int j = 0; j < output.length(); j++) {
                if (input.charAt(i) != output.charAt(j)) {
                    output = output + input.charAt(i);
                }
            }
        }

        System.out.println(output);

    }

}

What is the best way to do this?

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3  
Do you just want to 'collapse' repeating characters, or remove duplicates entirely. That is, should "abba" result in "aba" or "ab"? –  aisrael Aug 10 '11 at 9:17

10 Answers 10

up vote 9 down vote accepted

Convert the string to an array of char, and store it in a LinkedHashSet. That will preserve your ordering, and remove duplicates. Something like:

String string = "aabbccdefatafaz";

char[] chars = string.toCharArray();
Set<Character> charSet = new LinkedHashSet<Character>();
for (char c : chars) {
    charSet.add(c);
}

StringBuilder sb = new StringBuilder();
for (Character character : charSet) {
    sb.append(character);
}
System.out.println(sb.toString());
share|improve this answer
    
I guess I can't really avoid StringBuilder or an array list...oh well, thanks –  Ricco Feb 14 '11 at 5:44
    
@Rico: You can also do this manually (like creating an array of the right length, then putting all non-duplicates in it, then creating a string of this), but it is simply more work this way, and a StringBuilder is really made to construct Strings. –  Paŭlo Ebermann Feb 14 '11 at 11:12
    
This will also remove the second 'f', which may or may not be what the OP wants. –  aisrael Aug 10 '11 at 9:16
    
Using new StringBuilder(charSet.size()) will optimize this slightly to avoid resizing the StringBuilder. –  Simon André Forsberg Apr 25 at 9:05

Create a StringWriter. Run through the original string using charAt(i) in a for loop. Maintain a variable of char type keeping the last charAt value. If you iterate and the charAt value equals what is stored in that variable, don't add to the StringWriter. Finally, use the StringWriter.toString() method and get a string, and do what you need with it.

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I tried somethinig like that, but not StringWriter.toString(). The first loop would iterate through the input string and if that character did not exist in the result string then append it...but it didn't work. –  Ricco Feb 14 '11 at 5:35

I would use the help of LinkedHashSet. Removes dups (as we are using a Set, maintains the order as we are using linked list impl). This is kind of a dirty solution. there might be even a better way.

String s="aabbccdef";
Set<Character> set=new LinkedHashSet<Character>();
for(char c:s.toCharArray())
{
    set.add(Character.valueOf(c));
}
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public class RemoveRepeated4rmString {

    public static void main(String[] args) {
        String s = "harikrishna";
        String s2 = "";
        for (int i = 0; i < s.length(); i++) {
            int count = 0;
            for (int j = 0; j < s2.length(); j++) {
                if (s.charAt(i) == s2.charAt(j)) {
                    count++;
                }
            }
            if (count == 0) {
                s2 = s2.concat(String.valueOf(s.charAt(i)));
            }
        }
        System.out.println(s2);
    }
}
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    String input = "AAAB";

    String output = "";
    for (int index = 0; index < input.length(); index++) {
        if (input.charAt(index % input.length()) != input
                .charAt((index + 1) % input.length())) {

            output += input.charAt(index);

        }
    }
    System.out.println(output);

but you cant use it if the input has the same elements, or if its empty!

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This will not work on the examples you asked about in Remove duplicate in a string without using arrays –  Xavi López Dec 13 '12 at 19:10

Try this simple solution:

public String removeDuplicates(String input){
    String result = "";
    for (int i = 0; i < input.length(); i++) {
        if(!result.contains(String.valueOf(input.charAt(i)))) {
            result += String.valueOf(input.charAt(i));
        }
    }
    return result;
}
share|improve this answer
    
Good answer, but each time += gets run, the entire string is destroyed and re-copied resulting in unnecessary inefficiency. Also testing for the length() of the string on every iteration of the loop introduces inefficiency. The length of the loop doesn't change so you don't have to check it on every character. –  Eric Leschinski Apr 24 at 18:31

You can't. You can create a new String that has duplicates removed. Why aren't you using StringBuilder (or StringBuffer, presumably)?

You can run through the string and store the unique characters in a char[] array, keeping track of how many unique characters you've seen. Then you can create a new String using the String(char[], int, int) constructor.

Also, the problem is a little ambiguous—does “duplicates” mean adjacent repetitions? (In other words, what should happen with abcab?)

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Okay Guys, I have found a better way to do this

public static void alpha(char[] finalname)
{
    if (finalname == null)
    {
        return;
    }

    if (finalname.length <2)
    {
        return;
    }

    char empty = '\000';
    for (int i=0; i<finalname.length-1; i++)
    {
        if (finalname[i] == finalname[i+1])
        {
            finalname[i] = empty;
        }
    }

    String alphaname = String.valueOf(finalname);
    alphaname = alphaname.replace("\000", "");
    System.out.println(alphaname);


}
share|improve this answer
    
This code makes two mistakes, first: it only replaces consecutive duplicates. It fails to compress abcabc to abc because inside your loop you are only testing the similarity of adjacent indices in the array. second: you are passing a char[] by reference, and in order to change the array by reference is to destroy it and re-create it, forcing its lifetime to only exist in this particular method. You'll have to return the variable, which makes a clone of the entire thing, one of which needs to be garbage collected. –  Eric Leschinski Apr 24 at 18:44

Oldschool way (as we wrote such a tasks in Apple ][ Basic, adapted to Java):

int i,j;
StringBuffer str=new StringBuffer();
Scanner in = new Scanner(System.in);
System.out.print("Enter string: ");
str.append(in.nextLine());

for (i=0;i<str.length()-1;i++){
    for (j=i+1;j<str.length();j++){
        if (str.charAt(i)==str.charAt(j))
            str.deleteCharAt(j);
    }
}
System.out.println("Removed non-unique symbols: " + str);
share|improve this answer
    
This answer is right, but it has a runtime complexity of O(n * n * n ). Each time you call str.length, you are stepping the entire array. Since an algorithm can be designed to do this in O(n) runtime complexity without using additional memory, this answer will get you in trouble if I see you put this sort of thing in production. This is the generic easy-to-understand answer given by programmers who write very VERY slow running code. It's a good exercise in understanding runtime complexity. –  Eric Leschinski Apr 24 at 18:13

Code to remove the duplicate characters in a string without using any additional buffer. NOTE: One or two additional variables are fine. An extra array is not:

import java.util.*;
public class Main{
    public static char[] removeDupes(char[] arr){
        if (arr == null || arr.length < 2)
            return arr;
        int len = arr.length;
        int tail = 1;
        for(int x = 1; x < len; x++){
            int y;
            for(y = 0; y < tail; y++){
                if (arr[x] == arr[y]) break;
            }
            if (y == tail){
                arr[tail] = arr[x];
                tail++;
            }
        }
        return Arrays.copyOfRange(arr, 0, tail);
    }

    public static char[] bigArr(int len){
        char[] arr = new char[len];
        Random r = new Random();
        String alphabet = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ1234567890!@#$%^&*()-=_+[]{}|;:',.<>/?`~";

        for(int x = 0; x < len; x++){
            arr[x] = alphabet.charAt(r.nextInt(alphabet.length()));
        }

        return arr;
    }
    public static void main(String args[]){

        String result = new String(removeDupes(new char[]{'a', 'b', 'c', 'd', 'a'}));
        assert "abcd".equals(result) : "abcda should return abcd but it returns: " + result;

        result = new String(removeDupes(new char[]{'a', 'a', 'a', 'a'}));
        assert "a".equals(result) : "aaaa should return a but it returns: " + result;

        result = new String(removeDupes(new char[]{'a', 'b', 'c', 'a'}));
        assert "abc".equals(result) : "abca should return abc but it returns: " + result;

        result = new String(removeDupes(new char[]{'a', 'a', 'b', 'b'}));
        assert "ab".equals(result) : "aabb should return ab but it returns: " + result;

        result = new String(removeDupes(new char[]{'a'}));
        assert "a".equals(result) : "a should return a but it returns: " + result;

        result = new String(removeDupes(new char[]{'a', 'b', 'b', 'a'}));
        assert "ab".equals(result) : "abba should return ab but it returns: " + result;


        char[] arr = bigArr(5000000);
        long startTime = System.nanoTime();
        System.out.println("2: " + new String(removeDupes(arr)));
        long endTime = System.nanoTime();
        long duration = (endTime - startTime);
        System.out.println("Program took: " + duration + " nanoseconds");
        System.out.println("Program took: " + duration/1000000000 + " seconds");

    }
}

How to read and talk about the above code:

  1. The method called removeDupes takes an array of primitive char called arr.
  2. arr is returned as an array of primitive characters "by value". The arr passed in is garbage collected at the end of Main's member method removeDupes.
  3. The runtime complexity of this algorithm is O(n) or more specifically O(n+(small constant)) the constant being the unique characters in the entire array of primitive chars.
  4. The copyOfRange does not increase runtime complexity significantly since it only copies a small constant number of items. The char array called arr is not stepped all the way through.
  5. If you pass null into removeDupes, the method returns null.
  6. If you pass an empty array of primitive chars or an array containing one value, that unmodified array is returned.
  7. Method removeDupes goes about as fast as physically possible, fully utilizing the L1 and L2 cache, so Branch redirects are kept to a minimum.
  8. A 2015 standard issue unburdened computer should be able to complete this method with an primitive char array containing 500 million characters between 15 and 25 seconds.

Explain how this code works:

The first part of the array passed in is used as the repository for the unique characters that are ultimately returned. At the beginning of the function the answer is: "the characters between 0 and 1" as between 0 and tail.

We define the variable y outside of the loop because we want to find the first location where the array index that we are looking at has been duplicated in our repository. When a duplicate is found, it breaks out and quits, the y==tail returns false and the repository is not contributed to.

when the index x that we are peeking at is not represented in our repository, then we pull that one and add it to the end of our repository at index tail and increment tail.

At the end, we return the array between the points 0 and tail, which should be smaller or equal to in length to the original array.

Talking points exercise for coder interviews:

Will the program behave differently if you change the y++ to ++y? Why or why not.

Does the array copy at the end represent another 'N' pass through the entire array making runtime complexity O(n*n) instead of O(n) ? Why or why not.

Can you replace the double equals comparing primitive characters with a .equals? Why or why not?

Can this method be changed in order to do the replacements "by reference" instead of as it is now, "by value"? Why or why not?

Can you increase the efficiency of this algorithm by sorting the repository of unique values at the beginning of 'arr'? Under which circumstances would it be more efficient?

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