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 need to increment a String in java from "aaaaaaaa" to "aaaaaab" to "aaaaaac" up through the alphabet, then eventually to "aaaaaaba" to "aaaaaabb" etc. etc.

Is there a trick for this?

share|improve this question
5  
Remember, brute-force password cracking is unethical. –  bzlm Dec 4 '08 at 21:38
2  
doesn't matter, because when he has reached zzzzzzzz he'll be neither ethical nor unethical, but dead. –  hop Dec 5 '08 at 1:07
    
zzzzzzzz = asleep, no ? :p –  Ande Dec 5 '08 at 1:39
1  
He didn't say which alphabet! So technically zzzzzzz may not be the limit. By öööööööö, he'll be even deader. –  bzlm Dec 5 '08 at 14:29

10 Answers 10

up vote -2 down vote accepted

It's not much of a "trick", but this works for 4-char strings. Obviously it gets uglier for longer strings, but the idea is the same.

char array[] = new char[4];
for (char c0 = 'a'; c0 <= 'z'; c0++) {
  array[0] = c0;
  for (char c1 = 'a'; c1 <= 'z'; c1++) {
    array[1] = c1;
    for (char c2 = 'a'; c2 <= 'z'; c2++) {
      array[2] = c2;
      for (char c3 = 'a'; c3 <= 'z'; c3++) {
        array[3] = c3;
        String s = new String(array);
        System.out.println(s);
      }
    }
  }
}
share|improve this answer
    
Will this work in java or is this a C construct? –  dacracot Dec 5 '08 at 15:14
    
Does work in java... ugly is sometimes better. –  dacracot Dec 5 '08 at 16:20
    
This is is faster and easier to understand. Less is more. –  dacracot Dec 5 '08 at 17:28
    
I tested it in Java, but the basic idea should work fine in C. That deep nested loop is definitely ugly, but it gets the job done: enumerate all possible combinations of 'a'..'z'. As others have pointed out, creating the String object is expensive, so it might be better to use the array directly. –  Clayton Dec 6 '08 at 18:26
    
I really liked @saua's solution though. It gives nice encapsulation of the string generation function. Using that approach lets you write a much simpler loop for doing your real work, something like this: for (int i=0; i<=MAX; i++) { String s = base26(i); doSomethingInteresting(s); } –  Clayton Dec 6 '08 at 18:32

You're basically implementing a Base 26 number system with leading "zeroes" ("a").

You do it the same way you convert a int to a base-2 or base-10 String, but instead of using 2 or 10, you use 26 and instead of '0' as your base, you use 'a'.

In Java you can easily use this:

public static String base26(int num) {
  if (num < 0) {
    throw new IllegalArgumentException("Only positive numbers are supported");
  }
  StringBuilder s = new StringBuilder("aaaaaaa");
  for (int pos = 6; pos >= 0 && num > 0 ; pos--) {
    char digit = (char) ('a' + num % 26);
    s.setCharAt(pos, digit);
    num = num / 26;
  }
  return s.toString();
}

The basic idea then is to not store the String, but just some counter (int an int or a long, depending on your requirements) and to convert it to the String as needed. This way you can easily increase/decrease/modify your counter without having to parse and re-create the String.

share|improve this answer
    
Thanks, dacracot, for the fix. The code was obviously not well tested. –  Joachim Sauer Dec 4 '08 at 23:06
    
yeah, and then one day you reach maxint... –  hop Dec 5 '08 at 1:05
1  
Integer.MAX_VALUE = agytisyx I actually like that ;-) –  Joachim Sauer Dec 5 '08 at 1:12
    
Ok, so I did hit maxint. Now what? –  dacracot Dec 5 '08 at 15:08
    
If you need still bigger numbers, switch to long (and possibly increase the String length). –  Joachim Sauer Dec 5 '08 at 15:37

The following code uses an "inductive" next() method to get the next string (let's say, from "aaaa" to "aaab" and so on) without the need of producing all the previous combinations, so it's rather fast. Moreover this method is not bounded to any particular string dimension.

public class StringInc {
 public static void main(String[] args) {
   System.out.println(next("aaa")); // Prints aab

   System.out.println(next("abcdzz")); // Prints abceaa

   System.out.println(next("zzz")); // Prints aaaa
 }

 public static String next(String s) {
   int length = s.length();
   char c = s.charAt(length - 1);

   if(c == 'z')
     return length > 1 ? next(s.substring(0, length - 1)) + 'a' : "aa";

   return s.substring(0, length - 1) + ++c;
 }
}
share|improve this answer

Increment the last character, and if it reaches Z, reset it to A and move to the previous characters. Repeat until you find a character that's not Z. Because Strings are immutable, I suggest using an array of characters instead to avoid allocating lots and lots of new objects.

public static void incrementString(char[] str)
{
    for(int pos = str.length - 1; pos >= 0; pos--)
    {
        if(Character.toUpperCase(str[pos]) != 'Z')
        {
            str[pos]++;
            break;
        }
        else
            str[pos] = 'a';
    }
}
share|improve this answer
    
the else branch should set str[pos] = 'a'; –  Martin Neal Jun 6 '11 at 15:39
    
@Martin: Whoops, good catch. –  Adam Rosenfield Jun 7 '11 at 4:46

you can use big integer's toString(radix) method like:

import java.math.BigInteger;
public class Strings {
    Strings(final int digits,final int radix) {
    	this(digits,radix,BigInteger.ZERO);
    }
    Strings(final int digits,final int radix,final BigInteger number) {
    	this.digits=digits;
    	this.radix=radix;
    	this.number=number;
    }
    void addOne() {
    	number=number.add(BigInteger.ONE);
    }
    public String toString() {
    	String s=number.toString(radix);
    	while(s.length()<digits)
    		s='0'+s;
    	return s;
    }
    public char convert(final char c) {
    	if('0'<=c&&c<='9')
    		return (char)('a'+(c-'0'));
    	else if('a'<=c&&c<='p')
    		return (char)(c+10);
    	else throw new RuntimeException("more logic required for radix: "+radix);
    }
    public char convertInverse(final char c) {
    	if('a'<=c&&c<='j')
    		return (char)('0'+(c-'a'));
    	else if('k'<=c&&c<='z')
    		return (char)(c-10);
    	else throw new RuntimeException("more logic required for radix: "+radix);
    }
    void testFix() {
    	for(int i=0;i<radix;i++)
    		if(convert(convertInverse((char)('a'+i)))!='a'+i)
    			throw new RuntimeException("testFix fails for "+i);
    }
    public String toMyString() {
    	String s=toString(),t="";
    	for(int i=0;i<s.length();i++)
    		t+=convert(s.charAt(i));
    	return t;
    }
    public static void main(String[] arguments) {
    	Strings strings=new Strings(8,26);
    	strings.testFix();
    	System.out.println(strings.number.toString()+' '+strings+' '+strings.toMyString());
    	for(int i=0;i<Math.pow(strings.radix,3);i++)
    		try {
    			strings.addOne();
    			if(Math.abs(i-i/strings.radix*strings.radix)<2)
    				System.out.println(strings.number.toString()+' '+strings+' '+strings.toMyString());
    		} catch(Exception e) {
    			System.out.println(""+i+' '+strings+" failed!");
    		}
    }
    final int digits,radix;
    BigInteger number;
}
share|improve this answer
    
too complicated, probably waaaay over the OPs head. put at least some comments in there! –  hop Dec 5 '08 at 12:31
    
Over my head, pleeeeeeeeeeeeeeeeeease. Trying it since the (so far) accepted answer hit maxint. –  dacracot Dec 5 '08 at 15:16
    
i am using the same base 26 trick to get the number in base 26. i need to convert the characters to what the poster wants (hence convert and convertInverse). you will need to modify the for loop so that i is a big decimal if you want to go all the way to zzzzzzzz. –  Ray Tayek Dec 9 '08 at 2:18

I'd have to agree with @saua's approach if you only wanted the final result, but here is a slight variation on it in the case you want every result.

Note that since there are 26^8 (or 208827064576) different possible strings, I doubt you want them all. That said, my code prints them instead of storing only one in a String Builder. (Not that it really matters, though.)

  public static void base26(int maxLength) {
    buildWord(maxLength, "");
  }
  public static void buildWord(int remaining, String word)
  {
    if (remaining == 0)
    {
      System.out.println(word);
    }
    else
    {
      for (char letter = 'A'; letter <= 'Z'; ++letter)
      {
        buildWord(remaining-1, word + letter);
      }
    }
  }

  public static void main(String[] args)
  {
    base26(8);
  }
share|improve this answer

I would create a character array and increment the characters individually. Strings are immutable in Java, so each change would create a new spot on the heap resulting in memory growing and growing.

With a character array, you shouldn't have that problem...

share|improve this answer

Have an array of byte that contain ascii values, and have loop that increments the far right digit while doing carry overs.

Then create the string using

public String(byte[] bytes, String charsetName)

Make sure you pass in the charset as US-ASCII or UTF-8 to be unambiguous.

share|improve this answer

Just expanding on the examples, as to Implementation, consider putting this into a Class... Each time you call toString of the Class it would return the next value:

public class Permutator {

    private int permutation;

    private int permutations; 

    private StringBuilder stringbuilder;

    public Permutator(final int LETTERS) {

        if (LETTERS < 1) {
            throw new IllegalArgumentException("Usage: Permutator( \"1 or Greater Required\" \)");
        }

        this.permutation = 0;

        // MAGIC NUMBER : 26 = Number of Letters in the English Alphabet 
        this.permutations = (int) Math.pow(26, LETTERS);

        this.stringbuilder = new StringBuilder();

        for (int i = 0; i < LETTERS; ++i) {
            this.stringbuilder.append('a');
        }
    }

    public String getCount() {

        return String.format("Permutation: %s of %s Permutations.", this.permutation, this.permutations);
    }

    public int getPermutation() {

        return this.permutation;
    }

    public int getPermutations() {

        return this.permutations;
    }

    private void permutate() {

        // TODO: Implement Utilising one of the Examples Posted.
    } 

    public String toString() {

        this.permutate();

        return this.stringbuilder.toString();
    }
}
share|improve this answer
1  
Instead of that comment you could just as easily have made a constant public final static int NUMBER_OF_LETTERS_IN_THE_ENGLISH_ALPHABET = 26;. –  Christoffer Hammarström Feb 24 '11 at 9:50

This code should work for a string of any size.

 public static String iterateAlphabetic(String input) {
            String output = input.toUpperCase();
            char[] array = output.toCharArray();
            boolean overflow = true;
            for(int itr=array.length-1; itr>=0; itr--) {
                if(overflow && array[itr]=='Z') {
                    array[itr] = 'A';
                    overflow = true;
                    continue;
                }
                if(overflow) {
                    array[itr] = next(alphabeticUpper,array[itr]);
                    overflow = false;
                    continue;
                }
                break;
            }       
            if(overflow)
                output = "A" + new String(array);
            else
                output = new String(array);
            if(output.length() < input.length())
                output = StringUtil.padding(output, 'A', input.length());
            return output;
        }

public static String padding(String input, char pad, int width) {
     if (width < 0)
         throw new IllegalArgumentException("width must be > 0");

     if (width < input.length())
         return input;

    StringBuilder sb = new StringBuilder();
    for(int i = 0;i < (width - input.length()); i++) {
        sb.append(pad);
    }
    sb.append(input);
    return sb.toString();
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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