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Does Java have any functionality to generate random characters or strings? Or must one simply pick a random integer and convert that integer's ascii code to a character?

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12 Answers 12

up vote 37 down vote accepted

There are many ways to do this, but yes, it involves generating a random int (using e.g. java.util.Random.nextInt) and then using that to map to a char. If you have a specific alphabet, then something like this is nifty:

    import java.util.Random;

    //...

    Random r = new Random();

    String alphabet = "123xyz";
    for (int i = 0; i < 50; i++) {
        System.out.println(alphabet.charAt(r.nextInt(alphabet.length())));
    } // prints 50 random characters from alphabet

Do note that java.util.Random is actually a pseudo-random number generator based on the rather weak linear congruence formula. You mentioned the need for cryptography; you may want to investigate the use of a much stronger cryptographically secure pseudorandom number generator in that case (e.g. java.security.SecureRandom).

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Thanks, that actually is a concise solution if you want generate a defined set of characters. For the whole alphabet dogbane's answer is a bit shorter. You could increase efficiency and readability a bit by using arrays. See my hex example. –  schnatterer Dec 3 '13 at 8:08

To generate a random char in a-z:

Random r = new Random();
char c = (char)(r.nextInt(26) + 'a');
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Is there any way that i can specify my own set of characters. Lest say 'shaon'. And after the randomization, the final string will also contain my set of charcters-which will be also randomized. Eg- 'xnxxsxaxhoxx' , where x will be the random characters & others are random charcter from my given String. –  Shaon Hasan Feb 25 at 7:06

You could also use the RandomStringUtils from the Apache Commons project:

RandomStringUtils.randomAlphabetic(stringLength);
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Best answer of the lot. –  Kermit_ice_tea Oct 3 at 17:30
private static char rndChar () {
    int rnd = (int) (Math.random() * 52); // or use Random or whatever
    char base = (rnd < 26) ? 'A' : 'a';
    return (char) (base + rnd % 26);

}

Generates values in the ranges a-z, A-Z.

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1  
How exactly does (char) (base + rnd % 26) work? Is it because adding a char to an int converts the char into its ASCII number? –  Lèse majesté Apr 17 '13 at 11:12
2  
@Lèsemajesté - Yep that's why. Each char is also implicitly convertible to an int, so 'a' can be treated as an integer value (97), and then offsetting by say 3 will yield 100 which when converted back to a char is 'd'. –  Matt Mitchell May 27 '13 at 2:31

using dollar:

Iterable<Character> chars = $('a', 'z'); // 'a', 'b', c, d .. z

given chars you can build a "shuffled" range of characters:

Iterable<Character> shuffledChars = $('a', 'z').shuffle();

then taking the first n chars, you get a random string of length n. The final code is simply:

public String randomString(int n) {
    return $('a', 'z').shuffle().slice(n).toString();
}

NB: the condition n > 0 is cheched by slice

EDIT

as Steve correctly pointed out, randomString uses at most once each letter. As workaround you can repeat the alphabet m times before call shuffle:

public String randomStringWithRepetitions(int n) {
    return $('a', 'z').repeat(10).shuffle().slice(n).toString();
}

or just provide your alphabet as String:

public String randomStringFromAlphabet(String alphabet, int n) {
    return $(alphabet).shuffle().slice(n).toString();
}

String s = randomStringFromAlphabet("00001111", 4);
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1  
This will use each character at most once in the random string. This may not be what the OP needs. –  Steve McLeod Apr 13 '10 at 8:08
    
@Steve: thanks, I've fixed my answer and extended the library bitbucket.org/dfa/dollar/changeset/4c26ccf9464e –  dfa Apr 13 '10 at 9:30

In following 97 ascii value of small "a".

public static char randomSeriesForThreeCharacter() {
Random r = new Random();
char random_3_Char = (char) (97 + r.nextInt(3));
return random_3_Char;
}

in above 3 number for a , b , c or d and if u want all character like a to z then you replace 3 number to 25.

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You've got it. Just generate the random ASCII codes yourself. What do you need it for though?

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I have an algorithm that needs to generate random strings and apply them as "keys" to xor against other strings, as you would in a cryptographic function. This is what it will be used for –  Chris Apr 13 '10 at 3:54

You could use generators from the Quickcheck specification-based test framework.

To create a random string use anyString method.

String x = anyString();

You could create strings from a more restricted set of characters or with min/max size restrictions.

Normally you would run tests with multiple values:

@Test
public void myTest() {
  for (List<Integer> any : someLists(integers())) {
    //A test executed with integer lists
  }
}
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Take a look at Java Randomizer class. I think you can randomize a character using the randomize(char[] array) method.

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@manuel, I think then we need to install the Liefra jar file, it doesnot come with the default one –  gmhk Apr 13 '10 at 4:18

polygenelubricants' answer is also a good solution if you only want to generate Hex values:

/** A list of all valid hexadecimal characters. */
private static char[] HEX_VALUES = { '0', '1', '2', '3', '4', '5', '6', '7', '8', '9', '0', 'A', 'B', 'C', 'D', 'E', 'F' };

/** Random number generator to be used to create random chars. */
private static Random RANDOM = new SecureRandom();

/**
 * Creates a number of random hexadecimal characters.
 * 
 * @param nValues the amount of characters to generate
 * 
 * @return an array containing <code>nValues</code> hex chars
 */
public static char[] createRandomHexValues(int nValues) {
    char[] ret = new char[nValues];
    for (int i = 0; i < nValues; i++) {
        ret[i] = HEX_VALUES[RANDOM.nextInt(HEX_VALUES.length))];
    }
    return ret;
}
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String abc = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";

char letter = abc.charAt(rd.nextInt(26));

This one works as well

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   Random randomGenerator = new Random();

   int i = randomGenerator.nextInt(256);
   System.out.println((char)i);

Should take care of what you want, assuming you consider '0,'1','2'.. as characters.

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1  
This is most likely not what was intended, because in that range you include a whole number of control characters which are very unlikely to be expected. –  Joachim Sauer Apr 13 '10 at 7:20

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