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I've been looking for a simple Java algorithm to generate a pseudo-random alpha-numeric string. In my situation it would be used as a unique session/key identifier that would "likely" be unique over 500K+ generation (my needs don't really require anything much more sophisticated). Ideally, I would be able to specify a length depending on my uniqueness needs. For example, a generated string of length 12 might look something like "AEYGF7K0DM1X".

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57  
Beware the birthday paradox. –  pablosaraiva Oct 25 '10 at 15:07
7  
@c0mrade en.wikipedia.org/wiki/Birthday_problem –  pablosaraiva Oct 26 '10 at 15:05
19  
Even taking the birthday paradox in consideration, if you use 12 alphanumeric characters (62 total), you would still need well over 34 billion strings to reach the paradox. And the birthday paradox doesn't guarantee a collision anyways, it just says it's over 50% chance. –  NullUserException Oct 29 '12 at 4:13

34 Answers 34

up vote 503 down vote accepted

Here is code for secure, easy, but a little bit more expensive session identifiers.

import java.security.SecureRandom;

public final class SessionIdentifierGenerator {
  private SecureRandom random = new SecureRandom();

  public String nextSessionId() {
    return new BigInteger(130, random).toString(32);
  }
}

This works by choosing 130 bits from a cryptographically secure random bit generator, and encoding them in base-32. 128 bits is considered to be cryptographically strong, but each digit in a base 32 number can encode 5 bits, so 128 is rounded up to the next multiple of 5. This encoding is compact and efficient, with 5 random bits per character. Compare this to a random UUID, which only has 3.4 bits per character in standard layout, and only 122 random bits in total.

If you allow session identifiers to be easily guessable (too short, flawed random number generator, etc.), attackers can hijack other's sessions. Note that SecureRandom objects are expensive to initialize, so you'll want to keep one around and reuse it.

Here is alternative code for cheap, insecure random alpha-numeric strings. You can tweak the "symbols" if you want to use more characters.

public class RandomString {

  private static final char[] symbols;

  static {
    StringBuilder tmp = new StringBuilder();
    for (char ch = '0'; ch <= '9'; ++ch)
      tmp.append(ch);
    for (char ch = 'a'; ch <= 'z'; ++ch)
      tmp.append(ch);
    symbols = tmp.toString().toCharArray();
  }   

  private final Random random = new Random();

  private final char[] buf;

  public RandomString(int length) {
    if (length < 1)
      throw new IllegalArgumentException("length < 1: " + length);
    buf = new char[length];
  }

  public String nextString() {
    for (int idx = 0; idx < buf.length; ++idx) 
      buf[idx] = symbols[random.nextInt(symbols.length)];
    return new String(buf);
  }
}
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2  
If you need spaces in yours, you can tack on .replaceAll("\\d", " "); onto the end of the return new BigInteger(130, random).toString(32); line to do a regex swap. It replaces all digits with spaces. Works great for me: I'm using this as a substitute for a front-end Lorem Ipsum –  weisjohn Oct 7 '11 at 15:00
3  
@weisjohn That's a good idea. You can do something similar with the second method, by removing the digits from symbols and using a space instead; you can control the average "word" length by changing the number of spaces in symbols (more occurrences for shorter words). For a really over-the-top fake text solution, you can use a Markov chain! –  erickson Oct 7 '11 at 16:02
3  
I tried that but sometimes it is only 31 long. –  Daniel Szalay Dec 19 '11 at 23:46
4  
Why .toString(32) rather than .toString(36)? –  ejain Feb 21 '12 at 19:13
4  
@ejain because 32 = 2^5; each character will represent exactly 5 bits, and 130 bits can be evenly divided into characters. –  erickson Feb 21 '12 at 21:38

Java supplies a way of doing this directly. If you don't want the dashes, they are easy to strip out.

import java.util.UUID;
String uuid = UUID.randomUUID().toString();
System.out.println("uuid = " + uuid);

Output:

uuid = 2d7428a6-b58c-4008-8575-f05549f16316

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10  
Beware that this solution only generates a random string with hexadecimal characters. Which can be fine in some cases. –  Dave May 5 '11 at 9:28
1  
The UUID class is useful. However, they aren't as compact as the identifiers produced by my answers. This can be an issue, for example, in URLs. Depends on your needs. –  erickson Aug 24 '11 at 16:37
6  
@Ruggs - The goal is alpha-numeric strings. How does broadening the output to any possible bytes fit with that? –  erickson Oct 7 '11 at 16:18
19  
According to RFC4122 using UUID's as tokens is a bad idea: Do not assume that UUIDs are hard to guess; they should not be used as security capabilities (identifiers whose mere possession grants access), for example. A predictable random number source will exacerbate the situation. ietf.org/rfc/rfc4122.txt –  Somatik Dec 31 '12 at 11:31

If you're happy to use Apache classes, why not just use org.apache.commons.lang.RandomStringUtils (commons-lang)

https://commons.apache.org/proper/commons-lang/javadocs/api-2.6/org/apache/commons/lang/RandomStringUtils.html

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139  
It seems to me that apache commons libs can solve a good 20% of the java questions asked on stackoverflow.... –  skaffman Oct 1 '08 at 9:00
8  
Correction to the dead link above: commons.apache.org/lang/api-2.5/org/apache/commons/lang/… –  Gary Rowe Aug 20 '10 at 12:31
18  
@skaffman That's why the features haven't been introduced into the JDK, otherwise Java development would be too easy. –  Naftuli Tzvi Kay Oct 19 '11 at 3:31
2  
Updated direct link (if google ever die): commons.apache.org/proper/commons-lang/apidocs/org/apache/… –  AlikElzin-kilaka Nov 1 '13 at 8:59
3  
Has just looked through mentioned class of Apache Commons Lang 3.3.1 library - and it is using only java.util.Random to provide random sequences, so it is producing insecure sequences. –  Yura Apr 3 at 14:51
static final String AB = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ";
static Random rnd = new Random();

String randomString( int len ) 
{
   StringBuilder sb = new StringBuilder( len );
   for( int i = 0; i < len; i++ ) 
      sb.append( AB.charAt( rnd.nextInt(AB.length()) ) );
   return sb.toString();
}
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15  
+1, the simplest solution here for generating a random string of specified length (apart from using RandomStringUtils from Commons Lang). –  Jonik Apr 20 '12 at 15:49
3  
Consider using SecureRandom instead of the Random class. If passwords are generated on a server, it might be vulnerable to timing attacks. –  foens Jun 25 at 13:34

In one line:

Long.toHexString(Double.doubleToLongBits(Math.random()));

http://mynotes.wordpress.com/2009/07/23/java-generating-random-string/

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3  
But only 6 letters :( –  Zippoxer Jan 11 '11 at 9:45

You can use Apache library for this: RandomStringUtils

RandomStringUtils.randomAlphanumeric(20).toUpperCase();
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6  
@kamil, I looked at the source code for RandomStringUtils, and it uses an instance of java.util.Random instantiated without arguments. The documentation for java.util.Random says it uses current system time if no seed is provided. This means that it can not be used for session identifiers/keys since an attacker can easily predict what the generated session identifiers are at any given time. –  Inshallah Sep 26 '12 at 10:14
7  
@Inshallah : You are (unnecessarily) overengineering the system. While I agree that it uses time as seed, the attacker has to have the access to following data to to actually get what he wants 1. Time to the exact millisecond, when the code was seeded 2. Number of calls that have occurred so far 3. Atomicity for his own call (so that number of calls-so-far ramains same) If your attacker has all three of these things, then you have much bigger issue at hand... –  Ajeet Oct 13 '13 at 23:36

Here it is in Java:

import static java.lang.Math.round;
import static java.lang.Math.random;
import static java.lang.Math.pow;
import static java.lang.Math.abs;
import static java.lang.Math.min;
import static org.apache.commons.lang.StringUtils.leftPad

public class RandomAlphaNum {
  public static String gen(int length) {
    StringBuffer sb = new StringBuffer();
    for (int i = length; i > 0; i -= 12) {
      int n = min(12, abs(i));
      sb.append(leftPad(Long.toString(round(random() * pow(36, n)), 36), n, '0'));
    }
    return sb.toString();
  }
}

Here's a sample run:

scala> RandomAlphaNum.gen(42)
res3: java.lang.String = uja6snx21bswf9t89s00bxssu8g6qlu16ffzqaxxoy
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Surprising no-one here has suggested it but:

import java.util.UUID

UUID.randomUUID().toString();

Easy.

Benefit of this is UUIDs are nice and long and guaranteed to be almost impossible to collide.

Wikipedia has a good explanation of it:

" ...only after generating 1 billion UUIDs every second for the next 100 years, the probability of creating just one duplicate would be about 50%."

http://en.wikipedia.org/wiki/Universally_unique_identifier#Random_UUID_probability_of_duplicates

The first 4 bits are the version type and 2 for the variant so you get 122 bits of random. So if you want to you can truncate from the end to reduce the size of the UUID. It's not recommended but you still have loads of randomness, enough for your 500k records easy.

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8  
Someone did suggest it, about a year before you. –  erickson Sep 10 '13 at 4:49

using Dollar should be simple as:

// "0123456789" + "ABCDE...Z"
String validCharacters = $('0', '9').join() + $('A', 'Z').join();

String randomString(int length) {
    return $(validCharacters).shuffle().slice(length).toString();
}

@Test
public void buildFiveRandomStrings() {
    for (int i : $(5)) {
        System.out.println(randomString(12));
    }
}

it outputs something like that:

DKL1SBH9UJWC
JH7P0IT21EA5
5DTI72EO6SFU
HQUMJTEBNF7Y
1HCR6SKYWGT7
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2  
I realise this is a little late to make a comment but should your randomString method actually use the length parameter in some way rather than hardcoding 12? –  chillysapien Aug 4 '11 at 9:44

A short and easy solution, but uses only lowercase and numerics:

 r = new util.Random ();
 Long.toString (r.nextLong (), 36);

The size is about 12 digits to base 36 and can't be improved further, that way. Of course you can append multiple instances.

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4  
Just keep in mind, that there is a 50 % chance of a minus sign infront of the result ! So wrapping r.nextLong() in a Math.abs() can be used, if you don't want the minus sign: Long.toString(Math.abs(r.nextLong()), 36); –  Ray Hulha Jan 27 '13 at 2:12
2  
@RayHulha: If you don't want the minus sign, you should cut it off, because, surprisingly, Math.abs returns a negative value for Long.MIN_VALUE. –  user unknown Jan 27 '13 at 13:28
import java.util.Random;

public class passGen{
    //Verison 1.0
    private static final String dCase = "abcdefghijklmnopqrstuvwxyz";
    private static final String uCase = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
    private static final String sChar = "!@#$%^&*";
    private static final String intChar = "0123456789";
    private static Random r = new Random();
    private static String pass = "";

    public static void main (String[] args) {
        System.out.println ("Generating pass...");
        while (pass.length () != 16){
            int rPick = r.nextInt(4);
            if (rPick == 0){
                int spot = r.nextInt(25);
                pass += dCase.charAt(spot);
            } else if (rPick == 1) {
                int spot = r.nextInt (25);
                pass += uCase.charAt(spot);
            } else if (rPick == 2) {
                int spot = r.nextInt (7);
                pass += sChar.charAt(spot);
            } else if (rPick == 3){
                int spot = r.nextInt (9);
                pass += intChar.charAt (spot);
            }
        }
        System.out.println ("Generated Pass: " + pass);
    }
}

So what this does is just add's the password into the string and ... yeah works good check it out... very simple. I wrote it

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public static String generateSessionKey(int length){
String alphabet = 
        new String("0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz"); //9
int n = alphabet.length(); //10

String result = new String(); 
Random r = new Random(); //11

for (int i=0; i<length; i++) //12
    result = result + alphabet.charAt(r.nextInt(n)); //13

return result;
}
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You mention "simple", but just in case anyone else is looking for something that meets more stringent security requirements, you might want to take a look at jpwgen. jpwgen is modeled after pwgen in Unix, and is very configurable.

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Here it is a Scala solution:

(for (i <- 0 until rnd.nextInt(64)) yield { 
  ('0' + rnd.nextInt(64)).asInstanceOf[Char] 
}) mkString("")
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I found this solution that generates a random hex encoded string. The provided unit test seems to hold up to my primary use case. Although, it is slightly more complex than some of the other answers provided.

/**
 * Generate a random hex encoded string token of the specified length
 *  
 * @param length
 * @return random hex string
 */
public static synchronized String generateUniqueToken(Integer length) 
{

    byte random[] = new byte[length];
    Random randomGenerator = new Random();
    StringBuffer buffer = new StringBuffer();

    randomGenerator.nextBytes(random);

    for (int j = 0; j < random.length; j++)
    {
        byte b1 = (byte) ((random[j] & 0xf0) >> 4);
        byte b2 = (byte) (random[j] & 0x0f);
        if (b1 < 10)
            buffer.append((char) ('0' + b1));
        else
            buffer.append((char) ('A' + (b1 - 10)));
        if (b2 < 10)
            buffer.append((char) ('0' + b2));
        else
            buffer.append((char) ('A' + (b2 - 10)));
    }

    return (buffer.toString());
}

@Test
public void testGenerateUniqueToken()
{
    Set set = new HashSet();
    String token = null;
    int size = 16;

    /* Seems like we should be able to generate 500K tokens 
     * without a duplicate 
    */
    for (int i=0; i<500000; i++)
    {
        token = Utility.generateUniqueToken(size);

        if (token.length() != size * 2)
        {
            fail("Incorrect length");
        }
        else
        if (set.contains(token)) 
        {
            fail("Duplicate token generated");
        }
        else
        {
            set.add(token);
        }
    }

}
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import java.util.Date;
import java.util.Random;

public class RandomGenerator {

  private static Random random = new Random((new Date()).getTime());

    public static String generateRandomString(int length) {
      char[] values = {'a','b','c','d','e','f','g','h','i','j',
               'k','l','m','n','o','p','q','r','s','t',
               'u','v','w','x','y','z','0','1','2','3',
               '4','5','6','7','8','9'};

      String out = "";

      for (int i=0;i<length;i++) {
          int idx=random.nextInt(values.length);
        out += values[idx];
      }

      return out;
    }
}
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Best Random String Generator Method

public class RandomStringGenerator{

    private static int randomStringLength = 25 ;
    private static boolean allowSpecialCharacters = true ;
    private static String specialCharacters = "!@$%*-_+:";
    private static boolean allowDuplicates = false ;

    private static boolean isAlphanum = false;
    private static boolean isNumeric = false;
    private static boolean isAlpha = false;
    private static final String alphabet = "abcdefghijklmnopqrstuvwxyz";
    private static boolean mixCase = false;
    private static final String capAlpha = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
    private static final String num = "0123456789";

    public static String getRandomString() {
        String returnVal = "";
        int specialCharactersCount = 0;
        int maxspecialCharacters = randomStringLength/4;

        try {
            StringBuffer values = buildList();
            for (int inx = 0; inx < randomStringLength; inx++) {
                int selChar = (int) (Math.random() * (values.length() - 1));
                if (allowSpecialCharacters)
                {
                    if (specialCharacters.indexOf("" + values.charAt(selChar)) > -1)
                    {
                        specialCharactersCount ++;
                        if (specialCharactersCount > maxspecialCharacters)
                        {
                            while (specialCharacters.indexOf("" + values.charAt(selChar)) != -1)
                            {
                                selChar = (int) (Math.random() * (values.length() - 1));
                            }
                        }
                    }
                }
                returnVal += values.charAt(selChar);
                if (!allowDuplicates) {
                    values.deleteCharAt(selChar);
                }
            }
        } catch (Exception e) {
            returnVal = "Error While Processing Values";
        }
        return returnVal;
    }

    private static StringBuffer buildList() {
        StringBuffer list = new StringBuffer(0);
        if (isNumeric || isAlphanum) {
            list.append(num);
        }
        if (isAlpha || isAlphanum) {
            list.append(alphabet);
            if (mixCase) {
                list.append(capAlpha);
            }
        }
        if (allowSpecialCharacters)
        {
            list.append(specialCharacters);
        }
        int currLen = list.length();
        String returnVal = "";
        for (int inx = 0; inx < currLen; inx++) {
            int selChar = (int) (Math.random() * (list.length() - 1));
            returnVal += list.charAt(selChar);
            list.deleteCharAt(selChar);
        }
        list = new StringBuffer(returnVal);
        return list;
    }   

}
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Hi this is Amar (mailz4amar@yahoo.com) from Hyderabad. I have developed an application to develop an auto generated alphanumberic string for my project. In this string the first three chars are alphabets and the next seven are integers.

the code is

public class AlphaNumericGenerator {

public static void main(String[] args) {
    java.util.Random r = new java.util.Random();
    int i = 1, n = 0;
    char c;
    String str="";
    for (int t = 0; t < 3; t++) {
        while (true) {
            i = r.nextInt(10);
            if (i > 5 && i < 10) {

                if (i == 9) {
                    i = 90;
                    n = 90;
                    break;
                }
                if (i != 90) {
                    n = i * 10 + r.nextInt(10);
                    while (n < 65) {
                        n = i * 10 + r.nextInt(10);
                    }
                }

                break;
            }
        }
        c=(char)n;

        str= String.valueOf(c)+str;
    }
    while(true){
    i = r.nextInt(10000000);
    if(i>999999)
        break;
    }
    str=str+i;
    System.out.println(str);

}

}

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import java.util.*;
import javax.swing.*;
public class alphanumeric
{
    public static void main(String args[])
    {
        String nval,lenval;
        int n,len;

        nval=JOptionPane.showInputDialog("Enter number of codes you require : ");
        n=Integer.parseInt(nval);

        lenval=JOptionPane.showInputDialog("Enter code length you require : ");
        len=Integer.parseInt(lenval);

        find(n,len);

    }
    public static void find(int n,int length)
    {
        String str1="0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ";
        StringBuilder sb=new StringBuilder(length);
        Random r = new Random();

        System.out.println("\n\t Unique codes are \n\n");
        for(int i=0;i<n;i++)
        {
            for(int j=0;j<length;j++)
            {
                sb.append(str1.charAt(r.nextInt(str1.length())));
            }
            System.out.println("  "+sb.toString());
            sb.delete(0,length);
        }
    }
}
share|improve this answer

using apache library it can be done in one line

import org.apache.commons.lang.RandomStringUtils;
RandomStringUtils.randomAlphanumeric(64);

here is doc http://commons.apache.org/lang/api-2.3/org/apache/commons/lang/RandomStringUtils.html

share|improve this answer

Lots of use of StringBuilder above. I guess it's easy, but requires a function call per char, growing an array, etc... If using the stringbuilder, a suggestion is to specify the required capacity of the string ie.,

new StringBuilder(int capacity);

Here's a version that doesn't use a StringBuilder or String appending, and no dictionary.

public static String randomString(int length)
{
    SecureRandom random = new SecureRandom();
    char[] chars = new char[length];
    for(int i=0;i<chars.length;i++)
    {
        int v = random.nextInt(10 + 26 + 26);
        char c;
        if (v < 10)
        {
            c = (char)('0' + v);
        }
        else if (v < 36)
        {
            c = (char)('a' - 10 + v);
        }
        else
        {
            c = (char)('A' - 36 + v);
        }
        chars[i] = c;
    }
    return new String(chars);
}
share|improve this answer
   public static String randomSeriesForThreeCharacter() {

    Random r = new Random();
             String value="";
                char random_Char ;
    for(int i=0; i<10;i++)
             { 
               random_Char = (char) (48 + r.nextInt(74));
                value=value+random_char;
             }
    return value;
}
share|improve this answer

You can create a character array which includes all the letters and numbers, then you can randomly select from this char array and create your own string password.

char[] chars = new char[62]; // sum of letters and numbers

int i = 0;

    for(char c = 'a'; c <= 'z';c++) { // for letters
        chars[i++] = c;
    }

    for(char c = '0'; c <= '9';c++) { // for numbers
        chars[i++] = c;
    }

    for(char c = 'A'; c <= 'Z';c++) { // for capital letters
        chars[i++] = c;
    }

    int numberOfCodes = 0;
    String code = "";
    while (numberOfCodes < 1) {//enter how much you want to generate at one time
        int numChars = 8; //Enter how many digits you want in your password

        for(i = 0; i < numChars; i++) {
            char c = chars[(int)(Math.random() * chars.length)];
            code = code + c;
        }
        System.out.println("Code is :" + code);
    }
share|improve this answer

You can use the UUID class with its getLeastSignificantBits() message to get 64bit of Random data, then convert it to a radix 36 number (i.e. a string consisting of 0-9,A-Z):

Long.toString(Math.abs( UUID.randomUUID().getLeastSignificantBits(), 36));

This yields a String up to 13 characters long. We use Math.abs() to make sure there isn't a minus sign sneaking in.

share|improve this answer

Random 10 letter string between upper and lower cases

StringBuilder randomString = new StringBuilder();   
Random random = new Random();
boolean alphaType = true;
int j;

for(int i = 0; i <= 9; ++i)
{
    j = (random.nextInt(25) + (alphaType == true ? 65 : 97));
    randomString.append((char)j);
    alphaType = !alphaType;
}
return randomString.toString();
share|improve this answer
2  
This isn't very random (predictably alternates between upper case and lower case), and doesn't use characters '0'-'9'. –  Cornstalks Sep 25 '12 at 5:45

You can use following code , if your password mandatory contains numbers alphabetic special characters:

private static final String NUMBERS = "0123456789";
private static final String UPPER_ALPHABETS = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
private static final String LOWER_ALPHABETS = "abcdefghijklmnopqrstuvwxyz";
private static final String SPECIALCHARACTERS = "@#$%&*";
private static final int MINLENGTHOFPASSWORD = 8;

public static String getRandomPassword() {
    StringBuilder password = new StringBuilder();
    int j = 0;
    for (int i = 0; i < MINLENGTHOFPASSWORD; i++) {

        password.append(getRandomPasswordCharacters(j));
        j++;
        if (j == 3) {
            j = 0;
        }
    }
    return password.toString();
}

private static String getRandomPasswordCharacters(int pos) {
    Random randomNum = new Random();
    StringBuilder randomChar = new StringBuilder();
    switch (pos) {
        case 0:
            randomChar.append(NUMBERS.charAt(randomNum.nextInt(NUMBERS.length() - 1)));
            break;
        case 1:
            randomChar.append(UPPER_ALPHABETS.charAt(randomNum.nextInt(UPPER_ALPHABETS.length() - 1)));
            break;
        case 2:
            randomChar.append(SPECIALCHARACTERS.charAt(randomNum.nextInt(SPECIALCHARACTERS.length() - 1)));
            break;
        case 3:
            randomChar.append(LOWER_ALPHABETS.charAt(randomNum.nextInt(LOWER_ALPHABETS.length() - 1)));
            break;
    }
    return randomChar.toString();

}
share|improve this answer

You can use a little math and a Random() object to do this..

public static String RandomAlphaNumericString(int size){
    String chars = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789";
    String ret = "";
    int length = chars.length();
    for (int i = 0; i < size; i ++){
        ret += chars.split("")[ (int) (Math.random() * (length - 1)) ];
    }
    return ret;
}
share|improve this answer
1  
This is similar in concept to several answers already given, but with it's use of string concatenation and the unnecessary split operations, it's particularly inefficient. –  erickson Oct 4 '13 at 6:07
public static String getRandomString(int length) 
{
   String randomStr = UUID.randomUUID().toString();
   while(randomStr.length() < length) {
       randomStr += UUID.randomUUID().toString();
   }
   return randomStr.substring(0, length);
}
share|improve this answer

1] Change String characters as per as your required.

2] String is immutable. Here StringBuilder.append is more efficient than string concatenation.

public static String getRandomString(int length) {
       final String characters = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJLMNOPQRSTUVWXYZ1234567890!@#$%^&*()_+";
       StringBuilder result = new StringBuilder();
       while(length > 0) {
           Random rand = new Random();
           result.append(characters.charAt(rand.nextInt(characters.length())));
           length--;
       }
       return result.toString();
    }
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/**
    Generate a random String with maxlength random
    characters found in the ASCII table between 33
    and 122 (so it contains every lowercase / uppercase
    letters, numbers and some others characters
*/
public static String GetRandomString(int maxlength)
{
    String result = "";
    int i = 0, n = 0, min = 33, max = 122;
    while(i < maxlength)
    {
        n = (int)(Math.random() * (max - min) + min);
        if(n >= 33 && n < 123)
        {
            result += (char)n;
            ++i;
        }
    }
    return(result);
}
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protected by Mosty Mostacho Oct 9 '13 at 19:34

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