67

I can generate a random sequence of numbers in a certain range like the following:

fun ClosedRange<Int>.random() = Random().nextInt(endInclusive - start) +  start
fun generateRandomNumberList(len: Int, low: Int = 0, high: Int = 255): List<Int> {
  (0..len-1).map {
    (low..high).random()
  }.toList()
}

Then I'll have to extend List with:

fun List<Char>.random() = this[Random().nextInt(this.size)]

Then I can do:

fun generateRandomString(len: Int = 15): String{
  val alphanumerics = CharArray(26) { it -> (it + 97).toChar() }.toSet()
      .union(CharArray(9) { it -> (it + 48).toChar() }.toSet())
  return (0..len-1).map {
      alphanumerics.toList().random()
  }.joinToString("")
}

But maybe there's a better way?

16 Answers 16

111

Since Kotlin 1.3 you can do this:

fun getRandomString(length: Int) : String {
    val allowedChars = ('A'..'Z') + ('a'..'z') + ('0'..'9')
    return (1..length)
        .map { allowedChars.random() }
        .joinToString("")
}
0
57

Lazy folks would just do

java.util.UUID.randomUUID().toString()

You can not restrict the character range here, but I guess it's fine in many situations anyway.

2
  • Caution, randomUUID() implementation of Java will always provide you a "4" as the "version" part of the UUID, which is why in the middle of the string there is always a 4, which does not make it completly random.
    – guglhupf
    Jan 11 at 12:40
  • Live is full of surprises. Thanks for the clarification. Jan 11 at 20:29
36

Assuming you have a specific set of source characters (source in this snippet), you could do this:

val source = "ABCDEFGHIJKLMNOPQRSTUVWXYZ"
java.util.Random().ints(outputStrLength, 0, source.length)
        .asSequence()
        .map(source::get)
        .joinToString("")

Which gives strings like "LYANFGNPNI" for outputStrLength = 10.

The two important bits are

  1. Random().ints(length, minValue, maxValue) which produces a stream of length random numbers each from minValue to maxValue-1, and
  2. asSequence() which converts the not-massively-useful IntStream into a much-more-useful Sequence<Int>.
13
  • 2
    As a Kotlin newby I was look for this solution - very cool! However I would use source.length instead of source.length - 1, otherwise one wont ever see a Z. The ints range parameter marks an exclusive upper bound.
    – ToBe
    Nov 16 '17 at 10:10
  • 3
    Well spotted. Very interesting idea of the Java8 API designers to make this (almost) the only exclusive bound-describing parameter in Java...
    – Paul Hicks
    Nov 16 '17 at 20:47
  • 1
    I get an unresolved reference on the .asSequence() as IntStream doesn't have that method
    – z3ntu
    Mar 7 '18 at 13:59
  • 1
    @PaulHicks you can use .toArray() instead of .asSequence() without the need to import additional methods.
    – denys
    Jan 9 '19 at 12:44
  • 1
    Is API 24 an Android thing? This isn't specifically for Android.
    – Paul Hicks
    Nov 18 '19 at 20:59
21

Using Collection.random() from Kotlin 1.3:

// Descriptive alphabet using three CharRange objects, concatenated
val alphabet: List<Char> = ('a'..'z') + ('A'..'Z') + ('0'..'9')

// Build list from 20 random samples from the alphabet,
// and convert it to a string using "" as element separator
val randomString: String = List(20) { alphabet.random() }.joinToString("")
11

Without JDK8:

fun ClosedRange<Char>.randomString(length: Int) = 
    (1..length)
        .map { (Random().nextInt(endInclusive.toInt() - start.toInt()) + start.toInt()).toChar() }
        .joinToString("")

usage:

('a'..'z').randomString(6)
9

To define it for a defined length:

val randomString = UUID.randomUUID().toString().substring(0,15)

where 15 is the number of characters

1
  • Caution, not all chars might be truly random. E.g. In Java implementation of UUID, "version" part of this string is fixed to 4, which is why the provided line will always have a 4 at the end.
    – guglhupf
    Jan 11 at 12:37
6
('A'..'z').map { it }.shuffled().subList(0, 4).joinToString("")
3
  • 2
    While this might answer the authors question, it lacks some explaining words and/or links to documentation. Raw code snippets are not very helpful without some phrases around them. You may also find how to write a good answer very helpful. Please edit your answer - From Review
    – Nick
    Nov 24 '18 at 6:50
  • This won't produce result with duplicated chars such as aaaa or aaxy so it is not a random string generator.
    – Kent
    Aug 18 '20 at 10:43
  • 2
    Be aware that ('A'..'z') also includes the characters [, \, ], ^, _ and ` Nov 17 '20 at 9:47
4

Using Kotlin 1.3:

This method uses an input of your desired string length desiredStrLength as an Integer and returns a random alphanumeric String of your desired string length.

fun randomAlphaNumericString(desiredStrLength: Int): String {
    val charPool: List<Char> = ('a'..'z') + ('A'..'Z') + ('0'..'9')

    return (1..desiredStrLength)
        .map{ kotlin.random.Random.nextInt(0, charPool.size) }
        .map(charPool::get)
        .joinToString("")
}

If you prefer unknown length of alphanumeric (or at least a decently long string length like 36 in my example below), this method can be used:

fun randomAlphanumericString(): String {
    val charPool: List<Char> = ('a'..'z') + ('A'..'Z') + ('0'..'9')
    val outputStrLength = (1..36).shuffled().first()

    return (1..outputStrLength)
        .map{ kotlin.random.Random.nextInt(0, charPool.size) }
        .map(charPool::get)
        .joinToString("")
}
3

Or use coroutine API for the true Kotlin spirit:

buildSequence { val r = Random(); while(true) yield(r.nextInt(24)) }
   .take(10)
   .map{(it+ 65).toChar()}
   .joinToString("")
1
  • 2
    The advantage of coroutines is avoiding all these higher-order functions and writing a simple loop that does the equivalent of all of them. (1..10).forEach { yield(r.nextInt(24) + 65).toChar() } May 29 '18 at 10:29
2

Building off the answer from Paul Hicks, I wanted a custom string as input. In my case, upper and lower-case alphanumeric characters. Random().ints(...) also wasn't working for me, as it required an API level of 24 on Android to use it.

This is how I'm doing it with Kotlin's Random abstract class:

import kotlin.random.Random

object IdHelper {

    private val ALPHA_NUMERIC = ('0'..'9') + ('A'..'Z') + ('a'..'z')
    private const val LENGTH = 20

    fun generateId(): String {
        return List(LENGTH) { Random.nextInt(0, ALPHA_NUMERIC.size) }
                .map { ALPHA_NUMERIC[it] }
                .joinToString(separator = "")
    }
}

The process and how this works is similar to a lot of the other answers already posted here:

  1. Generate a list of numbers of length LENGTH that correspond to the index values of the source string, which in this case is ALPHA_NUMERIC
  2. Map those numbers to the source string, converting each numeric index to the character value
  3. Convert the resulting list of characters to a string, joining them with the empty string as the separator character.
  4. Return the resulting string.

Usage is easy, just call it like a static function: IdHelper.generateId()

2

I use the following code to generate random words and sentences.

val alphabet: List<Char> = ('a'..'z') + ('A'..'Z') + ('0'..'9')

val randomWord: String = List((1..10).random()) { alphabet.random() }.joinToString("")

val randomSentence: String = (1..(1..10).random()).joinToString(" ") { List((1..10).random()) { alphabet.random() }.joinToString("") }
1
fun randomAlphaNumericString(@IntRange(from = 1, to = 62) lenght: Int): String {
    val alphaNumeric = ('a'..'z') + ('A'..'Z') + ('0'..'9')
    return alphaNumeric.shuffled().take(lenght).joinToString("")
}
1
  • 1
    While this may solve OP's problem (I have not tested), code only answers are generally discouraged on SO. It would be better if you could include a description as to why this is an answer to the question. Thanks!
    – d_kennetz
    Feb 19 '19 at 18:00
0

The best way I think:

fun generateID(size: Int): String {
    val source = "A1BCDEF4G0H8IJKLM7NOPQ3RST9UVWX52YZab1cd60ef2ghij3klmn49opq5rst6uvw7xyz8"
    return (source).map { it }.shuffled().subList(0, size).joinToString("")
}
1
  • 2
    But isn't it, that this just mixes the characters (elements of the list) and thus every character would be chosen only once? Or am I missing something? Jan 3 '19 at 9:10
0

the question is old already, but I think another great solution (should work since Kotlin 1.3) would be the following:

// Just a simpler way to create a List of characters, as seen in other answers
// You can achieve the same effect by declaring it as a String "ABCDEFG...56789"
val alphanumeric = ('A'..'Z') + ('a'..'z') + ('0'..'9')

fun generateAlphanumericString(length: Int) : String {
    // The buildString function will create a StringBuilder
    return buildString {
        // We will repeat length times and will append a random character each time
        // This roughly matches how you would do it in plain Java
        repeat(length) { append(alphanumeric.random()) }
    }
}
0

You can use RandomStringUtils.randomAlphanumeric(min: Int, max: Int) -> String from apache-commons-lang3

0

Here's a cryptographically secure version of it, or so I believe:

fun randomString(len: Int): String {
    val random = SecureRandom()
    val chars = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789".toCharArray()
    return (1..len).map { chars[random.nextInt(chars.size)] }.joinToString("")
}

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