494

How to generate a random number within a range in Bash?

1
  • 38
    How random does it need to be?
    – bdonlan
    Jul 28, 2009 at 16:03

28 Answers 28

583

Use $RANDOM. It's often useful in combination with simple shell arithmetic. For instance, to generate a random number between 1 and 10 (inclusive):

$ echo $((1 + $RANDOM % 10))
3

The actual generator is in variables.c, the function brand(). Older versions were a simple linear generator. Version 4.0 of bash uses a generator with a citation to a 1988 paper, which presumably means it's a decent source of pseudorandom numbers. I wouldn't use it for a simulation (and certainly not for crypto), but it's probably adequate for basic scripting tasks.

If you're doing something that requires serious random numbers you can use /dev/random or /dev/urandom if they're available:

$ dd if=/dev/urandom count=4 bs=1 | od -t d
14
  • 50
    Be careful here. While this is fine in a pinch, doing arithmetic on random numbers can dramatically affect the randomness of your result. in the case of $RANDOM % 10, 8 and 9 are measurably (though marginally) less probable than 0-7, even if $RANDOM is a robust source of random data.
    – dimo414
    Feb 22, 2014 at 22:51
  • 10
    @dimo414 I'm curious to "marginally", do you have a source where I can find out more about this? May 26, 2014 at 6:27
  • 124
    By moduloing your random input, you are "pigeon-holing" the results. Since $RANDOM's range is 0-32767 the numbers 0-7 map to 3277 different possible inputs, but 8 and 9 can only be produced 3276 different ways (because 32768 and 32769 aren't possible). This is a minor issue for quick hacks, but means the result is not uniformly random. Random libraries, like Java's Random, offer functions to properly return a uniform random number in the given range, rather than simply mod-ing a non-divisible number.
    – dimo414
    May 26, 2014 at 16:07
  • 47
    Just for context, the basic pigeonholing for % 10 means 8 and 9 are about .03% less likely to occur than 0–7. If your shell script requires more accurate uniform random numbers than that, then by all means use a more complex and proper mechanism.
    – Nelson
    Sep 24, 2014 at 23:48
  • 14
    In (()), you can skip the prefix $ of variable, like this $((1 + RANDOM % 10)).
    – LianSheng
    Dec 29, 2020 at 17:18
130

Please see $RANDOM:

$RANDOM is an internal Bash function (not a constant) that returns a pseudorandom integer in the range 0 - 32767. It should not be used to generate an encryption key.

8
  • 3
    Does 32767 has any special meaning?
    – Jin Kwon
    Dec 23, 2016 at 7:31
  • 37
    @JinKwon 32767 is 2^16 / 2 - 1 which is the upper limit for a signed 16 bit integer. Aug 3, 2017 at 15:57
  • 5
    @JinKwon could you clarify why don't you say it is 2^15 - 1? It's equivalent, so I'm just curious if there is some context I'm missing? Aug 28, 2018 at 19:46
  • 24
    @BrettHolman I think he was trying to point out the "signed" part of the signed 16 bit integer. 2^16 values, split in half for postive & negative ints.
    – cody
    Dec 19, 2018 at 14:51
  • 3
    Shouldn't the range be -32768 to 32767 then?
    – m26a
    Sep 1, 2021 at 8:41
120

You can also use shuf (available in coreutils).

shuf -i 1-100000 -n 1
7
  • 1
    Add a $var instead of the range end, like this: var=100 && shuf -i 1-${var} -n 1
    – knipwim
    Jul 17, 2018 at 4:01
  • 2
    I prefer this option as it's easy to generate N random numbers with -n. E.g. Generate 5 random numbers between 1 and 100: shuf -i 1-100 -n 5
    – aerijman
    Jan 14, 2020 at 17:47
  • 6
    As far as I understand the numbers are not random. If you specify shuf -i 1-10 -n 10 you will get all numbers from 1 to 10 exactl one. If you specify -n 15 you will still get only those 10 numbers exactly once. That is really only shuffling, not generating random numbers.
    – radlan
    Apr 27, 2020 at 13:00
  • 3
    To get random numbers with replacement: -r May 1, 2020 at 19:01
  • 5
    By default, shuf doesn't use a cryptographically secure pseudo-random number generator, but it's possible to use shuf with /dev/urandom (--random-source option). Related: unix.stackexchange.com/a/705633/133353 (By default these commands use an internal pseudo-random generator initialized...)
    – Artfaith
    Jun 10, 2022 at 4:49
54

Try this from your shell:

$ od -A n -t d -N 1 /dev/urandom

Here, -t d specifies that the output format should be signed decimal; -N 1 says to read one byte from /dev/urandom.

3
  • 4
    The question asks for numbers in a range.
    – JSycamore
    May 17, 2017 at 13:11
  • 14
    you can remove spaces: od -A n -t d -N 1 /dev/urandom |tr -d ' '
    – Robert
    May 19, 2017 at 15:49
  • While a great answer for a source of random numbers, one should stress the point that signed decimals from 1 (or more) bytes have the caveat that, like $RANDOM, do not end at multiple of 10, and that may skew things if one uses the modulo. So with 1 byte one has up to 255 and thus using, say, %10, would give some digits a bit higher probabilities than others. Same with 2 bytes, 3 and so on.
    – Pier A
    Oct 15, 2022 at 22:07
34

I like this trick:

echo ${RANDOM:0:1} # random number between 1 and 9
echo ${RANDOM:0:2} # random number between 1 and 99

...

4
  • 20
    $RANDOM is in the range of 0 - 32767. You will end up with more numbers that start with 1, 2 or 3, than you will 4-9. If you're okay with an imbalanced distribution, this will work fine.
    – jbo5112
    Aug 21, 2018 at 18:40
  • 2
    @jbo5112 you are totally right, what about display last digit ? echo ${RANDOM:0-1} for one digit, ${RANDOM:0-2} for two digit ... ?
    – fraff
    Aug 28, 2018 at 9:07
  • 9
    If you use the last digit(s), it will be rather good, but it it will include 0's and 00's. On a single digit, 0-7 will occur 0.03% more often than 8-9. On 2 digits, 0-67 will occur 0.3% more often than 68-99. If you need a random number distribution that good, hopefully you're not using bash. With the original: ${RANDOM:0:1} has a 67.8% chance of giving you a 1 or a 2, ${RANDOM:0:2} only has a 0.03% chance of giving you a single digit number (should be 1%), and both have a 0.003% chance of giving you a 0. There are still use cases where this is fine (e.g. non-consistent input).
    – jbo5112
    Aug 29, 2018 at 17:45
  • This should be good: echo $((10#${RANDOM: -1}${RANDOM: -1})) It uses everytime the last digit and leading zeros are removed. For more digits only an additional ${RANDOM: -1} needs to be added.
    – mgutt
    Sep 27, 2023 at 13:41
31

you can also get random number from awk

awk 'BEGIN {
   # seed
   srand()
   for (i=1;i<=1000;i++){
     print int(1 + rand() * 100)
   }
}'
4
  • 1
    +1 you know, at first I though why would you ever want to do it like this, but actually I quite like it.
    – zelanix
    Jan 29, 2014 at 2:34
  • 2
    Thanks for giving a solution that include seeding. I couldn't find it anywhere! Aug 23, 2016 at 10:24
  • 5
    +1 for seeding. It might be worth mentioning that srand() 's seed is the current CPU time. If you need to specify a specific seed, so RNG can be duplicated, use srand(x) where x is the seed. Also, quoted from GNU awk's numeric function manual, "different awk implementations use different random-number generators internally." The upshot is that if you are interested in generating statistical distribution, you should expect slight variations going from one runtime to the next on different platform (all running awk or gawk).
    – Cbhihe
    Feb 24, 2019 at 12:51
  • 1
    BEWARE srand() seeds using the current CPU time in seconds, so if you run this script several times in one second, the script will print the same values each time. If you want to be safe then just replace srand() with srand('$(date +%s%N)') in the answer above to use the current time in nanoseconds (this does not work on macos at time of writing but should work on Linux)
    – Brandon
    Oct 9, 2022 at 22:23
25

There is $RANDOM. I don't know exactly how it works. But it works. For testing, you can do :

echo $RANDOM
2
  • How can we get random numbers in a range 1-10 Jan 12, 2022 at 11:05
  • 2
    @ghost21blade $(( ($RANDOM % 10) + 1 ))
    – sherrellbc
    Dec 16, 2022 at 20:35
23

bash 5.1 introduces a new variable, SRANDOM, which gets its random data from the system's entropy engine and so is not linear and cannot be reseeded to get an identical random sequence. This variable can be used as a substitute for RANDOM for generating more random numbers.

$ echo $((1 + SRANDOM % 10))
4
0
16

Random number between 0 and 9 inclusive.

echo $((RANDOM%10))
2
  • 2
    My bad, didn't read the man page properly. $RANDOM only goes from 0 to 32767. It should have said "Random number mostly between 1 and 3, with a few wingers" ;) Dec 7, 2013 at 14:00
  • 4
    What? It'll still be between 0 and 9, though 8 and 9 will have slightly less probability of occurring than 0 through 7, as mentioned in another answer.
    – kini
    Apr 7, 2016 at 7:54
9

I wrote several articles on this.

$ RANDOM=$(date +%s%N | cut -b10-19 | sed 's|^[0]\+||')
$ echo $(( $RANDOM % 113 + 13 ))

The above will give a number between 13 and 125 (113-1+13), with reasonable random entropy.

8
  • 2
    I added a tweak to get rid of leading zeros: RANDOM=$(date +%s%N | cut -b10-19 | sed -e 's/^0*//;s/^$/0/')
    – JCCyC
    Jul 1, 2021 at 21:28
  • 1
    @JCCyC Interesting idea! Why remove blanks and swap with 0 though? i.e. that should not happen to start with? Jul 1, 2021 at 23:10
  • 1
    @JCCyC A better option to strip the leading zero, instead of using sed (a separate program), is Bash's parameter expansion: ${RANDOM#0}.
    – legends2k
    Jun 28, 2023 at 8:13
  • 1
    @legends2k That would not work, as the issue is in the RANDOM=... assignment. I've fixed the answer to include a 0-fix using sed. Jun 28, 2023 at 21:26
  • 2
    @Roel You're right, I missed the point that we've to assign to RANDOM without the leading zero to seed the random number generator. Using another variable is an option though: live example; an extra line but not an extra process. Thanks for the answer and the links :)
    – legends2k
    Jun 29, 2023 at 15:59
7

If you are using a linux system you can get a random number out of /dev/random or /dev/urandom. Be carefull /dev/random will block if there are not enough random numbers available. If you need speed over randomness use /dev/urandom.

These "files" will be filled with random numbers generated by the operating system. It depends on the implementation of /dev/random on your system if you get true or pseudo random numbers. True random numbers are generated with help form noise gathered from device drivers like mouse, hard drive, network.

You can get random numbers from the file with dd

6

What about:

perl -e 'print int rand 10, "\n"; '
1
  • 2
    For a cryptographically secure random number, you need to read from /dev/urandom or use the Crypt::Random libraries.
    – k-h
    Jan 30, 2019 at 21:59
6

Reading from /dev/random or /dev/urandom character special files is the way to go.

These devices return truly random numbers when read and are designed to help application software choose secure keys for encryption. Such random numbers are extracted from an entropy pool that is contributed by various random events. {LDD3, Jonathan Corbet, Alessandro Rubini, and Greg Kroah-Hartman]

These two files are interface to kernel randomization, in particular

void get_random_bytes_arch(void* buf, int nbytes)

which draws truly random bytes from hardware if such function is by hardware implemented (usually is), or it draws from entropy pool (comprised of timings between events like mouse and keyboard interrupts and other interrupts that are registered with SA_SAMPLE_RANDOM).

dd if=/dev/urandom count=4 bs=1 | od -t d

This works, but writes unneeded output from dd to stdout. The command below gives just the integer I need. I can even get specified number of random bits as I need by adjustment of the bitmask given to arithmetic expansion:

me@mymachine:~/$ x=$(head -c 1 /dev/urandom > tmp && hexdump 
                         -d tmp | head -n 1 | cut -c13-15) && echo $(( 10#$x & 127 ))
0
6

Maybe I am a bit too late, but what about using jot to generate a random number within a range in Bash?

jot -r -p 3 1 0 1

This generates a random (-r) number with 3 decimal places precision (-p). In this particular case, you'll get one number between 0 and 1 (1 0 1). You can also print sequential data. The source of the random number, according to the manual, is:

Random numbers are obtained through arc4random(3) when no seed is specified, and through random(3) when a seed is given.

2
  • 3
    Must be installed: sudo apt install athena-jot
    – xerostomus
    Jan 13, 2020 at 0:42
  • 1
    Works out of the box on macOS 10.14.
    – grettke
    Jan 3, 2022 at 0:47
6

Pure Bash random number without moduloing

lowerRange=10   # inclusive
upperRange=20   # exclusive

randomNumber=$(( RANDOM * ( upperRange - lowerRange) / 32767 + lowerRange ))
2
  • Probably the best solution. Simple & flexible.
    – Cris
    Sep 23, 2022 at 18:31
  • using lowerRange=1 and upperRange=1000000 this solution works while others with % won't, Mar 9, 2023 at 8:13
5

I have taken a few of these ideas and made a function that should perform quickly if lots of random numbers are required.

calling od is expensive if you need lots of random numbers. Instead I call it once and store 1024 random numbers from /dev/urandom. When rand is called, the last random number is returned and scaled. It is then removed from cache. When cache is empty, another 1024 random numbers is read.

Example:

rand 10; echo $RET

Returns a random number in RET between 0 and 9 inclusive.

declare -ia RANDCACHE
declare -i RET RAWRAND=$(( (1<<32)-1 ))

function rand(){  # pick a random number from 0 to N-1. Max N is 2^32
  local -i N=$1
  [[ ${#RANDCACHE[*]} -eq 0 ]] && { RANDCACHE=( $(od -An -tu4 -N1024 /dev/urandom) ); }  # refill cache
  RET=$(( (RANDCACHE[-1]*N+1)/RAWRAND ))  # pull last random number and scale
  unset RANDCACHE[${#RANDCACHE[*]}-1]     # pop read random number
};

# test by generating a lot of random numbers, then effectively place them in bins and count how many are in each bin.

declare -i c; declare -ia BIN

for (( c=0; c<100000; c++ )); do
  rand 10
  BIN[RET]+=1  # add to bin to check distribution
done

for (( c=0; c<10; c++ )); do
  printf "%d %d\n" $c ${BIN[c]} 
done

UPDATE: That does not work so well for all N. It also wastes random bits if used with small N. Noting that (in this case) a 32 bit random number has enough entropy for 9 random numbers between 0 and 9 (10*9=1,000,000,000 <= 2*32) we can extract multiple random numbers from each 32 random source value.

#!/bin/bash

declare -ia RCACHE

declare -i RET             # return value
declare -i ENT=2           # keep track of unused entropy as 2^(entropy)
declare -i RND=RANDOM%ENT  # a store for unused entropy - start with 1 bit

declare -i BYTES=4         # size of unsigned random bytes returned by od
declare -i BITS=8*BYTES    # size of random data returned by od in bits
declare -i CACHE=16        # number of random numbers to cache
declare -i MAX=2**BITS     # quantum of entropy per cached random number
declare -i c

function rand(){  # pick a random number from 0 to 2^BITS-1
  [[ ${#RCACHE[*]} -eq 0 ]] && { RCACHE=( $(od -An -tu$BYTES -N$CACHE /dev/urandom) ); }  # refill cache - could use /dev/random if CACHE is small
  RET=${RCACHE[-1]}              # pull last random number and scale
  unset RCACHE[${#RCACHE[*]}-1]  # pop read random number
};

function randBetween(){
  local -i N=$1
  [[ ENT -lt N ]] && {  # not enough entropy to supply ln(N)/ln(2) bits
    rand; RND=RET       # get more random bits
    ENT=MAX             # reset entropy
  }
  RET=RND%N  # random number to return
  RND=RND/N  # remaining randomness
  ENT=ENT/N  # remaining entropy
};

declare -ia BIN

for (( c=0; c<100000; c++ )); do
  randBetween 10
  BIN[RET]+=1
done

for c in ${BIN[*]}; do
  echo $c
done
5
  • I tried this - it took 10 seconds of 100% cpu and then printed 10 numbers that didn't look random at ALL.
    – Carlo Wood
    Nov 18, 2014 at 18:13
  • I remember now. This code generates 100,000 random numbers. It puts each in a 'bin' to look at how random it is. There are 10 bins. These numbers should be similar if each random number between 0 and 9 is equally likely. If you want to print each number, echo $RET after randBetween 10. Nov 20, 2014 at 13:07
  • od -An -tu4 -N40 /dev/urandom will generate 10 random unsigned 32 bit integers separated with whitespace. you can store it in an array and use it afterwards. your code seems to be an overkill.
    – Ali
    Nov 30, 2015 at 15:53
  • @Ali, OP did not specify that they wanted 32 bit nor any other sized random number. I and some others interpreted this question as providing a random number within a range. My rand function achieves this goal and also reduces loss of entropy that, if exhausted, causes programs to block. od on /dev/urandom returns only 2^N bit random numbers and OP would then need to store multiple values into an array, sequentially extracting them from this array, and replenishing this array. Perhaps you can code this as an answer and handle other random number ranges? Dec 1, 2015 at 13:21
  • @philcolbourn, you are correct about the OP not specifying what kind of random number he wants and it missed my attention. But he only asked: "How to generate a random number in bash?". My point is that he only asked for one random number. Albeit this critic applies to my previous comment (generating 10 random numbers) as well.
    – Ali
    Dec 2, 2015 at 11:51
4

Generate random number in the range of 0 to n (signed 16-bit integer). Result set in $RAND variable. For example:

#!/bin/bash

random()
{
    local range=${1:-1}

    RAND=`od -t uI -N 4 /dev/urandom | awk '{print $2}'`
    let "RAND=$RAND%($range+1)"
}

n=10
while [ $(( n -=1 )) -ge "0" ]; do
    random 500
    echo "$RAND"
done
4

You can use a seed, see documentation:

RANDOM=$(date +%s%N | cut -b10-19)
echo $(( $RANDOM % 100 + 1 ))
3

Based on the great answers of @Nelson, @Barun and @Robert, here is a Bash script that generates random numbers.

  • Can generate how many digits you want.
  • each digit is separately generated by /dev/urandom which is much better than Bash's built-in $RANDOM
#!/usr/bin/env bash

digits=10

rand=$(od -A n -t d -N 2 /dev/urandom |tr -d ' ')
num=$((rand % 10))
while [ ${#num} -lt $digits ]; do
  rand=$(od -A n -t d -N 1 /dev/urandom |tr -d ' ')
  num="${num}$((rand % 10))"
done
echo $num
0
3

Here is a function I wrote which will output a random number in a desired range>

Description:

random <min> <max>

Generate a random number from min to max, inclusive. Both min and max can be positive OR negative numbers, and the generated random number can be negative too, so long as the range (max - min + 1) is less than or equal to 32767. Max must be >= min.

The core of it is this:

random() {
    min="$1"
    max="$2"
    
    range=$((max - min + 1))
    rand=$((min + (RANDOM % range)))
    echo "$rand"
}

Usage:

# general form: obtain a random number between min and max, inclusive
random <min> <max>

# Example: obtain a random number from -10 to 10, inclusive
random -10 10

This works from the bash built-in variable RANDOM, which probably just uses C rand() under the hood, since they both have a max value of 32767--see:

  1. https://en.cppreference.com/w/c/numeric/random/rand
  2. https://en.cppreference.com/w/c/numeric/random/RAND_MAX

For the bash documentation, see man bash:

RANDOM

Each time this parameter is referenced, a random integer between 0 and 32767 is generated. The sequence of random numbers may be initialized by assigning a value to RANDOM. If RANDOM is unset, it loses its special properties, even if it is subsequently reset.

Robust, runnable, sourceable version of the script

Here is a much more robust version of my random function above. It includes full error checking, bounds checking, a help menu via random --help or random -h, and a special run_check feature which allows you to source OR run this script so that you can source it to import the random function into any other script--just like you can do in Python!

random.sh <-- click this link to always get the latest version from my eRCaGuy_dotfiles repo.

RETURN_CODE_SUCCESS=0
RETURN_CODE_ERROR=1

HELP_STR="\
Generate a random integer number according to the usage styles below.

USAGE STYLES:
    'random'
        Generate a random number from 0 to 32767, inclusive (same as bash variable 'RANDOM').
    'random <max>'
        Generate a random number from 0 to 'max', inclusive.
    'random <min> <max>'
        Generate a random number from 'min' to 'max', inclusive. Both 'min' and 'max' can be
        positive OR negative numbers, and the generated random number can be negative too, so
        long as the range (max - min + 1) is less than or equal to 32767. Max must be >= min.

This file is part of eRCaGuy_dotfiles: https://github.com/ElectricRCAircraftGuy/eRCaGuy_dotfiles
"

print_help() {
    echo "$HELP_STR" | less -RFX
}

# Get a random number according to the usage styles above.
# See also `utils_rand()` in utilities.c:
# https://github.com/ElectricRCAircraftGuy/eRCaGuy_hello_world/blob/master/c/utilities.c#L176
random() {
    # PARSE ARGUMENTS

    # help menu
    if [ "$1" = "-h" ] || [ "$1" = "--help" ]; then
        print_help
        exit $RETURN_CODE_SUCCESS
    fi

    # 'random'
    if [ $# -eq 0 ]; then
        min=0
        max="none"
    # 'random max'
    elif [ $# -eq 1 ]; then
        min=0
        max="$1"
    # 'random min max'
    elif [ $# -eq 2 ]; then
        min="$1"
        max="$2"
    else
        echo "ERROR: too many arguments."
        exit "$RETURN_CODE_ERROR"
    fi

    # CHECK FOR ERRORS

    if [ "$max" = "none" ]; then
        rand="$RANDOM"
        echo "$rand"
        exit "$RETURN_CODE_SUCCESS"
    fi

    if [ "$max" -lt "$min" ]; then
        echo "ERROR: max ($max) < min ($min). Max must be >= min."
        exit "$RETURN_CODE_ERROR"
    fi

    # CALCULATE THE RANDOM NUMBER

    # See `man bash` and search for `RANDOM`. This is a limitation of that value.
    RAND_MAX=32767

    range=$((max - min + 1))
    if [ "$range" -gt "$RAND_MAX" ]; then
        echo "ERROR: the range (max - min + 1) is too large. Max allowed = $RAND_MAX, but actual" \
             "range = ($max - $min + 1) = $range."
        exit "$RETURN_CODE_ERROR"
    fi

    # NB: `RANDOM` is a bash built-in variable. See `man bash`, and also here:
    # https://stackoverflow.com/a/1195035/4561887
    rand=$((min + (RANDOM % range)))
    echo "$rand"
}

# Set the global variable `run` to "true" if the script is being **executed** (not sourced) and
# `main` should run, and set `run` to "false" otherwise. One might source this script but intend
# NOT to run it if they wanted to import functions from the script.
# See:
# 1. *****https://github.com/ElectricRCAircraftGuy/eRCaGuy_hello_world/blob/master/bash/argument_parsing__3_advanced__gen_prog_template.sh
# 1. my answer: https://stackoverflow.com/a/70662049/4561887
# 1. https://github.com/ElectricRCAircraftGuy/eRCaGuy_hello_world/blob/master/bash/check_if_sourced_or_executed.sh
run_check() {
    # This is akin to `if __name__ == "__main__":` in Python.
    if [ "${FUNCNAME[-1]}" == "main" ]; then
        # This script is being EXECUTED, not sourced
        run="true"
    fi
}

# ----------------------------------------------------------------------------------------------------------------------
# Main program entry point
# ----------------------------------------------------------------------------------------------------------------------

# Only run main function if this file is being executed, NOT sourced.
run="false"
run_check
if [ "$run" == "true" ]; then
    random "$@"
fi

Todo

  1. [ ] Make a new answer with a modern C++-based uniform_int_distribution, auto-built for your Linux system, and called in Bash. See here.
1
  • TODO: make a new answer with a modern C++-based uniform_int_distribution, auto-built for your Linux system, and called in Bash. See here. Feb 3, 2023 at 15:51
2

Random branching of a program or yes/no; 1/0; true/false output:

if [ $RANDOM -gt 16383  ]; then              # 16383 = 32767/2 
    echo var=true/1/yes/go_hither
else 
    echo var=false/0/no/go_thither
fi

of if you lazy to remember 16383:

if (( RANDOM % 2 )); then 
    echo "yes"
else 
    echo "no"
fi
2

Wanted to use /dev/urandom without dd and od

function roll() { local modulus=${1:-6}; echo $(( 1 + 0x$(env LC_CTYPE=C tr -dc '0-9a-fA-F' < /dev/urandom | head -c5 ) % $modulus )); }

Testing

$ roll
5
$ roll 12
12

Just how random is it?

$ (echo "count roll percentage"; i=0; while [ $i -lt 10000 ]; do roll; i=$((i+1)); done | sort | uniq -c | awk '{print $0,($1/10000*100)"%"}') | column -t
count  roll  percentage
1625   1     16.25%
1665   2     16.65%
1646   3     16.46%
1720   4     17.2%
1694   5     16.94%
1650   6     16.5%
2

Generate random 3-digit number

This is great for creating sample data. Example: put all testing data in a directory called "test-create-volume-123", then after your test is done, zap the entire directory. By generating exactly three digits, you don't have weird sorting issues.

printf '%02d\n' $((1 + RANDOM % 100))

This scales down, e.g. to one digit:

printf '%01d\n' $((1 + RANDOM % 10))

It scales up, but only to four digits. See above as to why :)

1

A bash function that uses perl to generate a random number of n digits. Specify either the number of digits or a template of n 0s.

rand() {
  perl -E '$ARGV[0]||=""; $ARGV[0]=int($ARGV[0])||length($ARGV[0]); say join "", int(rand(9)+1)*($ARGV[0]?1:0), map { int(rand(10)) } (0..($ARGV[0]||0)-2)' $1
}

Usage:

$ rand 3
381
$ rand 000
728

Demonstration of calling rand n, for n between 0 and 15:

$ for n in {0..15}; do printf "%02d: %s\n" $n $(rand $n); done
00: 0
01: 3
02: 98
03: 139
04: 1712
05: 49296
06: 426697
07: 2431421
08: 82727795
09: 445682186
10: 6368501779
11: 51029574113
12: 602518591108
13: 5839716875073
14: 87572173490132
15: 546889624135868

Demonstration of calling rand n, for n a template of 0s between length 0 and 15

$ for n in {0..15}; do printf "%15s :%02d: %s\n" $(printf "%0${n}d" 0) $n $(rand $(printf "%0${n}d" 0)); done
              0 :00: 0
              0 :01: 0
             00 :02: 70
            000 :03: 201
           0000 :04: 9751
          00000 :05: 62237
         000000 :06: 262860
        0000000 :07: 1365194
       00000000 :08: 83953419
      000000000 :09: 838521776
     0000000000 :10: 2355011586
    00000000000 :11: 95040136057
   000000000000 :12: 511889225898
  0000000000000 :13: 7441263049018
 00000000000000 :14: 11895209107156
000000000000000 :15: 863219624761093
0

No other dependency is needed:

$(((RANDOM % $((upperBound - lowerBound))) + lowerBound))

The random number range is [lowerBound,upperBound)

2
  • Is the upperBound inclusive or exclusive?
    – tovicheung
    Nov 19, 2022 at 10:09
  • lowerBound inclusive, upperBound exclusive.
    – Shiming
    Nov 22, 2022 at 4:58
0

random numbers from 001 to 087

$ printf "%03d" $(shuf -i 1-87 -n 1 ) 

As an example of actually using it, the Aleph With Beth videos all look something like:

039 - Verbs come & go (qatal singular) - Lesson 21.mp4

and this command:

$ mpv -fs $(printf "%03d" $(shuf -i 1-87 -n 1 ))*

plays a random video from the first 87, for revision purposes.

0

For a random number with fixed number of digits (e.g. 8):

cat /dev/urandom | tr -dc '0-9' | fold -w 8 | head -n 1

And in case you need a random string use:

cat /dev/urandom | tr -dc 'a-zA-Z0-9' | fold -w 8 | head -n 1

Ref: https://gist.github.com/earthgecko/3089509

0

Using variable SRANDOM, if exist (bash >= 5.1 or khs93) and if not, this ex. generating 10 number length number using RANDOM. Full builtin.

rand10()
{
   xrand=""
   for xc in {1..4}
   do
         x=$(printf '%04d' $(( RANDOM % 10000 )) )
         xrand=$xrand${x:0:3}
   done
   echo "${xrand:0:10}"
}

[ "$SRANDOM" = "" ] && SRANDOM=$(rand10)
printf '%09d\n' $(( SRANDOM % 1000000000 ))

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