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I'm currently using the following to generate an 8 character pseudo random upper case string [A-Z]

value = ""; 8.times{value  << (65 + rand(25)).chr}

but it looks junky, and since it isn't a single statement it can't be passed as an argument. To get a mixed case string [a-zA-Z] I further hack into it with

value = ""; 8.times{value << ((rand(2)==1?65:97) + rand(25)).chr}

Just looks like trash. Anyone have a better method?

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44 Answers 44

That's basically the same thing I did for random strings in PHP. The only possible improvement I'd make is to drop that into a function, possibly with an argument for the length of the string if needed, so you can pass the function's return value as an argument.

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This is based on a few other answers, but it adds a bit more complexity:

def random_password
  specials = ((32..47).to_a + (58..64).to_a + (91..96).to_a + (123..126).to_a).pack('U*').chars.to_a
  numbers  = (0..9).to_a
  alpha    = ('a'..'z').to_a + ('A'..'Z').to_a
  %w{i I l L 1 O o 0}.each{ |ambiguous_character| 
    alpha.delete ambiguous_character 
  }
  characters = (alpha + specials + numbers)
  password = Random.new.rand(8..18).times.map{characters.sample}
  password << specials.sample unless password.join =~ Regexp.new(Regexp.escape(specials.join))
  password << numbers.sample  unless password.join =~ Regexp.new(Regexp.escape(numbers.join))
  password.shuffle.join
end

Essentially it ensures a password that is 8 - 20 characters in length, and which contains at least one number and one special character.

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This is almost as ugly but perhaps as step in right direction?

 (1..8).map{|i| ('a'..'z').to_a[rand(26)]}.join
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We've been using this on our code:

class String

  def self.random(length=10)
    ('a'..'z').sort_by {rand}[0,length].join
  end

end

The maximum length supported is 25 (we're only using it with the default anyway, so hasn't been a problem).

Someone mentioned that 'a'..'z' is suboptimal if you want to completely avoid generating offensive words. One of the ideas we had was removing vowels, but you still end up with WTFBBQ etc.

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1  
Yes, I suppose that technically isn't really a random string anymore, good find webmat. –  Jeff Sep 21 '08 at 1:50

In ruby 1.9 one can use Array's choice method which returns random element from array

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`pwgen 8 1`.chomp
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6  
Errno::ENOENT: No such file or directory - pwgen 8 1 –  Nakilon Aug 25 '11 at 1:41

Here is another method:

  • It uses the secure random number generator instead of rand()
  • Can be used in URLs and file names
  • Contains uppercase, lowercase characters and numbers
  • Has an option not to include ambiguous characters I0l01

Needs require "securerandom"

def secure_random_string(length = 32, non_ambiguous = false)
  characters = ('a'..'z').to_a + ('A'..'Z').to_a + ('0'..'9').to_a

  %w{I O l 0 1}.each{ |ambiguous_character| 
    characters.delete ambiguous_character 
  } if non_ambiguous

  (0...length).map{
    characters[ActiveSupport::SecureRandom.random_number(characters.size)]
  }.join
end
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My best shot, 2 solutions for a random string consisting of 3 ranges

(('a'..'z').to_a + ('A'..'Z').to_a + (0..9).to_a).sample(8).join

([(48..57),(65..90),(97..122)]).sample(8).collect{|x|x.chr}""

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Create an empty string or a pre-fix if require:

myStr = "OID-"

Use this code to populate the string with random numbers:

begin; n = ((rand * 43) + 47).ceil; myStr << n.chr if !(58..64).include?(n); end while(myStr.length < 12)

Notes:

(rand * 43) + 47).ceil

It will generate random numbers from 48-91 (0,1,2..Y,Z)

!(58..64).include?(n)

It is used to skip special characters (as I am not interested to include them)

while(myStr.length < 12)

It will generate total 12 characters long string including prefix.

Sample Output:

"OID-XZ2J32XM"
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Here's a solution that is flexible and allows dups:

class String
  # generate a random string of length n using current string as the source of characters
  def random(n)
    return "" if n <= 0
    (chars * (n / length + 1)).shuffle[0..n-1].join  
  end
end

Example:

"ATCG".random(8) => "CGTGAAGA"

You can also allow a certain character to appear more frequently:

"AAAAATCG".random(10) => "CTGAAAAAGC"

Explanation: The method above takes the chars of a given string and generates a big enough array. It then shuffles it, takes the first n items, then joins them.

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Array.new(8).inject(""){|r|r<<('0'..'z').to_a.shuffle[0]}  # 57
(1..8).inject(""){|r|r<<('0'..'z').to_a.shuffle[0]}        # 51
e="";8.times{e<<('0'..'z').to_a.shuffle[0]};e              # 45
(1..8).map{('0'..'z').to_a.shuffle[0]}.join                # 43
(1..8).map{rand(49..122).chr}.join                         # 34
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you can use String#random from the Facets of Ruby Gem facets:

https://github.com/rubyworks/facets/blob/126a619fd766bc45588cac18d09c4f1927538e33/lib/core/facets/string/random.rb

it basically does this:

class String
  def self.random(len=32, character_set = ["A".."Z", "a".."z", "0".."9"])
    characters = character_set.map { |i| i.to_a }.flatten
    characters_len = characters.length
    (0...len).map{ characters[rand(characters_len)] }.join
  end
end
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Another trick that works with Ruby 1.8+ and is fast is:

>> require "openssl"
>> OpenSSL::Random.random_bytes(20).unpack('H*').join
=> "2f3ff53dd712ba2303a573d9f9a8c1dbc1942d28"

It get's you random hex string. Similar way you should be able to generate base64 string ('M*').

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I don't know ruby, so I can't give you the exact syntax, but I would set a constant string with the list of acceptable characters, then use the substring operator to pick a random character out of it.

The advantage here is that if the string is supposed to be user-enterable, then you can exclude easily confused characters like l and 1 and i, 0 and O, 5 and S, etc.

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2  
If you don't know Ruby, why bother to answer? :/ –  Ardee Aram May 8 '13 at 9:59

protected by Daniel A. White Apr 3 '13 at 14:20

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