61

Additionally, how can I format it as a string padded with zeros?

21 Answers 21

84

To generate the number call rand with the result of the expression "10 to the power of 10"

rand(10 ** 10)

To pad the number with zeros you can use the string format operator

'%010d' % rand(10 ** 10)

or the rjust method of string

rand(10 ** 10).to_s.rjust(10,'0')  
  • 1
    I just realized that with this method you can still end up with 0000000000. Is there any way to prevent that? – Tintin81 May 21 '17 at 7:43
  • not correct because sometimes it returns 1 or 2 less digit count number. i.e. 252402199, 12348208 for above. Please check my answer. – Lalit Kumar Maurya Aug 29 '18 at 10:31
54

I would like to contribute probably a simplest solution I know, which is a quite a good trick.

rand.to_s[2..11] 
 => "5950281724"
  • 2
    The only problem with this is that it gives you a string, so if you really need a number you then have to cast it (again) - which is a bit messy. – DaveStephens Mar 2 '14 at 17:08
  • 5
    Worth noting it'll only give you up to 16 digits though. – drewish Apr 9 '14 at 22:37
  • 3
    not guaranteed to return exact length – akostadinov Feb 16 '16 at 8:33
  • This is not recommended. It will not always be the expected length, as rand may may return a float value as low as 0.0, and the resulting string would be "0". If you'd like to confirm, try this out in irb by running (0.0).to_s[2..11]. – Eliot Sykes Jun 12 at 13:30
27

This is a fast way to generate a 10-sized string of digits:

10.times.map{rand(10)}.join # => "3401487670"
  • Also potentially more semantic – randallreedjr Jul 1 '16 at 15:08
  • The first number might be a zero though which results in a nine digit number though. – George Yacoub Nov 23 '16 at 19:43
  • @GeorgeYacoub I think OP wanted a zero padded string as end result. – steenslag Nov 23 '16 at 19:46
  • This does indeed satisfy all the demands noted by the OP - even when the first digit is a number. – Oskar Holmkratz Jan 27 '17 at 22:45
  • 1
    More performant way to achieve the same thing: Array.new(10) { rand(10) } – Zachary Wright Apr 6 '18 at 14:25
13

The most straightforward answer would probably be

rand(1e9...1e10).to_i

The to_i part is needed because 1e9 and 1e10 are actually floats:

irb(main)> 1e9.class
=> Float
  • 1
    This is even faster than both of the Benchmark examples put forth by @NhatTan. puts Benchmark.measure{(1..1000000).map{rand(1e9...1e10).to_i}} I actually need a string as my end result, but even adding .to_s at the end still yields a faster result. puts Benchmark.measure{(1..1000000).map{rand(1e9...1e10).to_i.to_s}} – Steve Meisner Jul 23 '15 at 19:00
  • I just tried this, but could never observe it starting with a 0, even though it has fixed length. 10000.times.map{rand(1e9...1e10).to_i.to_s}.select!{|x| x.start_with?("0")} yields [] – Oskar Holmkratz Jan 27 '17 at 22:53
  • 1
    @OskarHolmkratz this code generates a number between 1000000000 and 9999999999. – art-solopov Jan 27 '17 at 22:54
  • This is definitely the best answer. 👍🏻I wasn't even aware of the three dot variant. I've always used two dots. That's excellent. – jeffdill2 Aug 15 '18 at 20:45
9

DON'T USE rand.to_s[2..11].to_i

Why? Because here's what you can get:

rand.to_s[2..9] #=> "04890612"

and then:

"04890612".to_i #=> 4890612

Note that:

4890612.to_s.length #=> 7

Which is not what you've expected!

To check that error in your own code, instead of .to_i you may wrap it like this:

Integer(rand.to_s[2..9])

and very soon it will turn out that:

ArgumentError: invalid value for Integer(): "02939053"

So it's always better to stick to .center, but keep in mind that:

rand(9) 

sometimes may give you 0.

To prevent that:

rand(1..9)

which will always return something withing 1..9 range.

I'm glad that I had good tests and I hope you will avoid breaking your system.

7

Just because it wasn't mentioned, the Kernel#sprintf method (or it's alias Kernel#format in the Powerpack Library) is generally preferred over the String#% method, as mentioned in the Ruby Community Style Guide.

Of course this is highly debatable, but to provide insight:

The syntax of @quackingduck's answer would be

# considered bad
'%010d' % rand(10**10)

# considered good
sprintf('%010d', rand(10**10))

The nature of this preference is primarily due to the cryptic nature of %. It's not very semantic by itself and without any additional context it can be confused with the % modulo operator.

Examples from the Style Guide:

# bad
'%d %d' % [20, 10]
# => '20 10'

# good
sprintf('%d %d', 20, 10)
# => '20 10'

# good
sprintf('%{first} %{second}', first: 20, second: 10)
# => '20 10'

format('%d %d', 20, 10)
# => '20 10'

# good
format('%{first} %{second}', first: 20, second: 10)
# => '20 10'

To make justice for String#%, I personally really like using operator-like syntaxes instead of commands, the same way you would do your_array << 'foo' over your_array.push('123').

This just illustrates a tendency in the community, what's "best" is up to you.

More info in this blogpost.

7

Random number generation

Use Kernel#rand method:

rand(1_000_000_000..9_999_999_999) # => random 10-digits number

Random string generation

Use times + map + join combination:

10.times.map { rand(0..9) }.join # => random 10-digit string (may start with 0!)

Number to string conversion with padding

Use String#% method:

"%010d" % 123348 # => "0000123348"

Password generation

Use KeePass password generator library, it supports different patterns for generating random password:

KeePass::Password.generate("d{10}") # => random 10-digit string (may start with 0!)

A documentation for KeePass patterns can be found here.

3

I just want to modify first answer. rand (10**10) may generate 9 digit random no if 0 is in first place. For ensuring 10 exact digit just modify

code = rand(10**10)
while code.to_s.length != 10
code = rand(11**11)

end

3

Simplest way to generate n digit random number -

Random.new.rand((10**(n - 1))..(10**n))

generate 10 digit number number -

Random.new.rand((10**(10 - 1))..(10**10))
  • For 10 digit number the range should be (10**(10 - 1))...(10**10) because the range end is a 11-digit number and which is inclusive in the range when .. is used as the range operator. – Jignesh Gohel Aug 28 at 11:10
2

Here is an expression that will use one fewer method call than quackingduck's example.

'%011d' % rand(1e10)

One caveat, 1e10 is a Float, and Kernel#rand ends up calling to_i on it, so for some higher values you might have some inconsistencies. To be more precise with a literal, you could also do:

'%011d' % rand(10_000_000_000) # Note that underscores are ignored in integer literals
2

Try using the SecureRandom ruby library.

It generates random numbers but the length is not specific.

Go through this link for more information: http://ruby-doc.org/stdlib-2.1.2/libdoc/securerandom/rdoc/SecureRandom.html

  • e.g. 10.times.map{ SecureRandom.random_number(9)}.join – Zoran Majstorovic Nov 6 '16 at 20:28
  • I ended up using the following as it was about 25% faster than 10.times.map... SecureRandom.random_number(10**10).to_s – paneer_tikka Dec 31 '18 at 11:09
2

This technique works for any "alphabet"

(1..10).map{"0123456789".chars.to_a.sample}.join
=> "6383411680"
1
rand(9999999999).to_s.center(10, rand(9).to_s).to_i

is faster than

rand.to_s[2..11].to_i

You can use:

puts Benchmark.measure{(1..1000000).map{rand(9999999999).to_s.center(10, rand(9).to_s).to_i}}

and

puts Benchmark.measure{(1..1000000).map{rand.to_s[2..11].to_i}}

in Rails console to confirm that.

1

An alternative answer, using the regexp-examples ruby gem:

require 'regexp-examples'

/\d{10}/.random_example # => "0826423747"

There's no need to "pad with zeros" with this approach, since you are immediately generating a String.

1

Just use straightforward below.

rand(10 ** 9...10 ** 10)

Just test it on IRB with below.

(1..1000).each { puts rand(10 ** 9...10 ** 10) }
  • Will this include last number of range object ? which is actually 11 digit. – Amol Mohite Sep 6 at 6:41
1

('%010d' % rand(0..9999999999)).to_s

or

"#{'%010d' % rand(0..9999999999)}"

  • 1
    this is really good solution, why isn't this not more up-voted ? – equivalent8 Oct 2 at 17:00
0

This will work even on ruby 1.8.7:

rand(9999999999).to_s.center(10, rand(9).to_s).to_i

0

A better approach is use Array.new() instead of .times.map. Rubocop recommends it.

Example:

string_size = 9
Array.new(string_size) do
   rand(10).to_s
end

Rubucop, TimesMap:

https://www.rubydoc.info/gems/rubocop/RuboCop/Cop/Performance/TimesMap

0

In my case number must be unique in my models, so I added checking block.

  module StringUtil
    refine String.singleton_class do
      def generate_random_digits(size:)
        proc = lambda{ rand.to_s[2...(2 + size)] }
        if block_given?
          loop do
            generated = proc.call
            break generated if yield(generated) # check generated num meets condition
          end
        else
          proc.call
        end
      end
    end
  end
  using StringUtil
  String.generate_random_digits(3) => "763"
  String.generate_random_digits(3) do |num|
    User.find_by(code: num).nil?
  end => "689"(This is unique in Users code)
0

To generate a random, 10-digit string:

# This generates a 10-digit string, where the
# minimum possible value is "0000000000", and the
# maximum possible value is "9999999999"
SecureRandom.random_number(10**10).to_s.rjust(10, '0')

Here's more detail of what's happening, shown by breaking the single line into multiple lines with explaining variables:

  # Calculate the upper bound for the random number generator
  # upper_bound = 10,000,000,000
  upper_bound = 10**10

  # n will be an integer with a minimum possible value of 0,
  # and a maximum possible value of 9,999,999,999
  n = SecureRandom.random_number(upper_bound)

  # Convert the integer n to a string
  # unpadded_str will be "0" if n == 0
  # unpadded_str will be "9999999999" if n == 9_999_999_999
  unpadded_str = n.to_s

  # Pad the string with leading zeroes if it is less than
  # 10 digits long.
  # "0" would be padded to "0000000000"
  # "123" would be padded to "0000000123"
  # "9999999999" would not be padded, and remains unchanged as "9999999999"
  padded_str = unpadded_str.rjust(10, '0')
-1

Random 10 numbers:

require 'string_pattern'
puts "10:N".gen

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.