Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I'm going crazy: Where is the Ruby function for factorial? No, I don't need tutorial implementations, I just want the function from the library. It's not in Math!

I'm starting to doubt, is it a standard library function?

share|improve this question
55  
I do it like 6.downto(1).inject(:*) – mckeed Mar 12 '10 at 17:26
34  
@mckeed: Or (1..6).inject(:*) which is a bit more succinct. – sepp2k Mar 12 '10 at 17:30
8  
why would you expect there to be one? – James K Polk Mar 13 '10 at 0:43
4  
I wonder what the status is of mathematics and science libraries for Ruby. – Andrew Grimm Jun 15 '11 at 3:10
4  
Just a note on the provided examples using inject. (1..num).inject(:*) fails for the case where num == 0. (1..(num.zero? ? 1 : num)).inject(:*) gives the correct answer for the 0 case and returns nil for negative parameters. – Yogh Dec 20 '11 at 9:19

16 Answers 16

up vote 97 down vote accepted

There is no factorial function in the standard library.

share|improve this answer
2  
And... Why not? – iamunstoppable Nov 20 '14 at 3:50

It's not in the standard library but you can extend the Integer class.

class Integer
  def factorial_recursive
    self <= 1 ? 1 : self * (self - 1).factorial
  end
  def factorial_iterative
    f = 1; for i in 1..self; f *= i; end; f
  end
  alias :factorial :factorial_iterative
end

N.B. Iterative factorial is a better choice for obvious performance reasons.

share|improve this answer
7  
He explicitly said, he doesn't want an implementation. – sepp2k Mar 12 '10 at 17:26
94  
He may not; but people searching SO for "Ruby factorial" might. – Pierre-Antoine LaFayette Mar 12 '10 at 17:49
3  
another implementation here: rosettacode.org/wiki/Factorial#Ruby – glenn jackman Mar 12 '10 at 20:38
    
That is an elegant way to do it :) – Pierre-Antoine LaFayette Mar 12 '10 at 20:51
    
rosettacode.org/wiki/Factorial#Ruby is just wrong. There isn't a case for 0 – Douglas G. Allen Apr 24 '13 at 22:42

Like this is better

(1..n).inject(:*) || 1
share|improve this answer
11  
Or specify the initial value directly: (1..n).reduce(1, :*). – Andrew Marshall Feb 25 '15 at 5:39

Shamelessly cribbed from http://rosettacode.org/wiki/Factorial#Ruby, my personal favorite is

class Integer
  def fact
    (1..self).reduce(:*) || 1
  end
end

>> 400.fact
=> 64034522846623895262347970319503005850702583026002959458684445942802397169186831436278478647463264676294350575035856810848298162883517435228961988646802997937341654150838162426461942352307046244325015114448670890662773914918117331955996440709549671345290477020322434911210797593280795101545372667251627877890009349763765710326350331533965349868386831339352024373788157786791506311858702618270169819740062983025308591298346162272304558339520759611505302236086810433297255194852674432232438669948422404232599805551610635942376961399231917134063858996537970147827206606320217379472010321356624613809077942304597360699567595836096158715129913822286578579549361617654480453222007825818400848436415591229454275384803558374518022675900061399560145595206127211192918105032491008000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000

This implementation also happens to be the fastest among the variants listed in Rosetta Code.

update

Added || 1 to handle the zero case.

share|improve this answer
1  
what the heck does that mean?! yeah it's fast but its very unuserfriendly though – niccolo m. May 17 '12 at 13:19
3  
it's also incorrect for 0! - should be something like: if self <= 1; 1; else; (1..self).reduce(:*); end – Tarmo May 21 '12 at 19:55
    
@Tarmo -- you are right. Fixed the answer to handle 0! – fearless_fool Oct 29 '13 at 19:06
5  
@allen - Don't blame the language if you can't understand it. It simply means, take the range 1 to self, then remove the first element (1) from it (i.e. that's what reduce means in functional programming). Then remove the first element of what's left (2) and multiply (:*) those together. Now remove the first element from what's left (3) and multiply that with the running total. Keep going until there's nothing left (i.e. you've handled the entire range). If reduce fails (because the array is empty in the case of 0!) then just return 1 anyway. – SDJMcHattie Dec 17 '13 at 23:11

You could also use Math.gamma function which boils down to factorial for integer parameters.

share|improve this answer
3  
From the docs: "Note that gamma(n) is same as fact(n-1) for integer n > 0. However gamma(n) returns float and can be an approximation". If one takes that into account, it works, but the reduce solution seems a lot more straight forward. – Michael Kohl Jan 2 '12 at 15:51
    
Thanks for this! My gut says to use towards the standard library over a custom-written reduce whenever possible. Profiling might suggest otherwise. – David James Sep 18 '12 at 17:31
    
@DavidJames Couldn't trust my gut. See gist.github.com/4638729 – Alec Wenzowski Jan 25 '13 at 23:08
1  
Note: It's O(1) and precise for 0..22: MRI Ruby actually performs a lookup for those values (see static const double fact_table[] in the source). Beyond that, its an approximation. 23!, for instance, requires a 56-bit mantissa which is impossible to represent precisely using he IEEE 754 double which has a 53-bit mantissas. – faraz Mar 17 '14 at 20:02

I just wrote my own:

def fact(n)
  if n<= 1
    1
  else
    n * fact( n - 1 )
  end
end

Also, you can define a falling factorial:

def fall_fact(n,k)
  if k <= 0
    1
  else
    n*fall_fact(n - 1, k - 1)
  end
end
share|improve this answer

I would do

(1..n).inject(1, :*)
share|improve this answer

Using Math.gamma.floor is an easy way to produce an approximation and then round it back down to the correct integer result. Should work for all Integers, include an input check if necessary.

share|improve this answer
4  
Correction: After n = 22 it ceases to give an exact answer and produces approximations. – Ayarch Jan 10 '14 at 18:16
class Integer
  def !
    (1..self).inject(:*)
  end
end

examples

!3  # => 6
!4  # => 24
share|improve this answer
    
What’s wrong with class Integer ; def ! ; (1..self).inject(:*) ; end ; end? – mudasobwa Jun 21 at 12:53
    
@mudasobwa I like it, I have refactored for simplicity. – iamunstoppable Jul 18 at 19:14

Just call this function

def factorial(n=0)
  (1..n).inject(:*)
end

examples

factorial(3)
factorial(11)
share|improve this answer

You will probably find a Ruby feature request useful. It contains a nontrivial patch that includes a demo Bash script. The speed difference between a naive loop and the solution presented in the batch can be literally 100x (hundred fold). Written all in pure Ruby.

share|improve this answer

In math, factorial of n is just the gamma function of n+1
(see: http://en.wikipedia.org/wiki/Gamma_function)

Ruby has Math.gamma() so just use Math.gamma(n+1) and cast it back to an integer if desired.

share|improve this answer
class Integer
  def factorial
    return self < 0 ? false : self==0 ? 1 : self.downto(1).inject(:*)
    #Not sure what other libraries say, but my understanding is that factorial of 
    #anything less than 0 does not exist.
  end
end
share|improve this answer

Just another way to do it, although it really isn't necessary.

class Factorial
   attr_reader :num
   def initialize(num)
      @num = num
   end

   def find_factorial
      (1..num).inject(:*) || 1
   end
end

number = Factorial.new(8).find_factorial
puts number
share|improve this answer

And yet another way (=

def factorial(number)
  number = number.to_i
  number_range = (number).downto(1).to_a
  factorial = number_range.inject(:*)
  puts "The factorial of #{number} is #{factorial}"
end
factorial(#number)
share|improve this answer

Here is my version seems to be clear to me even though it's not as clean.

def factorial(num)
    step = 0
    (num - 1).times do (step += 1 ;num *= step) end
    return num
end

This was my irb testing line that showed each step.

num = 8;step = 0;(num - 1).times do (step += 1 ;num *= step; puts num) end;num
share|improve this answer

protected by Yu Hao May 20 at 17:51

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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