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In Ruby, I need to draw from an exponential distribution with mean m. Please show me how to do it quickly and efficiently. Eg. let's have:

m = 4.2

def exponential_distribution
  rand( m * 2 )
end

But of course, this code is wrong, and also, it only returns whole number results. I'm already tired today, please hint me towards a good solution.

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2 Answers 2

up vote 3 down vote accepted

How about using the distribution gem? Here's an example:

require 'distribution'

mean = 4.2
lambda = mean**-1

# generate a rng with exponential distribution
rng = Distribution::Exponential.rng(lambda)

# sample a value
sample = rng.call

If you need to change the value of lambda very often it might be useful to use the p_value method directly. A good sample can be found in the source code for Distribution::Exponential#rng, which basically just uses p_value internally. Here's an example of how to do it:

require 'distribution'

# use the same rng for each call
rng = Random

1.step(5, 0.1) do |mean|
  lambda = mean**-1

  # sample a value
  sample = Distribution::Exponential.p_value(rng.rand, lambda)
end
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How many such gems are there? How about the comparison between using eg. Ruby frontend to R? Once I'm sure I've a good one, I'll hapilly use it. Basically this was what I wanted. –  Boris Stitnicky Aug 18 '13 at 20:18
    
Any kind soul to give me the code? –  Boris Stitnicky Aug 18 '13 at 20:20
    
I believe it is made and used by the guys from SciRuby and i've had a great experience with that. I do not know about any competiting gems. –  Patrick Oscity Aug 18 '13 at 20:21
    
Oh really :-) I'm on my way to become one of those guys, so good to know :-) –  Boris Stitnicky Aug 18 '13 at 20:26
    
Please could you help me with one more thing: My lambda changes very often, could you show me how to do it withoug creating a Proc object? –  Boris Stitnicky Aug 18 '13 at 20:34

If you want to do it from scratch you can use inversion.

def exponential(mean)
  -mean * Math.log(rand) if mean > 0
end

If you want to parameterize it with rate lambda, the mean and rate are inverses of each other. Divide by -lambda rather than multiplying by -mean.

Technically it should be log(1.0 - rand), but since 1.0 - rand has a uniform distribution you can save one arithmetic operation by just using rand.

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Thanks. I'm really too tired today. –  Boris Stitnicky Aug 18 '13 at 23:00

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