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I would like to randomly select one element from an array, but each element has a known probability of selection.

All chances together (within the array) sums to 1.

What algorithm would you suggest as the fastest and most suitable for huge calculations?

Example:

id => chance
array[
    0 => 0.8
    1 => 0.2
]

for this pseudocode, the algorithm in question should on multiple calls statistically return four elements on id 0 for one element on id 1.

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11 Answers 11

up vote 30 down vote accepted

Compute the discrete cumulative density function (CDF) of your list -- or in simple terms the array of cumulative sums of the weights. Then generate a random number in the range between 0 and the sum of all weights (might be 1 in your case), do a binary search to find this random number in your discrete CDF array and get the value corresponding to this entry -- this is your weighted random number.

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The original array has about 500 elements, and the chances may differ very slightly, making the new weighed array really huge (I guess it would quickly reach over 10e5 elements). Would that effect the performance? Again, I have to use this function really often. – Mikulas Dite Dec 16 '10 at 17:28
3  
@Mikulas Dite: This binary search would take log2(500) = 9 steps per lookup. – thejh Dec 16 '10 at 17:33
    
First I thought that you are talking about creating the new array as @thejh suggested. However, I get it now. Thanks for the best solution! : ) – Mikulas Dite Dec 16 '10 at 17:40
1  
@Mazzy: You are looking for the interval containing the random number you generated -- in this case the interval form 0.3 to 0.7. Of course you can't expect the exact value to appear, but a binary search for finding the interval will work anyway. – Sven Marnach Mar 23 '15 at 16:35
1  
@Mazzy: Binary search can be easily used to find the interval the value you are looking for lies in, and that's all you need. Most binary search implementations in standard libraries of programming languages don't require the exact value to be found, e.g. lower_bound() in C++ or bisect_left() in Python. – Sven Marnach Mar 30 '15 at 10:18

The algorithm is straight forward

rand_no = rand(0,1)
for each element in array 
     if(rand_num < element.probablity)
          select and break
     rand_num = rand_num - element.probability
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This would not work, because I have the chances, not the area. | Even though someone downvoted this answer, it gave me a viable idea. The limits are quite simply computed and should not effect performace. – Mikulas Dite Dec 16 '10 at 17:31
    
Why Down vote please ? – Rohit J Dec 16 '10 at 17:38
    
@Mikulas assuming you have discrete chances and random number equally distributed between 0 and 1 it will give probability equal to their weight. For your case there is 80% chances random number would be less then .8 hence first element will be selected and 20% chance its greater then .8 in that case second element will be selected. – Rohit J Dec 16 '10 at 17:44
1  
No it will work without sorting, and works faster then binary search if you want to remove the element once it is selected. – Rohit J Dec 16 '10 at 17:53
2  
Sorry for the question, what if I had two element with the same weight? In this case I would get only the first one of the two elements in the array or I am wrong? – arpho May 29 '14 at 21:04

An example in ruby

#each element is associated with its probability
a = {1 => 0.25 ,2 => 0.5 ,3 => 0.2, 4 => 0.05}

#at some point, convert to ccumulative probability
acc = 0
a.each { |e,w| a[e] = acc+=w }

#to select an element, pick a random between 0 and 1 and find the first   
#cummulative probability that's greater than the random number
r = rand
selected = a.find{ |e,w| w>r }

p selected[0]
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3  
In this algorithm, the last element will never be selected as it's probability is 1.0, and rand will always be between 0 and 1. – Matt Darby Jun 13 '13 at 13:07

This can be done in O(1) expected time per sample as follows.

Compute the CDF F(i) for each element i to be the sum of probabilities less than or equal to i.

Define the range r(i) of an element i to be the interval [F(i - 1), F(i)].

For each interval [(i - 1)/n, i/n], create a bucket consisting of the list of the elements whose range overlaps the interval. This takes O(n) time in total for the full array as long as you are reasonably careful.

When you randomly sample the array, you simply compute which bucket the random number is in, and compare with each element of the list until you find the interval that contains it.

The cost of a sample is O(the expected length of a randomly chosen list) <= 2.

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This algorithm has a worst-case complexity of O(n) if the weights are of vastly different magnitudes. It might happen that all intervals belong to the same bucket. Without additional restrictions on the weights, this is definitely not O(1) and not even O(log n). – Sven Marnach Dec 16 '10 at 18:19
    
The worst case occurs only rarely. If all n intervals overlapped one bucket, then almost all queries would require a comparison to just one interval. In practice, this will be significantly faster than binary search. If you insist on optimizing for the worst case, you could do binary search inside each bucket, making the cost of each query cost O(lg(the length of the biggest bucket)) in the worst case, and O(the expectation of lg(the length of a randomly chosen list)) in expectation, which is still just O(1). – jonderry Dec 16 '10 at 18:26
    
Thanks, it looks really well. I will have to run some trials in order to determine if it is really faster method than CDF-way in my solution. – Mikulas Dite Dec 16 '10 at 18:42
1  
@Mikulas Dite, It's worth stressing that this is a CDF-array solution as well, and the difference with pure binary search is kind of like the difference between doing binary search and hashing to search for an element in an array. Another way of looking at it is that you compute the CDF array, and rather than do binary search on it, you hash the random number to the array index corresponding to the start of the bucket. Then you can use whatever search strategy you want (e.g., either brute-force linear search, or binary search) to narrow down further to the correct sampled element. – jonderry Dec 16 '10 at 21:25
1  
Note that you have better guarantees here than in your usual "worst case" evaluation, because your accesses are known to be random, by construction... – comingstorm Dec 17 '10 at 0:19

Ruby solution using the pickup gem:

require 'pickup'

chances = {0=>80, 1=>20}
picker = Pickup.new(chances)

Example:

5.times.collect {
  picker.pick(5)
}

gave output:

[[0, 0, 0, 0, 0], 
 [0, 0, 0, 0, 0], 
 [0, 0, 0, 1, 1], 
 [0, 0, 0, 0, 0], 
 [0, 0, 0, 0, 1]]
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Another ruby example:

def weighted_rand(weights = {})
  raise 'Probabilities must sum up to 1' unless weights.values.inject(&:+) == 1.0

  u = 0.0
  ranges = Hash[weights.map{ |v, p| [u += p, v] }]

  u = rand
  ranges.find{ |p, _| p > u }.last
end

How to use:

weights = {'a' => 0.4, 'b' => 0.4, 'c' => 0.2}

weighted_rand weights

What to expect:

d = 1000.times.map{ weighted_rand weights }
d.count('a') # 396
d.count('b') # 406
d.count('c') # 198
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If the array is small, I would give the array a length of, in this case, five and assign the values as appropriate:

array[
    0 => 0
    1 => 0
    2 => 0
    3 => 0
    4 => 1
]
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That is the most obvious solution, however I can't really use it for the amount of data I'd like to process. – Mikulas Dite Dec 16 '10 at 17:25

I couldn't quite understand the approach of Sven Marnach.

@Sven Marnach - say the example of A = [1,2,3], Pa = [0.2, 0.6, 0.2] = meaning i want to see 2 three times more often than 1 or 3 in the long run.

In this case, cdf(Pa) = [0.2, 0.8, 1.0]

Now, generating a rand number between 0 and 1, lets say I get 0.9. How do i go ahead with the binary search? Do i choose 2 or 3 ?

Please clarify on this. Your solution looks the best so far.

Thanks

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2  
Please add questions about an answer as a comment to the answer, not as a new answer. – Phrogz Dec 16 '10 at 21:50
    
I couldn't add comments to that answer for some reason. Could you please explain why? Thats the reason i had to post a new answer. BTW - the system lets me add comments to my own "section" though. – lramakri Dec 16 '10 at 22:05

the trick could be to sample an auxiliary array with elements repetitions which reflect the probability

Given the elements associated with their probability, as percentage:

h = {1 => 0.5, 2 => 0.3, 3 => 0.05, 4 => 0.05 }

auxiliary_array = h.inject([]){|memo,(k,v)| memo += Array.new((100*v).to_i,k) }   

ruby-1.9.3-p194 > auxiliary_array 
 => [1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1,                                 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 3, 3, 3, 3, 3, 4, 4, 4, 4, 4] 

auxiliary_array.sample

if you want to be as generic as possible, you need to calculate the multiplier based on the max number of fractional digits, and use it in the place of 100:

m = 10**h.values.collect{|e| e.to_s.split(".").last.size }.max
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I would imagine that numbers greater or equal than 0.8 but less than 1.0 selects the third element.

In other terms:

x is a random number between 0 and 1

if 0.0 >= x < 0.2 : Item 1

if 0.2 >= x < 0.8 : Item 2

if 0.8 >= x < 1.0 : Item 3

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I am going to improve on http://stackoverflow.com/users/626341/masciugo answer.

Basically you make one big array where the number of times an element shows up is proportional to the weight.

It has some drawbacks.

  1. The weight might not be integer. Imagine element 1 has probability of pi and element 2 has probability of 1-pi. How do you divide that? Or imagine if there are hundreds of such elements.
  2. The array created can be very big. Imagine if least common multiplier is 1 million, then we will need an array of 1 million element in the array we want to pick.

To counter that, this is what you do.

Create such array, but only insert an element randomly. The probability that an element is inserted is proportional the the weight.

Then select random element from usual.

So if there are 3 elements with various weight, you simply pick an element from an array of 1-3 elements.

Problems may arise if the constructed element is empty. That is it just happens that no elements show up in the array because their dice roll differently.

In which case, I propose that the probability an element is inserted is p(inserted)=wi/wmax.

That way, one element, namely the one that has the highest probability, will be inserted. The other elements will be inserted by the relative probability.

Say we have 2 objects.

element 1 shows up .20% of the time. element 2 shows up .40% of the time and has the highest probability.

In thearray, element 2 will show up all the time. Element 1 will show up half the time.

So element 2 will be called 2 times as many as element 1. For generality all other elements will be called proportional to their weight. Also the sum of all their probability are 1 because the array will always have at least 1 element.

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