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I have a numeric vector of length x, all values in the vector are currently 0. I want it to randomly assign y of these values to equal 1, and x-y of these values to equal 0. Any fast way to do this? My best guess right now is to have a RNG assign each value to 0 or 1, sum up the string and, if the sum does not equal y, start all over again.

Can I use random.choice(vector,y) and then assign the elements that were picked to equal 1?

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up vote 2 down vote accepted

There's a function called random.sample() which, given a sequence of items, will give you back a certain number of them randomly selected.

import random
for index in random.sample(xrange(len(vector)), y): # len(vector) is "x"
    vector[index] = 1

Another way to do this would be to combine a list of x 0's and y 1's and shuffle it:

import random
vector = [0]*(x-y) + [1]*y  # We can do this because numbers are immutable
vector.shuffle()
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I was just going to post the second answer. Spent some time testing which was faster, and it turns out the shuffle wins by about 30% for vector of len 10 to 1000. Didn't test beyond that. – sberry Jul 19 '13 at 2:30
    
@sberry It probably depends on the ratio of x to y. – Amber Jul 19 '13 at 2:31
    
y/x is about 1.2. Thanks! – Ralph Jul 19 '13 at 2:34
    
@Amber: certainly it does. I was using a ratio of 1:1. – sberry Jul 19 '13 at 3:02
    
@sberry Yeah, for 1:1 shuffle likely wins simply due to not having to create an extra list (for returning from random.sample()) and instead being able to shuffle in-place. For smaller ratios random.sample() might very well win due to not having to shuffle a large base list. – Amber Jul 19 '13 at 3:06

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