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i have an array of 27 elements,and i don't want to generate all permutations of array (27!) i need 5000 randomly choosed permutations,any tip will be useful...

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2  
It might be worth mentioning that 27! is 10888869450418352160768000000. –  Mark Byers Jan 23 '10 at 19:28

5 Answers 5

up vote 18 down vote accepted

To generate one permutation use random.shuffle and store a copy of the result. Repeat this operation in a loop and each time check for duplicates (there probably won't be any though). Once you have 5000 items in your result set, stop.

To address the point in the comment, Python's random module is based on the Mersenne Twister and has a period of 2**19937-1, which is considerably larger than 27! so it should be suitable for your use.

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+1, but note that random.shuffle has a serious weakness: the period of most RNGs is smaller than the total number of permutations as n gets larger. That means that almost all of the possible permutations for a large enough n cannot ever be generated, so this isn't truly random. –  John Feminella Jan 23 '10 at 19:32
3  
Indeed, John. Python's random generator has a period of 2**19937-1 though so it is probably good enough. Another nitpick is that for true random numbers you would need a true random source (e.g. from radioactive decay), Python's random module provides only pseudo-random numbers. But in common usage when people say 'random' what they really mean is 'pseudo-random', and I assume this is what the poster here means. –  Mark Byers Jan 23 '10 at 19:35
1  
+1 Cool! It's a big die with 10888869450418352160768000000 faces probability of any one of them turning up is 1/10888869450418352160768000000. Duplicates NO WAY!! –  Pratik Deoghare Jan 23 '10 at 19:39
    
thanks guys,it helped me a lot!!! –  user257522 Jan 23 '10 at 20:03
import random

perm_list = []

for i in range(5000):
    temp = range(27)
    random.shuffle(temp)
    perm_list.append(temp)

print(perm_list)

10888869450418352160768000000 I love big numbers! :)

AND

10888869450418352160768000001 is PRIME!!

EDIT:

#with duplicates check as suggested in the comment

perm_list = set()
while len(perm_list)<5000:
    temp = range(27)
    random.shuffle(temp)
    perm_list.add(tuple(temp)) # `tuple` because `list`s are not hashable. right Beni?

print perm_list

WARNING: This wont ever stop if RNG is bad!

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To also check for duplicates as Mark suggests, use a perms = set(), perms.add(tuple(temp)), and while len(perms) < 5000 instead of the for loop. –  Beni Cherniavsky-Paskin Jan 23 '10 at 19:45
    
@Beni I didn't follow your tuple(temp) suggestion at first but then I understood that I was a fool!! Thanks man! –  Pratik Deoghare Jan 23 '10 at 19:57

itertools.permutations. It's a generator, so it won't create the whole list of permutations. You could skip randomly until you've got 5000.

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Might take a long time to do using this method.... –  Mark Byers Jan 23 '10 at 19:14
1  
That's not really "random", since itertools creates them in a defined order, and there are a finite number of permutations. What would be better is to do the following: (1) determine how many permutations there are (call this number N), (2) then generate 5,000 distinct random indices in the range 0..N-1, (3) pick the permutations from the itertools.permutations generator which correspond to these indices. –  John Feminella Jan 23 '10 at 19:16
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Yeah, I know it's not the best. First time I read the question I somehow didn't notice that 'randomly chosen' part. I won't delete it, maybe someone searching for "how to generate permutations of array in python?" will find it useful. –  Cat Plus Plus Jan 23 '10 at 19:35
    
@Cat Plus Plus That would be me :D –  Shon Freelen Oct 20 '11 at 15:53

You may want the itertools.permutations() function. Gotta love that itertools module!

NOTE: New in 2.6

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1  
This will be too slow - he said he has 27 elements. –  Mark Byers Jan 23 '10 at 19:23
# apermindex should be a number between 0 and factorial(len(alist))
def perm_given_index(alist, apermindex):
    for i in range(len(alist)-1):
        apermindex, j = divmod(apermindex, len(alist)-i)
        alist[i], alist[i+j] = alist[i+j], alist[i]
    return alist

Usage: perm_given_index(['a','b','c'], 3)

This uses the Lehmer code for the permutation as the values of j match that.

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This may be very nice i.e. for compression if you need to store a lot of permutations to use integer representation instead. Got inspired to write gist.github.com/lukmdo/7049748 –  lukmdo Oct 18 '13 at 23:56

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