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How do I shuffle a word's letters randomly in python?

For example, the word "cat" might be changed into 'act', 'tac' or 'tca'.

I would like to do this without using built-in functions

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2  
If this is homework, as seems likely from the fact that you're apparently not willing to use random.shuffle, please tag it as such and do say exactly what you are allowed to use, what you have tried unsuccessfully, etc -- fumbling in the dark trying to guess at such things is singularly unrewarding and unproductive. –  Alex Martelli Jul 6 '10 at 1:31
    
Just to clarify: do you want any random permutation of letters or all (unique?) permutations? –  cletus Jul 6 '10 at 1:34
    
to be exact, this is what my teacher said: The scrambling process must be implemented manually. Built-in functions or string methods that “automate” this process are prohibited from use. –  babikar Jul 6 '10 at 1:58
    
that's much clearer now, tx. –  Alex Martelli Jul 6 '10 at 2:19

7 Answers 7

from random import random
def shuffle(x):
    for i in reversed(xrange(1, len(x))):
        j = int(random() * (i+1))
        x[i], x[j] = x[j], x[i]
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Please don't use random() * n when you mean random.randrange(n) –  Marius Gedminas Jul 10 '10 at 14:48
    
@Marius Gedminas, but that's the way shuffle() is implemented in random.py ;o) –  gnibbler Jul 11 '10 at 1:26
    
Interesting! I wonder why? The implementation of randrange() has a comment saying "Note that int(istart + self.random()*width) instead would be incorrect". Perhaps that's only for values of istart != 0? –  Marius Gedminas Jul 11 '10 at 13:15
    
Yes, I see now that the implementation of randrange(n) is precisely int(random() * n) when 0 < n < 2**53. –  Marius Gedminas Jul 11 '10 at 13:19
return "".join(random.sample(word, len(word)))

Used like:

word = "Pocketknife"
print "".join(random.sample(word, len(word)))

>>> teenockpkfi
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2  
Why are you using letter for letter in...? random.sample returns a list; you don't need to make a generator expression from the list. –  icktoofay Jul 6 '10 at 1:25
    
yeh why are you using letter fo letter in? –  babikar Jul 6 '10 at 1:38
    
I have no idea... –  Dominic Bou-Samra Jul 6 '10 at 3:17

This cookbook recipe has a simple implementation of Fisher-Yates shuffling in Python. Of course, since you have a string argument and must return a string, you'll need a first statement (say the argument name is s) like ary = list(s), and in the return statement you'll use ''.join to put the array of characters ary back into a single string.

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Here is a way that doesn't use random.shuffle. Hopefully random.choice is ok. You should add any restrictions to the question

>>> from random import choice
>>> from itertools import permutations
>>> "".join(choice(list(permutations("cat"))))
'atc'

This method is not as efficient as random.shuffle, so will be slow for long words

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What exactly will happen if you try running list(permutations("01234567890123456789"))? Does it throw an exception because it runs out of memory, or just lock up your computer trying to acquire it? –  Jamie Wong Jul 6 '10 at 2:18
    
@Jamie Wong, Probably takes a long time and then runs out of memory. Unless you have a 64 bit system with a bazillion bytes of RAM :) –  gnibbler Jul 6 '10 at 3:12

To be very slightly more low level, this just swaps the current letter with a random letter which comes after it.

from random import randint
word = "helloworld"

def shuffle(word):
    wordlen = len(word)
    word = list(word)
    for i in range(0,wordlen-1):
        pos = randint(i+1,wordlen-1)
        word[i], word[pos] = word[pos], word[i]
    word = "".join(word)
    return word

print shuffle(word) 

This won't create all possible permutations with equal probability, but still might be alright for what you want

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2  
I'm pretty sure if you tweaked it so it swapped each letter with either itself or a random letter which comes after it, you suddenly have uniformity. –  Anon. Jul 6 '10 at 1:54

Take a look at the Fisher-Yates shuffle. It's extremely space and time-efficient, and easy to implement.

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import random
word = "cat"
shuffled = list(word)
random.shuffle(shuffled)
shuffled = ''.join(shuffled)
print shuffled

...or done in a different way, inspired by Dominic's answer...

import random
shuffled = ''.join(random.sample(word, len(word)))
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random.shuffle does a shuffle in place, so you don't really need to set a new variable (but you can). –  Bartek Jul 6 '10 at 1:18
    
@Bartek: Yes, I noticed that right after I posted it. –  icktoofay Jul 6 '10 at 1:19
    
thank you for the help, but is there any way to do it not using the random.shuffle ? –  babikar Jul 6 '10 at 1:21
    
You could write your own shuffle algorithm, but why not use the built-in library? –  derekerdmann Jul 6 '10 at 1:23
2  
Homework? I think so ;-) –  Bartek Jul 6 '10 at 1:24

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