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When you want to iterate sequentially over a list of numbers you will write:

for i in range(1000):
  # do something with i

But what if you want to iterate over the list of numbers from the range (0..999) randomly? There is a need (in every iteration) to choose randomly the number that wasn't chosen in any previous iteration and there is a need to iterate over all of the numbers from the range (0..999).

Do you know how to do that (smart)?

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3 Answers 3

up vote 13 down vote accepted

You can use random.shuffle() to, well, shuffle a list:

import random

r = list(range(1000))
random.shuffle(r)
for i in r:
  # do something with i

By the way, in many cases where you'd use a for loop over a range of integers in other programming languages, you can directly describe the "thing" you want to iterate in Python.
For example, if you want to use the values of i to access elements of a list, you should better shuffle the list directly:

lst = [1970, 1991, 2012]
random.shuffle(lst)
for x in lst:
  print x

NOTE: You should bear the following warning in mind when using random.shuffle() (taken from the docs:

Note that for even rather small len(x), the total number of permutations of x is larger than the period of most random number generators; this implies that most permutations of a long sequence can never be generated.

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1  
@Greg: Actually I noticed that random.shuffle modifies the operand in place, so I cant't even use it as an expression :/ Thanks for the hint, though, I changed it. –  Niklas B. Feb 12 '12 at 20:31
    
No worries, I deleted my comment because it no longer applied once you changed that. :) –  Greg Hewgill Feb 12 '12 at 20:32
3  
Also, Python automatically seeds its random number generator so a call to random.seed() is not required. –  Greg Hewgill Feb 12 '12 at 20:33
    
@Greg: Good call! –  Niklas B. Feb 12 '12 at 20:34

People often miss opportunities for modularization. You can define a function to encapsulate the idea of "iterate randomly":

def randomly(seq):
    shuffled = list(seq)
    random.shuffle(shuffled)
    return iter(shuffled)

then:

for i in randomly(range(1000)):
    #.. we're good to go ..
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Thanks, this is the way to go. +1 for readability! –  shapecatcher Nov 13 '12 at 14:33

Use the random.shuffle method:

itrange = list(range(100))
random.shuffle(itrange)
for i in itrange:
    print i
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1  
To future-proof this answer, you would need to use list(range(100)) in Python 3 since range returns an iterator in 3.x. –  Greg Hewgill Feb 12 '12 at 20:31
    
Thanks, it's correct now. Please note, that for long arrays not all permutations are possible: docs.python.org/library/random.html#random.shuffle –  Gregor Feb 12 '12 at 20:33

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