Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Is there a pythonic way to slice a sequence type such that the returned slice is of random length and in random order? For example, something like:

>>> l=["a","b","c","d","e"]
>>> rs=l[*:*]
>>> rs
share|improve this question

3 Answers 3

up vote 12 down vote accepted

How about...

random.sample(l, random.randint(1, len(l)))

Quick link to docs for the random module can be found here.

share|improve this answer

No idiom that I'm aware of, but random.sample does what you need.

>>> from random import sample, randint
>>> def random_sample(seq):
...     return sample(seq, randint(0, len(seq)))
>>> a = range(0,10)
>>> random_sample(a)
>>> random_sample(a)
[4, 3, 9, 6, 7, 1, 0]
>>> random_sample(a)
[2, 8, 0, 4, 3, 6, 9, 1, 5, 7]
share|improve this answer
Why the down vote? – Simon Whitaker May 29 '11 at 17:07

There's a subtle distinction that neither your question nor the other answers address, so I feel I should point it out. It's illustrated by the example below.

>>> random.sample(range(10), 5)
[9, 2, 3, 6, 4]
>>> random.sample(range(10)[:5], 5)
[1, 2, 3, 4, 0]

As you can see from the output, the first version doesn't "slice" the list, but only samples it, so the return values can be from anywhere in the list. If you literally want a "slice" of the list -- that is, if you want to constrain the sample space before sampling -- then the following doesn't do what you want:

random.sample(l, random.randint(1, len(l)))

Instead, you would have to do something like this:

sample_len = random.randint(1, len(l))
random.sample(l[:sample_len], sample_len)

But I think an even better way to do this would be like so:

shuffled = l[:random.randint(1, len(l))]

Unfortunately there's no copy-returning version of shuffle that I'm aware of (i.e. a shuffled akin to sorted).

share|improve this answer
+1 for the insight on the literal "slice" comment and purposed solution. – Andrew White May 29 '11 at 18:10

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.