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Say I have a list x with unkown length from which I want to randomly pop one element so that the list does not contain the element afterwards. What is the most pythonic way to do this?

I can do it using a rather unhandy combincation of pop, random.randint, and len and would like to see shorter or nicer solutions:

import random
x = [1,2,3,4,5,6]
x.pop(random.randint(0,len(x)-1))

Edit: What I am trying to achieve is consecutively pop random elements from a list. (i.e., randomly pop one element and move it to a dictionary, randomly pop another element and move it to another dictionary, ...)


Note that I am using Python 2.6 and did not find any solutions via the search function.

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3  
I'm not much of a Pythonista, but that sure looks pretty good to me. –  Matt Ball Apr 6 '12 at 19:12
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6 Answers

up vote 12 down vote accepted

What you seem to be up to doesn't look very Pythonic in the first place. You shouldn't remove stuff from the middle of a list, because lists are implemented as arrays in all Python implementations I know of, so this is an O(n) operation.

So what you can do if you don't need access to the remaining elements is just shuffle the list first and then iterate over it:

lst = [1,2,3]
random.shuffle(lst)
for x in lst:
  # ...

If you really need the remainder (which is a bit of a code smell, IMHO), at least you can pop() from the end of the list now (which is fast!):

while lst:
  x = lst.pop()
  # do something with the element      

In general, you can often express your programs more elegantly if you use a more functional style, instead of mutating state (like you do with the list).

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So a better (faster) idea would be to use random.shuffle(x) and then x.pop()? I do not understand how to do this "functional"? –  Henrik Apr 6 '12 at 19:21
    
@Henrik: I don't know what you're trying to do, so I can't really tell. You should add more information to the question, or just comment here what you want to achieve :) This seems to be a case of the XY problem..‌​. –  Niklas B. Apr 6 '12 at 19:22
    
I have a list of elements from which I want to consecutively pop random elements. –  Henrik Apr 6 '12 at 19:22
    
@Henrik: But why? Is the remaining list important or only the popped item? We need more context to give good advise ;) If you only need the popped elements and the remaining list is not needed, you should just use random.shuffle(x) and x.pop() afterwards (which is fast) –  Niklas B. Apr 6 '12 at 19:23
1  
@Henrik: If you have two collections (for example, a list of dictionaries and a list of random numbers) and you want to iterate them at the same time, you can zip them to get a list of (dict, number) pairs. You said something about multiple dictionaries of which you want to associate each with a random number. zip is perfect for this –  Niklas B. Apr 6 '12 at 19:48
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You won't get much better than that, but here is a slight improvement:

x.pop(random.randrange(len(x)))

Documentation on random.randrange():

random.randrange([start], stop[, step])
Return a randomly selected element from range(start, stop, step). This is equivalent to choice(range(start, stop, step)), but doesn’t actually build a range object.

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+ 1 on great use of the buildin function random.randrange() –  George Apr 6 '12 at 19:52
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Here's another alternative: why don't you shuffle the list first, and then start popping elements of it until no more elements remain? like this:

import random

x = [1,2,3,4,5,6]
random.shuffle(x)

while x:
    p = x.pop()
    # do your stuff with p
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Why not for p in x? –  Niklas B. Apr 6 '12 at 19:32
2  
@NiklasB. because we're removing elements from the list. If it's not absolutely necessary to remove elements, yes I agree with you: [for p in x] –  Óscar López Apr 6 '12 at 19:34
    
Because it alters the list and if you just want to select half of the elements now and the other half later, you will have the remaining set later. –  Henrik Apr 6 '12 at 19:34
    
@Henrik: Okay, that's why I asked you if you need the remaining list. You didn't answer that. –  Niklas B. Apr 6 '12 at 19:35
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To remove a single element at random index from a list if the order of the rest of list elements doesn't matter:

import random

L = [1,2,3,4,5,6]
i = random.randrange(len(L)) # get random index
L[i], L[-1] = L[-1], L[i]    # swap with the last element
x = L.pop()                  # pop last element O(1)

The swap is used to avoid O(n) behavior on deletion from a middle of a list.

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One way to do it is:

x.remove(random.choice(x))
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4  
This could get problematic if elements occur more the once. –  Niklas B. Apr 6 '12 at 19:15
    
This will remove the leftmost element when there are duplicates, causing a not perfectly random result. –  FogleBird Apr 6 '12 at 19:15
    
With pop you can point a name at the removed element, with this you can't. –  agf Apr 6 '12 at 19:17
    
Fair enough, I agree that this is not very random when elements occur more than once. –  Simeon Visser Apr 6 '12 at 19:18
    
Aside from the question of skewing your distribute, remove requires a linear scan of the list. That's terribly inefficient compared to looking up an index. –  aaronasterling Apr 6 '12 at 19:39
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While not popping from the list, I encountered this question on Google while trying to get X random items from a list without duplicates. Here's what I eventually used:

items = [1, 2, 3, 4, 5]
items_needed = 2
from random import shuffle
shuffle(items)
for item in items[:items_needed]:
    print(item)

This may be slightly inefficient as you're shuffling an entire list but only using a small portion of it, but I'm not an optimisation expert so I could be wrong.

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random.sample(items, items_needed) –  J.F. Sebastian Nov 22 '13 at 23:55
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