12

I'd like to cycle through a list repeatedly (N times) via an iterator, so as not to actually store N copies of the list in memory. Is there a built-in or elegant way to do this without writing my own generator?

Ideally, itertools.cycle(my_list) would have a second argument to limit how many times it cycles... alas, no such luck.

  • I believe that multiplying a list by an integer is not good enough, right? [1, 2, 3] * 4 – C2H5OH Apr 26 '12 at 0:06
  • @C2H5OH That would create 4 shallow copies of the list (N copies is what is not wanted). – Casey Kuball Apr 26 '12 at 0:17
  • @Darthfett: Indeed. That's why it is a comment. But you will agree that it is the most elegant solution :-P – C2H5OH Apr 26 '12 at 0:19
16
import itertools
itertools.chain.from_iterable(itertools.repeat([1, 2, 3], 5))

Itertools is a wonderful library. :)

  • This is a fairly clear answer, doesn't involve my own generator/iterator (although Matt Anderson's answer shows that that isn't too messy either), and was one of the first answers that satisfied my question. So, I accept it. Thanks!! – JJC Apr 26 '12 at 8:57
8
itertools.chain.from_iterable(iter(L) for x in range(N))
6

For the special case where you need to iterate over a list several times, this is not too bad.

It does create a list of n references to my_list, so if n is very large it is better to use Darthfelt's answer

>>> import itertools as it
>>> it.chain(*[my_list]*n)
  • I was trying to avoid duplicating the list (or references to it) in memory, otherwise just: mylist*n would have sufficed. :-) Still, thanks for your input. Just to be clear, is there any difference between expanding the list via the *list operator and multiplying by n versus just multiplying the list by n? – JJC Apr 26 '12 at 13:34
  • @JJC, mylist*n creates a list with len(mylist)*n) elements. For this answer you just create a list of n elements, so depending on len(mylist) and n this could make a huge difference – John La Rooy Apr 26 '12 at 22:08
  • I understand that [1,2,3,4]*2 would create a list of 8 elements. So, you're saying that *[1,2,3,4]*2 creates just two elements? Sorry, I'm confused. Thanks. – JJC Apr 28 '12 at 9:36
  • @JJC, no [[1,2,3,4]]*2 creates a list of 2 elements – John La Rooy Apr 28 '12 at 10:12
6

All the other answers are excellent. Another solution would be to use islice. This allows you to interrupt the cycle at any point:

>>> from itertools import islice, cycle
>>> l = [1, 2, 3]
>>> list(islice(cycle(l), len(l) * 3))
[1, 2, 3, 1, 2, 3, 1, 2, 3]
>>> list(islice(cycle(l), 7))
[1, 2, 3, 1, 2, 3, 1]
  • Nice, I didn't know islice worked with values for stop that were greater than the length of the iterable. – Casey Kuball Apr 26 '12 at 0:33
  • 2
    @Darthfett, yes, it does. But that's not relevant here; the iterable returned by cycle is infinitely long. – senderle Apr 26 '12 at 0:35
4

You said that you don't want to write your own generator, but a generator expression would probably be the easiest and most efficient way to accomplish what you're after. It doesn't require any function calls or importing of any modules. itertools is a great module, but maybe not necessary in this case?

some_list = [1, 2, 3]
cycles = 3
gen_expr = (elem for _ in xrange(cycles) for elem in some_list)

or just

(elem for _ in xrange(3) for elem in [1, 2, 3])

or

for elem in (e for _ in xrange(3) for e in [1, 2, 3]):
    print "hoo-ray, {}!".format(elem)
  • I do like these generator expressions. They're more compact than I realized they'd be for this pattern. I'll give the answer credit to @Darthfett, since technically I asked for a non-self-rolled generator, but if I could accept two, I'd accept yours as well (and probably others' :-)) Thanks! – JJC Apr 26 '12 at 8:52
2

@Darthfett's answer is documented as an itertools recipes:

from itertools import chain, repeat

def ncycles(iterable, n):
    "Returns the sequence elements n times"
    return chain.from_iterable(repeat(tuple(iterable), n))


list(ncycles(["a", "b"], 3))
# ['a', 'b', 'a', 'b', 'a', 'b']

For convenience, I add that the more_itertools library implements this recipe (and many others) for you:

import more_itertools as mit

list(mit.ncycles(["a", "b"], 3))
# ['a', 'b', 'a', 'b', 'a', 'b']
  • Thanks, but this is identical to Darthfett's accepted answer. – JJC Aug 23 '17 at 13:08
  • Yes, they are equivalent. I edited to clarify that his code is an existing itertools recipe (no earlier than Python 2.3). I post this option to demonstrate a third-party library that implements these recipes and obviates manual implementation if desired. Thank you. – pylang Aug 23 '17 at 15:46
  • 1
    Cool. That more_itertools package looks very handy. Thanks for sharing it. – JJC Aug 24 '17 at 14:23

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