23

Every use I can think of for Python's itertools.repeat() class, I can think of another equally (possibly more) acceptable solution to achieve the same effect. For example:

>>> [i for i in itertools.repeat('example', 5)]
['example', 'example', 'example', 'example', 'example']
>>> ['example'] * 5
['example', 'example', 'example', 'example', 'example']

>>> list(map(str.upper, itertools.repeat('example', 5)))
['EXAMPLE', 'EXAMPLE', 'EXAMPLE', 'EXAMPLE', 'EXAMPLE']
>>> ['example'.upper()] * 5
['EXAMPLE', 'EXAMPLE', 'EXAMPLE', 'EXAMPLE', 'EXAMPLE']

Is there any case in which it would be the most appropriate solution? If so, under what circumstances?

  • 4
    I added a new answer that shows the original motivating use case for itertools repeat. Also, I've just updated the Python docs to reflect this usage note. – Raymond Hettinger Feb 1 '12 at 17:11
  • 3 of your 4 code examples won't actually work. The first one creates a generator expression, not a tuple (you'd want tuple(itertools.repeat('example', 5))), the second multiplies 'example' itself to make 'exampleexampleexampleexampleexample' because ('example') doesn't make a tuple in the first place (you need ('example',) * 5), and your third example uses map, which would return a map object, because Python 3 map is lazy (you'd have to wrap it in list to get the provided result). It's an interesting question, but faking your code samples hurts it. – ShadowRanger Dec 26 '18 at 14:48
  • @ShadowRanger, I was pretty new to Python when I made this post and I just quickly typed up some examples without checking the actual output. A little pedantic, but I've fixed it now anyway. Thanks! :) – Tyler Crompton Jan 3 at 19:00
20

The itertools.repeat function is lazy; it only uses the memory required for one item. On the other hand, the (a,) * n and [a] * n idioms create n copies of the object in memory. For five items, the multiplication idiom is probably better, but you might notice a resource problem if you had to repeat something, say, a million times.

Still, it is hard to imagine many static uses for itertools.repeat. However, the fact that itertools.repeat is a function allows you to use it in many functional applications. For example, you might have some library function func which operates on an iterable of input. Sometimes, you might have pre-constructed lists of various items. Other times, you may just want to operate on a uniform list. If the list is big, itertools.repeat will save you memory.

Finally, repeat makes possible the so-called "iterator algebra" described in the itertools documentation. Even the itertools module itself uses the repeat function. For example, the following code is given as an equivalent implementation of itertools.izip_longest (even though the real code is probably written in C). Note the use of repeat seven lines from the bottom:

class ZipExhausted(Exception):
    pass

def izip_longest(*args, **kwds):
    # izip_longest('ABCD', 'xy', fillvalue='-') --> Ax By C- D-
    fillvalue = kwds.get('fillvalue')
    counter = [len(args) - 1]
    def sentinel():
        if not counter[0]:
            raise ZipExhausted
        counter[0] -= 1
        yield fillvalue
    fillers = repeat(fillvalue)
    iterators = [chain(it, sentinel(), fillers) for it in args]
    try:
        while iterators:
            yield tuple(map(next, iterators))
    except ZipExhausted:
        pass
  • 10
    Minor quibble: [a] * n does not create n copies of a in memory. It creates n references to a single copy of a. In some cases the difference can be quite significant; try a = [[]] * 5; a[0].append(1). – Thomas K Jan 30 '12 at 12:49
  • 5
    Good point. I keep forgetting that almost everything in Python is a reference. I guess that also abates the memory usage problem somewhat, but I'd guess a million references still has a nontrivial resource requirement. – HardlyKnowEm Jan 30 '12 at 15:22
  • 2
    Yep, it would still have to allocate an array of n pointers. – Thomas K Jan 30 '12 at 19:42
20

The primary purpose of itertools.repeat is to supply a stream of constant values to be used with map or zip:

>>> list(map(pow, range(10), repeat(2)))     # list of squares
[0, 1, 4, 9, 16, 25, 36, 49, 64, 81]

The secondary purpose is that it gives a very fast way to loop a fixed number of times like this:

for _ in itertools.repeat(None, 10000):
    do_something()

This is faster than:

for i in range(10000):
    do_something().

The former wins because all it needs to do is update the reference count for the existing None object. The latter loses because the range() or xrange() needs to manufacture 10,000 distinct integer objects.

Note, Guido himself uses that fast looping technique in the timeit() module. See the source at https://hg.python.org/cpython/file/2.7/Lib/timeit.py#l195 :

    if itertools:
        it = itertools.repeat(None, number)
    else:
        it = [None] * number
    gcold = gc.isenabled()
    gc.disable()
    try:
        timing = self.inner(it, self.timer)
  • 2
    This answer and repeat is a treasure. Why is this hidden in itertools and not a built-in? for _ in range(x): do() is such a common pattern. – Darkonaut Feb 18 at 22:54
14

Your example of foo * 5 looks superficially similar to itertools.repeat(foo, 5), but it is actually quite different.

If you write foo * 100000, the interpreter must create 100,000 copies of foo before it can give you an answer. It is thus a very expensive and memory-unfriendly operation.

But if you write itertools.repeat(foo, 100000), the interpreter can return an iterator that serves the same function, and doesn't need to compute a result until you need it -- say, by using it in a function that wants to know each result in the sequence.

That's the major advantage of iterators: they can defer the computation of a part (or all) of a list until you really need the answer.

  • Why not just use for i in range(100000): and then access foo inside the loop instead of asking this function what value you gave it? – Tyler Crompton Jan 30 '12 at 4:16
  • @TylerCrompton: The iterator can be passed to other things that expect any kind of iterator, without regard for its interior contents. You can't do the same with a range (it is iterable, but is not itself an iterator). – John Feminella Jan 30 '12 at 4:21
  • I see your point, but as far as the end of your comment goes, in Python 3? – Tyler Crompton Jan 30 '12 at 4:23
  • 1
    range is an iterator in Python 3, but in Python 2, it returns a list. In Python 2, use xrange for an iterator; in Python 3, use list(range(...)) for a list. – HardlyKnowEm Jan 30 '12 at 5:19
  • Sorry, I didn't see that this question was tagged Python-3. Yes, @mlefavor is correct. – John Feminella Jan 30 '12 at 5:26
2

It's an iterator. Big clue here: it's in the itertools module. From the documentation you linked to:

itertools.repeat(object[, times]) Make an iterator that returns object over and over again. Runs indefinitely unless the times argument is specified.

So you won't ever have all that stuff in memory. An example where you want to use it might be

n = 25
t = 0
for x in itertools.repeat(4):
    if t > n:
        print t
    else:
        t += x

as this will allow you an arbitrary number of 4s, or whatever you might need an infinite list of.

  • 3
    You could change line 3 to while True: and the x on line 7 to 4 and it would do the same exact thing, would be more readable, and would be slightly faster. This is why I was wondering if it had any purpose. – Tyler Crompton Jan 30 '12 at 7:33
  • @TylerCrompton: Note: Amusingly, on Python 2, while True: would be slower than for x in itertools.repeat(4):, because True wasn't a keyword back then, so while True: actually loaded it and tested it for truthiness on each loop to be sure no one had reassigned it (while 1: was a true unconditionally infinite loop). repeat kept the iterator on the stack (no lookup in the built-ins scope) and saved that work. Thankfully, on Python 3 True and False are keywords, and while True: really is an unconditionally infinite loop at the byte code level. – ShadowRanger Dec 26 '18 at 15:10
2

As mentioned before, it works well with zip:

Another example:

from itertools import repeat

fruits = ['apples', 'oranges', 'bananas']

# Initialize inventory to zero for each fruit type.
inventory = dict( zip(fruits, repeat(0)) )

Result:

{'apples': 0, 'oranges': 0, 'bananas': 0}

To do this without repeat, I'd have to involve len(fruits).

  • 2
    inventory = {fruit: 0 for fruit in fruits} is more readable and slightly faster. – Tyler Crompton Nov 27 '13 at 9:46
  • @TylerCrompton Indeed. I'm not sure that I've used that syntax before to initialize a dictionary. Or I've just been using too much LINQ :-) Thanks for the informative comment. – Jonathon Reinhart Nov 27 '13 at 23:00
  • @TylerCrompton: If we're going for speed, dict.fromkeys(fruits, 0) is the fastest (not for only three items with a constant value, due to slightly higher fixed overhead, but as the number of items in fruits increases, dict.fromkeys pulls ahead, starting around eight items); asymptotically on my machine, it runs in about 2/3rd the time of the dict comprehension for huge inputs. As of 3.6 (with guaranteed ordering for dicts), dict.fromkeys(x) is a really efficient way to uniquify inputs while preserving ordering (unlike set(x), which loses ordering). – ShadowRanger Dec 26 '18 at 15:05
0

I usually use repeat in conjunction with chain and cycle. Here is an example:

from itertools import chain,repeat,cycle

fruits = ['apples', 'oranges', 'bananas', 'pineapples','grapes',"berries"]

inventory = list(zip(fruits, chain(repeat(10,2),cycle(range(1,3)))))

print inventory

Puts the first 2 fruits as value 10, then it cycles the values 1 and 2 for the remaining fruits.

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