86

I need to iterate over a circular list, possibly many times, each time starting with the last visited item.

The use case is a connection pool. A client asks for connection, an iterator checks if pointed-to connection is available and returns it, otherwise loops until it finds one that is available.

Is there a neat way to do it in Python?

137

Use itertools.cycle, that's its exact purpose:

from itertools import cycle

lst = ['a', 'b', 'c']

pool = cycle(lst)

for item in pool:
    print item,

Output:

a b c a b c ...

(Loops forever, obviously)


In order to manually advance the iterator and pull values from it one by one, simply call next(pool):

>>> next(pool)
'a'
>>> next(pool)
'b'
  • You are printing items in a loop. What I want to leave the loop and come back later? (I want to start where I left off). – user443854 May 1 '14 at 21:02
  • 5
    @user443854 use pool.next() to get the single next item from the cycle – Jacob Krall May 1 '14 at 21:03
  • 4
    @user443854 FWIW this is a much better answer than mine. No reason to go around re-implementing library functions! – Jacob Krall May 1 '14 at 21:05
  • 4
    pool.next() didn't work for me, only next(pool). Probably because of Python 3? – fjsj Aug 21 '15 at 15:23
  • 6
    @fjsj that is correct, on Python 3 you need to use next(iterator) (which BTW also works just fine on Python 2.x, and therefore is the canonical form that should be used). See Is generator.next() visible in python 3.0? for a more in-depth explanation. Updated my answer accordingly. – Lukas Graf Aug 21 '15 at 18:54
45

The correct answer is to use itertools.cycle. But, let's assume that library function doesn't exist. How would you implement it?

Use a generator:

def circular():
    while True:
        for connection in ['a', 'b', 'c']:
            yield connection

Then, you can either use a for statement to iterate infinitely, or you can call next() to get the single next value from the generator iterator:

connections = circular()
next(connections) # 'a'
next(connections) # 'b'
next(connections) # 'c'
next(connections) # 'a'
next(connections) # 'b'
next(connections) # 'c'
next(connections) # 'a'
#....
  • Nice! How does it know to start over when the list is exhausted? – user443854 May 1 '14 at 20:56
  • 1
    @user443854 the while True means to repeat forever – Jacob Krall May 1 '14 at 20:57
  • 1
    @juanchopanza: Yep; itertools.cycle is a better answer. This shows how you could write the same functionality if itertools isn't available :) – Jacob Krall May 1 '14 at 21:01
  • Does the simple generator also save a copy of each element like itertools.cycle does? Or would the simple generator be a more memory-efficient design? Per the cycle docs: Note, this member of the toolkit may require significant auxiliary storage (depending on the length of the iterable). – dthor May 16 '16 at 22:18
  • 2
    @dthor this generator creates a list with three elements and literates over it, then destroys the list and creates a new one, in perpetuity. That documentation for cycle implies that the input iterable is converted to list before its generator starts, since iterable is only "good for one pass over the set of values". – Jacob Krall May 17 '16 at 2:30
8

Or you can do like this:

conn = ['a', 'b', 'c', 'c', 'e', 'f']
conn_len = len(conn)
index = 0
while True:
    print(conn[index])
    index = (index + 1) % conn_len

prints a b c d e f a b c... forever

3

you can accomplish this with append(pop()) loop:

l = ['a','b','c','d']
while 1:
    print l[0]
    l.append(l.pop(0))

or for i in range() loop:

l = ['a','b','c','d']
ll = len(l)
while 1:
    for i in range(ll):
       print l[i]

or simply:

l = ['a','b','c','d']

while 1:
    for i in l:
       print i

all of which print:

>>>
a
b
c
d
a
b
c
d
...etc.

of the three I'd be prone to the append(pop()) approach as a function

servers = ['a','b','c','d']

def rotate_servers(servers):
    servers.append(servers.pop(0))
    return servers

while 1:
    servers = rotate_servers(servers)
    print servers[0]
  • Upvoting this because it helped me with a completely different use case where I simply want to iterate over a list a number of times, each time with the start element advancing one step. My use case is to iterate over the players in a game of poker, advancing the dealer puck one player forward for each round. – Johan Aug 31 '18 at 20:36
2

You need a custom iterator -- I'll adapt the iterator from this answer.

from itertools import cycle

class ConnectionPool():
    def __init__(self, ...):
        # whatever is appropriate here to initilize
        # your data
        self.pool = cycle([blah, blah, etc])
    def __iter__(self):
        return self
    def __next__(self):
        for connection in self.pool:
            if connection.is_available:  # or however you spell it
                return connection
2

If you wish to cycle n times, implement the ncycles itertools recipe:

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", "c"], 3))
# ['a', 'b', 'c', 'a', 'b', 'c', 'a', 'b', 'c']

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