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This question closely relates to How do I run two python loops concurrently?

I'll put it in a clearer manner: I get what the questioner asks in the above link, something like

for i in [1,2,3], j in [3,2,1]:
    print i,j
    cmp(i,j) #do_something(i,j)


L1: for i in [1,2,3] and j in [3,2,1]: doesnt work

Q1. but this was amusing what happened here:

    for i in [1,2,3], j in [3,2,1]:
    print i,j

[1, 2, 3] 0
False 0

Q2. How do I make something like L1 work?

Not Multithreading or parallelism really. (It's two concurrent tasks not a loop inside a loop) and then compare the result of the two.

Here the lists were numbers. My case is not numbers:

for i in f_iterate1() and j in f_iterate2():

UPDATE: abarnert below was right, I had j defined somewhere. So now it is:

>>> for i in [1,2,3], j in [3,2,1]:
    print i,j

Traceback (most recent call last):
  File "<pyshell#142>", line 1, in <module>
    for i in [1,2,3], j in [3,2,1]:
NameError: name 'j' is not defined

And I am not looking to zip two iteration functions! But process them simultaneously in a for loop like situation. and the question still remains how can it be achieved in python.

UPDATE #2: Solved for same length lists

>>> def a(num):
    for x in num:
        yield x

>>> n1=[1,2,3,4]
>>> n2=[3,4,5,6]
>>> x1=a(n1)
>>> x2=a(n2)
>>> for i,j in zip(x1,x2):
    print i,j

1 3
2 4
3 5
4 6


Q3. What if n3=[3,4,5,6,7,8,78,34] which is greater than both n1,n2. zip wont work here.something like izip_longest? izip_longest works good enough.

share|improve this question
After your edit, I don't understand what you're asking at all. Both answers show you how to process them simultaneously. Inside each iteration of the for loop, you have one value from each iterator, and you can use them together in the same expression. Exactly what you wanted to do with your "L1". So… what's the further problem you're trying to solve? – abarnert May 14 '13 at 21:01
As for the other part of the update… do you not understand why you get a NameError here, or why you got your previous output when j was defined? – abarnert May 14 '13 at 21:03
Can you show what output you would like to result from the given input? We don't understand what you're trying to achieve. – Chris Johnson May 14 '13 at 21:04
Yes, izip_longest() will work for you when one list is longer. I already addressed that in my answer. :-) – Martijn Pieters May 14 '13 at 21:12
@abarnert NameError problem is solved now. Basically, something like :: for x in process_1 and y in process_2: do_something(with x & y). now if processes(generators) increase, iterators would too and do_something(with x,y,...n) – user2290820 May 14 '13 at 21:13

2 Answers 2

up vote 3 down vote accepted

It's hard to understand what you're asking, but I think you just want zip:

for i, j in zip([1,2,3], [3,2,1]):
    print i, j

for i, j in zip(f_iterate1(), f_iterate2()):
    print i, j

And so on…

This doesn't do anything concurrently as the term is normally used, it just does one thing at a time, but that one thing is "iterate over two sequences in lock-step".

Note that this extends in the obvious way to three or more lists:

for i, j, k in zip([1,2,3], [3,2,1], [13, 22, 31]):
    print i, j, k

(If you don't even know how many lists you have, see the comments.)

In case you're wondering what's going on with this:

for i in [1,2,3], j in [3,2,1]:
    print i,j

Try this:

print [1,2,3], j in [3,2,1]

If you've already defined j somewhere, it will print either [1, 2, 3] False or [1, 2, 3] True. Otherwise, you'll get a NameError. That's because you're just creating a tuple of two values, the first being the list [1,2,3], and the second being the result of the expression j in [3,2,1].


for i in [1,2,3], j in [3,2 1]:
    print i, j

… is equivalent to:

for i in ([1,2,3], False):
    print i, 0

… which will print:

[1, 2, 3] 0
False 0
share|improve this answer
Might it be worth noting the * operator for more than one list? – squiguy May 14 '13 at 20:53
@squiguy: You mean zip(*list_of_lists)? I think that will just confuse the question. If you know how many values you want to iterate, you know how many lists you want to zip. If you don't know either, you have to write for tuple_of_values in zip(*list_of_lists) or something. But maybe it is worth mentioning that zip works on ore than 2 values. – abarnert May 14 '13 at 20:55
Yes, exactly. It is out of the scope of the exact question but maybe worth noting...could be helpful at another time. – squiguy May 14 '13 at 20:57
@squiguy: I upvoted your comment, and put a reference to it in the answer; hopefully that gives it just the right amount of focus? – abarnert May 14 '13 at 20:59
You have an up vote from me too. – squiguy May 14 '13 at 21:00

You want to use the zip() function:

for i, j in zip([1, 2, 3], [3, 2, 1]):

for i, j in zip(f_iterate1(), f_iterate2()):

zip() pairs up the elements of the input lists, letting you process them together.

If your inputs are large or are iterators, use, or, if you don't care about forward compatibility with Python 3, use itertools.izip() instead; these yield pairs on demand instead of creating a whole output list in one go:

from future_builtins import zip

for i, j in zip(f_iterate1(), f_iterate2()):

Your generators fall in this scenario.

Last but not least, if your input lists have different lengths, zip() stops when the shortest list is exhausted. If you want to continue with the longest list instead, use itertools.izip_longest(); it'll use a fill value when the shorter input sequence(s) are exhausted:

>>> for i, j, k in izip_longest(range(3), range(3, 5), range(5, 10), fillvalue=42):
...     print i, j, k
0 3 5
1 4 6
2 42 7
42 42 8
42 42 9

The default for fillvalue is None.

Your attempt:

for i in [1,2,3], j in [3,2,1]:

is really interpreted as:

for i in ([1,2,3], j in [3,2,1]):

where the latter part is interpreted as a tuple with two values, one a list, the other a boolean; after testing j in [3,2,1], is either True or False. You had j defined as 0 from a previous loop experiment and thus 0 in [3, 2, 1] is False.

share|improve this answer
@Martjin Yes this is what I was looking for. It worked. And I've added update #2 for this with a sample code meanwhile testing it with izip_longest. – user2290820 May 14 '13 at 21:17

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