I would like to iterate in a for loop using 3 (or any number of) lists with any number of elements, for example:

from itertools import izip
for x in izip(["AAA", "BBB", "CCC"], ["M", "Q", "S", "K", "B"], ["00:00", "01:00", "02:00", "03:00"]):
    print x

but it gives me:

('AAA', 'M', '00:00')
('BBB', 'Q', '01:00')
('CCC', 'S', '02:00')

I want:

('AAA', 'M', '00:00')
('AAA', 'M', '01:00')
('AAA', 'M', '02:00')
.
.

('CCC', 'B', '03:00')

Actually I want this:

for word, letter, hours in [cartesian product of 3 lists above]
    if myfunction(word,letter,hours):
       var_word_letter_hours += 1
up vote 14 down vote accepted

You want to use the product of the lists:

from itertools import product

for word, letter, hours in product(["AAA", "BBB", "CCC"], ["M", "Q", "S", "K", "B"], ["00:00", "01:00", "02:00", "03:00"]):

Demo:

>>> from itertools import product
>>> for word, letter, hours in product(["AAA", "BBB", "CCC"], ["M", "Q", "S", "K", "B"], ["00:00", "01:00", "02:00", "03:00"]):
...     print word, letter, hours
... 
AAA M 00:00
AAA M 01:00
AAA M 02:00
AAA M 03:00
...
CCC B 00:00
CCC B 01:00
CCC B 02:00
CCC B 03:00
  • Thanks, please see my updated question above again, – alwbtc Sep 2 '12 at 15:42

Use itertools.product:

import itertools

for x in itertools.product(["AAA", "BBB", "CCC"],
                           ["M", "Q", "S", "K", "B"],
                           ["00:00", "01:00", "02:00", "03:00"]):
    print x

output:

('AAA', 'M', '00:00')
('AAA', 'M', '01:00')
...
('CCC', 'B', '02:00')
('CCC', 'B', '03:00')

Just for the record, another solution is just nested for loops:

for a in ["AAA", "BBB", "CCC"]:
    for b in ["M", "Q", "S", "K", "B"]:
       for c in ["00:00", "01:00", "02:00", "03:00"]:
           x = (a, b, c)
           # Use x ...

In my opinion, this is a lot clearer than having to find out / remember what the itertools.product function does. The only good reason to use that is if you're in a more abstract situation; e.g. you need to pass an iterator to a function rather than iterate over it immediately, or if you have an arbitrary list of lists that you want to take the Cartesian product of (in which case you can use product(*lists)).

  • This solution makes more sense if you need additional processing at different loop levels. However, the OP just wants to iterate over the triples, which with this approach must be constructed manually. Nested for loops is that they add as much indentation as there are lists, which can be a real issue for readability. – user4815162342 Jul 12 at 12:38

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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