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Which would be the most elegant and Pythonic way to permute elements of 5 or 6 lists?

I have a bunch of list like following, where each element will trigger an AJAX call. And when elements from list 3 will be iterated, they might pull out another list which I need to permute as well and I need to get all permutations possible.

List comprehensions are out of discussion because I need to make some operations between each call.

I know about itertools.permutations but I'm looking for something that will give me more control at each step.

list1 =['e1', 'e2', 'e3']
list2 = ['e1', 'e2', ... , 'e13']
list3 = [up to 15 elements]
variable_list = ['e1', 'e2']
list4 = ['e1', 'e2']
list5 = ['e1', 'e2', ... , 'e16']

Here it's the list I'm trying to deal:

values = [[{'0': '25'},
      {'0': '50'},
      {'0': '75'},
      {'0': '100'},
      {'0': '250'},
      {'0': '500'},
      {'0': '750'},
      {'0': '1000'},
      {'0': '2500'},],
     [{'1': 'abc|xyz'}],
     [{'2': 'Color|purple'}, {'2': 'Color|black'}],
     [{'3': 'yes|no'},
      {'3': 'no|yes'}],
     [{'4': 'Round|no'}, {'4': 'Round|yes'}],
     [{'5': 'time|4-5'}],
     [{'Base': 'gl'}],
     [{'Type': '123'}]]

The number of values elements may change, not all the time will have this length - 8 elements, so I need to handle that as well.

I need to return a list with all combinations possible: Here's an example of an element from the list which I need:

[{'0': '25'}, {'1': 'abc|xyz'}, {'2': 'Color|purple'}, {'3': 'yes|no'}, {'4': 'Round|no'}, {'5': 'time|4-5'}, {'Base': 'gl'}, {'Type': '123'}]

The length of each element from resulted list has to be equal with the length on input list (value in my case).

I tried itertools.permutation but is giving me more results than I need. Also, I tried @markcial suggestion but it doesn't work if I don't know the length of the input list before hand.

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I'm not sure I understand what you mean when you say you need control at each step. Are you modifying the lists as you are generating the permutations? –  Andrew Clark Jan 30 at 20:53
1  
How do you mean more control at each step? permutations isn't computed all at once, but rather is a generator that yields them to you one at a time. you can break iterating part-way through and it won't keep computing the remaining permutations –  mhlester Jan 30 at 20:53
    
No, I'm not modifying them, but I need classic for loop because at each iteration I'll need to extract some data from AJAX calls. It's very important to do this top to bottom and not random. –  jabez Jan 30 at 20:55
    
itertools.permutations isn't random –  mhlester Jan 30 at 20:56
1  
It sounds like itertools.permutations should work just fine. –  Andrew Clark Jan 30 at 20:58

2 Answers 2

up vote 1 down vote accepted

You talk about permutations and combinations, but it seems to me you actually want the Cartesian product, which is generated by itertools.product. For example:

>>> from itertools import product
>>> values = [[{'0': '25'}, {'0': '50'}, {'0': '75'}, {'0': '100'}, {'0': '250'}, {'0': '500'}, {'0': '750'}, {'0': '1000'}, {'0': '2500'}], [{'1': 'abc|xyz'}], [{'2': 'Color|purple'}, {'2': 'Color|black'}], [{'3': 'yes|no'}, {'3': 'no|yes'}], [{'4': 'Round|no'}, {'4': 'Round|yes'}], [{'5': 'time|4-5'}], [{'Base': 'gl'}], [{'Type': '123'}]]
>>> every_choice = list(product(*values))
>>> len(every_choice)
72

Where each element of every_choice is a tuple with one element selected from each list:

>>> every_choice[0]
({'0': '25'}, {'1': 'abc|xyz'}, {'2': 'Color|purple'}, {'3': 'yes|no'}, {'4': 'Round|no'}, {'5': 'time|4-5'}, {'Base': 'gl'}, {'Type': '123'})
>>> every_choice[30]
({'0': '100'}, {'1': 'abc|xyz'}, {'2': 'Color|black'}, {'3': 'no|yes'}, {'4': 'Round|no'}, {'5': 'time|4-5'}, {'Base': 'gl'}, {'Type': '123'})
>>> every_choice[-1]
({'0': '2500'}, {'1': 'abc|xyz'}, {'2': 'Color|black'}, {'3': 'no|yes'}, {'4': 'Round|yes'}, {'5': 'time|4-5'}, {'Base': 'gl'}, {'Type': '123'})
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You are right. I didn't know how to explain my exact needs. Thanks a lot! –  jabez Feb 12 at 21:03

list comprehension is able to call functions too. You can create a function for the list comprehension step like this

def do(*args):
    print args
    return args

and then with list comprehension call the function with the current step:

list1 =['e1', 'e2', 'e3']
list2 = ['e1', 'e2', 'e13']
[do(a,b) for a in list1 for b in list2]

subsequent loops can be added with more complex routines, but the main idea is that you can control list comprehension loops

share|improve this answer
1  
I will try this approach and I'll come back. Thanks. –  jabez Jan 30 at 21:11
    
I updated the question. –  jabez Feb 12 at 20:48

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