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After searching around for quite a while and trying to come up with a solution on my own with list comprehensions, I feel like I've been completely stumped on how to solve the following problem:

Given a list:

crazy_list = [a, b]

Where:

a = [['*'], ['*', '34', '*', '*', '*', '*', '*', '*', '*'], ['*', '*', '*', '102', '*', '*', '*', '*', '*'], ['*', '*', '*', '*', '*', '170', '*', '*', '*'], ['*', '*', '*', '*', '*', '*', '*', '238', '*'], ['*']]
b = [['*'], ['*', '*', '*', '102', '*', '*', '*', '*', '*'], ['*', '*', '*', '*', '*', '170', '*', '*', '*'], ['*', '*', '*', '*', '*', '*', '*', '238', '*'], ['*', '34', '*', '*', '*', '*', '*', '*', '*'], ['*']]

How do I elegantly get a new list of lists such that:

answer = [['*'], ['*', '34', '*', '102', '*', '*', '*', '*', '*'], ['*', '*', '*', '102', '*', '170', '*', '*', '*'], ['*', '*', '*', '*', '*', '170', '*', '238', '*'], ['*', '34', '*', '*', '*', '*', '*', '238', '*'], ['*']]

and how would I generalize this kind of merging to do the same for:

[a, b, c, etc...]

(c and onwards would have the same number of elements and subelements as 'a' and 'b', but would probably have different unique values in different positions)

====================v The little that I've been able to do so far v=====================

I can come up with a list comprehension that does do what I want for individual lists with something like:

c = ['*', '34', '*', '*', '*', '*', '*', '*', '*']
d = ['*', '*', '*', '102', '*', '*', '*', '*', '*']

by doing:

[c[item_indx] if item != '*' else d[item_indx] for item_indx, item in enumerate(c)]

but even trying to generalize what I have so far is giving me one heck of a headache... I'm probably approaching this problem incorrectly. Some help and/or thoughts on how to solve/better-approach this problem would be much appreciated. Also, I can't just ditch the '*'s as they encode important timing information. Thanks again for your time!

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1  
what about conflicts in the same position while merging? –  Abhijit Dec 8 '11 at 7:14
    
If a unique value aka (a number string) already exists after a merge then any other numbers that occur in the same positions in successive merges shouldn't overwrite. Only '*'s should be getting overwritten. –  NJM Dec 8 '11 at 7:23
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4 Answers

up vote 3 down vote accepted

First, let's figure out how to merge a sublist from a with a sublist from b:

[x if x != '*' else y for (x, y) in zip(a, b)]

We take pairs of items from the two lists, and for each pair, produce one or the other element, and make a list of the results.

To generalize that to multiple lists: well, zip accepts *args, so there's no problem there - we can make tuples of items from any number of lists. But then we need to take "the non-'*' element, if it exists, otherwise '*'" from that tuple.

One way to do that is to make a set of the elements, remove '*', and use any element from the result (if non-empty), otherwise use '*'. We can get "any element" from a set with .pop(), which will raise a KeyError if the set is empty. So we make a wrapper function and then use it:

def non_star_if_possible(items):
    try: return set(items).difference('*').pop()
    except KeyError: return '*'

def merge(lists):
    return [non_star_if_possible(items) for items in zip(*lists)]

Finally, we actually have a list of lists of lists, and we want to take lists from the lists of lists, element-wise. So we apply the same zip trick:

def merge_all(data):
    return [merge(lists) for lists in zip(*data)]

And if we prefer, we could fold those last two into a single nested list comprehension, but you might find it clearer this way. :)

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Yes, this is exactly what I needed. Took me a few minutes to wrap my head around what you were doing, but it makes sense now that I've digested it. I should add that I greatly appreciated the explanation as well. Thanks again! –  NJM Dec 8 '11 at 7:49
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Assuming that your progress on just two lists so far works, you can try this.

def merge(a, b):
    return [a[item_indx] if item != '*' else b[item_indx] for item_indx, item in enumerate(a)]

reduce(merge, crazy_list)

What reduce does in this case is take the resulting list of the last merge and then does it with the next element. So for a crazy list of [a, b, c, d], a and b will merge, and the resulting list will merge with c, and that result will merge with d. And so forth. In general, reduce applies the function supplied as an argument in a comparable fashion.

Edit: Okay, I see what you were saying now. So I defined another method to handle lists of lists. I realize you've already accepted an answer, but I'll just leave this as an alternative.

# a and b are lists of lists.
def merge_lists(a, b):
    for i, v in enumerate(a):
        a[i] = merge(a[i], b[i])
    return a

reduce(merge_lists, (c, d))
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hmmm, that's quite interesting, maybe if I experiment with it some more, I might be able to come up with something... The solution you posted doesn't work because the list comprehension I posted only works on single lists, not on a list of lists and definitely not on a list containing a list of lists (oh god that's an awkward way to say it) –  NJM Dec 8 '11 at 7:25
    
It works on a list of lists for me. Can you explain why it doesn't work? And what's the behavior you would expect for a list of lists of lists? When I added another list a (in addition to c and d in your example), a = ['69', '*', '*', '*', '*', '*', '*', '*', '*']. reduce(merge, [c,d,a]) produced ['69', '34', '*', '102', '*', '*', '*', '*', '*']. Is that wrong? –  U-DON Dec 8 '11 at 7:34
    
hmm... so for the list of lists if I do something like: for indx, value in enumerate(a): merge(a[indx],b[indx]) that works for me. –  NJM Dec 8 '11 at 7:35
    
I didn't even know about reduce before, so thanks for bringing it to my attention. –  NJM Dec 8 '11 at 8:09
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You can try this. Another version

reduce(lambda a,b:[[x[0] if x[1] == '*' else x[1] for x in p] 
   for p in (zip(x,y) for x,y in zip(a,b)) ],(a,b))

for multiple lists

reduce(lambda a,b:[[x[0] if x[1] == '*' else x[1] for x in p] 
   for p in (zip(x,y) for x,y in zip(a,b)) ],(a,b,c.....))

or may be this

reduce(lambda a,b:[[x[x[1] != '*'] for x in p]
   for p in (zip(x,y) for x,y in zip(a,b)) ],(a,b,c,....))

Note: reduce Applies the two lambda function over the iterator passing the result as the first argument of the next call.

The lambda function zips both the list and for each item of the list selects the non '*' item giving preference to the first list in case of a conflict.

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a solution for any number of list:

from functools import reduce

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

ls = (a, b, c)

def merge(*ls):
    return [f(x) for x in zip(*ls)]

def f(x):
    for item in x:
        if item != '*':
            return item
    return '*'

print(reduce(merge, ls))

this gives (py3.2, idleX !)

>>> ================================ RESTART ================================
>>> 
['a', 'b', '*', 'c']
>>> 
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