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How do you merge two lists into a list of sublists where each sublist is paired based on the sequence of the items in the list?

In other words, I have three lists and I want to pair the values up in two of the lists based on a third list to form sublists. The rule to follow to do this is:

If a value in lst_b falls between a value in lst_c within lst_a, pair it up with the previous value in lst_a that is also in lst_c. For example, because 'aad' fall between two values in lst_c which are 'KEY1' and 'KEY2', pair it up with 'KEY1', since that came before 'KEY2'.

lst_a = ['KEY1','aad','b','KEY2','c','KEY3','d','e','f']

lst_b = ['aad','b','c','d','e','f']

lst_c = ['KEY1','KEY2','KEY3']


desired_list = [['KEY1','aad'],['KEY1','b'],['KEY2','c'],['KEY3','d'],['KEY3','e'],['KEY3','f']]

I don't even think this is possible in python or if it is, it would be far to complicated, so let me know if that is the case.

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closed as unclear what you're asking by Lego Stormtroopr, mhlester, eugen, rkosegi, Zsolt Botykai Jan 29 at 9:10

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

    
How do the 2 lists join to form the 3rd desired list? This question makes no sense. –  Lego Stormtroopr Jan 29 at 3:54
    
sorry, i'll try to clarify –  Chris Jan 29 at 3:55
    
Are lst_b and lst_c necessary for your code? They seem to convey the exact same information that lst_a does. –  Jesse Mu Jan 29 at 4:41
    
Well, you wouldn't know what the Keys are without eithr lst_b or lst_c. The Keys wouldn't necessarily be obvious or apparent in the actual code, so you would have to identify them from another list –  Chris Jan 29 at 4:49
    
Also, OP, you should look into dictionaries as a data structure specifically designed for associating key-value pairs. –  Jesse Mu Jan 29 at 5:03

2 Answers 2

up vote 2 down vote accepted

lst_b and lst_c should not be lists, they should be sets. All you care about is membership.

Here's how I'd write the generator:

def do_stuff(li, s_val, s_key):
    key = li[0]
    for x in li[1:]:
        if x in s_val:
            yield key,x
        elif x in s_key:
            key = x

demo:

list(do_stuff(lst_a,set(lst_b),set(lst_c)))
Out[24]: 
[('KEY1', 'aad'),
 ('KEY1', 'b'),
 ('KEY2', 'c'),
 ('KEY3', 'd'),
 ('KEY3', 'e'),
 ('KEY3', 'f')]

I assumed in the above that your first element of lst_a is a key, since your algorithm is undefined otherwise.

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Here's a simple way to do it.

desired_list = []
k = None
for a in lst_a:
    if a in lst_c:
        k = a
    elif a in lst_b:
        desired_list.append([k, a])
share|improve this answer
    
For each a in lst_a, this will either throw an exception since k is undefined or not add anything to desired_list –  Jesse Mu Jan 29 at 4:54
    
@jmu303, my answer does depend on a key being the first element, but that's assumed in the question. you could set k to None if you'd like it to fail silently. –  Kyler Brown Jan 29 at 4:56
    
fair enough. I also misinterpreted. Make sure to check for membership in lst_b too, even though in the example lists, every element of lst_a exists in either lst_b or lst_c –  Jesse Mu Jan 29 at 4:58

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