3

Given two lists with suffixes:

l1 = ['C_1', 'B_1', 'A']
l2 = ['B_2', 'C_2', 'D']

I want to combine them like this:

['C_1', 'C_2', 'B_1', 'B_2', 'A', 'D']

Elements are to be combined with l1 as the anchor. This means, if C_* comes before B_* in l1, the same ordering will be preserved in the output. Furthermore, elements with the same prefix C_* will be grouped together, in increasing order of suffix. Elements with a suffix are placed in the order in which they appear, as you see above.

You can assume that all elements in l1 have suffix _1, and all elements in l2 have suffix _2.

I've tried this:

from collections import OrderedDict
from itertools import chain

o = OrderedDict()
for x in l1 + l2:
    o.setdefault(x.split('_')[0], []).append(x) 

result = list(chain.from_iterable(o.values()))

Which works, but was wondering if there were any more succinct ways of doing this.

Edit:

The suffix is just a stand in for which list that element appears in. Say I have C_1 from l1, and C_2 from l2, then C_* elements appear based on which was in l1 and which was in l2, in the final list (so, it'd be ... C_1, C_2...).

Furthermore, all elements in l1 and l2 are unique wrt each other and themselves. Hope that helps.

  • does order of l2 matter? not in your sample data as there's only one element without suffix/group from l1 – Jean-François Fabre Oct 19 '17 at 20:40
  • @Jean-FrançoisFabre The l1 ordering is the anchor here. The ordering of l2 elements wrt each other in the final list doesn't matter. – cs95 Oct 19 '17 at 20:40
  • You mean numerical suffix, or lexicographical suffix? – Willem Van Onsem Oct 19 '17 at 20:43
  • @WillemVanOnsem Really, the suffix is just a stand in for which list that element appears in. Say I have C_1 from l1, and C_2, from l2, then C_ elements appear based on which was in l1 and which was in l2, in the final list (so, it'd be ... C_1, C_2...) . I hope that clears things up! – cs95 Oct 19 '17 at 20:45
  • You can also assume the suffix will always be numerical, if that helps. – cs95 Oct 19 '17 at 20:45
3

Alex answer is short, but uses list.index which has O(n) complexity.

I would suggest a small adaptation with building p as a dictionary, reversing the iteration to emulate how index works (else last indexes are returned when there are more than 1 occurrence).

In that case, the sort key function uses dict lookup instead, much faster:

l1 = ['C_1', 'B_1', 'A']
l2 = ['B_2', 'C_2', 'D']

p = {s[0]:i for i,s in reversed(list(enumerate(l1 + l2)))}
print(sorted(l1 + l2, key=lambda x: (p[x[0]], x)))
1

With itertools.groupby() and sorted() functions:

import itertools

l1 = ['C_1', 'B_1', 'A']
l2 = ['B_2', 'C_2', 'D']
l1_len = len(l1)
groups_gen = (list(g) for k,g in itertools.groupby(sorted(l1+l2), key=lambda x: x[0] or '_' not in x))
result = list(itertools.chain.from_iterable(sorted(groups_gen,
              key=lambda x: l1.index(x[0]) if x[0] in l1 else l1_len)))

print(result)

The output:

['C_1', 'C_2', 'B_1', 'B_2', 'A', 'D']
  • 1
    Wow, that seems more complicated than the ordered dict solution :p – cs95 Oct 19 '17 at 20:57
  • Martjin commented on that method on one similar answer of mine (now deleted): using itertools.groupby with sorted list is O(n*2 * log(n)). Concise, but probably slower – Jean-François Fabre Oct 19 '17 at 20:58
  • yes, gentlemen, I realize that this could be probably slower that potential solutions using some Mapping objects. But that's the way I could achieve the needed aggregation/grouping. Another alternative solutions with better performance are welcome – RomanPerekhrest Oct 19 '17 at 21:06
1

Sort all the elements by the index at which their prefix appears in l1, using the rest of the string to break ties:

p = [s[0] for s in l1 + l2]
print(sorted(l1 + l2, key=lambda x: (p.index(x[0]), x)))

p uses prefixes from both l1 and l2 so that p.index(x[0]) doesn't raise an error.

  • This seems like a really nice alternative. Thanks. – cs95 Oct 19 '17 at 21:32
  • it won't sort the remaining items. For example, l1 = ['C_1', 'B_1', 'A'] l2 = ['B_2', 'C_2', 'F', 'D'] will lead to ['C_1', 'C_2', 'B_1', 'B_2', 'A', 'F', 'D'] but not sure if that's desirable for you. – utengr Oct 19 '17 at 21:47
0

You can simply do by this method

l1 = ['C_1', 'B_1', 'A']
l2 = ['B_2', 'C_2', 'D']

First select all first common words items

new=[y for item in l1 for item2 in l2 for y in  [item] + [item2] if item[0]==item2[0]]

Notice i am using extend in list comprehension above.

Now just find which item is remaining other than first letter common items:

    for item1 in l2:
        for item2 in l1:
            if item1 not in new:
                new.append(item1)

            elif item2 not in new:
                new.append(item2)


print(new)

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