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I want to merge two lists in python, with the lists being of different lengths, so that the elements of the shorter list are as equally spaced within the final list as possible. i.e. I want to take [1, 2, 3, 4] and ['a','b'] and merge them to get a list similar to [1, 'a', 2, 3, 'b', 4]. It needs to be able to function with lists that aren't exact multiples too, so it could take [1, 2, 3, 4, 5] and ['a', 'b', 'c'] and produce [1, 'a', 2, 'b', 3, 'c', 4, 5] or similar. It needs to preserve the ordering of both lists.

I can see how to do this by a long-winded brute force method but since Python seems to have a vast array of excellent tools to do all sorts of clever things which I don't know about (yet) I wondered whether there's anything more elegant I can use?

NB: I'm using Python 3.3.

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Why the 'b' comes between 3 and 4? –  kennytm Oct 10 '13 at 10:43
    
Because it spaces them evenly within the list. I'd take ['a, 1, 2, 'b', 3, 4] as well but the rotation looks nicer to my eye. –  Jack Aidley Oct 10 '13 at 10:45
    
docs.python.org/2/library/functions.html#slice might help. See also the itertools module. Now the important part here is the algorithm, not the tools themselves. –  bruno desthuilliers Oct 10 '13 at 10:46

5 Answers 5

up vote 3 down vote accepted

if a is the longer list and b is the shorter

from itertools import groupby

len_ab = len(a) + len(b)
groups = groupby(((a[len(a)*i//len_ab], b[len(b)*i//len_ab]) for i in range(len_ab)),
                 key=lambda x:x[0])
[j[i] for k,g in groups for i,j in enumerate(g)]

eg

>>> a = range(8)
>>> b = list("abc")
>>> len_ab = len(a) + len(b)
>>> groups = groupby(((a[len(a)*i//len_ab], b[len(b)*i//len_ab]) for i in range(len_ab)), key=lambda x:x[0])
>>> [j[i] for k,g in groups for i,j in enumerate(g)]
[0, 'a', 1, 2, 'b', 3, 4, 5, 'c', 6, 7]

You can use this trick to make sure a is longer than b

b, a = sorted((a, b), key=len)
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This was the solution I went with in the end although I amended the final line to [j[i] for _,g in groups for i,j in enumerate(g)] so as to suppress a warning about an unused variable. –  Jack Aidley Oct 14 '13 at 9:50

Borrowing heavily from Jon Clements' solution, you could write a function that takes an arbitrary number of sequences and returns merged sequence of evenly-spaced items:

import itertools as IT

def evenly_spaced(*iterables):
    return [item[1] for item in 
        sorted(IT.chain(*(
            zip(IT.count(1.0/(len(seq)+1), 1.0/(len(seq)+1)), seq)
            for seq in iterables)))] 

iterables = [
    ['X']*2,
    range(1, 11),
    ['a']*3
    ]

print(evenly_spaced(*iterables))

yields

[1, 2, 'a', 3, 'X', 4, 5, 'a', 6, 7, 'X', 8, 'a', 9, 10]
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This is basically the same as Bresenham's line algorithm. You can calculate "pixel" positions and use them as the indices into the lists.

Where your task differs is that you only want each element to show up once. You'd need to either modify the algorithm or post-process the indices, appending the elements from the lists only the first time they appear. There is a slight ambiguity, though: when both pixel/list indices change at the same time, you'll need to pick which one to include first. This corresponds to the two different options for interleaving the lists that are mentioned in the question and a comment.

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Indeed it is. What a brilliant piece of lateral thinking. –  Jack Aidley Oct 10 '13 at 10:56

With the assumption that a is the sequence to be inserted into:

from itertools import izip, count
from operator import itemgetter
import heapq

a = [1, 2, 3, 4]
b = ['a', 'b']

fst = enumerate(a)
snd = izip(count(0, len(a) // len(b)), b)
print map(itemgetter(1), heapq.merge(fst, snd))
# [1, 'a', 2, 3, 'b', 4]
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@JackAidley ugh - of course in Python 3.x you will - one sec ;) –  Jon Clements Oct 10 '13 at 12:13
    
clever. For python3 it's probably neater to use a list comprehension than list(map(...)) –  John La Rooy Oct 10 '13 at 12:49

If we modify @Jon's answer like this

from itertools import count
import heapq

[x[1] for x in heapq.merge(izip(count(0, len(b)), a), izip(count(0, len(a)), b))]

It doesn't matter which of a/b is longest

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