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I need an algorithm which given a list L and a number N, returns a list of N smaller lists where the sublists are "balanced". Examples:

algo(range(1, 8), 3)  -> [[1,2,3], [4,5], [6,7]]
algo(range(1, 6), 4)  -> [[1,2], [3], [4], [5]]
algo(range(1, 12), 5) -> [[1,2,3], [4,5], [6,7], [8,9], [10, 11]]

As you can see, the algorithm should "prefer" the first list in the output.

I've been trying for hours, but I can't figure out a nice and terse algorithm for it. This will be implemented in Python, by the way, but it's really the algorithm that I'm after here. This is not homework, this is for a website which will display contents in a list in three columns (Django).


I got the best answer from #python on freenode and it is as follows:

def split_up(l, n):
    q, r = divmod(len(l), n)
    def division_point(i):
        return i * q + min(i, r)
    return [l[division_point(i):division_point(i+1)] for i in range(n)]

Don't ask me why it works though. :) I'll give the correct answer to the one with most votes though.

share|improve this question
    
You have to sort beforehand if I'm thinking right. What is wrong with lst.sort(), then traaversing it linearly to pick off elements? It is O([the sort func]) anyway. –  u0b34a0f6ae Sep 4 '09 at 16:11
1  
    
@Corey D: that question is slightly different –  voyager Sep 4 '09 at 16:21
2  
@voyager: Adapting that algorithm to this problem in Python is a trivial exercise. –  Corey D Sep 4 '09 at 16:25
    
What do you mean by balanced? If you're trying to minimize the maximum sum of any sub-list, there's a an app ---- I mean, a solution for that. Will dig it up in case if such is the case. –  agorenst Sep 4 '09 at 16:33

5 Answers 5

up vote 4 down vote accepted

This is the code I came up with, without the sorting. Just slap on a lst.sort() if the input is not sorted.

I think this came out nicely, using iterators and using islice to cut off the next piece.

import itertools

def partlst(lst, n):
    """Partition @lst in @n balanced parts, in given order"""
    parts, rest = divmod(len(lst), n)
    lstiter = iter(lst)
    for j in xrange(n):
        plen = len(lst)/n + (1 if rest > 0 else 0)
        rest -= 1
        yield list(itertools.islice(lstiter, plen))

parts =  list(partlst(range(1, 15), 5))
print len(parts)
print parts
share|improve this answer
    
This is a bout as terse as it gets. It is a sort of tricky problem though. –  Justin Sep 4 '09 at 17:13
    
it'd be an interesting code golf problem. I'm still tinkering with a solution. –  Triptych Sep 4 '09 at 17:54
    
@Triptych: Then don't look at my edited question. –  Deniz Dogan Sep 4 '09 at 17:58
    
crescentfresh: Thanks! –  u0b34a0f6ae Sep 6 '09 at 17:48

Assuming you want output to contain lists of equal length when possible, otherwise give preference to lists in the beginning. Difference between lengths of sub-lists no more than one.

>>> l = [0, 1, 2, 3, 4, 5, 6]
>>> def algo(li, n):
        a, b = divmod(len(li), n)
        c = [a + 1] * b + [a] * (n-b)
        s = 0
        for i, j in enumerate(c):
            c[i] = li[s:s+j]
            s += j
        return c

>>> algo(l, 3)
[[0, 1, 2], [3, 4], [5, 6]]
>>> algo(l, 4)
[[0, 1], [2, 3], [4, 5], [6]]
share|improve this answer

If I understand your problem... you would only have to add one item for each list under mod(n), where you have algo (range(a,b), n)

So you should:

  1. Have b-a > n
  2. Calculate b-a = n*x + y (I dont really know if the operator % exists on python, so you should get y)
  3. The first y lists will have (b-a/n + 1) elements and the other lists will have (b-a/n)
share|improve this answer

Here's a tribute to functional lovers:

def algo(l, n):
    if n == 1: return [l]
    q, r = divmod(len(l),n)
    if r: q += 1
    return [l[:q]] + algo(l[q:], n - 1)

This one is a little bit smaller:

def algo(l, n):
    k = l[:]
    q, r = divmod(len(l),n)
    return [[k.pop(0) for _ in [0] * m]
            for m in [q + 1] * r + [q] * (n - r)]
share|improve this answer

Bit late to the party, but...

def algo(l, n):
  return [l[-(-len(l)*i//n):-(-len(l)*(i+1)//n)] for i in range(n)]

Use / instead of // in older versions of Python.

share|improve this answer
    
I haven't tested it, but if it works, then I'll be damned! :) –  Deniz Dogan Nov 4 '09 at 19:52

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