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I am trying to implement lazy partitioning of an iterator object that yields slices of the iterator when a function on an element of the iterator changes values. This would mimick the behavior of Clojure's partition-by (although the semantics of the output would be different, since Python would genuinely "consume" the elements). My implementation is optimal in the number of operations it performs but not in memory it requires. I don't see why a good implementation would need more than O(1) memory, but my implementation takes up O(k) memory, where k is the size of the partition. I would like to be able to handle cases where k is large. Does anyone know of a good implementation?

The correct behavior should be something like

>>>unagi = [-1, 3, 4, 7, -2, 1, -3, -5]
>>> parts = partitionby(lambda x: x < 0,unagi)
>>> print [[y for y in x] for x in parts]
[[-1], [3, 4, 7], [-2], [1], [-3, -5]]

Here is my current version

from itertools import *

def partitionby(f,iterable):
    seq = iter(iterable)
    current = next(seq)
    justseen = next(seq)
    partition = iter([current])
    while True:
        if f(current) == f(justseen): 
            partition = chain(partition,iter([justseen]))
            try:
                justseen = next(seq)
            except StopIteration:
                yield partition
                break
        else:
            yield partition
            current = justseen
            partition = iter([])
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note that "partition" usually refers to the functional operation of splitting a iterable in two parts given a function, so your name may be confusing. zvon.org/other/haskell/Outputlist/partition_f.html –  tokland Apr 29 '11 at 19:59

2 Answers 2

up vote 3 down vote accepted

Why not reuse groupby? I think it is O(1).

def partitionby(f, iterable):
    return (g[1] for g in groupby(iterable, f))

The difference of groupby's implementation with yours is that the partition is a specialized iterator object, instead of a chain of chain of chain ...

share|improve this answer
    
Thanks KennyTM! I guess I need to spend some time getting to know itertools. It is O(1) in space. –  Gabriel Mitchell Apr 29 '11 at 18:50
    
well, it usually looks like (g for (k, g) in groupby(iterable, f)) –  tokland Apr 29 '11 at 19:56

it was bugging me that partition could be a normal list and not an iterator i.e.:

partition = iter([current])
partition = chain(partition,iter([justseen]))
partition = iter([])

could be:

partition = [current]
partition.append(justseen)
partition = []
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