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Is there a better way to merge/collate a bunch of sorted iterators into one so that it yields the items in sorted order? I think the code below works but I feel like there is a cleaner, more concise way of doing it that I'm missing.

def sortIters(*iterables, **kwargs):
    key = kwargs.get('key', lambda x : x)
    nextElems = {}
    currentKey = None
    for g in iterables:
        try:
            nextElems[g] = g.next()
            k = key(nextElems[g])
            if currentKey is None or k < currentKey:
                currentKey = k
        except StopIteration:
            pass #iterator was empty
    while nextElems:
        minKey = None
        stoppedIters = set()
        for g, item in nextElems.iteritems():
            k = key(item)
            if k == currentKey:
                yield item
                try:
                    nextElems[g] = g.next()
                except StopIteration:
                    stoppedIters.add(g)
            minKey = k if minKey is None else min(k, minKey)
        currentKey = minKey
        for g in stoppedIters:
            del nextElems[g]

The use case for this is that I have a bunch of csv files that I need to merge according to some sorted field. They are big enough that I don't want to just read them all into a list and call sort(). I'm using python2.6, but if there's a solution for python3 I'd still be interested in seeing it.

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1 Answer 1

up vote 14 down vote accepted

yes, you want heapq.merge() which does exactly one thing; iterate over sorted iterators in order

def sortkey(row):
    return (row[5], row)

def unwrap(key):
    sortkey, row = key
    return row

from itertools import imap
FILE_LIST = map(file, ['foo.csv', 'bar.csv'])
input_iters = imap(sortkey, map(csv.csvreader, FILE_LIST))
output_iter = imap(unwrap, heapq.merge(*input_iters))
share|improve this answer
    
That looks like almost exactly what I need, but there's no way to supply how the items are sorted? In my case the individual elements are lines from a CSV and I have to extract the key that tells how they should be sorted. I supposed I could wrap/unwrap elements as needed in something with comparisons defined. –  job Aug 3 '11 at 15:05
2  
Wrap each iterator in something that returns a key, say a tuple of the sort key and the original row; Then wrap heapq.merge() in something else that extracts the original value from the key. –  IfLoop Aug 3 '11 at 15:06
1  
Following up on this dupe: from 3.5 on, heapq.merge() will take a key parameter. –  Zero Piraeus Sep 2 at 15:30

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