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I have a set of nested tuples:

('id', ('name', ('name_float_fml',)), ('user', ('email',)), ('user', ('last_login',)))

I would like to combine lists with similar prefixes, resulting in:

('id', ('name', ('name_float_fml',)), ('user', ('email','last_login')))

Here is another example:

(('baz', ('bing', ('fizz', 'frozz', ('frazz', ('fry', 'bleep', 'blop'))))), ('baz', ('zap', ('zang',))), 'foo', 'bar')

would be merged to:

(('baz', (('bing', ('fizz', 'frozz', ('frazz', ('fry', 'bleep', 'blop')))), ('zap', ('zang')))), 'foo', 'bar')

These are intended to store paths from the root to the tree leaves:

  • 'baz' -> 'bing' -> 'fizz', aka. ('baz' ('bing' ('fizz,)))
  • 'baz' -> 'zap' -> 'zang', aka ('baz' ('zap', ('zang',)))
  • 'baz' -> 'bing' -> 'frazz' -> 'blop', aka ('baz', ('bing', ('frazz', ('blop,))))

I want to merge the elements where the leaves are reached by the same path. I hope this provides some amount of clarification.

I've written some code to do this, but it is ugly, verbose, and probably fragile. Is there some generic, concise, and/or efficient way of doing this? I imagine there may be some sort of itertools magic that I don't know about which would provide some elegant solution.

Note: I'm using python 2.4

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3  
those are tuples not lists. Also, if you only have 1 and 2-tuples, you should turn them into dicts –  Gabi Purcaru Aug 17 '11 at 20:12
1  
Sounds like a job for reduce! –  jtbandes Aug 17 '11 at 20:16
    
Agreed, as presented, these are not lists, but they could well be. I've changed the terminology to match my example. Dicts are not an option, as in my use case, lists or tuples are required. These lists could be nested to arbitrary depth. –  vezult Aug 17 '11 at 20:30
    
Your first tuple has one string(id) and three another tuples. How should it be handled? And could there be more tuple layers inside that, or just two? –  utdemir Aug 17 '11 at 20:35
    
I would be interested in seeing another example input and output set. –  Brent Newey Aug 17 '11 at 20:53

3 Answers 3

up vote 4 down vote accepted

Here is a version that works for the examples you posted:

a = ('id', ('name', ('name_float_fml',)), ('user', ('email',)), ('user', ('last_login',)))
b = (('baz', ('bing', ('fizz', 'frozz',('frazz', ('fry', 'bleep', 'blop'))))), ('baz', ('zap', ('zang',))), 'foo', 'bar')

def preserve_path(value):
    if len(value) == 2 and isinstance(value[1], (list, tuple)):
        return [value]
    else:
        return value

def flatten_group(my_list):
    d = {}
    for item in my_list:
        # Only items with one string, followed by one tuple represent a path
        # segment. In all other situations, strings are leaves.
        if isinstance(item, (list, tuple)) and len(item) == 2:
            key, value = item
            if key in d:
                d[key].extend(flatten_group(preserve_path(value)))
            else:
                d[key] = preserve_path(list(flatten_group(value)))
        else:
            yield item

    for item in d.iteritems():
        yield item

print list(flatten_group(a))
# ['id', ('name', ['name_float_fml']), ('user', ['email', 'last_login'])]
print list(flatten_group(b))
# ['foo', 'bar', ('baz', [['bing', ('fizz', 'frozz', ('frazz', ('fry', 'bleep', 'blop')))], ('zap', ['zang'])])]

Edit 3: Updated with the coauthored version that works for both examples, and incorporates your restriction that it only has to consider merging items that are tuples/lists and contain two items. This also prevents additional flattening of merged items.

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+1, This seems pretty good. I still think there's a groupby solution but am not able to work out the recursion for it. –  Brent Newey Aug 17 '11 at 21:14
    
Unfortunately, I'm using python 2.4, in which collections.defaultdict does not yet exist. –  vezult Aug 17 '11 at 21:32
    
Updated to check for the key and act appropriately instead of using a defaultdict. Also removed an unnecessary list call. –  agf Aug 17 '11 at 21:33
    
This looks like it might do the trick, though I had to define d for you ;o) –  vezult Aug 17 '11 at 21:41
    
My 2nd example probably didn't provide enough info. Your code chokes on that one because it assumes that there are only ever two elements in each tuple, which isn't guaranteed. For instance 'zang' is the only member of its tuple in example #2. I'll update my example for clarity. –  vezult Aug 17 '11 at 22:12

Here is a recursive function for doing this:

def merge(x, bases = (tuple, list)):
    for e in x:
        if type(e) in bases:
            for e in merge(e, bases):
                yield e
        else:
            yield e

tup = (0, (1, 3, 2), [5, (7, 2)])

print list(merge(tup))
# [0, 1, 3, 2, 5, 7, 2]
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I think you misunderstand what I am looking for. I don't want to merely flatten the lists. –  vezult Aug 17 '11 at 21:02

Here is a solution that uses itertools.groupby:

from itertools import groupby
def combine(tuples):
    rlist = [tuples[0]]
    for k, g in groupby(tuples[1:], key=lambda t: t[0]):
        rlist.append(tuple((k, tuple(gg[1:][0][0] for gg in g))))
    return tuple(rlist)

sample = ('id', ('name', ('name_float_fml',)), ('user', ('email',)), ('user', ('last_login',)))
print combine(sample)
# ('id', ('name', ('name_float_fml',)), ('user', ('email', 'last_login')))

A recursive application of this process may be possible, for samples more complex than the one given in your question.

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