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Doing some XML processing in python. (Edit: I'm forced to use Python 2.4 for this project, boo!) I want to know what is the most Pythonic way to do this (create union of all values in multiple lists):

def getUniqueAttributeValues(xml_attribute_nodes):
    # split attribute values by whitespace into lists
    result_lists=list(item.getContent().split() for item in xml_attribute_nodes)

    # find all unique values
    unique_results=[]
    for result_list in result_lists:
        for result in result_list:
            if result in unique_results:
                continue
            unique_results.append(result)

    return unique_results

Thanks,

-aj

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5 Answers 5

up vote 21 down vote accepted

set.union does what you want:

>>> results_list = [[1,2,3], [1,2,4]]
>>> results_union = set().union(*results_list)
>>> print results_union
set([1, 2, 3, 4])

You can also do this with more than two lists.

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@sth, thanks for example, but when I run it I get an error: Traceback (most recent call last): File "so_example.py", line 33, in ? results_union=set().union(*result_lists) TypeError: union() takes exactly one argument (3 given) –  AJ. Jan 28 '10 at 1:38
    
@AJ: According to the documentsion (docs.python.org/library/stdtypes.html#set.union) union() only supports multiple arguments for Python version 2.6 or higher. You seem to use a version before that, so you probably have to use an explicit loop: total = set(); for x in results_list: total.update(x) (s/;/\n/) –  sth Jan 28 '10 at 2:15

Since you seem to be using Python 2.5 (it would be nice to mention in your Q if you need an A for versions != 2.6, the current production one, by the way;-) and want a list rather than a set as the result, I recommend:

   import itertools

   ...

   return list(set(itertools.chain(*result_list)))

itertools is generally a great way to work with iterators (and so with many kinds of sequences or collections) and I heartily recommend you become familiar with it. itertools.chain, in particular, is documented here.

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+1 A perfect example of a good time to dip into the wonderful itertools package. –  gotgenes Jan 28 '10 at 3:48
    
@Alex thanks...edited my question to specify version and remove blame from myself for being so behind in versions :) I'll make it a point to look into itertools, appreciate the suggestion. –  AJ. Jan 28 '10 at 3:48
    
@AJ, no blame, we all can suffer under such constraints after all (but please do remember to specify in future Qs!-); itertools.chain works fine in Python 2.4 as well, by the way. –  Alex Martelli Jan 28 '10 at 3:55
def getUniqueAttributeValues(xml_attribute_nodes):
    return set(l 
       for item in xml_attribute_nodes
       for l in item.getContent().split())

If you want to have a list, just convert the set to a list before returning.

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You might want to test this. I get NameError: global name 'item' is not defined with your code and this with my translation: >>> L = [[1,2,3],[1,2]] >>> [e for e in subL for subL in L] Traceback (most recent call last): File "<stdin>", line 1, in <module> NameError: name 'subL' is not defined –  telliott99 Jan 28 '10 at 1:00
    
The ordering of loops was wrong, it's fixed now. –  Torsten Marek Jan 28 '10 at 1:23

I used the following to do intersections, which avoids the need for sets.

a, b= [[1,2,3], [1,2]]
s = filter( lambda x: x in b, a)

or,

s = [ x for x in b if x in a ]
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This doesn't work for an arbitrary number of lists. –  Seth Johnson Jan 28 '10 at 1:01
    
Why would you even want to "avoid the need for sets"? They're faster, and clearer, for this purpose. And your "x in a" does a linear, brute-force search through the list each time you execute it. Yuck. –  Peter Hansen Jan 28 '10 at 2:26
    
sets require type casting, and linear speed isn't bad unless you are dealing with a large N. –  Bear Jan 28 '10 at 7:52
    
"Type casting"? In Python? Since when? Sets are basically dicts with only the keys, and they use hash and equality comparisons. Using "x in a" on a list does an equality comparison too. What's all this about type casting? –  Peter Hansen Jan 28 '10 at 16:37

Unions are not supported by lists, which are ordered, but are supported by sets. Check out set.union.

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