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I have a set of lists that look like this:

conditions = [
["condition1", ["sample1", "sample2", "sample3"]],
["condition2", ["sample4", "sample5", "sample6"],
...]

how can I do the following things efficiently and elegantly in Python?

  1. Find all the elements in a certain condition?

    e.g. get all the samples in condition2. Right now I can do:

    for cond in conditions:
      cond_name, samples = cond
      if cond_name == requested_cond:
        return samples
    

    but that's clunky.

  2. Find the ordered union of a list of conditions? E.g. ordered_union(["condition1", "condition2"], conditions) should return:

    ["sample1", "sample2", "sample3", "sample4", "sample5", "sample6"]
    

How can I do this efficiently in Python? There are probably clever one liners?

share|improve this question
4  
Why is this a list of lists? Why isn't this a dictionary? –  S.Lott Jun 14 '10 at 19:43
    
Use dicts, sets, and sorts. –  ʇsәɹoɈ Jun 14 '10 at 19:44
1  
This is usually very small, only 3 or 4 conditions which doesn't seem to merit a dictionary. Also, the order matters a lot to me since I plot these values later on in the order of conditions... so I wasn't sure how to do it with dicts and have it be sorted. –  user248237dfsf Jun 14 '10 at 19:46
3  
"doesn't seem to merit a dictionary" Meaningless. Your problem appears to be precisely and only dictionary-like key lookup. Read about sorted and re-ask your question. –  S.Lott Jun 14 '10 at 19:48
1  
could you clarify what do you mean by "ordered union" in #2? for example what will happen if lists for conditions overlap? say cond1 is ['item1','item2'] and cond2 is ['item2', 'item1'] - what should the result be? –  Nas Banov Jun 14 '10 at 22:45

4 Answers 4

up vote 3 down vote accepted

Ah well, if you're forced to keep that clunky data structure, you can't expect much. The one-liner equivalent of your first solution is going to be something like:

def samplesof(requested_cond, conditions):
    return next(s for c, s in conditions if c==requested_cond)

and for the second one, if you insist on one-liners, it's going to be something like:

def ordered_union(the_conds, conditions):
    return [s for c in the_conds for s in samplesof(c, conditions)]

There are faster ways to solve the second problem, but they're all multi-line, e.g.:

aux_set = set(the_conds)
samples_by_cond = dict((c, s) for c, s in conditions if c in aux_set)
return [s for c in the_conds for s in samples_by_cond[c]]

Note that the key to the reason this latter approach is faster is that it uses the right data structures (a set and a dict) -- unfortunately it has to build them itself, because the incoming conditions nested list is really the wrong data structure.

Couldn't you encapsulate conditions as a member variable of a class that builds the crucial (right, fast) auxiliary data structures just once? E.g.:

class Sensible(object):
  def __init__(self, conditions):
    self.seq = []
    self.dic = {}
    for c, s in conditions:
      self.seq.append(c)
      self.dic[c] = s
  def samplesof(self, requested_condition):
    return self.dic[requested_condition]
  def ordered_union(self, the_conds):
    return [s for c in the_conds for s in self.dic[c]]

Now that is fast and elegant!

I'm assuming that you need self.seq (the sequence of conditions) for something else (it's certainly not needed for the two operations you mention!), and that there are no repetitions in that sequence and in the samples (whatever your actual specs are they won't be hard to accomodate, but blindly trying to guess them when you mention nothing about them would be very hard and pointless;-).

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1  
+1 however reading the comments, the op will likely think this problem doesn't merit a whole class to itself! –  gnibbler Jun 14 '10 at 20:21
1  
Thanks for all your comments and replies, I appreciate it. I'm getting the impression that everyone thinks this should be done with a dictionary -- I am very open to that, as long as I can maintain ordering. The above class does that, but like gnibbler said, it's a whole class just for this. Is that what everyone would recommend? If so I am open to this solution, I am just wondering if it isn't an overkill. Basically, as far as I can tell, this has to be a dictionary with an extra parameter which is a list that provides the order. –  user248237dfsf Jun 14 '10 at 21:37
    
in return next( <some generator> ) above do you mean return (<some generator>).next() ? not sarcastic, just don't know such fn next() –  Nas Banov Jun 14 '10 at 22:32
    
@EnTerr, in Python 2.6 and better there's a nice next built-in (use the method instead only if you're stuck with old releases, 2.5 or earlier). "A whole class" costs essentially nothing, so of course it's worth it if it makes a solution nicer, faster, etc. –  Alex Martelli Jun 14 '10 at 23:08
1  
@EnTerr, I love functional programming when appropriate, but your code below is really terrible (reduce(list._add__, ..., eep, not to mention the uselessly repeated building of intermediate dicts -- which Sensible sensibly does once and for all instead, and that's the crucial speed-up and not obtainable via functional programming in this case). –  Alex Martelli Jun 15 '10 at 0:37

This looks more like a job for a dict:

conditions = {
"condition1": ["sample1", "sample2", "sample3"],
"condition2": ["sample4", "sample5", "sample6"],
...}

You could then get the "ordered union" using

>>> conditions["condition1"]+conditions["condition2"]
['sample1', 'sample2', 'sample3', 'sample4', 'sample5', 'sample6']

In Python 3.1 or 2.7, you can preserve the order using an OrderedDict instead:

from collections import OrderedDict
conditions = OrderedDict([
["condition1", ["sample1", "sample2", "sample3"]],
["condition2", ["sample4", "sample5", "sample6"]]
])

You could then get the "ordered union", also for OrderedDicts of arbitrary size:

>>> import itertools
>>> [item for item in itertools.chain(*conditions.values())]
['sample1', 'sample2', 'sample3', 'sample4', 'sample5', 'sample6']
share|improve this answer
1  
This makes the assumption that the sample names can be sorted alphabetically like that, which happens to be true in my example but is not true in general in my code -- sorry for that confusion. condition1 could be called foo and condition2 could be bar, and the samples in them can be named arbitrarily in a non-easily sortable way. –  user248237dfsf Jun 14 '10 at 19:49
1  
Concatenating the lists won't be a union if there are repeated elements. –  tzaman Jun 14 '10 at 19:50
    
@user248237: OK, how should they be sorted then? Or how did you arrive at ["sample1", "sample2", "sample3", "sample4", "sample5", "sample6"]? –  Tim Pietzcker Jun 14 '10 at 20:10
    
@tzaman: You're right. But we don't know what exactly he means by "ordered union". Let's wait for clarification. –  Tim Pietzcker Jun 14 '10 at 20:13
    
@tim: I arrive at that ordering by simple concatenating the two lists. I assume no sample belongs to more than one condition. So the ordering is given by the list. This is why I used a list of lists instead of a dictionary. –  user248237dfsf Jun 14 '10 at 21:31

You need to use a dict (dictionary) instead of a list. Also, you can keep the samples in a set if you want efficient set-based operations.

conditions = { "condition1" : set(["sample1", "sample2", "sample3"]),
               "condition2" : set(["sample4", "sample5", "sample6"]) }

print conditions["condition2"]
# set(['sample5', 'sample4', 'sample6'])
union = conditions["condition1"].union(conditions["condition2"])
print sorted(union)
# ['sample1', 'sample2', 'sample3', 'sample4', 'sample5', 'sample6']
share|improve this answer

On the 1st question:

>>> dict(conditions)['condition1']
['sample1', 'sample2', 'sample3']

On #2 (it's not quite clear what you mean by 'ordered union' so i am making assumption 'ordered lists concatenated in order'):

>>> tmpdict = dict(conditions)
>>> sum( map(tmpdict.get, ["condition1", "condition2"]), [] )
['sample1', 'sample2', 'sample3', 'sample4', 'sample5', 'sample6']

ps. example depreciated to address A.M.'s rightful criticism - that due to implementation issues sum() exhibits quadratic behavior with increase of list size. Instead I suggest the code below:

>>> import operator
>>> tmpdict = dict(conditions)
>>> reduce(operator.iadd, map(tmpdict.get, ["condition1", "condition2"]), [] )
['sample1', 'sample2', 'sample3', 'sample4', 'sample5', 'sample6']
share|improve this answer
    
you could use tmpdict.get and/or itertools.chain. –  J.F. Sebastian Jun 15 '10 at 6:53
    
@J.F. Sebastian: thanks re dic.get(i) - i used _getitem_ because i was looking for the exact fn equivalent of dict[i] and i know dict.get() returns None when item is not found while [] throws exception. Except there is no reason why i should prefer one over the other - trying to append None to a list will cause exception too, so simplest - get - wins. re itertools.chain - i don't know itertools (yet), will look into it - seems convenient! –  Nas Banov Jun 16 '10 at 3:26
1  
reduce(operator.iadd,...) is fast. stackoverflow.com/questions/406121/… –  J.F. Sebastian Jun 16 '10 at 12:44

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