Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is there any elegant way of splitting a list/dict into two lists/dicts in python, taking in some arbitrary splitter function?

I could easily have two list comprehensions, or two selects, but it seems to me there should be some better way of doing it that avoids iterating over every element twice.

I could do it easily with a for loop and if statement, but that takes something like 7 lines of code for what should be a very simple operation.

Any ideas?

Edit:

Just for reference, my two solutions would be,

# given dict cows, mapping cow names to weight
# fast solution
fatcows = {}
thincows = {}
for name, weight in cows:
    if weight < 100:
        thincows[name] = weight
    else:
        fatcows[name] = weight

# double-list-comprehension solution would be
fatcows = {name: weight for name, weight in cows.items() if weight > 100}
thincows = {name: weight for name, weight in cows.items() if weight < 100}

I was thinking there must be something more elegant than this that i never thought of, something like:

thincows, fatcows = ??? short expression involving cows ???

I know it's possible to do by writing higher order functions stuff to do it for me, and i know how to do it manually. I was just wondering if there was some super-elegant language feature to do it for me.

It's like you can write your own subroutines and whatnot to do a SELECT on a list, or you can just say

thincows = select(cows, lambda c: c.weight < 100)

I was hoping there would be some similarly elegant way of splitting the list, with one pass

share|improve this question
1  
Can you give an example of the arbitrary splitter function you mention? Even better, show an example that you'd like to tighten up. –  Chris Gregg Jul 31 '11 at 2:08
1  
Could you add your seven lines of code? –  Keith Jul 31 '11 at 2:14
    
Scrolling through the answers, was shocked not to see itertools.ifilter-- figured I'd misunderstood (another) itertools function since your question sounded like another of the "Is there a better way to do (insert itertools function remade by me here)?", which seem to come up a lot. But then was relieved to see answer by superuser at bottom to that effect. You should accept adam rosenfeld's answer, since it's the python standard library way of doing what you want. Gratz on such a popular question for one of your first! –  Profane Jul 31 '11 at 8:20
add comment

6 Answers

up vote 4 down vote accepted

More fun with cows :)

import random; random.seed(42)
cows = {n:random.randrange(50,150) for n in 'abcdefghijkl'}

thin = {}
for name, weight in cows.iteritems():
    thin.setdefault(weight < 100, {})[name] = weight

>>> thin[True]
{'c': 77, 'b': 52, 'd': 72, 'i': 92, 'h': 58, 'k': 71, 'j': 52}

>>> thin[False]
{'a': 113, 'e': 123, 'l': 100, 'g': 139, 'f': 117}
share|improve this answer
    
Nice, i really like this one =) –  Li Haoyi Jul 31 '11 at 3:38
add comment

How about 3 lines?

fatcows, thincows = {}, {}
for name, weight in cows.items():
    (fatcows if weight > 50 else thincows)[name] = weight

Tested:

>>> cows = {'bessie':53, 'maud':22, 'annabel': 77, 'myrna':43 }
>>> fatcows, thincows = {}, {}
>>> for name, weight in cows.items():
...     (fatcows if weight > 50 else thincows)[name] = weight
... 
>>> fatcows
{'annabel': 77, 'bessie': 53}
>>> thincows
{'maud': 22, 'myrna': 43}
share|improve this answer
add comment

It can be done with a genex, sorting, and itertools.groupby(), but it will probably not be much more efficient than the brute-force solution.

Brute-force solution:

def bifurcate(pred, seq):
  if pred is None:
    pred = lambda x: x
  res1 = []
  res2 = []
  for i in seq:
    if pred(i):
      res1.append(i)
    else:
      res2.append(i)
  return (res2, res1)

Elegant solution:

import itertools
import operator

def bifurcate(pred, seq):
  if pred is None:
    pred = lambda x: x
  return tuple([z[1] for z in y[1]] for y in
    itertools.groupby(sorted((bool(pred(x)), x) for x in seq),
    operator.itemgetter(0)))
share|improve this answer
1  
Your brute-force solution will be more efficient than your 'elegant' solution. Brute does a single pass, and elegant performs a sort (and more). –  Colin Jul 31 '11 at 2:19
add comment

Any solution is going to take O(N) time to compute, whether it be through two passes through the list or one pass that does more work per item. The simplest way is just to use the tools that are available to you: itertools.ifilter and itertools.ifilterfalse:

def bifurcate(predicate, iterable):
    """Returns a tuple of two lists, the first of which contains all of the
       elements x of `iterable' for which predicate(x) is True, and the second
       of which contains all of the elements x of `iterable` for which
       predicate(x) is False."""
    return (itertools.ifilter(predicate, iterable),
            itertools.ifilterfalse(predicate, iterable))
share|improve this answer
    
My vote goes to this answer. Apparently ifilter isn't as well known as say, the more confusing (to me) groupby. –  Profane Jul 31 '11 at 8:22
add comment

Pretty simple, without any outside tools:

my_list = [1,2,3,4]
list_a = []
list_b = []

def my_function(num):
    return num % 2

generator = (list_a.append(item) if my_function(item) else list_b.append(item)\
        for item in my_list)
for _ in generator:
    pass
share|improve this answer
add comment

OK, its about cows :)

cows = {'a': 123, 'b': 90, 'c': 123, 'd': 70}

select = lambda cows, accept: {name: weight for name, weight
                               in cows.items()
                               if accept(weight)}

thin = select(cows, lambda x: x < 100)
fat  = select(cows, lambda x: x > 100)
share|improve this answer
    
Don't name your function select -- select is also the name of the select module, which is a rather important module for doing efficient non-polling I/O on multiple file descriptors simultaneously. –  Adam Rosenfield Aug 1 '11 at 22:27
    
yes indeed, thanks for your correction. –  hanung Aug 2 '11 at 2:57
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.