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I have the following code:

items = ["one", "two", "three"]

for i in range(0, len(items)):
    for index, element in enumerate(items):
        if index != i:
            # do something with element

Basically I want to exclude every element once and iterate the rest. So for the list I have above, I'd like the following iterations:

  1. "two", "three"
  2. "one", "three"
  3. "one", "two"

The code I've written now seems a little C++-ish, is there a better solution? (I do not want to hold all possible lists in a variable)

EDIT: I didn't state this but the lists size isn't necessarily 3. It can be of any size.

EDIT 2: It seems there's another misunderstanding: if I have a list of N, then I want N lists of size N-1, each missing an element from the original list.

EDIT 3: A list with 4 items, should give this result:

  1. 1, 2, 3
  2. 1, 3, 4
  3. 1, 2, 4
  4. 2, 3, 4
share|improve this question
6  
I predict you will get a dozen answers to this, itertools and generator comprehensions will be invoked, but in the end nothing better than your initial code will be proposed. –  Jason Orendorff Jan 11 '10 at 14:22
    
Nah, he could have used xrange(len(items)). –  Tobu Jan 11 '10 at 14:27
    
Nah, he's already using Python 3 :) –  Tim Pietzcker Jan 11 '10 at 14:40
    
re your second edit: That's not what your original code gives, though. –  balpha Jan 11 '10 at 14:47
1  
I don't know why the confusion, I thought I was pretty clear. Anyhow added an example for a list with 4 elements. –  roger Jan 11 '10 at 14:55

3 Answers 3

up vote 17 down vote accepted

Although upvoted like crazy, my first solution wasn't what the OP wanted, which is N lists, each missing exactly one of the N original elements:

>>> from itertools import combinations
>>> L = ["one", "two", "three", "four"]
>>> for R in combinations(L, len(L) - 1):
...     print " and ".join(R)
...
one and two and three
one and two and four
one and three and four
two and three and four

See the revision history for the source of the discussion below.

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1  
But the list I had written was just an example. In practice it can be of size N. –  roger Jan 11 '10 at 14:34
    
This is much more explicit and clear than the initial code, so I think it qualifies as better? At the very least this is more pythonic. –  donut Jan 11 '10 at 14:34
5  
actually no, I want to iterate all "combinations" of length N-1. –  roger Jan 11 '10 at 14:39
1  
@roger: You still want all combinations of length 2 –  balpha Jan 11 '10 at 14:39
1  
please read my edit, I still think you got it backwards. Shouldn't combinations(L, len(L) - 1) do it? –  roger Jan 11 '10 at 14:48
[items[:i]+items[i+1:] for i in range(len(items))]

in py2.x use xrange. obviously, slicing all the time on a big sequence is not very efficient, but it's fine for short ones. Better option would be using itertools.combinations:

>>> for a in itertools.combinations(items, len(items)-1):
    print(a)

('one', 'two')
('one', 'three')
('two', 'three')
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As roger predicted, an answer which doesn't really improve the existing code :)

a = ["one", "two", "three"]
for i in range(0, len(a)):
  print [val[1] for val in enumerate(a) if val[0] != i]
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