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I have a list of lists and want to check if it already contains a list with particular items.

Everything should be clear from this example:

list = [[1,2],[3,4],[4,5],[6,7]]
for test in [[1,1],[1,2],[2,1]]:
  if test in list:
    print True
  else:
    print False

#Expected:
#        False
#        True
#        True

#Reality:
#        False
#        True
#        False

Is there a function that compares the items of the list regardless how they are sorted?

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possible duplicate of [Searching values of a list in another List using Python ](stackoverflow.com/questions/1695452/…) –  Michael Todd Nov 5 '10 at 18:35
    
for test in ...: print sorted(test) in list –  user97370 Nov 5 '10 at 20:37
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3 Answers

up vote 6 down vote accepted

What you want to use is a set: set([1,2]) == set([2,1]) returns True.

So

list = [set([1,2]),set([3,4]),set([4,5]),set([6,7])]
set([2,1]) in list

also returns True.

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1  
By the way, in Python3--something perhaps a future generation will actually be able to use--you can say [{1,2}, {3,4}, {4,5}, {6,7}]. –  Glenn Maynard Nov 5 '10 at 18:43
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If they're really sets, use the set type

# This returns True 
set([2,1]) <= set([1,2,3])

<= means 'is a subset of' when dealing with sets. For more see the operations on set types.

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if you want to get [1,2] = [2,1] you should not use list. Set is the correct type. In list, the order of the components matter, in set they don't. That's why you don't get 'False True True'.

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