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I'm looking for a Python function similar to nubBy in Haskell, which removes duplicate but with a different equality test.

The function would take the equality test and the list as parameters, and would return the list of elements with no duplicates.

Example:

In [1]: remove(lambda x, y: x+y == 12, [2, 3, 6, 9, 10])
Out[1]: [2,3,6]

For example, here (2 and 10) and (9 and 3) are duplicates. I don't care if the output is [10, 9, 6] or [2, 3, 6].

Is there an equivalent built-in function in Python? If not, what is the best way to efficiently implement it?

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2 Answers 2

up vote 2 down vote accepted

There is no built-in method (as the use case is rather esoteric), but you can easily write one:

def removeDups(duptest, iterable):
  res = []
  for e in iterable:
    if not any(duptest(e, r) for r in res):
       res.append(e)
  return res

Now, in the console:

>>> removeDups(lambda x,y: x+y == 10, [2,3,5,7,8])
[2, 3, 5]
>>> removeDups(lambda x,y: x+y == 10, [2,3,6,7,8])
[2, 3, 6]
>>> removeDups(lambda x, y: x+y == 12, [2, 3, 6, 9, 10])
[2, 3, 6]
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thx, look like what I'm looking for. –  Ricky Bobby Sep 4 '11 at 22:26

This remove function will allow you to specify any pairwise equality function. It will keep the last of each set of duplicates.

values = [2,3,5,7,8]

def addstoten(item, other):
    return item + other == 10

def remove(eq, values):
    values = tuple(values)
    for index, item in enumerate(values):
        if not any(eq(item, other) for other in values[index + 1:]):
            yield item

print list(remove(addstoten, values))
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I think the last line should be print (list(remove(...))). Also, this sadly doesn't work on iterables, just on lists. –  phihag Sep 4 '11 at 22:22
    
@phihag He said take the equality test and the list as parameters but it can easily work on iterables as well if you don't mind tupleing them. –  agf Sep 4 '11 at 22:27

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