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The most convenient, "Pythonic" way to remove duplicates from a list is basically:

mylist = list(set(mylist))

But suppose your criteria for counting a duplicate depends on a particular member field of the objects contained in mylist.

Well, one solution is to just define __eq__ and __hash__ for the objects in mylist, and then the classic list(set(mylist)) will work.

But sometimes you have requirements that call for a bit more flexibility. It would be very convenient to be able to create on-the-fly lambdas to use custom comparison routines to identify duplicates in different ways. Ideally, something like:

mylist = list(set(mylist, key = lambda x: x.firstname))

Of course, that doesn't actually work because the set constructor doesn't take a compare function, and set requires hashable keys as well.

So what's the closest way to achieve something like that, so that you can remove duplicates using arbitrary comparison functions?

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2 Answers

up vote 16 down vote accepted

You can use a dict instead of a set, where the dict's keys will be the unique values:

d = {x.firstname: x for x in mylist}
mylist = list(d.values())
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That’s the generally easiest way to go with this. And performance should be almost equal to your set method. –  Chronial Oct 4 '12 at 15:52
    
Wow I've never seen the syntax {x.firstname: x for x in mylist} before. What's it called and where can I find it in the docs. –  Marwan Alsabbagh Oct 4 '12 at 16:10
1  
@MarwanAlsabbagh: It's a dict comprehension. It was added in Python 2.7 and 3.0. It's equivalent to dict((x.firstname, x) for x in mylist). –  interjay Oct 4 '12 at 16:13
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I would do this:

duplicates = set()
newlist = []
for item in mylist:
    if item.firstname not in duplicates:
        newlist.append(item)
        excludes.add(item.firstname)
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