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Say I have a set myset of custom objects that may be equal although their references are different (a == b and a is not b). Now if I add(a) to the set, Python correctly assumes that a in myset and b in myset even though there is only len(myset) == 1 object in the set.

That is clear. But is it now possible to extract the value of a somehow out from the set, using b only? Suppose that the objects are mutable and I want to change them both, having forgotten the direct reference to a. Put differently, I am looking for the myset[b] operation, which would return exactly the member a of the set.

It seems to me that the type set cannot do this (faster than iterating through all its members). If so, is there at least an effective work-around?

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Why do you need to do this? If you already have b, why do you need a, which is equal? –  Karl Knechtel Jun 17 '12 at 15:03
    
That is one fugly requirement... –  Chinmay Kanchi Jun 17 '12 at 15:09
    
@KarlKnechtel: the element inside the set is referenced from somewhere else (from inside a deep structure) and I want to change its value. The objects are basically of 2D vector type, and they are mutable. –  emu Jun 17 '12 at 15:28
3  
@emu: wait, what? You can't mutate a dict key or a set entry; it'll (probably) change the hash and break the dict/set. You could work with a dict in which the key is the "value" and the value is a list or set of elements which have that value, but you shouldn't go mutating anything on the "left". –  DSM Jun 17 '12 at 15:38
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@DSM: Oops, how could I not realize? Well, the question still makes sense, because I could modify an attribute that does not affect hashing or equality comparison. But for my original case it is useless, so I'll have to write it differently anyway. Thanks! –  emu Jun 17 '12 at 15:49

3 Answers 3

up vote 5 down vote accepted

I don't think that set supports retrieving an item in O(1) time, but you could use a dict instead.

d = {}
d[a] = a
retrieved_a = d[b]
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In fact I tooled around with this and looked at the source a while ago, and IIRC, cpython always iterates over the smaller set when looking for intersections. So what you have works, but if s is longer, this will return b. –  senderle Jun 17 '12 at 15:14
    
@senderle: I think you're right - source for set. Then my second approach fails, so I'm deleting it. Thanks for pointing it out. –  Mark Byers Jun 17 '12 at 15:15

If you only have myset and b, then from that perspective, you won't have access to a because it's not there. If you create multiple mutable objects and add one of them to myset then the others are not 'known' when you're dealing with just myset or the object that you added.

If you want to modify a and b then you need to keep track of both objects somewhere.

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Maybe this:

(myset - (myset - set([b]))).pop() is a
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It works, but the set difference (namely the first one) most probably requires Python to remove all elements one by one. Because of that, it is asymptotically the same slow as iterating through the set. –  emu Jun 17 '12 at 15:22
    
@emu: maybe, although I guess there might be some optimizations for edge cases. Anyways, I'm afraid this is the only way using only sets, without resorting to dicts or linear search. –  georg Jun 17 '12 at 15:30

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