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Given a one-to-one dictionary (=bijection) generated à la

for key, value in someGenerator:
     myDict[key] = value

an inverse lookup dictionary can be trivially created by adding

    invDict[value] = key

to the for loop. But is this a Pythonic way? Should I instead write a class Bijection(dict) which manages this inverted dictionary in addition and provides a second lookup function? Or does such a structure (or a similar one) already exist?

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marked as duplicate by Aya, FallenAngel, Nifle, Collin, Tobias Kienzler May 29 '13 at 6:58

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What about this bidict –  Jon Clements May 28 '13 at 13:38
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By the looks of it, bidict just wraps two separate Python dictionaries with forward and reverse mappings, so it's no more efficient than doing the same yourself. Indeed, if you're doing lots of key lookups, it'll be much slower due to the function call overhead. –  Aya May 28 '13 at 13:46
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It's hardly an answer and I have no experience in actually using it to personally recommend it either. Just to note though, if I remember correctly, there was some quite heavy debate about whether the API of that library was Pythonic or not in using slice notation. But, beauty in the eye of the beholder and all that. –  Jon Clements May 28 '13 at 13:46
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@TobiasKienzler Indeed. The try/except block will slow things down as well. In practice, I found return d[k] if k in d else something_else much faster than both try: return d[k]\n except KeyError: return something_else and return d.get(k, something_else), i.e. two key lookups is faster than allowing Python to generate an exception and/or calling an instance method. Personally, I don't think it provides enough additional functionality (compared to just using two dicts) to warrant its performance issues, but if that's a non-issue, then it at least has the virtue of being easy to use. –  Aya May 28 '13 at 14:31
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@TobiasKienzler Well, I recently had to optimize a fairly complex recursive function which was being called 150,000 times, so I spent quite a while profiling different methods with cProfile, and managed to save a lot of CPU time by using the d[k] if k in d approach. I later changed it to use d = collections.defaultdict(lambda: None); v = d[k]; return something_else if v is None else v which was even better, since it only requires one key lookup, key misses only ever happen once, and defaultdict is implemented in C. You're right about the namedbidict - I misread it the first time. –  Aya May 28 '13 at 14:55

2 Answers 2

up vote 3 down vote accepted

What I've done in the past is created a reversedict function, which would take a dict and return the opposite mapping, either values to keys if I knew it was one-to-one (throwing exceptions on seeing the same value twice), or values to lists of keys if it wasn't. That way, instead of having to construct two dicts at the same time each time I wanted the inverse look-up, I could create my dicts as normal and just call the generic reversedict function at the end.

However, it seems that the bidict solution that Jon mentioned in the comments is probably the better one. (My reversedict function seems to be his bidict's ~ operator).

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bidict is perfect for my purposes - it basically stores the inverse dictionary inside, but improves access by using the slice operator –  Tobias Kienzler May 28 '13 at 13:57

if you want O(log(n)) time for accessing values, you will need both a representation of the map and a representation of the inverse map.

otherwise the best you can do is O(log(n)) in one direction and O(n) in the other.

Edit: not O(log(n)), thanks Claudiu, but you are still going to need two data structures to implement the quick access times. And this will be more or less the same space as a dict and an inverse dict.

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dicts don't have O(log(n)) look-up, they have amortized O(1) lookup... –  Claudiu May 28 '13 at 13:59
    
yeah, should have looked that up before I posted :) –  Zackkenyon May 28 '13 at 14:16

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