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I don't think this is a duplicate, but I just might not be using the correct terminology in my searching. My apologies if this is the case.

What I have is a dictionary mapping a tuple (custom object, string) to a float. To be exact then, it is a 2-tuple. What I am trying to do is get back a representation of all entries in the dictionary that match on the custom object.

Example:

mydict[(co1, 'hello')] = 0.01
mydict[(co2, 'bye')] = 0.02

Where co1 and co2 are supposed to represent two distinct custom objects. I want to find all entries that contain co1 (it's logical equivalent) in the tuple which is the key.

So my question then is how to reduce this 2_tuple=>float dictionary down to a string=>float dictionary when the string is the unique (non-matched) tuple.

What I have tried:

for custom in custom_object:
    for k, v in mydict.iteritems():
        if custom in k:
           #store this particular entry into another data structure or otherwise process
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What is the algorithm that links the tuple to the value? - Is it arbitrary? –  user1438003 Aug 22 '12 at 16:18
    
@user1438003 - It is data driven. I am scoring the combination of a word and an object co-occurring in some test documents. –  demongolem Aug 22 '12 at 16:22

2 Answers 2

up vote 1 down vote accepted

You can use unpacking in a comprehension:

dict((s, v) for (o, s), v in mydict.iteritems() if o is co1)

From Python 2.7:

{s: v for (o, s), v in mydict.iteritems() if o is co1}
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That appears to do the trick. It just took me like a minute to wrap my mind around what the code is doing. Thanks. –  demongolem Aug 22 '12 at 16:26

It sounds like what you are trying to do will become very inefficient as the corpus[?] increases in size.

Maybe what you want to do instead is hash [0] and [1] into a third allotment: [2] which is to be stored in a dictionary.

Then to simply store an array of pointers (I know it's python, but you this is easy enough to implement with duplication) on the fourth allotment of the tuple [3].

By keeping an auxiliary structure storing if tuples have [3] populated (and possible their count), you will be able to perform these queries in almost guaranteed O(1):

  1. Enumerate all repeats
  2. Enumerate 0.01 appearance or None
  3. Is what I'm inserting a duplicate?

Enjoy :]

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