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Suppose I have some kind of dictionary structure like this (or another data structure representing the same thing.

d = {
  42.123231:'X',
  42.1432423:'Y',
  45.3213213:'Z',
  ..etc
}

I want to create a function like this:

f(n,d,e):
    '''Return a list with the values in dictionary d corresponding to the float n
    within (+/-) the float error term e'''

So if I called the function like this with the above dictionary:

f(42,d,2)

It would return

['X','Y']

However, while it is straightforward to write this function with a loop, I don't want to do something that goes through every value in the dictionary and checks it exhaustively, but I want it to take advantage of the indexed structure somehow (or a even a sorted list could be used) to make the search much faster.

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Consider using a list and the bisect module. –  eryksun Oct 24 '12 at 16:22

3 Answers 3

Dictionary is a wrong data structure for this. Write a search tree.

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Python dictionary is a hashmap implementation. Its keys can't be compared and traversed as in search tree. So you simply can't do it using python dictionary without actually checking all keys.

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Dictionaries with numeric keys are usually sorted - by key values. But you may - to be on the safe side - rearrange it as OrderedDictionary - you do it once

from collections import OrderedDict
d_ordered = OrderedDict(sorted(d.items(), key =lambda i:i[0]))

Then filtering values is rather simple - and it will stop at the upper border

import itertools    
values = [val for k, val in 
          itertools.takewhile(lambda (k,v): k<upper, d_ordered.iteritems()) 
          if k > lower]

As I've already stated, ordering dictionary is not really necessary - but some will say that this assumption is based on the current implementation and may change in the future.

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