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I wrote the below code working with dictionary and list:

d = computeRanks() # dictionary of id : interestRank pairs
lst = list(d) # tuples (id, interestRank)
interestingIds = []
for i in range(20): # choice randomly 20 highly ranked ids
  choice = randomWeightedChoice(d.values()) # returns random index from list
  interestingIds.append(lst[choice][0])

There seems to be possible error because I'm not sure if there is a correspondence between indices in lst and d.values().

Do you know how to write this better?

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Why do you need lst? You can randomly select a key from the d (using d.keys()) and add that to interestingIds. –  Simeon Visser Mar 18 '12 at 12:42
    
@SimeonVisser I can't do this because it's random with weights and weigths are interestRanks which are in d.values(). –  xralf Mar 18 '12 at 12:44
    
what is the type of d? –  alexis Mar 18 '12 at 12:47
    
@alexis list of (int, float) tuples –  xralf Mar 18 '12 at 12:50
1  
@alexis Sorry I wrote the type of lst above. The type of d is dictionary of int : float pairs –  xralf Mar 18 '12 at 12:56

2 Answers 2

up vote 3 down vote accepted

One of the policies of dict is that the results of dict.keys() and dict.values() will correspond so long as the contents of the dictionary are not modified.

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So, it's correct? You wouldn't change my code? –  xralf Mar 18 '12 at 12:54
1  
I didn't say that. But this part wouldn't change a lot. –  Ignacio Vazquez-Abrams Mar 18 '12 at 12:56
    
You showed that dict.keys() and dict.values() correspond, but in the question is lst(dict) instead of dict.keys(). Does this make a difference? –  xralf Mar 18 '12 at 13:35
    
No. Iterating over a dict via list(dict) defers to dict.iterkeys(), which is part of the same policy. –  Ignacio Vazquez-Abrams Mar 18 '12 at 13:48
    
Oh, as for the rewrite, you should modify randomWeightedChoice(). Think of what sorted() and max() do. –  Ignacio Vazquez-Abrams Mar 18 '12 at 16:17

As @Ignacio says, the index choice does correspond to the intended element of lst, so your code's logic is correct. But your code should be much simpler: d already contains IDs for the elements, so rewrite randomWeightedChoice to take a dictionary and return an ID.

Perhaps it will help you to know that you can iterate over a dictionary's key-value pairs with d.items():

for k, v in d.items():
    etc.
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randomWeightedChoice takes a list and returns an index from this list. It won't be rewritten. I need to generate exactly 20 random numbers so don't need to iterate over all key-value pairs. –  xralf Mar 18 '12 at 13:10
    
You don't have to iterate, that was a demonstration. randomWeightedChoice needs to examine all the values in order to do its job, so it has a loop somewhere. If you can't rewrite it, I don't think there's anything else we can help with. –  alexis Mar 18 '12 at 13:20
    
Yes, randomWeightedChoice needs to examine all the values 20 times to choose 20 random values. –  xralf Mar 18 '12 at 13:32
    
No, it doesn't. It only has to examine them once. But what does it matter, if you won't be rewriting it? –  alexis Mar 18 '12 at 13:34
    
If I would rewrite this question would have no sense. I'd like to have unique interface instead of having the same function for various data structures (dicts, lists, sets etc.). –  xralf Mar 18 '12 at 13:41

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