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I'm struggling with matching a sentence of 3 words with a digram dictionary of two words, which counts the frequency of the ( 1st word and 2nd word ) and (2nd word and 3rd word). What I want is how to match that the string ( AAA BBB CCC) is in the bigram and (AAA BBB) has a count and also (BBB CCC) has a count and then we take the max?

Counter({
('BBB', 'DDD'): 3, 
('AAA', 'BBB'): 2, 
('DDD', 'XXX'): 1, 
('DDD', 'YYY'): 1,
('YYY', 'BBB'): 1, 
('BBB', 'CCC'): 1, 
('CCC', 'AAA'): 1, 
('XXX', 'BBB'): 1})
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plase explain how the keys in your dictionary look like, and also the type of the 3 words sequence.... are they a string or a tuple or what? –  Ionut Hulub Mar 10 '13 at 1:48
    
What have you tried? –  David Marx Mar 10 '13 at 1:57
    
Can you explain a bit more what you're trying to do? I don't think there's a general way to know if "AAA BBB CCC" was present in a corpus given only a bigram dictionary. –  Blckknght Mar 10 '13 at 1:57
    
if I have a sentence ( AAA BBB CCC) and dict of the bigram frequencies. I want to compare if bigram(AAA,BBB) > bigram(BBB,CCC) then the sentence is left bracketing, else it is right bracketing. –  Peace Mar 10 '13 at 2:37

1 Answer 1

It should be pretty straight forward to query your counter for the two bigrams that make up your three-word sentence and compare them. Here's one way:

def find_sentence_bracketing(sentence, bigram_dict):
    left = sentence[0:2]
    right = sentence[1:3]
    if bigram_dict[left] > bigram_dict[right]:
        return "left bracketing"
    else:
        return "right bracketing"

You can of course do something other than returning a string, that's just to demonstrate the basic idea.

The important piece of the code is the tuple slicing that produces the left and right bigram tuples, which can then be used to index into the dictionary.

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What happens if either key is not in the dictionary or if both are not? –  Kenosis Mar 10 '13 at 3:49
    
@Kenosis: A Counter instance (from the collections module) will always return zero for keys that don't exist, so if the dictionary is like the one in the question, there will be no problem. –  Blckknght Mar 10 '13 at 4:09

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