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So, I'm creating two random word generators, one based on bigrams and the other based on trigrams. In each case I've set up a dictionary (either called bigrams, which has two nested dictionaries or trigrams, which has three nested dictionaries)...and there is a lot of other code but here's the line that causes a problem in the trigram generator:

 #generates random phonemes
 def generate_trigramphoneme(phoneme1, phoneme2):
    rand = random.uniform(0,1)

    **for phoneme3 in trigrams[phoneme1][phoneme2]:**
        rand -= trigrams[phoneme1][phoneme2][phoneme3]

        if rand < 0.0: return phoneme3
    return phoneme3

where the variable "phoneme3" produces a local unbound error.

Here, though, in my bigram generator (which works), the variable "Following" is fine, and doesn't produce an error:

def generate_bigramphoneme(phoneme):
    rand = random.uniform(0,1)
    for following in bigrams[phoneme]:
        rand -= bigrams[phoneme][following]
        if rand < 0.0: return following
    return following

I looked up unbound local errors in python on eli bendersky's website, which helped me understand the error, but I still don't know how to get rid of it, or why the bigram code doesn't produce an error...

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can you show us the structure of phoneme1 and phoneme2 –  myusuf3 Oct 12 '12 at 21:31
    
so this is the dictionary: trigrams = defaultdict(lambda:defaultdict(lambda:defaultdict(lambda:0.0))), and phoneme1 is just calling an element within trigrams, phoneme2 is calling on an element within that, and i'm trying to iterate over all the phoneme3s within that –  CFC Oct 12 '12 at 21:56

1 Answer 1

up vote 3 down vote accepted

Assuming you do have a trigrams defined somewhere, it may be that with your arguments, trigrams[phoneme1][phoneme2] is an empty iterable, therefore the loop never executes and phoneme3 doesn’t get bound.

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That isn't the issue; then you could never iterate over a empty list. Meaning that the for loop would never be executed. –  myusuf3 Oct 12 '12 at 21:35
    
@myusuf3 Not sure what you mean, but try this: hastebin.com/jativeyiva.py –  Vasiliy Faronov Oct 12 '12 at 21:43
    
hmm I didn't see the return at the bottom the error should be attributed to the 4th line. @Vasiliy you are correct! upped. –  myusuf3 Oct 12 '12 at 21:47
    
I think the critical difference between this loop and many others is the second return statement, outside the loop. You can iterate over an empty array, as long as you don't do that. You have expanded the scope where you try to reference the variable, but you haven't ensured that it is always bound before you reference it. –  John Watts Oct 12 '12 at 21:50
    
Hmmm...so when I put in print commands for phoneme1 and phoneme2, and just have the code return a # sign instead of phoneme3, everything prints, so I'm not sure if it's a problem with the loop or the variable phoneme3...but yes trigrams is defined elsewhere as a dictionary, with two more layers of nested dictionaries within it, which is why I'm trying to call everything in that third layer with phoneme3 in trigrams[phoneme1][phoneme2] –  CFC Oct 12 '12 at 21:51

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