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I have a really ugly loop in my code which is really slowing down my program. The loop basically performs a dictionary comparison where, if a specific key in dict_A is the same as in dict_B, then for all matches a sort is performed which is written to a file.

for k, v in A_dict.items():
    for i, value in B_dict.items():
        if k == value[0]:
            sorted_B = [list(value) for key, value in groupby(sorted(B_dict.values()), key=itemgetter(1,2))]
            outfile.write('{0}\t{1}\t{2}\t{3}\t{4}\t{5}\n'.format (i, k, v, value[1], value[2], value[3])

Unfortunately, the dictionaries both contain over a million items. Other than putting this data into a database then sorting, does anyone have any suggestions on how to speed up this loop? Thanks for the help.

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Your code compares a key and a value, but your text describes comparing only values. So what is a "match"? Values are the same? Also, when you use the items() method a whole new list is created. You can just fetch directly from B_dict using the key from A_dict. –  Keith Aug 29 '11 at 1:10
    
@Keith Thanks for the catch. Hopefully my question is clear now - I am matching a key from one dictionary (dict_A) to a value from another dictionary (dict_B) –  drbunsen Aug 29 '11 at 1:13
    
So, what do you want to write to the file when you have a match? –  agf Aug 29 '11 at 1:15
    
When I match k == value[0] I am writing to file some of the other values from the dictionary item that matched. –  drbunsen Aug 29 '11 at 1:21
    
Ok.. so why are you doing the groupby / sort / list comprehension at all? –  agf Aug 29 '11 at 1:23
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1 Answer 1

up vote 1 down vote accepted

Your example code may be inaccurate, but as written,

sorted_B = [list(value) for key, value in 
                groupby(sorted(B_dict.values()), key=itemgetter(2,3))]

will be the same every time... why is it in a loop at all?

Also

for k, v in A_dict.items():
    for i, value in B_dict.items():
        if k == value[0]:
            outfile.write('{0}\t{1}\t{2}\t{3}\t{4}\t{5}\n'.format(
                i, k, v, value[1], value[2], value[3])

Looks like it could just be written as

for i, value in B_dict.items():
    k = value[0]
    if k in A_dict:
        outfile.write('{0}\t{1}\t{2}\t{3}\t{4}\t{5}\n'.format(
            i, k, A_dict[k], value[1], value[2], value[3])

Which should be faster -- it's linear time rather than quadratic time.

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as always, thank you for the help. i was attempted to put sorted_B in the loop so that only the items where if k == value[0]: would need to be sorted. –  drbunsen Aug 29 '11 at 1:07
    
You're sorting the whole dictionary though, not just the items that match. Is what you want to get a list of all the matching items then sort that? –  agf Aug 29 '11 at 1:09
    
I not sure I understand how you have rewritten the dictionary matching loop - in particular, k = value[0].k is the key to the dictionary. Won't this rebind k to value[0] from the other dictionary. Sorry if I am being unclear. –  drbunsen Aug 29 '11 at 1:10
    
You need to better explain what you want to write to the file. –  agf Aug 29 '11 at 1:13
    
For each item in dict_B there will be always be a match from dict_A, so I will need to go through the entire dictionary I think. However, the reverse is not necessarily true - there are items in dict_A that may not be matched in dict_B. –  drbunsen Aug 29 '11 at 1:16
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