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Can anyone optimize this code block? It is working but running very slow.

maxsat = 0
possiblevotes = []
for i in range(1,int(numcats)+1):
    for j in range(1,int(numdogs)+1):
        possiblevotes.append('C' + str(i) + ' ' + 'D' + str(j))
        possiblevotes.append('D' + str(j) + ' ' + 'C' + str(i))
for m in possiblevotes:
    count = 0
    for n in votes:
        if m == n:
            count += 1
        elif m.split()[0] == n.split()[0]:
            count += 1
    if count > maxsat:
        maxsat = count
share|improve this question
    
Python version ? –  Ofiris Feb 26 '13 at 16:25
    
I'm concerned that your numcats variable is a non-integer data type. Are you cutting whole animals into fractions of animals? :-) –  Kevin Feb 26 '13 at 16:28
1  
Have you tried running it through cProfile to see the slow parts? –  Nitzle Feb 26 '13 at 16:30
1  
It would be helpful to know what you are trying to do, particularly the votes/possiblevotes bit. –  George Feb 26 '13 at 16:33
3  
Use itertools.product() to generate possiblevotes on the fly. Don't store it in a (potentially huge) list. –  Martijn Pieters Feb 26 '13 at 16:33

4 Answers 4

There is no need to generate all possible votes. You can test your actual votes without having to generate the possiblevotes list, because you can easily calculate if an existing vote is possible or not.

You also only really count the 'stay' votes. It doesn't matter that you look for matching 'stay go' votes, because any 'stay go' vote for which m == n is true, m.split()[0] == n.split()[0] is also true. So you may as well drop that first count, and only look at the second.

Now you are just finding the maximum count for the stay votes. Using a collections.Counter() makes counting things easier:

import collections

vote_counts = collections.Counter(v.split()[0] for v in votes)

maxsat = vote_counts.most_common(1)[0][1]  # retrieve the most popular count

This calculates the same number your code calculated, but now we only have to loop over the votes just once, and only count 'stay' votes.

Contrast this with your loop, where you first loop numcats * numdogs times, then loop numcats * numdogs * 2 * len(votes) times. That a factor of 3 * numcats * numdogs larger.

If you have to validate votes first, you can use:

from itertools import ifilter

numcats = int(numcats)
numdogs = int(numdogs)

def validvote(vote):
    stay, go = vote.split()
    cat, dog = sorted((stay, go))
    if (cat[0], dog[0]) != ('C', 'D'):
        return False
    if not (1 >= int(cat[1:]) >= numcats):
        return False
    if not (1 >= int(dog[1:]) >= numdogs):
        return False
    return True

vote_counts = collections.Counter(v.split()[0] for v in ifilter(validvote, votes))

You could also start using the go votes:

stay_votes = collections.Counter()
go_votes = collections.Counter()

for vote in ifilter(validvote, votes):
    stay, go = vote.split()
    stay_votes[stay] += 1
    go_votes[go] += 1

Now you can simply subtract the go votes from the stay vote tally (any tally falling to 0 is removed):

total_votes = stay_votes - go_votes

# Display top 10
for creature, tally in total_votes.most_common(10):
    print('{}: {:>#5d}'.format(creature, tally))

Of course, you could also do the calculation in one go:

total_votes = collections.Counter()

for vote in ifilter(validvote, votes):
    stay, go = vote.split()
    total_votes[stay] += 1
    total_votes[go] -= 1

but keeping the vote tallies separate might be interesting for later analysis.

share|improve this answer
    
well the problem is that I need to find THE best vote and the max amount of satisfied voters.. that's what maxsat is –  Joel Smith Feb 26 '13 at 16:56
1  
@JoelSmith: Your code doesn't define what THE best vote is. –  Martijn Pieters Feb 26 '13 at 16:58
    
That's what I'm trying to determine also –  Joel Smith Feb 26 '13 at 17:00
    
@JoelSmith: The above code does the same thing your code did, but only needs to loop over 500 votes, then over < 500 vote tallies. That at least is faster. –  Martijn Pieters Feb 26 '13 at 17:01
    
it's a bit different.. votes are actually like this ['C1 D3', 'D2 C5'] first element is the vote for the animal to stay and second is animal to leave. Each vote is exactly one cat and one dog –  Joel Smith Feb 26 '13 at 17:07

Use a dictionary instead of a list:

possiblevotes = {}
for i in range(1,int(numcats)+1):
    for j in range(1,int(numdogs)+1):
        possiblevotes['C' + str(i) + ' ' + 'D' + str(j)] = 0
        possiblevotes['D' + str(j) + ' ' + 'C' + str(i)] = 0
for n in votes:
    possiblevotes[n] += 1
....
share|improve this answer
1  
There is absolutely no need to create all possible keys. Why not use possiblevotes[n] = possiblevotes.get(n) + 1 for example? Or use possiblevotes = collections.defaultdict(int), or use collections.Counter() and you can drop your (expensive) loop altogether. –  Martijn Pieters Feb 26 '13 at 17:38
    
@MartijnPieters if you use possiblevotes.get(n,0) + 1 you could avoid TypeError since if there are no such item in the dict, get method will return None. –  scriptmonster Feb 26 '13 at 18:12
    
@scriptmonster: that was a typo on my part, yes, you need to add the 0 argument. –  Martijn Pieters Feb 26 '13 at 18:13

The code takes a long time because of the nested loops. If you have 1000 cats, 1000 dogs, and 1000 votes, then the first set of loops runs 1000x1000 times; the second set runs 1000x1000x1000 times. If we can remove nested loops, then your code will run faster.

I noticed you seems to tally the votes, in which 'C1 D3' is the same as 'D3 C1'. I suggest you use the Counter class in the collections module to do the heavy lifting. Here is my solution:

import collections

if __name__ == '__main__':
    votes = ['C1 D3', 'D1 C5', 'D3 C1', 'd1 c1', 'c1 d3'] # Example votes

    # Normalize the votes: 'D3 C1' becomes 'C1 D3',
    # 'c1 d3' becomes 'C1 D3'
    normalized_votes = [''.join(sorted(v.upper().split())) for v in votes]

    # Count the votes
    counter = collections.Counter(normalized_votes)

    # Top 10
    print '--- TOP 10 ---'
    for vote, count in counter.most_common(10):
        print count, vote

    # Or print all
    print '--- ALL ---'
    for vote, count in counter.iteritems():
        print count, vote

Discussion

  • This solution uses 4 loops: the first is to derive normalized_votes, the second is to create the counter variable. The last two loops deal with printing out the result. None of these loops are nested. One might argue that the implementation of the Counter class might contain nested loops, but I trust that this class is implemented as efficient as possible.

  • One important step is to normalize the votes, which should greatly simplify your tally. While I have done it in one line, you can break it up into several steps to aid understanding.

    1. The first step is to convert all the votes to upper case: 'd3 c1' becomes 'D3 C1'.
    2. Next, I break them up into a list with the split() function: 'D3 C1' becomes ['D3', 'C1'].
    3. The third step is to sort each item: ['D3', 'C1'] becomes ['C1', 'D3']
    4. The final step glue them back together: ['C1', 'D3'] becomes 'C1 D3'
share|improve this answer
    
'C1 D3' and 'D3 C1' are not the same. the first part of the string is which animal to keep and the second is which to get rid of –  Joel Smith Feb 26 '13 at 17:14
    
I did not know that. I did not see any evidence in your code. Any way, I am sure that you can still use the Counter class to simplify your solution. Also try to eliminate nested loops. –  Hai Vu Feb 26 '13 at 17:34
import re

vote_pattern = re.compile('^(C|D)\d+\s')

votes = ['123', 'A1123', 'cC32', 'C', 'D0', 'C11']
maxsat = sum(0 if vote_pattern.match(vote) is None else 1 for vote in votes)

You can change this awful sum to something like filter, of course.

share|improve this answer
    
Note that 'D0 ' is a correct vote here as well as 'C123 texttext'. To fix that just edit rhis regexp a little. Your algo accepts something like 'C123 texttext' as well, so I don't know exactly, what did you want. –  Harold Mar 3 '13 at 18:53

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