Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have two lists of lists, one containing two dates and an id number, and one containing lots of information including an id number and a date. I need to find if that date is in between the two other dates for each id number and if so, write it to a new list. More simply, for each id number, if a date is between the other two dates, write the information to a new list. At the moment, all of the list is being put into the new list, which is wrong (not all of the dates will be between the other two).

mv = [['05/13/2012', '09:54:27', 'U', '#0F', '0006E3DADA', 'T', 'Un\n', 'F3', '13 05 12'], 
      ['05/13/2012', '09:54:28', 'U', '#0F', '0006E3DADA', 'T', 'Un\n', 'F3', '13 05 12'],
      etc]

For mv it is the last date in the list that I am interested in.

datepairs = [['21 05 01', '04 06 01', 'C1'], 
             ['27 07 06', '10 08 06', 'C1'],
             etc]

These are the two dates which the date from mv has to be in between.

visitsbetweendates=[]
for visit in mv:
    for date in datepairs1:
        if date[2]==visit[7]: #if the id number is the same in both lists
            if date[0]<= visit[8] <= date[1]: #if the visit date is between the datepair dates
               if visit not in visitsbetweendates: #if the list is unique
                    visitsbetweendates.append(visit)
                break

What I think might be happening is that date[2], date[0] and date[1] are not all coming from the same list in datepairs each time the loop runs, or something is going wrong with the id numbers. I'm sorry if this isn't particularly clear. Thanks for your help!

EDIT: Here is how I converted the dates to datetime objects, which is done right before the code above.

from datetime import datetime
for v in mv:
    e=datetime.strptime(visit[0],'%m/%d/%Y')
    s=e.strftime('%d %m %y')
    visit.append(s)    
datepairs1=[]
for date in datepairs:
    d=datetime.strptime(str(date[0]),' %d %b %y')
    f=datetime.strptime(str(date[1]),' %d %B %Y')
    e=d.strftime('%d %m %y')
    g=f.strftime('%d %m %y')
    gah=[e,g,date[2].strip(' ')]
    datepairs1.append(gah)
share|improve this question
4  
Comparing 'MM/DD/YYYY' dates alphabetically is a very bad idea. Convert it to datetime object first or at least restruct it as 'YYYYMMDD'. –  eumiro Jul 17 '12 at 14:45
    
earlier in the script I converted all the dates to datetime objects to get them all in the format DD MM YY so that they would be easier to compare. Does that help? :/ –  Snaaa Jul 17 '12 at 14:51
1  
Where is the conversion at? You're showing the dates as string which will affect the solution. –  RobB Jul 17 '12 at 14:52
    
In the full code I convert them just before. Does python not remember that they're datetime objects? I'm sorry if these are stupid questions, I've only been using python for a month (and I don't know any other languages) so I'm a total beginner –  Snaaa Jul 17 '12 at 14:55
    
Does python not remember that they're datetime objects? - Python maybe does. We cannot. –  eumiro Jul 17 '12 at 16:13

2 Answers 2

up vote 1 down vote accepted

First I would transform both lists to dictionaries, this will make the code a lot more efficient since you will not have to loop the datepairs1 list all over again everytime you start searching for a different key, so this is what I would do:

first convert them to dictionaries:

between_dates = dict([(d[2], (d[0], d[1])) for d in datepairs1])
second_dict = {}
for m in mv:
    key = m[7]
    second_dict.setdefault(key ,[])  # this creates the key with an empty list inside if it doesn't exists yet
    second_dict[key].append((m[0], m[8]))

which will end into a syntax like this:

between_dates = {'C1': ('21 05 01', '04 06 01'), ....}
second_dict = {'C1': [('05/13/2012', '13 05 12'), ('05/13/2012', '13 05 12')]}

Doing this in both lists will make the search a lot faster and easier to debug, Now what @eumiro says is important so you should save the dates as datetimes objects instead, you can do this using datetime.strptime. You can find there the format to transform your string dates to a datetime objects. i.e.: datetime.strptime('02 06 2011', '%d %m %Y')

so now to compare things up:

visits_between_dates=[]
for key, bd in between_dates.items():
    if second_dict.get(key, None):  # This will ask if the se
        for sl  in second_dict.values():
            if not sl in visits_between_dates and bd[0]<= sl[1] <= bd[1]:
                visitsbetweendates.append(sl)

Maybe you need to append all the information from the mv list but that can be easily added to the dictionary.

share|improve this answer
    
Thanks for the help :) I'm struggling to get this working, I think because I still don't understand dictionaries. This adds 4 items to visits_between_dates, all of which are made of a few hundred dates. Not sure where I'm going wrong.. –  Snaaa Jul 18 '12 at 9:35
    
here is a nice tutorial about dictionaries. It will make your like easier I assure you. Also try to understand the code I posted and modify it, I haven't try it and may have some bugs but the main idea for the solution is there –  Hassek Jul 18 '12 at 15:42
    
That tutorial's much better than any others I've found, thanks! And thanks for all your help, playing around with the code is making everything clearer :) –  Snaaa Jul 19 '12 at 9:08

Preprocess the dates into the same format that can be compared

for n in range(0,len(datepairs)):
    (d,m,y)=(datepairs[n][1]).split(" ")
    datepairs[n][1]="%d%s%s" % (2000+int(y),m,d)
    (d,m,y)=(datepairs[n][0]).split(" ")
    datepairs[n][0]="%d%s%s" % (2000+int(y),m,d)

for d in range(0,len(mv)):
    (d,m,y)=(mv[n][0]).split("/")
    mv[n][0]="%s%s%s",(y,m,d)

Then your "visit in mv" loop should work

share|improve this answer
    
Thanks for the help. I've edited the question to show how I formatted the dates, is your method more effective? I'm not sure how to judge it –  Snaaa Jul 18 '12 at 14:40

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.