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 a list of lists

[['Id', 'fname', 'lname', 'gender', 'startdate'],
['100', 'John', 'Jackson', 'M', '08/09/2000'],
['101', 'Jenny', 'Hobbs', 'F', '01/13/1995'],
['100', 'John', 'Jackson', 'M', '08/09/1995']]

i would like to delete duplicate lists where ID == ID AND StartDate < StartDate. Leaving the lists with unique ids that have the most recent startdate.

[['Id', 'fname', 'lname', 'gender', 'startdate'],
['100', 'John', 'Jackson', 'M', '08/09/2000'],
['101', 'Jenny', 'Hobbs', 'F', '01/13/1995']]

Any help would be great thanks ~Curt

share|improve this question
2  
This should be a list of dicts –  Daenyth Jun 7 '12 at 22:01

4 Answers 4

Stuff rows into dictionary by ID after sorting them in date order. The only thing you have to do yourself is to remove the header before using this.

import time

data = [['100', 'John', 'Jackson', 'M', '08/09/2000'],
['101', 'Jenny', 'Hobbs', 'F', '01/13/1995'],
['100', 'John', 'Jackson', 'M', '08/09/1995']]

data = sorted(data, key=lambda x:time.strptime(x[4], '%m/%d/%Y'))   # sort data in ascending date order

keys = [x[0] for x in data]
print keys

d = dict(zip(keys,data))                 # add to dictionary ... most recent values overwrite older ones

print d.values()

Generates output:

[['100', 'John', 'Jackson', 'M', '08/09/2000'], ['101', 'Jenny', 'Hobbs', 'F', '01/13/1995']]
share|improve this answer
    
seems like a great way to remove duplicates but the question has more criteria for deletion that duplicate id. thanks –  JonDog Jun 7 '12 at 22:11
    
This addresses the data requirement as well ... anything else I missed? –  Maria Zverina Jun 7 '12 at 22:12
    
for some reason it errors on the dates format 'mm/dd/yyyy' –  JonDog Jun 7 '12 at 22:21
    
Did you remove the first row of headers? And if so ... can you post the actual date it fails with? –  Maria Zverina Jun 7 '12 at 22:22
    
my apologizes. yes, after removing the header it works great! thanks a lot for you help!!! –  JonDog Jun 7 '12 at 22:35

Similar to @Maria Zverina's, but a bit more structured:

import time

data = [
    ['100', 'John', 'Jackson', 'M', '08/09/2000'],
    ['101', 'Jenny', 'Hobbs', 'F', '01/13/1995'],
    ['100', 'John', 'Jackson', 'M', '08/09/1995']
]

# sort by date, ascending
data.sort(key=lambda d: time.strptime(d[4], "%m/%d/%Y"))

# load into a dict, key on ID, later data overwrites earlier
latest = dict((d[0], d) for d in data)

# return to list, sorted by ID
data = sorted(latest.itervalues(), key=lambda d: int(d[0]))

returns

# most recent data for each ID, sorted by ID:
[
    ['100', 'John', 'Jackson', 'M', '08/09/2000'],
    ['101', 'Jenny', 'Hobbs', 'F', '01/13/1995']
]
share|improve this answer
    
+1 for the nice way of loading the dict :) –  Maria Zverina Jun 8 '12 at 6:43

Here's another solution. I just put the keys into a set as I find them. The orig variable contains the original list of list and res is list of list with duplicate removed.

mod_set  = set()
res = list()
for x in orig:
    if x[0] not in mod_set:
            res.append(x)
            mod_set.add(x[0])
share|improve this answer

Here is a small script to do what you want:

import time

mylist = [['100', 'John', 'Jackson', 'M', '08/09/2000'],
['101', 'Jenny', 'Hobbs', 'F', '01/13/1995'],
['100', 'John', 'Jackson', 'M', '08/09/1995']]

dict = {} 
for sublist in mylist: 
   id,fname,lname,gender,startdate = sublist 
   if not id in dict: 
      dict[id] = [fname,lname,gender,startdate] 
   else: 
      olddate = dict[id][3] 
      if time.strptime(startdate,'%d/%m/%Y') > time.strptime(olddate,'%d/%m/%Y'): 
         dict[id] = [fname,lname,gender,startdate] 

print dict

Output: {'100': ['John', 'Jackson', 'M', '08/09/2000'], '101': ['Jenny', 'Hobbs', 'F', '01/13/1995']}

At the end dict will contain unique IDs pointing to the most recent records.

share|improve this answer

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.