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This issue is probably very easy but I can't figure it out -

I have the following values: ['2000']['09']['22']

I want the following: 20000922 or '20000922'

code

def transdatename(d):
    year = re.findall('\d\d\d\d', str(d))
    premonth = re.findall('[A-Z][a-z]{2,9}', str(d))
    month = replace_all(str(premonth), reps)
    daypre = re.findall('\d{1,2},', str(d))
    day = re.sub(',','', str(daypre))
    fulldate = str(year)+str(month)+str(day)
    return fulldate

Example data

Input: ['\nSeptember 23, 2000']

Expected Output: '20000922'

share|improve this question
7  
['2000']['09']['22'] - what is it? A string? A list? –  eumiro Jul 12 '11 at 14:15
    
@user831880 It's hard for us to help, because we're not sure what you mean by ['2000']['09']['22']. Can you edit your question to include code from some of your attempts from either the Python interpreter or your .py file? –  Jon-Eric Jul 12 '11 at 14:43
    
I'm not sure what it is! I'm trying to concatenate 3 values which I think should result in a long string but it isn't working. I've added the code to the original post. –  user831880 Jul 12 '11 at 15:07
1  
Please give us input and expected output –  Artsiom Rudzenka Jul 12 '11 at 15:23
    
I have added example input and output above. Thank you!! –  user831880 Jul 12 '11 at 15:36

5 Answers 5

Are you trying to do this?

>>> input= '\nSeptember 23, 2000'
>>> format= '\n%B %d, %Y'
>>> datetime.datetime.strptime(input,format)
datetime.datetime(2000, 9, 23, 0, 0)
>>> (_+datetime.timedelta(-1)).strftime("%Y%m%d")
'20000922'

If so, you're making it too hard.

share|improve this answer
    
Thank you for this answer. I was in the middle of trying to implement a solution given above but it wasn't working for me. Your solution here showed me what I was doing wrong and the problem is now fixed. Thank you!! –  user831880 Jul 12 '11 at 16:19
    
+1 as i didn't see your answer before posting mine. –  Steven Rumbalski Jul 12 '11 at 16:37

I assume these are list items? Like this;

a=['2000']
b=['99']
c=['22']

If that's right, then

a[0]+b[0]+c[0]

will do the trick

share|improve this answer
    
what about c? –  Steven Rumbalski Jul 12 '11 at 14:18
    
haha, thanks. Forgot one! –  samb8s Jul 12 '11 at 14:19
    
I've tried this one but it won't work i'm afriad. I get an error - "exceptions:IndexError: list index is out of range" –  user831880 Jul 12 '11 at 15:26
    
If you type my code, it works :) - however, if the assumptions are wrong, maybe you should be more detailed in your questions in future –  samb8s Jul 13 '11 at 10:49

Use itertools.chain:

from itertools import chain    
data = [['2000'],['09'],['22']]   
''.join(chain(*data))
#OR
int(''.join(chain(*data))) # for numeric value representation

OR functools.reduce:

data = [['2000'],['09'],['22']]   
''.join(reduce(lambda res,x: res+x, data))

AND:

''.join(''.join(x) for x in data)

At least in case you mentioned a list, tuple, set of lists:

initList = [['2000'],['09'],['22']]   
resultList = []
for subList in initList:
   resultList.append(''.join(subList))

outputValue = ''.join(resultList)
intValue = int(outputValue)

After reading your code i think that it could be done the following way:

str_dates = ['\nSeptember 23, 2000']
monthMap = {'January': 1, 'February': 2, ....}
month, day, year str_dates[0].lstrip('\n').split()
year + monthMap[month] + day[:-1]

OR - think is the best way:

from datetime import datetime
str_dates = ['\nSeptember 23, 2000']
[datetime.strptime(sDate,'%B %d, %Y').strftime('%Y%d%m') for sDate in str_dates]

Sure that you can use regex - but i am not sure that this is the most apropriate way here, however if you want to use it it would be better to use single - something like this(it just a sample code it thre should be a better regex expression):

yearData = re.findall(r'(?i)^([a-z]{2,9})\s(\d{1,2}),\s(\d{2,4}$)', 'September 23, 2000')
#yearData contains now [('September', '23', '2000')]
share|improve this answer
    
+1 for figuring out a way to work itertools in there. –  Kirk Strauser Jul 12 '11 at 14:21
    
@Kirk - thank you - but there are still some downvoters withot comenting on reason. –  Artsiom Rudzenka Jul 12 '11 at 14:23
    
-1. You're assuming you know what he means by ['2000']['09']['22']. Also, judging from the question, these answers are way too complicated for the questioner to even begin to understand. –  Steven Rumbalski Jul 12 '11 at 14:27
1  
@Steven, @utdemir: I disagree in that @Artsiom's answers aren't exactly idiomatic but they're "fun" solutions to an unclear question. I think I used threading and socket to help someone rename a file once just to see how complicated it could become. –  Kirk Strauser Jul 12 '11 at 14:41
2  
@Steven Remember that a question may be of use to more people than the original poster. Multiple solutions to the problem are likely to add value. –  Rob Cowie Jul 12 '11 at 14:43
['2000'][0] + ['09'][0] + ['22'][0] 
share|improve this answer
2  
Downvoter, give it a try. It works an produces the expected results. If you can provide a specific criticism about the way it works, I look forward to your comments. –  George Cummins Jul 12 '11 at 14:20
    
-1. You're assuming you know what he means by ['2000']['09']['22'] –  Steven Rumbalski Jul 12 '11 at 14:22
2  
@Steven: that's rough, c'mon, his assumption sounds very reasonable to me; +1 from me. –  user610650 Jul 12 '11 at 14:25
    
I didn't downvote, but I didn't upvote either. Yes this produces the correct output, but I suspect this one-line answer may not help user831880 much. –  Jon-Eric Jul 12 '11 at 14:37
    
@Jon-Eric: You are correct. It is a very specific answer based on the limited scope of the question. I could have expanded it in the manner @samb8s did in his answer to assign the values to variables and operate on those, but that would have been based on assumptions. This answer is correct for the given scope. The OP can ask about variable assignment and related issues as needed. –  George Cummins Jul 12 '11 at 14:41

Here's a couple of approaches of changing '\nSeptember 23, 2000' to '20000923':

Using strptime:

import time
def transdatename(t):
    # won't work if day of month can be a single digit.  must have leading zero
    return time.strftime('%Y%m%d', time.strptime(t, '\n%B %d, %Y'))

print transdatename('\nSeptember 23, 2000') # prints 20000923

Using regex:

import re
# use dictionary to convert month name to two digit number
month_to_num = {'January': '01',
        'February': '02',
        'March': '03',
        'April': '04',
        'May': '05',
        'June': '06',
        'July': '07',
        'August': '08',
        'September': '09',
        'October': '10',
        'November': '11',
        'December': '12'}

def transdatename(t):
    month, day, year = re.search('(\w+)\W+(\d+)\W+(\d+)', t).groups()
    month = month_to_num[month]
    # if day could be a single digit use day.zfill(2)
    return year + month + day

print transdatename('\nSeptember 23, 2000') # prints 20000923
share|improve this answer
    
Thanks a lot for this! I ended up using the datetime module to do the tranformation instead of regex. –  user831880 Jul 12 '11 at 16:34

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