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Maybe an odd question, but here we go:

I have to parse several log files, which I'm reading in random order. In order to process them sorted I need to sort by the extracted the log-time.

A log entry will look like this:

l = 2001:470:1f14:169:5000:eae0:589d:c211 - SOFT12 [14/Nov/2012:09:32:46 +0100] "POST /request HTTP/1.1" 200 984 "-" "-" 181446

I can extract the date like this:

l.split('+', 1)[0].split('-', 1)[1].split(' ')[2].split('[')[1]

which gives me:

14/Nov/2012:09:32:46

As I'm looking at a years worth of log files with +2million records per day, I don't want to convert anything into a datetime object just so I can switch the format and sort. So I'm looking for a string-only operation that can switch the date-part of the string 14/Nov/2012 into a sortable 2012-11-14, preferably include-able in my handy split-statement from above...

Question:
How do I modify a string-date without converting it into a datetime object?

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5  
Split on slashes, select into a conversion array, concatenate everything back –  lc. Mar 8 '13 at 14:24
    
considering the complexities of dates and times, I personally would bite the bullet and just do the conversion to DateTime. When I'm looking at close to a billion records - I really don't want a subtle bug in my string conversion causing an error in 0.01% of the results. Potential source of subtle bugs: daylight savings time transition in your logs. –  Joris Timmermans Mar 8 '13 at 14:26
    
mh. True, but priority is "processing time" right now. –  frequent Mar 8 '13 at 14:31
    
It sounds like a one-time operation from your question - either way would probably only take a few minutes to run? But if you are sure that your log timestamps are always from the same timezone and don't have too much funny business with DST, then @lc 's approach is easier and might be good enough for your purposes. –  Joris Timmermans Mar 8 '13 at 14:37
2  
Side note: you can probably reduce the number of splits you use to get the date, ex. l.split("+",1)[0].split("[",1)[1] gives '14/Nov/2012:09:32:46 '. That ought to save you a few nanoseconds per row. –  Kevin Mar 8 '13 at 14:44

2 Answers 2

up vote 1 down vote accepted

This code would work:

# Converts something like "14/Nov/2012:09:32:46"
# to "2012-11-14:09:32:46"
_MONTHS = ["Jan","Feb","Mar","Apr","May","Jun","Jul","Aug","Sep","Oct","Nov","Dec"]
def convert(s):
  p = s.split(':', 1)
  t = p[0].split('/')
  return "%s-%02d-%02d:" % (t[2], _MONTHS.index(t[1]) + 1, int(t[0])) + p[1]
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ok. Trying. Thanks so far –  frequent Mar 8 '13 at 14:42
    
nice! I don't know how long I would have needed to come up with this... Thanks! –  frequent Mar 8 '13 at 14:58

Instead of using a list and using its .index() method, it might be useful to use a dict, because a list would involve a linear search. Even if the list is quite short, the hash operations in a dict MIGHT be faster. At least it is worth trying.

So, taking Nayuki Minase's solution:

# Converts something like "14/Nov/2012:09:32:46"
# to "2012-11-14:09:32:46"
_MONTHS = ["Jan", "Feb", "Mar", "Apr", "May", "Jun", "Jul", "Aug", "Sep", "Oct", "Nov", "Dec"]
_MONTHS = dict((m, n + 1) for n, m in enumerate(_MONTHS)) # {"Jan": 1, "Feb: 2, ...} 
def convert(s):
  p = s.split(':', 1)
  t = p[0].split('/')
  return "%s-%02d-%02d:" % (t[2], _MONTHS[t[1]], int(t[0])) + p[1]

or even (for saving time)

  return "%s-%02d-%s:" % (t[2], _MONTHS[t[1]], t[0]) + p[1]

if you can be sure that the day has already the right format (leading 0).

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I have switched from using dict to using lists, which sheds a few ms. Still will give it a try –  frequent Mar 8 '13 at 14:59
    
Hi glglgl, it would have been nice if you commented on my answer or proposed an edit instead of copying it and making your own answer. Thanks. –  Nayuki Minase Mar 8 '13 at 15:09
    
@NayukiMinase Editing would have destroyed your version - which is valid as well. Commenting would have been an option. But as I made clear whose curtesy the code is, I don't see a huge problem... –  glglgl Mar 8 '13 at 15:26

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