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This question is similar to this question about subtracting dates with Python, but not identical. I'm not dealing with strings, I have to figure out the difference between two epoch time stamps and produce the difference in a human readable format.

For instance:

32 Seconds
17 Minutes
22.3 Hours
1.25 Days
3.5 Weeks
2 Months
4.25 Years

Alternately, I'd like to express the difference like this:

4 years, 6 months, 3 weeks, 4 days, 6 hours 21 minutes and 15 seconds

I don't think I can use strptime, since I'm working with the difference of two epoch dates. I could write something to do this, but I'm quite sure that there's something already written that I could use.

What module would be appropriate? Am I just missing something in time? My journey into Python is just really beginning, if this is indeed a duplicate it's because I failed to figure out what to search for.

Addendum

For accuracy, I really care most about the current year's calendar.

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By UNIX epoch date you mean the usual number of seconds since X? –  Cat Plus Plus Jul 4 '11 at 17:16
1  
How accurate do you want the month / year calculation to be? It can get complicated since the number of days per month and per year can vary. –  GWW Jul 4 '11 at 17:20

3 Answers 3

up vote 26 down vote accepted

You can use the wonderful dateutil module and its relativedelta class:

import datetime
import dateutil.relativedelta

dt1 = datetime.datetime.fromtimestamp(123456789) # 1973-11-29 22:33:09
dt2 = datetime.datetime.fromtimestamp(234567890) # 1977-06-07 23:44:50
rd = dateutil.relativedelta.relativedelta (dt2, dt1)

print "%d years, %d months, %d days, %d hours, %d minutes and %d seconds" % (rd.years, rd.months, rd.days, rd.hours, rd.minutes, rd.seconds)
# 3 years, 6 months, 9 days, 1 hours, 11 minutes and 41 seconds

It doesn't count weeks, but that shouldn't be too hard to add.

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1  
Thank you! This works perfectly. Expressing weeks as days isn't a problem. –  Tim Post Jul 4 '11 at 17:44
1  
Is there a simple way to display only the non 0 units and to pluralize automatically ? like "1 year, 2 minutes and 1 second" –  Pierre de LESPINAY Aug 10 '12 at 8:43
    
@PierredeLESPINAY You can ternary the rd.second as a final printf argument and and replace the s in seconds with %s, it's either 's' or '' depending on plurality. –  Tim Post Jun 26 at 7:36

I had that exact same problem earlier today and I couldn't find anything in the standard libraries that I could use, so this is what I wrote:

humanize_time.py

    #!/usr/bin/env python

    INTERVALS = [1, 60, 3600, 86400, 604800, 2419200, 29030400]
    NAMES = [('second', 'seconds'),
             ('minute', 'minutes'),
             ('hour', 'hours'),
             ('day', 'days'),
             ('week', 'weeks'),
             ('month', 'months'),
             ('year', 'years')]

    def humanize_time(amount, units):
    """
    Divide `amount` in time periods.
    Useful for making time intervals more human readable.

    >>> humanize_time(173, 'hours')
    [(1, 'week'), (5, 'hours')]
    >>> humanize_time(17313, 'seconds')
    [(4, 'hours'), (48, 'minutes'), (33, 'seconds')]
    >>> humanize_time(90, 'weeks')
    [(1, 'year'), (10, 'months'), (2, 'weeks')]
    >>> humanize_time(42, 'months')
    [(3, 'years'), (6, 'months')]
    >>> humanize_time(500, 'days')
    [(1, 'year'), (5, 'months'), (3, 'weeks'), (3, 'days')]
    """
       result = []

       unit = map(lambda a: a[1], NAMES).index(units)
       # Convert to seconds
       amount = amount * INTERVALS[unit]

       for i in range(len(NAMES)-1, -1, -1):
          a = amount / INTERVALS[i]
          if a > 0:
             result.append( (a, NAMES[i][1 % a]) )
             amount -= a * INTERVALS[i]

       return result

    if __name__ == "__main__":
        import doctest
        doctest.testmod()

You can use dateutil.relativedelta() to calculate the accurate time delta and humanize it with this script.

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What an awesome piece of portability. Thank you for sharing it :) –  Tim Post Jul 5 '11 at 14:29
    
I'm curious as to where you are getting your numbers for seconds in Weeks, Months, and Years. –  QA Automator Jul 11 '11 at 16:34
    
I wrote it as [1, 60, 60*60, 24*60*60, 7*24*60*60 ... ] originally to be more obvious but I thought that it looked long and annoying, so I changed it to this. The current code is merely the result from the multiplications. –  Liudmil Mitev Jul 14 '11 at 13:21
    
How can we handle amount values that have decimal places? Eg: humanize_time(60.5, 'seconds') should give 1 minute, 0.5 seconds –  Nyxynyx Mar 13 at 11:37

A little improvement over @Schnouki's solution with a single line list comprehension. Also displays the plural in case of plural entities (like hours)

Import relativedelta

>>> from dateutil.relativedelta import relativedelta

A lambda function

>>> attrs = ['years', 'months', 'days', 'hours', 'minutes', 'seconds']
>>> human_readable = lambda delta: ['%d %s' % (getattr(delta, attr), getattr(delta, attr) > 1 and attr or attr[:-1]) 
...     for attr in attrs if getattr(delta, attr)]

Example usage:

>>> human_readable(relativedelta(minutes=125))
['2 hours', '5 minutes']
>>> human_readable(relativedelta(hours=(24 * 365) + 1))
['365 days', '1 hour']
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