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I have a date as 02-12-2012 (dd-mm--yyyy) and wish to convert it into a float since the epoch. How would I do it using time.mktime() to convert this. If need be I'm happy to include the time as 00:00.

When I try to do it I get:

TypeError: argument must be 9-item sequence, not str


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2 Answers 2

up vote 2 down vote accepted

Use time.strptime to create the struct_time that time.mktime expects:

>>> import time
>>> time.mktime(time.strptime('02-12-2012', '%d-%m-%Y'))
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Thanks, and that will then be the time as 02-12-2012 00:00. Ok I'll use the time.strptime method to convert it first. –  user94628 Dec 4 '12 at 21:43
When I did it I get the time as: 1354406400.0 I did: import time a= '02-12-2012' b = time.strptime(a, '%d-%m-%Y') c= time.mktime(b) print c –  user94628 Dec 4 '12 at 21:46
@user94628: time.mktime returns the time in local time, not UTC. We get different results, because we are in different time zones. –  Steven Rumbalski Dec 4 '12 at 21:52
Ok understand now. Can it be returned in UTC time though? –  user94628 Dec 4 '12 at 21:55
Skimming through the docs, I did not see a function for UTC. However, you may want to rad them more thoroughly. –  Steven Rumbalski Dec 4 '12 at 22:04

You can use datetime to do the conversion.

>>> import datetime
>>> epoch = datetime.datetime(1970, 1, 1)
>>> my_date = datetime.datetime(2012, 12, 2)
>>> print (my_date - epoch).days * 3600 * 24
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Thanks for that suggestion, I'll take a look at it. –  user94628 Dec 4 '12 at 22:34

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