143

How do you do reverse gmtime(), where you put the time + date and get the number of seconds?

I have strings like 'Jul 9, 2009 @ 20:02:58 UTC', and I want to get back the number of seconds between the epoch and July 9, 2009.

I have tried time.strftime but I don't know how to use it properly, or if it is the correct command to use.

113

You want calendar.timegm().

>>> calendar.timegm(time.gmtime())
1293581619.0

You can turn your string into a time tuple with time.strptime(), which returns a time tuple that you can pass to calendar.timegm():

>>> import calendar
>>> import time
>>> calendar.timegm(time.strptime('Jul 9, 2009 @ 20:02:58 UTC', '%b %d, %Y @ %H:%M:%S UTC'))
1247169778

More information about calendar module here

  • 12
    If you are looking for the current unix epoch time please refer to @DanJ's comment or naren's answer, this answer is incorrect! – kosii Mar 22 '13 at 10:52
  • 1
    @kosii: the answer (in the current form, after the edit) is correct: the input is a time string in UTC, you can parse it easily using time.strptime() that returns a time tuple that you can pass to the calendar.timegm() that returns POSIX timestamp. – jfs Apr 2 '15 at 21:54
542

Use the time module:

epoch_time = int(time.time())
  • 32
    this is utc, and therefore I find it more correct – DanJ Jan 1 '13 at 20:27
  • 12
    @DanJ: it is number of elapsed seconds since Epoch (a fixed moment in time) and it is the same in any timezone. Though if we ignore time instances around leap seconds; it is easy to convert it to UTC if time uses Unix epoch (1970). – jfs Nov 17 '13 at 17:04
  • 25
    Note this isn't what the OP was asking for, but it's what I wanted. So +1. – fearless_fool Sep 21 '14 at 6:50
  • 4
    it is the answer to what is asked in the title: "getting the time since the epoch". +1 – AlejandroVD Nov 3 '15 at 17:16
  • 2
    to extend my comment above: time.time() value does NOT depend on the local timezone (if we exclude "right" timezones and the like) e.g., if it returns POSIX time (as it does on most systems) then it is the number of SI seconds since the Epoch (1970-01-01UTC) not counting leap seconds. This value can be converted to UTC (excluding leap seconds) but it is not UTC. @MarlonAbeykoon: I like this answer – jfs Aug 22 '16 at 10:36
10

Note that time.gmtime maps timestamp 0 to 1970-1-1 00:00:00.

In [61]: import time       
In [63]: time.gmtime(0)
Out[63]: time.struct_time(tm_year=1970, tm_mon=1, tm_mday=1, tm_hour=0, tm_min=0, tm_sec=0, tm_wday=3, tm_yday=1, tm_isdst=0)

time.mktime(time.gmtime(0)) gives you a timestamp shifted by an amount that depends on your locale, which in general may not be 0.

In [64]: time.mktime(time.gmtime(0))
Out[64]: 18000.0

The inverse of time.gmtime is calendar.timegm:

In [62]: import calendar    
In [65]: calendar.timegm(time.gmtime(0))
Out[65]: 0
  • This gives better explanation and example to time.mktime (which take current timezone into account), thanks – Jkm Jan 30 '16 at 6:21
  • @Jkm: do NOT use mktime() with gmtime(). mktime() accepts your local time but gmtime() returns UTC time -- your local timezone may and is likely to be different. "timestamp relative to your locale" is non-sense: POSIX timestamp does not depend on your locale (local timezone) -- it is the same value around the world. "seconds since epoch" is POSIX timestamp in most cases (even on Windows) -- things like "right" timezones that use TAI time scale are not common. See Does Python's time.time() return the local or UTC timestamp? – jfs Aug 22 '16 at 10:19
  • @J.F. Sebastian You are right. Actually I got a few issue about mktime() recently. For some python web server (Tornado for example), since the process keep running, even if I change the system locale, the mktime() called by the web server API still use the old timezone to generate the time object. I have to switch to gmtime() and manually apply the gmt offset. – Jkm Aug 31 '16 at 1:41
4
t = datetime.strptime('Jul 9, 2009 @ 20:02:58 UTC',"%b %d, %Y @ %H:%M:%S %Z")
  • I cant access strptime for some reason. I have imported datetime – calccrypto Dec 28 '10 at 19:21
  • 1
    @calccrypto you have to either from datetime import datetime or do datetime.datetime.strptime – pathikrit Sep 6 '13 at 21:20
4
ep = datetime.datetime(1970,1,1,0,0,0)
x = (datetime.datetime.utcnow()- ep).total_seconds()

This should be different from int(time.time()), but it is safe to use something like x % (60*60*24)

datetime — Basic date and time types:

Unlike the time module, the datetime module does not support leap seconds.

3

There are two ways, depending on your original timestamp:

mktime() and timegm()

http://docs.python.org/library/time.html

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