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I have a string of the format

20110724T080000Z

and I want to convert that to local time in a shell script on linux. I thought I simply could give it as input to date, but I don't seem to be able to tell date what format my input date has.

this

date -d "20110724T080000Z" -u

would make date complain

date: invalid date `20110724T080000Z'

Also, what is the format of the form "20110724T080000Z" called? I have had little success trying to google for it.

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Looks like rfc 3339 format stripped from the punctuation. –  viraptor Jul 22 '11 at 9:55

3 Answers 3

up vote 2 down vote accepted

That's ISO8601 "basic format" for a combined date and time. date does not seem to be able to parse 20110724T080000Z, but if you are prepared to do a few string substitutions it parses 20110724 08:00:00Z correctly.

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its called Zulu time. Its the same as UCT, which used to be referred to as GMT. It's used with the military to specify UCT so there is no confusion on correspondance.

http://en.wikipedia.org/wiki/Date_(Unix)

this command should work according to wikipedia:

date [-u|--utc|--universal] [mmddHHMM[[cc]yy][[.SS]] The only valid option for this form specifies Coordinated Universal Time.

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You might try taking advantage of perl:

perl -e 'print scalar localtime(shift), "\n"' 20110724T080000Z

Though u might have to tweak this a little to get it to work correctly. Ok, I don't know exactly why the perl version doesn't do it well, but here is a Ruby version I've tried, though I can't pick the time out well:

ruby -e "require 'date';print Date.strptime('20110724T080000Z','%Y%m%dT%H%M%SZ').ctime"

gives:

Sun Jul 24 00:00:00 2011

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Gives Fri Aug 21 20:18:44 1970 - doesn't look right to me –  Kimvais Jul 22 '11 at 9:46

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