How would you parse a date in bash, with separate fields (years, months, days, hours, minutes, seconds) into different variables?
The date format is: YYYY-MM-DD hh:mm:ss
YYYY-MM-DD hh:mm:ss
Does it have to be bash? You can use the GNU coreutils /bin/date binary for many transformations:
/bin/date
$ date --date="2009-01-02 03:04:05" "+%d %B of %Y at %H:%M and %S seconds" 02 January of 2009 at 03:04 and 05 seconds
This parses the given date and displays it in the chosen format. You can adapt that at will to your needs.
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