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GNU Date lets you convert date strings like so:

$ date +"%d %m %Y" -d "yesterday"
  04 01 2012

Is it possible to pipe a date string to it for conversion? I've tried the obvious -d - like so:

$ echo "yesterday" | date +"%d %m %Y" -d -

but it prints today's date instead of yesterdays.

Is it possible to pipe values to it or doesn't it support that?

Thanks.

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Why the sudden downvote, 2 years after I asked this question? I don't mind being downvoted, but an explanation as to why and as to how the question could be improved would be very much appreciated... –  Cosmic Flame Jun 10 at 11:38

3 Answers 3

up vote 5 down vote accepted

Yes.

 echo "yesterday" | xargs date +"%d %m %Y" -d
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Yup, that works. Thanks! –  Cosmic Flame Jan 5 '12 at 15:20

date -f tells it to do the same thing as -d except for every line in a file... you can set the filename to "-" to make it read from standard input.

echo "yesterday" | date +"%d %m %Y" -f -
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You can use `command` or $(command) substitution:

date +"%d %m %Y" -d $(echo "yesterday")
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