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I have the following command that returns a date from a file

tail -1 MyFile | awk -F ',' '{print $7}'

Returns date like this 04/16/12 20:44:19

I want to convert that date to epoch time by modifying the awk command somehow by feeding $7 into date -d $7 +%s

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2 Answers 2

up vote 3 down vote accepted

I think awk is a bit heavy for this job, cut maybe a little bit lighter:

tail -1 MyFile | date -d "`cut -d, -f7`" +%s

But of course you can do it with awk as well:

tail -1 MyFile | date -d "`awk -F, '{ print $7 }'`" +%s
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Have used cut now although I did get it working with awk aswell. Thanks. –  general exception Apr 17 '12 at 7:49

GNU awk has builtin time functions:

tail -1 infile | awk -F, '{
  split($7, t, /[/: ]+/)
  t[3] = t[3] > 69 ? 19 t[3] : 20 t[3]
  print mktime(t[3]" "t[1]" "t[2]" "t[4]" "t[5]" "t[6]) 
  }'
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