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I would like to write a bash script that prints out the date in the following format:

20120205_16
(year)(month)(day)_(24 hour)

so the command to do this for the current date is:

date +'20%y%m%d_%H'

What i would like to do is print every date like this (using a for loop or something) from a specified date to another. For example:

20120205_16 -> 20120305_18 would be:

20120205_16
20120205_17
20120205_18
...
20120305_17
20120305_18

Obviously the two hard bits here are specifying the date and incrementing by hour.

Is it possible to do this easily with date or another method?

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Ah, I've just noticed you are using 20%y. I believe you just want to use %Y which gives you the whole year. –  Michał Górny Jul 20 '12 at 7:19

3 Answers 3

up vote 2 down vote accepted

First, you get time_t values using the %s format:

start=$(date --date '5 feb 2012 16:00' +%s)
stop=$(date --date '5 mar 2012 18:00' +%s)

These are expressed in seconds. You can use a for loop on their values, increasing them by 1 hour (3600 seconds):

for t in $(seq ${start} 3600 ${stop})
do
    date --date @${t} +'%Y%m%d_%H'
done

Note the @ which is used to express times obtained through %+s in the --date argument.

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I've written a set of command-line tools for date fiddling in general (dateutils). It's definitely not widely spread, but portable.

For this kind of task, dseq is your friend, your example boils down to:

dseq '2012-02-05 16:00:00' 1h '2012-03-05 18:00:00' -f '%Y%m%d_%H'
=>
20120205_16
20120205_17
20120205_18
  ...
20120305_16
20120305_17
20120305_18
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This can also be done nicely in Gawk:

gawk -v start="2011 10 10  10 00 00" \
     -v end="2011 11 10  10 00 00" '

BEGIN {
  time = mktime( start )
  end = mktime( end )
  while ( time <= end ) {
    print strftime( "%Y%m%d_%H", time )
    time +=3600
  }
}'
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