68

I want to subtract "number of days" from a date in Bash. I am trying something like this ..

echo $dataset_date #output is 2013-08-07

echo $date_diff #output is 2   

p_dataset_date=`$dataset_date --date="-$date_diff days" +%Y-%m-%d` # Getting Error

7 Answers 7

66

You are specifying the date incorrectly. Instead, say:

date --date="${dataset_date} -${date_diff} day" +%Y-%m-%d

If you need to store it in a variable, use $(...):

p_dataset_date=$(date --date="${dataset_date} -${date_diff} day" +%Y-%m-%d)
4
  • 1
    I had to modify this to $ date "--date=${dataset_date} -${date_diff} 1 day" +%Y%m%d to actually subtract the date... otherwise it would have added one day. Is there anything i missed?
    – Max
    May 7, 2014 at 15:57
  • @x_mtd Yes, you need to set the variable date_diff. Set it to the number of days that you want to subtract.
    – devnull
    May 7, 2014 at 17:18
  • Very slight improvement to the command - date --date="${dataset_date} -${date_diff} day" +%Y-%m-%d. Just to make it clearer that the --date is an option to the date command, and the double-quotes are being used to correctly represent the STRING passed to the --date option.
    – anuragw
    Aug 24, 2016 at 19:37
  • How to find the difference if dataset_date is in this format: %Y-%m-%d %H:%M:%S
    – Etisha
    Apr 30, 2020 at 11:24
32

one liner for mac os x:

yesterday=$(date -d "$date -1 days" +"%Y%m%d")
1
  • thank you.. I just needed in seconds format, hence went with thirtydaysold=$(date -d "$date -30 days" '+%s') Dec 6, 2018 at 9:37
8

If you're not on linux, maybe mac or somewhere else, this wont work. you could check with this:

yesterday=$(date  -v-1d    +"%Y-%m-%d")

to get more details, you could also see

man date
3
  • 2
    getting "date: invalid option -- 'v'"
    – Reishin
    May 8, 2021 at 14:20
  • what language is this?
    – Max Muster
    May 31, 2021 at 18:21
  • 1
    it is bash scripting Dec 28, 2021 at 12:44
5

To me, it makes more sense if I put the options outside (easier to group), in case I will want more of them.

date -d "$dataset_date - $date_diff days" +%Y-%m-%d

Where:

 1. -d --------------------------------- options, in this case 
                                         followed need to be date 
                                         in string format (look up on $ man date)
 2. "$dataset_date - $date_diff days" -- date arithmetic, more 
                                         have a look at article by [PETER LEUNG][1]
 3. +%Y-%m-%d -------------------------- your desired format, year-month-day
4

Here is my solution:

today=$(date +%Y%m%d)
yesterday="$(date -d "$today - 1 days" +%Y%m%d)"
echo $today
echo $yesterday
1
  • This is in essence answer from @Jeremy
    – Anton Krug
    May 11, 2021 at 10:48
3

Here is my solution:

echo $[$[$(date +%s)-$(date -d "2015-03-03 00:00:00" +%s)]/60/60/24]

It calculates number of days between now and 2015-03-03 00:00:00

2

Below code gives you date one day lesser

ONE=1
dataset_date=`date`
TODAY=`date -d "$dataset_date - $ONE days" +%d-%b-%G`
echo $TODAY

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