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A="2002-20-10"
B="2003-22-11"

How to find the difference in days between two dates?

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14 Answers 14

up vote 5 down vote accepted

If you have GNU date, it allows to print the representation of an arbitrary date (-d option). In this case convert the dates to seconds since EPOCH, subtract and divide by 24*3600.

Or you need a portable way?

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yes i need portable way –  Tree Feb 9 '11 at 15:46
    
@Tree: I believe there is no portable way to subtract dates short of implementing it yourself — it's not that hard, the only thing of interest are leap years. But nowadays everyone wants to subtract dates, as it seems: Have a look at unix.stackexchange.com/questions/1825/… :) –  user332325 Feb 9 '11 at 20:29

The bash way - convert the dates into %y%m%d format and then you can do this straight from the command line:

echo $(( ($(date --date="031122" +%s) - $(date --date="021020" +%s) )/(60*60*24) ))
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And in python

$python -c "from datetime import date; print (date(2003,11,22)-date(2002,10,20)).days"
398
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+1 This is the most portable way. –  mouviciel Oct 11 '13 at 8:03

If you simply need the amount of days, hours, seconds, etc. (time added for flavor):

$ echo $(( ( $(date -d '2003-08-02 17:24:33' +'%s') - $(date -d '2003-04-21 22:55:02' +'%s') ) )) seconds

8879371 seconds

$ echo $(( ( $(date -d '2003-08-02 17:24:33' +'%s') - $(date -d '2003-04-21 22:55:02' +'%s') )/60 )) minutes

147989 minutes

$ echo $(( ( $(date -d '2003-08-02 17:24:33' +'%s') - $(date -d '2003-04-21 22:55:02' +'%s') )/60/60 )) hours

2466 hours

$ echo $(( ( $(date -d '2003-08-02 17:24:33' +'%s') - $(date -d '2003-04-21 22:55:02' +'%s') )/60/60/24 )) days

102 days


I found this question while looking for a way to print intervals using bash, so let's extrapolate a bit.

GNU date from coreutils 5.3.0 onwards includes the option to use "@" to print a date from 1970-01-01 00:00:00 using epoch. Since it starts from the very begining of a specific year, you can use it to print an interval provided it doesn't span more than one year.

$ date -d@$(( ( $(date -d '2003-08-02 17:24:33' +'%s') - $(date -d '2003-04-21 22:55:02' +'%s') ) )) +'%m months %d days %H hours %M minutes %S seconds'

04 months 13 days 15 hours 29 minutes 31 seconds

Of course, if it does span more than one year, like your example, you have to juggle the output a bit:

date -d@$(( ( $(date -d '2003-11-22 17:24:33' +'%s') - $(date -d '2002-10-20 22:55:02' +'%s') ) )) +'%Y years %m months %d days %H hours %M minutes %S seconds'

1971 years 02 months 02 days 14 hours 29 minutes 31 second

Uh-oh D:

$ fullyear=$(date -d@$(( ( $(date -d '2003-11-22 17:24:33' +'%s') - $(date -d '2002-10-20 22:55:02' +'%s') ) )) +'%Y years %m months %d days %H hours %M minutes %S seconds')
$ yearsubtraction=$(( $(echo $fullyear | sed -r 's/^([0-9]+).*/\1/') - 1970 ))
$ echo $fullyear | sed -r "s/^([0-9]+) /$(printf %02d $yearsubtraction) /"

01 years 02 months 02 days 14 hours 29 minutes 31 seconds

That's better :D. Got the leading zero printf trick from this post

Then you test for the amount of years and put it inna script:

$ cat > datediff.sh
#!/bin/bash

firstdate=$1;
secondate=$2;

fullyear=$(date -d@$(( ( $(date -d "$secondate" +'%s') - $(date -d "$firstdate" +'%s') ) )) +'%Y years %m months %d days %H hours %M minutes %S seconds')
yearsubtraction=$(( $(echo $fullyear | sed -r 's/^([0-9]+).*/\1/') - 1970 ))

if [ $yearsubtraction -le '0' ]; then
  echo $fullyear | sed -r "s/^([0-9]+) years //" 
else
  echo $fullyear | sed -r "s/^([0-9]+) /$(printf %02d $yearsubtraction) /"
fi

$ chmod +x datediff.sh 

...and then you give it a spin :)

$ ./datediff.sh '2013-07-22 11:55:19' '2015-12-25 02:00:13'

02 years 06 months 04 days 10 hours 04 minutes 54 seconds

$ ./datediff.sh '2013-07-22 11:55:19' '2013-12-25 02:00:13'

06 months 05 days 10 hours 04 minutes 54 seconds

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If the option -d works in your system, here's another way to do it. There is a caveat that it wouldn't account for leap years since I've considered 365 days per year.

date1yrs=`date -d "20100209" +%Y`
date1days=`date -d "20100209" +%j`
date2yrs=`date +%Y`
date2days=`date +%j`
diffyr=`expr $date2yrs - $date1yrs`
diffyr2days=`expr $diffyr \* 365`
diffdays=`expr $date2days - $date1days`
echo `expr $diffyr2days + $diffdays`
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I'd submit another possible solution in Ruby. Looks like it's the be smallest and cleanest looking one so far:

A=2003-12-11
B=2002-10-10
DIFF=$(ruby -rdate -e "puts Date.parse('$A') - Date.parse('$B')")
echo $DIFF
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1  
He is looking for a way in bash. –  Cojones Mar 7 '12 at 11:26
1  
There is no portable way to do it in shell itself. All alternatives use particular external programs (i.e. GNU date or some scripting language) and I honestly think that Ruby is a good way to go here. This solution is very short and does not use any non-standard libraries or other dependencies. In fact, I think that there's a higher chance of having Ruby installed than one would have GNU date installed. –  GreyCat Mar 8 '12 at 21:14

Here's the MAC OS X version for your convenience.

$ echo $(((`date -jf %Y-%d-%m $B +%s` - `date -jf %Y-%d-%m $A +%s`)/86400))

nJoy!

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Even if you don't have GNU date, you'll probably have Perl installed:

use Time::Local;
sub to_epoch {
  my ($t) = @_; 
  my ($y, $d, $m) = ($t =~ /(\d{4})-(\d{2})-(\d{2})/);
  return timelocal(0, 0, 0, $d+0, $m-1, $y-1900);
}
sub diff_days {
  my ($t1, $t2) = @_; 
  return (abs(to_epoch($t2) - to_epoch($t1))) / 86400;
}
print diff_days("2002-20-10", "2003-22-11"), "\n";

This returns 398.041666666667 -- 398 days and one hour due to daylight savings.


The question came back up on my feed. Here's a more concise method using a Perl bundled module

days=$(perl -MDateTime -le '
    sub parse_date { 
        @f = split /-/, shift;
        return DateTime->new(year=>$f[0], month=>$f[2], day=>$f[1]); 
    }
    print parse_date(shift)->delta_days(parse_date(shift))->in_units("days");
' $A $B)
echo $days   # => 398
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Using mysql command

$ echo "select datediff('2013-06-20 18:12:54+08:00', '2013-05-30 18:12:54+08:00');"  | mysql -N

Result: 21

NOTE: Only the date parts of the values are used in the calculation

Reference: http://dev.mysql.com/doc/refman/5.6/en/date-and-time-functions.html#function_datediff

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on unix you should have GNU dates installed. you do not need to deviate from bash. here is the strung out solution considering days, just to show the steps. it can be simplified and extended to full dates.

DATE=$(echo `date`)
DATENOW=$(echo `date -d "$DATE" +%j`)
DATECOMING=$(echo `date -d "20131220" +%j`)
THEDAY=$(echo `expr $DATECOMING - $DATENOW`)

echo $THEDAY 
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Give this a try:

perl -e 'use Date::Calc qw(Delta_Days); printf "%d\n", Delta_Days(2002,10,20,2003,11,22);'
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Another Python version:

python -c "from datetime import date; print date(2003, 11, 22).toordinal() - date(2002, 10, 20).toordinal()"
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Assume we rsync Oracle DB backups to a tertiary disk manually. Then we want to delete old backups on that disk. So here is a small bash script:

#!/bin/sh

for backup_dir in {'/backup/cmsprd/local/backupset','/backup/cmsprd/local/autobackup','/backup/cfprd/backupset','/backup/cfprd/autobackup'}
do

    for f in `find $backup_dir -type d -regex '.*_.*_.*' -printf "%f\n"`
    do

        f2=`echo $f | sed -e 's/_//g'`
        days=$(((`date "+%s"` - `date -d "${f2}" "+%s"`)/86400))

        if [ $days -gt 30 ]; then
            rm -rf $backup_dir/$f
        fi

    done

done

Modify the dirs and retention period ("30 days") to suit your needs.

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Oracle puts backup sets in Flash Recovery Area using format like 'YYYY_MM_DD' so we delete the underscores for passing it to 'date -d' –  Alex Cherkas Feb 18 '13 at 8:52

Use the shell functions from http://cfajohnson.com/shell/ssr/ssr-scripts.tar.gz; they work in any standard Unix shell.

date1=2012-09-22
date2=2013-01-31
. date-funcs-sh
_date2julian "$date1"
jd1=$_DATE2JULIAN
_date2julian "$date2"
echo $(( _DATE2JULIAN - jd1 ))

See the documentation at http://cfajohnson.com/shell/ssr/08-The-Dating-Game.shtml

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