Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can I print the date which is a day before current time in Bash?

share|improve this question
    
Tried date but seems like there is no -d switch in Solaris 10's bash –  conandor Nov 10 '09 at 19:43
    
I found another great solution by installing gnu date (coreutil package) from sunfreeware. –  conandor Jul 9 '10 at 6:12
    
nor is there a -d switch in AIX's date –  frankster Nov 19 '12 at 15:22

15 Answers 15

up vote 74 down vote accepted

if you have GNU date and i understood you correctly

$ date +%Y:%m:%d -d "yesterday"
2009:11:09

or

$ date +%Y:%m:%d -d "1 day ago"
2009:11:09
share|improve this answer
1  
I found most are as suggested answer but -d switch is not found in Solaris's date –  conandor Nov 11 '09 at 4:30
4  
Don't think this will work on FreeBSD or OS X. –  J. P. Petersen Oct 18 '12 at 19:21
    
It works on OS X except for the -d switch. –  Matt Mar 26 '13 at 16:07
    
For the usage on Ubuntu with date function: $(date +%Y:%m:%d -d "1 day ago"), output is: 2013:04:21. And if you want the date 10 days before, you can use $(date +%Y:%m:%d -d "10 days ago") or $(date +%Y:%m:%d -d "10 day ago") –  zhihong Apr 22 '13 at 16:08
    
On OS X you can install coreutils through brew: see stackoverflow.com/questions/15374752/… –  kasterma Jun 4 at 8:30
date --date='-1 day'
share|improve this answer

If you have BSD (OSX) date you can do it like this:

date -j -v-1d
Wed Dec 14 15:34:14 CET 2011

Or if you want to do date calculations on an arbitrary date:

date -j -v-1d -f "%Y-%m-%d" "2011-09-01" "+%Y-%m-%d"
2011-08-31
share|improve this answer

Use Perl instead perhaps?

perl -e 'print scalar localtime( time - 86400 ) . "\n";'

Or, use nawk and (ab)use /usr/bin/adb:

nawk 'BEGIN{printf "0t%d=Y\n", srand()-86400}' | adb

Came across this too ... insane!

/usr/bin/truss /usr/bin/date 2>&1 | nawk -F= '/^time\(\)/ {gsub(/ /,"",$2);printf "0t%d=Y\n", $2-86400}' | adb
share|improve this answer

Sorry not mentioning I on Solaris system. As such, the -date switch is not available on Solaris bash.

I find out I can get the previous date with little trick on timezone.

DATE=`TZ=MYT+16 date +%Y-%m-%d_%r`
echo $DATE
share|improve this answer
    
This method is not 100% reliable (about 98% actually) if you happen to live in a place using daylight saving time. –  jlliagre Nov 18 '11 at 7:31

Well this is a late answer,but this seems to work!!

     YESTERDAY=`TZ=GMT+24 date +%d-%m-%Y`;
     echo $YESTERDAY;
share|improve this answer

Advanced Bash-scripting Guide

date +%Y:%m:%d -d "yesterday"

For details about the date format see the man page for date

date --date='-1 day'
share|improve this answer
#!/bin/bash
OFFSET=1;
eval `date "+day=%d; month=%m; year=%Y"`
# Subtract offset from day, if it goes below one use 'cal'
# to determine the number of days in the previous month.
day=`expr $day - $OFFSET`
if [ $day -le 0 ] ;then
month=`expr $month - 1`
if [ $month -eq 0 ] ;then
year=`expr $year - 1`
month=12
fi
set `cal $month $year`
xday=${$#}
day=`expr $xday + $day`
fi
echo $year-$month-$day
share|improve this answer
    
+1 for correction, interesting method, even though it's a bit verbose. –  Peter Lindqvist Nov 10 '09 at 10:31
1  
Hi medoix, I am not able to find the meaning of ${$#}. I know that $# stands for the number of arguments to a script/function. But I am not able to relate to this. Please help. –  Karthick S Feb 1 '12 at 8:25
    
This doesn't work for the previus day on change of month . For example today is 1 July , 2013 , the result being printed out is 2013-6-1347, whereas the expected result is 2013-6-30 –  misguided Jun 30 '13 at 22:57
    
Instead of the 3 lines between the "fi" try "day=echo $(cal $month $year)|tr ' ' '\n'|tail -n 1" –  Anton Jul 10 '13 at 10:18

The --date or -d option is only available in GNU date.

$ date --date 'yesterday' +%F
date: illegal time format
usage: date [-jnu] [-d dst] [-r seconds] [-t west] [-v[+|-]val[ymwdHMS]] ... 
        [-f fmt date | [[[[[cc]yy]mm]dd]HH]MM[.ss]] [+format]
share|improve this answer

You can use the date command:

date --date 'yesterday' +%F
share|improve this answer
yesterday=`date -d "-1 day" %F`

Puts yesterday's date in YYYY-MM-DD format into variable $yesterday.

share|improve this answer
date +%Y:%m:%d|awk -vFS=":" -vOFS=":" '{$3=$3-1;print}'
2009:11:9
share|improve this answer
    
What about if today is the 1st January? –  martin clayton Nov 10 '09 at 21:42

date --date='-1 day'

share|improve this answer

Try the below code , which takes care of the DST part as well.

if [ $(date +%w) -eq $(date -u +%w) ]; then
  tz=$(( 10#$gmthour - 10#$localhour ))
else
  tz=$(( 24 - 10#$gmthour + 10#$localhour ))
fi
echo $tz
myTime=`TZ=GMT+$tz date +'%Y%m%d'`

Courtsey Ansgar Wiechers

share|improve this answer

DST aware solution:

Manipulating the Timezone is possible for changing the clock some hours. Due to the daylight saving time, 24 hours ago can be today or the day before yesterday.

You are sure that yesterday is 20 or 30 hours ago. Which one? Well, the most recent one that is not today.

echo -e "$(TZ=GMT+30 date +%Y-%m-%d)\n$(TZ=GMT+20 date +%Y-%m-%d)" | grep -v $(date +%Y-%m-%d) | tail -1

The -e parameter used in the echo command is needed with bash, but will not work with ksh. In ksh you can use the same command without the -e flag.

When your script will be used in different environments, you can start the script with #!/bin/ksh or #!/bin/bash. You could also replace the \n by a newline:

echo "$(TZ=GMT+30 date +%Y-%m-%d)
$(TZ=GMT+20 date +%Y-%m-%d)" | grep -v $(date +%Y-%m-%d) | tail -1
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.