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.

I am trying to find dates with in a certain format, I have done it before with perl(strftime), but that time I mentioned a static time, this time i need a variable $CURRENT_DAY here.

Below is the issue, when equate the CURRENT_DAY by using DAYHOUR=86400 and an integer, the variable is giving the right time, but once I put $CURRENT_DAY variable in the statement, the date would not decrease.

$ DAYHOUR=86400
$ DAY=1
$ CURRENT_DAY=`echo $(($DAYHOUR*$DAY))`
$ DD=`perl -e 'use POSIX; print strftime "%d", localtime time - $CURRENT_DAY;'`
$ echo $DD
20
$ DAY=`echo $(($DAY+1))`
$ CURRENT_DAY=`echo $(($DAYHOUR*$DAY))`
$ DD=`perl -e 'use POSIX; print strftime "%d", localtime time - $CURRENT_DAY;'`
$ echo $DD
20
$ DAY=`echo $(($DAY+1))`
$ echo $DAY
3
$ CURRENT_DAY=`echo $(($DAYHOUR*$DAY))`
$ echo $CURRENT_DAY
259200
$ echo `perl -e 'use POSIX; print strftime "%d", localtime time - 259200;'`
17
share|improve this question
    
Is there a problem with the perl script to accept the shell script parameters ? –  Lordlebu Dec 20 '12 at 13:44
    
As @ikegami notes in a comment below, not all days in all places at all times have 86400 seconds in them. Beware daylight savings and such. –  pilcrow Dec 20 '12 at 19:23
add comment

4 Answers 4

Your principal problem is that $CURRENT_DAY is a Perl script variable. By enclosing your Perl script in single quotes, there is no visibility to the shell's variable of the same name. Had you enabled warnings (e.g. with -w) you would have seen this.

There are a couple of ways to circumvent your problem. One is to use double quotes to encapsulate your Perl thus allowing the shell to first expand its variable's value before the Perl is run:

CURRENT_DAY=3
perl -MPOSIX -wle "print strftime qq(%d),localtime time-(86400*$CURRENT_DAY);print $CURRENT_DAY" 
17

Another is:

export CURRENT_DAY=3
perl -MPOSIX -wle 'print strftime qq(%d),localtime time-(86400*$ENV{CURRENT_DAY})' 

Be advised that adding or subtracting 24-hours from a time to calculate yesterday or tomorrow will not correctly account for daylight saving changes. See this faq

share|improve this answer
    
In most places in the world, there are two hours every year for which this gives the wrong answer. –  ikegami Dec 20 '12 at 18:35
add comment

You may pass them as arguments in @ARGV:

$ dd_seconds_ago () { perl -MPOSIX -e 'print strftime q(%d), localtime(time - shift)' "$@"; }

$ DD=$(dd_seconds_ago 86400)

Without an argument and in the above context, shift shifts @ARGV, which is handy for shell one-liners like this

share|improve this answer
1  
In most places in the world, there are two hours every year for which this gives the wrong answer. –  ikegami Dec 20 '12 at 18:34
    
@ikegami, yup. And then there are those darned leap seconds. –  pilcrow Dec 20 '12 at 19:22
add comment

Like Perl, sh doesn't interpolate in single quoted strings, so Perl sees $CURRENT_DAY instead of the actual number, and you've never assigned anything to that Perl variable. You could switch to a double-quoted string.

perl -MPOSIX -e"print strftime '%d', localtime time-$CURRENT_DAY;"

That's fine since $CURRENT_DAY is a number, but if you wanted to pass an arbitrary string, you'd use an env var or an argument.

export CURRENT_DAY
perl -MPOSIX -e'print strftime "%d", localtime time-$ENV{CURRENT_DAY};'

or

perl -MPOSIX -e'print strftime "%d", localtime time-$ARGV[0];' -- "$CURRENT_DAY"

Note that your code is buggy, though. There are two hours every year for which your code will give the wrong answer because not all days have 86400 seconds. Some have 82800, and others have 90000. (And that's assuming leap seconds don't factor in.) A Perl solution that doesn't suffer from that problem follows:

perl -MDateTime -e'print
   DateTime->today(time_zone=>"local")
    ->subtract(days=>$ARGV[0])
     ->strftime("%d")' -- "$DAY"

Or you could use date.

date -d "$DAY days ago" +%d
share|improve this answer
add comment

I am assuming you want to pass the number of days in the past in the shell variable DAY and that you want the answer in the shell variable DD

So if it is the 20th of the month and the DAY is 1, then DD should be set to 19

You could modify your Perl command as follows:

 DD=`perl -e 'use POSIX; print strftime "%d", localtime( time - ($ENV{DAY}* 86400))';

Alternatively, you could use the GNU date command that is widely available

 DD=`date -d "$DAY days ago" +%d`

Using date is probably better at dealing with leap days, etc

share|improve this answer
    
Note that export DAY is needed for the first snippet to work. –  ikegami Dec 20 '12 at 18:40
add comment

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.