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I want to use perl and add two days from today and output this as a unix time. I have found lots of information on how to convert Unix time to readable time but I need the ouput to be a unix time. I found this

my $time = time;    # or any other epoch timestamp 
my @months = ("Jan","Feb","Mar","Apr","May","Jun","Jul",
              "Aug","Sep","Oct","Nov","Dec");
my ($sec, $min, $hour, $day,$month,$year) = (localtime($time))[0,1,2,3,4,5]; 
# You can use 'gmtime' for GMT/UTC dates instead of 'localtime'
print "Unix time ".$time." converts to ".$months[$month].
      " ".$day.", ".($year+1900);

How do I take current time and add 2 days and output as Unix time.

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1  
use DateTime module for that –  snoofkin Feb 23 '13 at 17:10
    
You can also use Time::Piece, which is a core module. –  TLP Feb 23 '13 at 17:25
    
What do you mean by "Unix time"? –  cdarke Feb 23 '13 at 17:27
1  
@cdarke en.wikipedia.org/wiki/Unix_time –  m0skit0 Feb 23 '13 at 17:28
3  
Ah, seconds since epoc. So get current time then add 2 day's worth of seconds (2 * 24 * 60 * 60). –  cdarke Feb 23 '13 at 17:31

4 Answers 4

Have you considered using the DateTime package? It contains a lot of date manipulation and computation routines, including the ability to add dates.

There is an FAQ, with examples, here (in particular, see the section on sample calculations and DateTime formats).

Here is a snippet:

use strict;
use warnings;

use DateTime;

my $dt = DateTime->now();
print "Now: " . $dt->datetime() . "\n";
print "Now (epoch): " . $dt->epoch() . "\n";

my $two_days_from_now = $dt->add(days => 2);
print "Two days from now: " . $two_days_from_now->datetime() . "\n";
print "Two days from now (epoch): " . $two_days_from_now->epoch() . "\n";

Which produces the following output:

Now: 2013-02-23T18:30:58
Now (epoch): 1361644258
Two days from now: 2013-02-25T18:30:58
Two days from now (epoch): 1361817058
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Thanks that is exactly what I need –  Steven Tharp Feb 23 '13 at 18:41
2  
@StevenTharp You should accept his answer then :) –  squiguy Feb 23 '13 at 19:29
1  
That is a lot of work to calculate time() + 172800 –  Borodin Feb 24 '13 at 10:01
    
@Borodin It is clearer than my($sec,$min,$hour,$mday,$mon,$year,$wday,$yday,$isdst)=localtime(time()+(2*24*‌​60*60));. It is also fast-enough that I doubt you would notice the speed difference. –  Brad Gilbert Feb 25 '13 at 0:24
    
@BradGilbert: What is wanted is just the epoch time, so print time() + 172800 is all that is necessary. Efficiency isn't an issue, but I disagree that this version is clear. –  Borodin Feb 25 '13 at 0:42

yuu can change the timestamp, which is seconds from epoc

change

my $time = time;

to

my $time = time + 2 * 24 * 60 * 60 ; # 60 seconds 60 minutes 24 hours times 2
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Now is time(). Two days from now is time() + 2 * 86400. Today (midnight at the beginning of the current day) is int(time() / 86400) * 86400. Two days from today is today plus 2 * 86400. localtime in scalar context will print any of them out as a readable date, unless you really want gmtime or strftime (from the POSIX module).

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The time function returns the current epoch seconds, and core module Time::Seconds provides useful constants for time periods.

use strict;
use warnings;

use Time::Seconds 'ONE_DAY';

print time + ONE_DAY * 2;

output

1361872751
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