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#!/usr/bin/perl
my $a;
$a=qx(date --date "+3 min" '+ %Y/%m/%d-%H:%M:%S');
system( q(perl -pi.back -e 's{/2013/07/31-05:54:14/}{$a}g;' /tmp/ron/replace.txt));

I'm getting the date from server adding 3mins to it and assigining it to $a variable, but i'm not able to print that using the one liner. How to print a variable in perl one liner?

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1 Answer 1

If you're doing this in bash, then it's probably simpler to replace your entire operation with the following sed command:

sed 's!/2013/07/31-05:54:14/!'"$(date --date "+3 min" '+ %Y/%m/%d-%H:%M:%S')"'!g'

This will insert the output of the date command into the sed substitution string.

Also, I see that you've got a / character at the start and end of your search string. Did you mean to include those as part of the search string?

In your original command, you need to interpolate $a into the system command which you could do like this:

#!/usr/bin/perl
my $a;
$a = qx(date --date "+3 min" '+ %Y/%m/%d-%H:%M:%S');
system( q(perl -pi.back -e 's{/2013/07/31-05:54:14/}{) . $a . q(}g;' /tmp/ron/replace.txt));

The $a does not expand inside a q() string (which is equivalent to a string surrounded by ') so I've closed the q() and concatenated $a the reopened q().

Calling perl from within a perl script is a little clunky. Essentially, you're just wanting to use the output of the date command in a one-liner, so something like this might also be simpler:

bash$ perl -pi.back -e 's{/2013/07/31-05:54:14/}{'"$(date --date "+3 min" '+ %Y/%m/%d-%H:%M:%S')"' /tmp/ron/replace.txt

Although this is pretty similar to using sed.

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