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I have a command line written in perl that executes in Solaris (maybe this is irrelevant as it is UNIX-like) which inserts a "wait" string every 6 lines

perl -pe 'print "wait\n" if ($. % 6 == 0);' file

However, I want to replace that 6 by a parameter (ARGV[0]), resulting in something like this:

perl -pe 'print "wait\n" if ($. % ARGV[0] == 0);' file 6

It goes well, giving me the right output, until it finishes reading the file and treats "6" as the next file (even when it understood it as ARGV[0] before).

Is there any way to use the -p option and specify which parameters are files and which ones are not?


Edited: I thought there was a problem with using the -f option but as @ThisSuitIsBlackNot pointed out, I was using it wrongly.

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    What are you trying to do with -f? I don't think it does what you think it does. See perldoc perlrun. – ThisSuitIsBlackNot Dec 1 '15 at 16:47
  • I see, you are right I thought it was for reading from a file. However, I'll modify the question because it is not the cause. Thanks – Nilox Dec 1 '15 at 16:53
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    @Nilox Pass ARGS before file perl -spe 'print "wait\n" if (($. % $arg)==0);' -- -arg=6 file. Sorry this will work, I was not on perl before. – Arunesh Singh Dec 1 '15 at 17:07
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    See also Using -e and -s switch in perl – Håkon Hægland Dec 1 '15 at 17:15
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    always enable warnings, even (tempted to say especially) in oneliners – ysth Dec 1 '15 at 17:25
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-p, as a superset of -n, wraps the code with a while (<>) { } loop, which reads from the files named on the command line. You need to extract the argument before entering the loop.

perl -e'$n = shift; while (<>) { print "wait\n" if $. % $n == 0; print }' 6 file

or

perl -pe'BEGIN { $n = shift }  print "wait\n" if $. % $n == 0' 6 file

Alternatively, you could also use an env var.

N=6 perl -pe'print "wait\n" if $. % $ENV{N} == 0' file
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    That BEGIN was just the thing I needed. It solved the problem and many more in the future. Thanks – Nilox Dec 1 '15 at 17:14

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