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I want to make a perl script which gonna be a wrapper to another script. Inside my wrapper, I run the "other script" with some parameters. This "other script" should print quite a lot of runtime data to the STDOUT. So, how do I let the "some script" print the data to STDOUT immediately when I run it inside my perl wrapper? (I don't want any files/variables only the STDOUT)

Thank you for your answers in advance!

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Please add to the question some of your hypothetical code. – Сухой27 Jun 20 '14 at 11:11
up vote 1 down vote accepted

If you call your command with system() then the stdout will go to stdout.

eg:

perl -e "system('ls');"
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Thank you very much, John! it works! – DeadStar Jun 23 '14 at 10:04

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