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Trying to get the Debian version number into a variable, I encountered a problem filtering it through grep.

If I do lsb_release:

~# lsb_release -a
No LSB modules are available.
Distributor ID: Debian
Description:    Debian GNU/Linux 7.1 (wheezy)
Release:        7.1
Codename:       wheezy

To get just the line containing the description, I tried:

# lsb_release -a | grep -i 'Description'
No LSB modules are available.
Description:    Debian GNU/Linux 7.1 (wheezy)

However, I still get the line "No LSB modules are available."

I tried specifically excluding it with:

# lsb_release -a | grep -v 'LSB' | grep -i 'Description'
No LSB modules are available.
Description:    Debian GNU/Linux 7.1 (wheezy)

I still get the line containing the string "LSB". Why is this happening? How can I get the desired line alone?

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2 Answers 2

up vote 2 down vote accepted

It appears that the undesired line is being output to stderr, not stdout. If you don't want it, redirect it to /dev/null. Try:

lsb_release -a 2>/dev/null | grep -i 'Description'
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Pipe stderr to stdout, and use cut:

debian_version=$(lsb_release -a 2>&1 | grep  'Description' | cut -f2)

Or throw away the error messages at all:

debian_version=$(lsb_release -a 2>/dev/null | grep  'Description' | cut -f2)
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