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I want to find out the used DISPLAY of the currently logged in user. For that I wanted to use sed. First, the output of who:

[orschiro@thinkpad ~]$ who
orschiro tty1         2013-08-05 23:15
orschiro pts/0        2013-08-05 23:17 (:0)
orschiro pts/1        2013-08-05 23:22 (:0)
orschiro pts/2        2013-08-05 23:22 (:0)

That is I want to retrieve :0 for the logged in user orschiro.

I am using the following expression but it does not retrieve the expected result. Instead the output is empty:

[orschiro@thinkpad ~]$ who | sed -e "/orschiro/! d;/pts/d;s/^.*[^0-9]\\(:[0-9.]\\+\\).*$/\\1/p;d" | head -n1
[orschiro@thinkpad ~]$ 

What is wrong with my expression?

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/pts/d will delete all the lines of interest. It would really help if you edited your question to include your required output, give the above input. Good luck. –  shellter Aug 5 '13 at 22:14
    
The assumption that there can be exactly one logged-in user with a display is, of course, false in the general case. –  tripleee Aug 6 '13 at 8:13
    
True. I mean you could easily extend that approach by looping through he logged in users. In my case that was not necessary though. –  orschiro Aug 7 '13 at 6:59

3 Answers 3

up vote 4 down vote accepted

Command /pts/d; delete all lines, that contain string pts. Try this:

who | sed -e '/orschiro/! d; /pts/! d; s/^.*\(:[0-9.]\+\).*$/\1/p;d' | head -n1
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3  
Or better yet who | sed -n '/^orschiro.*(\(:[0-9]*\))$/!d;s//\1/p;q' –  tripleee Aug 5 '13 at 22:17
    
Yep, this definitely better, +1. –  D.Dt.Operator Aug 5 '13 at 22:21
    
This one is great. Thanks! –  orschiro Aug 6 '13 at 5:50

Maybe this?

who | awk -F '[()]' '/orschiro/{print $(NF-1)}' | grep -v orschiro | head -n1

or

who | awk -F '[()]' '/orschiro/{print $(NF-1)}' | grep -v orschiro | uniq
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Try this one:
who | awk '/orschiro/{print $5}' | sed -e 's/[()]//g'

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