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I have a string like this:

uid=2560(jdihenia) gid=1000(undergrad)

I want to just get the undergrad part in to a variable name var1. So I used a command

var1=`echo "uid=2560(jdihenia) gid=1000(undergrad)" | cut -d "(" -f 3`

but this will assign the value undergrad) in to var1. Can you please tell me how can I get just the undergrad part in to the variable var1?

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1  
careful with those back ticks. I'd recommend you use $() instead. –  EmacsFodder Nov 14 '10 at 23:12

6 Answers 6

up vote 3 down vote accepted

If you want the literal text "undergrad" in the brackets, this should work:

cut -d "(" -f 2 <text> | cut -d ")" -f 1

or equivalently

echo <text> | cut -d "(" -f 2 | cut -d ")" -f 1
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Thanks for all of your answers. var1=echo <text> | cut -d "(" -f 3 | cut -d ")" -f 1 worked well. –  Learner_51 Nov 14 '10 at 23:27

If this string comes from id, then you can just call id -gn instead.

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var1=$(cmd |sed 's/.*(\([^)]*\))/\1/')
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var1="uid=2560(jdihenia) gid=1000(undergrad)"
var1=${var1#*\(*\(}
var1=${var1%%\)*}
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Shorter: var1=${var1##*\(} and var1=${var1%)*}. –  Dennis Williamson Nov 15 '10 at 5:36
    
@Dennis, escaping the parentheses is required by the POSIX standard, by ksh (both ksh93 and mksh; the parentheses are part of an extended pattern matching notation) and by bash if shopt -s extglob is in effect. It appears to work in most other shells. –  jilles Nov 15 '10 at 23:33
    
I see no ill effects, at least in these circumstances, with extglob in Bash. –  Dennis Williamson Nov 15 '10 at 23:46

echo "$str" | awk -F'[()]' '{print $4}'

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var1=$( echo "uid=2560(jdihenia) gid=1000(undergrad)" | grep -Po 'gid=.*\(\K.*(?=\))')
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