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Can some one please tell me how can I find the following.

List from /etc/passwd the UID and the user having the highest UID.

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3  
Sounds like homework. Is it? – Cameron Skinner Oct 31 '10 at 23:16
up vote 6 down vote accepted
cat /etc/passwd | awk -F: '{print $3,$1}' | sort -n | tail -n 1
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you can also substitute awk with cut : cat /etc/passwd | cut -d":" -f3 | sort -n | tail -n 1 – Nasir Oct 31 '10 at 23:31
    
@nsr: That won't print the user name though. – sepp2k Oct 31 '10 at 23:49
    
Thanks a lot for all your answers and comments, they was very helpful – HelloWorld Nov 1 '10 at 6:58
    
@sepp2k: oops, missed that parts. – Nasir Nov 1 '10 at 15:47

Instead of reading /etc/passwd, it would be better to get the output from

getent passwd

As you could be using another source of UIDs via nsswitch, such as LDAP.

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/etc/passwd contains user information separated by colons. The user id is in the third column.

The sort command line tool can be used to sort the lines of a file. It has options, to choose which separator the columns are separated by, which column to sort by and whether to sort numerically or alphabetically.

So you can use sort to sort /etc/passwd by user id and then use tail to get the last line from that, which will contain the user with highest id.

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getent passwd | awk -F : '$3>h{h=$3;u=$1}END{print h " " u}'
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