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I am new to shell script programming. I want to write a simple shell script to check the ubuntu version installed in the system; if the version is greater than or equal to version 12 then copy some files, and if it's less then copy some other files.

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What have you tried? –  ruakh Sep 22 '12 at 15:30
    
i had tried few basics scripting like copying files and executing few commands, but i didn't had much knowledge in condition checking in shell script –  arun arun Sep 22 '12 at 15:35
    
It's done as on every other programming language with an if statment. I'm sure a bit of searching could help you. –  Zagorax Sep 22 '12 at 15:36

2 Answers 2

A small google search learns us that lsb_release -rs gives us the ubuntu release version as 8.04. Now you can easy use an if:

if [[ `lsb_release -rs` == "8.04" ]] # replace 8.04 by the number of release you want
then
#Copy your files here
fi
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1  
Using lsb_release -rs even omits the Release: part. –  A.H. Sep 23 '12 at 11:16
    
Indeed, this shortens the entire solution. I've edited the answer so that this sed-stuff is omitted. Thanks for pointing out, @A.H. ! –  Pieter Sep 23 '12 at 12:14
cat /etc/issue.net |  awk '{x=2 ; if (substr($x,0,3) == '12') {system("cp <src> <dest>") } else {system("cp <src> <dest>") }}'

cat /etc/issue.net will show 3 fields out of which 2nd field is version no.

by substr we check the first two digit if it is version 12 then by system command inside awk we can copy certain files from a particular src to dest.

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