8

I am writing a bash script that will execute a command and store the value in a string variable, now I need to split the string after certain characters. Is there a way? I cannot use delimiters coz the format is kinda like this

  PV Name /dev/sda2
  PV Size 10.39 GB

Here I need to get the /dev/sda2 and 10.39 GB(if possible, just 10.39 alone) and write it in a new file. I cannot use delimiter because the space is at first.. I have not done much bash scripting. Is there a way to do this?

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    I don't understand your delimiter constraint. Doesn't awk '{print$3}' work? If not, what about $4 instead of $3? – mouviciel May 25 '12 at 15:39
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echo "${var:8}"

will echo the contents of $var starting at the character 8 (zero-based).

To strip off anything starting at the first space:

data=${var:8}
echo "${data%% *}"
0
6

To get only certain characters, use cut:

 $ echo '1234567' | cut -c2-5
 2345

However, in your case awk looks like better option:

$ echo '  PV Size 10.39 GB' | awk '{ print $3 }'
10.39

It reads text as space/tab separated columns, so it should work perfectly fine

2

You could use cut:

$ echo "PV Name /dev/sda2" |cut -d " " -f 3
/dev/sda2

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