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My code

FOO="aaa;bbb;ccc"

echo ${FOO##*;} # Result: ccc
echo ${FOO%%;*} # Result: aaa

how to get "bbb" from var FOO?

echo ${FOO???*} # Result: bbb

thank you

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Do you have to do it via bash parameter expansion, or is using awk acceptable? –  Kyle Maxwell Mar 12 '13 at 0:56
    
Please no awk, bash pure language. Thank –  petr Mar 12 '13 at 0:58

4 Answers 4

There's no explicit operator for that. Furthermore you can not nest these operators (see Nested Shell Parameter Expansion)

So you should use some temporary variable for the job:

FOO="aaa;bbb;ccc"
tmp=${FOO%;*}
tmp=${tmp#*;}
echo $tmp

Or you should convert it to an array.

Edited for the archive, thanks for the comment.

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This prints aaa, not bbb as required. Use single % and # instead of %% and ## –  Austin Phillips Mar 12 '13 at 1:31

As per jejese's answer you can use the # and % word splitting constructs.

FOO="aaa;bbb;ccc"
split=${FOO%;*}
final=${split#*;}
echo $final

produces:

bbb

Or you can use the IFS bash field separator variable set to a semicolon to split your input based on fields. This probably simpler to use and allows you to obtain the second field's value using a single line of code.

FOO="aaa;bbb;ccc"
IFS=";" read field1 field2 field3 <<< "$FOO"
echo $field1 $field2 $field3

produces:

aaa bbb ccc
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This doesn't exactly generalize well, but extracting the middle of 3 ;-delimited fields can be accomplished with:

$ shopt -s extglob
$ FOO=aaa;bbb;ccc
$ echo ${FOO//+(${FOO##*;}|${FOO%%;*}|;)}
bbb

Breaking it down into steps makes it easier to see how it works:

$ C=${FOO##*;}     # ccc
$ A=${FOO%%;*}     # aaa
$ echo ${FOO//+($A|$C|;)}  # Removes every occurance of $A, $C, or ; from FOO
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Another way. Assign $FOO to the positional parameters:

IFS=';'
set -- $FOO
echo  "$2"
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