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AXyz122311Xyslasd22344ssaa Aklsssx@sdddf#4=sadsss kaaAASds

How do we get the characters "slas" out that begins with "11Xy" and ends with "d223" in UNIX using regular expression?

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negative rating is unfair as am not familiar with UNIX,regexp and googling for pattern matching returned no appropriate result with different approaches using grep, awk, expr, sed, cut. Could some one also include simple grep way for regular expression searches in a string in UNIX for this purpose? – kisna Feb 28 '12 at 16:25
    
for example, grep returs whole string and not "slas" when echo $VAR | grep '(?<=11Xy).+(?=d223)' – kisna Feb 28 '12 at 16:26
up vote 1 down vote accepted

This is what lookahead and lookbehind assertions will do.

Have you tried something like this?

(?<=11Xy).+(?=d223)


Update

You can use grep -o to display only the matched text in a *nix environment.

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thanks, could you also share the UNIX usage as updated in comments – kisna Feb 28 '12 at 21:57
    
echo $MSG | grep -o '(?<=11Xy).+(?=d223)' did not work. Cannot grep a variable an year later – kisna Nov 8 '13 at 3:20

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