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I have a line like this :

 22.665774 Fr RMSG  0 0 1 1 18 11 Rx 0 308002 5  20  1d6 x 20 20 a8 4f 35 40 1b 00 0f 08 f7 89 ff fa ff f3 35 80 49 00 00 00 00 30 00 00 80 ab 4b 54 40 f0 00 fc 714a81  1  40937

I want to parse it and substitute it in such a way to get only this part :

a8 4f 35 40 1b 00 0f 08 f7 89 ff fa ff f3 35 80 49 00 00 00 00 30 00 00 80 ab 4b 54 40 f0 00 fc

At this moment i am using this :

sed -re \"s/^.+x//\

But this only gives me the part before x.. can you give me some hints please?

Thanks .

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What's the pattern of it? Everything from "a8"? The nth field? –  fedorqui May 31 '13 at 11:26
    
delete all before a8 and at the end.. eliminate this part : 714a81 1 40937 –  Olaru Mircea May 31 '13 at 11:27
    
Do you always have a8 there or can it be different? Or is it just for this one line? –  Jerry May 31 '13 at 11:28
    
it can be different, that x is important and those two hex strings before a8. So when i got x hex hex .. delete them and what's before them. –  Olaru Mircea May 31 '13 at 11:29
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4 Answers 4

up vote 2 down vote accepted

You can use this regular expression:

\sx\s(?:[0-9a-f]{2}\s){2}(.*?)\s\w{3,}

This will return the part you want in a caught group. Tested here.

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This will fail if the x is followed by non-digit characters, i.e. e1. –  mart1n May 31 '13 at 11:36
1  
@mart1n Right, the OP mentioned hex earlier which I overlooked. Fixed now. Thank you! –  Jerry May 31 '13 at 11:39
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Does it have to be sed? cut does it perfectly.

echo '22.665774 Fr RMSG  0 0 1 1 18 11 Rx 0 308002 5  20  1d6 x 20 20 a8 4f 35 40 1b 00 0f 08 f7 89 ff fa ff f3 35 80 49 00 00 00 00 30 00 00 80 ab 4b 54 40 f0 00 fc 714a81  1  40937' | cut -d' ' -f22-53
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+1 right tool for right job. cut is the way to go for this purpose. –  anubhava May 31 '13 at 11:57
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I'm not familiar with sed but this applies in the general regex case:

This regex will match the string "a8 ... fc" where "..." can be any combination of hex-bytes (only lower case letters) and spaces:

/a8([0-9a-f ]+)fc/

You can then use substitution in the same regex using:

/a8$1fc/

Here $1 will be substituted with the match in between the parentheses ([0-9a-f ]+).

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You can use this expression to match the whole line and capture the strings aftex x <hex> <hex>:

.*?\sx\s\w*?\s\w*?\s(.*?)\s\w{4,}.*

This assumes the x is always the delimiter where you want to cut off the remainder of the string.

Edit:

Full command to do this on the command line:

echo " 22.665774 Fr RMSG  0 0 1 1 18 11 Rx 0 308002 5  20  1d6 x 20 20 a8 4f 35 40 1b 00 0f 08 f7 89 ff fa ff f3 35 80 49 00 00 00 00 30 00 00 80 ab 4b 54 40 f0 00 fc 714a81  1  40937" | perl -pe "s/.*?\sx\s\w*?\s\w*?\s(.*?)\s\w{4,}.*/\1/"
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