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I have output with this format:

/ignore-this/^/../I/want/this@ignore-this

I am trying to use an awk regex to capture the following:

../I/want/this

This wouldn't be particularly hard except that I cannot figure out how to properly escape the ^ so it is not interpretted as an new line or a not. Below is what I have so far, it almost works except it prints out:

/ignore-this/^/../I/want/this

Here is the code:

#!/bin/awk -f                                                                              
{
    if (match($0, "\^.*@")){
        print substr($0, RSTART, RLENGTH-1);
    }
}
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3  
Please notice, that there is a subtle difference between a caret and a carrot. –  Andreas Rejbrand Nov 7 '11 at 19:12
1  
Thanks, caret was definitely what I wanted. –  Rick Smith Nov 7 '11 at 19:16
    
have you tried [^]? –  Chriszuma Nov 7 '11 at 19:17
    
@Chriszuma yup, it gives this error "awk: ./example.awk:7: (FILENAME=- FNR=1) fatal: Unmatched [ or [^: /[^].*@/" –  Rick Smith Nov 7 '11 at 19:19
2  
what if you use /\^.*@/ (no dbl-quotes, a true reg-ex). Good luck. –  shellter Nov 7 '11 at 19:24

3 Answers 3

up vote 2 down vote accepted

Another possibility, using gawk:

#!/opt/local/bin/gawk -f
{
    if (match($0, /[\^]\/(.*)@/, pieces)) {
        print pieces[1];
    }
}
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I actually prefer shellter's regex which is pretty much the same but slightly simpler: /\^.*@/ This is pretty much the same so I'll mark this as my accepted answer. –  Rick Smith Nov 7 '11 at 20:32
    
This answer is based on the assumption that you want to exclude the leading "^/" from what's printed, leaving only "../I/want/this". If you like, you can get the desired result using POSIX awk and @shellter's regex by fiddling with the substr() values. –  pholser Nov 7 '11 at 21:22
> echo '/ignore-this/^/../I/want/this@ignore-this' |\ 
awk -F"^" '{split($NF,a,"@");print a[1]}' 

output:

/../I/want/this

This splits the input stream on all "^". Then it takes the last field and splits it on "@" and prints the first half of the string.

EDIT: Or use:

awk '/\^/{split($0,a,"[@^]");print a[2]}' file

HTH Chris

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Thanks for the answer! I don't think this will work for me though because my awk code has more code than what I've provided. Changing the delimiter would break the rest of the stuff :( –  Rick Smith Nov 7 '11 at 19:26
    
This works, all you want to do is split a string matching "^" on two different characters. See my edited answer. –  Chris Nov 7 '11 at 19:44
    
Nice! In a lot of ways I see this as a simpler solution because it splits on 2 characters rather than dealing with a messier regex capture. I accepted the other answer only because this question doesn't actually answer how to escape a ^, which future readers of this post would want to know. Thanks again for the good solution. –  Rick Smith Nov 7 '11 at 20:37
awk -F'\\^|@' '{print $2}'

should work in this case

kent$  echo "/ignore-this/^/../I/want/this@ignore-this"\
        |awk -F'\\^|@' '{print $2}' 
/../I/want/this
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