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I've got a file that I need to get a piece of text from using regex. We'll call the file x.txt. What I would like to do is open x.txt, extract the regex match from the file and set that into a parameter. Can anyone give me some pointers on this?

EDIT

So in x.txt I have the following line

$variable = '1.2.3';

I need to extract the 1.2.3 from the file into my bash script to then use for a zip file

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2  
var=$(grep regex file) or you're going to have to be a lot more specific. –  Kevin Nov 12 '12 at 2:15
    
Thanks Kevin. First glance, that looks like it may be what I need. I'm actually wanting to extract a group number from the grep (group 1). Can that handle this? –  Jay Gilford Nov 12 '12 at 2:18
    
You mean like group [0-9]\+? Sure. Or if you just want the number, grep -oP '(?<=group )[0-9]+' –  Kevin Nov 12 '12 at 2:21
    
No, he probably means var=$(sed -ne 's/^[^=]*= *'\([^']*\)'.*/\1/p' file) –  vladr Nov 12 '12 at 2:25
    
Thanks for the quick replies. I've updated my question above to clarify what is in the file and what I need to get –  Jay Gilford Nov 12 '12 at 2:25

3 Answers 3

up vote 3 down vote accepted

You can use the grep-chop-chop technique

var="$(grep -F -m 1 '$variable =' file)"; var="${var#*\'}"; var="${var%\'*}"
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This seems to do what I want thanks! –  Jay Gilford Nov 12 '12 at 3:14
4  
Best technique name ever. –  surjikal Nov 12 '12 at 3:54

Use sed to do it efficiently in a single pass:

var=$(sed -ne "s/\\\$variable *= *['\"]\([^'\"]*\)['\"] *;.*/\1/p" file)

The above works whether your value is enclosed in single or double quotes.

Also see Can GNU Grep output a selected group?.

$ cat dummy.txt
$bla = '1234';
$variable = '1.2.3';
blabla
$variable="hello!"; #comment

$ sed -ne "s/\\\$variable *= *['\"]\([^'\"]*\)['\"] *;.*/\1/p" dummy.txt
1.2.3
hello!

$ var=$(sed -ne "s/^\\\$variable *= *'\([^']*\)' *;.*/\1/p" dummy.txt)

$ echo $var
1.2.3 hello!

† or at least as efficiently as sed can churn through data when compared to grep on your platform of choice. :)

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Thanks, I'll have to look into sed as it seems to be a great tool. Unfortunately the above didn't seem to work for whatever reason for me –  Jay Gilford Nov 12 '12 at 3:15
    
I see; your input is actually a PHP script, so the line is probably indented; I removed the ^ from the regular expression, go ahead and try again. –  vladr Nov 12 '12 at 3:24
    
And there, since it's a PHP script you're dealing with, I updated the regexp to also deal with double-quotes. :) –  vladr Nov 12 '12 at 3:29
    
Thanks for updating. The code does work however I've already used the code above now which is working. I've upvoted your answer. Thank you again –  Jay Gilford Nov 12 '12 at 11:27
    
No problem. I assume the assignment you were interested in is always essentially at the top of the file and cannot preceded by any tests of the form $variable ==... (the grep in the accepted answer would match those instead.) :) Also make sure that you modified the acepted answer to check for double-quoted strings as well as different spacing around = if you think your php source had either, or else you'd be missing values. :) –  vladr Nov 12 '12 at 16:57

If all the file lines have that format ($<something> = '<value>'), the you can use cut like this:

value=$(cut -d"'" -f2 file)
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Unfortunately it doesn't as it's a php script –  Jay Gilford Nov 12 '12 at 3:14

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