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I’m stuck in trying to grep anything just after name=, include only spaces and alphanumeric.

e.g.:

name=some value here

I get

some value here

I’m totally newb in this, the following grep match everything including the name=.

grep 'name=.*' filename

Any help is much appreciated.

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5 Answers 5

up vote 32 down vote accepted

As detailed here, you want a positive lookbehind clause, such as:

grep -P '(?<=name=)[ A-Za-z0-9]*' filename

The -P makes grep use the Perl dialect, otherwise you'd probably need to escape the parentheses. You can also, as noted elsewhere, append the -o parameter to print out only what is matched. The part in brackets specifies that you want alphanumerics and spaces.

The advantage of using a positive lookbehind clause is that the "name=" text is not part of the match. If grep highlights matched text, it will only highlight the alphanumeric (and spaces) part. The -o parameter will also not display the "name=" part. And, if you transition this to another program like sed that might capture the text and do something with it, you won't be capturing the "name=" part, although you can also do that by using capturing parenthess.

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does grep actually support positive lookbehind? –  Charles Ma Aug 8 '09 at 2:57
    
I was worried about that, too, so I tried it on my Windows PC, and that is why I had to use the -P parameter. It probably supports it in the other flavors (maybe not -G), but I didn't know the proper escaping for the elements. I'm using grep 2.5.1. –  markets Aug 8 '09 at 3:03
    
I get this with grep -P: grep: Support for the -P option is not compiled into this This is on Ubuntu Hardy (Linux 2.6.24). On another Linux machine it failed with a slightly different error message, and likewise on Solaris 10. –  John Zwinck Aug 8 '09 at 3:36
    
Yep, read up a bit on this, it's an experimental option that a lot of operating systems don't include by default yet. As for highlighting machine text, grep --color does that too :) –  Charles Ma Aug 8 '09 at 3:44
1  
FYI : -P does't work on OSX since 10.8 –  Matthieu Riegler Sep 24 '13 at 0:07

Try this:

sed -n 's/^name=//p' filename

It tells sed to print nothing (-n) by default, substitute your prefix with nothing, and print if the substitution occurs.

Bonus: if you really need it to only match entries with only spaces and alphanumerics, you can do that too:

sed -n 's/^name=\([ 0-9a-zA-Z]*$\)/\1/p' filename

Here we've added a pattern to match spaces and alphanumerics only until the end of the line ($), and if we match we substitute the group in parentheses and print.

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+1. Simple, elegant, performant. –  Sinan Ünür Aug 8 '09 at 2:59
1  
Most likely a very suitable solution, but the asker asked about grep... and it doesn't match only spaces and alphanumerics. –  markets Aug 8 '09 at 3:05
1  
Matching only spaces and alphas is trivial, I'll add something for that. As for only using grep, well, the top-ranked answer right now uses grep AND sed...at least this only uses a single process. :) –  John Zwinck Aug 8 '09 at 3:20
    
I love your answer too, as I’m also messing with sed now. Thanks for your tips! –  ngaame Aug 8 '09 at 9:56

gawk

echo "name=some value here" | awk -F"=" '/name=/ { print $2}'

or with bash

str="name=some value here"
IFS="="
set -- $str
echo $1    
unset IFS

or

str="name=some value here"
str=${str/name=/}
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grep does not extract like you expect. What you need is

grep "name=" file.txt | cut -d'=' -f1-
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grep will print the entire line where it matches the pattern. To print only the pattern matched, use the grep -o option. You'll probably also need to use sed to remove the name= part of the pattern.

grep -o 'name=[0-9a-zA-Z ]'  myfile | sed /^name=/d
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2  
Two processes for this is excessive. If you have to use sed, may as well do it with that alone. –  John Zwinck Aug 8 '09 at 3:28

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