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COMPANY_NAME=`cat file.txt | grep "company_name" | cut -d '=' -f 2` 

outputs something like this

"Abc Inc";

What I want to do is I want to remove the trailing ";" as well. How can i do that? I am a beginner to bash. Any thoughts or suggestions would be helpful.

share|improve this question
    
Same here. cat/grep = grep. – Det May 17 '13 at 22:10

14 Answers 14

up vote 21 down vote accepted

I'd use sed 's/;$//'. eg:

COMPANY_NAME=`cat file.txt | grep "company_name" | cut -d '=' -f 2 | sed 's/;$//'`
share|improve this answer
3  
Don't abuse cats. grep can actually read files, did you know? ;-) – Anony-Mousse Feb 4 '13 at 20:44
4  
@Anony-Mousse Yes, I know there are at least two ways to avoid cat here. I left in the cat in order to avoid changing the command line from the question beyond what was actually necessary to make it work. – Laurence Gonsalves Feb 4 '13 at 20:49
2  
@Anony-Mousse Not really in all cases, simply grep without cat -v will hide invisible (e.g. malicious) characters, unix.stackexchange.com/questions/202198/… – 林果皞 Jan 8 at 12:10

This will remove the last character contained in your COMPANY_NAME var regardless if it is or not a semicolon:

echo "$COMPANY_NAME" | rev | cut -c 2- | rev
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foo="hello world"
echo ${foo%?}
hello worl
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I like it. Thanks. – dentex Nov 25 '14 at 19:36
1  
THIS is the bash way, not the other piped contraptions. – MLu Sep 8 '15 at 4:36

Don't abuse cats. Did you know that grep can read files, too?

The canonical approach would be this:

grep "company_name" file.txt | cut -d '=' -f 2 | sed -e 's/;$//'

the smarter approach would use a single perl or awk statement, which can do filter and different transformations at once. For example something like this:

COMPANY_NAME=$( perl -ne '/company_name=(.*);/ && print $1' file.txt )
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2  
Why the unfair downvote? – Anony-Mousse Feb 4 '13 at 20:50

I'd use head --bytes -1, or head -c-1 for short.

COMPANY_NAME=`cat file.txt | grep "company_name" | cut -d '=' -f 2 | head --bytes -1`

head outputs only the beginning of a stream or file. Typically it counts lines, but it can be made to count characters/bytes instead. head --bytes 10 will output the first ten characters, but head --bytes -10 will output everything except the last ten.

NB: you may have issues if the final character is multi-byte, but a semi-colon isn't

I'd recommend this solution over sed or cut because

  • It's exactly what head was designed to do, thus less command-line options and an easier-to-read command
  • It saves you having to think about regular expressions, which are cool/powerful but often overkill
  • It saves your machine having to think about regular expressions, so will be imperceptibly faster
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I've tested the other suggested solution and this seems as the best one (and a simple one!) for my use case. Thanks! – yorammi Oct 16 '15 at 5:47

Using sed, if you don't know what the last character actually is:

$ grep company_name file.txt | cut -d '=' -f2 | sed 's/.$//'
"Abc Inc"
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2  
I don't think you need the \{1\} since . means a single character. – Daniel Haley May 17 '13 at 22:15
    
@DanielHaley, that's correct. Thank-you. – Det May 18 '13 at 3:20

I believe the cleanest way to strip a single character from a string with bash is:

echo ${COMPANY_NAME:: -1}

but I haven't been able to embed the grep piece within the curly braces, so your particular task becomes a two-liner:

COMPANY_NAME=$(grep "company_name" file.txt); COMPANY_NAME=${COMPANY_NAME:: -1} 

This will strip any character, semicolon or not, but can get rid of the semicolon specifically, too. To remove ALL semicolons, wherever they may fall:

echo ${COMPANY_NAME/;/}

To remove only a semicolon at the end:

echo ${COMPANY_NAME%;}

Or, to remove multiple semicolons from the end:

echo ${COMPANY_NAME%%;}

For great detail and more on this approach, The Linux Documentation Project covers a lot of ground at http://tldp.org/LDP/abs/html/string-manipulation.html

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don't have to chain so many tools. Just one awk command does the job

 COMPANY_NAME=$(awk -F"=" '/company_name/{gsub(/;$/,"",$2) ;print $2}' file.txt)
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In Bash using only one external utility:

IFS='= ' read -r discard COMPANY_NAME <<< $(grep "company_name" file.txt)
COMPANY_NAME=${COMPANY_NAME/%?}
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Assuming the quotation marks are actually part of the output, couldn't you just use the -o switch to return everything between the quote marks?

COMPANY_NAME="\"ABC Inc\";" | echo $COMPANY_NAME | grep -o "\"*.*\""
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Some refinements to answer above. To remove more than one char you add multiple question marks. For example, to remove last two chars from variable $SRC_IP_MSG, you can use:

SRC_IP_MSG=${SRC_IP_MSG%??}
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cat file.txt | grep "company_name" | cut -d '=' -f 2 | cut -d ';' -f 1
share|improve this answer
    
that was obvious!.sorry I overlooked that obvious thing. – liv2hak Feb 22 '11 at 6:48
    
as linus torvalds says, one of the most difficult things to find in a programmer is "good taste", which is difficult to define. but since you would benefit from it i will do so in this case: because of the initial cat every element of the pipeline that does real work operates on its standard input and its standard output. the benefit is that you can replace the cat with some other pipeline that produces output similar to file.txt and you don't have to change even a single character in the functional part of the pipeline. this allows drop-in pipeline reusability. – necromancer May 17 '13 at 22:26
    
@Det fyb above (forgot to tag you, just like somebody might forget to remove the input argument when composing pipelines and wonder why the output isn't as expected) – necromancer May 17 '13 at 22:29
    
@randomstring, while I don't really see this as you giving me a "piece of your mind" (I lol'd by the way) it's rather extreme reusability to preserve the use of cat just to give you the possibility of changing it to something else later on. The only thing I could see it worth for is simplicity. If a user types grep pattern file, then I'm pretty damn sure he understands it's that first part which reads the file and where he starts piping it. – Det May 18 '13 at 3:46
1  
@randomstring far from it. – Det Jun 12 '13 at 14:28

I am not finding that sed 's/;$//' works. It doesn't trim anything, though I'm wondering whether it's because the character I'm trying to trim off happens to be a "$". What does work for me is sed 's/.\{1\}$//'.

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you can strip the beginnings and ends of a string by N characters using this bash construct, as someone said already

$ fred=abcdefg.rpm
$ echo ${fred:1:-4}
bcdefg

HOWEVER, this is not supported in older versions of bash.. as I discovered just now writing a script for a Red hat EL6 install process. This is the sole reason for posting here. A hacky way to achieve this is to use sed with extended regex like this:

$ fred=abcdefg.rpm
$ echo $fred | sed -re 's/^.(.*)....$/\1/g'
bcdefg
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