Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have sed related question:

If I run these command from a scrip:

#my.sh
PWD=bla
sed 's/xxx/'$PWD'/'
...
$ ./my.sh
xxx
bla

Which is fine.

But, if i run:

#my.sh
sed 's/xxx/'$PWD'/'
...
$ ./my.sh
$ sed: -e expression #1, char 8: Unknown option to `s'

I read in tutorials that to substitute env. variables from shell you need to stop, and 'out quote' the $varname part so that it is not substituted directly, which is what I did, and which works only if the variable is defined immediately before.

How can I get sed to recognize a $var as a env. variable as it is defined in the shell ?

share|improve this question
2  
$PWD contains a / which is ending the substitute command. –  derobert Feb 25 '09 at 6:28
    
@derobert: tnx. One of the solutions addresses this ... –  Roman M Feb 25 '09 at 6:29
1  
Use set -x in the shell to get the shell to echo each command just before it executes them. This can clear up a lot of confusion. (Also, I often use set -u to make de-referencing unset variables a hard error. (See set -e too.)) –  bobbogo Aug 15 '12 at 8:02

9 Answers 9

up vote 57 down vote accepted

Your two examples look identical, whcih makes problems hard to diagnose. Potential problems:

  1. You may need double quotes, as in sed 's/xxx/'"$PWD"'/'

  2. $PWD may contain a slash, in which case you need to find a character not contained in $PWD to use as a delimiter.

share|improve this answer
    
tnx Norman, 2. Was the problem ... I didn't realize im using '/' as the pattern deliminator and as part of the substitution string ... solved ... –  Roman M Feb 25 '09 at 6:27
    
but, then what character can i use i know for sure will not appear in a path name ? –  Roman M Feb 25 '09 at 6:42
4  
You can have several candidates like @#%! and check with a case expression to find if $PWD has them. E.g., case "$PWD" of @) ;; *) delim="@" ;; esac; repeat until $delim is not empty. –  Norman Ramsey Feb 25 '09 at 6:47
    
There's another alternative instead of using double quotes. See my answer below. –  Thales Ceolin Apr 17 at 13:22

In addition to Norman Ramsey's answer, I'd like to add that you can double-quote the entire string (which may make the statement more readable and less error prone).

So if you want to search for 'foo' and replace it with the content of $BAR, you can enclose the sed command in double-quotes.

sed 's/foo/$BAR/g'
sed "s/foo/$BAR/g"

In the first, $BAR will not expand correctly while in the second $BAR will expand correctly.

share|improve this answer
    
This is cleaner than messing with double quotes, single quotes etc. –  xeon Sep 11 at 22:54

You can use other characters besides "/" in substitution:

sed "s#$1#$2#g" -i FILE
share|improve this answer
    
Excellent worked like charm! –  Omkar Nov 11 at 10:29

With your question edit, I see your problem. Let's say the current directory is /home/yourname ... in this case, your command below:

sed 's/xxx/'$PWD'/'

will be expanded to

sed `s/xxx//home/yourname//

which is not valid. You need to put a \ character in front of each / in your $PWD if you want to do this.

share|improve this answer
    
but PWD is defined by the shell ... if i go echo $PWD i get the pwd –  Roman M Feb 25 '09 at 6:20
    
So, how do you escape the environment variables? –  einpoklum Feb 18 at 10:14
    
The selected answer describes a workaround ... don't use slash for the delimiter –  Eddie Feb 18 at 22:16
    
Which will become a problem as soon as your current working directory contains that other character. –  blubberdiblub Oct 16 at 11:22

Another easy alternative:

Since $PWD will usually contain a slash "/", use "|" instead of "/" for the sed statement:

sed -e "s|xxx|$PWD|"

share|improve this answer
    
You said "an alternative to using double quotes" and yet your example uses double quotes? –  Jeach Dec 10 at 5:59
VAR=8675309
echo "abcde:jhdfj$jhbsfiy/.hghi$jh:12345:dgve::" |\
sed 's/:[0-9]*:/:'$VAR':/1' 

where VAR contains what you want to replace the field with

share|improve this answer

Actually, the simplest thing (in gnu sed at least) is to use a different separator for the sed substitution (s) command. So instead of s/pattern/'$mypath'/ being expanded to s/pattern//my/path/ which will of course confuse the s command, use s!pattern!'$mypath'! which will be expanded to s!pattern!/my/path! I've used the bang (!) character (or use anything you like) which avoids the usual, but-by-no-means-your-only-choice forward slash as the separator.

share|improve this answer

I had similar problem, I had a list and I have to build a sql script based on template (that contained @INPUT@ as element to replace

for i in LIST

do

awk "sub(/\@INPUT\@/,\"${i}\");" template.sql >> output

done

share|improve this answer

Dealing with VARIABLES within sed

[root@gislab00207 ldom]# echo domainname: None > /tmp/1.txt

[root@gislab00207 ldom]# cat /tmp/1.txt

domainname: None

[root@gislab00207 ldom]# echo ${DOMAIN_NAME}

dcsw-79-98vm.us.oracle.com

[root@gislab00207 ldom]# cat /tmp/1.txt | sed -e 's/domainname: None/domainname: ${DOMAIN_NAME}/g'

 --- Below is the result -- very funny.

domainname: ${DOMAIN_NAME}

 --- You need to single quote your variable like this ... 

[root@gislab00207 ldom]# cat /tmp/1.txt | sed -e 's/domainname: None/domainname: '${DOMAIN_NAME}'/g'


--- The right result is below 

domainname: dcsw-79-98vm.us.oracle.com
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.