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I have a string which i need to insert at a specific position in a file :

The file contains multiple semicolons(;) i need to insert the string just before the last ";"

Is this possible with SED ?

Please do post the explanation with the command as I am new to shell scripting

before :

adad;sfs;sdfsf;fsdfs

string = jjjjj

after

adad;sfs;sdfsf jjjjj;fsdfs

Thanks in advance

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Yes, it's possible. Please edit the post with a short example of your file, before and after the substitution. –  Lev Levitsky May 17 '12 at 13:28

6 Answers 6

up vote 2 down vote accepted

This might work for you:

echo 'adad;sfs;sdfsf;fsdfs'| sed 's/\(.*\);/\1 jjjjj;/'
adad;sfs;sdfsf jjjjj;fsdfs

The \(.*\) is greedy and swallows the whole line, the ; makes the regexp backtrack to the last ;. The \(.*\) make s a back reference \1. Put all together in the RHS of the s command means insert jjjjj before the last ;.

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+1 - simplest command –  Dennis Williamson May 18 '12 at 1:05
    
@potong thanks a lot –  nav_jan May 18 '12 at 8:10
    
Note, that this will insert the string before the last semicolon in any line containing as least one semicolon. This is not exactly insertig before the last semicolon of the file as specified in the question. –  sg-lecram Sep 4 '13 at 5:36
    
@sg-lecram if the insert is for the very last ; use: sed ':a;$!{N;ba}; s/\(.*\);/\1 jjjjj;/' file –  potong Sep 4 '13 at 13:58
    
@potong: I am no sed expert. Does this read the whole file into memory (by using the N command) or is this still applicable to large files? You could at least drop everything before the second last semicolon, if there is one. It's not important I am just asking out of couriosity to lern more about the power of sed. :-) –  sg-lecram Sep 4 '13 at 14:03
sed 's/\([^;]*\)\(;[^;]*;$\)/\1jjjjj\2/' filename

(substitute jjjjj with what you need to insert).

Example:

$ echo 'adad;sfs;sdfsf;fsdfs;' | sed 's/\([^;]*\)\(;[^;]*;$\)/\1jjjjj\2/'
adad;sfs;sdfsfjjjjj;fsdfs;

Explanation:

sed finds the following pattern: \([^;]*\)\(;[^;]*;$\). Escaped round brackets (\(, \)) form numbered groups so we can refer to them later as \1 and \2.

[^;]* is "everything but ;, repeated any number of times.

$ means end of the line.

Then it changes it to \1jjjjj\2.

\1 and \2 are groups matched in first and second round brackets.

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Actually, sputnick's answer is better. Simpler is better :) Works the same way, though. –  Lev Levitsky May 17 '12 at 13:53
    
I shortened said answer even further. –  sg-lecram Sep 4 '13 at 5:50

For now, the shorter solution using sed : =)

sed -r 's@;([^;]+);$@; jjjjj;\1@' <<< 'adad;sfs;sdfsf;fsdfs;'
  • -r option stands for extented Regexp
  • @ is the delimiter, the known / separator can be substituted to any other character
  • we match what's finishing by anything that's not a ; with the ; final one, $ mean end of the line
  • the last part from my explanation is captured with ()
  • finally, we substitute the matching part by adding "; jjjj" ans concatenate it with the captured part

Edit: POSIX version (more portable) :

echo 'adad;sfs;sdfsf;fsdfs;' | sed 's@;\([^;]\+\);$@; jjjjj;\1@'
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Note that -r is a non-standard GNU sed option. It is better to go for a POSIX sed solution, which is easy to do in this case. –  Jens May 17 '12 at 14:00
    
Ok, a POSIX solution was added to my POST –  sputnick May 17 '12 at 14:07
    
The poster removed the ";" at the EOL of his sample input. –  Jens May 17 '12 at 15:54
    
You can shorten this using the & operator (referencing the whole match): sed 's@;[^;]*$@; jjjjj&' <<< 'adad;sfs;sdfsf;fsdfs'. This is also POSIX compliant since you do not need the grouping anymore. –  sg-lecram Sep 4 '13 at 5:48
echo 'adad;sfs;sdfsf;fsdfs;' | sed -r 's/(.*);(.*);/\1 jjjj;\2;/'

You don't need the negation of ; because sed is by default greedy, and will pick as much characters as it can.

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sed -e 's/\(;[^;]*\)$/ jjjj\1/'

Inserts jjjj before the part where a semicolon is followed by any number of non-semicolons ([^;]*) at the end of the line $. \1 is called a backreference and contains the characters matched between \( and \).

UPDATE: Since the sample input has no longer a ";" at the end.

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Note that & is a backreference to the whole match: sed 's/;[^;]*$/ jjjjj&/' –  sg-lecram Sep 4 '13 at 5:54

Something like this may work for you:

echo "adad;sfs;sdfsf;fsdfs"| awk 'BEGIN{FS=OFS=";"} {$(NF-1)=$(NF-1) " jjjjj"; print}'

OUTPUT:

adad;sfs;sdfsf jjjjj;fsdfs

Explanation: awk starts with setting FS (field separator) and OFS (output field separator) as semi colon ;. NF in awk stands for number of fields. $(NF-1) thus means last-1 field. In this awk command {$(NF-1)=$(NF-1) " jjjjj" I am just appending jjjjj to last-1 field.

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i want output as foo;bar;baz lol;wow see example added now –  nav_jan May 17 '12 at 13:37
    
also some explanation of above command will help .. thanks –  nav_jan May 17 '12 at 13:38
    
@Jens check the edited answer now. Please keep in mind that I provided my answer before example added by OP. And my edit is a minor update of my original answer. –  anubhava May 17 '12 at 14:18
    
@user1271244: Explanation added, pls check. –  anubhava May 17 '12 at 20:30

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