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Let A,B,C,D are the words

Input File :

..
A/B/C/D 
W/B/C/Z 
L/B/C/O   
..

Output file:

..
A/B/C/A
W/B/C/W 
L/B/C/L 
..

Replace the word D with word A one the same line, only if /B/C/ delimiter present in the line and like wise for the other lines

Any sed/awk/perl oneliner to accomplish that

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6 Answers 6

up vote 2 down vote accepted

You can do:

sed -re 's/^([^/]*)(\/B\/C\/)([^/]*)$/\1\2\1/' file

Demo:

$ cat file
A/B/C/D
W/B/C/Z
L/B/C/O

$ sed -re 's/^([^/]*)(\/B\/C\/)([^/]*)$/\1\2\1/' file
A/B/C/A
W/B/C/W
L/B/C/L
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Thanks for the answer!! but sorry, my question misguides you! can u please check the question again!! –  user1228191 Apr 24 '12 at 9:48
    
@user1228191: I've changed the answer. –  codaddict Apr 24 '12 at 9:58
    
Perfect!! Thank again :) –  user1228191 Apr 24 '12 at 10:06

This is a awk solution:

awk -F/ -v OFS=/ '$2=="B" && $3=="C" {$4=$1}1' input.txt
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pearl.306> echo "A/B/C/D"|awk '{split($0,a,"/");print a[1]"/"a[2]"/"a[3]"/"a[1]}'
A/B/C/A
pearl.307> 

another way is:

pearl.309> echo "A/B/C/D" | awk -F"/" '{OFS="/"}{$NF=$1;print}'
A/B/C/A
pearl.310> 

pearl.318> cat file1
A/B/C/D
W/B/C/Z
L/B/C/O
pearl.319> awk -F"/" '{OFS="/"}{$NF=$1;print}' file1
A/B/C/A
W/B/C/W
L/B/C/L
pearl.320> 
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Can we perform this action onthe total file with a delimiter! can you please check my question again –  user1228191 Apr 24 '12 at 9:52
    
Yes ofcourse..see my edit –  Vijay Apr 24 '12 at 10:02

This might work for you:

sed 's|^\(\(.\)/B/C/\).|\1\2|' file

if A/B/C/D are real words e.g. wordA/wordB/wordC/wordD, then:

sed 's/|^\(\([^/]*\)/wordB/wordC/\).*|\1\2|' file    
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This should do the trick. perl -p -e 's/D/A/g'

In sed sed -e 's/D/A/'

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2  
perl -p -e 's#^(\w+)(/B/C/)\w+\s*$#\1\2\1#' –  tuxuday Apr 24 '12 at 9:52
 perl -pe 's#(/B/C/)(.*)#$1$`#' file

this should work +

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