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I want to replace a pattern by using sed command. I have a file with below data.

50%%R39%35%R43%-35%R4Z%10%RRN%1110%R0M%-950

Now I need to replace the pattern %RRN%<something>% with %RRN%0%. output should be like this.

50%%R39%35%R43%-35%R4Z%10%RRN%0%R0M%-950

For this I have used below command

sed 's/%RRN%\(.*\)%/%RRN%0%/g' 

But I didn't get the correct output. It is coming as below.

50%R39%35%R43%-35%R4Z%10%RRN%0%-950

Please help me on this

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up vote 0 down vote accepted

Better solution would be use [^%]\+ in place of .*

sed 's/%RRN%\([^%]\+\)%/%RRN%0%/g'

Output:

50%%R39%35%R43%-35%R4Z%10%RRN%0%R0M%-950
share|improve this answer
    
Sorry Jkshah, I have edited the question...Output should be like below 50%%R39%35%R43%-35%R4Z%10%RRN%0%R0M%-950 – vishal Oct 4 '13 at 6:38
    
@vishal oops! Check the edit in ans. – jkshah Oct 4 '13 at 6:43
    
I want the new pattern with %RRN%0% whereas, in your output it is coming as same %RRN%1110% – vishal Oct 4 '13 at 6:46
    
@vishal Did you check with my edited regex? I have updated regex as well as output – jkshah Oct 4 '13 at 6:47
    
Yeah..It is working fine..thanks a lot... – vishal Oct 4 '13 at 6:56

If you like to try with awk, you can do:

echo '50%%R39%35%R43%-35%R4Z%10%RRN%1110%R0M%-950' | awk '{sub(/%RRN%[^%]*%/,"%RRN%0%")}1'
50%%R39%35%R43%-35%R4Z%10%RRN%0%R0M%-950
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perl -pe '$a="0%";s/(%RRN%)[^%]*%/$1$a/g'
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