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New to sed and could use some help. I would like to turn this "a/b/c a/b/c" into this "a/b/c a-b-c". where a/b/c is any path.

thanks

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You may confirm Dennis solution, which will donate him some points, and mark your problem as solved (instead of, or additional to your thanks in prosa). –  user unknown May 8 '10 at 14:51

4 Answers 4

up vote 1 down vote accepted

Give this a try:

sed 'h; s/ .*//; x; s/.* //; s:/:-:g; x; G; s/\n/ /'
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Perfect, thanks much! –  BobBobBob May 7 '10 at 22:24
    
@BobBobBob: I'm glad you found it acceptable. ;-) –  Dennis Williamson May 7 '10 at 23:44

Since you want to use whitespace to delemit, I'd just use perl:

perl -ane '$F[1] =~ s/\//-/; print "@F\n"'
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Thanks for your reply after a space defines the second part of the line I tried your first suggestion, but it did not work for me echo "a/b/c a/b/c"|sed 's@( .*)-@\1/@g' a/b/c a/b/c –  BobBobBob May 7 '10 at 16:33
    
Sorry, not sure what happened when I pasted in the first pattern; it's obviously completely wrong. But the perl one's way more robust if you want to use whitespace to delimit. –  Jefromi May 7 '10 at 16:38

you can use awk,

$ echo "a/b/c a/b/c" | awk '{gsub("/","-",$NF)}1'
a/b/c a-b-c
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This might work:

echo "a/b/c a/b/c" | sed ':a;s|\(.* [^/]*\)/|\1-|;ta'
a/b/c a-b-c

Or this:

echo "a/b/c a/b/c" | sed 's/.* //;h;y/\//-/;x;G;y/\n/ /'
a/b/c a-b-c
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