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I want to edit a string that I get using regular expression in linux shell but I failed.

the thing I want to do is at the start of the string to change repeatedlly occurrence of "00" to "1"

let say : 00000120001 to 110100001 but I failed to that.

I tried:

echo 00000120001 | sed 's/^\`\<00/1/g' 

but got 1000120001

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3 Answers 3

up vote 1 down vote accepted

Not sure you can do it with a single regex; I have a solution with juggling with the hold and pattern spaces of sed.

In one line:

sed 'h;s/[^0].*//;s/00/1/g;x;s/^0*//;x;G;s/\n//' <<< '00000120001'

With details:

sed 'h          # copy input line to hold space
     s/[^0].*// # keep only 00..0 preffix in pattern space
     s/00/1/g   # replace double 0s by 1s in pattern space
     x          # swap hold and pattern spaces (hold is now 110, pattern 00000120001
     s/^0*//    # remove 00..0 prefix from pattern space
     x          # swap hold and pattern spaces (hold is now 120001, pattern 110
     G          # append hold space to pattern space (pattern is 110\n120001)
     s/\n//'    # remove \n from pattern
<<< '00000120001'
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1  
it's work great but I had to change it to: echo 00000120001 | sed 'h;s/1.*//;s/00/1/g;x;s/^0*//;x;G;s/\n//' –  Gil Matzov Jun 9 at 13:59
    
The <<< syntax works for bash shell. When using it I forgot you add a csh tag on your question. My bad. –  Qeole Jun 9 at 14:06

with a Perl command line:

echo 00000120001 | perl -pe 's/(?|^(.)|\G(?<=(.))\1)\1/1/g'

For zero only:

echo 00000120001 | perl -pe 's/\G00/1/g'
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Using gnu awk you can do:

echo '00000120001' | awk '$0==""{printf "1"} $0 && !index($0, "\n")
          {p=1; printf $0 RS; next} $0{printf $0}' RS='00'
110120001
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