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When I run the command

sed -e "s/$1/@root@The-Three-Little-Pigs-Siri-Proxy/" -i gen_certs.sh

I Get the following error. I am trying to replace the text $1 with the other below in the same file, not creating a new one just modifying the current one.

sed: -e expression #1, char 0: no previous regular expression

Any ideas what could be causing the error and how to fix it?

OS: Ubuntu 10.10 32 bit

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-i specifies the suffix for in-place-editing. –  user647772 Mar 1 '12 at 12:49
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try escaping the dollar sign: \$1 –  Alex Mar 1 '12 at 12:51
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2 Answers

$1 will expand to a null-string('') if it's in double-qouted string.
You can use single quote to keep the literal value of$1:

sed -e 's/$1/@root@The-Three-Little-Pigs-Siri-Proxy/' -i gen_certs.sh
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Overall this worked, thanks for that. Though it replaces it with @root@The-Three-Little-Pigs-Siri-Proxy , I thought @ was supposed to be a replacement for the / –  awmusic12635 Mar 1 '12 at 13:28
    
@awmusic12635, no, @ won't magically change into /. you can use different delimiters for the s/// command though: sed -e 's!$1!/root/The...!' -i gen_certs.sh –  glenn jackman Mar 1 '12 at 14:20
    
Thanks I will give it a try –  awmusic12635 Mar 1 '12 at 15:04
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You need to escape the pattern: sed -e "s/\$1/@root@The-Three-Little-Pigs-Siri-Proxy/" -i gen_certs.sh, since $1 denotes a back reference in sed (presuming you want to replace the string $1 in your input, right?)

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Yes I want to replace the string $1 since I'm not using it as a variable –  awmusic12635 Mar 1 '12 at 12:56
    
I think you may be confusing perl with sed. \1 denotes a back reference in sed. If it were a back reference it would need to be defined by a grouping e.g. \(.\) beforehand. As the sed commands are double quoted the shell interprets $1 and returns nothing and hence sed sees // an empty regexp. Unless there is a previous regexp this will fail. –  potong Mar 1 '12 at 13:11
    
@potong Right you are! Of course, it was a shell expansion. Got confused, sorry. –  Alexander Pavlov Mar 1 '12 at 13:23
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