I'm trying to use

sed -i -e "s/.*seb.*/    \"$ftp_login_template\"/" $ftp_dir

however I get this error:

sed: -e expression #1, char 34: unknown option to `s'

I don't understand why since this works perfectly:

sed -i -e "s/.*wbspassword.*/    \"wbspassword\": \"$password\",/" $user_conf

Any ideas as to what I'm doing wrong?

Could this be the problem? ftp_login_template=\${user}:${password}:24:86::\/var\/lib\/clit.${user}\/downloads:\/bin\/false\"

  • 6
    The *BSD error message (including OSX) is "bad flag in substitute command:" -- including it here to make this somewhat more googlable. – tripleee Oct 20 '15 at 8:35
up vote 241 down vote accepted

The problem is with slashes: your variable contains them and the final command will be something like sed "s/string/path/to/something/g", containing way too many slashes.

Since sed can take any char as delimiter, you can try using another one that doesn't appear in your replacement string:

replacement="/my/path"
sed -e "s@pattern@$replacement@"

Note that this is not bullet proof: if the replacement string later contains @ it will break for the same reason, and any backslash sequences like \1 will still be interpreted according to sed rules.

  • 30
    Just a note to help future users, as I found this answer helpful, as well. The original poster most likely had something in his replacement (most likely hidden in the variable) that contained forward slashes. After the first one of those slashes was encountered, sed considered the replacement terminated, and whatever came next as an option (such as g). – Brian Warshaw Feb 21 '14 at 14:05
  • Ahh yes, after looking 10 times i see the slash. So how do i fix that then? – ppumkin Oct 31 '14 at 22:00
  • 3
    Nicely done (Just remember to wrap variable expressions with " not ' otherwise you'll get a lot of $content in your end result instead of the content of $content :) ) – user257319 Jan 8 '16 at 13:41
  • 1
    @AbstractDissonance Maybe if you are replacing a password or something weird or random you still have @ in it. You must find a delimiter which is not contained in your substitution string. – Xavi Montero Apr 6 '17 at 11:09
  • 2
    @ppumkin just replace "forward slash" delimiters like i.e.: sed -i "s/../../g" with different character i.e: sed -i "s@...@...@g", then the problem of multiple slashes should disappear. And if you use " instead of ' it should also works well with variables inside, i.e.: export var1=bar; sed -i "s@foo@${var1}@g". More info you can find into awesome sed documentation: grymoire.com/Unix/Sed.html – Egel Jun 28 '17 at 15:45

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