Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've to apply the Unix command sed on a string (can contain #, !, /, ?, &, @ and all other caracters) which can contains all types of character (&, |, !, /, ? ...)

Is it a complex delimiter (with two caracters ?) which can permits to outpass the error :

sed: -e expression #1, char 22: unknown option to `s'

Thanks in advance

share|improve this question
    
At the very least, show us the string you're giving to sed that causes the error. –  Jerry Coffin Jan 30 '11 at 19:14
    
The strings passed at sed can contain #, !, /, ?, &, @ and all other caracters –  tknew Jan 30 '11 at 19:20

6 Answers 6

up vote 1 down vote accepted

There is no such option for multi-character expression delimiters in sed, but I doubt you need that. The delimiter character should not occur in the pattern, but if it appears in the string being processed, it's not a problem. And unless you're doing something extremely weird, there will always be some character that doesn't appear in your search pattern that can serve as a delimiter.

share|improve this answer
    
I'm doing something extremely weird, yes. I'm testing all type of caracters. –  tknew Jan 30 '11 at 19:22
    
@tknew: Only Perl but not sed offers matches that are independent of a delimiter. Since Perl is a proper superset of sed, this may suffice. –  tchrist Jan 30 '11 at 19:33
    
I ran into this problem the other day, and I don't think what I'm doing is extremely weird: I was trying to delete a line containing an arbitrary string $STR, e.g. sed -i -e '/'"$STR"'/d' $FILE. Or is there a better idiom for the above? –  Leo Alekseyev Feb 11 '11 at 6:30

The characters in the input file are of no concern - sed parses them fine. There may be an issue, however, if you have most of the common characters in your pattern - or if your pattern may not be known beforehand.

At least on GNU sed, you can use a non-printable character that is highly improbable to exist in your pattern as a delimiter. For example, if your shell is Bash:

$ echo '|||' | sed s$'\001''|'$'\001''/'$'\001''g'

In this example, Bash replaces $'\001' with the character that has the octal value 001 - in ASCII it's the SOH character (start of heading).

Since such characters are control/non-printable characters, it's doubtful that they will exist in the pattern. Unless, that is, you are doing something weird like modifying binary files - or Unicode files without the proper locale settings.

share|improve this answer
    
Non printable caracters can appears in the search-pattern, but thank for the tip –  tknew Jan 30 '11 at 19:29
    
“Highly improbable” isn’t the same as impossible. You cannot do matches in sed without some delimiter, which will always cause a problem if that delimiter is in the pattern. In Perl, though, you can. –  tchrist Jan 30 '11 at 19:34

You need the nested delimiter facility that Perl offers. That allows to use stuff like matching, substituting, and transliterating without worrying about the delimiter being included in your contents. Since perl is a superset of sed, you should be able to use it for whatever you’re used sed for.

Consider this:

$ perl -nle 'print if /something/' inputs

Now if your something contains a slash, you have a problem. The way to fix this is to change delimiter, preferably to a bracketing one. So for example, you could having anything you like in the $WHATEVER shell variable (provided the backets are balanced), which gets interpolated by the shell before Perl is even called here:

 $ perl -nle "print if m($WHATEVER)" /usr/share/dict/words

That works even if you have correctly nested parens in $WHATEVER. The four bracketing pairs which correctly nest like this in Perl are < >, ( ), [ ], and { }. They allow arbitrary contents that include the delimiter if that delimiter is balanced.

If it is not balanced, then do not use a delimiter at all. If the pattern is in a Perl variable, you don’t need to use the match operator provided you use the =~ operator, so:

$whatever = "some arbitrary string ( / # [ etc";
if ($line =~ $whatever) { ... }
share|improve this answer

Another way to do this is to use Shell Parameter Substitution.

${parameter/pattern/replace}  # substitute replace for pattern once

or

${parameter//pattern/replace}  # substitute replace for pattern everywhere

Here is a quite complex example that is difficult with sed:

$ parameter="Common sed delimiters: [sed-del]"
$ pattern="\[sed-del\]"
$ replace="[/_%:\\@]"
$ echo "${parameter//$pattern/replace}"

result is:

Common sed delimiters: [/_%:\@]

However: This only work with bash parameters and not files where sed excel.

share|improve this answer

With the help of Jim Lewis, I finally did a test before using sed :

if [ `echo $1 | grep '|'` ]; then
    grep ".*$1.*:" $DB_FILE  | sed "s@^.*$1*.*\(:\)@@ "
else
    grep ".*$1.*:" $DB_FILE  | sed "s|^.*$1*.*\(:\)|| "
fi

Thanks for help

share|improve this answer
    
Yeah I was gonna post a solution that does logic of this sort: basically, you could make a loop over all characters that will semi-exhaustively determine the first character not present in your proposed search string, so then the only case it would fail is if your search string contained all possible characters, which is a pretty absurd situation. –  Steven Lu Feb 6 '13 at 4:58

Wow. I totally did not know that you could use any character as a delimiter. At least half the time I use the sed and BREs its on paths, code snippets, junk characters, things like that. I end up with a bunch of horribly unreadable escapes which I'm not even sure won't die on some combination I didn't think of. But if you can exclude just some character class (or just one character even)

echo '#01Y $#1+!' | sed -e 'sa$#1+ashita' -e 'su#01YuHolyug'

> > > Holy shit! That's so much easier.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.