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I want to replace

# Bulk Delete #

with

=== Bulk Delete ===

I am using the following sed command.

sed "s/#\([^#]*\)#/===\1===/g" filename

It works, but it also replaces

### Translation

with

======# Translation

How to prevent it and make it work in both mac and ubuntu?

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2 Answers 2

up vote 0 down vote accepted

You could use + to enforce at least one character which is not a #

Since the sed in OSX does not support the enhanced regular expression syntax like + by default, you need to pass the -E flag to sed. And the good news is -E flag works well on *nix systems too. When using the -E flag, you can skip escaping the special regex characters like +, (, etc.

sed -E "s/#([^#]+)#/===\1===/g" filename
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@JonathanLeffler - updated the answer. Try with the -E -e flag, should work on both OSX and *nix –  Tuxdude Mar 8 '13 at 6:30
    
The -e option universally (meaning all versions of sed) specifies that the next argument is part of the script; you can specify it multiple times to build up a complex script. On Mac OS X, you can use the -E option to invoke 'extended regular expressions', but then you don't need the backslashes: sed -E -e 's/#([^#]+#/===\1===/g'. –  Jonathan Leffler Mar 8 '13 at 6:31
    
Yes you're right about, -e which was optional. Should have mentioned that. –  Tuxdude Mar 8 '13 at 6:32
    
OK—we're in agreement on Mac. I'm not sure about elsewhere. According to its help message, GNU sed (4.4.2) uses the -r option to invoke extended regular expressions. However, it seems to support -E as an undocumented synonym for -r. –  Jonathan Leffler Mar 8 '13 at 6:33
    
I tried it on my Linux box with GNU sed version 4.2.1 and it seems to be happy with -E. And yes you're right -r seems to be the option documented in the man page and I do not see -E. I'm not sure if the man page on my system is outdated. –  Tuxdude Mar 8 '13 at 6:33

The easiest way is to match the blanks too:

sed 's/# \([^#]*\) #/=== \1 ===/g' filename

Another way is to require multiple (one or more) non-hashes between the two hashes:

sed 's/#\([^#]\{1,\}\)#/===\1===/g' filename

The \{n,m\} is a quantifier notation that requires at least n occurrences and at most m occurrences of the pattern immediately before it, so it is generalization of the ?, * and + metacharacters (which can be represented by \{0,1\}, \{0,\}, and \{1,\} respectively). If m is missing, it means any number not smaller than n; if n is missing, it means any number not larger than m, and so is equivalent to 0. In my example, I'm using it as the classic, portable (to prehistoric versions of sed off Linux and Mac OS X) version of +.

Another way of writing that is:

sed 's/#\([^#][^#]*\)#/===\1===/g' filename

And you can combine the ideas, of course:

sed 's/# \([^#][^#]*\) #/=== \1 ===/g' filename
sed 's/# \([^#]\{1,\}\) #/=== \1 ===/g' filename
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Can you kindly explain 's/#\([^#]\{1,\}\)#/===\1===/g' a bit more, or point me to some documentation? I am slightly confused. –  Sudar Mar 8 '13 at 6:44
    
Thank you for the explanation –  Sudar Mar 8 '13 at 6:56

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