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I have a string that i am want to remove punctuation from.

I started with

sed 's/[[:punct:]]/ /g'

But i had problems on HP-UX not liking that all the time, and some times i would get a 0 and anything after a $ in my string would dissappear. So i decided to try to do it manually.

I have the following code which works on all my punctuation that I am interested in, except I cannot seem to add square brackets "[]" to my sed with anything else, otherwise it does not replace anything, and i dont get an error, so I am not sure what to fix.

Anyways this is what i currently have and would like to add [] to.

sed 's/[-=+|~!@#\$%^&*(){}:;'\'''\"''\`''\.''\/''\\']/ /g'

BTW I am using KSH on Solaris, Redhat & HP

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Is the semi-colon in your :punct; a typo? –  William Pursell Aug 30 '12 at 19:25
1  
Why are you using sed for this? To replace a large group of characters with a space, it is better to use tr. –  William Pursell Aug 30 '12 at 19:26
    
@Will - yes that is a typo....i cant seem to edit my OP. How would i use tr to replace my punctuation with spaces? I tried using the [:punct:] with both TR and SED to no avail. –  nitrobass24 Aug 30 '12 at 19:42

3 Answers 3

You need to place the brackets early in the expression:

sed 's/[][=+...-]/ /g'

By placing the ']' as the first character immediately after the opening bracket, it is interpreted as a member of the character set rather than a closing bracket. Placing a '[' anywhere inside the brackets makes it a member of the set.

For this particular character set, you also need to deal with - specially, since you are not trying to build a range of characters between [ and =. So put the - at the end of the class.

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Yea..that is what i was originally thinking, but when i did that I always recieved an invalid range end error echo word1$word2 | sed 's/[]-=+|~!@#\$%^&*(){}:;'\'''\"''`''\.''\/''\\'[]/ /g' sed: -e expression #1, char 36: Invalid range end –  nitrobass24 Aug 30 '12 at 19:40
    
The 'invalid range' is because of the -. When - appears in the middle, sed is trying to create a range of characters. Use \- instead. –  William Pursell Aug 30 '12 at 20:20
    
The - must be the in first character position in the character class to represent a dash otherwise it may be interpreted as a character class metacharacter that indicates a range of characters. –  potong Aug 30 '12 at 20:23
    
@potong, - can also be the last character of the set. –  glenn jackman Aug 30 '12 at 22:14
    
thanks for the tips...I posted my final result as an answer below...I had to move the = as well to the end of the regex for it to work. –  nitrobass24 Sep 4 '12 at 15:15

You can also specify the characters you want to keep [with inversion]:

sed 's/[^a-zA-Z0-9]/ /g'
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Thats something I did not even realize was possible. Seems to work pretty good, except for when there is a "$" in my string...anything after the "$" is removed. I tried echo word1$word2 | sed 's/[^a-zA-Z0-9]/ /g' and my output was word1 –  nitrobass24 Aug 30 '12 at 19:56
2  
it is the shell interpreting $word2 as a variable, try echo 'word1$word2' or echo word1\$word2 –  perreal Aug 30 '12 at 19:58
    
What I ended up doing eventually was saving my string as a variable...then passing the variable inside double quotes. echo "$string" | sed 's/[^a-zA-Z0-9]/ /g' –  nitrobass24 Sep 20 '12 at 4:08
up vote 1 down vote accepted

Here is the final code I ended up with

`echo "$string" | sed 's/[^a-zA-Z0-9]/ /g'`

I had to put = and - at the very end.

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