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I have a file which contains about 30000 Records delimited by '|'. I need to get a distinct list of special characters only from the file.

For Eg: 123|fasdf|%df&|pap,came|! 234|%^&asdf|34|'":|

My output should be: |%&,!^'":

Any help would be greatly appreciated. Thanks, Velraj.

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1  
What is your definition 'special' character? –  ArjunShankar Feb 24 '12 at 15:17

2 Answers 2

grep -o '[|%&,!^":]' input | sort -u

You have to list all your special characters inside brackets.

This will return each unique special character on its own line. If you really need a string with these characters you have to remove newlines afterwards, e.g.:

grep -o '[|%&,!^":]' input | sort -u | tr -d '\n'

UPDATE:

If you need to remove all characters which are not from 'a-zA-Z0-9' set then you can use this one:

grep -o '[^a-zA-Z0-9]' input | sort -u | tr -d '\n'
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Thanks for the reply. I will not know what all the special characters i will get in the file. I just wanted to print all the characters other than 0-9, a-z and A-Z. –  user1231034 Feb 24 '12 at 15:22
    
Updated my answer –  dying_sphynx Feb 24 '12 at 15:25
    
Thanks a lot. It really worked.. :) –  user1231034 Feb 24 '12 at 15:36
    
Glad to help! Please, do not forget to accept the answer ;) –  dying_sphynx Feb 24 '12 at 15:37
 echo "123|fasdf|%df&|pap,came|! 234|%^&asdf|34|'\":|" \
 | { tr -d '[[:alnum:]]'; printf "\n"; } \
 | sed 's/\(.\)/\1_/g' \
 | awk -v 'RS=_' '{print $0}' \
 | sort -u \
 | awk '{printf $0}END{printf "\n"}'

output

!"%&',:^||

You can replace the first line echo .... with cat fileName

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Your output is not distinct (two vertical bars), but OT wanted it to be distinct I suppose. –  dying_sphynx Feb 24 '12 at 15:28
    
@dying_sphynx : I keep forgetting that print in the END will print the last $0. I've fixed my solution, thanks for your feedback and good luck. –  shellter Feb 25 '12 at 21:35

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