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How to grep something which begins and end with a character

ABC-0
ABC-1
ABC-10
ABC-20

I wanto to grep -v for ABC-0 and ABC-1

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3 Answers 3

up vote 7 down vote accepted

It's not clear what you mean. If you want a character at the start and double digits at the end, you could use

^[A-Za-z].*\d\d$

If you only want a hyphen and then a single digit, use:

^[A-Za-z].*-\d$

If you don't care how many digits there are (one or more), but there has to be a hyphen, use:

^[A-Za-z].*-\d+$

If none of those are what you want, please give more information... the first sentence of your question doesn't really tally with the rest.

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You forgot the quantifier for [A-Za-z]. –  Gumbo Oct 2 '09 at 12:33
    
Or rather, I forgot other things after it - we don't know whether A00-10 would be acceptable. Fixed though, thanks. –  Jon Skeet Oct 2 '09 at 12:36

If you are trying to match words use \b as the word delimiter, like this:

\b[A-Za-z]-\d+\b

from this reference:

\b - Matches at the position between a word character (anything matched by \w) and a non-word character (anything matched by [^\w] or \W) as well as at the start and/or end of the string if the first and/or last characters in the string are word characters.

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2  
While you can get the PCRE behaviour in some versions of grep with "grep -P", \b is buggy and doesn't behave reliably; in particular, it doesn't detect tab as a word boundary character ('\b/www\n' broken in GNU grep 2.6.3). Had this worked, it would be the neatest answer (and I wish it did work!)! –  Brian C Oct 30 '13 at 0:43
    
Thank you for that information. –  João Portela Oct 30 '13 at 15:19

For your example

egrep -v "^(ABC)-(0|1)$"

is the answer. For the common case, please look at Jon's answer

^ marks the start of the pattern, $ the end. | means or

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