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I'm trying to write a script with a file as an argument that greps the text file to find any word that starts with a capital and has 8 letters following it. I'm bad with syntax so I'll show you my code, I'm sure it's an easy fix.

grep -o '[A-Z][^ ]*' $1

I'm not sure how to specify that:

a) it starts with a capital letter, and

b)that it's a 9 letter word.

Cheers

EDIT:

As an edit I'd like to add my new code:

while read p
do
echo $p | grep -Eo '^[A-Z][[:alpha:]]{8}'
done < $1

I still can't get it to work, any help on my new code?

share|improve this question
up vote 2 down vote accepted

'[A-Z][^ ]*' will match one character between A and Z, followed by zero or more non-space characters. So it would match any A-Z character on its own.

Use \b to indicate a word boundary, and a quantifier inside braces, for example:

grep '\b[A-Z][a-z]\{8\}\b'

If you just did grep '[A-Z][a-z]\{8\}' that would match (for example) "aaaaHellosailor".

I use \{8\}, the braces need to be escaped unless you use grep -E, also known as egrep, which uses Extended Regular Expressions. Vanilla grep, that you are using, uses Basic Regular Expressions. Also note that \b is not part of the standard, but commonly supported.

If you use ^ at the beginning and $ at the end then it will not find "Wiltshire" in "A Wiltshire pig makes great sausages", it will only find lines which just consist of a 9 character pronoun and nothing else.

share|improve this answer
    
+1 for word boundaries to find 9 letter words – glenn jackman Oct 22 '12 at 21:10

This works for me:

$ echo "one-Abcdefgh.foo" | grep -o -E '[A-Z][[:alpha:]]{8}'
$ echo "one-Abcdefghi.foo" | grep -o -E '[A-Z][[:alpha:]]{8}'
Abcdefghi
$ 

Note that this doesn't handle extensions or prefixes. If you want to FORCE the input to be a 9-letter capitalized word, we need to be more explicit:

$ echo "one-Abcdefghij.foo" | grep -o -E '\b[A-Z][[:alpha:]]{8}\b'
$ echo "Abcdefghij" | grep -o -E '\b[A-Z][[:alpha:]]{8}\b'
$ echo "Abcdefghi" | grep -o -E '\b[A-Z][[:alpha:]]{8}\b'
Abcdefghi
$ 
share|improve this answer
    
Why do you have the $ after {8}? – Unknown Oct 22 '12 at 18:03
    
Also, right now I'm trying grep -o -E '^[A-Z][[:alpha:]]{8}$' and I'm not getting anything, do I have to pipe into grep? – Unknown Oct 22 '12 at 18:08
    
^ and $ are not the right anchors to use -- use \< and \> or \b and \b to denote the boundaries of a word – glenn jackman Oct 22 '12 at 21:12
    
@glennjackman, thanks, updated. – Graham Oct 23 '12 at 11:46
    
@BernieMacinflor - you probably already figured out that I originally had an error in my answer, which is now corrected thanks to Glenn's suggestion. As you know, grep's -o option tells it to print only the portion of the input that is described by the regex. By putting word boundaries around the regex (\b), we ensure that we won't match strings like "ABcdefghijk" simply because the valid match ("Bcdefghij") is inside it. – Graham Oct 24 '12 at 4:07

I have a test file named 'testfile' with the following content:

Aabcdefgh
Babcdefgh
cabcdefgh
eabcd

Now you can use the following command to grep in this file:

grep -Eo '^[A-Z][[:alpha:]]{8}' testfile

The code above is equal to:

cat testfile | grep -Eo '^[A-Z][[:alpha:]]{8}'

This matches

Aabcdefgh
Babcdefgh
share|improve this answer
    
this refuses to work with my testfile Randomtext.txt. It contains: The loud Brown Cow jumped over the White Moon. November October tesTer Abcdefgh Abcdefgha . My code is the exact same as yours but with Randomtext.txt after it. – Unknown Oct 22 '12 at 18:33
    
Can you edit you question with the test file so we can see where the line breaks are please? – cdarke Oct 22 '12 at 19:10

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