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I'm asking this as a new question because people didn't seem to understand my original question.

I can figure out how to find if a word starts with a capital and is followed by 9 letters with the code:

echo "word" | grep -Eo '^[A-Z][[:alpha:]]{8}'

So that's part 1 of what I'm supposed to do. My actual script is supposed to loop through each word in a text file that is given as the first and only argument, then check if any of those words start with a capital and are 9 letters long.

I've tried:

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

and

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

to no avail.

Although:

cat randomtext.txt 

outputs:

The loud Brown Cow jumped over the White Moon. November October tesTer Abcdefgh Abcdefgha

so it's correctly outputting all the words in the file randomtext.txt

then why wouldn't

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

work?

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cat | grep is useless, see partmaps.org/era/unix/award.html#cat (grep can access files directly) –  sputnick Oct 22 '12 at 19:41

4 Answers 4

up vote 2 down vote accepted

The problem is in the anchor. Your pattern starts with ^ which matches the beginning of a line, but the word you want to get returned is in the middle of a line. You can replace it with \b to match at a word boundary.

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yes, that's why I use printf to split each words on a newline. –  sputnick Oct 22 '12 at 19:25
    
This fixed it, thank you. Can you explain what \b does? I've never encountered it. –  Unknown Oct 22 '12 at 19:31
    

The words are all one after the other, but your grep expression refers to a whole row.

You ought to split the file into words:

sed -e 's/\s*\b\s*/\n/g' < file.txt | grep ...

Or maybe better, since you're only interested in alphanumeric sequences,

sed -e 's/\W\W*/\n/g' < file.txt | grep -E '^[A-Z][[:alpha:]]{8}$'

The $ (end of line) being made necessary because otherwise 'Supercalifragilisticexpialidocious' would match.

(I had modified {8} in {9} because you specified "and is followed by 9 letters", but then I saw you also state "and are 9 letters long")

By the way, if you use {8} and -o, you might be led into thinking a match is there where it isn't. "-o" means "only print the part matching my pattern".

So if you fed "Supercalifragilistic" to "^[A-Z][[:alpha:]]{8}", it would accept it as a match and print "Supercali". This is not what I think you asked.

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If you cat the whole line is fed to grep at once. You should split the words before feeding to grep.

You could try:

cat randomtext | awk '{ for(i=1; i <= NF; i++) {print $i } }' | grep -Eo '^[A-Z][a-z]{8}'
share|improve this answer
    
cat | awk is useless, awk can do it himself. partmaps.org/era/unix/award.html#cat –  sputnick Oct 22 '12 at 19:47
    
@sputnick I think it is quite useful that awk can react to stdin. Presumably you'd want the command to work with other sources than the example randomtext. But thanks for the award anyway! –  iwein Oct 22 '12 at 19:54

You should do this :

$ cat file.txt
The loud Brown Cow jumped over the White Moon. November October tesTer Abcdefgh Abcdefgha
$ printf '%s\n' $(<file.txt) | grep -Eo '^[A-Z][[:alpha:]]{8}$' 
Abcdefgha

If you want to work on the same source line, you need to remove the ^ character (means the beginning of the line) :

grep -Eo '\b[A-Z][[:alpha:]]{8}\b' file.txt

(added \b like choroba explains)

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1  
Probably it doesn't matter so much, but this way you're limited to $( getconf ARG_MAX ) characters in the file. Also, eleven-characters words are accepted due to the missing $. –  lserni Oct 22 '12 at 19:40
    
yes, true, I added a \b at the end too –  sputnick Oct 22 '12 at 19:44
    
...and added $ for the first solution. –  sputnick Oct 22 '12 at 19:45
    
@Iserni, you have mistaken my command behaviour, there's no limitation of ARG_MAX like you said here, see pastie.org/5100411 –  sputnick Oct 22 '12 at 21:35
    
If you want to trigger the error you expected, try doing grep -Eo $(<file.txt) file.txt> /dev/null –  sputnick Oct 22 '12 at 21:47

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