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I want to parse words from a text file. Apostrophes should be preserved, but single quotes should be removed. Here is some test data:

john's apostrophe is a 'challenge'

I am experimenting with grep as follows:

grep -o "[a-z'A-Z]*" file.txt

and it produces:

john's
apostrophe
is
a
'challenge'

Need to get rid of those quotes around the word challenge.

The correct/desired output should be:

john's
apostrophe
is
a
challenge

EDIT: As the consensus seems to be that apostrophes are problematic to recognize, I am now seeking a way to strip any kind of apostrophe (leading, trailing, embedded) out of all words. The words are to be added to a vocabulary index. The phrase searching should also strip out apostrophes. This may need another question.

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2 Answers 2

up vote 4 down vote accepted

Here's a simpler grep-only approach:

grep -E -o "[a-zA-Z]([a-z'A-Z]*[a-zA-Z])?" file.txt

which in Java is:

Pattern.compile("[a-zA-Z]([a-z'A-Z]*[a-zA-Z])?")

(Both of those mean "an ASCII letter, optionally followed by a mixture of ASCII letters and/or apostrophes and an ASCII letter". The idea being that the matched substring has to start with a letter and end with a letter, but if it's more than two characters long, then it can contain apostrophes.)

To accept non-ASCII letters, the Java could be written as:

Pattern.compile("\\p{L}([\\p{L}']*\\p{L})?")

Edit for updated question (stripping out apostrophes): I don't think you can do that with just grep; but expanding our repertoire a bit, you can write:

tr -d "'" file.txt | grep -E -o "[a-zA-Z]+"

or in Java:

String apostrippedStr = str.replace("'", "");

Pattern.compile("[a-zA-Z]+") // or "\\p{L}+" for non-ASCII support
// ... apply pattern to apostrippedStr
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Er no. A letter would be \pL. –  tchrist Mar 21 '12 at 21:01
    
@tchrist: Perl has spoiled you; EREs don't have \p (though Java does). But I take your point. The OP was using A-Z and a-z, so I'll edit my answer to specify "ASCII letter". –  ruakh Mar 21 '12 at 21:04
    
Yeah, yeah. I never use the system grep; I have my own, you know. The Java(-7) subset of Perl’s regexes is the minimal tolerable regex system for modern text processing. At least it finally meets Level 1 compliance for tr18. –  tchrist Mar 21 '12 at 21:06
    
Your approach may work for his small sample, but real English words can have apostrophes at their end (think possessive plurals like these species’ names) and even at their front (like ’tisn’t). Your pattern disallows those falling aft or fore alike, and doesn’t allow hyphenated words, either. Well, if the original querent didn’t think of it, I suppose you needn’t be expected to accommodate such things, either. It just won’t work on real-world data, is all. —— BTW, like Perl, Java doesn’t require braces around one-letter properties, so \pL suffices… and Huffman triumphs. –  tchrist Mar 21 '12 at 21:12
1  
@tchrist: You're quite right, but in the general case it's impossible to distinguish single-quotes from apostrophes programmatically; to take an extreme case, is 'n' the letter n in single-quotes, or is it a contraction for and? (Regarding \pL vs. \p{L} -- the documentation uses the latter, so I take it to be preferable. Java has a firm policy of being as verbose as possible. I don't know why it supports regexes at all, but even there it's managed to make them longer and more unwieldy.) –  ruakh Mar 21 '12 at 21:17

Do you need to use grep? Here's a sed example just in case:

$ echo "john's apostrophe is a 'challenge'" | sed -re "s/'(\S*)'/\1/g"
john's apostrophe is a challenge

sed is a stream editor, I used it to perform a substitution (the format is s/pattern/subst/, g stands for global. I'm matching an arbitrary number (*) of non-whitespace characters (\S) and substitute it by the same group of characters, referring to it as \1 (I captured it with round brackets (...).

Edit: All right, here's an ugly Perl-like grep example:

$ echo "john's apostrophe is a 'challenge'" | grep -oP "(?<=')\S*(?=')|\w+'?\w*"
john's
apostrophe
is
a
challenge

I have no idea what I've done, so unexpected behavior is likely :)

With grep I used positive lookaround assertions to match either a word in single quotes (the assertions are used for the quotes not to be a part of the match) or (|) a word with an optional apostrophe, which is represented with "one or more word characters" (\w+) followed by ' (or not) and then optionally some word characters again.

More edit: here's a sed command that seems to do the job and copes with @tchrist's example:

$ echo "john's apostrophe is a 'challenge'" | sed -re "s/(\W|^) '(\w*)'(\W|$)/\1\2\3/g"
john's apostrophe is a challenge
$ echo "’Tis especially hard, ’tisn’t it now, to leave it for the dogs’ breakfast, let a lone for the cats'" | sed -re "s/(\W|^)'(\w*)'(\W|$)/\1\2\3/g"
’Tis especially hard, ’tisn’t it now, to leave it for the dogs’ breakfast, let a lone for the cats'
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Wow. Two examples that work. Now if only somebody could explain it. I don't have to use grep at all. Problem originally arose from the desire to parse words from a text file using Java. Will either of these work in Java? –  ScrollerBlaster Mar 21 '12 at 20:51
1  
Parse me: ’Tis especially hard, ’tisn’t it now, to leave it for the dogs’ breakfast, let alone for the cats’. 😈 –  tchrist Mar 21 '12 at 21:04
    
I added some explanations in the answer, and unfortunately I don't know how it's done in Java. As @tchrist points out, the examples don't work well with apostrophes in the beginning of the words. –  Lev Levitsky Mar 21 '12 at 21:09
    
You can use the same pattern with Java as you’ve used there. It supports all that stuff. –  tchrist Mar 21 '12 at 21:17
    
I gave this +1. I'm not sure which one to accept yet... –  ScrollerBlaster Mar 21 '12 at 21:30

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