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I have some data that look like this

john, dave, chris
rick, sam, bob
joe, milt, paul

I'm using this regex to match the names

/(\w.+?)(\r\n|\n|,)/

which works for the most part but the file ends abruptly after the last word meaning the last value doesn't end in \r\n, \n or , it ends with EOF. Is there a way to match EOF in regex so I can put it right in that second grouping?

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Are you trying to capture all the names in one group or one capture group per name? –  Andrew Hare Jul 23 '09 at 12:04
3  
What platform is this? –  Marc Gravell Jul 23 '09 at 13:32
    
one thing to do when having trouble with regex is to try elements of you pattern in isolation. if you are concerned about the token at the end, test your expression without it. –  akf Jul 23 '09 at 13:33
    
just wanted to add a great regex testing site: regexplanet.com/simple –  northpole Jul 23 '09 at 14:03
    

7 Answers 7

up vote 57 down vote accepted

The answer to this question is \Z took me awhile to figure it out, but it works now. Note that conversely, \A matches beginning of the whole string (as opposed to ^ and $ matching the beginning of one line).

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2  
Just a heads up if you are after such fonctionality in netbeans for a project files search as opposed to an in file search, the following will behave differently... (\s*)\?>(\s*)\Z ... and after some more digging here is what would work on a project folder: (\s*)\?>(\s*)(\n*)(\W)\Z FYI: this is to replace all closing php tags by line breaks at end of file. –  MediaVince Aug 7 at 9:32

EOF is not actually a character. If you have a multi-line string, then '$' will match the end of the string as well as the end of a line.

In Perl and its brethren, \A and \Z match the beginning and end of the string, totally ignoring line-breaks.

GNU extensions to POSIX regexes use \` and \' for the same things.

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Maybe try $ (EOL/EOF) instead of (\r\n|\n)?

/\"(.+?)\".+?(\w.+?)$/
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Contrast the behavior of Ryan's suggested \Z with \z:

$ perl -we 'my $corpus = "hello\n"; $corpus =~ s/\Z/world/g; print(":$corpus:\n")'
:helloworld
world:
$ perl -we 'my $corpus = "hello\n"; $corpus =~ s/\z/world/g; print(":$corpus:\n")'
:hello
world:
$ 

perlre sez:

\Z  Match only at end of string, or before newline at the end
\z  Match only at end of string

A translation of the test case into Ruby (1.8.7, 1.9.2) behaves the same.

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Assuming you are using proper modifier forcing to treat string as a whole (not line-by-line - and if \n works for you, you are using it), just add another alternative - end of string: (\r\n|\n|,|$)

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Do you really have to capture the line separators? If not, this regex should be all you need:

/\w+/

That's assuming all the substrings you want to match consist entirely of word characters, like in your example.

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/(\w.+?)(\r\n|\n|,|$)/

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1  
You probably meant \w+, right? –  Abel Nov 19 '12 at 18:03
    
Probably. I don't remember anymore :-) –  cube Nov 21 '12 at 14:02

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