111

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?

5

9 Answers 9

191

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).

3
  • 6
    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, 2014 at 9:32
  • 1
    Turns out \A also works in Visual Studio find and replace. As always use such things with caution but it saved me a ton of manual messing about once I was happy it would actually do the right thing. Oct 19, 2016 at 13:09
  • While I am using Java's Scanner class to read an entire file at once; if I use \Z as delimiter, trailing newline character trimmed. When I changed delimiter to \z, trailing newline character preserved. It seems that Martin Dorey's answer also applies to Java.
    – mmdemirbas
    Mar 6, 2018 at 13:07
29

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.

26

In Visual Studio, you can find EOF like so: $(?![\r\n]). This works whether your line endings are CR, CRLF, or just LF.

As a bonus, you can ensure all your code files have a final newline marker like so:

               Find What: (?<![\r\n])$(?![\r\n])
            Replace With: \r\n
 Use Regular Expressions: checked
Look at these file types: *.cs, *.cshtml, *.js

How this works:

Find any line end (a zero-width match) that is not preceded by CR or LF, and is also not followed by CR or LF. Some thought will show you why this works!

Note that you should Replace With your desired line-ending character, be it CR, LF, or CRLF.

2
  • 1
    There's a bug in Visual Studio 2019 where doing a replace all with this can result in two newlines being added to the end of the file. I think it has something to do with the auto-insert newline on save option.
    – Stevoisiak
    May 27, 2020 at 5:09
  • @Stevoisiak That might be caused by inserting the wrong newline pattern. E.g., i your IDE is looking for \r\n and you only put in \n, it may fail to detect the "two newlines".
    – ErikE
    Dec 15, 2021 at 17:45
11

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.

In a comment, mmdemirbas adds that Java is the same.

8

As JavaScript RegEx doesn't support the boundary match for final terminator (\Z), you could use the following:

var matchEndOfInput = /$(?![\r\n])/gm;

Basically this would match the end of the line, which is not followed by carriage return or new line characters. In essence it behaves the same way as \Z and can be used with JavaScript RegEx implementation.

3

If you don't have to capture the line separators, 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.

2

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

/\"(.+?)\".+?(\w.+?)$/
1

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|,|$)

0

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

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.