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I seem to remember that there were certain conditions under which $ would match a newline (not "just before"), but I can't find anything in the docs that would confirm that. Did that use to be true in an earlier version of Perl or am I dreaming?

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4 Answers 4

up vote 3 down vote accepted

You are confusing two very similar things. The $ matches at the end of a string if /m is not used, and at the end of a string or at the end of a string except for a final newline if /m is used. However, it does not actually match (consume) the newline itself. You could still match the newline character itself with something else in the regexp, for instance \n; or, if you also use /s, then /blah$./sm would theoretically match "blah\n" even though the $ is not the last thing in the regex.

(The reason this doesn't actually work is that both $. and $\ are actually interpreted as special variables instead of as $ plus ., so it is actually quite hard to put something after a $ in a regexp. Confusing, isn't it?)

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I guess you could use $ . if you had /x –  JoelFan Aug 12 '10 at 17:08
    
Not quite right. "at the end of a string or before a newline at the end of a string" if no /m, "at the end of a string or before any newline" if /m. Just "the end of the string" is \z. –  ysth Aug 12 '10 at 18:31
    
To use $ anywhere in a regex, without /m you can just say \Z (not \z). With /m, you can stick $ in a $dollar variable and interpolate that (as ${dollar} if needed). Or do e.g. /@{['$']}./ –  ysth Aug 12 '10 at 18:37

That has always been the case. See perldoc perlreref ($ is an anchor):

$ Match string end (or line, if /m is used) or before newline

You should use \z if you want to match the end of the string:

\z Match absolute string end

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1  
Yes. "123\n" =~ /^\d+$/ is true. Which means all sorts of potential fun for your validation code if you get it wrong. :) –  fennec Aug 12 '10 at 15:58

If you pass the /s modifier to a regexp, then $ matches the end of the string and allows . to match \n.

This can be a bit confusing. For a string of foo\n, observe the difference between:

/.$/ # matches 'o'

/.$/s # still matches 'o'

/.+$/s # matches 'foo\n'

/.\z/ # doesn't match at all

/.\z/s # matches '\n'

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Sorry... not relevant to my question –  JoelFan Aug 12 '10 at 15:02
    
Unless I'm misunderstanding something, you don't mean what you think you mean. $ doesn't do any character matching, it does positional matching, so the question you might be asking is whether $ matches before or after the newline. –  szbalint Aug 12 '10 at 15:05
    
I remember something about it consuming the newline itself –  JoelFan Aug 12 '10 at 15:17
4  
@JoelFan => $ is a zero width positional assertion, it never consumes any characters –  Eric Strom Aug 12 '10 at 15:48
1  
It's /m that changes the meaning of the anchors (^ and $); /s only changes the meaning of the dot. $ always matches at the end of the string or before a newline at the end of the string. In /m mode it also matches before any other newline. At least, that's how it works in Perl; there could be Perl-derived flavors that don't work exactly like Perl in that regard, but I can't think of any offhand. –  Alan Moore Aug 13 '10 at 2:28

Adding the 'm' modifier, '$' will match (but not consume) end of line characters. Normally '$' matches end of string.

my $sample = "first\nsecond\nthird";
$sample =~ s/$/END/mg;
print $sample;

Produces:

firstEND
secondEND
thirdEND

If you want to consume the newline, just use the \n escape character:

my $sample = "first\nsecond\nthird";
$sample =~ s/\n/END/g;
print $sample;

Now you get:

firstENDsecondENDthird

Note that the 'm' modifier also affects '^' in the same way as '$'.

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