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In a Perl SO answer, a poster used this code to match empty strings:

$userword =~ /^$/; #start of string, followed immediately by end of string

To which brian d foy commented:

You can't really say that because that will match one particular non-empty string.

Question: Which non-empty string is matched by this? Is it a string consisting of "\r" only?

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1  
This is the same mistake stackoverflow.com/q/10200057/8817 is making, too. :) – brian d foy Apr 18 '12 at 17:44
up vote 7 down vote accepted

Let's check the docs, why don't we? Quote perlre,

$: Match the end of the line (or before newline at the end)

Given

\z: Match only at end of string

That means /^$/ is equivalent to /^\n?\z/.

$ perl -E'$_ = "";    say /^$/ ||0, /^\n?\z/ ||0, /^\z/ ||0;'
111

$ perl -E'$_ = "\n";  say /^$/ ||0, /^\n?\z/ ||0, /^\z/ ||0;'
110

Note that /m changes what ^ and $ match. Under /m, ^ matches at the start of any "line", and $ matches before any newline and at the end of the string.

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /^/g'
matched at 0

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /$/g'
matched at 7
matched at 8

And using /m:

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /^/mg'
matched at 0
matched at 4   <-- new

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /$/mg'
matched at 3   <-- new
matched at 7
matched at 8

\A, \Z and \z aren' t affected by /m:

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /\A/g'
matched at 0

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /\z/g'
matched at 8

$ perl -E'$_ = "abc\ndef\n";  say "matched at $-[0]" while  /\Z/g'
matched at 7
matched at 8
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use strict;
use warnings;

use Test::More;

ok("\n" =~ /^$/);
ok("\n" =~ /^\z/);
ok("\n" =~ /^\A\z/); # Better as per brian d. foy's suggestion

done_testing;

If you want to test if a string is empty, use /^\z/ or see if length of $str is zero (which is what I prefer).

Output:

ok 1
not ok 2
not ok 3
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4  
If you want to test for an empty string using a regex, use \A too. The ^ doesn't guarantee that nothing is in front of it. – brian d foy Apr 18 '12 at 17:46
    
@briandfoy In the case of ^, I am safe so long as I do not use the m modifier. On the other hand, $ needs no stinking help from no outside modifier to trip me up ;-) – Sinan Ünür Apr 18 '12 at 19:09
1  
You aren't safe though, because Perl now has default regex flags. However, why use something in exact when you can be exact without exception? – brian d foy Apr 18 '12 at 20:44
1  
@briandfoy - I added your suggestion as another test case. I think ikegami's excellent answer details WHY that's the case. – DVK Apr 18 '12 at 20:49
    
+1 from me for honesty – Ωmega Apr 18 '12 at 21:10

The regex /^$/ matches the non-empty string "\n".

By default, Perl regular expression matching assumes that the string contains a single "line" of text.

^ matches the beginning of the line; in the absence of a /m modifier, this is the same as the beginning of the string.

$ matches either the end of the line, or before a newline at the end (that's what makes /^$/ match the non-empty string "\n").

Quoting perldoc perlre:

By default, the "^" character is guaranteed to match only the beginning of the string, the "$" character only the end (or before the newline at the end), and Perl does certain optimizations with the assumption that the string contains only one line. Embedded newlines will not be matched by "^" or "$". You may, however, wish to treat a string as a multi-line buffer, such that the "^" will match after any newline within the string (except if the newline is the last character in the string), and "$" will match before any newline. At the cost of a little more overhead, you can do this by using the /m modifier on the pattern match operator.

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If there's a good reason for the downvote, I'd like to hear it. – Keith Thompson Apr 18 '12 at 20:14
    
@SinanÜnür: Downvotes are of course anonymous, so we can't be sure who downvoted me. In any case, I was more concerned that there might be something wrong with my answer. (I found most of the others too indirect, going off on a tangent before actually answering the question.) No biggie. – Keith Thompson Apr 18 '12 at 20:29
    
I would upvote to balance if you included exactly WHAT $ and ^ mean (I know I can look the exact lawyering definitions in perldoc, this is merely a hint on how to improve the answer even more) – DVK Apr 18 '12 at 20:46
    
@DVK: Updated, thanks for the feedback. (And it's really about writing a good answer, not about the points.) (BTW, you have an off-by-one error in your profile.) – Keith Thompson Apr 18 '12 at 20:55
    
occupational hazard of staying eternally young. Eeek. Next thing I'll start sparkling :( – DVK Oct 1 '13 at 23:49

Script:

my $str = "\n";

my $test1 = ($str =~ /^$/)   ? 1 : 0;
my $test2 = ($str =~ /\A\z/) ? 1 : 0;

print "$test1, $test2\n";

Output:

1, 0
share|improve this answer
    
How is this different from Sinan's answer? – DVK Apr 18 '12 at 20:45
    
@DVK - After his edit and adding \A to his answer there is pretty much no difference. – Ωmega Apr 18 '12 at 20:57
    
@stackoverflow Please note I did not edit my answer to include \A. – Sinan Ünür Apr 18 '12 at 21:07
    
@SinanÜnür - Correction: After edit of his post by DVK user (which is user complaining no difference in the first comment above)... – Ωmega Apr 18 '12 at 21:09
    
@stackoverflow - sorry, didn't see brian d. foy's comment mentioning that there IS a difference until after I left the original comment. – DVK Apr 18 '12 at 21:54

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