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Why is this expression returning true for character 1 or V (and others)? How could I rewrite it so that it would return true only when it's blank or a character from a-z?

~((^$)||(^[a-z]$))~
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as tested on spaweditor.com/scripts/regex/index.php – Bijou Trouvaille Jul 9 '10 at 0:28
up vote 8 down vote accepted

Your problem is in the middle:

||

That means:

OR the empty string OR

And the empty string can be between any character. Or no characters. Basically, you're saying "Match anything."

To do an OR with a regex, only use a single pipe.

You can simplify this to:

/^[a-z]?$/
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This is an example of why you should prefer \z rather than $ to mean "end of string". The pattern /^[a-z]?$/ will happily match a string consisting of a single newline.

#!/usr/bin/perl

use strict; use warnings;

my $s = "\n";

if ( $s =~ /^[a-z]?$/ ) {
    print "string consisting of a single newline matched\n";
}

unless ( $s =~ /^[a-z]?\z/ ) {
    print "string consisting of a single newline did not match\n";
}
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wow thanks for the tip – Bijou Trouvaille Jul 9 '10 at 3:39
    
Sinan is a true expert. – user181548 Jul 9 '10 at 4:44
    
@Kinopiko Thank you for the compliment. It's just gotchas like this stick in my mind once I have been bitten. – Sinan Ünür Jul 9 '10 at 4:57

Empty string or one character in the range a-z would be:

/^[a-z]?$/

Remember that ? means "0 or 1 of this" -- so the regexp translates to "0 or 1 character between a and z inclusive".

Rewriting it to use an | for "or" (note how much more ugly it is, so this is just an academic exercise at this point) you could do:

# nothing, or one character in a-z
/^(?:|[a-z])$/
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Your last expression should match any string that has a start -- ie: everything. – cHao Jul 9 '10 at 0:43
    
Your second one is still a bit off :) perl -e "my $foo = '#!@#'; print $foo =~ /^|[a-z]$/ ? 'matches' : 'not match'" prints matches (the | goes across the entire regex.) – Robert P Jul 9 '10 at 0:44
    
@Robert, @cHao: hmm you're right, I got the binding order mixed up. time for parentheses! :) – Ether Jul 9 '10 at 0:56
1  
you want ?:, not :?. – muhmuhten Jul 9 '10 at 16:23
    
@sreservoir: yes I do, thanks! – Ether Jul 9 '10 at 17:01

It matches because the expression contains ||. The regex 'or' operator is a single |; two of them means 'or nothing or', and every string will match an empty expression with no anchors.

Either way, your regex seems a bit complex...how about /^([a-z]?)$/?

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Couldn't you change it to something like this:

^([a-z]?)$
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/\A(\p{Lower})?\z/
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