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Why is this happening? I've a complex regexp, but here is what is driving me crazy.

a|b

Matches either single a or single b.

a+|b+

Matches either series of a or series of b.

a{1}|b{1}

Matches both single letter the same.

But I need to do this:

a{0,2}|b{0,2}

And this regexp matches only a and no b at all. What's wrong with that?

What is even funnier is that if I change the 0 to 1, so that it's {1,2}, it starts to match correctly (or better, as expected) again.

Since it seems it now quite clear, I'm adding my real example:

my $launch_regexp = '(\d*)d{0,1}(\d*)(\+{0,2}|-{0,2})(\d*)';
($dice, $fc, $op, $mod) = ($launch =~ /$launch_regexp/);

Where $launch is the same of $ARGV[1].

I want to match many things. Examples:

3 (numbers)

d10 (d + numbers)

3d10 (numbers + d + numbers)

3d10+/-5 (numbers + d + numbers + (+|-) + numbers)

3d10++/--5 (numbers + d + numbers + (++|--) + numbers)

I know my regexp also matches other strings, but now it works with + and not with -.

If I change the range with {1,2}, it matches strings with both + and - (but I need to match also strings which have not such modifiers).

This is happening on my machine with Perl 5.16.3 and I'm able to reproduce it on this website.

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4  
a{0,2} is a perfectly valid match for any string containing b, since it matches b zero times. Would you like to perhaps clarify your question by supplying input and expected output? –  TLP Oct 8 '13 at 21:37
    
a{0,2} matches for 0 a's up to 1. So you might as well not have the or case as it will never reach it. You need to establish that it is to match at least 1 a or at least 1 b. –  scrappedcola Oct 8 '13 at 21:38
1  
Perhaps try a{1,2}|b{1,2} to match the 1 or more of +? You'll get the same behavior from a*|b*. –  Jonathan Lonowski Oct 8 '13 at 21:39
1  
What are you actually trying to achieve with your regex? –  stevemarvell Oct 8 '13 at 21:40
1  
Please say more about what you want to do. Do you need to verify your data, or do you just want to separate it into fields (for which see my comment on @stevemarvell's post)? Also, is this a string in its entirety or are you trying to find substrings within a longer string that match this pattern? –  Borodin Oct 8 '13 at 23:06

2 Answers 2

up vote 7 down vote accepted

The string "b" can be matched by the regex a{0,2} as it correctly has zero instances of 'a'. It won't capture, but it'll match.

In order to match '','aa' or 'bb', you want (aa|bb)? and to wrap your whole regex in ^ and $

I think what you want for your solution is: (\d*)d?(\d+)(?:(\+{1,2}|\-{1,2})(\d*))?

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Oh yes. I didn't thought about the fact that it will match the same. But, what if I want to match a or aa or b or bb and, if none of them is found, assign my variable to an empty string? Is that possible with regexp? –  Zagorax Oct 8 '13 at 22:07
    
I've updated to match the new info. It will match some funky other stuff, but if your input is valid, it will split it up appropriately. –  stevemarvell Oct 8 '13 at 22:08
1  
@stevemarvell: That's easy to achieve: split /(\d+)/ will do that. –  Borodin Oct 8 '13 at 22:36
    
that won't capture the operator @Borodin –  stevemarvell Oct 8 '13 at 22:42
    
@stevemarvell@ It works fine. Try it. –  Borodin Oct 8 '13 at 23:03

Perl prefers earliest match in the string over anything else. Next, it prefers the earliest of a series of | alternatives (not the longest, as is the case with some regex engines). Because your first alternative can match nothing, perl will do so at the beginning of the string, for any string that doesn't start with an a.

You probably want something like:

my ($find) = ($string) =~ /^[^ab]*(a{1,2}|b{1,2}|\z)/;
share|improve this answer
    
unless it has following text –  stevemarvell Oct 8 '13 at 22:13
    
@stevemarvell: what happens unless what has following text? –  ysth Oct 8 '13 at 22:32
    
I mean to say that if there is to be following text after this match, then \z in inappropriate. –  stevemarvell Oct 8 '13 at 22:40

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