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I have a string like this:

$var = '123456d';

or possibly

$var = '123456'; # (no alpha char)

There will be up to 6 digits no less than 5 if that matters. No alpha, spaces or special mixed in the numbers.

In my Perl script, I need to remove and return the last alpha character AND the string without the alpha character.

I suppose can use \D and trim? or chop? but, there must be an easy way to get both vars quickly.

my $numbers =~   s/\D+?$var//;  #???  

my $alpha = substr($var, 0, -1); ## but no alpha check.

or

my $alpha = chop($var); ## but no alpha check.

then if a-Z and so on to check if it is an alpha character.

Or the limit of my ability solution:

$alpha = $var;
$alpha =~ s/[0-9]//ig;
$var =~ s/[a-Z]//ig;
$numbers = $var;

so result:

($numbers == '123456')
($alpha eq 'd') (or '' if nothing)

I feel like this is too trivial to ask here but, I just cannot find or write an applicable solution.

My use of =~ s is just a guess but, there must be a better way or even a one liner.

Thanks for all the help here...

SORRY after thought! There may be 2 alpha characters after the digits! They would need to be returned together as a single var ($alpha eq 'dd')

I found this too to0:

$var =~ s{^([0-9]+).*}{$1}i;
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The range [A-z] is a grave error. For an alpha character, you should write \p{alpha}, simply enough. –  tchrist May 11 '12 at 15:49
    
Thank you so $var =~ s/\p{alpha}//ig; ?? –  Jim_Bo May 11 '12 at 15:53
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2 Answers

up vote 6 down vote accepted

Using \pL will avoid capturing numbers, and making the string optional will assure that the match happens even for numbers without ending letters.

my $var = '123456d';
my ($num, $letter) = $var =~ /^(\d+)(\pL)?$/;

Note that you cannot use \w to capture the possible ending letter, because it also includes numbers. As tchrist has pointed out, \p{alpha} can also be used.

share|improve this answer
    
I think I actually understand! I will try this and get right back to you. –  Jim_Bo May 11 '12 at 16:03
    
Won't the (\d+) be greedy enough to prevent numbers from being captured at the end? Or are you thinking input like "12345d3" ? –  Rob I May 11 '12 at 16:41
    
@RobI I assumed it was letters at the end. If it indeed can be numbers as well, some other method would be required. –  TLP May 11 '12 at 17:04
    
Thank you for pointing me in the right direction!! –  Jim_Bo May 12 '12 at 12:06
    
@Jim_Bo You're welcome. –  TLP May 12 '12 at 13:45
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Maybe something like this:

my $numbers =~ s/(\d+)(\p{alpha}+)?/$1/;

my $alpha = $2;

The $1 refers to the first parentheses capture, the $2 refers to the second.

Edited: used \d for digit, \p{alpha} for alpha.

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2  
I’m afraid that’s inaccurate, in that \w is not alpha plus underscore. It is all alphabetics (including circled letters and such letter-numbers as Roman numerals), all combining marks, all numeric digits, and all connector punctuation. Anyway, if you want alpha, write \p{alpha}. –  tchrist May 11 '12 at 15:50
    
@tchrist I seem to recall you recommending \pL before. –  TLP May 11 '12 at 15:55
    
@TLP Although there’s a difference between \pL and \p{alpha} in full technical definition (the latter includes the former, but much else besides), I imagine that \pL is what many people unfamiliar with the nitty-gritty are mostly looking for. –  tchrist May 11 '12 at 15:57
    
Thanks guys! I updated to use \p{alpha}. Either way is much better than my [a-z] I started with. I don't tend to think internationally (yet)... Any guidance on using the [[:alpha:]] syntax? It's POSIX but not international maybe? –  Rob I May 11 '12 at 16:40
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