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I have number and need to add the suffix: 'st', 'nd', 'rd', 'th'. So for example: if the number is 42 the suffix is 'nd' , 521 is 'st' and 113 is 'th' and so on. I need to do this in perl. Any pointers.

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4 Answers 4

up vote 15 down vote accepted

Try this:

my $ordinal;
if ($foo =~ /(?<!1)1$/) {
    $ordinal = 'st';
} elsif ($foo =~ /(?<!1)2$/) {
    $ordinal = 'nd';
} elsif ($foo =~ /(?<!1)3$/) {
    $ordinal = 'rd';
} else {
    $ordinal = 'th';
}
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2  
Upvote for productive use of the elusive zero-width negative look-behind assertion. Though (sadly) as Bill Ruppert points out, there's a CPAN module for this already. –  Andy Ross Jul 6 '12 at 23:35
3  
Even though there is a CPAN solution, I like this one too. It's well thought-out, highly readable, devoid of dependencies, and as accurate as the CPAN solution for any integer. –  DavidO Jul 7 '12 at 8:20

Use Lingua::EN::Numbers::Ordinate. From the synopsis:

use Lingua::EN::Numbers::Ordinate;
print ordinate(4), "\n";
 # prints 4th
print ordinate(-342), "\n";
 # prints -342nd

# Example of actual use:
...
for(my $i = 0; $i < @records; $i++) {
  unless(is_valid($record[$i]) {
    warn "The ", ordinate($i), " record is invalid!\n"; 
    next;
  }
  ...
}
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Try this brief subroutine

use strict;
use warnings;

sub ordinal {
  return $_.(qw/th st nd rd/)[/(?<!1)([123])$/ ? $1 : 0] for int shift;
}

for (42, 521, 113) {
  print ordinal($_), "\n";
}

output

42nd
521st
113th
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There is something I don't fully understand here. Why a for loop when there is only one element as argument? It could also work return int( shift ) . (qw/.... For several parameters the for loop wouldn't work neither because of the return statement. It works fine as is, but did I miss something about the loop? –  Birei Jul 23 '12 at 14:00
    
@Birei: it's just a way of putting $_[0] into $_. Your way wouldn't work as the regular expression needs the value to be in $_. It's very like the new given language word but you can't use that as a statement modifier as you can with for. –  Borodin Jul 23 '12 at 14:19
    
Ah, ok. Thank you. Didn't get the point of $_. It deserves a +1. –  Birei Jul 23 '12 at 14:25
    
+1 for using for to get $_. Nice perlish idiom. –  Bill Ruppert Jun 5 at 19:41
    
@BillRuppert: Thanks Bill. I had forgotten I'd written this! I think that for is all the broken given should do, but that's another story –  Borodin Jun 5 at 19:53

Here's a solution which I originally wrote for a code golf challenge, slightly rewritten to conform to usual best practices for non-golf code:

$number =~ s/(1?\d)$/$1.((qw'0 st nd rd')[$1]||'th')/e;

The way it works is that the regexp (1?\d)$ matches the last digit of the number, plus the preceding digit if it is 1. The substitution then uses the matched digit(s) as an index to the list (qw'0 st nd rd'), mapping 0 to 0, 1 to st, 2 to nd, 3 to rd and any other value to undef. Finally, the || operator replaces 0 and undef with th.

If you don't like s///e, essentially the same solution could be written e.g. like this:

for ($number) {
    /(1?\d)$/ or next;
    $_ .= (qw'0 st nd rd')[$1] || 'th';
}

or as a function:

sub ordinal ($) {
    $_[0] =~ /(1?\d)$/ or return;
    return $_[0] . ((qw'0 st nd rd')[$1] || 'th');
}
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