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Can you assist me in determing correct $string = line to end up with partial_phone containing 4165867111?

sub phoneno {
my ($string) = @_;
$string =~  s/^\+*0*1*//g;
return $string;
}

my $phone = "<sip:+4165867111@something;tag=somethingelse>";

my $partial_phone = phoneno($phone);
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1  
What is the expected output ? –  sputnick Jan 22 '13 at 21:04
    
sorry, just corrected my post, 4165867111 part of initial string –  Deano Jan 22 '13 at 21:07
    
Make sure to either escape the @ in $phone or to use single instead of double quotes. Otherwise Perl will interpolate the (non-existent) array @something and you'll end up with <sip:+4165867111;tag=somethingelse>. –  Perleone Jan 22 '13 at 21:18
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3 Answers

up vote 2 down vote accepted

Your substitution starts with a ^, which means it won't perform substitution unless the rest of your pattern matches the start of your string.

There are lots of ways to do this. How about

my ($partial) = $phone =~ /([2-9]\d+)/;
return $partial;

This returns any string of digits that doesn't begin with a 0 or 1.

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thanks for your help, it is actually a phone number, that may might with 1 or 0, is there is another way to do it? –  Deano Jan 22 '13 at 21:17
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$string =~ s{
    \A          # beginning of string
    .+          # any characters
    \+          # literal +
    (           # begin capture to $1
        \d{5,}  # at least five digits
    )           # end capture to $`
    \@          # literal @
    .+          # any characters
    \z          # end of string
}{$1}xms;
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worked perfectly, thank you –  Deano Jan 22 '13 at 21:43
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This will capture all digits preceding the @:

use strict;
use warnings;

sub phoneno {
    my ($string) = @_;
    my ($phoneNo) = $string =~ /(\d+)\@/;
    return $phoneNo;
}

my $phone = '<sip:+4165867111@something;tag=somethingelse>';

my $partial_phone = phoneno($phone);

print $partial_phone;

Output:

4165867111
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perfect! also worked! –  Deano Jan 22 '13 at 21:43
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