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I know this might be very easy to some,,

I have a simple string like this @¨0­+639172523299 (with characters before a mobile number). My question is, how do i remove all the characters before the plus(+)? What i know is to remove a known character as follows:

$number =~ tr/://d; (if i want to remove a colon)

But here, I want all characters before '+' to be removed.

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thanks everyone! It all works fine! :) –  Suezy Mar 5 '10 at 8:00
2  
usual general comment about how it's 'Perl' and not 'PERL'. if you're learning from sources using the term 'PERL', then there's a chance that they are out-of-date or not advocating good, current programming practices. –  plusplus Mar 5 '10 at 9:03

6 Answers 6

up vote 3 down vote accepted

To remove everything up to and including the first +, you can do:

$number ~= s/.*\+//;

If you want to keep the +, you can put that into the replacement:

$number ~= s/.*\+/+/;

The above says: Match "anything" (the .*) followed by a + (+ is a special character in regular expressions, which is why it needs the backslash escape) and replace it with nothing (or in the above example, replace it with a single +).

Note that the above will strip out everything up to the LAST + in the string, which may not be what you want. If you want to keep strip out everything up to the FIRST + in a string, you can do:

$number =~ s/[^+]*\+//;

or

$number =~ s/[^+]*\+/+/; # Keep the +

The difference from the first regular expression being the [^+]* instead of .*, which means "match any character except a +".

For more information on Perl's regular expressions, the perldoc perlre manual page is pretty good, as is O'Reilly's Mastering Regular Expressions book.

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my $string = '@¨0­+639172523299';
$string =~ s/(.*)(?=\+)//;
print $string;
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in the simplest case

$string =~ s/^.*\+//;

if you have more than one "+" before the mobile number

$string="@+0+0­+639172523299";
@s=split /\+/,$string;
print $s[-1];

In fact, you can just use split() instead of regex. Its easier.

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$number =~ s/^.*\+//;
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s/(.*?\+)(.*)/\2/;

If you want plus to be remain

s/(.*?)(\+)(.*)/\2\3/;

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my $str="@¨0­+639172523299";
if($str=~/(\D+)(\+[0-9]+)/)
{
  print $2;
}
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