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I have a situation where I need to remove (or substitute) N numbers when they are between literal characters. For example:

00000ASEDF32434VSC

I need 32434 to be removed so that the output is:

00000ASEDFVSC

And if I want to substitute 32434 with XXXXX ?

How to do it using regexes?

EDIT

I chose a very stupid example.Sorry. Consider this:

00000SQWDDWE12CSDCASEDF32434VSC

I need to substitute (or remove) only the pattern 32434.

In general case: if I have an alphanumeric string how to
remove a pattern of N (say 5) numbers when they are between literal characters?

Thanks.

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do you know N upfront? in my solution I used 5, but question is it dynamically depends on input or something you already know without guessing? –  mvp Jan 16 '13 at 1:42
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5 Answers

We can use a lookahead (?=...) and a lookbehind (?<=...) to assert that the numbers are preceded and followed by non-numbers. This would remove such enclosed numbers:

$str =~ s{ (?<=\D) (\d+) (?=\D) }{}xg;

We can give a different substitution, or even code that will be executed. Here for variable-length X:

$str =~ s{(?<=\D) (\d+) (?=\D)}{ "X" x length $1 }xge;

/e executed the substitution, and x is the underused repetition operator.

Here is a subroutine that returns the string with all such number sequences removed, with optional minimum and maximum lenth possible:

use Carp;
sub remove_numbers {
  my ($string, $min, $max) = @_;
  $min //= 1;
  $max //= "";
  croak qq(argument \$min is not valid) if $min =~ /[^0-9]/;
  croak qq(argument \$max is not valid) if $max =~ /[^0-9]/;
  $string =~ s/(?<=\D) (\d{$min,$max}) (?=\D)/"X" x length $1/xge;
  return $string;
}

The call

$str = remove_numbers($str, 5, 5);

would be equivalent to $str =~ s/(?<=\D)(\d{5})(?=\D)/XXXXX/. The call

$str = remove_numbers($str);

would be equivalent to my second code example.

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remove a pattern of N (say 5) numbers when they are between literal characters?

What do you mean by "literal characters"? Do you mean "letters"? The following removes a sequence of 5 digits (0-9) that are both preceded and followed by a letter.

$str =~ s/(?<=\pL)[0-9]{5}(?=\pL)//;

Free free to change 5 for a variable.

my $n = 5;
$str =~ s/(?<=\pL)[0-9]{$n}(?=\pL)//;

Since Perl 5.14+, you can use \d to mean [0-9] by using /a. (Without /a, \d matches over 400 different characters.)

$str =~ s/(?<=\pL)\d{5}(?=\pL)//a;
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You can pull out the relevant part to replace, then repack it. I'm assuming it's just a single instance of numbers. That way it doesn't matter how many, but you always replace with the same number of 'X's...

$str = "00000ASEDF32434VSC";

my($prefix, $digits, $suffix) = $str =~ /^(.*[a-z])(\d+)([a-z].*)$/i;

# Replace with X
$str = $prefix . ($digits =~ s/./X/g) . $suffix;

# Or remove
$str = $prefix . $suffix;

You probably want to make sure that the regex succeeded though!

In response to your edit: You actually want to remove a specific number...

$str = $str =~ s/^(.*[a-z])32434([a-z].*)$/$1XXXXX$2/i;

Or if you want 5 digits (this has already been answered)

$str = $str =~ s/^(.*[a-z])\d{5}([a-z].*)$/$1XXXXX$2/i;
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$str =~ s/[1-9]//g

This would remove all numbers 1-9. Would this work?

$str =~ s/(\D)\d\d*(\D)/$1$2/g

Should replace only if the numbers are between strings, but not too sure if it works.

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They still want an X for each character replaced, I believe. So you either extract the part between and shove it back in with the right number of Xs or you can do one at a time until there are no more matches (since X is a legitimate alpha character. –  paddy Jan 16 '13 at 1:31
    
@paddy this was an answer to the first part mainly. But is it clear the OP wants "X" or an arbitrary number (x as variable) –  Karthik T Jan 16 '13 at 1:33
    
Oh true, I missed that part =) –  paddy Jan 16 '13 at 1:35
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Use this code to remove:

$str =~ s/([a-z]+)\d{5}([a-z]+)/\1\2/i;

and this to replace:

$str =~ s/([a-z]+)\d{5}([a-z]+)/\1XXXXX\2/i;

where 5 is how many numbers you must replace.

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notice /i part - it is there for a reason –  mvp Jan 16 '13 at 1:38
    
use $1 and $2 in the replacement part, not \1 and \2 –  ysth Jan 16 '13 at 1:44
    
actually both work fine –  mvp Jan 16 '13 at 1:44
2  
no, one gives you a warning \1 better written as $1 perldoc.perl.org/perldiag.html#%5C1-better-written-as-%241 –  ysth Jan 16 '13 at 1:45
    
Hmm I always used the 'bad' version, but just did a little reading up and you're right - it's old syntax and not recommended. –  paddy Jan 16 '13 at 1:46
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