2

I need to modify someone's Perl script, and I am not familiar with Perl at all.

There is a scalar variable $var, whose value is a floating point number possibly followed by junk. I need to extract the floating point number.

The number is in non-exponential format: DDD[.DDD], and has no sign.

Fractional part may be missing. Integer part is not missing (.123 is just junk)

If the variable starts with junk (in particular, sign or decimal point), I need to extract empty string.

Examples:

-123.456 ==> ""
123. ==> "123"
123.456.789 ==> "123.456"
123.456junk ==> "123.456"
123junk ==> "123"
123.junk ==> "123"     # strip the dot if no fraction
.123 ==> ""
junk ==> ""
000.000 ==> "000.000"

Could someone provide a solution, I guess it should be: $var =~ s/REGEX_EXPRESSION, but I cannot figure out what REGEX_EXPRESSION should be.

Thank you.

  • In this case "In particular, if the value is DDD.DDD.DDD, I still need to extract DDD.DDD" do you need the first or second DDD.DDD? – emsimpson92 Aug 7 '18 at 17:12
  • @emsimpson92 0,1,...,9 – user2052436 Aug 7 '18 at 17:12
  • Is the period/dot/full stop (.) a literal dot? – Matt Jacob Aug 7 '18 at 17:15
  • @emsimpson92 Yes, I need first DDD.DDD; that's the case where X represents the second dot, and ZZZ represents third DDD – user2052436 Aug 7 '18 at 17:17
  • 1
    In my opinion it would be a lot clearer if you provided an example with actual data rather than using letters. – UnbearableLightness Aug 7 '18 at 17:21
2

Following your update, the expression you need is:

^\d+(?:\.\d+)?
  • ^\d+ Match digits at start of string.
  • (?: Start of non capturing group.
  • \.\d+ Match a literal ., followed by digits.
  • )? Close non capturing group making it optional.

Check the expression here.

A Perl example:

$var = "123.456.789";
print "old $var\n";
$var =~ /(^\d+(?:\.\d+)?)/;
print "new $1\n";

Prints:

old 123.456.789
new 123.456
  • Would the downvoter care to explain ? – UnbearableLightness Aug 7 '18 at 20:40
  • You are using the incorrect syntax. The =~ s notation is used to search and replace, whereas you are just trying to capture the value. See updated answer. – UnbearableLightness Aug 8 '18 at 15:40
  • You can refer to the documentation here for more information. – UnbearableLightness Aug 8 '18 at 15:41
  • So after var =~ REGEX; I do $var = $1;. Is there a one-liner for these two lines? Thank you! – user2052436 Aug 8 '18 at 15:49
0

So I am trying suggested expressions, I guess I am not using them correctly in Perl:

my $var = "123.456.66";
print "old $var\n";
$var =~ s/^\d+(?:\.\d+)?//;
print "new $var\n";

Output:

$perl main.pl
old 123.456.66
new .66
-1

As I understand it, you need to extract the first one or two groups of digits from a string. Like so.

123.456.789  # 123.456
123.456abc   # 123.456
123abc       # 123
abc123       # nothing

The regex would look like this, expanded out for a better explanation.

qr{
  (
    \d+ 
    (?: \.\d+ )?
  )
}x;

qr is the regex quoting operator. Using x means to ignore spaces so things are more readable.

\d matches digits. + says to match 1 or more of the preceding. So \d+ is 1 or more digits.

() captures the contents.

(?:) groups the contents but does not capture.

? says to capture 0 or 1 of the preceding. It means it's optional.

So (?: \.\d+ )? means a dot followed by some digits is optional.

You'd use it like so.

my $str = "123.456abc";
my $digits_re = qr{ (\d+ (?: \.\d+ )?) }x;
my($digits) = $str =~ $digits_re;
print $digits;

For more information see the Perl Regex Tutorial and you can play with it on Regex 101.

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