11

I have a number and need to add a decimal to it for formatting.

The number is guaranteed to be between 1000 and 999999 (I have covered the other possibilities in other ways, this is the one I can't get my head around). I need to put a decimal before the last 3 digits, for example:

1000   -> 1.000
23513  -> 23.513
999999 -> 999.999

How can I do this?

  • 5
    Regular expressions are a versatile tool, but they're not the only tool. What makes you so sure they're the right tool for formatting a number? – Rob Kennedy Aug 19 '09 at 21:40
  • 4
    Big warning with this one. Using a regular expression can lead to some unexpected behavior if you are manipulating the numbers in perl. On my machine, if I do my $num = 11745.041 - 11739.7; print $num;, it outputs: "5.34099999999853". Applying the regex listed in Adam's accepted answer before the print statement changes that to "5.34099999999.853". Probably not what you're looking for. Using $num = sprintf('%.3f', $num); like the answer by @draegtun, produces the expected: "5.341". – Alan W. Smith Feb 12 '12 at 4:47
10
$num =~ s/(\d{3})$/.$1/

That says: Take a block of 3 digits (that must be anchored at the END of the string) and replace them with a "." followed by whatever was just matched.

  • 4
    This is not the best answer; see below for draegtun's response which is preferable. – Ether Aug 20 '09 at 18:04
  • 2
    Actually it is the best answer to the question that was asked, though possibly not the best way to accomplish the task at hand. The question specifically asked for a regular expression. – Adam Batkin Aug 21 '09 at 12:44
44

And yet another way for fun of it ;-)

my $num_3dec = sprintf '%.3f', $num / 1000;
  • 9
    I think that this too clearly expresses the meaning of the input data, and should be avoided in favor of something more mysterious :-) – Roboprog Aug 19 '09 at 19:43
  • 11
    +1 This is the right answer to the question. The fact that the OP mistakenly believed a regex substitution was needed does not change that. – Sinan Ünür Aug 19 '09 at 20:30
  • 4
    No, this isn't necessarily the right answer to the question. If you have a 64bit perl and >15 digit numbers, this may well be the wrong answer, while the substr or s/// will always work. – ysth Aug 20 '09 at 4:45
  • @ysth: Yes but question was limited to 1000 - 999999 (integers) so it is actually "the right answer" ;-) – draegtun Aug 20 '09 at 7:57
  • 1
    It's the right answer if that's what you want to do! – Chris Huang-Leaver Aug 20 '09 at 8:04
14

Here is another solution just for the fun of it:

In Perl substr() can be an lvalue which can help in your case.

substr ($num , -3 , 0) = '.';

will add a dot before the last three digits.

You can also use the four arguments version of substr (as pointed in the comments) to get the same effect:

substr( $num, -3, 0, '.' );

I would hope it is more elegant / readable than the regexp solution, but I am sure it will throw off anyone not used to substr() being used as an lvalue.

2

Golf anyone?

substr $num,-3,0,'.';
2

Am I missing something here? If you have a number between 999999 and 1000 that should represent a number between 999.999 and 1.000 you should be able to just:

$num /= 1000.000;

/PF

1

How about this?

$num = reverse $num;
$num =~ s/\d{3}(?=\d)/$&./g;
$num = reverse $num;

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