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I needed to add 50 digit numbers, so I dealt with them as "strings" and wrote my own functions for adding them together. Afterwards, for the hell of it, I tried this:

readFile(shift (@ARGV));

sub readFile
{
    my $file = shift; #contains a bunch of 50-digit numbers
    my $result = 0;

    open (my $inFile, $file);

    while (<$inFile>)
    {
        chomp;
        $result += $_;
    }

    print $result;
}   

and to my astonishment it worked. I don't understand. In every other language I've ever used, you would have to use some sort of special variable to do this. Does Perl automatically detect that you have a very large number and handle it accordingly? If so, if one knows ahead of time that they're going to be dealing with very large numbers, is there a Perl module that is more efficient than however Perl deals with them by default?

Thanks in advance.

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1 Answer 1

up vote 9 down vote accepted

Perl will handle them correctly, but as double-precision floating-point values, so your result will not have anywhere near fifty digits of precision. You can use the bigint pragma to get transparent big-integer handling, however: just tack use bigint; into your code. (This obviously won't perform as well as the floating-point math, but it beats having to manipulate strings yourself.)

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3  
Much better than using bigint is focusing its effects on the variables that need it with use Math::BigInt; my $bigvar = Math::BigInt->new("12345...789"); (and then all operations on $bigvar are overloaded to preserve its bigness) –  ysth Jun 10 '13 at 5:19
    
In this case, my $result = Math::BigInt->new('0'); –  ikegami Jun 10 '13 at 6:49

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