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In Java I would do

System.out.println(new BigInteger(new byte[]{0,(byte)171,52,33}).intValue());

How would you do it in Perl?

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1  
It would be helpful if you showed the output of that. –  ysth Jan 3 '11 at 7:43
    
the output should be 11220001 –  Eyal Jan 3 '11 at 10:29

2 Answers 2

up vote 2 down vote accepted

Use pack and unpack:

C:\Users\pgp\Documents\src\tmp>cat pack.pl
use Modern::Perl; # strict, warnings, v5.10 features

say unpack "N", pack "C4", 0, 171, 52, 33; # big endian
say unpack "V", pack "C4", 0, 171, 52, 33; # little endian

C:\Users\pgp\Documents\src\tmp>perl pack.pl
11220001
557099776

I can't remember what endianness Java specifies, but you can take your pick.

EDIT: as ysth helpfully points out, this has a 32-bit limit. I think there are pack options up to 64 bits, but no further. If you need arbitrary precision, his answer is better.

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I was assuming the BigInteger part meant the need to support arbitrarily large numbers... –  ysth Jan 3 '11 at 9:22
    
@ysth yes, that's a reasonable interpretation, although the OP didn't specify explicitly. –  Philip Potter Jan 3 '11 at 9:46

I'm guessing you would want something like:

#!/usr/bin/perl
use strict;
use warnings;
use 5.010;
use Math::BigInt;
say Math::BigInt->new( '0x' . join('', map sprintf('%.2x', $_), 171, 52, 33) );

This converts the array elements to a hex string 0xab3421 and uses that to create a bigint.

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