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my $list = "1 3";
my @arr  = split " ", $list;
my $c    = $arr[0] ^ $arr[1];
print $c, "\n";

The above is giving an abnormal character.

It should give answer as 2, since 1 XOR 3 is 2.

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2  
You're splitting your array into @arr but then trying to manipulate $c1, $c2, $c. That's not going to work. Also, you're trying to do bitwise operations on strings. You're trying to XOR the string "1" rather than the number 1. –  Sobrique Aug 27 '14 at 14:12

2 Answers 2

^ considers the internal storage format of its operand to determine what action to perform.

>perl -E"say( 1^3 )"
2

>perl -E"say( '1'^'3' )"
☻

The latter xors each character of the strings.

>perl -E"say( chr( ord('1')^ord('3') ) )"
☻

You can force numification by adding zero.

>perl -E"@a = split(' ', '1 3'); say( (0+$a[0])^(0+$a[1]) )"
2

>perl -E"@a = map 0+$_, split(' ', '1 3'); say( $a[0]^$a[1] )"
2
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Is there any particular advantage to implict casting by performing an arithmetic op as opposed to explicitly with e.g. int()? –  Sobrique Aug 27 '14 at 14:33
    
@Sobrique, They're both explicitly used math operations which are implicitly used to return a number. 0+$_ is more general purpose —it works for all numbers— while int($_) only works for integers (which is sufficient in this case). –  ikegami Aug 27 '14 at 14:36
    
@Sobrique, In addition to working in more circumstances, 0+ the symbol for numification used by overload.pm, and it parallels "". for stringification. –  ikegami Aug 27 '14 at 14:51
1  
you only have to numify one of the operands for it to be a numeric xor –  ysth Aug 27 '14 at 15:35

Two problems here:

  • $c1 and $c2 are undefined at the start.
  • They're strings.

(I'll assume there's a bit missing, such that 'c1' and 'c2' get extracted as first/last element of the list, 1 and 3 respectively)

Try:

$list="1 2 3";
@arr=split(" ",$list);
$c=int($arr[0])^int($arr[2]);
print "$c";

the int function explicitly casts to a numeric value.

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