FAQ 4.3 Why isn't my octal data interpreted correctly?

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4.3: Why isn't my octal data interpreted correctly?

(contributed by brian d foy)

You're probably trying to convert a string to a number, which Perl only
converts as a decimal number. When Perl converts a string to a number,
it ignores leading spaces and zeroes, then assumes the rest of the
digits are in base 10:

my $string = '0644';

print $string + 0; # prints 644

print $string + 44; # prints 688, certainly not octal!

This problem usually involves one of the Perl built-ins that has the
same name a Unix command that uses octal numbers as arguments on the
command line. In this example, "chmod" on the command line knows that
its first argument is octal because that's what it does:

%prompt> chmod 644 file

If you want to use the same literal digits (644) in Perl, you have to
tell Perl to treat them as octal numbers either by prefixing the digits
with a 0 or using "oct":

chmod( 0644, $file); # right, has leading zero
chmod( oct(644), $file ); # also correct

The problem comes in when you take your numbers from something that Perl
thinks is a string, such as a command line argument in @ARGV:

chmod( $ARGV[0], $file); # wrong, even if "0644"

chmod( oct($ARGV[0]), $file ); # correct, treat string as octal

You can always check the value you're using by printing it in octal
notation to ensure it matches what you think it should be. Print it in
octal and decimal format:

printf "0%o %d", $number, $number;



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