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With perl -e '$string="a";print ++$string;' we get b,
but with perl -e '$string="b";print --$string;' we get -1.

So, if we can increment why can't we decrement?

"The auto-decrement operator is not magical" by perlop

Perl give us lots of facilities, why not this one? This is not criticism, but wouldn't be expected similar behavior for similar operators? Is there any special reason?

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I think your inner quotes need to be double quotes. – Chris Lutz Jun 23 '11 at 17:22
yep, that's in the docs, increment is magical, not decrement (see man perlop, search for Auto-increment) – mirod Jun 23 '11 at 17:28

3 Answers 3

up vote 24 down vote accepted

perlop(1) explains that this is true, but doesn't give a rationale:

The auto-increment operator has a little extra builtin magic to it. [If applicable, and subject to certain constraints,] the increment is done as a string, preserving each character within its range, with carry[...]

The auto-decrement operator is not magical.

The reason you get -1 is because when interpreted as a number, "b" turns into 0 since it has no leading digits (Contrarily, "4b" turns into 4).

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1 good question, 1 perfect answer. \m/ +1 to both! – Chankey Pathak Jun 23 '11 at 19:28

There are at least three reasons:

  1. because there isn't any great need for it
  2. the magic of auto-incrementing has been seen to be faulty, and there is no reason implement auto-decrementing in the same faulty way
  3. the magic of auto-incrementing cannot be fixed because p5p doesn't like to break backwards compatibility

Perl 6 on the other hand does not suffer from a need for backwards compatibility, and therefore has better behavior for auto-incrementing strings and has auto-decrementing as well. See the S03 spec.

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Good one, thanks for the link. :) – Chankey Pathak Jun 25 '11 at 11:49

Perl give us lots of facilities, why not this one?

Because it is not intuitive what values should precede the "lowest" character in range. It may make sense that "A" + 1 should be "B", and that "B" + 1 should be "C". And therefore "B" - 1 should be "A". But what should "A" - 1 be?

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Why not follow the ASCII table? – TLP Jun 23 '11 at 20:03
@TLP: Because that wouldn't follow ++'s lead. If you do perl -e '$str="z"; print ++$str' you get aa, which definitely doesn't follow z in the ASCII table. – CanSpice Jun 23 '11 at 20:44
"A"-1 is ambiguous but it could be defined as -1 or any other smart solution. All the others have a logic result! – cirne100 Jun 23 '11 at 23:14

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