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In Perl, lets say I have the letter A in variable called $character, and I want it to go up to B, how would I do this? The $character can also be numbers (0-8) and I want the method work on both of them? (Something like binary shift, but not exactly sure if it is something like that). Thanks in advance.

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3 Answers 3

up vote 8 down vote accepted

The increment operator may be what you want. However, do make sure that you want the boundary behavior. For instance:

my $character = 'Z';
print ++$character;

Produces:

AA

This is the "with carry" from http://perldoc.perl.org/perlop.html#Auto-increment-and-Auto-decrement.

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Perfect, thank you very much! –  Grigor Jul 16 '12 at 3:28
    
This is the same answer as @perreal's, other than the warning about the carry. So I'm confused that this one worked and the other didn't? –  Mark Reed Jul 16 '12 at 3:29
    
@Mark Reed, Probably because he printed the result of $character++ instead of $character when he used perreal's code. It's hard to tell for sure, since he didn't provide the message he actually got or the code he actually used. –  ikegami Jul 16 '12 at 3:35

Simple increment should do what you want:

my $character = "A";
$character++;

from perl-doc:

The auto-increment operator has a little extra builtin magic to it. If you increment a variable that is numeric, or that has ever been used in a numeric context, you get a normal increment. If, however, the variable has been used in only string contexts since it was set, and has a value that is not the empty string and matches the pattern /^a-zA-Z*0-9*\z/ , the increment is done as a string, preserving each character within its range, with carry

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it said could not increment because it is not numeric –  Grigor Jul 16 '12 at 3:17
2  
I've never seen Perl issue that message. What version? This works fine here: perl -le 'my $character="A"; $character++; print $character;' => B. –  Mark Reed Jul 16 '12 at 3:19
4  
That is not a message Perl issues. The closest is "Argument ... isn't numeric", but I don't see how you could have gotten that from ++. Please use the code and the input you actually used. –  ikegami Jul 16 '12 at 3:32

Just to add to the other responses:

Note that the magical autoincrement only works if the variable in question has never been used in a numeric context. Thus:

perl -e '$x = "A"; ++$x; print $x'  # prints "B"

But:

perl -e '$x = "A"; $x + 0; ++$x; print $x'  # prints "1"

To be guaranteed of always getting the magical autoincrement, you should stringify the variable explicitly beforehand:

perl -e '$x = "A"; $x + 0; $x = "$x"; ++$x; print $x'  # prints "B"

It may be possible to skip this step if you know the history of the variable you're incrementing and can verify that it has never been used in a numeric context.

Playing with magic can be tricky!

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