0

Following code is showing different output than expected. 'i' should be the ans.

Code:

$var = 'i';
$var++;
print $var;
$var--;
print " * ",$var;

Result:

j ***** -1

Can anyone please explain behavior? I know i am missing a very silly thing.

Thanks

  • 'i' should be the ans. What does this mean? – TLP May 30 '13 at 10:08
7

The auto-increment operator ++ is "magical", in that it can also increment non-numerical strings. So i becomes j. The auto-decrement operator -- does not have this "magic" feature. Therefore the string j is converted to a number, which will be 0, then decremented to -1.

This is documented in perldoc perlop:

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:

print ++($foo = "99");    # prints "100"
print ++($foo = "a0");    # prints "a1"
print ++($foo = "Az");    # prints "Ba"
print ++($foo = "zz");    # prints "aaa"

undef is always treated as numeric, and in particular is changed to 0 before incrementing (so that a post-increment of an undef value will return 0 rather than undef).

The auto-decrement operator is not magical.

5

There is no type char in perl. 'i' is the same string as "i". The question is why ++ does increase the value of the char. This question has been discussed here: Increment (++) and decrement (--) strings in Perl

  • 3
    TL;DR: increment is magic and works on strings; decrement is not, and always treats the scalar as a number. – amon May 30 '13 at 10:09
  • @TLP (The tl;dr refers to the linked answer, not to this answer, which does not contain the information I summarized) – amon May 30 '13 at 10:12

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