in reply to If statement not working
Short answer: Use =~ instead of = to bind a regex against a variable.
Long answer: The $_ is the default topic. You don't need to mention it in many contexts, matching a regex being one of them. So, you can shorten the code to
if (/^[\$]\w/) { print "\nThat is a scalar data type\n"; } elsif (m/^[\@]\w/) { print "\nThat is an array data type\n"; } else { print "\nData type not found\n"; }
When you use =, it changes the contents of $_, so after the first condition, it contains the result of the regex match, not the original user input.
Also, remove the my from $_. Lexical $_ was deprecated and is not supported in modern Perl versions. Use local if you want to incorporate the code into a larger codebase.
Update:
Moreover, you can also use a hash from sigils to data types, no regex and if/else needed:
print "Enter a string and I will determine the data type: "; chomp(local $_ = <STDIN>); my %sigil2type = ('$' => 'scalar', '@' => 'array', '%' => 'hash', '*' => 'GLOB'); my $sigil = substr $_, 0, 1; my $type = $sigil2type{$sigil} || 'unknown'; say "\nThat is a $type data type.";
Update2: The $_ will be populated with the match result, not with the regex. Thanks AnomalousMonk.
map{substr$_->[0],$_->[1]||0,1}[\*||{},3],[[]],[ref qr-1,-,-1],[{}],[sub{}^*ARGV,3]
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