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Guys how do i check an empty input in perl? Including spaces,tabs,newlines etc..

here's my sample code but its not working: what am i doing wrong?

my $number=int (1+rand 100);

while (<>) {
    chomp $_;
    last if ($_=~/exit|quit/i or $_ eq $number);
    print "too high! \n" if (defined $_ && $_ > $number);
    print "too low!\n" if (defined $_ && $_ < $number);
    print $_;

}

So basically, the user input something, if it's a number it compares to the default random number. It prints low or high depending on the number. But when i just press enter without entering something it still goes to that if statement and gives an error that what i entered isnt numeric (due to this code $_ < $number).

So another question is how to handle input to allow only the word "exit" or "quit" and numbers. Other than that it exits.

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2 Answers 2

The while(<>){...} will loop as long as the return value of the <> is defined, i.e. you aren't at EOF. So $_ is always defined inside the loop.

To assert that some input is numeric, you can use looks_like_number from Scalar::Util or use a simple regex:

unless (/\A[0-9]+\z/) {
  print "not numeric!\n";
  next;
}

After that, we can treat the value of $_ as a number integer, and can be sure that use warnings won't complain. E.g.

# remove newline from input
chomp;
# Test for abort condition
last if /\b(?:quit|exit)\b/;
# Assert numeric input
unless (/\A[0-9]+\z/) {
  print "not numeric!\n";
  next;
}
# Check input against secret $number
if ($_ == $number) {
  print "Correct!\n";
  last;
} elsif ($_ < $number) {
  print "too low\n";
} elsif ($_ > $number) {
  print "too high\n";
}
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no, the while loop will not terminate on empty input. i tested it. Instead i got an error saying that "" is not numeric –  ruggedbuteducated May 9 '13 at 6:20

Sorry for the silly question, Got the answer to my first question.

you just have to add this code to the first condition

 $_=~/^\s*$/

which compares if the input is any whitespace

and for the second one to limit only the "exit" and "quit" as a valid non digit input add this one to the first regex comparison in the first condition

$_=~/(exit|quit|\D)/i

notice the \D which only matches non digit characters. But since its an "OR" it will short circuit once a specific non digit character (exit or quit) is entered, terminating the loop instantly.

Thanks guys

share|improve this answer
    
Note: the \D character class can include many numeric characters that Perl can't convert to a number—the \D generally sees numbers in the Unicode sense. The charclass [^0-9] (match anything that can't be an ASCII integer digit) may be slightly more correct. –  amon May 9 '13 at 6:39
    
ok thanks. Gonna edit it. –  ruggedbuteducated May 9 '13 at 6:45

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