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Below is my code to check if the word starts with a digit:

    #!/usr/bin/perl

    my $domain_name = @ARGV;

    my $first_letter = substr(($domain_name),0,1);
    print STDERR "first letter is $first_letter \n";

    if($first_letter eq  '0' || $first_letter == 1
       || $first_letter == 2 || $first_letter == 3 || $first_letter == 4
       || $first_letter == 5 || $first_letter == 6 || $first_letter == 7
       || $first_letter == 8 || $first_letter == 9) {

            print STDERR "$first_letter start with digit\n";

    } else {

            print STDERR "$domain_name does not starts with a digit\n";
    }

But when I am printing the $first_letter, it is always displaying 1. Please help.

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\d matches 460 characters. If you just want to match 0..9, use [0-9] instead. –  ikegami Jul 27 '12 at 18:16

2 Answers 2

up vote 3 down vote accepted
print "first letter is digit\n" if $ARGV[0] =~ /^\d/;
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First problem: @ARGV is an array. When you do my $domain_name = @ARGV;, you are using an "array" in the context of a "scalar" (i.e. simply put, you're trying to assign an array to a scalar).

In such cases, perl replaces the usage of the array, with the number of elements in the array. In this case 1 (because the @ARGV array appears to contain 1 element). Instead, what you really want to do is find out if the first element in $ARGV[0], the first argument, is a digit.

Second problem: You should use regular expressions for this sort of thing. A correct implementation would be a single line:

print "First letter is digit\n" if $ARGV[0] =~ /^\d/;

=~ /^\d/ means: 'starts with a digit'.

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