Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
use strict;

my $world ="52";

my $in = "42" ;

my $world="42";

my $out = "good" ."good";

chop($out);

print $out;

Do not worry about the code.The question is that I used my $world in two different lines but compiler didn't give any error but if we consider C language's syntax then we will get the error because of the redeclaration of variable. Why don't perl gives any error for redeclaration. I have one more question: What is the size of a scalar variable ?

share|improve this question
    
Avoid chop, use chomp instead. chop always removes the last character, chomp removes the line ending (as defined by the $/). If the current line ending is CRLF, chop will leave you with a CR left in your string. –  Chas. Owens Jun 29 '11 at 15:40
1  
Well, avoid chop if you only want to remove a line ending. If you want to remove the last character no matter what it is, chop is still the tool to use. –  brian d foy Jun 29 '11 at 16:51
    
If you have a completely separate question about the size of a variable, make a separate post. –  brian d foy Jun 29 '11 at 16:55
2  
It sounds like you need to start from the beginning of Perl. Learning Perl, 6th Edition just came out this week :) –  brian d foy Jun 29 '11 at 16:58
    
btw redeclaration is not a syntax error! rather it is a logical/semantic error in C –  Grijesh Chauhan Aug 31 '13 at 19:03

3 Answers 3

up vote 11 down vote accepted

1/ Variable redeclaration is not an error. Had you included "use warnings" then you would get a warning.

2/ By "size of scalar variable" do you mean the amount of data that it can store? If that's the case, Perl imposes no arbitrary limits.

You seem to be posting a lot of rather simple questions very quickly. Have you considered reading "Learning Perl"?

share|improve this answer
    
not yet sir Im just learning from the internet and now im at if else statements i just got a doubt becuase in c int takes 2 bytes and char 1 byte so similarly i wanted to know is there any size for scalar variable in perl if there is no size then the programs gets much tougher right –  cody Jun 29 '11 at 11:47
8  
Learning from the internet can be a dangerous idea. There are a large number of inaccurate and outdated tutorials out there. I hope you started from learn.perl.org. –  Dave Cross Jun 29 '11 at 12:24

The question is my $world i used it in two different lines but compiler said no error but to the c we get error as redclaration of variable but why not in perl.

Simply because Perl isn't C, and redefining a variable isn't an error condition.

It can be a cause of unexpected behaviour though and would be picked up if you had use warnings; (as has been suggested to you before).

What is the size of scalar variable ? is there any size?

Define 'size'. Bytes? Characters? Something else? You might be looking for length

share|improve this answer

Because Perl likes to be robust. If you had warnings turned on, you would have heard about it.

"my" variable $world masks earlier declaration in same scope at - line 7.

Although USUW (use strict; use warnings;) is a good development practice, so would be using autodie--if autodie worried about syntax warnings. But the following, concept is roughly the same, to make sure that you're not avoiding any warnings.

BEGIN { $SIG{__WARN__} = sub { die @_; }; }

The above code creates a signal handler for warnings that just dies instead. However, I think this is better for a beginner:

BEGIN {
    $SIG{__WARN__} 
        = sub { 
            eval { 
                # take me out of the chain, to avoid recursion
                delete $SIG{__WARN__};
                # diag will install the warn handler we want to use.    
                eval 'use diagnostics;';  
                $SIG{__WARN__}->( @_ ); # invoke that handler
            };
            exit 1; # exit regardless of errors that might have cropped up.
        }; 
}

Anywhere you want, you can tell perl that you are not interested in changing your code to issue a particular category of warnings (and diagnostics will tell you the category!) and if you explicitly tell perl no warnings 'misc', not only will it not warn you, but it will also not fire off the warning handler, which kills the program.

This will give you a more c-like feel--except that c has warnings too (so you could implement a lexical counter as well...oh well.)

share|improve this answer
    
Why should you use English for $EVAL_ERROR, which you don't use, but leave @_ in there instead of @ARGS :)? –  brian d foy Jun 29 '11 at 16:54
    
@brian d foy: Damion's reasons in PBP: The '_' variables are not obscure, kinda like $() in jQuery. –  Axeman Jun 29 '11 at 17:35
    
But you're not using $EVAL_ERROR. PBP is great, but some of its advice is outdated, overkill or suspect. I'd put this one in overkill. IMO I'd count @_, $@, $!, $_ and $1 together in the family of "seen often enough that they're not obscure" symbolic variables. If you don't know what $@ is you're not going to be able to read other people's Perl. –  Schwern Jun 29 '11 at 19:02
    
@Schwern, ah the use is a holdover from an earlier generation of code, where I was (at the end of the eval). I think the principle in PBP is sound and you have to draw a line somewhere. And 3 After fitful attempts to use msx flags on every regex, I finally gave that up. –  Axeman Jun 30 '11 at 11:44

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.