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I am reading $digit from infile and want to print it to outfile. But the Perl script is giving an error saying 'Global symbol "$digit" requires explicit package name'. But, if I do declare it globally , $digit='', then the this value is printed to the outfile instead of the value extracted/read from infile. Any suggestions as to what should be done?

This how I am doing it:

    my $digit=''; 
    open (DATA, "</usr/infile") || die "cant open infile\n"; #file from digit has to read

    while (<DATA>){
        ($digit)= $_=~ /\s9\s(\d+)/; #regex to capture digit '234' from ' 9 234'
        if ($digit ne ""){
        print "digit is $digit\n"; # this prints fine
        }
    }

    open (FILE, ">/usr/outfile") || die "cant open outfile\n"; #file to which digit has to be finally written
    print FILE "9   $digit"; #$digit takes in the value declared globally i.e. ''

    close(DATA);
    close (FILE);
share|improve this question
2  
unrelated to your problem: please include $! in your die message. eg: die "/usr/infile:$!" –  William Pursell Aug 5 '09 at 3:08
5  
The DATA filehandle is special. Don't break the reasonable assumptions of people who know Perl. Besides, you should be using lexical filehandles anyway. So, use open my $data ... –  Sinan Ünür Aug 5 '09 at 3:37
    
@Sinan: Will that help with my question? –  shubster Aug 5 '09 at 3:42
3  
Please show us inputs and outputs demonstrating the problem. In your latest edit, there is only one variable $digit, lexically scoped to cover the whole script (more or less) and the while loop. What's happening, then, is that the final line of input file /usr/infile does not match your regex, thus setting $digit to undef, which looks a lot like the blank string when you print it. :) –  pilcrow Aug 5 '09 at 3:50
1  
@shubster I don't know if that will help with your current question but it sure will cut the amount of cruft one has to read through to be able to help you. Help others help you. –  Sinan Ünür Aug 5 '09 at 4:00

4 Answers 4

up vote 2 down vote accepted

Your $digit is scoped within the while loop and then you are trying to access it outside it with the line:

print FILE "9   $digit";

You must declare it outside the while loop for this to be visible by that line.

Or better yet just open your outfile before you loop and write the digit to the outfile within the loop and keep your $digit variable scoped within the loop.

If you only want the last instance that matches your regex then:

#!/usr/bin/perl
use strict;

open (DATA, "infile.txt")  || die("cant open infile\n");   

my $digit = "";
while (<DATA>) {
    chomp;
    if (/\s9\s(\d+)/) #regex to capture digit '234' from ' 9 234' 
    {
       print "Found digit is $1\n"; # 
       $digit = $1;
    }
}
close(DATA);

if ($digit ne "") {
open (FILE, ">outfile.txt") || die("cant open outfile\n"); 
print FILE "9   $digit\n";
close(FILE);
}
else
{
    print "No digit found!\n";
}
exit;

If you want to get all instances in the infile where your regex matches, the following should do the trick.

#!/usr/bin/perl
use strict;

open (DATA, "</usr/infile")  || die("cant open infile\n");   
open (FILE, ">/usr/outfile") || die("cant open outfile\n"); 

while (<DATA>) {
    chomp;
    if (/\s9\s(\d+)/) #regex to capture digit '234' from ' 9 234' 
    {
       print "Found digit is $1\n"; # 
       print FILE "9   $1\n";
    }
}


close(DATA);
close (FILE);
exit;
share|improve this answer
    
@RC: as I said if I do declare it outside then it takes in that value (i.e. the value with which it was declared) and not the value being captured using regex. So what you are suggesting wont work. –  shubster Aug 5 '09 at 3:05
    
The reason it isn't being captured when you declare it outside is b/c the my $digit; inside your while loop is the one being assigned by the regex, not the global one. Since the $digit inside the while goes out of scope at the while closing brace, you end up writing to outfile using the global $digit value instead of the one you set in the loop. –  RC. Aug 5 '09 at 3:15
    
@RC: So is there a way to write $digit to outfile with value it gets captures using regex? –  shubster Aug 5 '09 at 3:18
    
sure....I'll put the code in my answer –  RC. Aug 5 '09 at 3:21
    
@RC: thanks! that works perfectly. –  shubster Aug 5 '09 at 3:58
while (<DATA>){
    my ($digit)= $_=~ /\s9\s(\d+)/; #regex to capture digit '234' from ' 9 234'
    if ($digit ne ""){
    print "digit is $digit\n"; # this prints fine
    }
}

Lexical variables (the ones created with my) exist within the scope they are declared, so $digit is created and destroyed each time through the loop.

share|improve this answer
    
@Chas.Owens: So is there any other way to write $digit to another file? –  shubster Aug 5 '09 at 3:16

Don't declare $digit with my inside your while() loop; declare it just outside:

my $digit;
while( <DATA> ) {
    # stuff that sets $digit... 
}

open( FILE , '>out' );
print FILE $digit;
share|improve this answer
2  
Furthermore, don't use my ($digit) inside the loop because that declares another variable called $digit. –  Greg Hewgill Aug 5 '09 at 3:08
    
Right, once you've declared $digit once with my, don't declare it again, just use it. @RC, what you're saying happens will happen if you use my more than once -- the variable inside the while is getting shadowed. –  genehack Aug 5 '09 at 3:09
    
@genehack: As I mentioned, on doing that the '$digit' bring written to 'out' takes in the value with which it was declared i.e '' and not the one which is captured using regex. –  shubster Aug 5 '09 at 3:10
    
@shubster post the revised code that you say isn't working then -- at this point there are 3 people (me, Greg, and RC) all telling you the exact same thing, so if you're going to claim it's not working, show what you're doing that isn't working -- because from what you've said so far, what all three of us has said is, um, right. –  genehack Aug 5 '09 at 3:15
    
@genehack: I have updated the code. –  shubster Aug 5 '09 at 3:21

You have declared $digits to be local to the scope of the while loop by using my. The $digit in the print statement is out of scope and that is what is causing the message.

To correct this, declare my $digit before the while loop or declare it with our instead of my to make it global.

I would do the following:

use strict;
use warnings;

my $digit = "None";  # None if there are no digits found

open (DATA, "</usr/infile") || die "cant open infile\n"; #file from digit has to read
while (<DATA>){    
    ($digit) = $_=~ /\s9\s(\d+)/; #regex to capture digit " 9 234"    
    if ($digit ne ""){    
        print "digit is $digit\n"; # this prints fine    
    }
}
open (FILE, ">/usr/outfile") || die "cant open outfile\n"; #file to which digit has to be finally written
print FILE "9   $digit";
close(DATA);
close(FILE);

If you did not get a digit, you would get None for the $digit.

Hope this helps.

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