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Here is my code:

  #!/usr/bin/perl -w
  my $name = "mark";
  my $nameRef = \$name;
  print "${$nameRef}\n";
  print "$nameRef\n";
  my $ref = $nameRef + 1;
  $$ref = "antony";
  print "$ref\n";
  print "$$ref\n";

But when I run the code I get the following error:

mark
SCALAR(0x9556cf8)
Modification of a read-only value attempted at ./stringPerl.pl line 7.

How to remove the above error?

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What exactly are you trying to do? –  fugu Jul 5 at 10:58

2 Answers 2

up vote 1 down vote accepted

The line that causes the error is:

$$ref = "antony";

That tries to asign the value "antony" to the referenced variable by $ref, but the line:

my $ref = $nameRef + 1;

It's not a valid reference. Try to replace simply by:

my $ref = $nameRef;

So $ref is the same as $nameRef, which is a reference to $name.

If you want to change a value in an array via a reference, you may write this:

my @names = ("mark");
my $nameRef = \@names;

$nameRef->[1] = "antony";

print "$names[1]\n";
print "$nameRef->[1]\n";
share|improve this answer
    
but I want to store "antony" in the next address i.e., after the one stored in $nameRef. How to do that? –  sarthak Jul 5 at 10:58
    
The next address? just define a $name2 variable, $ref2=\$name2, and do $$name2="antony". A reference (pointer) needs a referenced variable –  Miguel Prz Jul 5 at 11:01
    
I wanted to create an array of strings. By next address I mean address just after where "mark" is stored –  sarthak Jul 5 at 11:08
    
I have updated my answer to show an example –  Miguel Prz Jul 5 at 11:13
    
push @$nameRef, "anthony"; more likely to be what the OP needs. –  ikegami Jul 5 at 14:25

Perl string references are not C string pointers. You cannot take a reference and increment it to point somewhere else.

When you do my $ref = $nameRef + 1;, it actually takes the SCALAR(0x9556cf8) string and adds 1, making it a string, not a reference.

Not sure what you are trying to do exactly.

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I want to store "antony" in the address next to that stored in $nameRef –  sarthak Jul 5 at 11:02
1  
Again, perl is not C. Don't use references as you would use C points. If you want to make an array of strings, they: my @array = ['string1','string2']; –  jcaron Jul 5 at 11:10
    
@jcaron: That would make an array containing an arrayref, wouldn't it? –  Jim Davis Jul 5 at 15:39
    
@JimDavis, oooops! Indeed, it should be my @array = ('string1', 'string2'); –  jcaron Jul 5 at 16:09

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