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Sorry for may be not clear question, but I'm asking it, cause I don't like to read smth and do not understand what I'm reading about.

Here is the snippet from the "Programming Perl":

Since the way in which you dereference something always indicates what sort of referent you’re looking for, a typeglob can be used the same way a reference can, despite the fact that a typeglob contains multiple referents of various types. So ${*main::foo} and ${\$main::foo} both access the same scalar variable, although the latter is more efficient.

For me it appears a sort of wrong, and that it would be right if it were that this way:

you can use a typeglob instead of the scalar variable because reference is always a scalar and compiler knows what you need.

Cause from the book's text reader can assume that reference can be something else than scalar variable (i.e. scalar entry in symbolic table). Once I've saw a warning: use of array as a reference is deprecated, so it appears to me that long ago this paragraph in the "Programming Perl" was meaningful, cause references could be a not just a scalars, but in the new 4-th edition it simply was not changed to comply with modern Perl.

I checked the errata page for this book but found nothing.

Is my assumption correct? If no, would be somebody so pleasant to explain, where I'm wrong.

Thank you in advance.

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3 Answers 3

up vote 13 down vote accepted

No. What it's saying is that unlike a normal reference, a typeglob contains multiple types of things at the same time. But the way in which you dereference it indicates which type of thing you want:

use strict;
use warnings;
use 5.010;

our $foo = 'scalar';
our @foo = qw(array of strings);
our %foo = (key => 'value');

say ${ *foo };                  # prints "scalar"
say ${ *foo }[0];               # prints "array"
say ${ *foo }{key};             # prints "value"

You don't need a special "typeglob dereferencing syntax" because the normal dereferencing syntax already indicates which slot of the typeglob you want to dereference.

Note that this doesn't work with my variables, because lexical variables aren't associated with typeglobs.

Sidenote: The "array as a reference" warning is not related to this. It refers to this syntax: @array->[0] (meaning the same as $array[0]). That was never intended to be valid syntax; it slipped into the Perl 5 parser by accident and was deprecated once Larry noticed.

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Should I read it as But the way in which you dereference it indicates which type of reference will be created implicitly? –  user907860 Aug 24 '12 at 9:43
2  
@caligula, no, because you're not creating a reference. A typeglob is a sort of reference already. You're just selecting which slot in it to dereference. –  cjm Aug 24 '12 at 9:47

although this doesn't exactly answer your question, I can try to tell you what I experience with typeglobs

they are more dynamic than scalars and references, because using a typeglob is sort of a way telling the compiler "here is a hint, guess yourself what you have to do with it"

a reference always has a strict type and target. a typeglob may just contain a string, indicating that it's supposed to point to some variable(name) or filehandle (like STDOUT) or some other value, that's accessible through this string

there are perlish hacks to accomplish some strange things, that are only possible with typeglobs, so I think even in mordern perl they are important

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PerlGuts illustrated is an accessible way to learn about Perl internals.

http://www.cpan.org/authors/id/GAAS/illguts-0.09.pdf

The answers given so far are illustrative of what's going on, but learning how perl stores variables will let you see the answer is actually very simple and analogies are actually less clear than the implementation.

PS: You are commendable in wanting to understand - it will stand you in good stead for the future :)

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