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What do I gain if I write to a real reference like \*STDOUT instead of a typeglob like *STDOUT?

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3 Answers 3

up vote 7 down vote accepted

One is a typeglob, another is a reference to it.

As far as I know, the main practical difference is that you can NOT bless a typeglob into an object, but you CAN bless the typeglob reference (which is what IO::Handle does)

This distinction is discussed in detail in "Perl Cookbook", Recipe 7.16. "Storing Filehandles in Variable".


Another difference is that assigning a glob creates an alias to the ENTIRE glob, whereas assigning a glob reference does the expected (as discussed in perldoc perlmod, "Symbol Tables" section. To illustrate:

@STDOUT=(5);
$globcopy1 = *STDOUT; # globcopy1 is aliased to the entire STDOUT glob, 
                      # including alias to array @STDOUT
$globcopy2 = \*STDOUT; # globcopy2 merely stores a reference to a glob, 
                       # and doesn't have anything to do with @STDOUT

print $globcopy1 "TEST print to globcopy1/STDOUT as filehandle\n";
print "TEST print of globcopy1/STDOUT as array: $globcopy1->[0]\n\n";
print $globcopy2 "TEST print to globcopy2/STDOUT as filehandle\n";
print "TEST print of globcopy2/STDOUT as array: $globcopy2->[0]\n\n";

Produces:

TEST print to globcopy1/STDOUT as filehandle
TEST print of globcopy1/STDOUT as array: 5

TEST print to globcopy2/STDOUT as filehandle
Not an ARRAY reference at line 8.

As a side note, a rumor that the typeglob reference is the only way to pass the filehandle into a function is not the case:

sub pfh { my $fh = $_[0]; print $fh $_[1]; }

pfh(*STDOUT, "t1\n");
pfh(\*STDOUT, "t2\n");

# Output:
# t1
# t2
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1  
There's also a great axample of this in "Object Oriented Perl" by Damian Conway on page 158ff. –  simbabque May 7 '12 at 7:22

You get a reference to the typeglob named STDOUT. See perlref.

Here's what it says on this:

It isn't possible to create a true reference to an IO handle (filehandle or dirhandle) using the backslash operator. The most you can get is a reference to a typeglob, which is actually a complete symbol table entry. But see the explanation of the *foo{THING} syntax below. However, you can still use type globs and globrefs as though they were IO handles.

perldata is also helpful.

In conclusion, it's like building a reference to a filehandle. You can use it as one. But with the typeglob, you can do other things as well. The symbol table holds the values of all variables named STDOUT, that is $STDOUT, @STDOUT, %STDOUT and even&STDOUT, as well as the filehandle. You can access them all with just the one typeglob. But In case of STDOUT you probably don't have to worry about it because you will not likely have a %STDOUT in your code.

This kind of reference also is the only way to pass a filehandle as an argument to a function.

sub myprint {
  my $fh = shift;
  print $fh "Hello World!\n";
}
&myprint(\*STDOUT);
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It's good information, but it doesn't actually answer the question of what you gain from using a reference instead of a glob –  DVK May 7 '12 at 7:15
    
@DVK: happy? ;-) –  simbabque May 7 '12 at 7:20
    
sorry, that last one is not really true. Did you try &myprint(*STDOUT); ? Also, see the example in my answer. –  DVK May 7 '12 at 7:30
    
You're right, but still you cannot say &myprint(\STDOUT). –  simbabque May 7 '12 at 7:31
    
Correct, but how's \STDOUT related to the original question? –  DVK May 7 '12 at 7:36

* indicates a typeglob, which is an entry in the symbol table. Eg:

my $x;
print *x;

Will yield *main::x.

\ indicates a reference. Try this:

use YAML::XS;

print Dump *STDOUT;
print Dump \*STDOUT;

The first one is a glob, the second is a reference. Presumably when you do this:

my $fh = *STDOUT;

You're actually copying the glob into a new entry, although I do not think this is very meaningful -- if you now close STDOUT, $fh is closed too. This:

my $fh = \*STDOUT;

is just a reference, and that's what's preferred. See also:

http://perldoc.perl.org/perldata.html#Typeglobs-and-Filehandles

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+1 for showing the results of dumping the glob and its reference. –  Jens May 7 '12 at 7:19
1  
You can also get to the different slots of the typeglob by first dereferencing the typeglob and then adding the sign of the type we want. If we e.g. want what is stored in $STDOUT we could now say ${*$fh} which looks weird, but works. We need the curlies because otherwise perl would think we mean $* and $fh. –  simbabque May 7 '12 at 7:27

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