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In Perl, if I want foo() to do exactly what bar() does, I can do this:

sub foo {return bar(@_);} 

Is there a better way? Something closer to Ruby's "alias" operator?

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2  
Do you want foo() to continue to do the same thing as bar() no matter what, i.e. even if bar() gets redefined? –  Narveson Dec 22 '10 at 20:35
1  
Thanks to everyone who answered. Both these functions are in a library, so I don't plan to redefine either. "*foo = \&bar;" works fine for me! –  barrycarter Dec 22 '10 at 21:37

4 Answers 4

up vote 20 down vote accepted

The A better way, employed by Exporter and similar modules, is to edit your symbol table:

*foo = \&bar;

(edited because this is Perl we are talking about)

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while globs are the entries of symbol tables, they aren't the same thing at all; you can make that kind of assignment to a glob whether or not it is in a symbol table. –  ysth Dec 22 '10 at 18:05
    
@ysth not sure I get your point, or how it applies to my answer but not to yours. Sure, globs have uses other than accessing the symbol table (filehandles, for example). But assigning to a glob is the canonical way of editing the symbol table (and the only way I'm comfortable with). –  mob Dec 22 '10 at 18:37
2  
I guess I don't consider that to be accessing the symbol table; it's just changing a glob, one that happens to be a value in the symbol table. $::{foo} = *bar is accessing the symbol table. *foo= seems more similar $foo= than to using %::, etc. –  ysth Dec 22 '10 at 20:43
*foo = \&bar;

Assigning a reference to a glob replaces that portion of the glob with the thingy referred to. So this makes &foo exactly the same as &bar.

*foo = *bar;  # or \*bar

This also works, but also aliases the scalar, array, hash, filehandle, and format between foo and bar.

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There is another way to do it:

sub foo {goto &bar}

This preserves the equivalence between foo and bar even if bar is subsequently redefined.

Here is a detailed demo:

use strict;
use warnings;

sub bar {
    print "This is the original bar().\n";
}

*bar_copy = \&bar;

sub bar_link {
    goto &bar;
}

print "Executing bar_copy:\n";
bar_copy();
print "Executing bar_link:\n";
bar_link();

*bar = sub {print "This is bar(), redefined.\n"};

print "Executing bar_copy after redefinition:\n";
bar_copy();
print "Executing bar_link after redefinition:\n";
bar_link();

which prints

Executing bar_copy:
This is the original bar().
Executing bar_link:
This is the original bar().
Subroutine main::bar redefined at C:\scripts\temp.pl line 19.
Executing bar_copy after redefinition:
This is the original bar().
Executing bar_link after redefinition:
This is bar(), redefined.
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Yep. Common trick with ->can and AUTOLOAD, too. –  ephemient Dec 23 '10 at 4:43

Courtesy Perlmonks:

sub bar { print( "Hello World\n" ); }

BEGIN { *foo = \&bar; }

foo();
bar();
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4  
I think you meant sub bar ... –  Eric Strom Dec 22 '10 at 19:19
    
@Eric - good catch. I noticed that the copy/pasted example was different from OP's question and "fixed" it. Half-way. Duh. Thanks runrig! –  DVK Dec 22 '10 at 22:12
1  
Is the BEGIN block required here? –  Michael May 23 at 21:08

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