Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I do not get to understand how the Perl read($buf) function is able to modify the content of the $buf variable. $buf is not a reference, so the parameter is given by copy (from my c/c++ knowledge). So how come the $buf variable is modified in the caller ?

Is it a tie variable or something ? The C documentation about setbuf is also quite elusive and unclear to me

# Example 1
$buf=''; # It is a scalar, not a ref
$bytes = $fh->read($buf);
print $buf; # $buf was modified, what is the magic ?

# Example 2
sub read_it {
    my $buf = shift;
    return $fh->read($buf);
}
my $buf;
$bytes = read_it($buf);
print $buf; # As expected, this scope $buf was not modified
share|improve this question

2 Answers 2

up vote 11 down vote accepted

No magic is needed -- all perl subroutines are call-by-alias, if you will. Quoth perlsub:

The array @_ is a local array, but its elements are aliases for the actual scalar parameters. In particular, if an element $_[0] is updated, the corresponding argument is updated (or an error occurs if it is not updatable).

For example:

sub increment {
  $_[0] += 1;
}

my $i = 0;
increment($i);  # now $i == 1

In your "Example 2", your read_it sub copies the first element of @_ to the lexical $buf, which copy is then modified "in place" by the call to read(). Pass in $_[0] instead of copying, and see what happens:

sub read_this {
  $fh->read($_[0]);  # will modify caller's variable
}
sub read_that {
  $fh->read(shift);  # so will this...
}
share|improve this answer
    
Thanks a lot for the pointer to the relevant doc, and your trick works, great thanks –  Alex F Jun 10 '10 at 6:37

read() is a built-in function, and so can do magic. You can accomplish something similar with your own functions, though, by declaring a function prototype:

sub myread(\$) { ... }

The argument declaration \$ means that the argument is implicitly passed as a reference.

The only magic in the built-in read is that it works even when called indirectly or as a filehandle method, which doesn't work for regular functions.

share|improve this answer
3  
You don't need a prototype or explicit passing-by-reference in order to modify a variable passed to a subroutine: sub foo { $_[0] ++ }. –  FMc Jun 10 '10 at 5:24
    
+1 This isn't quite on point for the OP's question, but prototypes and bona fide perl references (not symbolic refs) are important to know in this domain. –  pilcrow Jun 10 '10 at 13:56
    
@FM, good catch. I always forget that @_ can be used that way. –  JSBձոգչ Jun 10 '10 at 14:05

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.