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I have a module with a set of functions implemented as a dispatch hash with a helper function thus:

my $functions = {
  'f1' => sub { 
      my %args = @_;
      ## process data ...
      return $answer; 
  },
[etc.]
};

sub do_function {
    my $fn = shift;
    return $functions->{$fn}(@_);
}

This is used by some scripts that process tab-delimited data; the column being examined is converted by the appropriate subroutine. When processing a value in a column, I pass a hash of data to the sub, and it generates a scalar, the new value for the column.

Currently the subs are called thus:

my $new_value = do_function( 'f1', data => $data, errs => $errs );

and the variables in the arguments are all declared as 'my' - my $data, my $errs, etc.. Is it possible to update other values in the arguments that are passed into the subs without having to return them? i.e. instead of having to do this:

 ... in $functions->{f1}:
      my %args = @_;
      ## process data ...
      ## alter $args{errs}
      $args{errs}->{type_one_error}++; 
      ## ...
      return { answer => $answer, errs => $args{errs} }; 
 ...

 ## call the function, get the response, update the errs
 my $return_data = do_function( 'f1', data => $data, errs => $errs );
 my $new_value = $return_data->{answer};
 $errs = $return_data->{errs}; ## this has been altered by sub 'f1'

I could do this:

  my $new_value = do_function( 'f1', data => $data, errs => $errs );
  ## no need to update $errs, it has been magically updated already!
share|improve this question

2 Answers 2

up vote 3 down vote accepted

You can pass reference to value and update it inside of subroutine.

For example:

sub update {
    my ($ref_to_value) = @_;
    $$ref_to_value = "New message";
    return "Ok";
}

my $message = "Old message";

my $retval = update(\$message);

print "Return value: '$retval'\nMessage: '$message'\n";

And as far as I can see from your code snippets, $errs is already reference to hash. So, actually, all you have to do - just comment out line $errs = $return_data->{errs}; and try

If I get your code right, $errs gets updated. And then you should just change your return value to $answer and do:

my $new_value = do_function( 'f1', data => $data, errs => $errs );
share|improve this answer
    
Beautiful, thanks! –  i alarmed alien Nov 15 '11 at 18:52
    
thanks @girlwithglasses does this solve your problem? –  yko Nov 15 '11 at 20:05
    
Yes, it has made my perl life most delightful. Thank you! –  i alarmed alien Nov 15 '11 at 23:19
  • first change your definition of do_function to:

    sub do_function {
        my $fn = shift;
        goto &{$functions->{$fn}}
    }
    

    that is the proper way to dispatch to a new subroutine. this form of goto replaces the currently executing subroutine with the new coderef, passing @_ unchanged, and removing do_function from the call stack (so caller works right). you probably want some error checking in there too, to make sure that $fn is a valid name.

  • inside your function, you can simply modify cells of @_ directly, and you do not need to pass anything by reference (since perl already did that for you).

    sub add1 {$_[0]++}
    my $x = 1;
    add1 $x;
    say $x; # 2
    

    to support key => value arguments without passing by reference you could write it this way:

    in $functions->{f1}:
      my %args;
      while (@_) {
          $args{$_} = /errs/ ? \shift : shift for shift
      }
      ## process data ...
      ## alter ${$args{errs}}
      ## ...
    
  • HOWEVER since in your case $errs is a hash reference, you don't need to do any extra work. all references are passed by reference automatically. in your existing code, all you have to do is modify a key of $args{errs} (as you are doing right now) and it will modify every reference to that hash.

    if you wanted a function local hash, you need to make a copy of the hash*:

    my %errs = %{$args{errs}};
    

    where %errs is private, and once you are done, you can push any values you want to make public into $args{errs} with $args{errs}{...} = ...;. but be sure not to replace $args{errs} with the copy (as in $args{errs} = \%errs) since that will break the connection to the caller's error hash. if you want to copy all the new values in, you could use one of:

    %{$args{errs}} = %errs;                             # replace all keys
    @{$args{errs}}{keys %errs} = values %errs;          # replace keys in %errs
    ... and $args{errs}{$_} = $errs{$_} for keys %errs; # conditional replace
    

    *or localize some/all of the keys

share|improve this answer
    
Thank you for your comprehensive response! –  i alarmed alien Jan 12 '12 at 18:51
    
I used this code again today -- thank you again for this very useful explanation! –  i alarmed alien Sep 22 at 10:46

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