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In research of this question I peeked at the Iterators chapter in the book Higher Order Perl, and some of the material there was a bit over my head and didn't think necessarily addressed what I specifically want here.

What I mean by lazy hashed iterator is a way to create a structure that would emulate this behavior:

%Ds = {
       '1' => 1 .. 20;
       '2' => 21 .. 40;
       '3' => 41 .. 60;
       '4' => 61 .. 80;
       ...
     }

Unfortunately, since this is a hash it would not be in order and thus useless in case of very large numbers.

The behavior is this:

I have a number. 
I need to compare it with a sequence of ranges and as a result of the comparison the 
code/sub would return another number that is the "key" of that range in case the
number is in that range. (>= with the beginning or <= with the end point of said range)
The "key" of the ranges are numbers from 1..2..3 and so on.
The code/sub will always return for a positive integer no matter how large it is.

By implementing this all lazily I mean if there is a way to emulate this behavior and not compute the sequences of ranges with their respective "keys" with every call of the sub or iteration of a loop. Basically compute once.

Yes it's true that I could choose a maximum boundary, hardcode this in a loop and be done with it but the problem is I don't know of how many of these steps I would need in the end.

Is there a way to do this with perl constructs or maybe perhaps there is a CPAN module that offers this kind of behaviour and my simple search of it didn't uncover it.

Here is a piece of code that illustrates what I mean:

sub get_nr {
  my $nr = shift;
  my %ds = map {  $a = '1' if /1/ .. /20/;
                  $a = '2' if /21/ .. /40/;
                  $a = '3' if /41/ .. /60/;
                  $a = '4' if /61/ .. /80/;
                  $_ => $a } 1 .. 80;

  while (my ($k, $v) = each %ds) {
     if ( $k == $nr){
     print "number is in range $v \n";
     }
  }
}

The output for:

 get_nr(4);
 get_nr(15);
 get_nr(22);
 get_nr(45);

Is:

number is in range 1
number is in range 1
number is in range 2
number is in range 3
share|improve this question
3  
I have a hard time understanding your question because you keep taking about wanting a behaviour, but you don't describe any behaviours. (You seem to describe a data structure.) Am I correct to say you want a function called like $h{$x} that returns $x*20-19 .. $x*20? – ikegami Dec 5 '13 at 15:56
6  
Also, this is a typical question that sounds like an XY-problem: Asking a question about the solution instead of the problem you are trying to solve. It would be beneficial to know what problem you are trying to solve using this technique. – TLP Dec 5 '13 at 15:58
2  
Ok, I understand your problem now. You say you can solve this easily the hard way, but you are looking for a lazy way. So what do you mean by that? I could solve this in a handful different ways, but I dont know what you have already tried and consider trivial. Your hash is backwards, btw, if you want to look up numbers: %ds = (1 => 'x', 2 => 'x'...) – TLP Dec 5 '13 at 16:21
4  
Yes... unfortunately, there is no way to give you advice here. You're saying: "I want some Perl code that gives me a key when I give it a number. I want it to be able to handle any number." You're going to need to be a lot more specific than that. What you are describing is a subroutine, based on some mathematical formula, but that would mean that the best advice I can give is to point you towards perldoc perlsub and possibly perlop for a list of operators to use. – TLP Dec 5 '13 at 16:42
2  
You just said the same thing again, in a more elaborate way. Let me give you an example: sub inrange { my $num = shift; my $dec = int($num / 100); my $min = $dec * 100; my $max = ($dec + 1) * 100; print "$num is between $min and $max"; } This will calculate mathematically in which range of 100 the number is. – TLP Dec 5 '13 at 17:14
up vote 2 down vote accepted

Based on the discussion in the comments, the code you seem to want is a very simple subroutine

sub get_nr {
    my $nr = shift;
    my $range = int(($nr-1) / 20) + 1;
    return $range;
}

You need to compensate for the edge cases, you wanted 20 to return 1, for example, so we need to subtract 1 from the number before dividing it.

If you want to customize further, you might use a variable for the range size, instead of a hard coded number.

share|improve this answer
    
Please also add comments that I was looking at the problem the wrong way, didn't need anything functional etc... Also change sub name to get_range. – user3046061 Dec 5 '13 at 18:04
    
range has to be hardcoded, the example I gave in the OP suggested that. – user3046061 Dec 5 '13 at 18:11
    
@user3046061 You seem a bit hard coded yourself, in your way of thinking. :-) If this solves your question, you should consider accepting an answer. – TLP Dec 5 '13 at 18:15
    
It would be more useful for people that stumble upon this and actually need something else. – user3046061 Dec 5 '13 at 18:21
1  
@user3046061 I'm sure people can work out whether or not this code is useful to them even without me specifying every detail of our discussion. – TLP Dec 5 '13 at 18:23
sub get_range_number {
   my ($n) = @_;
   return int(($n-1)/20) + 1;
}

print "$_ is in range ".get_range_number($_)."\n"
   for 4, 15, 22, 45;
share|improve this answer
1  
PS - Note how the printing is done outside of the function. Priting has nothing to do with determine range numbers. – ikegami Dec 5 '13 at 17:58

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