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 recently stumbled across the book "higher-order perl", which basically suggests ways to do things in perl in a functional way. The author explains that perl has 6 out of 7 core features of lisp, while C has none.

I had a problem which looked like a good candidate for a recursive solution and I coded it in this fashion. But perl complained about "deep recursion". I googled a bit and found a perl monk explaining that "perl is not haskell". Apperently you get a complaint by default, when the recursion depth exceeds 100 levels.

There are ways to extend this limit or to turn it off entirely, but my question is:

  • is there a reason that perl is so uptight about recursion, while haskell is not at all?
share|improve this question

3 Answers 3

up vote 17 down vote accepted

Because in Haskell, we have laziness & guarded recursion and tail call optimization and Perl has neither.

This essentially means that every function call allocates a set amount of memory called "the stack" until the function returns. When you write recursive code, you build up a huge amount of memory because of these nested function calls and eventually can stack overflow. TCO allows the unused chunks to be optimized away.

Without this it's not really a good idea to rely on recursion. For example, say you wrote a recursive version of map, it'd crash with any decent sized list. In Haskell, guarded recursion means that with large lists, the recursive solution is much faster than a "loop" like function.

TLDR: Haskell's implementations are designed to handle a functional/recursive style and perl's implementation is not and back in the good old days, 100 levels of function calls was a sane limit.

share|improve this answer
4  
disagree; while perl doesn't have automatic recursion optimizations, the 100 limit is more from an assumption that it would indicate a program bug than that anything bad would happen (though obviously decades ago memory was more of a concern than now). you can write recursive code, and it will use memory, but not a "huge" amount. –  ysth Dec 20 '13 at 19:32
    
@ysth for some types of recursion it wouldn't matter if you had TCO, e.g. a recursive descent parser is going to use memory proportional to the size of the program either way. So I don't know if it would necessarily indicate a bug. –  Wes Dec 20 '13 at 19:39
2  
@tobyink goto isn't a call. But TCO often results in similar code to gotos. Also, if it's not automatic it's not really an implementation optimization –  jozefg Dec 20 '13 at 20:50
5  
The goto keyword in Perl performs several different duties. goto LABEL acts like a traditional "goto". goto $coderef and goto &subname do a tail call. They wipe all traces of the current sub off the stack and then call the coderef/sub. (In fact, internally they are implemented as an immediate return followed by a normal sub call.) –  tobyink Dec 20 '13 at 21:00
1  
You can also use Sub::Call::Tail to make much neater tail-call using code. –  LeoNerd Dec 23 '13 at 16:51

The “deep recursion” warning is optional, and an indicator that something may have gone wrong: most of the time, a function calling itself over and over again isn't intended (Perl is a multi-paradigm language, and many people don't use functional idioms). And even when consciously employing recursion, it is far too easy to forget the base case.

It's easy to switch the “deep recursion” warning off:

use warnings;
no warnings 'recursion';

sub recurse {
  my $n = shift;
  if ($n) {
    recurse($n - 1);
  }
  else {
    print "look, no warnings\n";
  }
}

recurse(200);

Output:

look, no warnings

It is true that Perl does not perform tail recursion optimization, because that would mess up the caller output (which is vital for some things like pragmas or Carp). If you want to manually perform a tail call, then

return foo(@args);

becomes

@_ = @args; # or something like `*_ = \@args`
goto &foo;

although bad things can happen if you foolishly localized @_.

share|improve this answer

The default limit is too low, but was appropriate for the smaller machines Perl originally ran on. Now 100 is laughable if you are doing serious recursive work, but as you say it can be tuned. I assume Haskell has some other way of catching infinite recursion?

share|improve this answer
    
That's more realistic these days. Didn't know it got bumped. Thx. –  Bill Ruppert Dec 20 '13 at 19:05
1  
I would assume that Haskell optimizes tail recursion into a loop. In a more imperative language like perl, you just tell people to write a loop themselves ;) –  Ulrich Schwarz Dec 20 '13 at 19:05
1  
@UlrichSchwarz Actually haskell has tail call optimization, not just limited to recursion. This isn't possible to fake with just a loop. –  jozefg Dec 20 '13 at 19:07
    
(Sorry, it hasn't been changed from 100. A similar setting in the debugger was changed to 1000. I meant to change that for Perl's warning too.) –  ikegami Dec 20 '13 at 19:11
2  
Infinite recursion is not caught in Haskell for exactly the same reasons infinite loops aren't caught in imperative languages. –  enough rep to comment Dec 20 '13 at 21:13

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.