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Why is the array shifted at the beginning of the subroutine?

sub max {
    my($max_so_far) = shift @_;
    foreach (@_) {
        if ($_ > $max_so_far) {
           $max_so_far = $_;
        }
    }
    $max_so_far;
}    

Is it just to give $max_so_far an initial value? The program runs exactly the same with

    my($max_so_far) = undef;

Is there a particular reason to shift the array to start with? (I ask because I spent about 10 min trying to figure out why that shift was essential to the subroutine.)

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3  
Doesn't setting $max_so_far to undef cause an undefined warning on the first comparison? You should probably use warnings if you are learning perl. –  gpojd Aug 7 '12 at 22:41
    
Yes, it's there to give an initial value to $max_so_far. –  Csongor Fagyal Aug 7 '12 at 23:00
    
Is Learning Perl still using explicit $_ and implicit returns? –  Schwern Aug 7 '12 at 23:58
    
I can guess what use warnings is, but they haven't introduced it yet. (Still only ch. 4!) –  Marc Adler Aug 8 '12 at 12:09
    
Is it really written my($max_so_far) = shift @_; instead of my $max_so_far = shift @_; –  Brad Gilbert Oct 12 '12 at 23:47

2 Answers 2

up vote 3 down vote accepted

It's to initialise the return value for the function and something the rest of the function can compare against.

Consider some scenarios and trace through the code. For example, say it is invoked like this:

my $max = max(1,2,3);

Inside max, the first line sets $max_so_far to 1 and @_ becomes (2,3). Now when we run through the foreach loop we have an initial value and avoid undef errors. It first compares $max_so_far to 2, updates it to 2, and so on.

Another example is if max is invoked like this:

my $max = max(1);

Inside max, the first line sets $max_so_far to 1 and @_ becomes (). When we hit the foreach loop, it has nothing to iterate through and just returns the initial value $max_so_far.

Another example is if max is invoked like this:

my $max = max();

Inside max, the first line sets $max_so_far to undef because @_ is empty. There's nothing to iterate through in the foreach loop, so the function just returns undef.

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What was confusing me was that it seemed like they had to shift the array before they could iterate through it, and I couldn't figure out why. Your explanation makes a lot of sense. Thanks. –  Marc Adler Aug 8 '12 at 12:11
    
A formal way to look at it is that structurally, max is a reduce (aka a left fold) on a list, with the operation (a > b) ? a : b. With a reduce you usually either want to start with a natural identity of the operator, or only draw values from the list. If that operation has an identity it's the value -∞, which works just fine assuming you know how to represent it, but drawing values only from the list works just fine too, and that's what the shift is doing in this iteratively unrolled version of the reduce. –  hobbs Aug 13 '12 at 6:54

The program does not run exactly the same if you initialize $max_so_far to undef. What if all of the input values are negative numbers?

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2  
In other words, doing it with undef is the same as adding "undef" to the list to be scanned. –  DVK Aug 8 '12 at 0:09
    
Or what if you were writing the min function instead? –  hobbs Aug 8 '12 at 0:42
    
Yeah, when I use undef it returns a blank if all the numbers entered are negative. I hadn't tried that. –  Marc Adler Aug 8 '12 at 12:07
    
Actually @MarcAdler it returns undef, not blank. ( undef becomes '' in string context ) It also would return undef if all of the inputs were 0 which is equal (numerically) to undef. (0 == undef) –  Brad Gilbert Oct 12 '12 at 23:58

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