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I am new to perl and seeking the lowest value in an @array. Is there some constant that represents a very large integer number?

I know I could sort the array and take the beginning, but that seems to be a lot of wasted CPU cycles. What is an elegant solution to my problem in Perl?

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It's probably best to sort. Sorting is O(n log n). When compared to traversing (O(n)) it's only a problem if you have arrays with thousands to millions of items. –  Niet the Dark Absol Feb 28 '13 at 5:16
    
I don't like that answer. Is Perl meant to be a SLOW language? Surely not. There must be a more elegant solution. Is there no MAX value?!? –  Zak Feb 28 '13 at 5:22
    
Perl internally uses Quick Sort, hence I guess worst case will still be O(n log n). –  Krishnachandra Sharma Feb 28 '13 at 5:35

5 Answers 5

up vote 12 down vote accepted

In the general case, you can use undef to signal a non-existent value; perl scalars aren't restricted to holding just integers. That would be written:

my $min; # undef by default
for my $value (@array) {
  $min = $value if !defined $min or $value < $min;
}

But there are some simpler options here. For example, initialize $min to the first value in the array, then compare to the rest:

my $min = $array[0];
for my $i (1 .. $#array) {
  $min = $array[$i] if $array[$i] < $min;
}

Or just use a built-in function:

use List::Util 'min';
my $min = min @array;
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3  
+1 for List::Util::min() suggestion. –  Evan Carroll Feb 28 '13 at 5:33
    
Thank you for the very awesome and thorough answer! +1 –  Zak Feb 28 '13 at 5:55
    
Note that all three return the same result for an empty array (undef)! –  ikegami Feb 28 '13 at 11:03

To answer you the question you actually asked (even though it's not really of use to you):

  1. Largest integer value that can be stored as a signed integer.

    say ~0 >> 1;
    
  2. Largest integer value that can be stored as an unsigned integer.

    say ~0;
    
  3. All integer values from 0 to this number can be stored without loss as a floating point number.

    use Config qw( %Config );
    say eval($Config{nv_overflows_integers_at});
    

    Note that some larger integers can be stored without loss in a floating point number, but not the one 1 higher than this.

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what does qw() do? –  Zak Feb 28 '13 at 13:36
    
@Zak, perlop. Search for "qw/STRING/". –  ikegami Feb 28 '13 at 13:37
    
Thanks! Great link. –  Zak Feb 28 '13 at 13:51
    
@ikegami I was surprised to find that none of my perls seem to have $Config{ivmax} or $Config{uvmax}. Grepping through the blead Perl source didn't reveal anything either. Could you share how you obtained these config entries? –  amon Apr 26 at 8:24
1  
@amon, I must have been asleep when I wrote that. There is nothing multiplied by 8 that gives MAX_INT (though $Config{ivsize}*8 gives the number of bits). Fixed. –  ikegami Apr 26 at 22:05

Perl isn't C; if you try to compute an integer that's too large, you get a floating-point result instead (unless you use bigint, which makes integers unbounded). Beyond that, you get inf.

You can see this with Devel::Peek, which shows you Perl's internal representation of a value:

$ perl -E 'use Devel::Peek; Dump(1000); Dump(1000**100); Dump(1000**100 + 1)'
SV = IV(0xcdf290) at 0xcdf2a0
  REFCNT = 1
  FLAGS = (PADTMP,IOK,READONLY,pIOK)
  IV = 1000
SV = NV(0xd04f20) at 0xcdf258
  REFCNT = 1
  FLAGS = (PADTMP,NOK,READONLY,pNOK)
  NV = 1e+300
SV = NV(0xd04f18) at 0xcdf228
  REFCNT = 1
  FLAGS = (PADTMP,NOK,READONLY,pNOK)
  NV = 1e+300

IV indicates an integer value; NV indicates a floating-point (Number?) value.

You should definitely use a tool suited to your purpose instead of a fuzzy hack; List::Util::min as mentioned in another answer is excellent. Just thought you might like confirmation on your original question :)

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1  
yeah, "N" stands for number. There's also UV for unsigned integers. –  ikegami Feb 28 '13 at 11:01

9**9**9 works. So does 0+'inf' on many versions/platforms of perl.

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The biggest integer value perl can store is 9,007,199,254,740,992

I don't know if there's a constant specifically for that.

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No! I stored this in variable, and kept on incrementing, and it works! –  Krishnachandra Sharma Feb 28 '13 at 5:28
    
This is semi-true for 32-bit perl (2^53 is the smallest number you can store in a standard double-precision float so that x and x+1 aren't distinguishable) and definitely false for 64-bit perl. –  hobbs Feb 28 '13 at 5:50

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