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I have a reference array which contains all possible elements and is sorted in custom order different than alphanumeric sorting. For example,

@ref_array = ('one','two','three','four','five','six');

Now all input arrays need to be sorted based on order of reference array. Input array will always be subset of reference array.

@in1 = ('three','one','five');  # Input
@out1 = ('one','three','five'); # Desired Output

@in2 = ('six','five','four','three','two','one'); # Input
@out2 = ('one','two','three','four','five','six') # Desired Output
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1  
+1 for good use of example inputs and desired outputs — it makes your question very clear. It would be better still if you showed what you've tried. –  Jonathan Leffler Sep 21 '13 at 1:32
    
@JonathanLeffler Thanks for your feedback. –  jkshah Sep 21 '13 at 13:22

4 Answers 4

up vote 10 down vote accepted
my %h = map { $ref_array[$_] => $_ } 0 .. $#ref_array;

my @out1 = @ref_array[ sort { $a <=> $b } @h{@in1} ];
my @out2 = @ref_array[ sort { $a <=> $b } @h{@in2} ];

%h holds key => val pairs like one => 0, two => 1, etc.

@h{@in1} is 2,0,4 hash slice which gets sorted, and array slice @ref_array[0,2,4] is one, three, five

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5  
nice! this is far more elegant than my solution. (Although please start explaining your answers!) –  amon Sep 20 '13 at 21:59
3  
@amon I'll write explanation if OP asks for it, as I'm slow writer and lacking in eloquence –  mpapec Sep 20 '13 at 22:00
2  
Due to the (lack of) type system in Perl, it requires two sets of comparision operators: eq vs. ==, cmp vs <=>. Ruby and Perl6 do not have this problem, and can provide generic comparision. In Perl5 string sorting is a sensible default. But you are free to define your own like sub numsort { sort { $a <=> $b } @_ } –  amon Sep 20 '13 at 22:06
2  
To @amon's first point, you could always write an explanation after posting your code. Remember that the answers on SO are not just for the OP, but also for anybody else who lands on this page in the future. Having said that, very nice solution. –  ThisSuitIsBlackNot Sep 20 '13 at 22:08
1  
Is this meant to be: my @out1 = @ref_array[ sort { $a <=> $b } @h{@in1} ]; ? –  RobEarl Sep 20 '13 at 22:11

This isn't that complicated.

Step 1, we need a mapping from your values to some key that Perl can sort, e.g. numbers. We can use the indices of the elements in your custom collation array, like:

my %custom_value = map { $ref_array[$_] => $_ } 0 .. $#ref_array;

Step 2, we do a Schwartzian Transform on your input with one of the above values as key:

my @out =
  map  { $_->[1] }
  sort { $a->[0] <=> $b->[0] }
  map  {[ $custom_value{$_} => $_ ]}
       @in;
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For sorting using a small-integer key, radix sort is usually the faster solution with O(N) complexity:

use Sort::Key::Radix qw(ukeysort);

my @ref = ('one','two','three','four','five','six');
my %ref = map { $ref[$_] => $_ } 0..$#ref;

my @out = ukeysort { $ref{$_} } @in;

Or you can also use a cheap O(N) counting sort:

my %ref;
$ref{$_}++ for @in;
no warnings 'uninitialized';
my @out = map { ($_) x $ref{$_} } @ref;
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2  
In the second code block you probably want to assign to @out instead $out, and maybe wrap the last line in no warnings "uninitialized". –  Slaven Rezic Sep 21 '13 at 9:17
    
@SlavenRezic: yes, you are right. Fixed! –  salva Sep 21 '13 at 19:17

All presented solutions shows sorting with O(NlogN) time complexity. There is a way how to do it without actual sorting so in O(N) time complexity.

sub custom_usort {
    my %h;
    @h{@_} = ();
    grep exists $h{$_}, ('one','two','three','four','five','six');
}

Edit:

If there can be multiple values in input, there is this solution:

sub custom_sort {
    my %h;
    $h{$_}++ for @_;
    no warnings 'uninitialized';
    map {($_) x $h{$_}} ('one','two','three','four','five','six');
}
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that solution fails when @in has repeated elements –  salva Sep 21 '13 at 8:25
    
@salva there is not such example in the question. –  Hynek -Pichi- Vychodil Sep 21 '13 at 9:53

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