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I have a list of card structures such as:

[card(ace, spades), card(10, diamonds), card(king, clubs)]

can anyone help me understand how to sort these according to face value?

I have this:

bubblesort(L, L1) :-
        (   bubble(L, L2)
        ->  bubblesort(L2, L1)
        ;   L = L1 ).

bubble([card(A,A2), card(B,B2)|T], L) :-
        (   A > B
        ->  L = [card(B,B2), card(A,A2)|T]
        ;   L = [card(A,A2) | L1],
            bubble([card(B,B2)|T], L1)).

which works well (its bubble sort) except when you have card(ace, spades) or alike because ace is not a number

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Could you explain why you have said that it is wrong?? –  Lilz Aug 7 '12 at 19:01
    
Is this homework? What have you tried? =) –  Haile Aug 7 '12 at 19:17
    
between ace and king, which one is stronger? –  Will Ness Aug 8 '12 at 22:33

1 Answer 1

You can use predsort/3

It's like sort/2, but determines the order of the terms by calling the comparison predicate you fed it. So we only need to write a compare_values/3 predicate that compares the face values of your cards. My try:

compare_values(D, card(A,_), card(B,_)) :-
    nth0(X, [ace, 2, 3, 4, 5, 6, 7, 8, 9, 10, jack, queen, king], A),
    nth0(Y, [ace, 2, 3, 4, 5, 6, 7, 8, 9, 10, jack, queen, king], B),
    compare(D, X, Y).

sort_cards(L, R) :-
    predsort(compare_values, L, R).

Explanation of the compare_values/3 predicate:

We need to define an ordering over the following list:

[ace, 2, 3, 4, 5, 6, 7, 8, 9, 10, jack, queen, king]

how? Given two values A and B, we simply use nth0/3 to search for A and B in the list. nth0/3 will give us the position of the element we are searching for. So now:

X = position of the element A in the ordered list
Y = position of the element B in the ordered list

but now X and Y are guaranteed to be numbers! And we can compare them with the built-in predicate compare/3. If X < Y the card A comes before the card B, and vice-versa.

compare/3 will compare X and Y, and return one of (>), (<), (=).

An example:

?- compare_values(D, card(ace, clubs), card(7, spades)). 
  • nth0 search for ace and 7 in the list of ordered values.
  • Now X = 0 and Y = 6 (the indexes of ace and 7 in the list)
  • compare(D, 0, 6) unifies with D = (<)

Finally: the predsort/3 predicate uses compare_values to sort the list accordingly to the order defined by compare_values/3


A query:

?- sort_cards([card(king, spades), card(ace,spades), card(3, clubs), card(7,diamonds), card(jack,clubs)], X). 

X = [card(ace, spades), card(3, clubs), card(7, diamonds), card(jack, clubs), card(king, spades)].
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wow can you explain this please? –  Lilz Aug 7 '12 at 19:26
    
I extended my post with an explanation. You're welcome. –  Haile Aug 7 '12 at 19:42
    
+1 for the exclamation mark. :) but between ace and king, which one ranks higher? –  Will Ness Aug 8 '12 at 22:35
    
the ace does - its more! –  Lilz Nov 22 '12 at 13:01
    
@Lilz, well, just put it at the end of the list. I just gave an example, you can define whatever ordering you prefer. –  Haile Nov 22 '12 at 16:25

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