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I want to multiply two lists , where I take the left list and multiply it by each element of the right list .

For example :

multLists([3,4,2],[4,7,8],R).
R = [[12,16,8],[21,28,14],[24,32,16]].

For that , I wrote an helper auxiliary function that takes a list and multiply it by a single scalar :

multListElem([],_,_).
multListElem([H|T],Result,Elem) :- multListElem(T,W,Elem) ,Z is H*Elem, Result=[Z | W].

But now , when I run : multListElem([1,2,3],X,3). I get :

1 ?- multListElem([1,2,3],X,3).
X = [3, 6, 9|_G1840].

What is that weird tail _G1840 ?

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Please do not change your question! It renders the existing answers useless. –  false Jan 16 '13 at 14:37
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2 Answers 2

up vote 3 down vote accepted

The bug is here : multListElem([],_,_). When the first list is empty, the result is empty, so you must write multListElem([],[],_).

When you work with lists, you can use functionnal design, using malist eg :

multLists(L1, L2, R) :-
    maplist(mult_one_list(L1), L2, R).


mult_one_list(L1, Elem, R) :-
    maplist(mult_2_numbers(Elem), L1, R).

mult_2_numbers(V1, V2, R) :-
    R is V1 * V2.

maplist apply his first arg to each element of its others args (which must be lists),

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your base case leave uninstantiated the tail: change to

multListElem([],[],_).

and it will work.

@Joel76 already addressed your problem, and exposed a better approach using maplist. If you have lambda.pl available here is a compact formula solving the problem

?- maplist(\A^B^maplist(\X^Y^(Y is X*A), [3,4,2], B), [4,7,8], R).
R = [[12, 16, 8], [21, 28, 14], [24, 32, 16]].

edit of course the proper interface would be

multLists(L1, L2, R) :-
    maplist(\A^B^maplist(\X^Y^(Y is X*A), L1, B), L2, R).

The second bug that @false pointed it's difficult to understand but easy to fix:

multLists(L1, L2, R) :-
    maplist(\A^maplist(\X^Y^(Y is X*A), L1), L2, R).

The first bug I would call a feature: it's very useful that lambda works with the closure, and A is declared then... Just my 2 cents...

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A must be declared ; and B can be removed via partial application! –  false Jan 12 '13 at 12:38
    
@false: it's great to learn Prolog with a great teacher. Thanks! –  CapelliC Jan 12 '13 at 17:58
    
Use in place of Y is X*A rather than Y = X*A. And use as lists [A,B,C] and [X,Y,Z]: Thus, no ground terms... –  false Jan 12 '13 at 19:08
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