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Let's say I have list(s) of values and I want to apply an arithmetic operator to each value. For a binary operator like addition, this would mean something like this:

add_lists([],[],[]).
add_lists([A|TA],[B|TB],[R|TR]) :- R is A+B,
                                   add_lists(TA,TB,TR).

Now I wanted to write something like:

?- arithop_lists(+,[1,2,3],[0.2,-2,100],R).

This works:

arithop_lists(_Op,[],[],[]).
arithop_lists(Op,[A|TA],[B|TB],[R|TR]) :- E =.. [A,Op,B], R is E,
                                          arithop_lists(Op,TA,TB,TR).

But I am extremely frustrated that I couldn't find an easier way to do this. I couldn't come up with a findall solution that doesn't use member. What is more, I couldn't figure out how to do it without a =.. call for every pair of operands.

My initial feeling was that it can be done with maplist, and I know it can be done, but I don't know if using maplist and lambda is any less of a hack.

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1 Answer 1

up vote 1 down vote accepted

I think the better way, efficiency wise, should be

add(A, B, C) :- C is A + B.
mul(A, B, C) :- C is A * B.

yields

?- X = add, maplist(X, [1,2,3], [0.2,-2,100], R).
X = add,
R = [1.2, 0, 103].

?- X = mul, maplist(X, [1,2,3], [0.2,-2,100], R).
X = mul,
R = [0.2, -4, 300].

edit library(apply_macros) could be the blueprint for efficient evaluation (via rewriting). A library of numerical algorithms could use it to get the maximal efficiency. Of course, such optimizations should be postponed after correctness.

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Yes, so this ends up with me defining a predicate for each arithmetic function, I can even say +(A,B,R) :- R is A+B if I don't want to come up with new words. I was hoping there is an easy way for defining predicates for arithmetic functions on the fly. I also thought such predicates exist; why don't they? (I am sure there is a very good reason) –  Boris Feb 18 '13 at 13:28
    
apply/2 could fit your needs. But for fixed arity call/4 should do. –  CapelliC Feb 18 '13 at 13:54
    
I am that thick so be patient... I know I can write A=1, B=2, call(is, X, A+B). but I can't figure out how to construct the expression A+B out of A, B, and for example + passed as an argument from the caller. –  Boris Feb 18 '13 at 14:10
    
AFAIK the simpler way is =.., but you already know that. Now I'll go on to see if apply_macros can be extended. –  CapelliC Feb 18 '13 at 14:14

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