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I am currently creating a function in Prolog which appends a number generated by another function that is tested and works. Here is my function:

append([], Y, Y).
append([H|X], Y, [H|Z]) :- append(X, Y, Z).

function(A,[B|Bs],X):-
   oldNumber(A,B,Hold),
   append([Hold],function(A,Bs,X)).

So I have an append function which works correctly. Then I have function which is a recursive function which appends the different numbers. oldNumber outputs a number in Hold and then I put Hold into the first slot in append.

Here is an example that is not working correctly:

 function([1.; -1.; 1.; -1.], [[0.; -1.; 1.; -1.], [-1.; 0.; -1.; 1.], [1.; -1.; 0.; -1][-1.; 1.; -1.; 0.]], X).
 Id be looking for [3.; -3.; 3.; -3.]

It returns false but I can not figure out why. Any ideas?

share|improve this question
    
append is defined as append/3 (three arguments) but is used as append/2 in function – chamini2 Mar 6 '14 at 4:26
    
and if you plan on calling function recursively, you need a function(A,[],A) or something like that – chamini2 Mar 6 '14 at 4:28
    
I really can't figure out what is supposed to do function – chamini2 Mar 6 '14 at 4:31
    
So this is what I meant to do. OldNumber will return a number such as 1 and put it in a list in append. This will then be appended with the tail of B. But I see I only put in two arguments for append. What would the third one be if Im just trying to append [1] with tail of B? – user081608 Mar 6 '14 at 4:36
1  
@user081608: For example you mentioned that the function returns and in your code also you are calling it like a function append([Hold],function(A,Bs,X)), whereas the word function is a predicate in your code. You can also try to give a example input/ouput to describe the problem without referring to any code as that would make it more clear – Ankur Mar 6 '14 at 4:42
up vote 1 down vote accepted

From what I see in the example given, oldNumber does what is asked for in this question.

If this is the case, you should need the following code:

function(_,[],[]).
function(A,[B|Bs],[X|Xs]):-
   net(A,B,X),
   function(A,Bs,Xs).

net([],_,0).
net(_,[],0).
net([I|Is], [W|Ws], Sum) :-
    net(Is, Ws, Acc),
    Sum is Acc + I * W.

Let me explain it to you:

You are making a list of Xs, in which each X is applying oldNumber and then going to the next one...

So you specify function(A,[B|Bs],[X|Xs]) because you will set X and then work the rest of the list (Xs).

You get this X by using oldNumber(A,B,X), which binds the two X.

And then you take care of the rest of the list (Xs) with a recursive use of function(A,Bs,Xs).

Now you just take care of the base case, when the list of Bs gets empty, function(A,[],[]).


Now an example:

function([1,2,3],[[1,1,1],[2,2,2],[3,3,3]],X).
X = [6, 12, 18] .
share|improve this answer
    
Very Interesting. Im just confused why you didnt append anything? – user081608 Mar 6 '14 at 5:05
    
It's going through the list by calling it recursively. – chamini2 Mar 6 '14 at 5:09
    
Okay I see what your saying I think. I just implemented your example and I got the same false as before. Any thoughts? Also function is underlined when I use it for recursion for some reason. – user081608 Mar 6 '14 at 5:17
    
I tested it, make sure you wrote everything right. Was the thing asked in this question what oldNumber does? – chamini2 Mar 6 '14 at 5:35
    
Yup It provides a single value such as 1. – user081608 Mar 6 '14 at 5:45

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