Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have some code on prolog, but this code does not work.

sum(N,_):-N<0,fail.
sum(N,S):-N=0,S=0,!.
sum(N,S):-N1=N-1,sum(N1,S1),S=S1+N.

?-sum(4,X),write(X).

Correct recursive function on PHP

function sum($n)
    { 
    if($n < 0) return; 
    if($n%2 == 0) return sum($n-1);
     else return ($n+sum($n-2)); 
    } 

I need to convert this function to prolog.

For example, sum(N, Result).

?- sum(6,Result),write(Result).

expected 9

share|improve this question
    
I write recursive function in procedural language. How to convert in prolog? –  BILL Oct 13 '11 at 21:41
    
function sum($n){ if($n < 0) return; if($n%2 == 0) return sum($n-1); else return ($n+sum($n-2)); } –  BILL Oct 13 '11 at 21:50
    
I think php returns 0 if N < 1. So you cannot just fail –  Joe Lehmann Oct 14 '11 at 4:15

3 Answers 3

up vote 1 down vote accepted

Here a rather direct translation of the PHP code, that incidentally highlights the (IMO) weaker point of Prolog code when applied to numerical problems: the need to explicitly represent expressions intermediate results. Conventionally, we use the last argument to represent the 'return value'.

sum(N, S) :-
    (   N < 0
    ->  S = 0
    ;   (   Q is N mod 2,
            Q == 0
        ->  M is N - 1,
            sum(M, S)
        ;   M is N - 2,
            sum(M, T),
            S is N + T
        )
    ).

Test:

?- sum(6,X).
X = 9.
share|improve this answer

You might try something like this...

sum(N,X) :-
  sum(N,0,X)
  .
sum( 0 , X , X ).
sum( N , T , X ) :-
  N > 0 ,
  T1 is T+N ,
  N1 is N-1 ,
  sum( N1 , T1 , X )
  .
sum( N , T , X ) :-
  N < 0 ,
  T1 is T+N ,
  N1 is N+1 ,
  sum( N1 , T1 , X )
  .

All you want to do is sum the odd numbers between 0 and N inclusive? I think this should do the trick:

sum(0,0).
sum(N,X) :-
  N > 0 ,
  ( N mod 2 is 0 , N1 is N-1 ; N1 is N ) ,
  sum(N1,0,X)
  .

sum(N,X,X) :- N < 0 .
sum(N,T,X) :-
  N1 is N - 2
  T1 is T+N ,
  sum(N1,T1,X)
  .
share|improve this answer
    
wrong result. Please see my recursive function. –  BILL Oct 13 '11 at 21:52
    
How about you write a readable problem statement in English, with sample inputs and their expected output? –  Nicholas Carey Oct 13 '11 at 22:41

This one works

sum(0,0).
sum(-1,0).
sum(N,R) :- N > 0, 0 is N mod 2,!, N1 is N - 1, sum(N1,R).
sum(N,R) :- N > 0, N2 is N - 2, sum(N2,R1), R is N + R1.

However I would write it this way:

sum(N,R) :- sum(N,0,R).
sum(0,A,A) :- !.
sum(N,A,R) :- N1 is N-1, (1 is N mod 2 -> A1 is A + N; A1 = A), sum(N1,A1,R). 

It is equivalent to something like:

int a = 0;
for(int i=N;i>0;i--) { if (i % 2==1) a += i; }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.