问题
I'm writing a program in prolog that count the number of occurrences of a number in a list
count([],X,0).
count([X|T],X,Y):- count(T,X,Z), Y is 1+Z.
count([_|T],X,Z):- count(T,X,Z).
and this is the output
?- count([2,23,3,45,23,44,-20],X,Y).
X = 2,
Y = 1 ;
X = 23,
Y = 2 ;
X = 23,
Y = 1 ;
X = 3,
Y = 1 ;
X = 45,
Y = 1 ;
X = 23,
Y = 1 ;
X = 44,
Y = 1 ;
X = -20,
Y = 1 ;
false.
it's count the same number several times
Any help is appreciated
回答1:
Instead of the dummy variable _ just use another variable X1 and ensure it does not unify with X.
count([],X,0).
count([X|T],X,Y):- count(T,X,Z), Y is 1+Z.
count([X1|T],X,Z):- X1\=X,count(T,X,Z).
However note that the second argument X is supposed to be instantiated. So e.g. count([2,23,3,45,23,44,-20],23,C) will unify C with 2. If you want the count for every element use
:- use_module(library(lists)).
count([],X,0).
count([X|T],X,Y):- count(T,X,Z), Y is 1+Z.
count([X1|T],X,Z):- X1\=X,count(T,X,Z).
countall(List,X,C) :-
sort(List,List1),
member(X,List1),
count(List,X,C).
Then you get
?- countall([2,23,3,45,23,44,-20],X,Y).
X = -20,
Y = 1 ? ;
X = 2,
Y = 1 ? ;
X = 3,
Y = 1 ? ;
X = 23,
Y = 2 ? ;
X = 44,
Y = 1 ? ;
X = 45,
Y = 1 ? ;
no
回答2:
You can also use the include predicate:
count(L, E, N) :-
include(=(E), L, L2), length(L2, N).
回答3:
ocr(X,[],0):- !.
ocr(X,[Element|Rs],V):- X = Element -> ocr(X,Rs,Ocr), V is 1+ Ocr; ocr(X,Rs,V).
I did it like that. That gives you only one answer and finishes.
来源:https://stackoverflow.com/questions/9088062/count-the-number-of-occurrences-of-a-number-in-a-list