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I have something like this in my knowledge base:

number(1).
number(3).
number(6).
number(8).
number(9).
number(12).

Now, I need a predicate that evaluates how many numbers there are in the knowledge base, example:

countnumbers(X).
X = 6.

How can I do this? please, I'm new with prolog and I can't figure this out

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up vote 7 down vote accepted

Use findall/3 to get all facts from your database, and then get the length of the list:

countnumbers(X) :-
    findall(N, number(N), Ns),
    length(Ns, X).

Take care: number/1 may be a built-in predicate.

share|improve this answer
    
Thank you so much, it worked perfectly – nosmirck Dec 14 '11 at 13:50

If you need to know how many X satisfied some predicate you don't need to know all of them. Using of findall/3 is really redundant in tasks like that. When you have 6 or 606 these X - it's not a big deal of course. But when you have really large and heavy generator - you don't need to keeping all values in list and then counting it length.

Aggregate solves this problem well:

numberr(1).
numberr(3).
numberr(6).
numberr(8).
numberr(9).
numberr(12).

countNumbers( Numbers ) :-
    aggregate( count, X^numberr( X ), Numbers ).

X^ means "there exists X", so the whole formula means something like "count the number X that numberr(X) and call that number Numbers.

So

?- countNumbers(X).
X = 6.
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1  
If you had looked into aggregate.pl, you'd seen that aggregate/3 calls bagof/3 and then length/2 on the result. So what exactly have we won in terms of execution speed? – twinterer Dec 14 '11 at 15:20
1  
@twinterer, you are referring to a particular implementation, Dimitrii is referring to the interface. The implementation may improve without changing the interface. However, a program which uses the list explicitly has no chances to profit from a better implementation. One of the reason why libraries do not improve as much as they could is because they are not used. Instead, people reinvent everything. – false Dec 14 '11 at 15:35
1  
@false: quite true. But I think the only chance to make this substantially quicker is to implement the library not through Prolog built-ins, as it is currently done. Slim hope, I think. Currently, the argument to use aggregate/3 in favour of findall/3+length/2 doesn't hold. If I really was worried about runtime, though, then I can save 25% runtime over both versions (by my tests) by using a global variable as counter and use (n(_),incval(count),fail;getval(count,C)). This is the only way I can think of that really gets rid of any list. – twinterer Dec 14 '11 at 15:54
1  
Using a global variable count does not work, because it does not nest. But I agree with you that some mechanism of that kind is needed - somehow. But this can be hidden behind aggregate/3. The same applies also to setof/3: Repeated solutions could be withheld immediately. Or: Maybe only if they occur immediately one after the other... In any case, that is the responsibility of a library implementor, not the library user. – false Dec 14 '11 at 16:00
    
Is there a way to make a distinct count? Like for example if we have two times the same number,not to count it again – Shevliaskovic Nov 1 '13 at 9:44

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