3

I have defined it as follows in Prolog:

listOfa([H|T]):- H = 'a', listOfa(T).
listOfa([]).

It does what I want it to do. It checks if all items in a list are a certain element, in this case the character a, and returns true or false accordingly. However, it returns true if the list is empty, and I don't want it to. Except, I'm not sure what to use as a base case for the recursion besides the empty list. How do I maintain the recursion without it returning true for an empty list?

  • Your base case could be listOfa([a]) instead of listOfa([]). – Daniel Lyons May 11 '18 at 20:48
  • Also, change H to a and get rid of the unification on the next step, it's more work than you need to do. – Daniel Lyons May 11 '18 at 20:49
3

It is natural to start with two clauses for empty and non-empty lists, and in fact you can keep this pattern! You can easily solve this with a separate predicate that is true iff its argument is a list with at least one element.

For example:

not_empty([_|_]).

Then, post the conjunction of this predicate and that which you have already successfully implemented.

If you want, you can also combine this into a third predicate that consists only of this conjunction.

Also, check this out:

?- maplist(=(a), Ls).

After combining these goals, you can—by purely algebraic resoning—find an even shorter solution!

  • listOfA([a|T]) :- maplist(=(a), T). :) – Daniel Lyons May 11 '18 at 20:50
  • @DanielLyons Could you explain why listOfA([a|T]) :- maplist(=(a), T). returns true. while debugging, but listOfa([a|T]):- a = 'a', listOfa(T). listOfa([a]). returns true (no period)? What is the program doing differently in the two cases? – user-2147482428 May 11 '18 at 21:17

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