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I already have the following code:

"atom_length(Var, Len) :- length(Var, Len)."

I wanna construct a predicate atom_lengths/2 that does the same thing with a list of atoms:

?-  atom_lengths([one, two, three, four], [3, 3, 5, 4]).
true.
?-  atom_lengths([one, two, three, four], LS).
LS = [3, 3, 5, 4].
?-  atom_lengths([], LS).
LS = [].

How to write "atom_lengths"?? Thanks in advance!

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2 Answers 2

up vote 1 down vote accepted

You cannot use length/2 to compute the length of an atom. You can however first convert each atom to a list of characters with atom_chars/2 and then use length/2 to get its length:

atom_lengths([], []).
atom_lengths([Atom|Atoms], [Length|LAtoms]):-
  atom_chars(Atom, L),
  length(L, Length),
  atom_lengths(Atoms, LAtoms).

Test:

?- atom_lengths([one, two, three, four], LS).

LS = [3,3,5,4]

Instead of using the pair atom_chars/2-length/2 you could also use ISO builtin predicate atom_length/2:

atom_lengths([], []).
atom_lengths([Atom|Atoms], [Length|LAtoms]):-
  atom_length(Atom, Length),
  atom_lengths(Atoms, LAtoms).

or using findall/3:

atom_lengths(Atoms, LAtoms):-
  findall(Length, (member(Atom, Atoms), atom_length(Atom, Length)), LAtoms).

As suggested by commenter, a better idiom would be to use maplist/3:

atom_lengths(Atoms, LAtoms):-
  maplist(atom_length, Atoms LAtoms).
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1  
findall isn't the correct idiom here, maplist would be better. –  m09 Jul 20 '12 at 20:35
    
@Mog: Right!. Improved answer –  gusbro Jul 21 '12 at 2:51

Using maplist + atom_length:

?- maplist(atom_length, [one, two, three, four], [3, 3, 5, 4]).
true.

?- maplist(atom_length, [one, two, three, four], Ls).
Ls = [3, 3, 5, 4].

?- maplist(atom_length, [], Ls).
Ls = [].
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