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If I have a tree that for example looks like this:

tree3(b(l(1),b(l(2),l(3)))).

How would I write a program that counts the number of leaves? I want it to look something like this when it's been used:

?- tree3(T), count_leaves(T, N).

N = 3,
T = b(l(1),b(l(2),l(3)))

I'd love any help!

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I tried: count_leaves(empty, 0). count_leaves(tree(L,_, R), Total_Size):- count_leaves(L, Left_Size), count_leaves(R, Right_Size), Total_Size is Left_Size + Right_Size + 1. But it just gives me no. –  user940599 Sep 4 '11 at 10:00

1 Answer 1

up vote 4 down vote accepted

You could do it like this:

count_leaves(l(_), 1).
count_leaves(b(B1, B2), N) :- count_leaves(B1, N1), count_leaves(B2, N2), N is N1 + N2.

Basically, tree that is just a leaf has one leaf. If the tree starts with a branch, recurse into both branches and add the results.

Your solution gives you no, because nothing will match against empty. And even if you fixed that, you wouldn't be counting leaves, but inner nodes.

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Thank you so much! –  user940599 Sep 4 '11 at 11:32
    
Could you help me with something else too? I now want to write a program that puts the information from the leaves in a list. I tried doing this: leaves(l(), []). leaves(b(B1, B2), [L]):- leaves(B1, [L1]), leaves(B2, [L2]). append(L1, L2, L). But it gives me L=[_A]. Why is that? –  user940599 Sep 4 '11 at 12:50
    
You should ask another question about that. –  svick Sep 4 '11 at 12:56
    
I'm also new to prolog, the only thing that seems strange with your solution is the first line. I would have written it count_leaves(l(_), N) :- N is 1.. Can you explain how your solution works @svick? –  Betamos Sep 5 '11 at 18:21
    
That's just how Prolog works. When you “call” count_leaves(l(a), N)., it tries to match it with the first clause. The first parameter matches (unifying the anonymous variable _ with a, which is ignored). The second parameter matches too, unifying N with 1, which is what we wanted. Your solution is just somewhat longer way to write the same. (I would also use = instead of is, but that's yet another topic.) –  svick Sep 5 '11 at 21:44

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