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I am learning Prolog and am trying to find the depth of a binary tree using Prolog. I represent a tree like this:

nil is a tree.
tree(1,nil,nil) this is a leaf.
tree(1,tree(1,nil,nil),nil) this is a tree with root 1 and has a left leaf 1.

I want a depth predicate that depth(T, N) that will be true if N is the depth of the tree T. I assume that I'll use the depth predicate when T isn't a variable but N can be a variable. Examples:

?- depth(nil,N).
N = 0.

?- depth(tree(1,tree(2,nil,tree(3,nil,nil)),tree(5,tree(6,nil,nil),nil)),N).
N = 3.

?- depth(tree(1,nil,tree(2,nil,nil)),N).
N = 2.

I am not sure how do that N will be the maximum between the 2 subtrees.

Thanks for any help.

Solution:

depth(nil,0).
depth(tree(_,nil,nil),1).
depth(tree(_,Left,Right), D) :- 
    depth(Left,DLeft),
    depth(Right,DRight),
    D is max(DLeft, DRight) + 1.
share|improve this question
up vote 2 down vote accepted

Easy as pie: the depth of nil is 0:

depth(nil,0).

For the tree case, recursively call depth/2 on both branches and max them:

depth(Left,DLeft),
depth(Right,DRight),
D is max(DLeft, DRight) + 1.
share|improve this answer
    
I get the next ERROR: "ERROR: =</2: Arithmetic: `depth/1' is not a function". EDITED ABOVE. – user550413 Jan 22 '11 at 13:08
    
Let me guess, you're probably calling max(depth(L), depth(R))? That won't work. Call depth twice to get the values, then max them in the next line. – Fred Foo Jan 22 '11 at 13:10
    
Oops, stupid me. – user550413 Jan 22 '11 at 13:12
    
Updated. Getting another error. – user550413 Jan 22 '11 at 13:35
    
You can't use a user-defined predicate in is/2, at least not with extra (non-portable) code. Just call the predicate twice. – Fred Foo Jan 22 '11 at 13:37

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