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I came across these tutorials LOWEST COMMON ANCESTOR IN A BINARY TREE and PRINT A PATH FROM ROOT TO NODE IN BINARY TREE they aided me in resolving the issue lastly. I first got the LCA of the two nodes i'm check the use the LCA to create the shortest path of communication code. See methods below: //get and stores path of first child node to root public ...


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Right now your code does not hold a pointer for the parent of each node and when you run inorder(seven) for the first time you get n = seven which runs fine, but being a leaf node (seven aka Supervisor 1) -- does not have any children, thus both the calls to inorder(right) and inorder(left) return null. Hence the output which you see. For the solution ...


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I made a research on a small cache of web pages in 1000 dirs. The task was to count a total number of files in dirs. The output is: os.listdir: 0.7268s, 1326786 files found os.walk: 3.6592s, 1326787 files found glob.glob: 2.0133s, 1326786 files found As you see, os.listdir is quickest of three. And glog.glob is still quicker than os.walk for this task. ...


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The basic idea when converting from a recursive definition to a loop-based one is that you store the data that you normally store in local variables on a stack (LIFO) container. Instead of recursing, you push additional elements on the stack. The code then looks like this: function algorithm(args): stack = new FIFO # push initial state (e.g. root ...


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You can use :has() to find an element which contains another. Try this: var $persons = $(xml).find('person:has(ssn)'); $persons.each(function() { var $ssn = $(this).find('ssn') console.log($ssn.text()); // == 06106131859 in your example }); To select a specific person by the ssn value, try this: var $person = ...


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Binary tree is a special case where each node has only two children. The method used to find node level can be extended to a common tree. The idea is the same: level(P) = max(level(C) for each child node C of P)+1


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You're right, the loop termination isn't exactly right. The first two branches within the while loop doesn't belong. One of the first two branches will always fire, as != and == are complements. The return false statement belongs outside of the while loop, indicating the entire list has been traversed and no equal adjacent nodes. public boolean ...


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The basic idea is as follows: Step one, check if the list is empty. If that's the case then, by definition, there can be no duplicates, so return false and stop.This prevents you from trying to evaluate the following element when the current one does not exist).Otherwise, start with the current element being the first in the list. Step two, you need to ...


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A simple approach would be to use a List that runs through it either dept of breadth first. public static int countMatches(BinaryNodeInterface<Integer> tree, Integer key) { ArrayList<Node> open = new ArrayList<Node>(); open.add(tree.getRoot()); int matches = 0; while(!open.isEmpty()) { if(open.get(0).hasLeft()) ...


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You can use do a level order traversal using a queue public static int countMatches(BinaryNodeInterface<Integer> tree, Integer key) { int matches = 0; if (tree == null) return 0; Queue<BinaryTreeNodeInterface<Integer>> queue = new LinkedList<BinaryTreeNodeInterface<Integer>>(); queue.add(tree); while ...


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path(Start, End, Path) :- edge(Start,First), path3(Start, End, [Start,First], Path). should work


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First of all I would suggest you to use different approach by using unique class name to the element as you are using id multiple times. First get the no. of rows and then subtract row number by 1 when id of the element is 'group1', include this code in .each function. You will get the no. of rows till id 'group1'


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You should not use same id for differents elements. Instead you should use class. Since your radio is inside a tr you must use patent then use prev till find a tr with group1 class look this http://api.jquery.com/prev/


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You could try something like $('input[type="radio"]').on('change', function() { var $parent = $(this).parents('tr').eq(0), $siblings = $parent.prevUntil('tr#group1'); // or $siblings = $parent.siblings('.rowsAll:visible'); console.log($siblings.length); });


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Look at the explanations of the traversals on Wikipedia. Your solution is pretty simple, and is a clear translation of the explanation into code. Pre-order is only different from in-order in the order in which it recurses through the tree. Aside from that it's just as simple and straightforward. The required change to your code to get pre-order to work ...


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Here's a shorter version iluxa's original answer. It runs exactly the same node manipulation and printing steps, in exactly the same order — but in a simplified manner [1]: void traverse (Node n) { while (n) { Node next = n.left; if (next) { n.left = next.right; next.right = n; n = next; } else { print(n); n = ...



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