package LeetCode; public class LeetCode437 { /// 437. Path Sum III /// https://leetcode.com/problems/path-sum-iii/description/ /// 时间复杂度: O(n), n为树的节点个数 /// 空间复杂度: O(h), h为树的高度 /// Definition for a binary tree node. public static class TreeNode { int val; TreeNode left; TreeNode right; TreeNode(int x) { val = x; } } // 在以root为根节点的二叉树中,寻找和为sum的路径,返回这样的路径个数 public int pathSum(TreeNode root, int sum) { if (root == null) return 0; return findPath(root, sum) + pathSum(root.left, sum) + pathSum(root.right, sum); } // 在以node为根节点的二叉树中,寻找包含node的路径,和为sum // 返回这样的路径个数 private int findPath(TreeNode node, int num) { if (node == null) return 0; int res = 0; // 找到node.val == num 说明就已经找到一条路径了。 if (node.val == num) res += 1; res += findPath(node.left, num - node.val); res += findPath(node.right, num - node.val); return res; } public static void main(String[] args) { // 手动创建Leetcode题页上的测试用例。 // 当然, 有更好的更智能的创建二叉树的方式, 有兴趣的同学可以自行研究编写程序:) /***************** * 测试用例: * * 10 * / \ * 5 -3 * / \ \ * 3 2 11 * / \ \ * 3 -2 1 *****************/ TreeNode node1 = new TreeNode(3); TreeNode node2 = new TreeNode(-2); TreeNode node3 = new TreeNode(3); node3.left = node1; node3.right = node2; TreeNode node4 = new TreeNode(1); TreeNode node5 = new TreeNode(2); node5.right = node4; TreeNode node6 = new TreeNode(5); node6.left = node3; node6.right = node5; TreeNode node7 = new TreeNode(11); TreeNode node8 = new TreeNode(-3); node8.right = node7; TreeNode node9 = new TreeNode(10); node9.left = node6; node9.right = node8; System.out.println((new LeetCode437()).pathSum(node9, 8)); } }