题目描述
给定一个二叉树的根节点 root,和一个整数 targetSum,求该二叉树里节点值之和等于 targetSum 的 路径 的数目。
路径 不需要从根节点开始,也不需要在叶子节点结束,但是路径方向必须是向下的(只能从父节点到子节点)。
示例 1:
输入:root = [10,5,-3,3,2,null,11,3,-2,null,1], targetSum = 8
输出:3
解释:和等于 8 的路径有 3 条,如图所示。
示例 2:
输入:root = [5,4,8,11,null,13,4,7,2,null,null,5,1], targetSum = 22
输出:3
思路&js代码
1、深度优先搜索
var pathSum = function(root, targetSum) {
if (root == null) {
return 0;
}
let ret = rootSum(root, targetSum);
ret += pathSum(root.left, targetSum);
ret += pathSum(root.right, targetSum);
return ret;
};
const rootSum = (root, targetSum) => {
let ret = 0;
if (root == null) {
return 0;
}
const val = root.val;
if (val === targetSum) {
ret++;
}
ret += rootSum(root.left, targetSum - val);
ret += rootSum(root.right, targetSum - val);
return ret;
}2、前缀和
var pathSum = function(root, targetSum) {
const prefix = new Map();
prefix.set(0, 1);
return dfs(root, prefix, 0, targetSum);
}
const dfs = (root, prefix, curr, targetSum) => {
if (root == null) {
return 0;
}
let ret = 0;
curr += root.val;
ret = prefix.get(curr - targetSum) || 0;
prefix.set(curr, (prefix.get(curr) || 0) + 1);
ret += dfs(root.left, prefix, curr, targetSum);
ret += dfs(root.right, prefix, curr, targetSum);
prefix.set(curr, (prefix.get(curr) || 0) - 1);
return ret;
}