原题
Given a non-empty binary tree, return the average value of the nodes on each level in the form of an array.
Example 1:
Input:
3
/
9 20
/
15 7
Output: [3, 14.5, 11]
Explanation:
The average value of nodes on level 0 is 3, on level 1 is 14.5, and on level 2 is 11. Hence return [3, 14.5, 11].
Note:
The range of node's value is in the range of 32-bit signed integer.
解析
给一颗树,求每一层的平均数,返回一个List
思路
我的想法是将一层的所有节点加入到一个list中,计算list的平均数,并递归计算list中节点的子节点(会构建多个list,空间利用较多)
最优解是使用了广度优先算法,利用queue将一层的节点先全部入列,计算平均数,并将其子节点入列,每层循环用n记录当前queue中的节点数,作为内层循环的循环次数
我的解法
public List<Double> averageOfLevels(TreeNode root) {
List<Double> avg = new ArrayList<>();
if (root == null) {
return null;
}
List<TreeNode> list = new ArrayList<TreeNode>() {
{
add(root);
}
};
getAvg(list, avg);
return avg;
}
private void getAvg(List<TreeNode> list, List<Double> avg) {
if (list == null || list.size() <= 0) {
return;
}
List<TreeNode> childTreeNodeList = new ArrayList<>();
Double sum = 0D;
for (TreeNode t : list) {
sum += t.val;
if (t.left != null) {
childTreeNodeList.add(t.left);
}
if (t.right != null) {
childTreeNodeList.add(t.right);
}
}
avg.add(sum / list.size());
getAvg(childTreeNodeList, avg);
}
最优解
public List<Double> averageOfLevelsBFS(TreeNode root) {
if (root == null) {
return null;
}
Queue<TreeNode> queue = new LinkedList<TreeNode>() {
{
add(root);
}
};
List<Double> avg = new ArrayList<>();
while (!queue.isEmpty()) {
//queue的长度为当前行的元素数
int n = queue.size();
Double sum = 0D;
for (int i = 0; i < n; i++) {
TreeNode t = queue.poll();
sum += t.val;
if (t.left != null) {
queue.offer(t.left);
}
if (t.right != null) {
queue.offer(t.right);
}
}
avg.add(sum / n);
}
return avg;
}