CS-Notes/notes/10.4 变态跳台阶.md
2019-11-03 23:57:08 +08:00

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# 10.4 变态跳台阶
## 题目链接
[NowCoder](https://www.nowcoder.com/practice/22243d016f6b47f2a6928b4313c85387?tpId=13&tqId=11162&tPage=1&rp=1&ru=/ta/coding-interviews&qru=/ta/coding-interviews/question-ranking&from=cyc_github)
## 题目描述
一只青蛙一次可以跳上 1 级台阶也可以跳上 2 ... 它也可以跳上 n 求该青蛙跳上一个 n 级的台阶总共有多少种跳法
<div align="center"> <img src="https://cs-notes-1256109796.cos.ap-guangzhou.myqcloud.com/cd411a94-3786-4c94-9e08-f28320e010d5.png" width="380px"> </div><br>
## 解题思路
### 动态规划
```java
public int JumpFloorII(int target) {
int[] dp = new int[target];
Arrays.fill(dp, 1);
for (int i = 1; i < target; i++)
for (int j = 0; j < i; j++)
dp[i] += dp[j];
return dp[target - 1];
}
```
### 数学推导
跳上 n-1 级台阶可以从 n-2 级跳 1 级上去也可以从 n-3 级跳 2 级上去...那么
```
f(n-1) = f(n-2) + f(n-3) + ... + f(0)
```
同样跳上 n 级台阶可以从 n-1 级跳 1 级上去也可以从 n-2 级跳 2 级上去... 那么
```
f(n) = f(n-1) + f(n-2) + ... + f(0)
```
综上可得
```
f(n) - f(n-1) = f(n-1)
```
```
f(n) = 2*f(n-1)
```
所以 f(n) 是一个等比数列
```source-java
public int JumpFloorII(int target) {
return (int) Math.pow(2, target - 1);
}
```
<div align="center"><img width="320px" src="https://cs-notes-1256109796.cos.ap-guangzhou.myqcloud.com/githubio/公众号二维码-2.png"></img></div>