CS-Notes/docs/notes/16. 数值的整数次方.md

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2019-11-02 12:07:41 +08:00
# 16. 数值的整数次方
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## 题目描述
给定一个 double 类型的浮点数 base int 类型的整数 exponent base exponent 次方
## 解题思路
下面的讨论中 x 代表 basen 代表 exponent
<!--<div align="center"><img src="https://latex.codecogs.com/gif.latex?x^n=\left\{\begin{array}{rcl}(x*x)^{n/2}&&{n\%2=0}\\x*(x*x)^{n/2}&&{n\%2=1}\end{array}\right." class="mathjax-pic"/></div> <br>-->
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<div align="center"> <img src="https://cs-notes-1256109796.cos.ap-guangzhou.myqcloud.com/48b1d459-8832-4e92-938a-728aae730739.jpg" width="330px"> </div><br>
2019-11-02 12:07:41 +08:00
因为 (x\*x)<sup>n/2</sup> 可以通过递归求解并且每次递归 n 都减小一半因此整个算法的时间复杂度为 O(logN)
```java
public double Power(double base, int exponent) {
if (exponent == 0)
return 1;
if (exponent == 1)
return base;
boolean isNegative = false;
if (exponent < 0) {
exponent = -exponent;
isNegative = true;
}
double pow = Power(base * base, exponent / 2);
if (exponent % 2 != 0)
pow = pow * base;
return isNegative ? 1 / pow : pow;
}
```
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