LeetCode-Sqrt(x)

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2022-09-23


Description:
Implement int sqrt(int x).

Compute and return the square root of x, where x is guaranteed to be a non-negative integer.

Since the return type is an integer, the decimal digits are truncated and only the integer part of the result is returned.

Example 1:
Input: 4
Output: 2

Example 2:
Input: 8
Output: 2

Explanation:
The square root of 8 is 2.82842…, and the decimal part is truncated, 2 is returned.

题意:模拟函数Sqrt(x)的功能,求一个数的开平方(取整数);

解法:Java中函数sqrt(x)所使用的原理是“牛顿迭代法”


LeetCode-Sqrt(x)_git

class Solution {
public int mySqrt(int x) {
double err = 1e-7;
double result = x;
while(Math.abs(result - x/result) > err){
result = (result + x/result)/2.0;
}
return (int)result;
}
}


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