README.md

Sqrt(x)

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 since 
             the decimal part is truncated, 2 is returned.

Tags: Binary Search, Math

思路

题意是求平方根，参考 牛顿迭代法求平方根，然后再参考维基百科的 Integer square root 即可。

class Solution {
    public int mySqrt(int x) {
        long n = x;
        while (n * n > x) {
            n = (n + x / n) >> 1;
        }
        return (int) n;
    }
}

结语

如果你同我一样热爱数据结构、算法、LeetCode，可以关注我 GitHub 上的 LeetCode 题解：awesome-java-leetcode