LeetCode: 371 Sum of Two Integers(easy)

无加减运算求和算法

最新推荐文章于 2019-11-15 18:10:31 发布

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本文介绍了一种不使用+和-运算符计算两个整数之和的算法，通过位操作实现，具体方法为使用异或求无进位的和，与运算结合左移求进位，再将两部分相加。适用于char、short、int等整型数据的移位运算。

题目：

Calculate the sum of two integers a and b, but you are not allowed to use the operator + and -.

Example:
Given a = 1 and b = 2, return 3.

代码：

使用移位来计算，用异或求不带进位的和，用与并左移1位来算进位，然后将两者相加。

class Solution {
public:
    int getSum(int a, int b) {
        return b == 0 ? a : getSum(a^b, (a&b)<<1);
    }
};

什么样的数据可以直接移位？ char、 short、 int、 long、 unsigned char、 unsigned short、 unsigned int、 unsigned long

什么样的数据不能直接移位？ double、 float、 bool、 long double

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