【LeetCode】67. 二进制求和

1 问题

给你两个二进制字符串 a 和 b ,以二进制字符串的形式返回它们的和。

示例 1:

输入:a = “11”, b = “1”
输出:“100”

示例 2:

输入:a = “1010”, b = “1011”
输出:“10101”

2 答案

自己写的,先转成十进制,再求和,再转成二进制

class Solution:
    def addBinary(self, a: str, b: str) -> str:
        int_a, int_b = 0, 0
        c = ''
        for i in range(len(a)):
            int_a = int_a + int(a[i]) * 2 ** (len(a)-i-1)
        for j in range(len(b)):
            int_b = int_b + int(b[j]) * 2 ** (len(b)-j-1)
        int_c = int_a + int_b
        if int_c==0 : return "0" 
        while int_c:
            c = str(int_c % 2) + c
            int_c //= 2
        return c

在这里插入图片描述
官方解

  1. 一行写法
class Solution:
    def addBinary(self, a: str, b: str) -> str:
            return bin(int(a, 2) + int(b, 2))[2:]  
            # int(a, 2) 将二进制字符串转成整数
            # bin 将整数转换为二进制
            # 对结果如"0b100"进行切片,去掉前面的’0b‘
  1. 二进制两数相加
class Solution:
    def addBinary(self, a: str, b: str) -> str:
        res, p = '', 0
        d = len(b) - len(a)
        a = '0'*d + a  # 让a和b长度相同,如果d小于零,则不会补0
        b = '0'*-d + b 
        for i, j in zip(a[::-1],b[::-1]):  # 翻转切片,从后往前加
            s = int(i) + int(j) + p  # 二进制两数相加
            res = str(s%2) + res
            p = s // 2
        return str(p)+res if p else res

https://leetcode.cn/problems/add-binary/solutions/7221/python-1xing-nei-zhi-han-shu-fei-nei-zhi-jie-fa-by/

  1. 也可以使用 divmod
class Solution:
    def addBinary(self, a: str, b: str) -> str:
        res, carry = '', 0
        i = len(a) - 1
        j = len(b) - 1
        while i>=0 or j>=0 or carry:
            tmp1 = int(a[i]) if i>=0 else 0 
            tmp2 = int(b[j]) if j>=0 else 0 
            carry, t = divmod(tmp1+tmp2+carry, 2) # carry除以2的商,t为余数
            res = str(t) + res
            i -= 1
            j -= 1
        return res

https://leetcode.cn/problems/add-binary/solutions/6200/mo-ni-guo-cheng-by-powcai-4/

你可能感兴趣的:(LeetCode,Python,leetcode,算法)