标签:bsp his 数字 ddb lock pre 处理 数学 ext
- 数组
- 数学
给定两个二进制字符串,返回他们的和(用二进制表示)。
输入为非空字符串且只包含数字
1
和0
。示例 1:
输入: a = "11", b = "1" 输出: "100"示例 2:
输入: a = "1010", b = "1011" 输出: "10101"示例 3:(自己加的)
输入: a = "10100000100100110110010000010101111011011001101110111111111101000000101111001110001111100001101",
b = "110101001011101110001111100110001010100001101011101010000011011011001011101111001100000011011110011"
输出: "110111101100010011000101110110100000011101000101011001000011011000001100011110011010010011000000000"(这个用例过了,大概就行了。^_^)
用时:4ms
复杂度:O(n)
- 计算两个字符串长度,求出最短长度,确定长字符串,短字符串;
- 反向遍历短字符串,逐位与长字符串对应位相加,若长字符串求和后值大于 2,更新本位,且对前一位做+1处理。(注意达到首段特殊处理)
- 遍历完成后,若长字符串索引未到达头,再从该索引开始反向逐位判断值是否大于 2,若是,更新本位与前一位。
- 长字符串处理完成后,返回该长字符串。
1 class Solution { 2 public: 3 string addBinary(string a, string b) { 4 int shortLen, dvalue; 5 string ans, addStr; 6 int thisBit, nextBit, t; 7 if(a.length() >= b.length()) 8 { 9 shortLen = b.length(); 10 ans = a; 11 addStr = b; 12 dvalue = a.length() - b.length(); 13 } 14 else 15 { 16 shortLen = a.length(); 17 ans = b; 18 addStr = a; 19 dvalue = b.length() - a.length(); 20 } 21 for(int i=shortLen-1; i>=0; i--) 22 { 23 t = i + dvalue; 24 ans[t] += (addStr[i]-‘0‘); 25 thisBit = (ans[t]-‘0‘)%2; 26 nextBit = (ans[t]-‘0‘)/2; 27 if((ans[t] - ‘0‘) >= 2) 28 { 29 ans[t] = (thisBit + ‘0‘); 30 if(t == 0) 31 { 32 ans.insert(0, 1, (nextBit+‘0‘)); 33 break; 34 } 35 else 36 { 37 ans[t-1] += nextBit; 38 } 39 } 40 } 41 t--; 42 if(t >= 0) 43 { 44 while((ans[t] - ‘0‘) >= 2 && (t >= 0)) 45 { 46 thisBit = (ans[t]-‘0‘)%2; 47 nextBit = (ans[t]-‘0‘)/2; 48 ans[t] = (thisBit + ‘0‘); 49 if(t == 0) 50 { 51 ans.insert(0, 1, (nextBit+‘0‘)); 52 break; 53 } 54 else 55 { 56 ans[t-1] += nextBit; 57 t--; 58 } 59 } 60 } 61 return ans; 62 } 63 };
标签:bsp his 数字 ddb lock pre 处理 数学 ext
原文地址:https://www.cnblogs.com/yocichen/p/10298897.html