Given two binary strings, return their sum (also a binary string).
For example,
a =
b =
Return
» Solve this problema =
"11"b =
"1"Return
"100".[解题思路]
典型的实现题。没什么可说的。
[Code]
很少用c++,不查api库,不知道还有reverse这个方法。
1: string addBinary(string a, string b) {
2: // Start typing your C/C++ solution below
3: // DO NOT write int main() function
4: string result;
5: int maxL = a.size() > b.size()? a.size():b.size();
6:std::reverse(a.begin(), a.end());
7: std::reverse(b.begin(), b.end());
8: int carry=0;
9: for(int i =0; i<maxL;i++)
10: {
11: int ai = i<a.size()? a[i]-'0':0;
12: int bi = i<b.size()?b[i]-'0':0;
13: int val = (ai+bi+carry)%2;
14: carry = (ai+bi+carry)/2;
15: result.insert(result.begin(), val+'0');
16: }
17: if(carry ==1)
18: {
19: result.insert(result.begin(), '1');
20: }
21: return result;
22: }
[Note]
在facebook见过一个扩展题就是,如果不是二进制而是16进制,如何扩展。在上面的code中很容易更改,将Line13及Line14 中的2改成16就可以了。
Update 3/1/2014
上一个version写的太复杂,string的reverse根本没必要。直接用两个index一起往前跑就好了。更新之。
1: string addBinary(string a, string b) {
2: int carry =0;
3: string result;
4: for(int i = a.size()-1, j = b.size()-1; i >=0 || j>=0; --i,--j)
5: {
6: int ai = i>=0? a[i]-'0':0;
7: int bj = j>=0? b[j]-'0':0;
8: int val = (ai+bj+carry)%2;
9: carry = (ai+bj+carry) /2;
10: result.insert(result.begin(), val+'0');
11: }
12: if(carry ==1)
13: {
14: result.insert(result.begin(), '1');
15: }
16: return result;
17: }