Divide two integers without using multiplication, division and mod operator.
思路: 类同 趣味算法之数学问题:题4.
两点需要注意: 1. 除数或被除数为最大负数时,转化为正数会溢出。2. divisor + divisor 可能会溢出。
class Solution {
public:
int divide(int dividend, int divisor) {
if(divisor == 0) return INT_MAX;
bool signal = false;
bool overflow = false;
if(dividend < 0) {
signal = !signal;
if(dividend == INT_MIN) { overflow = true; dividend++; }
dividend *= -1;
}
if(divisor < 0) {
signal = !signal;
if(divisor == INT_MIN) {
if(overflow) return 1;
else return 0;
}
divisor *= -1;
}
int result = 0;
while(dividend >= divisor) {
int x(divisor);
int r(1);
while(dividend-x >= x) {
x += x;
r += r;
}
dividend -= x;
result += r;
}
if(overflow && dividend +1 == divisor) result++;
return signal ? (-result) : result;
}
};
原文:http://www.cnblogs.com/liyangguang1988/p/3961196.html