[LeetCode] 29. Divide Two Integers 两数相除
Given two integersdividendanddivisor, divide two integers without using multiplication, division and mod operator.
Return the quotient after dividingdividendbydivisor.
The integer division should truncate toward zero.
Example 1:
Input: dividend = 10, divisor = 3
Output: 3
Example 2:
Input: dividend = 7, divisor = -3
Output: -2
Note:
- Both dividend and divisorwill be32-bitsigned integers.
- The divisor will never be 0.
- Assume we are dealing with an environment which could only store integers within the 32-bit signed integer range: [−231, 231− 1]. For the purpose of this problem, assume that your function returns 231− 1 when the division resultoverflows.
这道题让我们求两数相除,而且规定不能用乘法,除法和取余操作,那么这里可以用另一神器位操作 Bit Manipulation,思路是,如果被除数大于或等于除数,则进行如下循环,定义变量t等于除数,定义计数p,当t的两倍小于等于被除数时,进行如下循环,t扩大一倍,p扩大一倍,然后更新 res 和m。这道题的 OJ 给的一些 test case 非常的讨厌,因为输入的都是 int 型,比如被除数是 -2147483648,在 int 范围内,当除数是 -1 时,结果就超出了 int 范围,需要返回 INT_MAX,所以对于这种情况就在开始用 if 判定,将其和除数为0的情况放一起判定,返回 INT_MAX。然后还要根据被除数和除数的正负来确定返回值的正负,这里采用长整型 long 来完成所有的计算,最后返回值乘以符号即可,代码如下:
解法一:
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class Solution {
public:
int divide(int dividend, int divisor) {
if (dividend == INT_MIN && divisor == -1) return INT_MAX;
long m = labs(dividend), n = labs(divisor), res = 0;
int sign = ((dividend < 0) ^ (divisor < 0)) ? -1 : 1;
if (n == 1) return sign == 1 ? m : -m;
while (m >= n) {
long t = n, p = 1;
while (m >= (t << 1)) {
t <<= 1;
p <<= 1;
}
res += p;
m -= t;
}
return sign == 1 ? res : -res;
}
};
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我们可以通过递归的方法来解使上面的解法变得更加简洁:
解法二:
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class Solution {
public:
int divide(int dividend, int divisor) {
long m = labs(dividend), n = labs(divisor), res = 0;
if (m < n) return 0;
long t = n, p = 1;
while (m > (t << 1)) {
t <<= 1;
p <<= 1;
}
res += p + divide(m - t, n);
if ((dividend < 0) ^ (divisor < 0)) res = -res;
return res > INT_MAX ? INT_MAX : res;
}
};
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原文链接:https://www.cnblogs.com/grandyang/p/4431949.html
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