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#yyds干货盘点# LeetCode程序员面试金典:运算

时间:2023-02-25 21:31:47浏览次数:36  
标签:yyds return index int 金典 ne ret minus LeetCode

题目:

请实现整数数字的乘法、减法和除法运算,运算结果均为整数数字,程序中只允许使用加法运算符和逻辑运算符,允许程序中出现正负常数,不允许使用位运算。

你的实现应该支持如下操作:

Operations() 构造函数

minus(a, b) 减法,返回a - b

multiply(a, b) 乘法,返回a * b

divide(a, b) 除法,返回a / b

示例:

Operations operations = new Operations();

operations.minus(1, 2); //返回-1

operations.multiply(3, 4); //返回12

operations.divide(5, -2); //返回-2

代码实现:

class Operations {

// 用来获取-1
int ne = Integer.MAX_VALUE + Integer.MAX_VALUE + 1;

long[] neCache = new long[32];// 放置 -1,-2,-4,-8...
long[] poCache = new long[32];// 放置 1,2,4,8...
long[] cache = new long[32];// 存放乘数或除数的倍数,1*a,2*a,4*a,8*a...主要用于快速计算,不然容易超时
long[] cache1 = new long[32];// 存放乘数或除数的倍数 负数-1*a,-2*a,-4*a,-8*a

public Operations() {
neCache[0] = ne;
poCache[0] = 1;
for (int i = 1; i < 32; ++i) {
neCache[i] = neCache[i + ne] + neCache[i + ne];
poCache[i] = poCache[i + ne] + poCache[i + ne];
}
}

public int minus(int a, int b) {
if (a == b) return 0;
int index = 31;// 从最大值开始比较
while (b != 0) {
if (b > 0) {
if (b >= poCache[index]) { // 如果b大于2的index次方,
b += neCache[index];// a与b同时减
a += neCache[index];
} else {
index += ne;
}
} else { // b小于0时同理
if (b <= neCache[index]) {
b += poCache[index];
a += poCache[index];
} else {
index += ne;
}
}
}
return a;
}

public int multiply(int a, int b) {
if (a == 0 || b == 0) return 0;
if (a == 1) return b;
if (b == 1) return a;
if (a == ne) return minus(0, b);
if (b == ne) return minus(0, a);
int sign = (a > 0 && b > 0) || (a < 0 && b < 0) ? 1 : ne;
// 把b变成正数
if (b < 0) {
b = minus(0, b);
}

cache[0] = a;
for (int i = 1; i < 32; i++) {
cache[i] = cache[i + ne] + cache[i + ne];
}
int index = 30; // 从31开始应该也是可以的
int ret = 0;
int retSign = a > 0 ? 1 : ne; // 记录返回值的符号
while (b > 0) {
if (b >= poCache[index]) {
b += neCache[index];
ret += cache[index];
retSign = ret > 0 ? 1 : ne;// 记录返回值的符号
} else {
index += ne;
}
}
// 根据初始值改变返回值的符号
if ((sign < 0 && ret > 0) || (sign > 0 && ret < 0)) {
ret = minus(0, ret);
}
// 结果溢出,返回值的符号会变成相反的
if (retSign != (a > 0 ? 1 : ne)) {
ret = minus(0, ret);
}
return ret;
}

public int divide(int a, int b) {
if (a == 0) return 0;
if (b == 1) return a;
if (b == ne) return minus(0, a);
int ret = 0;
int sign = (a > 0 && b > 0) || (a < 0 && b < 0) ? 1 : ne;
long nb = b;
long pb = b;
if (b < 0) {
b = minus(0, b);
} else {
nb = minus(0, b);
}
if (a < 0) {
a = minus(0, a);
}
cache[0] = b;
cache1[0] = nb;
int index = 1;
for (; index < 32; ++index) {
cache[index] = cache[index + ne] + cache[index + ne];
cache1[index] = cache1[index + ne] + cache1[index + ne];
if (cache1[index] >= a) {
break; // 找到最大值就可以返回了,不用计算完
}
}
if (index >= 32) index = 31;
while (a >= b) {
if (a >= cache[index]) {
ret += poCache[index];// 注意这里是2的index次方的值
a += cache1[index];
} else {
index += ne;
}
}
if (sign < 0) {
ret = minus(0, ret);
}
return ret;
}
}

标签:yyds,return,index,int,金典,ne,ret,minus,LeetCode
From: https://blog.51cto.com/u_13321676/6085691

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