题目
Calculate the sum of two integers a and b, but you are not allowed to use the operator + and -.
Example:
Given a = 1 and b = 2, return 3.
分析
不用+ - 号求两个整数的和,用二进制运算(&, |, ~, ^)
解答
解法1:(我)(0ms)
public class Solution {
public int getSum(int a, int b) {
int c = a;
int d = b;
while ((c & d) != 0){
int cc = c;
c = c ^ d;
d = (cc & d) << 1;
}
return (c ^ d);
}
}
解法2+:两种方法(递归、迭代),三种运算(加法、减法、相反数)
>"&" AND operation, for example, 2 (0010) & 7 (0111) => 2 (0010) "^" XOR operation, for example, 2 (0010) ^ 7 (0111) => 5 (0101) "~" NOT operation, for example, ~2(0010) => -3 (1101) (参与运算的都是以补码的形式)In bit representation, a = 0001, b = 0011,
First, we can use "and"("&") operation between a and b to find a carry.
carry = a & b, then carry = 0001
Second, we can use "xor" ("^") operation between a and b to find the different bit, and assign it to a,
Then, we shift carry one position left and assign it to b, b = 0010.
Iterate until there is no carry (or b == 0)
// Iterative
public int getSum(int a, int b) {
if (a == 0) return b;
if (b == 0) return a;
while (b != 0) {
int carry = a & b;
a = a ^ b;
b = carry << 1;
}
return a;
}
// Iterative
public int getSubtract(int a, int b) {
while (b != 0) {
int borrow = (~a) & b;
a = a ^ b;
b = borrow << 1;
}
return a;
}
// Recursive
public int getSum(int a, int b) {
return (b == 0) ? a : getSum(a ^ b, (a & b) << 1);
}
// Recursive
public int getSubtract(int a, int b) {
return (b == 0) ? a : getSubtract(a ^ b, (~a & b) << 1);
}
// Get negative number
public int negate(int x) {
return ~x + 1;
}