1318. Minimum Flips to Make a OR b Equal to c
Description
Given 3 positives numbers a, b and c. Return the minimum flips required in some bits of a and b to make ( a OR b == c ). (bitwise OR operation).
Flip operation consists of change any single bit 1 to 0 or change the bit 0 to 1 in their binary representation.
Example 1:
Input: a = 2, b = 6, c = 5 Output: 3 Explanation: After flips a = 1 , b = 4 , c = 5 such that (aORb==c)
Example 2:
Input: a = 4, b = 2, c = 7 Output: 1
Example 3:
Input: a = 1, b = 2, c = 3 Output: 0
Constraints:
<li><code>1 <= a <= 10^9</code></li>
<li><code>1 <= b <= 10^9</code></li>
<li><code>1 <= c <= 10^9</code></li>
Solutions
Solution 1: Bit Manipulation
We can enumerate each bit of the binary representation of $a$, $b$, and $c$, denoted as $x$, $y$, and $z$ respectively. If the bitwise OR operation result of $x$ and $y$ is different from $z$, we then check if both $x$ and $y$ are $1$. If so, we need to flip twice, otherwise, we only need to flip once. We accumulate all the required flip times.
The time complexity is $O(\log M)$, where $M$ is the maximum value of the numbers in the problem. The space complexity is $O(1)$.
Python3
class Solution:
def minFlips(self, a: int, b: int, c: int) -> int:
ans = 0
for i in range(32):
x, y, z = a >> i & 1, b >> i & 1, c >> i & 1
ans += x + y if z == 0 else int(x == 0 and y == 0)
return ans
Java
class Solution {
public int minFlips(int a, int b, int c) {
int ans = 0;
for (int i = 0; i < 32; ++i) {
int x = a >> i & 1, y = b >> i & 1, z = c >> i & 1;
ans += z == 0 ? x + y : (x == 0 && y == 0 ? 1 : 0);
}
return ans;
}
}
C++
class Solution {
public:
int minFlips(int a, int b, int c) {
int ans = 0;
for (int i = 0; i < 32; ++i) {
int x = a >> i & 1, y = b >> i & 1, z = c >> i & 1;
ans += z == 0 ? x + y : (x == 0 && y == 0 ? 1 : 0);
}
return ans;
}
};
Go
func minFlips(a int, b int, c int) (ans int) {
for i := 0; i < 32; i++ {
x, y, z := a>>i&1, b>>i&1, c>>i&1
if z == 0 {
ans += x + y
} else if x == 0 && y == 0 {
ans++
}
}
return
}
TypeScript
function minFlips(a: number, b: number, c: number): number {
let ans = 0;
for (let i = 0; i < 32; ++i) {
const [x, y, z] = [(a >> i) & 1, (b >> i) & 1, (c >> i) & 1];
ans += z === 0 ? x + y : x + y === 0 ? 1 : 0;
}
return ans;
}