Description#
You are given an integer array pref of size n. Find and return the array arr of size n that satisfies:
pref[i] = arr[0] ^ arr[1] ^ ... ^ arr[i].
Note that ^ denotes the bitwise-xor operation.
It can be proven that the answer is unique.
Example 1:
Input: pref = [5,2,0,3,1]
Output: [5,7,2,3,2]
Explanation: From the array [5,7,2,3,2] we have the following:
- pref[0] = 5.
- pref[1] = 5 ^ 7 = 2.
- pref[2] = 5 ^ 7 ^ 2 = 0.
- pref[3] = 5 ^ 7 ^ 2 ^ 3 = 3.
- pref[4] = 5 ^ 7 ^ 2 ^ 3 ^ 2 = 1.
Example 2:
Input: pref = [13]
Output: [13]
Explanation: We have pref[0] = arr[0] = 13.
Constraints:
1 <= pref.length <= 1050 <= pref[i] <= 106
Solutions#
Solution 1: Bit Manipulation#
According to the problem statement, we have equation one:
$$
pref[i]=arr[0] \oplus arr[1] \oplus \cdots \oplus arr[i]
$$
So, we also have equation two:
$$
pref[i-1]=arr[0] \oplus arr[1] \oplus \cdots \oplus arr[i-1]
$$
We perform a bitwise XOR operation on equations one and two, and get:
$$
pref[i] \oplus pref[i-1]=arr[i]
$$
That is, each item in the answer array is obtained by performing a bitwise XOR operation on the adjacent two items in the prefix XOR array.
The time complexity is $O(n)$, where $n$ is the length of the prefix XOR array. Ignoring the space consumption of the answer, the space complexity is $O(1)$.
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| class Solution:
def findArray(self, pref: List[int]) -> List[int]:
return [a ^ b for a, b in pairwise([0] + pref)]
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| class Solution {
public int[] findArray(int[] pref) {
int n = pref.length;
int[] ans = new int[n];
ans[0] = pref[0];
for (int i = 1; i < n; ++i) {
ans[i] = pref[i - 1] ^ pref[i];
}
return ans;
}
}
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| class Solution {
public:
vector<int> findArray(vector<int>& pref) {
int n = pref.size();
vector<int> ans = {pref[0]};
for (int i = 1; i < n; ++i) {
ans.push_back(pref[i - 1] ^ pref[i]);
}
return ans;
}
};
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| func findArray(pref []int) []int {
n := len(pref)
ans := []int{pref[0]}
for i := 1; i < n; i++ {
ans = append(ans, pref[i-1]^pref[i])
}
return ans
}
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| function findArray(pref: number[]): number[] {
let ans = pref.slice();
for (let i = 1; i < pref.length; i++) {
ans[i] = pref[i - 1] ^ pref[i];
}
return ans;
}
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| impl Solution {
pub fn find_array(pref: Vec<i32>) -> Vec<i32> {
let n = pref.len();
let mut res = vec![0; n];
res[0] = pref[0];
for i in 1..n {
res[i] = pref[i] ^ pref[i - 1];
}
res
}
}
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| /**
* Note: The returned array must be malloced, assume caller calls free().
*/
int* findArray(int* pref, int prefSize, int* returnSize) {
int* res = (int*) malloc(sizeof(int) * prefSize);
res[0] = pref[0];
for (int i = 1; i < prefSize; i++) {
res[i] = pref[i - 1] ^ pref[i];
}
*returnSize = prefSize;
return res;
}
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