LeetCode-in-Java
1652. Defuse the Bomb
Easy
You have a bomb to defuse, and your time is running out! Your informer will provide you with a circular array code of length of n and a key k.
To decrypt the code, you must replace every number. All the numbers are replaced simultaneously.
- If
k > 0, replace theithnumber with the sum of the nextknumbers. - If
k < 0, replace theithnumber with the sum of the previousknumbers. - If
k == 0, replace theithnumber with0.
As code is circular, the next element of code[n-1] is code[0], and the previous element of code[0] is code[n-1].
Given the circular array code and an integer key k, return the decrypted code to defuse the bomb!
Example 1:
Input: code = [5,7,1,4], k = 3
Output: [12,10,16,13]
Explanation: Each number is replaced by the sum of the next 3 numbers. The decrypted code is [7+1+4, 1+4+5, 4+5+7, 5+7+1]. Notice that the numbers wrap around.
Example 2:
Input: code = [1,2,3,4], k = 0
Output: [0,0,0,0]
Explanation: When k is zero, the numbers are replaced by 0.
Example 3:
Input: code = [2,4,9,3], k = -2
Output: [12,5,6,13]
Explanation: The decrypted code is [3+9, 2+3, 4+2, 9+4]. Notice that the numbers wrap around again. If k is negative, the sum is of the previous numbers.
Constraints:
n == code.length1 <= n <= 1001 <= code[i] <= 100-(n - 1) <= k <= n - 1
Solution
public class Solution {
public int[] decrypt(int[] code, int k) {
int[] result = new int[code.length];
int len = code.length;
if (k == 0) {
for (int i = 0; i < code.length; i++) {
result[i] = 0;
}
} else if (k > 0) {
int kSum = 0;
for (int i = 1; i <= k; i++) {
kSum += code[i];
}
result[0] = kSum;
for (int i = 1; i < len; i++) {
kSum -= code[i];
kSum += code[(i + k) % len];
result[i] = kSum;
}
} else {
int kSum = 0;
int kVal = Math.abs(k);
for (int i = len - 1; i >= len - kVal; i--) {
kSum += code[i];
}
result[0] = kSum;
for (int i = 1; i < len; i++) {
kSum -= code[(len - kVal + i - 1) % len];
kSum += code[i - 1];
result[i] = kSum;
}
}
return result;
}
}