2023-10-15 Daily Challenge
Today I have done leetcode's October LeetCoding Challenge with cpp
.
October LeetCoding Challenge 15
Description
Number of Ways to Stay in the Same Place After Some Steps
You have a pointer at index 0
in an array of size arrLen
. At each step, you can move 1 position to the left, 1 position to the right in the array, or stay in the same place (The pointer should not be placed outside the array at any time).
Given two integers steps
and arrLen
, return the number of ways such that your pointer is still at index 0
after exactly steps
steps. Since the answer may be too large, return it modulo 109 + 7
.
Example 1:
Input: steps = 3, arrLen = 2 Output: 4 Explanation: There are 4 differents ways to stay at index 0 after 3 steps. Right, Left, Stay Stay, Right, Left Right, Stay, Left Stay, Stay, Stay
Example 2:
Input: steps = 2, arrLen = 4 Output: 2 Explanation: There are 2 differents ways to stay at index 0 after 2 steps Right, Left Stay, Stay
Example 3:
Input: steps = 4, arrLen = 2 Output: 8
Constraints:
1 <= steps <= 500
1 <= arrLen <= 106
Solution
const int MOD = 1e9 + 7;
int ways[2][500];
class Solution {
public:
int numWays(int steps, int arrLen) {
if(arrLen == 1) return 1;
memset(ways, 0, sizeof(ways));
ways[0][0] = 1;
int boundary = min(arrLen, 500);
for(int i = 1; i <= steps; ++i) {
int parity = i & 1;
ways[parity][0] = (ways[!parity][0] + ways[!parity][1]) % MOD;
ways[parity][boundary - 1] = (ways[!parity][boundary - 1] + ways[!parity][boundary - 2]) % MOD;
for(int j = 1; j < boundary - 1; ++j) {
ways[parity][j] = ways[!parity][j - 1];
ways[parity][j] += ways[!parity][j];
ways[parity][j] %= MOD;
ways[parity][j] += ways[!parity][j + 1];
ways[parity][j] %= MOD;
}
}
return ways[steps & 1][0];
}
};
// Accepted
// 33/33 cases passed (7 ms)
// Your runtime beats 94.59 % of cpp submissions
// Your memory usage beats 98.27 % of cpp submissions (6.3 MB)