There is a one-dimensional garden on the x-axis. The garden starts at the point 0 and ends at the point n. (i.e The length of the garden is n).
There are n + 1 taps located at points [0, 1, ..., n] in the garden.
Given an integer n and an integer array ranges of length n + 1 where ranges[i] (0-indexed) means the i-th tap can water the area [i - ranges[i], i + ranges[i]] if it was open.
Return the minimum number of taps that should be open to water the whole garden, If the garden cannot be watered return -1.
Example 1:
Input: n = 5, ranges = [3,4,1,1,0,0] Output: 1 Explanation: The tap at point 0 can cover the interval [-3,3] The tap at point 1 can cover the interval [-3,5] The tap at point 2 can cover the interval [1,3] The tap at point 3 can cover the interval [2,4] The tap at point 4 can cover the interval [4,4] The tap at point 5 can cover the interval [5,5] Opening Only the second tap will water the whole garden [0,5]
Example 2:
Input: n = 3, ranges = [0,0,0,0] Output: -1 Explanation: Even if you activate all the four taps you cannot water the whole garden.
Example 3:
Input: n = 7, ranges = [1,2,1,0,2,1,0,1] Output: 3
Example 4:
Input: n = 8, ranges = [4,0,0,0,0,0,0,0,4] Output: 2
Example 5:
Input: n = 8, ranges = [4,0,0,0,4,0,0,0,4] Output: 1
Constraints:
1 <= n <= 10^4ranges.length == n + 10 <= ranges[i] <= 100
class Solution { public int minTaps(int n, int[] ranges) { int l = n + 1; int[][] arr = new int[l][2]; for(int i = 0; i < l; i++){ arr[i][0] = i - ranges[i]; arr[i][1] = i + ranges[i]; } Arrays.sort(arr, (a, b)-> a[0] - b[0]); int res = videoStitching(arr, n); return res; } public int videoStitching(int[][] clips, int T) { int res = 0; for(int i = 0, st = 0, end = 0; st < T; res++, st = end){ for(; i < clips.length && clips[i][0] <= st; i++){ end = Math.max(end, clips[i][1]); } if(st == end) return -1; } return res; } }