253. Meeting rooms II

两个数组,一个存start,一个存end,分别sort。如果当前start >= end[last],说明这个start可以和上一个end用一间meeting room,不用加房间,所有直接last++。end数组里面代表着meeting的结束时间从早到晚的排序,而比较开始时间与最早的结束时间(end[last])就能得到是否需要加一个房间。

用两个array:

class Solution {
    public int minMeetingRooms(int[][] intervals) {
        if (intervals == null || intervals.length == 0 || intervals[0].length == 0)return 0;        
        int count = 1;
        int[] end = new int[intervals.length];
        int[] start = new int[intervals.length];
        for (int i = 0; i < intervals.length; i++) {
            start[i] = intervals[i][0];
            end[i] = intervals[i][1];
        }
        Arrays.sort(start);
        Arrays.sort(end);
        
        int last = 0;
        for (int i = 1; i < start.length; i++) {
            if (last < end.length && start[i] >= end[last]) {
                last++;
            } else {
                count++;
            }
        }
        
        return count;
    }
}

用priorityqueue做:

class Solution {
    public int minMeetingRooms(int[][] intervals) {
        if (intervals == null || intervals.length == 0 || intervals[0].length == 0)return 0;
        Arrays.sort(intervals, (int[] a, int[] b) -> a[0] == b[0] ? a[1] - b[1] : a[0] - b[0]);
        //放入pq里代表多加了一个meeting room 拿出来代表当前meeting结束不占用meeting room
        PriorityQueue pq = new PriorityQueue<>();
        pq.add(intervals[0][1]);
        for (int i = 1; i < intervals.length; i++) {
            if (intervals[i][0] >= pq.peek()) {
                pq.poll();
                
            }
            pq.offer(intervals[i][1]);
        }
        return pq.size();
    }
}

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