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https://leetcode.com/problems/meeting-rooms-ii/#/solutions

 

Given an array of meeting time intervals consisting of start and end times [[s1,e1],[s2,e2],...] (si < ei), find the minimum number of conference rooms required.

For example,
Given [[0, 30],[5, 10],[15, 20]],
return 2.

 

 

Sol:
 
Use heap data structure to store the end time of intervals. The length of heap is the number of rooms needed.
 
If the start time is later than the end time so far, then replace the value in the heap and no room is needed.
 
Otherwise, a new room is needed, and we achieve it by pushing the end time of the interval into the heap. 

 

 

# Definition for an interval.
class Interval(object):
    def __init__(self, s=0, e=0):
        self.start = s
        self.end = e

class Solution(object):
    def minMeetingRooms(self, intervals):
        """
        :type intervals: List[Interval]
        :rtype: int
        """
        
        intervals.sort(key = lambda x: x.start)
        # stores the end time of intervals
        heap = []
        for i in intervals:
            if heap and i.start >= heap[0]:
                # means two intervals can use the same room
                heapq.heapreplace(heap, i.end)
            else:
                # a new room is allocated
                heapq.heappush(heap, i.end)
        return len(heap)

 

 

Note:

 

1 heapq.heappop() in python can pop the smallest value in the heap. Here's the demo.

 

 

 

import heapq

 

h = []

heapq.heappush(h, 5)

heapq.heappush(h, 2)

heapq.heappush(h, 8)

heapq.heappush(h, 4)

print(heapq.heappop(h))

print(heapq.heappop(h))

 

 

== >

2

4

 

 

 

 

2 Data structures are generally based on the ability of a computer to fetch and store data at any place in its memory.

posted on 2017-06-25 17:02  Premiumlab  阅读(125)  评论(0编辑  收藏  举报