图算法(三)-拓扑排序
作者:互联网
207. Course Schedule
Medium
There are a total of numCourses courses you have to take, labeled from 0 to numCourses - 1. You are given an array prerequisites where prerequisites[i] = [ai, bi] indicates that you must take course bi first if you want to take course ai.
- For example, the pair
[0, 1], indicates that to take course0you have to first take course1.
Return true if you can finish all courses. Otherwise, return false.
Example 1:
Input: numCourses = 2, prerequisites = [[1,0]] Output: true Explanation: There are a total of 2 courses to take. To take course 1 you should have finished course 0. So it is possible.
Example 2:
Input: numCourses = 2, prerequisites = [[1,0],[0,1]] Output: false Explanation: There are a total of 2 courses to take. To take course 1 you should have finished course 0, and to take course 0 you should also have finished course 1. So it is impossible.
Constraints:
1 <= numCourses <= 1050 <= prerequisites.length <= 5000prerequisites[i].length == 20 <= ai, bi < numCourses- All the pairs prerequisites[i] are unique.
bfs
class Solution {
public boolean canFinish(int numCourses, int[][] prerequisites) {
//1.build graph
//2.build dgree
Map<Integer,List<Integer>> map = new HashMap();
int[] degree = new int[numCourses];
for(int[] pair:prerequisites){
List<Integer> list = map.getOrDefault(pair[1],new ArrayList());
list.add(pair[0]);
map.put(pair[1],list);
degree[pair[0]]++;
}
//3.find the entry(degree==0)
Queue<Integer> queue = new LinkedList();
for(int i=0;i<numCourses;i++) if(degree[i]==0) queue.offer(i);
//4.toplogical
int count=0;
while(!queue.isEmpty()){
int curr = queue.poll();
count++;
for(int other:map.getOrDefault(curr,Arrays.asList())){
if(--degree[other] == 0) queue.offer(other);//入度为0的时候进queue
}
}
return count==numCourses;
}
}
dfs
标签:int,prerequisites,拓扑,numCourses,course,算法,take,pair,排序 来源: https://www.cnblogs.com/cynrjy/p/15709342.html