There are a total of n courses you have to take, labeled from 0 to n - 1.
Some courses may have prerequisites, for example to take course 0 you have to first take course 1, which is expressed as a pair: [0,1]
Given the total number of courses and a list of prerequisite pairs, is it possible for you to finish all courses?
For example:
2, [[1,0]]
There are a total of 2 courses to take. To take course 1 you should have finished course 0. So it is possible.
2, [[1,0],[0,1]]
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.
思路:
把课程序号做顶点,把给定的对作为边,就是找图里有没有环。
我自己代码:
bool canFinish(int numCourses, vector<pair<int, int>>& prerequisites) {
bool hasCircle = false;
vector<vector<int>> edges(numCourses); //换一种表示图的方式 edges[0]表示顶点0对应的边 后面是所有它指向的顶点
for(int i = ; i < prerequisites.size(); ++i)
edges[prerequisites[i].first].push_back(prerequisites[i].second);
bool * isusedv = (bool *)calloc(numCourses, sizeof(bool)); //存储顶点是否使用过
for(int i = ; i < prerequisites.size(); ++i)
{
hasCircle = findCircle(edges, isusedv, prerequisites[i].first);
if(hasCircle) break;
}
free(isusedv);
return !hasCircle;
}
bool findCircle(vector<vector<int>> &edges, bool * isusedv, int vid) //DFS
{
if(isusedv[vid])
return true; //找到了圈
isusedv[vid] = true; //标记该节点为用过
bool hasCircle = false;
for(int i = ; i < edges[vid].size(); ++i)
{
hasCircle |= findCircle(edges, isusedv, edges[vid][i]);
if(hasCircle) break; //一旦找到了圈就返回
}
isusedv[vid] = false;
return hasCircle;
}
大神的代码:
BFS拓扑排序:
一个简单的求拓扑排序的算法:首先要找到任意入度为0的一个顶点,删除它及所有相邻的边,再找入度为0的顶点,以此类推,直到删除所有顶点。顶点的删除顺序即为拓扑排序。
bool canFinish(int numCourses, vector<vector<int>>& prerequisites)
{
vector<unordered_set<int>> matrix(numCourses); // save this directed graph
for(int i = ; i < prerequisites.size(); ++ i)
matrix[prerequisites[i][]].insert(prerequisites[i][]); vector<int> d(numCourses, ); // in-degree
for(int i = ; i < numCourses; ++ i)
for(auto it = matrix[i].begin(); it != matrix[i].end(); ++ it)
++ d[*it]; for(int j = , i; j < numCourses; ++ j)
{
for(i = ; i < numCourses && d[i] != ; ++ i); // find a node whose in-degree is 0 if(i == numCourses) // if not find
return false; d[i] = -;
for(auto it = matrix[i].begin(); it != matrix[i].end(); ++ it)
-- d[*it];
} return true;
}
DFS找环
bool canFinish(int numCourses, vector<vector<int>>& prerequisites)
{
vector<unordered_set<int>> matrix(numCourses); // save this directed graph
for(int i = ; i < prerequisites.size(); ++ i)
matrix[prerequisites[i][]].insert(prerequisites[i][]); unordered_set<int> visited;
vector<bool> flag(numCourses, false);
for(int i = ; i < numCourses; ++ i)
if(!flag[i])
if(DFS(matrix, visited, i, flag))
return false;
return true;
}
bool DFS(vector<unordered_set<int>> &matrix, unordered_set<int> &visited, int b, vector<bool> &flag)
{
flag[b] = true;
visited.insert(b);
for(auto it = matrix[b].begin(); it != matrix[b].end(); ++ it)
if(visited.find(*it) != visited.end() || DFS(matrix, visited, *it, flag))
return true;
visited.erase(b);
return false;
}