1118 Birds in Forest (25分)

最新推荐文章于 2023-11-08 14:54:35 发布
最新推荐文章于 2023-11-08 14:54:35 发布
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分类专栏: PAT # 广度优先搜索 # 深度优先搜索
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本文链接:https://blog.youkuaiyun.com/weixin_43116322/article/details/104132842
本文介绍了一种通过图片上的鸟类来分析图片间关系的方法。利用深度优先搜索(DFS)或广度优先搜索(BFS),遍历由图片和鸟类构成的图,确定不同图片是否来自同一棵树。关键在于设置picVisited和birdVisited来避免重复访问。

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在这里插入图片描述
每张图片有若干只鸟。对于两张图片,如果它们有相同编号的鸟,则说明这两张图片来自同一棵树。将各图片视为结点,各图片通过相同编号的鸟联系起来,所以可以用dfs或者bfs来进行遍历。注意,除了设置picVisited来判断某张图片是否访问过,还需要设置birdVisited来判断某只鸟是否已经访问过(否则超时)。

BFS:

#include<cstdio>
#include<unordered_set>
#include<algorithm>
#include<queue>
using namespace std;
int picNum, queryNum, treeNum, birdNum = 0;
unordered_set<int> bird[10001];	//记录某只鸟属于哪些图片,注意鸟的编号1~10000
unordered_set<int> picture[10000];	//记录某张图片有哪些鸟
int pictureSource[10000];	//记录某张图片属于哪棵树
bool picVisited[10000];	//记录某张图是否访问过
bool birdRecorded[10001];	//记录某只鸟是否已经被记录
bool birdVisited[10001];	//记录某只鸟是否访问过
int treeId = 0;

int main() {
	scanf("%d", &picNum);
	for (int i = 0;i < picNum;i++) {
		int n;
		scanf("%d", &n);
		for (int j = 0;j < n;j++) {
			int temp;
			scanf("%d", &temp);
			if (!birdRecorded[temp]) {
				birdNum++;
				birdRecorded[temp] = true;
			}
			bird[temp].insert(i);
			picture[i].insert(temp);
		}
	}

	for (int i = 0;i < picNum;i++) {
		if (!picVisited[i]) {
			picVisited[i] = true;
			queue<int> q;
			q.push(i);
			while (!q.empty()) {
				int curPic = q.front();
				q.pop();
				pictureSource[curPic] = treeId;
				for (auto it1 = picture[curPic].begin(); it1 != picture[curPic].end(); it1++) {
					int birdId = *it1;
					if (!birdVisited[birdId]) {
						birdVisited[birdId] = true;
						for (auto it2 = bird[birdId].begin(); it2 != bird[birdId].end(); it2++) {
							if (!picVisited[*it2]) {
								picVisited[*it2] = true;
								q.push(*it2);
							}
						}
					}
				}
			}
			treeId++;
		}
	}

	treeNum = treeId;
	printf("%d %d\n", treeNum, birdNum);
	scanf("%d", &queryNum);
	for (int i = 0;i < queryNum;i++) {
		int b1, b2;
		scanf("%d %d", &b1, &b2);
		int picId1 = *bird[b1].begin(), picId2 = *bird[b2].begin();
		if (pictureSource[picId1] == pictureSource[picId2]) {
			printf("Yes\n");
		}
		else printf("No\n");
	}
}

DFS:

#include<cstdio>
#include<unordered_set>
#include<algorithm>
using namespace std;
int picNum, queryNum, treeNum, birdNum = 0;
unordered_set<int> bird[10001];	//记录某只鸟属于哪些图片,注意鸟的编号1~10000
unordered_set<int> picture[10000];	//记录某张图片有哪些鸟
int pictureSource[10000];	//记录某张图片属于哪棵树
bool picVisited[10000];	//记录某张图是否访问过
bool birdCounted[10001];	//记录某只鸟是否已经计数过
bool birdVisited[10001];	//记录某只鸟是否在dfs中访问过
int treeId = 0;
void dfs(int curPic) {
	picVisited[curPic] = true;
	pictureSource[curPic] = treeId;
	for (auto it1 = picture[curPic].begin(); it1 != picture[curPic].end(); it1++) {
		int birdId = *it1;
		if (!birdVisited[*it1]) {
			birdVisited[*it1] = true;
			for (auto it2 = bird[birdId].begin(); it2 != bird[birdId].end(); it2++) {
				if (!picVisited[*it2]) {
					dfs(*it2);
				}
			}
		}
	}
}
int main() {
	scanf("%d", &picNum);
	for (int i = 0;i < picNum;i++) {
		int n;
		scanf("%d", &n);
		for (int j = 0;j < n;j++) {
			int temp;
			scanf("%d", &temp);
			if (!birdCounted[temp]) {
				birdCounted[temp] = true;
				birdNum++;
			}
			bird[temp].insert(i);
			picture[i].insert(temp);
		}
	}

	for (int i = 0;i < picNum;i++) {
		if (!picVisited[i]) {
			dfs(i);
			treeId++;
		}
	}
	treeNum = treeId;
	printf("%d %d\n", treeNum, birdNum);
	scanf("%d", &queryNum);
	for (int i = 0;i < queryNum;i++) {
		int b1, b2;
		scanf("%d %d", &b1, &b2);
		int picId1 = *bird[b1].begin(), picId2 = *bird[b2].begin();
		if (pictureSource[picId1] == pictureSource[picId2]) {
			printf("Yes\n");
		}
		else printf("No\n");
	}
}
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