uva 297
題意:出四叉樹的前序遍歷,計算2個樹疊加后黑色的面積大小,每個節點要是為葉子節點要么必有四個子節點。
#include <iostream>
#include <cstring>
#include <cstdio>
#include <algorithm>
using namespace std;char str1[100005],str2[100005];class Node
{
public:char data;Node *son[4];
};
Node node[20000];
int nIndex,pos1,pos2,sum;inline Node* NewNode()
{node[nIndex].data = 0 ;for (int i = 0 ; i < 4 ; i++)node[nIndex].son[i] = NULL;return &node[nIndex++];
}Node *BuildTree(Node *root,int &pos,char *str)
{pos++;if (pos == strlen(str))return NULL;root = NewNode();root->data = str[pos];if (str[pos] == 'p'){for(int i = 0 ; i < 4 ; i++ )if (root->son[i] == NULL)root->son[i] = BuildTree(root->son[i],pos,str);}return root;
}void dfs(Node *root1,Node *root2,int level)
{if (root1 == NULL && root2 == NULL )return ;if ( root1 == NULL ){if(root2->data == 'f'){sum+= 1024>>(level*2);return ;}for (int i = 0; i < 4 ; i++ )dfs(root1,root2->son[i],level+1);return ;}if (root2 == NULL ){if (root1->data == 'f'){sum+= 1024>>(level*2);return ;}for (int j = 0 ; j < 4 ; j++ )dfs(root1->son[j],root2,level+1);return ;}if (root1->data=='f' || root2->data == 'f'){sum+=1024>>(level*2);return ;}for (int l = 0 ; l < 4 ; l++ )dfs(root1->son[l],root2->son[l],level+1);
}void solve()
{Node *root1 = NULL,*root2 = NULL;nIndex = 0;pos1 = pos2 = -1;root1 = BuildTree(root1,pos1,str1);root2 = BuildTree(root2,pos2,str2);dfs(root1,root2,0);printf("There are %d black pixels.\n",sum);
}int main()
{int T;cin>>T;getchar();while (T--){scanf("%s %s",str1,str2);sum = 0 ;solve();}return 0 ;
}
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