HDU 1241 Oil Deposits【dfs&bfs】
2016-07-28 18:00
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Oil Deposits
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 24462 Accepted Submission(s): 14056
[align=left]Problem Description[/align]
The GeoSurvComp geologic survey company is responsible for detecting underground oil deposits. GeoSurvComp works with one large rectangular region of land at a time, and creates a grid that divides the land into numerous square plots.
It then analyzes each plot separately, using sensing equipment to determine whether or not the plot contains oil. A plot containing oil is called a pocket. If two pockets are adjacent, then they are part of the same oil deposit. Oil deposits can be quite large
and may contain numerous pockets. Your job is to determine how many different oil deposits are contained in a grid.
[align=left]Input[/align]
The input file contains one or more grids. Each grid begins with a line containing m and n, the number of rows and columns in the grid, separated by a single space. If m = 0 it signals the end of the input; otherwise 1 <= m <= 100
and 1 <= n <= 100. Following this are m lines of n characters each (not counting the end-of-line characters). Each character corresponds to one plot, and is either `*', representing the absence of oil, or `@', representing an oil pocket.
[align=left]Output[/align]
For each grid, output the number of distinct oil deposits. Two different pockets are part of the same oil deposit if they are adjacent horizontally, vertically, or diagonally. An oil deposit will not contain more than 100 pockets.
[align=left]Sample Input[/align]
1 1
*
3 5
*@*@*
**@**
*@*@*
1 8
@@****@*
5 5
****@
*@@*@
*@**@
@@@*@
@@**@
0 0
[align=left]Sample Output[/align]
0
1
2
2
[align=left]Source[/align]
Mid-Central USA 1997
贴这题吧,最主要的原因是翻译问题= =
这一题的相邻居然有斜对角,这样的话,就是只要一圈有联系的就都是相邻的,是一块油田。注意这一点就好了,剩下的都很水。下面写一下题意省的我下回又看半天题……
题意:有一个公司发现了一片产油地。现在这块地被分成很多小块,有的小块里有油,有的没。相邻的有油的小块被看做同一块油田。问:这块产油地里有多少块油田。
#include<stdio.h> #include<string.h> #include<algorithm> using namespace std; char map[111][111]; int ans,n,m; void dfs(int x,int y) { if(x<0||x>=m||y<0||y>=n)return; if(map[x][y]!='@')return; map[x][y]='*'; dfs(x,y+1); dfs(x,y-1); dfs(x+1,y); dfs(x+1,y+1); dfs(x+1,y-1); dfs(x-1,y); dfs(x-1,y+1); dfs(x-1,y-1); } int main() { int i,j; while(scanf("%d%d",&m,&n),n||m) { ans=0; for(i=0;i<m;i++) scanf("%s",map[i]); for(i=0;i<m;i++) { for(j=0;j<n;j++) { if(map[i][j]=='@') { dfs(i,j); ans++; } } } printf("%d\n",ans); } return 0; }
2016.7.29
这道题,bfs和dfs都能做!突然觉得这是道学习用的好题,因为非常简单,而且明显的区分出了dfs和bfs的差别。
把bfs做法贴上,两代码对比能很明显的显示出bfs是历遍所有而dfs是回溯。
#include<stdio.h>
#include<string.h>
int n,m,num;
char map[111][111];
int dis[8][2]={{0,1},{0,-1},{1,0},{-1,0},{1,1},{1,-1},{-1,-1},{-1,1}};
void bfs(int x,int y)
{
for(int i=0;i<8;i++)
{
int tx=x+dis[i][0];
int ty=y+dis[i][1];
if(tx>=0&&ty>=0&&tx<m&ty<n&&map[tx][ty]=='@')//dfs不符合情况直接弹出了,而bfs是继续下一个节点。
{
map[tx][ty]='*';
bfs(tx,ty);
}
}
}
int main()
{
int i,j;
while(scanf("%d%d",&m,&n),n||m)
{
num=0;
for(i=0;i<m;i++)
scanf("%s",map[i]);
for(i=0;i<m;i++)
{
for(j=0;j<n;j++)
{
if(map[i][j]=='@')
{
num++;
map[i][j]='*';
bfs(i,j);
}
}
}
printf("%d\n",num);
}
return 0;
}
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