hdu1800 Flying to the Mars(字典树)
2016-02-06 19:14
459 查看
题目链接:http://acm.hdu.edu.cn/showproblem.php?pid=1800
Total Submission(s): 14340 Accepted Submission(s): 4572
Problem Description
In the year 8888, the Earth is ruled by the PPF Empire . As the population growing , PPF needs to find more land for the newborns . Finally , PPF decides to attack Kscinow who ruling the Mars . Here the problem comes! How can the soldiers reach the Mars ? PPF
convokes his soldiers and asks for their suggestions . “Rush … ” one soldier answers. “Shut up ! Do I have to remind you that there isn’t any road to the Mars from here!” PPF replies. “Fly !” another answers. PPF smiles :“Clever guy ! Although we haven’t got
wings , I can buy some magic broomsticks from HARRY POTTER to help you .” Now , it’s time to learn to fly on a broomstick ! we assume that one soldier has one level number indicating his degree. The soldier who has a higher level could teach the lower , that
is to say the former’s level > the latter’s . But the lower can’t teach the higher. One soldier can have only one teacher at most , certainly , having no teacher is also legal. Similarly one soldier can have only one student at most while having no student
is also possible. Teacher can teach his student on the same broomstick .Certainly , all the soldier must have practiced on the broomstick before they fly to the Mars! Magic broomstick is expensive !So , can you help PPF to calculate the minimum number of the
broomstick needed .
For example :
There are 5 soldiers (A B C D E)with level numbers : 2 4 5 6 4;
One method :
C could teach B; B could teach A; So , A B C are eligible to study on the same broomstick.
D could teach E;So D E are eligible to study on the same broomstick;
Using this method , we need 2 broomsticks.
Another method:
D could teach A; So A D are eligible to study on the same broomstick.
C could teach B; So B C are eligible to study on the same broomstick.
E with no teacher or student are eligible to study on one broomstick.
Using the method ,we need 3 broomsticks.
……
After checking up all possible method, we found that 2 is the minimum number of broomsticks needed.
Input
Input file contains multiple test cases.
In a test case,the first line contains a single positive number N indicating the number of soldiers.(0<=N<=3000)
Next N lines :There is only one nonnegative integer on each line , indicating the level number for each soldier.( less than 30 digits);
Output
For each case, output the minimum number of broomsticks on a single line.
Sample Input
Sample Output
题目大意: 士兵要学骑扫帚。每个士兵有一个level,level高的能在同一把扫帚上教level低的怎么骑。一个人最多有一个老师,一个学生。也可以没有。给n个士兵的level值,问最少需要多少扫帚。
详见代码。
Flying to the Mars
Time Limit: 5000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 14340 Accepted Submission(s): 4572
Problem Description
In the year 8888, the Earth is ruled by the PPF Empire . As the population growing , PPF needs to find more land for the newborns . Finally , PPF decides to attack Kscinow who ruling the Mars . Here the problem comes! How can the soldiers reach the Mars ? PPF
convokes his soldiers and asks for their suggestions . “Rush … ” one soldier answers. “Shut up ! Do I have to remind you that there isn’t any road to the Mars from here!” PPF replies. “Fly !” another answers. PPF smiles :“Clever guy ! Although we haven’t got
wings , I can buy some magic broomsticks from HARRY POTTER to help you .” Now , it’s time to learn to fly on a broomstick ! we assume that one soldier has one level number indicating his degree. The soldier who has a higher level could teach the lower , that
is to say the former’s level > the latter’s . But the lower can’t teach the higher. One soldier can have only one teacher at most , certainly , having no teacher is also legal. Similarly one soldier can have only one student at most while having no student
is also possible. Teacher can teach his student on the same broomstick .Certainly , all the soldier must have practiced on the broomstick before they fly to the Mars! Magic broomstick is expensive !So , can you help PPF to calculate the minimum number of the
broomstick needed .
For example :
There are 5 soldiers (A B C D E)with level numbers : 2 4 5 6 4;
One method :
C could teach B; B could teach A; So , A B C are eligible to study on the same broomstick.
D could teach E;So D E are eligible to study on the same broomstick;
Using this method , we need 2 broomsticks.
Another method:
D could teach A; So A D are eligible to study on the same broomstick.
C could teach B; So B C are eligible to study on the same broomstick.
E with no teacher or student are eligible to study on one broomstick.
Using the method ,we need 3 broomsticks.
……
After checking up all possible method, we found that 2 is the minimum number of broomsticks needed.
Input
Input file contains multiple test cases.
In a test case,the first line contains a single positive number N indicating the number of soldiers.(0<=N<=3000)
Next N lines :There is only one nonnegative integer on each line , indicating the level number for each soldier.( less than 30 digits);
Output
For each case, output the minimum number of broomsticks on a single line.
Sample Input
4 10 20 30 04 5 2 3 4 3 4
Sample Output
1 2
题目大意: 士兵要学骑扫帚。每个士兵有一个level,level高的能在同一把扫帚上教level低的怎么骑。一个人最多有一个老师,一个学生。也可以没有。给n个士兵的level值,问最少需要多少扫帚。
详见代码。
/*士兵要学骑扫帚。每个士兵有一个level, level高的能在同一把扫帚上教level低的怎么骑。 一个人最多有一个老师,一个学生。也可以没有。 给n个士兵的level值,问最少需要多少扫帚。*/ #include <iostream> #include <cstdio> #include <algorithm> #include <cstring> using namespace std; struct node { node *next[10]; int Count; node() { for (int i=0; i<10; i++) next[i]=NULL; Count=0; } }; int Max; node *p,*root; void Insert(char *s) { p=root; for (int i=0; s[i]; i++) { int k=s[i]-'0'; if (p->next[k]==NULL) p->next[k]=new node(); p=p->next[k]; } p->Count++; if (p->Count>Max) Max=p->Count; } /*void Search(int *s) { p=root; for (int i=0;i<n;i++) { int k=s[i]-'0'; if (p->next[k]==NULL]) return ; p=p->next[k]; } }*/ int main() { int n,j; char ch[40]; while (~scanf("%d",&n)) { root=new node(); Max=0; for (int i=0; i<n; i++) { scanf("%s",ch); int len=strlen(ch); for (j=0; j<len; j++) { if (ch[j]!='0') break; } Insert(ch+j); } printf ("%d\n",Max); } return 0; }
相关文章推荐
- II tsiLdetroSmorfsetacilpuDevomeR.82
- .NET Standards
- 让JS写的更接近OOP
- EL(表达式语言)
- leetcode 241. Different Ways to Add Parentheses (Python版)
- HDU-1008
- 1008. 数组元素循环右移问题
- The Java™ Tutorials — Generics :Non-Reifiable Types 不可具体化类型
- [MyBatis日记](2)MyBatis创建一个简单项目
- Uva201 Squares
- Ubuntu安装sar出错Please check if data collecting is enabled in /etc/default/sysstat
- C# 基础加强(五) 抽象类、抽象方法
- VB6中ByRef 参数类型不正确的处理方法
- 蟠桃记
- HDU 1976 prime path
- RocEDU.阅读.写作《乌合之众》(一)
- POJ3281 Dining(最大流)
- Kinect For Windows V2开发日志一:开发环境的配置
- 导航控制器 UINavigationController
- 【分享】GEARS of DRAGOON 1+2【日文硬盘版】[带全CG存档&攻略+SSG修改+打开存档补丁]