杭电 1503 Advanced Fruits

Description

The company "21st Century Fruits" has specialized in creating new sorts of fruits by transferring genes from one fruit into the genome of another one. Most times this method doesn‘t work, but sometimes, in very rare cases, a new fruit emerges that tastes like a mixture between both of them. 
A big topic of discussion inside the company is "How should the new creations be called?" A mixture between an apple and a pear could be called an apple-pear, of course, but this doesn‘t sound very interesting. The boss finally decides to use the shortest string that contains both names of the original fruits as sub-strings as the new name. For instance, "applear" contains "apple" and "pear" (APPLEar and apPlEAR), and there is no shorter string that has the same property.

A combination of a cranberry and a boysenberry would therefore be called a "boysecranberry" or a "craboysenberry", for example.

Your job is to write a program that computes such a shortest name for a combination of two given fruits. Your algorithm should be efficient, otherwise it is unlikely that it will execute in the alloted time for long fruit names.

Input

Each line of the input contains two strings that represent the names of the fruits that should be combined. All names have a maximum length of 100 and only consist of alphabetic characters.

Input is terminated by end of file.

Output

For each test case, output the shortest name of the resulting fruit on one line. If more than one shortest name is possible, any one is acceptable.

Sample Input

apple peach
ananas banana
pear peach

Sample Output

appleach
bananas
pearch

题目意思就是找到一个最短序列,使a,b字符串都是这个序列里的,且前后顺序不变(不一定连续)

代码我也是不太懂,就不解释了

 1 #include<cstdio>
 2 #include<cstring>
 3 int flag[110][110],dp[110][110],lena,lenb;
 4 char a[110],b[110];
 5 void out(int x,int y)
 6 {
 7     if(x==0&&y==0)
 8     {
 9         return ;
10     }
11     else
12     {
13         if(flag[x][y] == 0)
14         {
15             out(x-1,y-1);
16             printf("%c",a[x-1]);
17         }
18         if(flag[x][y] == 1)
19         {
20             out(x-1,y);
21             printf("%c",a[x-1]);
22         }
23         if(flag[x][y] == -1)
24         {
25             out(x,y-1);
26             printf("%c",b[y-1]);
27         }
28     }
29 }
30 int main()
31 {
32     while(scanf("%s%s",&a,&b)!=EOF)
33     {
34         lena=strlen(a);
35         lenb=strlen(b);
36
37         int i,j;
38         memset(dp,0,sizeof(dp));
39         for(i = 0 ; i < lena ; i++)
40             flag[i][0]=1;
41         for(i = 0 ; i < lenb ; i++)
42             flag[0][i]=-1;
43         for(i = 1 ; i <= lena ; i++)
44         {
45             for(j = 1 ; j <= lenb ; j++)
46             {
47                 if(a[i-1] == b[j-1])
48                 {
49                     dp[i][j]=dp[i-1][j-1]+1;
50                     flag[i][j]=0;
51                 }
52
53                 else
54                 {
55                     if(dp[i-1][j] >= dp[i][j-1])
56                     {
57                         dp[i][j]=dp[i-1][j];
58                         flag[i][j]=1;
59                     }
60                     else
61                     {
62                         dp[i][j]=dp[i][j-1];
63                         flag[i][j]=-1;
64                     }
65                 }
66             }
67         }
68         out(lena,lenb);
69         printf("\n");
70     }
71 }

 
时间: 2024-11-03 14:47:19

杭电 1503 Advanced Fruits的相关文章

杭电1503(Advanced Fruits)

点击打开杭电1503 Problem Description The company "21st Century Fruits" has specialized in creating new sorts of fruits by transferring genes from one fruit into the genome of another one. Most times this method doesn't work, but sometimes, in very rar

HDU 1503 Advanced Fruits (LCS,DP)

题意:给你两字符串s1,s2,用最短的字符串表示他们(公共字串输出一次). Sample Input apple peach ananas banana pear peach Sample Output appleach bananas pearch dp[i][j] : 第一个字符串的前 i 个 ,和第二个字符串的前 j 个最短组合的长度 . pre[i][j] : 第一个字符串的第 i 个 ,和第二个字符串的第 j 个字符的状态. #include<cstdio> #include<

HDU 1503 Advanced Fruits

Advanced Fruits Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)Total Submission(s): 3622    Accepted Submission(s): 1872Special Judge Problem Description The company "21st Century Fruits" has specialized in cr

Advanced Fruits HDU杭电1503【LCS的保存】

Problem Description The company "21st Century Fruits" has specialized in creating new sorts of fruits by transferring genes from one fruit into the genome of another one. Most times this method doesn't work, but sometimes, in very rare cases, a

HDU 1503 Advanced Fruits[ LCS ]

题目:HDU 1503 思路:先求出最长公共子序列,记录路径.后进行拼接. 代码 #include<cstdio> #include<cstring> #include<cstring> #include<vector> #include<iostream> #include<algorithm> #define mod 1000000007 using namespace std; typedef long long LL; int

HDU 1503 Advanced Fruits(LCS+记录路径)

http://acm.hdu.edu.cn/showproblem.php?pid=1503 题意: 给出两个串,现在要确定一个尽量短的串,使得该串的子串包含了题目所给的两个串. 思路: 这道题目就是要我们求LCS,记录好路径就好. 1 #include<iostream> 2 #include<algorithm> 3 #include<cstring> 4 #include<cstdio> 5 #include<sstream> 6 #inc

HDU 1503 Advanced Fruits(LCS变形且输出解)

http://acm.hdu.edu.cn/showproblem.php?pid=1503 题意: 给你两个字符串s1和s2, 要你输出它们的并串s. 其中s1是s的一个子序列且s2也是s的一个子序列且s是所有符合前面要求的最短字符串. 分析: 令dp[i][j]==x表示s1串的前i个字符和s2串的前j个字符组成的串的LCS长度为x. 我们先求出LCS的dp数组值. 然后按照POJ2250: http://blog.csdn.net/u013480600/article/details/40

题解报告:hdu 1503 Advanced Fruits

Problem Description The company "21st Century Fruits" has specialized in creating new sorts of fruits by transferring genes from one fruit into the genome of another one. Most times this method doesn't work, but sometimes, in very rare cases, a

hdu 1503 Advanced Fruits(DP)

题意: 将两个英文单词进行合并.[最长公共子串只要保留一份] 输出合并后的英文单词. 思路: 求最长公共子串. 记录路径: mark[i][j]=-1:从mark[i-1][j]转移而来. mark[i][j]=0:从mark[i-1][j-1]转移而来. mark[i][j]=1:从mark[i][j-1]转移而来. 代码: char s1[105], s2[105]; int dp[105][105]; int mark[105][105]; void print(int x,int y){