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  • HDUOJ---1867 A + B for you again

    A + B for you again

    Time Limit: 5000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 3432    Accepted Submission(s): 869

    Problem Description
    Generally speaking, there are a lot of problems about strings processing. Now you encounter another such problem. If you get two strings, such as “asdf” and “sdfg”, the result of the addition between them is “asdfg”, for “sdf” is the tail substring of “asdf” and the head substring of the “sdfg” . However, the result comes as “asdfghjk”, when you have to add “asdf” and “ghjk” and guarantee the shortest string first, then the minimum lexicographic second, the same rules for other additions.
     
    Input
    For each case, there are two strings (the chars selected just form ‘a’ to ‘z’) for you, and each length of theirs won’t exceed 10^5 and won’t be empty.
     
    Output
    Print the ultimate string by the book.
     
    Sample Input
    asdf sdfg
    asdf ghjk
     
    Sample Output
    asdfg
    asdfghjk
     
    Author
    Wang Ye
     
    简述一下题目的意思:对于s和t两个串,将这两个串合并为一个串,但是要满足下面的 规则:
    比如: 如果s串在前,t在后, 且s串后缀和t串的前缀有重合的部分,合并这部分....比如 sdsds  sdsa  -->  sdsdsa
    但是要满足下面的要求:
    s和t 随意组合,可以s在前,t在后,亦可以t在前s在后,但是必须报保证s+t的串长度最小,若果两者组合的长度相等,则按照字典序的顺序组合输出....
    比如 abc  cdea   -->abcdea
    对此,我们可以用kmp来ac就可以了...
    代码如下:
     1 #include <stdio.h>
     2 #include <string.h>
     3 #define maxn 100000
     4 int next[maxn+1];
     5 char ps[maxn+1],pt[maxn+1];
     6 void get_next(char const * t,int *next,int const lent)
     7 {
     8     int i=0,j=-1;
     9     memset(next,0,sizeof(next));
    10     next[0]=-1;
    11     while(i<lent)
    12     {
    13         if(j==-1||t[i]==t[j])
    14         {
    15             ++i;
    16             ++j;
    17             if(t[i]!=t[j])
    18                next[i]=j;
    19                else
    20                 next[i]=next[j];
    21 
    22         }
    23         else
    24             j=next[j];
    25     }
    26 }
    27 
    28 int ext_kmp(char const * ps, char const *pt,int const lens,int const  lent)
    29 {
    30     int i=lens-lent-1,j=-1;
    31     get_next(pt,next,lent);
    32     if(i<-1)i=-1;
    33     while(i<lens)
    34     {
    35         if(j==-1||ps[i]==pt[j])
    36         {
    37             ++i;
    38             ++j;
    39         }
    40         else
    41             j=next[j];
    42     }
    43     return j;
    44 }
    45 
    46 int main()
    47 {
    48     int i,ansa,ansb;
    49     int lens,lent;
    50     while(scanf("%s%s",ps,pt)!=EOF)
    51     {
    52         lens=strlen(ps);
    53         lent=strlen(pt);
    54         ansa=ext_kmp(ps,pt,lens,lent);
    55         ansb=ext_kmp(pt,ps,lent,lens);
    56         if(ansa>ansb)
    57         {
    58             printf("%s",ps);
    59         for(i=ansa;i<lent;i++)
    60             printf("%c",pt[i]);
    61         }
    62         else if(ansa<ansb)
    63         {
    64             printf("%s",pt);
    65             for(i=ansb;i<lens;i++)
    66             printf("%c",ps[i]);
    67         }
    68         else
    69         {
    70             if(strcmp(ps,pt)<0)
    71             {
    72             printf("%s",ps);
    73            for(i=ansa;i<lent;i++)
    74             printf("%c",pt[i]);
    75             }
    76             else
    77             {
    78             printf("%s",pt);
    79             for(i=ansb;i<lens;i++)
    80             printf("%c",ps[i]);
    81             }
    82         }
    83            putchar(10);
    84     }
    85     return 0;
    86 }
    View Code
     
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  • 原文地址:https://www.cnblogs.com/gongxijun/p/3478209.html
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