前往小程序,Get更优阅读体验!
立即前往
首页
学习
活动
专区
工具
TVP
发布
社区首页 >专栏 >ZOJ 1403&&HDU 1015 Safecracker【暴力】

ZOJ 1403&&HDU 1015 Safecracker【暴力】

作者头像
Angel_Kitty
发布2018-04-08 11:53:26
6320
发布2018-04-08 11:53:26
举报
文章被收录于专栏:小樱的经验随笔

Safecracker


Time Limit: 2 Seconds      Memory Limit: 65536 KB


=== Op tech briefing, 2002/11/02 06:42 CST ===

"The item is locked in a Klein safe behind a painting in the second-floor library. Klein safes are extremely rare; most of them, along with Klein and his factory, were destroyed in World War II. Fortunately old Brumbaugh from research knew Klein's secrets and wrote them down before he died. A Klein safe has two distinguishing features: a combination lock that uses letters instead of numbers, and an engraved quotation on the door. A Klein quotation always contains between five and twelve distinct uppercase letters, usually at the beginning of sentences, and mentions one or more numbers. Five of the uppercase letters form the combination that opens the safe. By combining the digits from all the numbers in the appropriate way you get a numeric target. (The details of constructing the target number are classified.) To find the combination you must select five letters v, w, x, y, and z that satisfy the following equation, where each letter is replaced by its ordinal position in the alphabet (A=1, B=2, ..., Z=26). The combination is then vwxyz. If there is more than one solution then the combination is the one that is lexicographically greatest, i.e., the one that would appear last in a dictionary."

v - w^2 + x^3 - y^4 + z^5 = target

"For example, given target 1 and letter set ABCDEFGHIJKL, one possible solution is FIECB, since 6 - 9^2 + 5^3 - 3^4 + 2^5 = 1. There are actually several solutions in this case, and the combination turns out to be LKEBA. Klein thought it was safe to encode the combination within the engraving, because it could take months of effort to try all the possibilities even if you knew the secret. But of course computers didn't exist then."

=== Op tech directive, computer division, 2002/11/02 12:30 CST ===

"Develop a program to find Klein combinations in preparation for field deployment. Use standard test methodology as per departmental regulations. Input consists of one or more lines containing a positive integer target less than twelve million, a space, then at least five and at most twelve distinct uppercase letters. The last line will contain a target of zero and the letters END; this signals the end of the input. For each line output the Klein combination, break ties with lexicographic order, or 'no solution' if there is no correct combination. Use the exact format shown below."

Sample Input

1 ABCDEFGHIJKL 11700519 ZAYEXIWOVU 3072997 SOUGHT 1234567 THEQUICKFROG 0 END

Sample Output

LKEBA no solution

no solution

no solution

题目链接:http://acm.zju.edu.cn/onlinejudge/showProblem.do?problemCode=1403

题意简述:

        密码序列由一系列大写字母组成,在解密序列不唯一的情况下,按字典序输出最后一个,解密公式:v - w^2 + x^3 - y^4 + z^5 = target 

解题思路:

        由于题目中解的值域已经确定,解元素中的v,w,x,y,z都是题目中给定集合中的一个元素,数据范围较小枚举便可。

      *注意:由于题目求得是密码序列是按字典顺序的最后一个,所以再次我将之先降序排序,这样一来找到的第一个符合条件的肯定便是最后的!

题目输出可能有点问题,已更正,下面给出AC代码:

代码语言:javascript
复制
 1 #include <bits/stdc++.h>
 2 using namespace std;
 3 char letters[15];
 4 int value[15],target;
 5 void process(int len)
 6 {
 7     int a,b,c,d,e;
 8     for(a=0;a<len;a++)
 9         for(b=0;b<len;b++)
10             if(a!=b)
11                 for(c=0;c<len;c++)
12                     if(a!=c&&b!=c)
13                         for(d=0;d<len;d++)
14                             if(a!=d&&b!=d&&c!=d)
15                                 for(e=0;e<len;e++)
16                                     if(a!=e&&b!=e&&c!=e&&d!=e)
17                                         if(value[a]-pow(value[b],2.0)+pow(value[c],3.0)-pow(value[d],4.0)+pow(value[e],5.0)==target)
18                                         {
19                                             printf("%c%c%c%c%c\n",value[a]+'A'-1,value[b]+'A'-1,value[c]+'A'-1,value[d]+'A'-1,value[e]+'A'-1);
20                                             return;
21                                         }
22                                          printf("no solution\n");
23                                     }
24 bool compare(int a,int b)
25 {
26     return a>b;
27 }
28 int main()
29 {
30     int i;
31     while(scanf("%d%s",&target,letters)!=EOF)
32     {
33         if(target==0&&strcmp(letters,"END")==0)
34             return 0;
35         i=0;
36         while(letters[i])
37         {
38             value[i]=letters[i]-'A'+1;
39             i++;
40         }
41         sort(value,value+i,compare);
42         process(i);
43     }
44     return 0;
45 }
本文参与 腾讯云自媒体同步曝光计划,分享自作者个人站点/博客。
原始发表:2017-02-18 ,如有侵权请联系 cloudcommunity@tencent.com 删除

本文分享自 作者个人站点/博客 前往查看

如有侵权,请联系 cloudcommunity@tencent.com 删除。

本文参与 腾讯云自媒体同步曝光计划  ,欢迎热爱写作的你一起参与!

评论
登录后参与评论
0 条评论
热度
最新
推荐阅读
领券
问题归档专栏文章快讯文章归档关键词归档开发者手册归档开发者手册 Section 归档