zoukankan      html  css  js  c++  java
  • PAT 甲级 1069 The Black Hole of Numbers (20 分)(内含别人string处理的精简代码)

    1069 The Black Hole of Numbers (20 分)
     

    For any 4-digit integer except the ones with all the digits being the same, if we sort the digits in non-increasing order first, and then in non-decreasing order, a new number can be obtained by taking the second number from the first one. Repeat in this manner we will soon end up at the number 6174 -- the black hole of 4-digit numbers. This number is named Kaprekar Constant.

    For example, start from 6767, we'll get:

    7766 - 6677 = 1089
    9810 - 0189 = 9621
    9621 - 1269 = 8352
    8532 - 2358 = 6174
    7641 - 1467 = 6174
    ... ...
    

    Given any 4-digit number, you are supposed to illustrate the way it gets into the black hole.

    Input Specification:

    Each input file contains one test case which gives a positive integer N in the range (.

    Output Specification:

    If all the 4 digits of N are the same, print in one line the equation N - N = 0000. Else print each step of calculation in a line until 6174 comes out as the difference. All the numbers must be printed as 4-digit numbers.

    Sample Input 1:

    6767
    

    Sample Output 1:

    7766 - 6677 = 1089
    9810 - 0189 = 9621
    9621 - 1269 = 8352
    8532 - 2358 = 6174
    

    Sample Input 2:

    2222
    

    Sample Output 2:

    2222 - 2222 = 0000
    
    作者: CHEN, Yue
    单位: 浙江大学
    时间限制: 200 ms
    内存限制: 64 MB
    代码长度限制: 16 KB

    题意:

    给一个数组n,先对各个数字位从大到小排序得到a,然后逆置得到b,计算a-b,得到c,重复上述过程,直到得到6174,或者,对于特例,四个数字位完全相同,那么输出0000。

    题解:

    刚开始输入的数字可能不足四位要自动补0 以后的结果可能也不足四位都要自动补0

    结果是0或者6174都是要退出的

    一开始没考虑到6174,测试点5没过,后来想到了

    AC代码:

    #include<iostream>
    #include<algorithm>
    using namespace std;
    int n;
    int a[10];
    int main(){
         cin>>n;
         int big=0;
         int small=0;
         int x=n;
         int k=0,f;
         if(x==6174){
            printf("7641 - 1467 = 6174");
            return 0;
         }
         while(x!=6174){
             k=0;
             big=0;
             small=0;
             while(x>=10){
                 a[++k]=x%10;
                 x/=10;
             }
             a[++k]=x;
             while(k<4){
                 a[++k]=0;
             }
             sort(a+1,a+1+4);
             for(int i=1;i<=4;i++){
                 big=big*10+a[5-i];
                 small=small*10+a[i];
             }
             x=big-small;
             printf("%04d - %04d = %04d
    ",big,small,x);
             if(x==0) break;
         }
         return 0;
    }
         

    更简洁的string处理的代码:

    #include<bits/stdc++.h>
    using namespace std;
    bool cmp(char a,char b) 
    {
        return a>b;
    }
    int main(void)
    {
        string s;
        cin>>s;
        s.insert(0,4-s.size(),'0');
        do{
            string a=s,b=s;
            sort(a.begin(),a.end(),cmp);
            sort(b.begin(),b.end());
            int diff=stoi(a)-stoi(b);
            s=to_string(diff);
            s.insert(0,4-s.size(),'0');
            cout<<a<<" - "<<b<<" = "<<s<<endl;
        }while(s!="6174"&&s!="0000");
        return 0;
    
    ————————————————
    版权声明:本文为CSDN博主「Imagirl1」的原创文章,遵循 CC 4.0 BY-SA 版权协议,转载请附上原文出处链接及本声明。
    原文链接:https://blog.csdn.net/Imagirl1/article/details/82261213
  • 相关阅读:
    《Microsoft Sql server 2008 Internals》读书笔记第六章Indexes:Internals and Management(4)
    《Microsoft Sql server 2008 Internals》读书笔记第六章Indexes:Internals and Management(9)
    《Microsoft Sql server 2008 Internals》读书笔记第六章Indexes:Internals and Management(3)
    《Microsoft Sql server 2008 Internals》读书笔记第六章Indexes:Internals and Management(5)
    《Microsoft Sql server 2008 Internals》读书笔记第六章Indexes:Internals and Management(7)
    vs2010正式版安装图解
    Winform部署mshtml程序集出错的一个解决方案
    InstallShield 2010集成.net Framework 4的安装包制作
    vs2010无法访问svn存储库的一次意外
    InstallShield集成.net Framework的安装包制作
  • 原文地址:https://www.cnblogs.com/caiyishuai/p/11770567.html
Copyright © 2011-2022 走看看