• 1061 Dating (20 分)


    Sherlock Holmes received a note with some strange strings: Let's date! 3485djDkxh4hhGE 2984akDfkkkkggEdsb s&hgsfdk d&Hyscvnm. It took him only a minute to figure out that those strange strings are actually referring to the coded time Thursday 14:04 -- since the first common capital English letter (case sensitive) shared by the first two strings is the 4th capital letter D, representing the 4th day in a week; the second common character is the 5th capital letter E, representing the 14th hour (hence the hours from 0 to 23 in a day are represented by the numbers from 0 to 9 and the capital letters from A to N, respectively); and the English letter shared by the last two strings is s at the 4th position, representing the 4th minute. Now given two pairs of strings, you are supposed to help Sherlock decode the dating time.

    Input Specification:

    Each input file contains one test case. Each case gives 4 non-empty strings of no more than 60 characters without white space in 4 lines.

    Output Specification:

    For each test case, print the decoded time in one line, in the format DAY HH:MM, where DAY is a 3-character abbreviation for the days in a week -- that is, MON for Monday, TUE for Tuesday, WED for Wednesday, THU for Thursday, FRI for Friday, SAT for Saturday, and SUN for Sunday. It is guaranteed that the result is unique for each case.

    Sample Input:

    3485djDkxh4hhGE 
    2984akDfkkkkggEdsb 
    s&hgsfdk 
    d&Hyscvnm
     

    Sample Output:

    THU 14:04
     很难受的一道题,有个测试点过不去
    #include<bits/stdc++.h>
    using namespace std;
    const int maxn=100010;
    char v[2];
    int main(){
        string str1,str2,str3,str4;
        cin>>str1>>str2>>str3>>str4;
        int len1=str1.size();
        int len2=str2.size();
        int len3=str3.size();
        int len4=str4.size();
        int len12=min(len1,len2);
        int len34=min(len3,len4);
        int t=0;
        for(int i=0;i<len12;i++){
            if(str1[i]==str2[i]){
                if(str1[i]>='A'&&str1[i]<='G'){
                    v[0]=str1[i];
                    t=i;
                    break;
                }
            }
        }
        for(int i=t+1;i<len12;i++){
            if(str1[i]==str2[i]){
                if((str1[i]>='A'&&str1[i]<='N')||(str1[i]>='0'&&str1[i]<='9')){
                    v[1]=str1[i];
                    break;
                }
            }
        }
        int k;
        for(int i=0;i<len34;i++){
            if(str3[i]==str4[i]){
                if(str3[i]>='a'&&str3[i]<='z'){
                    k=i;
                    break;
                }
            }
        }
        int a=v[0]-'A';
        switch(a){
            case 0 : cout<<"MON"; break;
            case 1 : cout<<"TUE"; break;
            case 2 : cout<<"WED"; break;
            case 3 : cout<<"THU"; break;
            case 4 : cout<<"FRI"; break;
            case 5 : cout<<"SAT"; break;
            case 6 : cout<<"SUN"; break;
        }
        int b;
        if(v[1]>='A'&&v[1]<='Z'){
            b=v[1]-'A';
            b=b+10;
        }
        else{
            b=v[1]-'0';
        }
        cout<<" ";
        printf("%02d:",b);
        printf("%02d
    ",k);
        return 0;
    }
    
    
    //THU 14:04
    //THU 14:04
     AC代码:
    #include<bits/stdc++.h>
    using namespace std;
    const int maxn=100010;
    char v[2];
    int main(){
        string str1,str2,str3,str4;
        cin>>str1>>str2>>str3>>str4;
        int len1=str1.size();
        int len2=str2.size();
        int len3=str3.size();
        int len4=str4.size();
        int len12=min(len1,len2);
        int len34=min(len3,len4);
        int t=0;
        for(int i=0;i<len12;i++){
            if(str1[i]==str2[i]){
                if(str1[i]>='A'&&str1[i]<='G'){
                    v[0]=str1[i];
                    t=i;
                    break;
                }
            }
        }
        for(int i=t+1;i<len12;i++){
            if(str1[i]==str2[i]){
                if((str1[i]>='A'&&str1[i]<='N')||(str1[i]>='0'&&str1[i]<='9')){
                    v[1]=str1[i];
                    break;
                }
            }
        }
        int k;
        for(int i=0;i<len34;i++){
            if(str3[i]==str4[i]){
                if((str3[i]>='a'&&str3[i]<='z')||(str3[i]>='A'&&str3[i]<='Z')){
                    k=i;
                    break;
                }
            }
        }
        int a=v[0]-'A';
        switch(a){
            case 0 : cout<<"MON"; break;
            case 1 : cout<<"TUE"; break;
            case 2 : cout<<"WED"; break;
            case 3 : cout<<"THU"; break;
            case 4 : cout<<"FRI"; break;
            case 5 : cout<<"SAT"; break;
            case 6 : cout<<"SUN"; break;
        }
        int b;
        if(v[1]>='A'&&v[1]<='Z'){
            b=v[1]-'A';
            b=b+10;
        }
        else{
            b=v[1]-'0';
        }
        cout<<" ";
        printf("%02d:",b);
        printf("%02d
    ",k);
        return 0;
    }
  • 相关阅读:
    office2013 激活方式
    c# DataGridView绑定DataTable对象之后总会多一行
    oracle函数验证时间格式并返回
    Linux虚拟机与外面系统ping不通,或者连不上网
    恢复oracle中误删除drop掉的表
    WebService 检测到有潜在危险的 Request.Form 值
    mybatis标签之——关联映射
    word使用宏定义来统一设置图片大小
    mybatis常用标签
    mybatis标签之——<trim>
  • 原文地址:https://www.cnblogs.com/dreamzj/p/14466646.html
Copyright © 2020-2023  润新知