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 程式師世界 >> 編程語言 >> C語言 >> C++ >> C++入門知識 >> hdu----(5055)Bob and math problem(貪心)

hdu----(5055)Bob and math problem(貪心)

編輯:C++入門知識

hdu----(5055)Bob and math problem(貪心)


ime Limit: 2000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 401    Accepted Submission(s): 149       Problem Description Recently, Bob has been thinking about a math problem. There are N Digits, each digit is between 0 and 9. You need to use this N Digits to constitute an Integer. This Integer needs to satisfy the following conditions: 1. must be an odd Integer.   2. there is no leading zero.   3. find the biggest one which is satisfied 1, 2.   Example:  There are three Digits: 0, 1, 3. It can constitute six number of Integers. Only "301", "103" is legal, while "130", "310", "013", "031" is illegal. The biggest one of odd Integer is "301".       Input There are multiple test cases. Please process till EOF. Each case starts with a line containing an integer N ( 1 <= N <= 100 ). The second line contains N Digits which indicate the digit a1,a2,a3,…,an.(0≤ai≤9).       Output The output of each test case of a line. If you can constitute an Integer which is satisfied above conditions, please output the biggest one. Otherwise, output "-1" instead.       Sample Input 3 0 1 3 3 5 4 2 3 2 4 6       Sample Output 301 425 -1       Source BestCoder Round #11 (Div. 2)   貪心 代碼:  1 #include<cstdio>  2 #include<cstring>  3 #include<algorithm>  4 #include<functional>  5 #include<iostream>  6 using namespace std;  7 int str[120];  8 int main()  9 { 10   int n,i,res; 11   while(scanf("%d",&n)!=EOF) 12   { 13       res=10; 14       for(i=0;i<n;i++) 15     { 16        scanf("%d",&str[i]); 17       if(str[i]&1==1&&res>str[i]) 18           res=str[i]; 19     } 20     if(res==10){ 21         printf("-1\n"); 22         continue; 23     } 24     sort(str,str+n,greater<int>()); 25      int fir=-1,st=res; 26     for(i=0;i<n;i++) 27     { 28         if(res==str[i]) res=-1; 29         else 30         { 31             fir=str[i]; 32             break; 33         } 34     } 35     if(fir==0) printf("-1\n"); 36     else 37     { 38         if(fir!=-1) 39           printf("%d",fir); 40         for( i++; i<n;i++) 41         if(res==str[i])res=-1; 42         else 43          printf("%d",str[i]); 44         printf("%d\n",st); 45     } 46   } 47   return 0; 48 }

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