HDU 1709 The Balance

The Balance

Time Limit: 1000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 2410 Accepted Submission(s): 959

Problem Description

Now you are asked to measure a dose of medicine with a balance and a number of weights. Certainly it is not always achievable. So you should find out the qualities which cannot be measured from the range [1,S]. S is the total quality of all the weights.

Input

The input consists of multiple test cases, and each case begins with a single positive integer N (1<=N<=100) on a line by itself indicating the number of weights you have. Followed by N integers Ai (1<=i<=N), indicating the quality of each weight where 1<=Ai<=100.

Output

For each input set, you should first print a line specifying the number of qualities which cannot be measured. Then print another line which consists all the irrealizable qualities if the number is not zero.

Sample Input

Sample Output

0
2
4 5

Source

HDU 2007-Spring Programming Contest

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lcy

每种砝码既可以放在右盘，又可以放在左盘，（若按左物右码来说），放在左盘那就取减号，放在右盘就取加号。

 1 #include<stdio.h>
 2 int c1[10001] , c2[10001] ;
 3 int counts , n , num[101] , sum , nfind[10001] ;
 4 int main ()
 5 {
 6     while ( scanf( "%d" , &n ) != EOF )
 7     {
 8           sum = 0 , counts = 0 ;
 9           for ( int i = 1 ; i <= n ; ++ i )
10           {
11               scanf ( "%d" , num + i ) ;
12               sum += num[i] ; 
13           }
14           for ( int i = 0 ; i <= sum ; ++ i )
15           {
16               c1[i] = 0 ;
17               c2[i] = 0 ;
18           }
19           c1[0] = c1[num[1]] = 1 ;
20           for ( int i = 2 ; i <= n ;  ++ i )
21           {
22               for ( int j = 0 ; j <= sum ; ++ j )
23                   for ( int k = 0 ; j + k <= sum && k <= num[i] ; k += num[i] )
24                   {
25                       if ( j >= k ) c2[j-k] += c1[j] ;
26                       else c2[k-j] += c1[j] ;
27                       c2[k+j] += c1[j] ;
28                   }
29               for ( int j = 0 ; j <= sum ; ++ j )
30                   c1[j] = c2[j] , c2[j] = 0 ;
31           }
32           for ( int i = 1 , j = 0 ; i <= sum ; ++ i )
33           {
34               if ( c1[i] == 0 ) 
35               {
36                    counts ++ ;
37                    nfind[j++] = i ;
38               }
39           }
40           if ( counts == 0 ) printf ( "0\n" ) ;
41           else {
42                       printf ( "%d\n" , counts ) ;
43                       for ( int j = 0 ; j < counts ; ++ j )
44                           printf ( "%d%c" , nfind[j] , j + 1 == counts ? '\n' : ' ' ) ; 
45                }
46     }
47     return 0 ;
48 }