HDOJ 題目1709 The Balance(母函式)
阿新 • • 發佈:2019-02-03
The Balance
Time Limit: 1000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 5756 Accepted Submission(s): 2338
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 3 1 2 4 3 9 2 1
Sample Output 0 2 4 5
Source
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給出一些砝碼,可以放在天秤的兩邊,問有[1,sum]中有哪些重量是不可稱出來的
題解:
母函式,這裡比較特殊的一點是砝碼可以放在天枰的左右兩端,我們可以在c2[j+k]+=c1[j]
後加多一句c2[abs(j-k)]+=c[j]...即可,假設原來的砝碼都放在右端,則可以把新加的砝碼放在左端,得到新重量。 ac程式碼
#include<stdio.h> #include<string.h> #include<math.h> int c1[100010],c2[100010],a[100010],b[100010]; int main() { int n; while(scanf("%d",&n)!=EOF) { int i,j,k,sum=0,c=0,end; for(i=0;i<n;i++) { scanf("%d",&a[i]); sum+=a[i]; } memset(c1,0,sizeof(c1)); memset(c2,0,sizeof(c2)); c1[0]=c1[a[0]]=1; // end=a[0]; for(i=2;i<=n;i++) { for(j=0;j<=sum;j++) { for(k=0;k<=a[i-1]&&k+j<=sum;k+=a[i-1]) { c2[j+k] +=c1[j]; c2[abs(j-k)] +=c1[j]; } } //end+=a[i-1]; for(j=0;j<=sum;j++) { c1[j]=c2[j]; c2[j]=0; } } for(i=0;i<=sum;i++) { if(c1[i]==0) { b[c++]=i; } } if(!c) { printf("0\n"); continue; } printf("%d\n",c); for(i=0;i<c;i++) { if(!i) printf("%d",b[i]); else printf(" %d",b[i]); } printf("\n"); } }