Ignatius and the Princess III
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 22682 Accepted Submission(s): 15839
Problem Description
"Well, it seems the first problem is too easy. I will let you know how foolish you are later." feng5166 says.
"The second problem is, given an positive integer N, we define an equation like this:
N=a[1]+a[2]+a[3]+...+a[m];
a[i]>0,1<=m<=N;
My question is how many different equations you can find for a given N.
For example, assume N is 4, we can find:
4 = 4;
4 = 3 + 1;
4 = 2 + 2;
4 = 2 + 1 + 1;
4 = 1 + 1 + 1 + 1;
so the result is 5 when N is 4. Note that "4 = 3 + 1" and "4 = 1 + 3" is the same in this problem. Now, you do it!"
"The second problem is, given an positive integer N, we define an equation like this:
N=a[1]+a[2]+a[3]+...+a[m];
a[i]>0,1<=m<=N;
My question is how many different equations you can find for a given N.
For example, assume N is 4, we can find:
4 = 4;
4 = 3 + 1;
4 = 2 + 2;
4 = 2 + 1 + 1;
4 = 1 + 1 + 1 + 1;
so the result is 5 when N is 4. Note that "4 = 3 + 1" and "4 = 1 + 3" is the same in this problem. Now, you do it!"
Input
The input contains several test cases. Each test case contains a positive integer N(1<=N<=120) which is mentioned above. The input is terminated by the end of file.
Output
For each test case, you have to output a line contains an integer P which indicate the different equations you have found.
Sample Input
4
10
20
Sample Output
5
42
627
Author
Ignatius.L
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分析:
第一种解法,可以看作一个完全背包问题,一共有1到120的硬币,每种硬币无数个,问要得到需要的金额,有多少种硬币组合方式
代码如下:
#include <cstdio> #include <iostream> #include <cstring> #include <map> #include <algorithm> using namespace std; typedef long long ll; int n; int dp[130]={1}; int main() { for(int i=1;i<=120;i++) for(int j=i;j<=120;j++) dp[j]+=dp[j-i]; int n; while(scanf("%d",&n)!=EOF) { printf("%d ",dp[n]); } return 0; }
第二种解法 母函数
代码如下:
#include<iostream> using namespace std; #define M 1000 #define MAXN 130 //MAXN为最大有多少项相乘 int a[M],b[M];//a[M]中存最终项系数;b[M]中存取中间变量; int main() { int m,n; int i,j,k; m=MAXN; while(scanf("%d",&n)!=EOF) { //可以加一个跳出循环的条件 //n为所求的指数的值: "; //因为只求指数为n的系数的值:所以循环只到n就结束 for(i=0;i<=n;i++)//初始化第一个式子:(1+X^2+X^3+...) 所以将其系数分别存到a[n] { a[i]=1; b[i]=0; } for(i=2;i<=m;i++)//从第2项式子一直到第n项式子与原来累乘项的和继续相乘 { for(j=0;j<=n;j++)//从所累乘得到的式子中指数为0遍历到指数为n 分别与第i个多项式的每一项相乘 for(k=0;k+j<=n;k+=i)//第i个多项式的指数从0开始,后面的每项指数依次比前面的多i,比如当i=3时,第3项的表达式为(1+x^3+x^6+x^9+……),直到所得指数的值i+j>=n退出 { b[j+k]+=a[j];//比如前面指数为1,系数为3,即a[1]=3 的一项和下一个表达式的指数为k=3的相乘,则得到的式子的系数为,b[j+k]=b[4]+=a[1],又a[1]=3,所以指数为4的系数为b[4]=3; } for(j=0;j<=n;j++)// 然后将中间变量b数组中的值依次赋给数组a,然后将数组b清零,继续接收乘以下一个表达式所得的值 { a[j]=b[j]; b[j]=0; } } printf("%d ",a[n]); // 指数为n的项的系数为: } return 0; }