PAT甲级A1009 Product of Polynomials (25)

This time, you are supposed to find A*B where A and B are two polynomials.

Input Specification:

Each input file contains one test case. Each case occupies 2 lines, and each line contains the information of a polynomial: K N1 a~N1~ N2 a~N2~ ... NK a~NK~, where K is the number of nonzero terms in the polynomial, Ni and a~Ni~ (i=1, 2, ..., K) are the exponents and coefficients, respectively. It is given that 1 <= K <= 10, 0 <= NK < ... < N2 < N1 <=1000.

Output Specification:

For each test case you should output the product of A and B in one line, with the same format as the input. Notice that there must be NO extra space at the end of each line. Please be accurate up to 1 decimal place.

Sample Input

2 1 2.4 0 3.2
2 2 1.5 1 0.5

Sample Output

3 3 3.6 2 6.0 1 1.6

 题意:给定两个多项式(格式为k 指数1 系数1 指数2 系数2……指数k 系数k),让你按输入格式输出其乘积。

思路:

1.考虑如果直接开两个1000的数组,用下标直接当指数,在相乘的时候,复杂度为1000*1000,可能会超时,所以定义一个结构体存储第一个多项式,然后用第二个多项式的每一项与第一个多项式的每一项相乘,结果存储在数组ans中。

2.注意每个多项式不超过1000,但相乘后可能会达到2000,所以数组大小要超过2000。

参考代码:

#include
#include
#include
using namespace std;
const int maxn=2010;
double ans[maxn]={0};
struct node{
	int exp;
	double coe;
	node(int e=0,double c=0):exp(e),coe(c){};
};
int main()
{
	int k1,k2,exp,num=0;
	double coe;
	scanf("%d",&k1);
	vector a(k1);
	for(int i=0;i=0&#i--)
	{
		if(ans[i]!=0){
			printf(" %d %.1f",i,ans[i]);
			num--;
		}
	}
	return 0;
}

 

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