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 aN1 N2 aN2 … NK aNK, where K is the number of nonzero terms in the polynomial, Ni and aNi (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
题目大意:给出两个多项式A和B,求A*B的结果~
分析:简单模拟~double类型的arr数组保存第一组数据,ans数组保存结果。当输入第二组数据的时候,一边进行运算一边保存结果。最后按照指数递减的顺序输出所有不为0的项~
注意:因为相乘后指数可能最大为2000,所以ans数组最大要开到2001
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#include <iostream> using namespace std; int main() { int n1, n2, a, cnt = 0; scanf("%d", &n1); double b, arr[1001] = {0.0}, ans[2001] = {0.0}; for(int i = 0; i < n1; i++) { scanf("%d %lf", &a, &b); arr[a] = b; } scanf("%d", &n2); for(int i = 0; i < n2; i++) { scanf("%d %lf", &a, &b); for(int j = 0; j < 1001; j++) ans[j + a] += arr[j] * b; } for(int i = 2000; i >= 0; i--) if(ans[i] != 0.0) cnt++; printf("%d", cnt); for(int i = 2000; i >= 0; i--) if(ans[i] != 0.0) printf(" %d %.1f", i, ans[i]); return 0; } |
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