HDU 1496
Equations
Time Limit: 6000/3000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 3188 Accepted Submission(s): 1247
Problem Description
Consider equations having the following form:
a*x1^2+b*x2^2+c*x3^2+d*x4^2=0
a, b, c, d are integers from the interval [-50,50] and any of them cannot be 0.
It is consider a solution a system ( x1,x2,x3,x4 ) that verifies the equation, xi is an integer from [-100,100] and xi != 0, any i ∈{1,2,3,4}.
Determine how many solutions satisfy the given equation.
a*x1^2+b*x2^2+c*x3^2+d*x4^2=0
a, b, c, d are integers from the interval [-50,50] and any of them cannot be 0.
It is consider a solution a system ( x1,x2,x3,x4 ) that verifies the equation, xi is an integer from [-100,100] and xi != 0, any i ∈{1,2,3,4}.
Determine how many solutions satisfy the given equation.
Input
The input consists of several test cases. Each test case consists of a single line containing the 4 coefficients a, b, c, d, separated by one or more blanks.
End of file.
End of file.
Output
For each test case, output a single line containing the number of the solutions.
Sample Input
1 2 3 -4 1 1 1 1
Sample Output
39088 0
1 //网上说这样的方法就是哈希,但我感觉像是彻彻底底的二分,因为根本没有hash函数 2 //巧妙之处在于区间等都对称 3 #include <iostream> 4 #include <cstdio> 5 #include <cstring> 6 using namespace std; 7 8 int hash1[1000010];//存储大于零的哈希值 9 int hash2[1000010];//存储小于零的哈希值 10 11 int main() 12 { 13 //setbuf(stdout,NULL);//(File *stream,char *buf)设置流使用 buf缓冲区 ,若buf为NULL,则不使用缓冲区 14 int ans,i,j; 15 int a,b,c,d;//最大值为20w 16 while(cin>>a>>b>>c>>d) 17 { 18 if((a>=0&&b>=0&&c>=0&&d>=0)||(a<0&&b<0&&c<0&&d<0))//没有这个会超时 19 {//去他大爷,明明说没有0,不加上0一直wa 20 cout<<0<<endl; 21 // printf("0\n"); 22 continue; 23 } 24 memset(hash1,0,sizeof(hash1)); 25 memset(hash2,0,sizeof(hash2)); 26 for(i=1;i<=100;i++) 27 { 28 for(j=1;j<=100;j++) 29 { 30 int temp=a*i*i+b*j*j; 31 if(temp>=0)//不必加上temp小于10w,因为两个for循环和输入已经限制了 32 { 33 hash1[temp]++; 34 } 35 else 36 hash2[-temp]++; 37 } 38 } 39 ans=0; 40 for(i=1;i<=100;i++) 41 { 42 for(j=1;j<=100;j++) 43 { 44 int temp=c*i*i+d*j*j; 45 if(temp>0) 46 { 47 ans+=hash2[temp];//别把数组顺序搞反,因为a*x1^2+b*x2^2 = -(c*x3^2+d*x4^2) 48 } 49 else 50 ans+=hash1[-temp]; 51 } 52 } 53 cout<<(ans<<4)<<endl;//每个数都可以取正负,并不是因为解向量排列 54 } 55 return 0; 56 } 57 //注意:devc++中不能定义全局变量count,它和库函数中的函数名同名了
作者:火星十一郎
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