hdu5317 RGCDQ (质因子种数+预处理)
RGCDQ
题意:F(x)表示x的质因子的种数。给区间[L,R],求max(GCD(F(i),F(j)) (L≤i
题解:可以用素数筛求质因子种数(这不用多说,看下代码init()中内容就能理解)。然而R的范围太大,会TLE。因此只能用空间换时间了。
可以用一个二维数组num[i][j] 保存x<=i&&F(x)=j的x的个数。(预处理,有点dp的思想)
2*3*5*7*11*13*17 > 10 ^ 6,即在1~1e6的范围内最多有7个素数相乘。so F(x)最大为7,即j<=7。
给出L,R,则num[R][j]-num[L][j]为在[L,R]区间F(x)==j的x的个数b[j]。根据b[j]的值,很容易人工求出答案。
#include
#include
#include
#include
using namespace std;
typedef long long LL;
const int N=1e6+5;
int f[N],num[N][10],b[10];
void init() //筛选法求f(x)
{
memset(f,0,sizeof(f));
for(int i=2;i>t;
while(t--)
{
scanf("%d%d",&l,&r);
int ans=0;
for(int i=1;i<8;i++)
{
b[i]=num[r][i]-num[l-1][i];
if(num[r][i]-num[l-1][i]>1)
ans=i;
}
if(ans!=0)
printf("%d\n",ans);
else if((b[2]>0&&b[4]>0)||(b[2]>0&&b[6]>0)||(b[6]>0&&b[4]>0))
printf("2\n");
else if(b[3]>0&&b[6]>0)
printf("3\n");
else
printf("1\n");
}
return 0;
}
RGCDQ
Time Limit: 6000/3000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)Total Submission(s): 2539 Accepted Submission(s): 1012
Problem Description
Mr. Hdu is interested in Greatest Common Divisor (GCD). He wants to find more and more interesting things about GCD. Today He comes up with Range Greatest Common Divisor Query (RGCDQ). What’s RGCDQ? Please let me explain it to you gradually. For a positive integer x, F(x) indicates the number of kind of prime factor of x. For example F(2)=1. F(10)=2, because 10=2*5. F(12)=2, because 12=2*2*3, there are two kinds of prime factor. For each query, we will get an interval [L, R], Hdu wants to know maxGCD(F(i),F(j)) (L≤i Input There are multiple queries. In the first line of the input file there is an integer T indicates the number of queries. Output For each query,output the answer in a single line. Sample Input 2 2 3 3 5 Sample Output 1 1
In the next T lines, each line contains L, R which is mentioned above.
All input items are integers.
1<= T <= 1000000
2<=L < R<=1000000
See the sample for more details.