zoj1239 Hanoi Tower Troubles Again!

 

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Time Limit: 2 Seconds      Memory Limit: 65536 KB 

 

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People stopped moving discs from peg to peg after they know the number of steps needed to complete the entire task. But on the other hand, they didn't not stopped thinking about similar puzzles with the Hanoi Tower. Mr.S invented a little game on it. The game consists of N pegs and a LOT of balls. The balls are numbered 1,2,3... The balls look ordinary, but they are actually magic. If the sum of the numbers on two balls is NOT a square number, they will push each other with a great force when they're too closed, so they can NEVER be put together touching each other. 

 

 

The player should place one ball on the top of a peg at a time. He should first try ball 1, then ball 2, then ball 3... If he fails to do so, the game ends. Help the player to place as many balls as possible. You may take a look at the picture above, since it shows us a best result for 4 pegs. 

 

 

Input

 

The first line of the input contains a single integer T, indicating the number of test cases. (1<=T<=50) Each test case contains a single integer N(1<=N<=50), indicating the number of pegs available. 

 

 

Output

 

For each test case in the input print a line containing an integer indicating the maximal number of balls that can be placed. Print -1 if an infinite number of balls can be placed. 

 

 

Sample Input

 

2

4

25

 

 

Sample Output

 

11

337

 

 

给出n个柱子，从第一个柱子开始放珠子，珠子编号从1开始，要求每个柱子上相邻两个珠子的和是可开方的。

 

 

[cpp] 

#include<stdio.h>   

#include<math.h>   

#include<string.h>   

int a[55];  

int main()  

{  

    int t;  

    scanf("%d",&t);  

    while(t--)  

    {  

        memset(a,0,sizeof(a));  

        int n;  

        scanf("%d",&n);  

        int poit=1;  

        int s=1;  

        while(1)  

        {  

            if(poit>n)  

                break;  

            if(a[poit]==0)  

            {  

                a[poit]=s;  

                s++;  

                poit=1;  

                continue;  

            }  

            else  

            {  

                int b=a[poit]+s;  

                int c=sqrt(b);  

                if(c*c==b)  

                {  

                    a[poit]=s;  

                    s++;  

                    poit=1;  

                    continue;  

                }  

            }  

            poit++;  

        }  

        printf("%d\n",s-1);  

    }  

    return 0;  

}  

 

#include<stdio.h>

#include<math.h>

#include<string.h>

int a[55];

int main()

{

    int t;

    scanf("%d",&t);

    while(t--)

    {

        memset(a,0,sizeof(a));

        int n;

        scanf("%d",&n);

        int poit=1;

        int s=1;

        while(1)

        {

            if(poit>n)

                break;

            if(a[poit]==0)

            {

                a[poit]=s;

                s++;

                poit=1;

                continue;

            }

            else

            {

                int b=a[poit]+s;

                int c=sqrt(b);

                if(c*c==b)

                {

                    a[poit]=s;

                    s++;

                    poit=1;

                    continue;

                }

            }

            poit++;

        }

        printf("%d\n",s-1);

    }

    return 0;

}

 

 

补充：软件开发 , C++ ,