HDU 1030 Delta-wave (找规律)

Delta-wave

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 3200    Accepted Submission(s): 1204


Problem Description
A triangle field is numbered with successive integers in the way shown on the picture below.

HDU 1030 Delta-wave (找规律)


The traveller needs to go from the cell with number M to the cell with number N. The traveller is able to enter the cell through cell edges only, he can not travel from cell to cell through vertices. The number of edges the traveller passes makes the length of the traveller's route.

Write the program to determine the length of the shortest route connecting cells with numbers N and M.
 

 

Input
Input contains two integer numbers M and N in the range from 1 to 1000000000 separated with space(s).
 

 

Output
Output should contain the length of the shortest route.
 

 

Sample Input
6 12
 

 

Sample Output
3
 

 

Source
 

 

Recommend
lcy
 
 
 
找规律。。。具体的不详细说了,我也是参考了别人的思路~~~
 
 
#include<stdio.h>



int hang(int n)//返回  n 所在的行数

{

    int cnt=0;

    int i,s;

    for(i=1,s=0;s<n;i+=2)

    {

        s+=i;

        ++cnt;

    }    

    return cnt;

}     

bool isUP(int n)

{

    int t=hang(n);

    if(t%2==n%2) return 1;

    else return 0;

}    

int wei(int n)

{

    int t=hang(n)-1;

    return n-t*t;

}    

int main()

{

    int M,N;

    while(scanf("%d%D",&M,&N)!=EOF)

    {

        if(M>N)

        {

            M=M^N;

            N=M^N;

            M=M^N;

        }   

        int h1=hang(M);

        int h2=hang(N);

        int dish=h2-h1;

        

        if(h1==h2)

        {

            printf("%d\n",N-M);

            continue;

        }     

        int x1=wei(M);

        int x2=wei(N);

        int w1=M-(h1-1)*(h1-1)+(h2-1)*(h2-1);

        int w2=w1+2*dish;

        int res=0;

        if(N>=w1&&N<=w2)

        {

            res=2*dish;

            if(!isUP(M)&&isUP(N)) res++;

            if(isUP(M)&&!isUP(N)) res--;

        }    

        else

        {

            if(N<w1) res=2*dish+w1-N;

            else res=2*dish+N-w2;

        }    

        printf("%d\n",res);

    }    

    return 0;

}    

 

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