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  • Prime Path(bfs)

    A - Prime Path(11.1.1)
    Time Limit:1000MS     Memory Limit:65536KB     64bit IO Format:%I64d & %I64u

    Description

    The ministers of the cabinet were quite upset by the message from the Chief of Security stating that they would all have to change the four-digit room numbers on their offices. 
    — It is a matter of security to change such things every now and then, to keep the enemy in the dark. 
    — But look, I have chosen my number 1033 for good reasons. I am the Prime minister, you know! 
    — I know, so therefore your new number 8179 is also a prime. You will just have to paste four new digits over the four old ones on your office door. 
    — No, it’s not that simple. Suppose that I change the first digit to an 8, then the number will read 8033 which is not a prime! 
    — I see, being the prime minister you cannot stand having a non-prime number on your door even for a few seconds. 
    — Correct! So I must invent a scheme for going from 1033 to 8179 by a path of prime numbers where only one digit is changed from one prime to the next prime. 

    Now, the minister of finance, who had been eavesdropping, intervened. 
    — No unnecessary expenditure, please! I happen to know that the price of a digit is one pound. 
    — Hmm, in that case I need a computer program to minimize the cost. You don't know some very cheap software gurus, do you? 
    — In fact, I do. You see, there is this programming contest going on... Help the prime minister to find the cheapest prime path between any two given four-digit primes! The first digit must be nonzero, of course. Here is a solution in the case above. 
    1033
    1733
    3733
    3739
    3779
    8779
    8179
    The cost of this solution is 6 pounds. Note that the digit 1 which got pasted over in step 2 can not be reused in the last step – a new 1 must be purchased.

    Input

    One line with a positive number: the number of test cases (at most 100). Then for each test case, one line with two numbers separated by a blank. Both numbers are four-digit primes (without leading zeros).

    Output

    One line for each case, either with a number stating the minimal cost or containing the word Impossible.

    Sample Input

    3
    1033 8179
    1373 8017
    1033 1033

    Sample Output

    6
    7
    0


    #include<iostream>
    using namespace std;


    typedef class
    {
    public:
    int prime;
    int step;
    }number;


    bool JudgePrime(int digit)
    {
    if(digit==2 || digit==3)
    return true;
    else if(digit<=1 || digit%2==0)
    return false;
    else if(digit>3)
    {
    for(int i=3;i*i<=digit;i+=2)
    if(digit%i==0)
    return false;
    return true;
    }
    }


    int a,b;
    bool vist[15000];
    number queue[15000];


    void BFS(void)
    {
    int i;  //temporary
    int head,tail;
    queue[head=tail=0].prime=a;
    queue[tail++].step=0;
    vist[a]=true;


    while(head<tail)
    {
    number x=queue[head++];
    if(x.prime==b)
    {
    cout<<x.step<<endl;
    return;
    }


    int unit=x.prime%10;       //获取x的个位
    int deca=(x.prime/10)%10;  //获取x的十位


    for(i=1;i<=9;i+=2)     //枚举x的个位,保证四位数为奇数(偶数必不是素数)
    {
    int y=(x.prime/10)*10+i;
    if(y!=x.prime && !vist[y] && JudgePrime(y))
    {
    vist[y]=true;
    queue[tail].prime=y;
    queue[tail++].step=x.step+1;
    }
    }
    for(i=0;i<=9;i++)     //枚举x的十位
    {
    int y=(x.prime/100)*100+i*10+unit;
    if(y!=x.prime && !vist[y] && JudgePrime(y))
    {
    vist[y]=true;
    queue[tail].prime=y;
    queue[tail++].step=x.step+1;
    }
    }
    for(i=0;i<=9;i++)     //枚举x的百位
    {
    int y=(x.prime/1000)*1000+i*100+deca*10+unit;
    if(y!=x.prime && !vist[y] && JudgePrime(y))
    {
    vist[y]=true;
    queue[tail].prime=y;
    queue[tail++].step=x.step+1;
    }
    }
    for(i=1;i<=9;i++)     //枚举x的千位,保证四位数,千位最少为1
    {
    int y=x.prime%1000+i*1000;
    if(y!=x.prime && !vist[y] && JudgePrime(y))
    {
    vist[y]=true;
    queue[tail].prime=y;
    queue[tail++].step=x.step+1;
    }
    }


    }


    cout<<"Impossible"<<endl;
    return;
    }


    int main(void)
    {
    int test;
    cin>>test;
    while(test--)
    {
    cin>>a>>b;
    memset(vist,false,sizeof(vist));
    BFS();
    }
    return 0;
    }



    先说一下bfs吧,,就是广搜,宽搜,

    比如这一题,首先拿第一格例子,,1033 8179;

    设一个数初始1033,当等于8179时,说明能结束了;

    首先搜1033中只更改一个数的,,,并记下此时到达该数的步数

    是(排除1033本身)

    1031  1
    1039 1
    1013 1
    1063 1
    1093 1
    1433 1
    1733 1
    1933 1



    第二步,再分别对这8个数进行广搜   (再次搜索时排除这9个数),这时这些数搜到的数的步数都为2;

    第三步,重复第二步

    。。。。。

    此时,谁先到达8197,他所代表的步数即为最小步数,输出,结束。

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  • 原文地址:https://www.cnblogs.com/lengxia/p/4387806.html
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