Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Question

In the table of n rows and n columns, some cells are occupied with balls, others are free. You choose a ball and a place where you wants to move it. For one step the ball can move to the next horizontal or vertical empty cell. You must determine is it possible to move the ball from the initial cell to the given, and if possible, find a way consisting of the fewest steps.

Example input:

5
....X
.OOOO
.....
OOOO.
@....

output:

Y
+++++
+OOOO
+++++
OOOO+
@++++

My approach was to run bfs in the graph. I am new to bfs and i only know how to find the shortest number of moves to reach the destination. I want to mark the path to reach there.

After reading some article , i found A* and some other methods like back tracking would do the same for me.

But since i am new to bfs , i am not understanding them.Can anyone modify my code to print the path in the graph. Kindly give me any explanation for your code. Hoping for an early reply.

My code

#include <bits/stdc++.h>

#define mp2(a,b,c,q)  q.push( make_pair(make_pair(a,b),c) )
using namespace std;

unsigned long long mod=1000000007;

int visited[45][45];
char arr[45][45];

bool istrue(int x,int y,int n)
{
    if(x>=0 && x<n && y>=0 && y<n && visited[x][y]!=1 && arr[x][y]!='O' )
    return true;
    else
    return false;
}
int main()
{
        int t;
        cin>>t;

        int x1,y1,x2,y2,level=0;

        getchar();
        for(int i=0;i<t;i++)
        {
            for(int j=0;j<t;j++)
            {
                cin>>arr[i][j];
                if(arr[i][j]=='X')
                {x1=i;y1=j;}

                if(arr[i][j]=='@')
                {x2=i;y2=j;}
            }

        }

        queue <   pair <pair <int ,int >,int> > q;
        q.push( make_pair(make_pair(x1,y1),level) );
        visited[x1][y1]=1;

        while(q.size())
        {
            x1=q.front().first.first;
            y1=q.front().first.second;
            level=q.front().second;

            visited[x1][y1]=1;

            q.pop();


            if(x1==x2 && y1== y2)
            {
                cout<<"\nY  "<<level<<"\n\n";
                for(int i=0;i<t;i++)
                {
                    for(int j=0;j<t;j++)
                    cout<<arr[i][j];

                    cout<<"\n";
                }

                return 0;
            }

            if( istrue(x1+1,y1,t))
            {
               mp2(x1+1,y1,level+1,q);
               visited[x1+1][y1]=1;

            }
            if( istrue(x1-1,y1,t) )
            {
                mp2(x1-1,y1,level+1,q);
               visited[x1-1][y1]=1;


            }
              if( istrue(x1,y1+1,t))
            {
                mp2(x1,y1+1,level+1,q);
               visited[x1][y1+1]=1;

            }
            if( istrue(x1,y1-1,t) )
            {
                mp2(x1,y1-1,level+1,q);
               visited[x1][y1-1]=1;

            }

        }

printf("N");





}
share|improve this question
    
Hello and welcome to stackoverflow.com. Please take some time to read the help pages, especially the sections named "What topics can I ask about here?" and "What types of questions should I avoid asking?". And more importantly, please read the Stack Overflow question checklist. You might also want to learn what a SSCCE is. –  Joachim Pileborg Feb 16 at 7:32
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Browse other questions tagged or ask your own question.