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I'm writing a game for some highschool kids to learn about computer science/math in general.

But I'm also stuck in a question I've designed for myself, and want to see if there's a more efficient way to solve it.

The question:

Give a word "Abc" and a list of words ["Cat", "Tick", "Apple", "Orange", ... ] Is it possible to construct a word chain in this condition where last character of the first word is same as the first character of any word chosen from the word list. And can this chain be successfully constructed by the given word list? Return true if possible, false otherwise.

INPUT: boolean lastCharPermutation(String startingWord, String [] wordsList) { .. }

OUTPUT: true for able to complete the combination, false otherwise

For example,

Case #1: Take "Abc", ["Girl", "King", "Cat", "Dog", "Good", "Tick"] Return true because Abc-Cat-Tick-King-Good-Dog-Girl

Case #2: Take "Abc", ["Tour", "Game", "Cat", "Bridge", "Women", "Man"] Return false because Abc-Cat-Tour and stops there

I'm sorry in advanced if I've forgotten the official name for this type of question! If you can correct me with the actual term for this question, I'll be edit this post!

Thanks.

share|improve this question
    
Why is it labeled with 4 different languages? Is it actually meant to be language-agnostic? –  Craig Jun 11 '13 at 4:44
    
Voting to close, I think this fails to be a real question (for this site). –  unwind Jun 11 '13 at 4:45
    
well, I guess pseudo code is OK! Or a way to analyze this. I couldn't think of a way to do this efficiently. and need help –  xbeta Jun 11 '13 at 4:45
    
@xbeta please show some attempts, you are just giving other people your assignment –  jamylak Jun 11 '13 at 4:46
1  
@OP: also shouldn't "Case #2" be "Abc-Cat-Tour"? –  Craig Jun 11 '13 at 4:47

1 Answer 1

up vote 1 down vote accepted

What you want to do is a Eulerian Path.. I had solved the same problem on Codechef. This is my Code if you wanna use.. Plz tell me if you need a explanation,it is very easy to understand though.

#include <iostream>
#include <string.h>
#include <string>
using namespace std;

int visit[26];
int adj[26][26];
int count=0;

void scc(int i) //Strongly COnnected Component
{
    visit[i]=-1;//visiting
    for(int t=0;t<26;t++)
    {
        if(adj[i][t]>0 && visit[t]==0)//not visited yet
        scc(t);
    }
    visit[i]=1;
    count++;
}

int main()
{
    string in;
    int t,n,k,nv,counta,countb,flag;
    int a[26],b[26];
    cin >> t;
    while(t--)
    {
        cin >> n;
        memset(a,0,26*sizeof(int));
        memset(b,0,26*sizeof(int));
        memset(visit,0,26*sizeof(int));
        memset(adj,0,26*26*sizeof(int));
        k=26;count=0;counta=0;countb=0;flag=0;nv=0;

        while(n > 0)
        {
            n--;
            cin >> in;
            a[in[0]-'a']++;
            b[in[in.size()-1]-'a']++;
            adj[in[0]-'a'][in[in.size()-1]-'a'] = 1;
            adj[in[in.size()-1]-'a'][in[0]-'a'] = 1;
        }

        for(int i=0;i<26;i++)
            if(a[i]>0)
            {
                scc(i);
                break;
            }

        for(int i=0;i<26;i++)
            if(a[i]!=0 || b[i]!=0)
                nv++;

        if(count!=nv)
            flag=1;     

        while(k > 0 && flag!=1  )
        {
            if(a[k-1]-b[k-1] == 1)
                counta++;
            else if(b[k-1]-a[k-1] == 1)
                countb++;
            else if(a[k-1]!=b[k-1])
                flag = 1;
            k--;
        }

        if(flag==0 && counta==countb && ( counta==1 || counta ==0))
            cout << "Ordering is possible." <<endl;
        else
            cout << "The door cannot be opened." <<endl;
    }

    return 0;
} 
share|improve this answer
    
Thanks! Would you mind to format the code a bit ? Thanks! –  xbeta Jun 11 '13 at 6:34
    
sure..do acept it,if it meets ur needs. –  Spandan Jun 11 '13 at 7:20
    
This is the implementation of my comment... –  Luiggi Mendoza Jun 11 '13 at 15:58

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