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I am trying to solve the problem The day of the competitors on SPOJ. I tried the following approach:

I am finding the best initial players, so initially the ones with 1st position are the best ones. After this I iterate over all the players and for each of them try to see if any of the current best ones are better than this, if so then this is not excellent discard it(as there exists some player better than this), otherwise I will add it to the best player list. In the end I will output the number of best players.

    for(i=0; i<num; i++)
    {
        for(j=0; j<ctr; j++)
        {               
            // i is already in best
            if(i == best_n[j])
                break;                        
            if((elmts[i].a < elmts[best_n[j]].a) ||
                    (elmts[i].b < elmts[best_n[j]].b) ||
                    (elmts[i].c < elmts[best_n[j]].c))
            {
                continue;
            }
            else
            {
                break;
            }
        }
        if(j>=ctr)
        {
            best_n[ctr] = i;
            ctr ++;
        }
    }

num is number of players, and ctr is number of players in best array till now. But I am getting a wrong answer. I tried to again run a loop for verifying among the best if any player is worse than any other but that also results in a wrong answer. Also I don't think my method is efficient it would be n^2 in worst case. Could you please help me in figuring my mistake and how can I improve this to make it more efficient.

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1 Answer 1

up vote 1 down vote accepted

One problem is see is that your algorithm needs to remove all elements in best_n that the current is better than.

Consider:

1 5 5 // inserted into best at start
5 1 1 // inserted into best at start
3 4 4 // not worse than any of the above, insert into best
4 3 3 // not worse than any of the above, insert into best
2 2 2 // better than 3 4 4 and 4 3 3

The (pseudo-)code will look something like: (if the current is better in EVERY contest, we must replace the other one with the current)

// define '<' as 'better than'
if (not best[j] < elmts[i])
  if (elmts[i] < best[j])
    remove best[j]
    ctr--
  continue
else break

Efficient solution:

O(n^2) is likely too slow. Here is a high-level overview of an efficient solution. Here is C++ code which presumably works.

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Don't you think for ranking higher the value should be smaller thus '<' makes sense? I agree I need to remove in this case but even after removing such items, the verdict is wrong answer. Could you please point me to a different efficient approach. –  gaurav Feb 7 '13 at 4:26
    
@gaurav See edit. –  Dukeling Feb 7 '13 at 11:53
    
I am still not convinced why I need to change the comparison operator, If I do that then, any player who is worse than all the best players in any match would be added to the best set, isn't it wrong? In current code if the current player is better than all the best players in any one match will be added as no player can be better than this player. May be I don't understand your logic. –  gaurav Feb 7 '13 at 13:19
    
You are mistaking in considering the criteria, A is better than B if and only if (A.a < B.a) && (A.b < B.b) && (A.c < B.c) –  gaurav Feb 7 '13 at 13:25
    
@gaurav You're right, I was confused. Edited. –  Dukeling Feb 7 '13 at 13:25

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