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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Climbing the Leaderboard
  5. Discussions

Climbing the Leaderboard

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  • sidharthan261
     + 1 comment
    def climbingLeaderboard(ranked, player):
    # Write your code here
    rank = []
    for i in range(len(player)):
        ranked.append(player[i])
        transformed = sorted(set(ranked), reverse=True)
        rank.append(transformed.index(player[i]) + 1)
    return rank

    Not optimized

  • robertgiuga2016
     + 0 comments

    Here is a Java 8 solution. Because the test requires better time performance I opted for a binary search. Hope it helps.

    public static List<Integer> climbingLeaderboard(List<Integer> ranked, List<Integer> player) {
        List<Integer> scores= new ArrayList<>(player.size());
        ranked= ranked.stream().distinct().sorted().collect(toList());
        for (Integer p : player) {
            int index = Collections.binarySearch(ranked, p);
            if(index<0){
                index+=ranked.size()+2;
            }
            else{
                index= ranked.size()+1 + (-1)*(index+1);
            }
            scores.add(index);
        }
        return scores;

    }

  • biengioichantroi
     + 0 comments

    For those using C++, I found this way can pass all the time limited case The idea is same as many of here: find the first one greater than player's score, but using maximum of built-in function to push up the performance:

    vector<int> climbingLeaderboard(vector<int> ranked, vector<int> player) {
    int n = ranked.size(); int m = player.size();
    
    // Xu ly leaderboard
    
    vector<int> stored;
    for (int i=0; i<n; i++) {
        if (i==0) stored.push_back(ranked[i]);
        else {
            if (ranked[i-1]!=ranked[i]) stored.push_back(ranked[i]);
        }
    }
    
    // Xu ly mang player
    vector<int> res; 
    for (int i=0; i<m; i++) {
        int ans = upper_bound(stored.rbegin(),stored.rend(),player[i]) - stored.rbegin();
        int rank = 1+stored.size() - abs(ans);
        res.push_back(rank);
    }
		
    
    return res;
}

  • reneroth
     + 0 comments

    Solving this was easy, solving this in the timeout constraints not so much. Took some digging and experimenting in which built in array methods are performant and which not so much - for me, a working solution included using Sets instead of Arrays.

  • islam_soft_eng
     + 0 comments

    Would someone provide a help optimizing the below code? didn't pass test case 6 and test case 8

    int* climbingLeaderboard(int ranked_count, int* ranked, int player_count, int* player, int* result_count) 
{
   int j=0;
    int rankNoDups[ranked_count];
    for(int i=0;i<ranked_count;++i)     //loop to remove duplication in ranked array
    {
        if(ranked[i]==ranked[i+1])      //look for similar values.
        {
            continue;                   //skip below lines in case of similar values           
        }
        rankNoDups[j]=ranked[i];        //add unique values to rankNoDups array
        j++;    //advance j by one
    }

    int count=1;                          //set count to 1
    *result_count=player_count;       //assign value of player_count to *result_count 
    static int a[100000];              //array to stor 
    for(int k=0;k<player_count;++k)        //5,25,50,120  playerrank
    {    
        for(int i=0;i<j;++i)            //100,50,40,20,10   nodups
        {
            if(rankNoDups[i]<=player[k])
            {
                break;
            }
           count++;
        }
        *(a+k)=count;
       // printf("%d\n",*(a+k));
        count=1;
    }
   //result_count[k]=count;
   //printf(">>>>>>>%d<<<<<<<<",(sizeof(result_count)/sizeof(result_count[0])));
   return a;
}
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