Discussion on Climbing the Leaderboard Challenge

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19 hours ago+ 0 comments

def climbingLeaderboard(ranked, player):
    # Remove duplicates and sort in descending order
    ranked = sorted(list(set(ranked)), reverse=True)
    ans = []
    
    for score in player:
        # Use binary search to find the position
        left, right = 0, len(ranked)
        while left < right:
            mid = (left + right) // 2
            if ranked[mid] > score:
                left = mid + 1
            else:
                right = mid
        ans.append(left + 1)
    
    return ans

3 weeks ago+ 0 comments

This short Python solution takes advantage of the fact that the player scores are listed in ascending order. We first make a sorted list of unique leader scores, then for each player score, removing the elements which are smaller than the player score, the length of the remaining leader scores plus one is thus the rank of the player score. The process is continued with the shorten leader scores list, thus saves a lot of steps.

def climbingLeaderboard(ranked, player):
    ranks = []
    new_ranked = list(set(ranked.copy()))
    new_ranked = sorted(new_ranked)
    for score in player:
        while new_ranked and score >= new_ranked[0]:
            new_ranked.pop(0)
        ranks.append(len(new_ranked) + 1)        
    return ranks

3 weeks ago+ 0 comments

My code doesn't pass the execution time limits, does anyone know why?. Here it is:

'''finds the position of the player based on their score. We compare their score with the scores of all the other players.'''

def order(ranked, element):    
    storage=[]
    storage.append((1, ranked[0]))
    index=2
    for score in ranked[1:]:
        if storage[-1][1]==score:
            continue
        else:
            ele=(index, score)
            storage.append(ele)
            index+=1        
    for pair in storage:        
        if (pair[1]==element):
            return pair[0] 

'''
This will insert the player's score in its correct position in the ranked list. Then it will find the position of that score in the ranked list using the order function. This will be stored in the outList, which is what will be returned 
'''
def climbingLeaderboard(ranked, player):
    # Write your code here
    outList = []
    for score in player:
        flag=True
        if score > ranked[0]:
            ranked.insert(0, score)
            outList.append(order(ranked, score))
            continue
        for j in range(0, len(ranked)-1):
            if ranked[j] >= score >= ranked[j+1]:
                ranked.insert(j+1, score)
                outList.append(order(ranked, score))
                flag = False
                break
        if flag:
            ranked.append(score)
            outList.append(order(ranked, score))
    return outList

3 weeks ago+ 0 comments

public static List<Integer> climbingLeaderboard(List<Integer> ranked, List<Integer> player) {

   ArrayList<Integer> list = new ArrayList<>(new TreeSet<>(ranked).descendingSet());
   List<Integer> answer = new ArrayList<Integer>();
   for(Integer x: player){
        int index = Collections.binarySearch(list, x, Collections.reverseOrder());
        if(index<0){
            index = Math.abs(index);
        }
        else{
             index+=1;
        }
        answer.add(index);
   }
   return answer;
}

3 weeks ago+ 0 comments

Simple solution using STL:lowerbound

vector<int> climbingLeaderboard(vector<int> ranked, vector<int> player) {
    // Removing duplicates
    auto end = unique(ranked.begin(), ranked.end());
    
    vector<int> out;
    // Checking lowerbound of elements of player in ranked
    for(auto j:player){
        int i = distance(ranked.begin(), lower_bound(ranked.begin(), end, j,greater<int>()));
        out.push_back(i+1);
    }
    return out;
}

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