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  1. Prepare
  2. SQL
  3. Basic Join
  4. Top Competitors
  5. Discussions

Top Competitors

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2358 Discussions

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  • diego19paredes21
     + 0 comments
    SELECT 
     H.Hacker_id,H.name
FROM 
    Hackers H 
JOIN 
    Submissions S ON H.Hacker_id = S.Hacker_id 
JOIN 
    Challenges C ON S.challenge_id = C.challenge_id 
JOIN
    Difficulty D ON C.difficulty_level = D.difficulty_level 
WHERE 
    S.score = D.score
GROUP BY 
    H.hacker_id, H.name
HAVING  
    COUNT(DISTINCT S.challenge_id) > 1
ORDER BY 
    COUNT (DISTINCT S.challenge_id) DESC,
    H.hacker_id ASC;

  • gesley_marinho
     + 0 comments

    Oracle:

    SELECT h.hacker_id, h.NAME FROM submissions s JOIN challenges c ON s.challenge_id = c.challenge_id JOIN hackers h ON s.hacker_id = h.hacker_id JOIN difficulty d ON c.difficulty_level = d.difficulty_level WHERE s.score = d.score GROUP BY h.hacker_id, h.NAME HAVING Count(s.challenge_id) > 1 ORDER BY count(s.challenge_id) DESC, h.hacker_id ;

  • arpit10gupta
     + 0 comments

    Filter out max score per challenege for a hacker guys first. Then is shoud give correct results. For example, if a hacker made 3 submissions, two of which hit the full score, the challenge would be counted twice, leading to incorrect leaderboard rankings.

    **CODE: **

    WITH max_scores AS (
    -- Get the maximum score achieved by each hacker for each challenge
    SELECT hacker_id, challenge_id, MAX(score) AS max_score
    FROM submissions
    GROUP BY hacker_id, challenge_id
),
full_scores AS (
    -- Join with difficulty table to check if the hacker achieved full score
    SELECT ms.hacker_id, h.name, ms.challenge_id
    FROM max_scores ms
    JOIN hackers h ON ms.hacker_id = h.hacker_id
    JOIN challenges c ON ms.challenge_id = c.challenge_id
    JOIN difficulty d ON c.difficulty_level = d.difficulty_level
    WHERE ms.max_score = d.score  -- Full score condition
),
hacker_counts AS (
    -- Count challenges where hackers got full scores
    SELECT hacker_id, name, COUNT(challenge_id) AS challenge_count
    FROM full_scores
    GROUP BY hacker_id, name
)
-- Filter hackers with full scores in more than one challenge
SELECT hacker_id, name
FROM hacker_counts
WHERE challenge_count > 1
ORDER BY challenge_count DESC, hacker_id ASC;

  • ivanleoncz
     + 1 comment

    I think it's worth to mention that, there is just one Submission per Hacker, for a Challenge...

    I initially thought that, Submissions might be recording all submissions made by a Hacker, correct or incorrect.

    Quite intrincate this challenge, I dare to say...

  • celal_selcan
     + 0 comments

    I think data is wrong. Becouse Challenges table does not match with submissions table on hacker_id and challenge_id.