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Why shouldn't consider the field hacker_id in the JOIN between the Submissions table and Challenges table? If I only consider the challenge_id I wouldn't cause duplicates? Since that the Challenges table has the Challenges by each Hacker.
Is this question doesnot support CTE ?? Becaz when i used to solve the query using CTE , i got the syntax error near first line .... Clear me where is the syntax error or if not then does this ques support CTE or not ?
WITH s_data AS ( SELECT s.challenge_id, s.hacker_id, c.difficulty_level, d.score AS d_score, s.score AS s_score, h.name FROM challenges c JOIN difficulty d ON d.difficulty_level = c.difficulty_level JOIN submissions s ON s.challenge_id = c.challenge_id JOIN hackers h ON h.hacker_id = s.hacker_id ), full_score AS ( SELECT challenge_id, hacker_id, s_score, name, d_score FROM s_data WHERE s_score = d_score ) SELECT hacker_id, name FROM full_score GROUP BY hacker_id, name HAVING COUNT() > 1 ORDER BY COUNT() DESC, hacker_id;
MySQL
could you please explain when I change from INNER JOIN challenges cha USING (challenge_id) to INNER JOIN challenges cha USING (hacker_id) ~~ then it goes wrong result
"Challenges: The challenge_id is the id of the challenge, the hacker_id is the id of the hacker who created the challenge, and difficulty_level is the level of difficulty of the challenge." Base on this. hacker_id in Challenges table is not show up for the hacker that handle or solve the challenge. Incase you want to define which hacker sovle which challenge, you can use the hacker_id in Submissions table. He use Submissions.challenge_id = Challenges.challenge_id to get the max score of challenge can get. From that you can define that which submission can earn max score.
WITH result AS ( SELECT h.hacker_id , h.name , s.challenge_id , s.score FROM Hackers h JOIN Submissions s ON h.hacker_id=s.hacker_id ) , result_1 AS ( SELECT r.hacker_id , r.name , r.challenge_id , c.difficulty_level , r.score FROM result r JOIN challenges c ON r.challenge_id = c.challenge_id ) , result_2 AS ( SELECT r1.hacker_id , r1.name , r1.challenge_id , r1.difficulty_level , r1.score FROM result_1 r1 JOIN Difficulty d ON r1.score = d.score AND r1.difficulty_level=d.difficulty_level ) , result_3 AS ( SELECT r2.* , COUNT (r2.hacker_id) OVER (PARTITION BY r2.hacker_id ORDER BY r2.hacker_id) as count FROM result_2 r2 )
SELECT r3.hacker_id , r3.name FROM result_3 r3 WHERE r3.count > 1 GROUP BY r3.hacker_id, r3.name, r3.count ORDER BY r3.count DESC, r3.hacker_id ASC
;with challenge_cte as ( select c.challenge_id, d.score as max_score from Challenges as c join Difficulty as d on d.difficulty_level = c.difficulty_level ), submission_cte as ( select s.hacker_id, COUNT(DISTINCT cte.challenge_id) as counter_challenge from Submissions as s left join challenge_cte as cte on cte.challenge_id = s.challenge_id where s.score = cte.max_score group by s.hacker_id HAVING COUNT(DISTINCT s.challenge_id) > 1 ) select h.hacker_id, h.name from Hackers as h join submission_cte as c on c.hacker_id = h.hacker_id order by c.counter_challenge DESC, h.hacker_id ASC