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15 Days of Learning SQL
15 Days of Learning SQL
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WITH t1 AS ( SELECT submission_date, hacker_id, COUNT(submission_id) AS cnt FROM Submissions GROUP BY submission_date, hacker_id ), t2 AS ( SELECT *, ROW_NUMBER() OVER (PARTITION BY submission_date ORDER BY cnt DESC, hacker_id) AS rn FROM t1 ), t3 AS ( SELECT t2.submission_date, t2.hacker_id, b.name, t2.cnt FROM t2 JOIN Hackers b ON t2.hacker_id = b.hacker_id WHERE t2.rn = 1 ), t4 AS ( SELECT hacker_id, submission_date, Dense_rank() OVER (PARTITION BY hacker_id ORDER BY submission_date) AS row_num FROM Submissions group by hacker_id, submission_date ), t5 AS ( SELECT submission_date, count(hacker_id) as hcnt FROM t4 where Datepart(Day, submission_date) = row_num group by submission_date )
SELECT t5.submission_date, hcnt, t3.hacker_id, t3.name FROM t5 join t3 on t5.submission_date = t3.submission_date
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Explanation: Now, the code below might seem daunting that's why it took me more than a day to figure out with a little help from various advance chat bots; more often than giving wrong response. The real challenge was to figure out the number of coders who have submitted at leat one submission from the start date to the current date, which is not mentioned clearly in the question itself, without the use of CTEs and Window Functions since my MySQL version was not allowing it Being from Statistics background and having has studied Probability theory, I can see that the question is ambiguous in its statement about the requirement for the first column.
MySQL Code:
Took a long time after missing a point in the question. doesn't seem like there's any way to do this without a temp table, or CTE
Hi, where's my problem?
select fecha, trabajos, numero, a.name from ( select fecha, max(trabajos) trabajos, min(numero) numero from ( select a.submission_date fecha, count(a.submission_date) trabajos, a.hacker_id numero from ( SELECT hacker_id id, COUNT(DISTINCT submission_date) AS total FROM Submissions GROUP BY hacker_id HAVING COUNT(DISTINCT submission_date) = (SELECT COUNT(DISTINCT submission_date) FROM Submissions) ) temp inner join Submissions a on a.hacker_id = temp.id where temp.total = (select count(distinct submission_date) from Submissions) group by a.hacker_id, a.submission_date ) temp2 group by fecha ) temp3 inner join Hackers a on a.hacker_id = temp3.numero order by fecha;
with daily_count as ( select s.submission_date,s.hacker_id,h.name,count(s.submission_id) as dail_cna from submissions s left join hackers h on s.hacker_id=h.hacker_id group by s.submission_date,s.hacker_id,h.name ), max_daily as ( select submission_date,hacker_id,name, row_number() over(partition by submission_date order by dail_cna desc,hacker_id) as rna from daily_count ), fin as ( select hacker_id,submission_date, dense_rank() over(partition by hacker_id order by submission_date ) as sina from submissions group by hacker_id,submission_date ), fina1 as ( select submission_date,count(hacker_id) as bbc from fin where day(submission_date)=sina group by submission_date ) select distinct m.submission_date,f.bbc,m.hacker_id,m.name from max_daily m left join fina1 f on m.submission_date=f.submission_date where rna=1;