티스토리 뷰
/*----------------- 3-5 ~ 3-7------------------*/
# left join 강의 시작을 안한 사람
select u.name, count(*) as cnt from users u
left join point_users pu on u.user_id = pu.user_id
where pu.point_user_id is NULL
group by u.name
order by count(*) desc
# 7월 10일 ~ 7월 19일에 가입한 고객 중, 포인트를 가진 고객의 숫자, 전체 숫자, 비율
select * from point_users
select * from users
select count(pu.point_user_id) as pnt_user_cnt,
count(*) as tot_user_cnt,
round(count(pu.point_user_id)/count(*),2) as ratio
from users u
left join point_users pu on u.user_id = pu.user_id
where u.created_at between '2020-07-10' and '2020-07-20'
# 결과물 합치기. Union 배우기(order by가 작동하지 않는다는 것 유의)
(
select '7월' as month, c1.title, c2.week, count(*) as cnt from courses c1
inner join checkins c2 on c1.course_id = c2.course_id
inner join orders o on c2.user_id = o.user_id
where o.created_at >= '2020-08-01'
group by c1.title, c2.week
order by c1.title, c2.week
)
union all
(
select '8월' as month, c1.title, c2.week, count(*) as cnt from courses c1
inner join checkins c2 on c1.course_id = c2.course_id
inner join orders o on c2.user_id = o.user_id
where o.created_at >= '2020-08-01'
group by c1.title, c2.week
order by c1.title, c2.week
)
# enrolled_id별 수강완료(done=1)한 강의 갯수를 세어보고, 완료한 강의 수가 많은 순서대로 정렬해보기. user_id도 같이 출력되어야 한다.
select * from enrolleds_detail
select * from enrolleds
select e.enrolled_id, e.user_id, count(*) from enrolleds e
inner join enrolleds_detail ed on e.enrolled_id = ed.enrolled_id
where done = 1
group by enrolled_id
order by count(*) desc
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