如何在 SQL 中找到没有聚合函数的最低值?
How to find lowest value without aggregate function in SQL?
我在 Postgres 上有这个示例数据集
updated_at activated_at name gender role school app_name device_type
-------------+-----------------+----------+--------+-------+---------+---------+---------------
August 2 July 30 Ron M S A Y android
August 1 July 30 Ron M S A Z browser
July 30 July 30 Ron M S A Y android
August 1 July 28 Ana F S B Y android
August 1 July 28 Ana F S B Z browser
July 28 July 28 Ana F S B Y android
我想知道用户在 activated_at 之后首次显示 (updated_at) 的时间是什么时候,属于哪个应用。
预期结果:
updated_at activated_at name gender role school app_name device_type
-------------+-----------------+----------+--------+-------+---------+---------+---------------
July 30 July 30 Ron M S A Y android
July 28 July 28 Ana F S B Y android
我试过了SQL:
SELECT min(ut.updated_at), u.activated_at, u.full_name, u.gender, r.name, s.name, ut.app_name, ut.device_type
FROM "public"."user_tokens" ut JOIN
"public"."users" u
ON ut.user_id = u.id JOIN
"public"."user_roles" ur
ON ut.user_id = ur.user_id JOIN
"public"."roles" r
ON ur.role_id = r.id JOIN
"public"."schools" s
ON ur.school_id = s.id
WHERE (NOT (ut.app_name) like 'G')
Group by u.activated_at, u.full_name, u.gender, r.name, s.name, ut.app_name, ut.device_type
Order by u.activated_at desc
但是结果是这样的:
updated_at activated_at name gender role school app_name device_type
-------------+-----------------+----------+--------+-------+---------+---------+---------------
August 1 July 30 Ron M S A Z browser
July 30 July 30 Ron M S A Y android
August 1 July 28 Ana F S B Z browser
July 28 July 28 Ana F S B Y android
我试图从 group by 子句中排除 app_name 和 device_type 但它说 ERROR: column "ut.app_name" must appear in the GROUP BY clause or be used in an aggregate function
知道如何解决吗?任何输入将不胜感激。谢谢。
我认为 DISTINCT ON 可能是在 Postgres 上执行此操作的最佳方法:
SELECT DISTINCT ON (u.full_name)
ut.updated_at,
u.activated_at,
u.full_name,
u.gender,
r.name,
s.name,
ut.app_name,
ut.device_type
FROM "public"."user_tokens" ut
INNER JOIN "public"."users" u ON ut.user_id = u.id
INNER JOIN "public"."user_roles" ur ON ut.user_id = ur.user_id
INNER JOIN "public"."roles" r ON ur.role_id = r.id
INNER JOIN "public"."schools" s ON ur.school_id = s.id
WHERE NOT ut.app_name LIKE 'G'
ORDER BY
u.full_name,
ut.updated_at;
以上将为每个全名用户return一条记录,对应更早的updated_at时间。
您可以先按升序(从旧到新)排序,然后使用 LIMIT 来确定要显示的记录数量
select * from TABLE_NAME order by updated_at asc LIMIT 2;
我在 Postgres 上有这个示例数据集
updated_at activated_at name gender role school app_name device_type
-------------+-----------------+----------+--------+-------+---------+---------+---------------
August 2 July 30 Ron M S A Y android
August 1 July 30 Ron M S A Z browser
July 30 July 30 Ron M S A Y android
August 1 July 28 Ana F S B Y android
August 1 July 28 Ana F S B Z browser
July 28 July 28 Ana F S B Y android
我想知道用户在 activated_at 之后首次显示 (updated_at) 的时间是什么时候,属于哪个应用。
预期结果:
updated_at activated_at name gender role school app_name device_type
-------------+-----------------+----------+--------+-------+---------+---------+---------------
July 30 July 30 Ron M S A Y android
July 28 July 28 Ana F S B Y android
我试过了SQL:
SELECT min(ut.updated_at), u.activated_at, u.full_name, u.gender, r.name, s.name, ut.app_name, ut.device_type
FROM "public"."user_tokens" ut JOIN
"public"."users" u
ON ut.user_id = u.id JOIN
"public"."user_roles" ur
ON ut.user_id = ur.user_id JOIN
"public"."roles" r
ON ur.role_id = r.id JOIN
"public"."schools" s
ON ur.school_id = s.id
WHERE (NOT (ut.app_name) like 'G')
Group by u.activated_at, u.full_name, u.gender, r.name, s.name, ut.app_name, ut.device_type
Order by u.activated_at desc
但是结果是这样的:
updated_at activated_at name gender role school app_name device_type
-------------+-----------------+----------+--------+-------+---------+---------+---------------
August 1 July 30 Ron M S A Z browser
July 30 July 30 Ron M S A Y android
August 1 July 28 Ana F S B Z browser
July 28 July 28 Ana F S B Y android
我试图从 group by 子句中排除 app_name 和 device_type 但它说 ERROR: column "ut.app_name" must appear in the GROUP BY clause or be used in an aggregate function
知道如何解决吗?任何输入将不胜感激。谢谢。
我认为 DISTINCT ON 可能是在 Postgres 上执行此操作的最佳方法:
SELECT DISTINCT ON (u.full_name)
ut.updated_at,
u.activated_at,
u.full_name,
u.gender,
r.name,
s.name,
ut.app_name,
ut.device_type
FROM "public"."user_tokens" ut
INNER JOIN "public"."users" u ON ut.user_id = u.id
INNER JOIN "public"."user_roles" ur ON ut.user_id = ur.user_id
INNER JOIN "public"."roles" r ON ur.role_id = r.id
INNER JOIN "public"."schools" s ON ur.school_id = s.id
WHERE NOT ut.app_name LIKE 'G'
ORDER BY
u.full_name,
ut.updated_at;
以上将为每个全名用户return一条记录,对应更早的updated_at时间。
您可以先按升序(从旧到新)排序,然后使用 LIMIT 来确定要显示的记录数量
select * from TABLE_NAME order by updated_at asc LIMIT 2;