如何解决在SQL中进行JOIN后获取最后N条记录?
我正在为自己创建一个网站,可以在任何主题上创建笔记。
要创建笔记,我必须提供主题名称,主题,标签,笔记内容。
每当我按下保存按钮以保存我的新笔记时,它将所有信息存储在给定的以下三个表中的MYSQL DB中。每个注释还有一个唯一的note_id。
我可以为单个笔记提供多个标签,这样一个标签将存储在一行中,第二个标签将存储在另一行中,依此类推..在notes_tag table
中。
MYSQL DB中有三个表-
- 笔记
- notes_subject
- notes_tag
因此,如果我想按日期和时间降序(STACK ORDER
)来获取 user_id = 2 的所有注释,请在下面的查询中运行-
SELECT N.id,N.user_id,N.note_id,S.subject_name,T.tag_name,N.date,N.time from notes AS N
JOIN notes_subject AS S ON N.user_id = 2
AND N.user_id = S.user_id
AND N.note_id = S.note_id
JOIN notes_tag AS T ON N.user_id = T.user_id
AND N.note_id = T.note_id
ORDER BY N.date DESC,time DESC;
并获取-
+----+---------+--------------+--------------+--------------+------------+----------+
| id | user_id | note_id | subject_name | tag_name | date | time |
+----+---------+--------------+--------------+--------------+------------+----------+
| 28 | 2 | DFbw8bOhVvuY | Logo | logo | 2020-08-11 | 12:21:09 |
| 8 | 2 | BW2aMLYN8CIF | DLD | AND | 2020-08-10 | 11:24:35 |
| 8 | 2 | BW2aMLYN8CIF | DLD | NAND | 2020-08-10 | 11:24:35 |
| 7 | 2 | ARJuTcItPgbn | CN | cn | 2020-08-10 | 11:19:11 |
| 7 | 2 | ARJuTcItPgbn | CN | IPV4 | 2020-08-10 | 11:19:11 |
| 25 | 2 | mpngBCarbHuu | new norw | kjk45 | 2020-08-10 | 06:13:48 |
| 24 | 2 | 7zdqslgj2AFd | subject1 | tag1 | 2020-08-10 | 06:12:37 |
| 23 | 2 | LaHLcnPotDat | subject2 | l;k | 2020-08-10 | 06:10:20 |
| 22 | 2 | FgGqsVFrdjSH | subject3 | JGH | 2020-08-10 | 06:09:02 |
| 21 | 2 | rrsz6eIh1sny | K | lkj | 2020-08-10 | 06:07:56 |
| 20 | 2 | NNLhTXSqZcbs | subject5 | lkj | 2020-08-10 | 06:02:47 |
| 19 | 2 | nOYQunMfi09p | subject16 | j | 2020-08-10 | 06:02:28 |
| 18 | 2 | GYI2B8A5XWBP | subject13 | lk | 2020-08-10 | 06:01:58 |
| 16 | 2 | 3mFvXIt5KVx8 | subject11 | kkklk | 2020-08-10 | 06:00:18 |
| 15 | 2 | jisgFUdh1jAu | subject15 | ;lksd | 2020-08-10 | 05:52:41 |
| 14 | 2 | Hnmv4AXvgn0m | subject10 | lksd | 2020-08-10 | 05:51:50 |
| 13 | 2 | JgsebjXpR7w3 | subject9 | lkals | 2020-08-10 | 05:50:53 |
| 12 | 2 | EvCAPWsntTIO | subject8 | lklas | 2020-08-10 | 05:48:12 |
| 11 | 2 | 86ZTfX641bCA | subject7 | alsk | 2020-08-10 | 05:47:14 |
| 10 | 2 | ZqlvwNvzA7fn | subject6 | lkjas | 2020-08-10 | 05:44:50 |
| 1 | 2 | nVf0It70bnjQ | computer | computer fan | 2020-08-08 | 11:18:17 |
| 1 | 2 | nVf0It70bnjQ | computer | clean | 2020-08-08 | 11:18:17 |
| 3 | 2 | RfYg3u59Ytup | SQL | DESC | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | ASC | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | select | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | mysql | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | sql | 2020-08-06 | 12:50:51 |
+----+---------+--------------+--------------+--------------+------------+----------+
27 rows in set (0.01 sec)
注意::还有两个属性'note_html','note_markdown',其中包含我的注释内容。由于数据量大,我没有在SQL查询的结果中同时包含这两个属性。
但是,如果我要最后3 或最后N 插入user_id = 2的注释。查询应该是什么?
最后3个插入的user_id = 2注释的结果必须类似于-
+----+---------+--------------+--------------+--------------+------------+----------+
| id | user_id | note_id | subject_name | tag_name | date | time |
+----+---------+--------------+--------------+--------------+------------+----------+
| 28 | 2 | DFbw8bOhVvuY | Logo | logo | 2020-08-11 | 12:21:09 |
| 8 | 2 | BW2aMLYN8CIF | DLD | AND | 2020-08-10 | 11:24:35 |
| 8 | 2 | BW2aMLYN8CIF | DLD | NAND | 2020-08-10 | 11:24:35 |
| 7 | 2 | ARJuTcItPgbn | CN | cn | 2020-08-10 | 11:19:11 |
| 7 | 2 | ARJuTcItPgbn | CN | IPV4 | 2020-08-10 | 11:19:11 |
+----+---------+--------------+--------------+--------------+------------+----------+
或如果我要插入前2个user_id = 2的注释,结果必须为-
+----+---------+--------------+--------------+--------------+------------+----------+
| 3 | 2 | RfYg3u59Ytup | SQL | sql | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | mysql | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | select | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | ASC | 2020-08-06 | 12:50:51 |
| 3 | 2 | RfYg3u59Ytup | SQL | DESC | 2020-08-06 | 12:50:51 |
| 1 | 2 | nVf0It70bnjQ | computer | clean | 2020-08-08 | 11:18:17 |
| 1 | 2 | nVf0It70bnjQ | computer | computer fan | 2020-08-08 | 11:18:17 |
+----+---------+--------------+--------------+--------------+------------+----------+
在这里帮助!
解决方法
您可以使用子查询选择最新的注释,然后选择JOIN
:
select N.id,N.user_id,N.note_id,S.subject_name,T.tag_name,N.date,N.time
from (select N.*
from notes N
where N.user_id = 2
order by N.date desc,N.time DESC
limit 3
) N join
notes_subject S
on N.user_id = S.user_id and
N.note_id = S.note_id join
notes_tag T
on N.user_id = T.user_id and
N.note_id = T.note_id
order by N.date DESC,N.time DESC;
我猜想您需要最新的笔记,即使其他表格不匹配也是如此。为此,请使用left join
:
select N.id,N.time DESC
limit 3
) N left join
notes_subject S
on N.user_id = S.user_id and
N.note_id = S.note_id left join
notes_tag T
on N.user_id = T.user_id and
N.note_id = T.note_id
order by N.date desc,N.time desc;
如果只想使两个表匹配,请使用dense_rank()
:
select N.*
from (select N.id,N.time,dense_rank() over (order by N.date desc,N.time desc,n.id) as seqnum
from notes N join
notes_subject S
on N.user_id = S.user_id and
N.note_id = S.note_id join
notes_tag T
on N.user_id = T.user_id and
N.note_id = T.note_id
) N
where seqnum <= 3
order by N.date desc,N.time desc;
,
另一种方法是将标签按note_id和GROUP_CONCAT分组,您可以稍后在前端使用JavaScript将其分类(假设您在前端使用JS)。您也可以配置分隔符。
要反转,您可以将ORDER BY从DESC翻转到ASC,并在TOP之后放置任意数字。
(
df
.assign(Date=lambda x: pd.to_datetime(x['Date'],dayfirst=True)
.set_index('Date')
.asfreq('D')
.resample('W')
.agg({
'High': 'max','Low': 'min','Open': lambda x: x.dropna().iloc[0],'Close': lambda x: x.dropna().iloc[-1]
})
)
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