1

我有一个图像数据库,图像行使用查看它们的最后一个 IP 进行更新,并使用当前时间戳更新 date_updated 列。我试图查看最后 5 张图像,但只查看每个不同的 ip 地址,我不希望一个人淹没最后查看的结果。

小提琴::http : //sqlfiddle.com/#!2/d5b05/16

期望的结果: 从该数据集中进行选择时的期望结果:

SELECT * FROM `image` ORDER BY `date_updated` DESC;

|   IMAGE | WIDTH | HEIGHT | DATE_ADDED | DATE_UPDATED | UPDATED_BY_IP |
|---------|-------|--------|------------|--------------|---------------|
| 1x1XGY4 |  1920 |   1080 | 1417546414 |   1421712314 |   192.168.0.7 |
| 1x1XGY3 |  1920 |   1080 | 1417546413 |   1421712313 |   192.168.0.7 |
| 1x1XGY2 |  1920 |   1080 | 1417546412 |   1421712312 |  192.168.0.10 |
| 1x1XGY1 |  1920 |   1080 | 1417546411 |   1421712311 |  192.168.0.10 |
| 1oApS54 |  1920 |   1080 | 1417138874 |   1421685474 |   192.168.0.2 |
| 1oApS53 |  1920 |   1080 | 1417138873 |   1421685473 |   192.168.0.2 |
| 1oApS52 |  1920 |   1080 | 1417138872 |   1421685472 |  192.168.0.10 |
| 1oApS51 |  1920 |   1080 | 1417138871 |   1421685471 |  192.168.0.10 |
| 1ydhtQ4 |  1920 |   1080 | 1421460434 |   1421685154 |   192.168.0.6 |
| 1ydhtQ3 |  1920 |   1080 | 1421460433 |   1421685153 |   192.168.0.7 |
| 1ydhtQ2 |  1920 |   1080 | 1421460432 |   1421685152 |  192.168.0.10 |
| 1ydhtQ1 |  1920 |   1080 | 1421460431 |   1421685151 |   192.168.0.5 |
| 1WyQib4 |  1920 |   1080 | 1420869354 |   1421634384 |   192.168.0.8 |
| 1WyQib3 |  1920 |   1080 | 1420869353 |   1421634383 |   192.168.0.2 |
| 1WyQib2 |  1920 |   1080 | 1420869352 |   1421634382 |   192.168.0.3 |
| 1WyQib1 |  1920 |   1080 | 1420869351 |   1421634381 |  192.168.0.10 |
| 1izDqg4 |  1920 |   1080 | 1416948144 |   1421608564 |   192.168.0.2 |
| 1izDqg3 |  1920 |   1080 | 1416948143 |   1421608563 |   192.168.0.2 |
| 1izDqg2 |  1920 |   1080 | 1416948142 |   1421608562 |   192.168.0.5 |
| 1izDqg1 |  1920 |   1080 | 1416948141 |   1421608561 |  192.168.0.10 |

使用伪选择语句:

SELECT * FROM image WHERE updated_by_ip IS DISTINCT ORDER BY date_updated DESC LIMIT 5

|   IMAGE | WIDTH | HEIGHT | DATE_ADDED | DATE_UPDATED | UPDATED_BY_IP |
|---------|-------|--------|------------|--------------|---------------|
| 1x1XGY4 |  1920 |   1080 | 1417546414 |   1421712314 |   192.168.0.7 |
| 1x1XGY2 |  1920 |   1080 | 1417546412 |   1421712312 |  192.168.0.10 |
| 1oApS54 |  1920 |   1080 | 1417138874 |   1421685474 |   192.168.0.2 |
| 1ydhtQ4 |  1920 |   1080 | 1421460434 |   1421685154 |   192.168.0.6 |
| 1ydhtQ1 |  1920 |   1080 | 1421460431 |   1421685151 |   192.168.0.5 |

壁橱结果:

我能想到的最好的是:

SELECT DISTINCT updated_by_ip, MAX(date_updated) AS date_updated 
FROM `image` GROUP BY updated_by_ip ORDER BY date_updated DESC LIMIT 5;

这给了我:

| UPDATED_BY_IP | DATE_UPDATED |
|---------------|--------------|
|   192.168.0.7 |   1421712314 |
|  192.168.0.10 |   1421712312 |
|   192.168.0.2 |   1421685474 |
|   192.168.0.6 |   1421685154 |
|   192.168.0.5 |   1421685151 |

其中我可以做一个

while (SELECT DISTINCT updated_by_ip ...)
{
    $result_rows[] = SELECT * FROM image 
                    WHERE updated_by_ip = query[updated_by_ip] 
                    AND date_updated = query[date_updated] LIMIT 1
}

但是,希望找到一种方法来做到这一点,而不必进行大量的后期处理和额外的查询,此外,通过 updated_by_ip 和 date_updated 进行选择似乎也不是很稳定。

谢谢你。

4

3 回答 3

0

这不是最漂亮的查询(根据 SQL 标准是不正确的),但它在 MySQL 中有效:

SELECT * FROM `image`
GROUP BY updated_by_ip
ORDER BY `date_updated` DESC

在 Postgres 中你会使用DISTINCT ON(...),但 MySQL 不支持,所以只按你想要不同的列分组是最简单的解决方法。另一种方法是使用子查询,但执行起来不太理想。

于 2015-01-20T03:27:22.257 回答
0

要在没有 MySQL GROUP BY 扩展的情况下执行此操作,您可以尝试以下操作:

首先,使用此子查询从五个不同的 IP 号码中获取最近的更新时间。

     SELECT updated_by_ip, MAX(date_updated) as date_updated
       FROM image  
      GROUP BY updated_by_ip
      ORDER BY 2 DESC
      LIMIT 5

如果您的表很大,则索引(updated_by_ip, date_updated)将有助于提高性能。

然后,将其加入到该子查询的主查询中以获得结果。

SELECT i.*
  FROM image i
  JOIN (
         SELECT updated_by_ip, MAX(date_updated) as date_updated
           FROM image  
          GROUP BY updated_by_ip
          ORDER BY 2 DESC
          LIMIT 5
        ) m USING(updated_by_ip, date_updated)
ORDER BY i.date_updated DESC

看到这个:http ://sqlfiddle.com/#!2/d5b05/21/0

于 2015-01-20T03:36:00.927 回答
0

一种方法是使用变量来枚举行:

SELECT i.*
FROM (SELECT i.*,
             (@rn := if(@uip = updated_by_ip, @rn + 1,
                        if(@uip := updated_by_ip, 1, 1)
                       )
             )
      FROM image i CROSS JOIN
           (SELECT @uip := '', @rn := 0) vars
      WHERE updated_by_ip 
      ORDER BY updated_by_ip, date_updated DESC
     ) i
WHERE seqnum <= 5;
于 2015-01-20T03:30:51.530 回答