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我有一个带有假日巴士旅行时间的 SQL 表。该表结合了去程和回程(选项0是去,选项1是返回),它还为用户提供了多种选择(选项2计算选项:3个去程和2个回程)。每次行程可能跨越多行,因为该表列出了停靠点之间的所有内容:

  • 去:

    • 选项 0:伦敦 -> 阿姆斯特丹 -> 柏林
    • 选项 1:伦敦 -> 苏黎世 -> 柏林
    • 选项 2:伦敦 -> 巴黎 -> 罗马 -> 柏林

  • 返回

    • 选项 0:柏林 -> 阿姆斯特丹 -> 伦敦
    • 选项 1:柏林 -> 苏黎世 -> 伦敦

选项列显示旅行是去还是返回。Option2 列将选项匹配在一起。Option3 列显示每个选项的正确顺序。

+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+
| ID | DepartureDateTime   | ArrivalDateTime     | Departure        | Arrival        | Option       | Option2       | Option3       |
+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+
| 72 | 2013-10-01 13:45:00 | 2013-10-02 16:40:00 | London           | Amsterdam      |            0 |             0 |             0 |
| 73 | 2013-10-02 17:35:00 | 2013-10-03 19:05:00 | Amsterdam        | Berlin         |            0 |             0 |             1 |
| 74 | 2013-10-01 17:00:00 | 2013-10-02 19:50:00 | London           | Zurich         |            0 |             1 |             0 |
| 75 | 2013-10-02 21:10:00 | 2013-10-03 22:40:00 | Zurich           | Berlin         |            0 |             1 |             1 |
| 76 | 2013-10-01 06:00:00 | 2013-10-02 08:40:00 | London           | Paris          |            0 |             2 |             0 |
| 77 | 2013-10-02 12:30:00 | 2013-10-03 14:05:00 | Paris            | Rome           |            0 |             2 |             1 |
| 78 | 2013-10-03 12:30:00 | 2013-10-04 14:05:00 | Rome             | Berlin         |            0 |             2 |             2 |
| 79 | 2013-10-10 14:50:00 | 2013-10-11 16:30:00 | Berlin           | Amsterdam      |            1 |             0 |             0 |
| 80 | 2013-10-11 17:05:00 | 2013-10-12 17:50:00 | Amsterdam        | London         |            1 |             0 |             1 |
| 81 | 2013-10-10 06:45:00 | 2013-10-11 08:25:00 | Berlin           | Zurich         |            1 |             1 |             0 |
| 82 | 2013-10-11 15:20:00 | 2013-10-12 16:05:00 | Zurich           | London         |            1 |             1 |             1 |
+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+

我想要两个不同的查询:

1)根据两件事对表格进行排序:外出:旅行的初始出发(离开伦敦),不弄乱后续站点的顺序。湾。返程:最后一次返程(进入伦敦)的到达,再次不打乱后续站点的顺序。

2) 仅返回符合特定日期/时间范围的行程:初始出发(离开伦敦)和最终返回(进入伦敦)。例如,显示早上出发和晚上到达的行程。

如果您需要更多详细信息或我遗漏了什么,请告诉我。

提前谢谢你的帮助。

编辑 1

请阅读我的整个帖子。这里重要的是行是相互关联的。例如,下面的两行必须“一起”,我正在处理的应用程序取决于正确的顺序:

+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+
| ID | DepartureDateTime   | ArrivalDateTime     | Departure        | Arrival        | Option       | Option2       | Option3       |
+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+
| 72 | 2013-10-01 13:45:00 | 2013-10-02 16:40:00 | London           | Amsterdam      |            0 |             0 |             0 |
| 73 | 2013-10-02 17:35:00 | 2013-10-03 19:05:00 | Amsterdam        | Berlin         |            0 |             0 |             1 |

这意味着,无法按出发日期排序,因为行会混淆。

因此,如果我想根据出发时间对上述行程进行排序,首先会出现伦敦经巴黎到柏林的行程,因为它在早上 6 点出发:

+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+
| ID | DepartureDateTime   | ArrivalDateTime     | Departure        | Arrival        | Option       | Option2       | Option3       |
+----+---------------------+---------------------+------------------+----------------+--------------+---------------+---------------+
| 76 | 2013-10-01 06:00:00 | 2013-10-02 08:40:00 | London           | Paris          |            0 |             2 |             0 |
| 77 | 2013-10-02 12:30:00 | 2013-10-03 14:05:00 | Paris            | Rome           |            0 |             2 |             1 |
| 78 | 2013-10-03 12:30:00 | 2013-10-04 14:05:00 | Rome             | Berlin         |            0 |             2 |             2 |
| 72 | 2013-10-01 13:45:00 | 2013-10-02 16:40:00 | London           | Amsterdam      |            0 |             0 |             0 |
| 73 | 2013-10-02 17:35:00 | 2013-10-03 19:05:00 | Amsterdam        | Berlin         |            0 |             0 |             1 |

上面的部分表格显示了排序结果的样子。基本上,排序算法应该考虑具有初始出发的行并忽略排序中的其他行,但最终结果应该具有在初始行程“下方”的行程中的相关停靠点。

这听起来很可怕还是什么?

任何帮助,将不胜感激。

编辑 2

根据要求,我使用的是 MySQL 5.1。

编辑 3

成员@fancyPants 已经解决了第一个问题。考虑到从 Option=0 到 Option=1 的变化,我做了一些修改:

SELECT 
`ID`, `DepartureDateTime`, `ArrivalDateTime`, `Departure`, `Arrival`, `Option`, `Option2`, `Option3`
FROM (
SELECT 
t.*,
CASE WHEN Option != @prev OR Option2 != @prev2 THEN @min_date := DepartureDateTime ELSE @min_date END as min_date,
CASE WHEN Option2 = @prev2 THEN @counter := @counter + 1 ELSE @counter := 0 END as counter,
@prev := Option, @prev2 := Option2
FROM Table1 t 
, (SELECT @min_date:=(SELECT DepartureDateTime FROM Table1 ORDER BY `Option`, Option2, Option3 LIMIT 1), @counter:=0, @prev:=NULL, @prev2:=NULL) vars
order by `Option`, Option2, Option3
) sq
ORDER BY min_date, counter

谢谢fancyPants,很棒的工作!

不幸的是,我对第二个查询不够清楚。我需要的是建立在第一个查询之上(从而对结果进行排序),然后根据日期时间范围限制结果。

4

2 回答 2

2

这不是那么容易,这是我想出的(假设 MySQL):

根据两件事对表格进行排序:外出:旅行的初始出发(离开伦敦),不弄乱后续站点的顺序:

SELECT 
`ID`, `DepartureDateTime`, `ArrivalDateTime`, `Departure`, `Arrival`, `Option`, `Option2`, `Option3`
FROM (
SELECT 
t.*,
CASE WHEN Option2 != @prev THEN @min_date := DepartureDateTime ELSE @min_date END as min_date,
CASE WHEN Option2 = @prev THEN @counter := @counter + 1 ELSE @counter := 0 END as counter,
@prev := Option2
FROM Table1 t 
, (SELECT @min_date:=(SELECT DepartureDateTime FROM Table1 ORDER BY `Option`, Option2, Option3 LIMIT 1), @counter:=0, @prev:=NULL) vars
order by `Option`, Option2, Option3
) sq
ORDER BY min_date, counter

返回:

SELECT 
`ID`, `DepartureDateTime`, `ArrivalDateTime`, `Departure`, `Arrival`, `Option`, `Option2`, `Option3`
FROM (
SELECT 
t.*,
CASE WHEN Option2 != @prev THEN @min_date := ArrivalDateTime ELSE @min_date END as min_date,
CASE WHEN Option2 = @prev THEN @counter := @counter + 1 ELSE @counter := 0 END as counter,
@prev := Option2
FROM Table1 t 
, (SELECT @min_date:=(SELECT ArrivalDateTime FROM Table1 ORDER BY `Option`, Option2, Option3 LIMIT 1), @counter:=0, @prev:=NULL) vars
order by `Option`, Option2, Option3
) sq
ORDER BY min_date, counter

对于你的第二个问题,如果我理解正确,你想要这样的东西:

SELECT 
t1.DepartureDateTime AS t1dep,
t2.ArrivalDateTime AS t2arr
, t1.*, t2.*
FROM Table1 t1
INNER JOIN Table1 t2 ON t1.Option = t2.Option AND t1.Option2 = t2.Option2 
WHERE t1.Option3 = (SELECT MIN(Option3) FROM Table1 t3 WHERE t1.Option = t3.Option AND t1.Option2 = t3.Option2)
AND t2.Option3 = (SELECT MAX(Option3) FROM Table1 t3 WHERE t1.Option = t3.Option AND t1.Option2 = t3.Option2)

AND t1.DepartureDateTime BETWEEN '2013-10-01 05:00:00' AND '2013-10-01 07:00:00'
AND t2.ArrivalDateTime BETWEEN '2013-10-04 14:00:00' AND '2013-10-04 15:00:00'

此查询返回最小的出发日期时间,即行程第一站的出发日期和一条线路中最后一站的到达日期。然后你可以简单地调整 where 子句。

  • 另一个用于在线查看结果的sqlfiddle

编辑:你在寻找这样的东西吗?

SELECT 
l.* FROM
(
SELECT 
`ID`, `DepartureDateTime`, `ArrivalDateTime`, `Departure`, `Arrival`, `Option`, `Option2`, `Option3`
,min_date, counter 
FROM (
SELECT 
t.*,
CASE WHEN `Option` != @prev OR Option2 != @prev2 THEN @min_date := DepartureDateTime ELSE @min_date END as min_date,
CASE WHEN Option2 = @prev2 THEN @counter := @counter + 1 ELSE @counter := 0 END as counter,
@prev := `Option`, @prev2 := Option2
FROM Table1 t 
, (SELECT @min_date:=(SELECT DepartureDateTime FROM Table1 ORDER BY `Option`, Option2, Option3 LIMIT 1), @counter:=0, @prev:=NULL, @prev2:=NULL) vars
order by `Option`, Option2, Option3
) sq
) l 
INNER JOIN
(SELECT `Option`, Option2 FROM Table1 WHERE DepartureDateTime BETWEEN '2013-10-02 11:30:00' AND '2013-10-02 13:00:00'
                          OR ArrivalDateTime BETWEEN '2013-10-03 14:00:00' AND '2013-10-03 14:15:00'
) r
ON l.`Option` = r.`Option` AND l.Option2 = r.Option2
ORDER BY min_date, counter
于 2013-07-30T10:09:53.283 回答
0

对于第一个问题 - 进行查询

select * from time_table
where option = 0
order by DepartureDateTime, Option2, Option3;

第一个问题 - 返回查询

select * from time_table
where option = 1
order by ArrivalDateTime, Option2, Option3;

此结果基于了解您的要求。它不是很清楚。

请为第二个问题添加一些细节。无法理解这个问题。用数据举例。

于 2013-07-29T12:03:52.527 回答