Question

我正在使用MS SQL 2008 R2，有三个具有以下架构的表：

表1：包含每个工作人员的工作班次信息

CREATE TABLE workshift (
[ws_id] [bigint] NOT NULL,
[start_date] [datetime] NOT NULL,
[end_date] [datetime] NOT NULL,
[worker_id] [bigint] NOT NULL
)

INSERT INTO workshift VALUES (1, '2012-08-20 08:30:00', '2012-08-20 14:30:00', 1)
INSERT INTO workshift VALUES (2, '2012-08-20 14:30:00', '2012-08-20 22:30:00', 2)

表2：包含货币面额

CREATE TABLE currency_denom (
[cd_id] [decimal](7, 2) NOT NULL,
[name] [nchar](100) NOT NULL
)

INSERT INTO currency_denom VALUES (1, '100.00')
INSERT INTO currency_denom VALUES (2, '50.00')
INSERT INTO currency_denom VALUES (3, '20.00')
INSERT INTO currency_denom VALUES (4, '10.00')
INSERT INTO currency_denom VALUES (5, '5.00')
INSERT INTO currency_denom VALUES (6, '1.00')

表3：包含工人在每个工作班次中收到的每种面额的数量

CREATE TABLE currency_by_workshift (
[cd_id] [decimal](7, 2) NOT NULL,
[ws_id] [bigint] NOT NULL,
[qty] [int] NOT NULL
)

INSERT INTO currency_by_workshift VALUES (1, 1, 1)
INSERT INTO currency_by_workshift VALUES (2, 1, 2)
INSERT INTO currency_by_workshift VALUES (3, 1, 2)
INSERT INTO currency_by_workshift VALUES (2, 2, 3)
INSERT INTO currency_by_workshift VALUES (4, 2, 4)
INSERT INTO currency_by_workshift VALUES (5, 2, 2)

我需要在列而不是行中获取currency_by_workshift值，以及工作班次值，即：

workshift |     workshift       |     workshift       | 100.00 | 50.00 | 20.00 | 10.00 | 5.00 | 1.00 
  ws_id   |     start_date      |     end_date        |        |       |       |       |      | 

    1     | 2012-08-20 08:30:00 | 2012-08-20 14:30:00 |    1   |   2   |   2   |   0   |   0  |   0
    2     | 2012-08-20 14:30:00 | 2012-08-20 22:30:00 |    0   |   2   |   0   |   4   |   2  |   0

我无法使用案例来计算每种货币面额的数量，因为它们是可配置的，如果添加新面额，则应修改查询。如果使用PIVOT功能也一样，或者我错了？

如何以这种方式获取信息？

Answer 1

您要做的事情称为PIVOT。有两种方法可以使用静态轴或动态轴。

Static Pivot - 您将硬编码行的值以转换为列（请参阅SQL Fiddle with Demo）：

select ws_id,
  start_date,
  end_date,
  IsNull([100.00], 0) [100.00],
  IsNull([50.00], 0) [50.00],
  IsNull([20.00], 0) [20.00],
  IsNull([10.00], 0) [10.00],
  IsNull([5.00], 0) [5.00],
  IsNull([1.00], 0) [1.00]
from 
(
  select ws.ws_id,
    ws.start_date,
    ws.end_date,
    cd.name,
    cbw.qty
  from workshift ws
  left join currency_by_workshift cbw
    on ws.ws_id = cbw.ws_id
  left join currency_denom cd
    on cbw.cd_id = cd.cd_id
) x
pivot
(
  sum(qty)
  for name in ([100.00], [50.00], [20.00], [10.00], [5.00], [1.00])
) p

动态数据透视是在运行时确定列的位置（请参阅SQL Fiddle with Demo）：

DECLARE @cols AS NVARCHAR(MAX),
    @query  AS NVARCHAR(MAX),
    @colsPivot AS NVARCHAR(MAX)

select @colsPivot = 
  STUFF((SELECT ', IsNull(' + QUOTENAME(rtrim(name)) +', 0) as ['+ rtrim(name)+']' 
                    from currency_denom
                   GROUP BY name
                   ORDER BY cast(name as decimal(10, 2)) desc
            FOR XML PATH(''), TYPE
            ).value('.', 'NVARCHAR(MAX)') 
        ,1,1,'')

select @cols = STUFF((SELECT distinct ', ' + QUOTENAME(name)
                    from currency_denom
            FOR XML PATH(''), TYPE
            ).value('.', 'NVARCHAR(MAX)') 
        ,1,1,'')


set @query 
      = 'SELECT ws_id, start_date, end_date,' + @colsPivot + ' from 
         (
            select ws.ws_id,
              ws.start_date,
              ws.end_date,
              cd.name,
              cbw.qty
            from workshift ws
            left join currency_by_workshift cbw
              on ws.ws_id = cbw.ws_id
            left join currency_denom cd
              on cbw.cd_id = cd.cd_id
         ) x
         pivot 
         (
            sum(qty)
            for name in (' + @cols + ')
         ) p '

execute(@query)

两个版本都会产生相同的结果。

Answer 2

@bluefeet利用内置的PIVOT功能提供了一个非常好的答案。但是，我经常发现PIVOT和UNPIVOT命名法令人困惑，我还没有遇到使用标准聚合无法实现相同结果的情况：

select w.ws_id, w.start_date, w.end_date,
    [100.00] = isnull(sum(case when c.name='100.00' then cw.qty else null end), 0),
    [50.00]  = isnull(sum(case when c.name='50.00'  then cw.qty else null end), 0),
    [20.00]  = isnull(sum(case when c.name='20.00'  then cw.qty else null end), 0),
    [10.00]  = isnull(sum(case when c.name='10.00'  then cw.qty else null end), 0),
    [5.00]   = isnull(sum(case when c.name='5.00'   then cw.qty else null end), 0),
    [1.00]   = isnull(sum(case when c.name='1.00'   then cw.qty else null end), 0)
from workshift w
    join currency_by_workshift cw on w.ws_id=cw.ws_id
    join currency_denom c on cw.cd_id=c.cd_id
group by w.ws_id, w.start_date, w.end_date

如果要进行动态数据透视，只需构建一次数据透视表字符串：

DECLARE @cols AS NVARCHAR(MAX),
    @query  AS NVARCHAR(MAX)

select @cols = 
stuff(( select replace(',[@name] = isnull(sum(case when c.name=''@name'' then cw.qty else null end), 0)'
                       , '@name', rtrim(name))
        from currency_denom
        order by cd_id
        for xml path(''), type
    ).value('.', 'nvarchar(max)')
    ,1,1,'')

select @query = '
select w.ws_id, w.start_date, w.end_date, '+@cols+'
from workshift w
    join currency_by_workshift cw on w.ws_id=cw.ws_id
    join currency_denom c on cw.cd_id=c.cd_id
group by w.ws_id, w.start_date, w.end_date
'

execute(@query)

获取ROWS作为列（SQL Server动态PIVOT查询）

2 个答案: