比如有一个表,我们需要些一个语句像SELECT OtherID, SplitData WHERE SomeID = 'abcdef-.......' , 然后就能返回分割成单独的行。
原表:
| SomeID | OtherID | Data
+----------------+-------------+-------------------
| abcdef-..... | cdef123-... | 18,20,22
| abcdef-..... | 4554a24-... | 17,19
| 987654-..... | 12324a2-... | 13,19,20
预期结果:
| OtherID | SplitData
+-------------+-------------------
| cdef123-... | 18
| cdef123-... | 20
| cdef123-... | 22
| 4554a24-... | 17
| 4554a24-... | 19
在 SQL Server 2016中引入了分割字符串函数STRING_SPLIT(详细参考MSDN),可以方便的实现。
select OtherID, SplitData
from yourtable
cross apply STRING_SPLIT (Data, ',') cs
在SQL Server 2016之前,必须添加一个自定义函数,具体有两种实现方式.
1. XML解析法 -- 比较容易,适用于字符串能够转换为XML(不含有特殊字符也可以将特殊字符替换)
CREATE FUNCTION [dbo].[SplitString]
(
@List NVARCHAR(MAX),
@Delimiter NVARCHAR(255)
)
RETURNS TABLE
WITH SCHEMABINDING
AS
RETURN
(
SELECT Item = y.i.value('(./text())[1]', 'nvarchar(4000)')
FROM
(
SELECT x = CONVERT(XML, '<i>'
+ REPLACE(@List, @Delimiter, '</i><i>')
+ '</i>').query('.')
) AS a CROSS APPLY x.nodes('i') AS y(i)
);
2. 递归法
create function [dbo].[splitString](@input Varchar(max), @Splitter Varchar(99))
returns table as
Return
with tmp (DataItem, List , First) as
(
select @input ,@input, 1 --first item ignored, set to get the type right
union all
select LEFT(List, CHARINDEX(@Splitter,List+@Splitter)-1),
STUFF(List, 1, CHARINDEX(@Splitter,List+@Splitter), ''),
0
from tmp
where List <> ''
) select DataItem from tmp where first=0
使用方法:
select OtherID, SplitData
from yourtable
cross apply dbo.splitString (Data, ',') cs