小编典典

字符串拆分为列而不是行

sql

样本数据:

id  email_address                                   email_new
-------------------------------------------------------------------------------
1   a.b@wellsfargoadvisors.com                      a.b@wellsfargoadvisors.com
2   c.b@RaymondJames.com; abc@RaymondJames.com      c.b@RaymondJames.com
2   c.b@RaymondJames.com; abc@RaymondJames.com      abc@RaymondJames.com
3   a.b@boa.com; bbc@boa.com; hh@bankofamerica.com  a.b@boa.com
3   a.b@boa.com; bbc@boa.com; hh@bankofamerica.com  bbc@boa.com
3   a.b@boa.com; bbc@boa.com; hh@bankofamerica.com  hh@bankofamerica.com

我使用以下查询将’ ;‘’分隔的字符串分成几行:

SELECT
    id, email_address, email_new
FROM 
    (SELECT 
         id, email_address, 
         Split.a.value('.', 'NVARCHAR(max)') AS email_new 
     FROM
         (SELECT 
              id, email_address, CAST ('<M>' + REPLACE(email_address, '; ', '</M><M>') + '</M>' AS XML) email_new
          FROM 
              table) AS A 
     CROSS APPLY 
         email_new.nodes ('/M') AS Split(a)) x
GROUP BY
    id, email_address, email_new

我的查询存在问题,我不想为每个拆分的电子邮件地址创建新行-我想为其添加新列。

id  email_1                      email_2                email_3
------------------------------------------------------------------------------
1   a.b@wellsfargoadvisors.com   null                   null
2   c.b@RaymondJames.com         abc@RaymondJames.com   null
3   a.b@boa.com                  bbc@boa.com            h@bankofamerica.com

email_address列中最多有3个单独的电子邮件地址。有什么建议?如果它的大小超过3,最好是答案可以占n列。


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2021-03-08

共1个答案

小编典典

测试数据

Declare @t table (Id INT, email_address VARCHAR(1000) , email_new VARCHAR(100));
INSERT INTO @t VALUES
(1   ,'a.b@wellsfargoadvisors.com'                      , 'a.b@wellsfargoadvisors.com'),
(2   ,'c.b@RaymondJames.com; abc@RaymondJames.com'      , 'c.b@RaymondJames.com'      ),
(2   ,'c.b@RaymondJames.com; abc@RaymondJames.com'      , 'abc@RaymondJames.com'      ),
(3   ,'a.b@boa.com; bbc@boa.com; hh@bankofamerica.com'  , 'a.b@boa.com'               ),
(3   ,'a.b@boa.com; bbc@boa.com; hh@bankofamerica.com'  , 'bbc@boa.com'               ),
(3   ,'a.b@boa.com; bbc@boa.com; hh@bankofamerica.com'  , 'hh@bankofamerica.com'      );

询问

WITH Emails (ID , XmlEmail, email_new)
AS
(
    SELECT Id
          , CONVERT(XML,'<Emails><email>'  
                    + REPLACE(email_address,';', '</email><email>') 
                    + '</email></Emails>') AS XmlEmail
          , email_new
      FROM @t
)

 SELECT   ID
        , XmlEmail.value('/Emails[1]/email[1]','varchar(100)') AS Email1
        , XmlEmail.value('/Emails[1]/email[2]','varchar(100)') AS Email2
        , XmlEmail.value('/Emails[1]/email[3]','varchar(100)') AS Email3
        , XmlEmail.value('/Emails[1]/email[4]','varchar(100)') AS Email4
        , XmlEmail.value('/Emails[1]/email[5]','varchar(100)') AS Email5
        , email_new
FROM Emails

结果

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2021-03-08