微信公众号搜"智元新知"关注
微信扫一扫可直接关注哦!

sql – XML Oracle:多个子节点提取

我有一个xml代码
<begin>
    <entry>
        <lastname>gordon</lastname>
        <NumberList>
            <number>100</number>
            <codelist>
                 <code>213</code>
                 <code>214</code>
            <codelist>
            <login>
                 <user>user1</user>
                 <user>user2</user>
            </login>
        <NumberList>
        <address>
            <addresslist>Jl. jalan pelan-pelan ke Bekasi,Indonesia</addresslist>
        </address>
    </entry>
    <entry>
        <lastname>mark</lastname>
        <address>
            <addresslist>Jl. jalan cepet-cepet ke Jakarta,Indonesia</addresslist>
        </address>
    </entry>
</begin>

我的代码

FOR r IN (SELECT VALUE(p) col_val,EXTRACT(VALUE(P),'/entry/codelist') AS code,'/entry/login') AS login
           FROM TABLE(XMLSequence(Extract(x,'/begin/entry'))) p)
LOOP
   IF r.col_val.existsnode('/entry/lastname/text()') > 0 
   THEN
      vc_lastname := r.col_val.extract('/sdnEntry/lastname/text()').getstringval();
   END IF;

   IF r.col_val.existsnode('/entry/address/addresslist/text()') > 0 
   THEN
    vc_address := r.col_val.extract('/sdnEntry/address/addresslist/text()').getstringval();
   END IF;

   IF r.col_val.existsnode('/entry/codelist/id/code/text()') > 0 AND r.col_val.existsnode('/entry/login/user/text()') > 0 
   THEN
      FOR R1 IN (SELECT EXTRACTVALUE(VALUE(T1),'/codelist/code/text()') AS code
                   FROM TABLE(XMLSEQUENCE(EXTRACT(R.code,'/codelist'))) T1)
      LOOP
         DBMS_OUTPUT.PUT_LINE(vc_uid||' - '||vc_firstName||' - '||R1.code||' - '||R2.address);
      END LOOP;

      FOR R2 IN (SELECT
                        EXTRACTVALUE(VALUE(T1),'/login/user/text()') AS user
                   FROM TABLE(XMLSEQUENCE(EXTRACT(R.address,'login/'))) T1)
      LOOP
         DBMS_OUTPUT.PUT_LINE(vc_uid||' - '||vc_firstName||' - '||R2.user||' - '||R2.address);
      END LOOP;
  ELSE
        DBMS_OUTPUT.PUT_LINE(vc_uid||' - '||vc_firstName);
  END IF;

我的问题:如何循环子节点,以便数据将如下所示:

LastName | Number | code    | user  |   address
gordon   | 100    | 213     | user1 |Jl. jalan pelan-pelan ke Bekasi,Indonesia
gordon   | 100    | 213     | user2 |Jl. jalan pelan-pelan ke Bekasi,Indonesia
gordon   | 100    | 214     | user1 |Jl. jalan pelan-pelan ke Bekasi,Indonesia
gordon   | 100    | 214     | user2 |Jl. jalan pelan-pelan ke Bekasi,Indonesia
mark     | Null   | null    | null  |Jl. jalan cepet-cepet ke Jakarta,Indonesia

任何帮助将是欣赏.

解决方法

您可以使用XMLTable()函数获得所需的结果:
select q.Lastname,q.Numberid,s.codeid,w.LoginId,q.address
  from t1 t
  left join xmltable('/begin/entry'
                      passing t.xml_col 
                      columns LastName   varchar2(21)  path 'lastname',NumberId   number        path 'NumberList/number',Address    varchar2(201) path 'address/addresslist',CodeList   XmlType       Path 'NumberList/codelist/code',Logins     XmlType       Path 'NumberList/login/user'
                      ) q
    on (1=1) 
  left join xmltable('/code'
                      passing q.CodeList
                      columns CodeId number path '.') s
    on (1=1)
  left join   xmltable('/user'
                        passing q.Logins
                        columns LoginId varchar2(11) path '.') w
    on (1=1)

结果:SQLFiddle Demo

Lastname Numberid Codeid Loginid Address 
---------------------------------------------------------------------------
gordon   100      213    user1   Jl. jalan pelan-pelan ke Bekasi,Indonesia 
gordon   100      213    user2   Jl. jalan pelan-pelan ke Bekasi,Indonesia 
gordon   100      214    user1   Jl. jalan pelan-pelan ke Bekasi,Indonesia 
gordon   100      214    user2   Jl. jalan pelan-pelan ke Bekasi,Indonesia 
mark     null     null   null    Jl. jalan cepet-cepet ke Jakarta,Indonesia

Find out more关于XMLTable()函数.

注意:使用11.2.0.2之前的Oracle版本,当cursor_sharing参数设置为FORCE或SIMILAR(从11.2开始不建议使用)时,您可能会遇到某些类型的XML查询的ORA-1780错误(错误8545377).将cursor_sharing参数设置为EXACT(认值),将解决问题.

原文地址:https://www.jb51.cc/mssql/77081.html

版权声明:本文内容由互联网用户自发贡献,该文观点与技术仅代表作者本人。本站仅提供信息存储空间服务,不拥有所有权,不承担相关法律责任。如发现本站有涉嫌侵权/违法违规的内容, 请发送邮件至 dio@foxmail.com 举报,一经查实,本站将立刻删除。

相关推荐