Oracle XMLTYPE 提取节点深度级别数
Oracle XMLTYPE extract node depth level number
SELECT * FROM v$version;
*Oracle Database 12c Enterprise Edition Release 12.1.0.2.0 - 64bit Production
PL/SQL Release 12.1.0.2.0 - Production
"CORE 12.1.0.2.0 Production"
TNS for Linux: Version 12.1.0.2.0 - Production
NLSRTL Version 12.1.0.2.0 - Production*
这是一个扩展请求另一个
我有 XML 的示例查询,如下所示:
with t(xml) as
(
select xmltype(
'<SSO_XML
xmlns:xsd="http://www.w3.org/2001/XMLSchema"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
TimeStamp="2020-08-05T21:57:23Z"
Target="Production"
Version="1.0"
TransactionIdentifier="PLAN_A"
SequenceNmbr="123456"
xmlns="http://www.w3.org/2001/XMLSchema">
<PlanCode PlanCodeCode="CHOICE">
<S_DAYS FARE="10" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
<S_DAYS FARE="20" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
</PlanCode>
</SSO_XML>')
from dual
)
select h.PlanCodeCode
,b.Original
,b.code
,b.s_code
,node_level
from t
cross join
xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'/SSO_XML'
passing t.xml
columns PlanCodeCode varchar2(100) path './PlanCode/@PlanCodeCode',
attributes xmltype path './PlanCode'
) h
cross join xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'PlanCode/S_DAYS/STUDENT/DIVISION'
passing h.attributes
columns
ORIGINAL number path '@ORIGINAL',
Code varchar2(100) path '@Code',
S_CODE number path '@S_CODE',
node_level for ordinality
) b;
我正在尝试获取节点深度/级别数。
这里我有 2 S_DAYS 个节点。我想按顺序打印级别编号。
实际结果:
预期结果:
任何帮助将不胜感激。
FOR ORDINALITY returns 只生成一个行号。所以一定要在你要统计的层级上生成。
with t(xml) as
(
select xmltype(
'<SSO_XML
xmlns:xsd="http://www.w3.org/2001/XMLSchema"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
TimeStamp="2020-08-05T21:57:23Z"
Target="Production"
Version="1.0"
TransactionIdentifier="PLAN_A"
SequenceNmbr="123456"
xmlns="http://www.w3.org/2001/XMLSchema">
<PlanCode PlanCodeCode="CHOICE">
<S_DAYS FARE="10" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
<S_DAYS FARE="20" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
</PlanCode>
</SSO_XML>')
from dual
)
select h.PlanCodeCode
,b.Original
,b.code
,b.s_code
,x.node_level
from t
cross join
xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'/SSO_XML'
passing t.xml
columns PlanCodeCode varchar2(100) path './PlanCode/@PlanCodeCode',
attributes xmltype path './PlanCode'
) h
cross join xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'PlanCode/S_DAYS'
passing h.attributes
columns
node_level for ordinality,
attributes xmltype path '/S_DAYS'
) x
cross join xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'S_DAYS/STUDENT/DIVISION'
passing x.attributes
columns
ORIGINAL number path '@ORIGINAL',
Code varchar2(100) path '@Code',
S_CODE number path '@S_CODE'
) b;
SELECT * FROM v$version;
*Oracle Database 12c Enterprise Edition Release 12.1.0.2.0 - 64bit Production
PL/SQL Release 12.1.0.2.0 - Production
"CORE 12.1.0.2.0 Production"
TNS for Linux: Version 12.1.0.2.0 - Production
NLSRTL Version 12.1.0.2.0 - Production*
这是一个扩展请求另一个
我有 XML 的示例查询,如下所示:
with t(xml) as
(
select xmltype(
'<SSO_XML
xmlns:xsd="http://www.w3.org/2001/XMLSchema"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
TimeStamp="2020-08-05T21:57:23Z"
Target="Production"
Version="1.0"
TransactionIdentifier="PLAN_A"
SequenceNmbr="123456"
xmlns="http://www.w3.org/2001/XMLSchema">
<PlanCode PlanCodeCode="CHOICE">
<S_DAYS FARE="10" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
<S_DAYS FARE="20" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
</PlanCode>
</SSO_XML>')
from dual
)
select h.PlanCodeCode
,b.Original
,b.code
,b.s_code
,node_level
from t
cross join
xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'/SSO_XML'
passing t.xml
columns PlanCodeCode varchar2(100) path './PlanCode/@PlanCodeCode',
attributes xmltype path './PlanCode'
) h
cross join xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'PlanCode/S_DAYS/STUDENT/DIVISION'
passing h.attributes
columns
ORIGINAL number path '@ORIGINAL',
Code varchar2(100) path '@Code',
S_CODE number path '@S_CODE',
node_level for ordinality
) b;
我正在尝试获取节点深度/级别数。 这里我有 2 S_DAYS 个节点。我想按顺序打印级别编号。
实际结果:
预期结果:
任何帮助将不胜感激。
FOR ORDINALITY returns 只生成一个行号。所以一定要在你要统计的层级上生成。
with t(xml) as
(
select xmltype(
'<SSO_XML
xmlns:xsd="http://www.w3.org/2001/XMLSchema"
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
TimeStamp="2020-08-05T21:57:23Z"
Target="Production"
Version="1.0"
TransactionIdentifier="PLAN_A"
SequenceNmbr="123456"
xmlns="http://www.w3.org/2001/XMLSchema">
<PlanCode PlanCodeCode="CHOICE">
<S_DAYS FARE="10" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
<S_DAYS FARE="20" Start="2020-08-07" End="2020-10-30" Mon="true" Tue="true" Weds="true" Thur="true" Fri="true" Sat="true" Sun="true">
<STUDENT>
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="1" />
<DIVISION ORIGINAL="150.05" Code="Flat" S_CODE="2" />
</STUDENT>
</S_DAYS>
</PlanCode>
</SSO_XML>')
from dual
)
select h.PlanCodeCode
,b.Original
,b.code
,b.s_code
,x.node_level
from t
cross join
xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'/SSO_XML'
passing t.xml
columns PlanCodeCode varchar2(100) path './PlanCode/@PlanCodeCode',
attributes xmltype path './PlanCode'
) h
cross join xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'PlanCode/S_DAYS'
passing h.attributes
columns
node_level for ordinality,
attributes xmltype path '/S_DAYS'
) x
cross join xmltable(xmlnamespaces(default 'http://www.w3.org/2001/XMLSchema'),
'S_DAYS/STUDENT/DIVISION'
passing x.attributes
columns
ORIGINAL number path '@ORIGINAL',
Code varchar2(100) path '@Code',
S_CODE number path '@S_CODE'
) b;