Я использую SQL server 2014, пытаюсь получить xml с SQL сервера в иерархической структуре, `
WITH
parent as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where NodeLevel = 0),
FirstNode as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where ParentIdFK in(select ModelId from parent)),
SecondNode as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where ParentIdFK in(select ModelId from FirstNode)),
ThirdNode as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where ParentIdFK in(select ModelId from SecondNode)),
FouthNode as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where ParentIdFK in(select ModelId from ThirdNode)),
FifthNode as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where ParentIdFK in(select ModelId from FouthNode)),
SixthNode as (select ModelId,ParentIdFK,ModelName,Expanded,SortOrder from model where ParentIdFK in(select ModelId from FifthNode)),
XmlData as (select (select p.*,L1.*,L2.*,L3.*,L4.*,L5.*,L6.* from parent p
left join FirstNode L1 on L1.ParentIdFK =p.ModelId
left join SecondNode L2 on L2.ParentIdFK=L1.ModelId
left join ThirdNode L3 on L3.ParentIdFK=L2.ModelId
left join FouthNode L4 on L4.ParentIdFK=L3.ModelId
left join FifthNode L5 on L5.ParentIdFK=L4.ModelId
left join SixthNode L6 on L6.ParentIdFK=L5.ModelId
for xml auto , ROOT('ModelLines'),type) as XMLDataModel)
(select @data = XMLDataModel from XmlData)
`
, и я получил outPut как
<model ModelId="11" ParentIdFK="3" ModelName="Sedans" Expanded="0" SortOrder="1">
<model ModelId="14" ParentIdFK="11" ModelName="328i Sedan" Expanded="0" SortOrder="1">
<model>
<model />
</model>
</model>
<model ModelId="15" ParentIdFK="11" ModelName="328xi Sedan" Expanded="0" SortOrder="2">
<model>
<model />
</model>
</model>
<model ModelId="16" ParentIdFK="11" ModelName="335i Sedan" Expanded="0" SortOrder="3">
<model>
<model />
</model>
</model>
<model ModelId="167" ParentIdFK="11" ModelName="Sheilas Model" Expanded="0" SortOrder="3">
<model>
<model />
</model>
</model>
<model ModelId="289" ParentIdFK="11" ModelName="335xi Sedan" Expanded="0" SortOrder="3">
<model>
<model />
</model>
</model>
</model>
<model ModelId="12" ParentIdFK="3" ModelName="Sports Wagon" Expanded="0" SortOrder="2">
<model ModelId="17" ParentIdFK="12" ModelName="328xi Sports Wagon" Expanded="0" SortOrder="1">
<model>
<model />
</model>
</model>
<model ModelId="18" ParentIdFK="12" ModelName="328i Sports Wagon" Expanded="0" SortOrder="2">
<model>
<model />
</model>
</model>
<model ModelId="214" ParentIdFK="12" ModelName="Convertible" Expanded="0" SortOrder="4">
<model ModelId="223" ParentIdFK="214" ModelName="328i Convertible" Expanded="0" SortOrder="1">
<model />
</model>
<model ModelId="224" ParentIdFK="214" ModelName="335i Convertible" Expanded="0" SortOrder="3">
<model />
</model>
</model>
</model>
этот запрос тоже 2 секунды, но есть много узлов без атрибутов
, поэтому я попытался set @data.modify('delete //model[empty(@ModelId)]') удалить эти узлы, это занимает почти 30 секунд. может ли кто-нибудь предложить более быстрый и лучший способ получить xmal быстрее