将XML数据分解为SQL行时保留元素顺序
发布时间:2020-12-16 05:35:47 所属栏目:百科 来源:网络整理
导读:在将 XML分解为SQL Server视图中的行时,如何返回元素序列? 样本输入: ol liSmith/li liJones/li liBrown/li/ol 期望的输出: Sequence Name-------- ----------- 1 Smith 2 Jones 3 Brown 现有观点: CREATE VIEW OrderedListASSELECT [Sequence] = CAST(N
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在将
XML分解为SQL Server视图中的行时,如何返回元素序列?
样本输入: <ol> <li>Smith</li> <li>Jones</li> <li>Brown</li> </ol> 期望的输出: Sequence Name
-------- -----------
1 Smith
2 Jones
3 Brown
现有观点: CREATE VIEW OrderedList
AS
SELECT [Sequence] = CAST(NULL AS int) -- TODO: Get ordinal position
[Name] = b.b.value('.','nvarchar(max)')
FROM
(
SELECT a = CAST('<ol><li>Smith</li><li>Jones</li><li>Brown</li></ol>' AS xml)
) a
CROSS APPLY a.a.nodes('/ol/li') b (b)
您可以在xml节点上使用row_number().
CREATE VIEW OrderedList
AS
SELECT [Sequence] = ROW_NUMBER() OVER(ORDER BY b.b),[Name] = b.b.value('.','nvarchar(max)')
FROM
(
SELECT a = CAST('<ol><li>Smith</li><li>Jones</li><li>Brown</li></ol>' AS xml)
) a
CROSS APPLY a.a.nodes('/ol/li') b (b)
参考:Uniquely Identifying XML Nodes with DENSE_RANK 由Adam Machanic. (编辑:李大同) 【声明】本站内容均来自网络,其相关言论仅代表作者个人观点,不代表本站立场。若无意侵犯到您的权利,请及时与联系站长删除相关内容! |