T SQL For XML PATH Group By 作为属性或元素
T SQL For XML PATH Group By as Attribute or Element
我一直在使用 PATH 模式在 T-SQL FOR XML 上工作,以创建基于按字段分组的层次结构。
以下是我的查询和输出。请帮我提出宝贵的建议。谢谢你。再会!!!
select e.department_id AS [@DepartmentID],
d.DEPARTMENT_NAME AS [@DepartmentName],
e.EMPLOYEE_ID AS [EmployeeInfo/EmployeeID],
e.FIRST_NAME AS [EmployeeInfo/FirstName],
e.LAST_NAME AS [EmployeeInfo/LastName]
from employees e
JOIN departments d
ON e.department_id = d.department_id
GROUP BY e.department_id,d.DEPARTMENT_NAME,
e.EMPLOYEE_ID,e.FIRST_NAME,e.LAST_NAME
FOR XML PATH ('Department'), ROOT ('Departments')
输出:
<Departments>
<Department DepartmentID="10">
<EmployeeInfo>
<EmployeeID>111</EmployeeID>
<FirstName>John</FirstName>
<LastName>Chen</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="10">
<EmployeeInfo>
<EmployeeID>201</EmployeeID>
<FirstName>steven</FirstName>
<LastName>Whalen</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="30">
<EmployeeInfo>
<EmployeeID>105</EmployeeID>
<FirstName>ANIRUDH</FirstName>
<LastName>RAMESH</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="30">
<EmployeeInfo>
<EmployeeID>115</EmployeeID>
<FirstName>Den</FirstName>
<LastName>Raphaely</LastName>
</EmployeeInfo>
</Department>
<Departments>
期望的输出是:
<Departments>
<Department DepartmentID="10">
<EmployeeInfo>
<EmployeeID>111</EmployeeID>
<FirstName>John</FirstName>
<LastName>Chen</LastName>
</EmployeeInfo>
<EmployeeInfo>
<EmployeeID>201</EmployeeID>
<FirstName>steven</FirstName>
<LastName>Whalen</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="30">
<EmployeeInfo>
<EmployeeID>105</EmployeeID>
<FirstName>ANIRUDH</FirstName>
<LastName>RAMESH</LastName>
</EmployeeInfo>
<EmployeeInfo>
<EmployeeID>115</EmployeeID>
<FirstName>Den</FirstName>
<LastName>Raphaely</LastName>
</EmployeeInfo>
</Department>
<Departments>
您可以使用 TYPE 嵌套 xml
SELECT
d.department_id AS [@DepartmentID],
d.DEPARTMENT_NAME AS [@DepartmentName],
(
SELECT
e.EMPLOYEE_ID AS EmployeeID,
e.FIRST_NAME AS [FirstName],
e.LAST_NAME AS [LastName]
FROM employees e
WHERE e.department_id = d.department_id
FOR XML PATH ('EmployeeInfo'), TYPE
)
FROM departments d
FOR XML PATH ('Department'), ROOT ('Departments')
不确定,我们是否可以回答我们自己的问题。
我和我的一位同事为这个查询找到了另一种解决方案,但使用的是自动模式。
select d.DEPARTMENT_ID as [DepartmentID],e.EMPLOYEE_ID as
[EmployeeID],e.first_name as [EmployeeName],e.SALARY as [Salary]
from [departments] d
inner join [employees] e
on e.DEPARTMENT_ID = d.DEPARTMENT_ID
order by 1,4
for xml AUTO, Root ('Employees'), ELEMENTS
我一直在使用 PATH 模式在 T-SQL FOR XML 上工作,以创建基于按字段分组的层次结构。 以下是我的查询和输出。请帮我提出宝贵的建议。谢谢你。再会!!!
select e.department_id AS [@DepartmentID],
d.DEPARTMENT_NAME AS [@DepartmentName],
e.EMPLOYEE_ID AS [EmployeeInfo/EmployeeID],
e.FIRST_NAME AS [EmployeeInfo/FirstName],
e.LAST_NAME AS [EmployeeInfo/LastName]
from employees e
JOIN departments d
ON e.department_id = d.department_id
GROUP BY e.department_id,d.DEPARTMENT_NAME,
e.EMPLOYEE_ID,e.FIRST_NAME,e.LAST_NAME
FOR XML PATH ('Department'), ROOT ('Departments')
输出:
<Departments>
<Department DepartmentID="10">
<EmployeeInfo>
<EmployeeID>111</EmployeeID>
<FirstName>John</FirstName>
<LastName>Chen</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="10">
<EmployeeInfo>
<EmployeeID>201</EmployeeID>
<FirstName>steven</FirstName>
<LastName>Whalen</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="30">
<EmployeeInfo>
<EmployeeID>105</EmployeeID>
<FirstName>ANIRUDH</FirstName>
<LastName>RAMESH</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="30">
<EmployeeInfo>
<EmployeeID>115</EmployeeID>
<FirstName>Den</FirstName>
<LastName>Raphaely</LastName>
</EmployeeInfo>
</Department>
<Departments>
期望的输出是:
<Departments>
<Department DepartmentID="10">
<EmployeeInfo>
<EmployeeID>111</EmployeeID>
<FirstName>John</FirstName>
<LastName>Chen</LastName>
</EmployeeInfo>
<EmployeeInfo>
<EmployeeID>201</EmployeeID>
<FirstName>steven</FirstName>
<LastName>Whalen</LastName>
</EmployeeInfo>
</Department>
<Department DepartmentID="30">
<EmployeeInfo>
<EmployeeID>105</EmployeeID>
<FirstName>ANIRUDH</FirstName>
<LastName>RAMESH</LastName>
</EmployeeInfo>
<EmployeeInfo>
<EmployeeID>115</EmployeeID>
<FirstName>Den</FirstName>
<LastName>Raphaely</LastName>
</EmployeeInfo>
</Department>
<Departments>
您可以使用 TYPE 嵌套 xml
SELECT
d.department_id AS [@DepartmentID],
d.DEPARTMENT_NAME AS [@DepartmentName],
(
SELECT
e.EMPLOYEE_ID AS EmployeeID,
e.FIRST_NAME AS [FirstName],
e.LAST_NAME AS [LastName]
FROM employees e
WHERE e.department_id = d.department_id
FOR XML PATH ('EmployeeInfo'), TYPE
)
FROM departments d
FOR XML PATH ('Department'), ROOT ('Departments')
不确定,我们是否可以回答我们自己的问题。 我和我的一位同事为这个查询找到了另一种解决方案,但使用的是自动模式。
select d.DEPARTMENT_ID as [DepartmentID],e.EMPLOYEE_ID as
[EmployeeID],e.first_name as [EmployeeName],e.SALARY as [Salary]
from [departments] d
inner join [employees] e
on e.DEPARTMENT_ID = d.DEPARTMENT_ID
order by 1,4
for xml AUTO, Root ('Employees'), ELEMENTS