SQL Server OPENJSON读取嵌套的json

时间:2016-05-13 19:47:09

标签: json parsing hierarchy sql-server-2016 open-json

我想在SQL Server 2016中解析一些json。有一个Projects-> Structures-> Properties的层次结构。我想写一个解析整个层次结构的查询,但我不想按索引号指定任何元素,即我不想做这样的事情:

openjson (@json, '$[0]')


openjson (@json, '$.structures[0]')

我有这个想法,我可以读取顶级项目对象的值以及表示它下面的结构的json字符串,然后可以单独解析。问题是以下代码不起作用:

declare @json nvarchar(max)
set @json = '
[
   {
      "IdProject":"97A76363-095D-4FAB-940E-9ED2722DBC47",
      "Name":"Test Project",
      "structures":[
         {
            "IdStructure":"CB0466F9-662F-412B-956A-7D164B5D358F",
            "IdProject":"97A76363-095D-4FAB-940E-9ED2722DBC47",
            "Name":"Test Structure",
            "BaseStructure":"Base Structure",
            "DatabaseSchema":"dbo",
            "properties":[
               {
                  "IdProperty":"618DC40B-4D04-4BF8-B1E6-12E13DDE86F4",
                  "IdStructure":"CB0466F9-662F-412B-956A-7D164B5D358F",
                  "Name":"Test Property 2",
                  "DataType":1,
                  "Precision":0,
                  "Scale":0,
                  "IsNullable":false,
                  "ObjectName":"Test Object",
                  "DefaultType":1,
                  "DefaultValue":""
               },
               {
                  "IdProperty":"FFF433EC-0BB5-41CD-8A71-B5F09B97C5FC",
                  "IdStructure":"CB0466F9-662F-412B-956A-7D164B5D358F",
                  "Name":"Test Property 1",
                  "DataType":1,
                  "Precision":0,
                  "Scale":0,
                  "IsNullable":false,
                  "ObjectName":"Test Object",
                  "DefaultType":1,
                  "DefaultValue":""
               }
            ]
         }
      ]
   }
]';

select IdProject, Name, structures
from   openjson (@json)
with
(
    IdProject uniqueidentifier,
    Name nvarchar(100),
    structures nvarchar(max)
) as Projects

IdProject和Name返回没问题,但由于某种原因,我无法获得嵌套的json结构'。它只返回NULL:

而不是json内容

enter image description here

有谁知道这是否可能,如果可能,我做错了什么?

3 个答案:

答案 0 :(得分:38)

使用CROSS APPLY:

declare @json nvarchar(max)
set @json = '
[
   {
      "IdProject":"97A76363-095D-4FAB-940E-9ED2722DBC47",
      "Name":"Test Project",
      "structures":[
         {
            "IdStructure":"CB0466F9-662F-412B-956A-7D164B5D358F",
            "IdProject":"97A76363-095D-4FAB-940E-9ED2722DBC47",
            "Name":"Test Structure",
            "BaseStructure":"Base Structure",
            "DatabaseSchema":"dbo",
            "properties":[
               {
                  "IdProperty":"618DC40B-4D04-4BF8-B1E6-12E13DDE86F4",
                  "IdStructure":"CB0466F9-662F-412B-956A-7D164B5D358F",
                  "Name":"Test Property 2",
                  "DataType":1,
                  "Precision":0,
                  "Scale":0,
                  "IsNullable":false,
                  "ObjectName":"Test Object",
                  "DefaultType":1,
                  "DefaultValue":""
               },
               {
                  "IdProperty":"FFF433EC-0BB5-41CD-8A71-B5F09B97C5FC",
                  "IdStructure":"CB0466F9-662F-412B-956A-7D164B5D358F",
                  "Name":"Test Property 1",
                  "DataType":1,
                  "Precision":0,
                  "Scale":0,
                  "IsNullable":false,
                  "ObjectName":"Test Object",
                  "DefaultType":1,
                  "DefaultValue":""
               }
            ]
         }
      ]
   }
]';

select
    Projects.IdProject, Projects.Name as NameProject,
    Structures.IdStructure, Structures.Name as NameStructure, Structures.BaseStructure, Structures.DatabaseSchema,
    Properties.*    
from   openjson (@json)
with
(
    IdProject uniqueidentifier,
    Name nvarchar(100),
    structures nvarchar(max) as json
)
as Projects
cross apply openjson (Projects.structures)
with
(
    IdStructure uniqueidentifier,
    Name nvarchar(100),
    BaseStructure nvarchar(100),
    DatabaseSchema sysname,
    properties nvarchar(max) as json
) as Structures
cross apply openjson (Structures.properties)
with
(
    IdProperty uniqueidentifier,
    NamePreoperty nvarchar(100) '$.Name',
    DataType int,
    [Precision] int,
    [Scale] int,
    IsNullable bit,
    ObjectName nvarchar(100),
    DefaultType int,
    DefaultValue nvarchar(100)
)
as Properties

答案 1 :(得分:36)

如果引用JSON对象或数组,则需要指定AS JSON子句:

select IdProject, Name, structures
from   openjson (@json)
with
(
    IdProject uniqueidentifier,
    Name nvarchar(100),
    structures nvarchar(max) AS JSON
) as Projects

请参阅常见问题解答:https://msdn.microsoft.com/en-us/library/mt631706.aspx#Anchor_6

如果要在返回的结构数组上应用OPENJSON,可以使用类似下面的代码:

select IdProject, Name, structures
from   openjson (@json)
with
(
    IdProject uniqueidentifier,
    Name nvarchar(100),
    structures nvarchar(max) AS JSON
) as Projects 
     CROSS APPLY OPENJSON (structures) WITH (......)

答案 2 :(得分:2)

典型!在发布问题后我找到了答案。你需要使用'作为json'指定要返回的列时的关键字:

select IdProject, Name, structures
from   openjson (@json)
with
(
    IdProject uniqueidentifier,
    Name nvarchar(100),
    structures nvarchar(max) as json
) as Projects
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