如何解决SQL Server 使用临时表删除特殊架构下的所有表
我正在尝试删除带有时态表的数据库方案。 通过谷歌搜索找到的现有脚本均不支持时态表。
有人已经这样做了吗?
该方案中有许多时态表,具有许多具有依赖性的约束。因此,当我尝试删除该方案时,它会抱怨依赖项。 基本上我正在寻找一个存储过程或一些遍历所有数据库对象并一个一个删除的东西。
创建示例表的脚本
USE [master];
GO
CREATE DATABASE [TestDb];
GO
USE [TestDb];
GO
CREATE SCHEMA [TestScheme];
GO
SET ANSI_NULLS ON;
GO
SET QUOTED_IDENTIFIER ON;
GO
CREATE TABLE [TestScheme].[Country]
(
[CountryCode] [char](2) NOT NULL,[Country] [varchar](60) NOT NULL,[ValidFrom] [datetime2](2) GENERATED ALWAYS AS ROW START NOT NULL,[ValidTo] [datetime2](2) GENERATED ALWAYS AS ROW END NOT NULL,CONSTRAINT [PK_TestScheme_Country_CountryCode]
PRIMARY KEY CLUSTERED([CountryCode] ASC)
WITH (PAD_INDEX = ON,STATISTICS_norECOmpuTE = OFF,IGnorE_DUP_KEY = OFF,ALLOW_ROW_LOCKS = ON,ALLOW_PAGE_LOCKS = ON,FILLFACTOR = 95) ON [PRIMARY],PERIOD FOR SYstem_TIME([ValidFrom],[ValidTo])
) ON [PRIMARY]
WITH (SYstem_VERSIONING = ON (HISTORY_TABLE = [TestScheme].[CountryHistory]));
GO
SET ANSI_NULLS ON;
GO
SET QUOTED_IDENTIFIER ON;
GO
CREATE TABLE [TestScheme].[Address]
(
[AddressId] [int] IDENTITY(1,1) NOT NULL,[City] [varchar](100) NOT NULL,[CountryCode] [char](2) NOT NULL,[ValidFrom] [datetime2](7) GENERATED ALWAYS AS ROW START NOT NULL,[ValidTo] [datetime2](7) GENERATED ALWAYS AS ROW END NOT NULL,CONSTRAINT [PK_TestScheme_Address_AddressId]
PRIMARY KEY CLUSTERED([AddressId] ASC)
WITH (PAD_INDEX = ON,FILLFACTOR = 100) ON [PRIMARY],[ValidTo])
)
ON [PRIMARY]
WITH (SYstem_VERSIONING = ON(HISTORY_TABLE = [TestScheme].[AddressHistory]));
GO
ALTER TABLE [TestScheme].[Address] WITH CHECK
ADD CONSTRAINT [FK_TestScheme_CountryCode]
FOREIGN KEY([CountryCode]) REFERENCES [TestScheme].[Country]([CountryCode]);
GO
ALTER TABLE [TestScheme].[Address] CHECK CONSTRAINT [FK_TestScheme_CountryCode];
GO
USE [TestDb];
GO
DROP SCHEMA [TestScheme];
GO
USE [TestDb]
GO
ALTER TABLE [TestScheme].[Country] SET (SYstem_VERSIONING = OFF)
GO
IF EXISTS (SELECT * FROM sys.objects
WHERE object_id = OBJECT_ID(N'[TestScheme].[Country]') AND type in (N'U'))
DROP TABLE [TestScheme].[Country]
GO
IF EXISTS (SELECT * FROM sys.objects
WHERE object_id = OBJECT_ID(N'[TestScheme].[CountryHistory]') AND type in (N'U'))
DROP TABLE [TestScheme].[CountryHistory]
GO
所以问题是有很多DB对象我真的不想创建一个巨大的脚本来一个一个地删除。
谢谢!
解决方法
谢谢大家,以下是我创建的脚本,它对我有用。
USE TestDb;
GO
DECLARE @SchemeName varchar(50)= 'TestScheme';
DECLARE @DatabaseName varchar(50)= 'TestDb';
DECLARE @sql nvarchar(max)= '';
/*Removing versioning on temporal tables*/
WITH selectedTables
AS (SELECT concat('[',@DatabaseName,'].[',@SchemeName,name,']') AS TableName
FROM SYS.TABLES WHERE history_table_id IS NOT NULL AND SCHEMA_NAME(schema_id) = @SchemeName)
SELECT @sql = COALESCE(@sql,N'') + 'ALTER TABLE ' + TableName + ' SET ( SYSTEM_VERSIONING = OFF );'
FROM selectedTables;
SELECT @sql;
EXEC sp_executesql @sql;
/*Remove constraints*/
SET @sql = N'';
SELECT @sql = COALESCE(@sql,N'') + N'ALTER TABLE ' + QUOTENAME(s.name) + N'.' + QUOTENAME(t.name) + N' DROP CONSTRAINT ' + QUOTENAME(c.name) + ';'
FROM SYS.OBJECTS AS c INNER JOIN SYS.TABLES AS t ON c.parent_object_id = t.[object_id]
INNER JOIN SYS.SCHEMAS AS s ON t.[schema_id] = s.[schema_id]
WHERE c.[type] IN( 'D','C','F','PK','UQ' ) AND s.name = @SchemeName
ORDER BY c.[type];
SELECT @sql;
EXEC sp_executesql @sql;
/*Delete Tables*/
SET @sql = N'';
SELECT @sql = COALESCE(@sql,N'') + N'DROP TABLE ['+@SchemeName+'].' + QUOTENAME(TABLE_NAME) + N';' + CHAR(13)
FROM INFORMATION_SCHEMA.TABLES WHERE TABLE_SCHEMA = @SchemeName AND TABLE_TYPE = 'BASE TABLE';
SELECT @sql
EXEC sp_executesql @sql;
/*Drop scheme*/
SET @sql = N'';
SELECT @sql = COALESCE(@sql,N'') + N'DROP SCHEMA IF EXISTS ' + @SchemeName + ';' + CHAR(13);
SELECT @sql
EXEC sp_executesql @sql;
GO
再次感谢!
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