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In SQL Server, how can I get the referenced table + column name from a foreign key?

Note: Not the table/column where the key is in, but the key it refers to.

Example:

When the key [FA_MDT_ID] in table [T_ALV_Ref_FilterDisplay]. refers to [T_AP_Ref_Customer].[MDT_ID]

such as when creating a constraint like this:

ALTER TABLE [dbo].[T_ALV_Ref_FilterDisplay]  WITH CHECK ADD  CONSTRAINT [FK_T_ALV_Ref_FilterDisplay_T_AP_Ref_Customer] FOREIGN KEY([FA_MDT_ID])
REFERENCES [dbo].[T_AP_Ref_Customer] ([MDT_ID])
GO

I need to get [T_AP_Ref_Customer].[MDT_ID] when given [T_ALV_Ref_FilterAnzeige].[FA_MDT_ID] as input

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2 Answers 2

up vote 42 down vote accepted

Never mind, this is the correct answer: http://msdn.microsoft.com/en-us/library/aa175805(SQL.80).aspx

SELECT  
     KCU1.CONSTRAINT_NAME AS FK_CONSTRAINT_NAME 
    ,KCU1.TABLE_NAME AS FK_TABLE_NAME 
    ,KCU1.COLUMN_NAME AS FK_COLUMN_NAME 
    ,KCU1.ORDINAL_POSITION AS FK_ORDINAL_POSITION 
    ,KCU2.CONSTRAINT_NAME AS REFERENCED_CONSTRAINT_NAME 
    ,KCU2.TABLE_NAME AS REFERENCED_TABLE_NAME 
    ,KCU2.COLUMN_NAME AS REFERENCED_COLUMN_NAME 
    ,KCU2.ORDINAL_POSITION AS REFERENCED_ORDINAL_POSITION 
FROM INFORMATION_SCHEMA.REFERENTIAL_CONSTRAINTS AS RC 

INNER JOIN INFORMATION_SCHEMA.KEY_COLUMN_USAGE AS KCU1 
    ON KCU1.CONSTRAINT_CATALOG = RC.CONSTRAINT_CATALOG  
    AND KCU1.CONSTRAINT_SCHEMA = RC.CONSTRAINT_SCHEMA 
    AND KCU1.CONSTRAINT_NAME = RC.CONSTRAINT_NAME 

INNER JOIN INFORMATION_SCHEMA.KEY_COLUMN_USAGE AS KCU2 
    ON KCU2.CONSTRAINT_CATALOG = RC.UNIQUE_CONSTRAINT_CATALOG  
    AND KCU2.CONSTRAINT_SCHEMA = RC.UNIQUE_CONSTRAINT_SCHEMA 
    AND KCU2.CONSTRAINT_NAME = RC.UNIQUE_CONSTRAINT_NAME 
    AND KCU2.ORDINAL_POSITION = KCU1.ORDINAL_POSITION 
share|improve this answer
    
Genius. Pure, sweet genius. –  ashes999 Dec 19 '11 at 16:48
    
Warning! - This does not return fks that reference unique index columns. See stackoverflow.com/questions/2895219/…. –  Seth Reno Feb 28 '14 at 17:36
    
@Seth Reno: This is correct in Microsoft SQL Server, because there you can reference a unique index in a foreign key. But the SQL-standard doesn't allow this, and this isn't supported by all other DBMSs. Also, there is no index information available in information_schema, so there's no way to correct this. I'd say if you don't reference a primary key as foreign key, you're doing something wrong schema-wise. –  Stefan Steiger Mar 17 '14 at 12:02
    
This query almost works correctly for me. I had to add AND KCU2.TABLE_NAME = RC.REFERENCED_TABLE_NAME to the ON clause of the KCU2 JOIN in order to eliminate incorrect records due to many tables in my database with a primary key named PRIMARY. I happen to be running MariaDB 5.5, but I suspect other DBMS will have a similar problem. –  JSmitty Jan 22 at 18:55
    
@JSmitty: Actually rc.referenced_table_name is just an alias for kcu2.table_name, so this statement should not run. if it does, it's a MySQL/MariaDb bug. And it gives back false additional rows. Same for multiple primary keys with the same name - not allowed. primary keys are unique within the database. You cannot create two tables with the same primary key name. If you can, the database doesn't catch this case, which is a bug, because it leads to bugs. And no, I'd wager this problem is very specific to MySQL/MariaDb users, and doesn't occur in other, proper, relational ACID-compliant DBMS's. –  Stefan Steiger Mar 5 at 9:01

If you can live with using the SQL Server specific schema catalog views, this query will return what you're looking for:

SELECT  
    fk.name,
    OBJECT_NAME(fk.parent_object_id) 'Parent table',
    c1.name 'Parent column',
    OBJECT_NAME(fk.referenced_object_id) 'Referenced table',
    c2.name 'Referenced column'
FROM 
    sys.foreign_keys fk
INNER JOIN 
    sys.foreign_key_columns fkc ON fkc.constraint_object_id = fk.object_id
INNER JOIN
    sys.columns c1 ON fkc.parent_column_id = c1.column_id AND fkc.parent_object_id = c1.object_id
INNER JOIN
    sys.columns c2 ON fkc.referenced_column_id = c2.column_id AND fkc.referenced_object_id = c2.object_id

Not sure how - if at all - you can get the same information from the INFORMATION_SCHEMA views....

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37'874 foreign keys in my database with about 100 tables? I'm not sure, but I don't think it's correct. I get 349, which I think is more likely... –  Stefan Steiger Oct 11 '10 at 16:17
2  
@Quandary: sorry, missed a few ON conditions - this should be better now (works for me, anyway) –  marc_s Oct 11 '10 at 16:26

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