14

I want to automatically generate unique id with per-defined code attach to it.

ex:

UID12345678
CUSID5000

I tried uniqueidentifier data type but it generate a id which is not suitable for a user id.

Any one have suggestions?

2
  • 2
    what is pattern between UID12345678 and CUSID5000.First identify pattern of unique id then accordingly create UDF that will return unique id.
    – KumarHarsh
    Dec 19, 2013 at 5:48
  • thnx @KumarHarsh, Do you have any link or resource to follow??
    – Nishantha
    Dec 19, 2013 at 6:11

6 Answers 6

35

The only viable solution in my opinion is to use

  • an ID INT IDENTITY(1,1) column to get SQL Server to handle the automatic increment of your numeric value
  • a computed, persisted column to convert that numeric value to the value you need

So try this:

CREATE TABLE dbo.tblUsers
  (ID INT IDENTITY(1,1) NOT NULL PRIMARY KEY CLUSTERED,
   UserID AS 'UID' + RIGHT('00000000' + CAST(ID AS VARCHAR(8)), 8) PERSISTED,
   .... your other columns here....
  )

Now, every time you insert a row into tblUsers without specifying values for ID or UserID:

INSERT INTO dbo.tblUsersCol1, Col2, ..., ColN)
VALUES (Val1, Val2, ....., ValN)

then SQL Server will automatically and safely increase your ID value, and UserID will contain values like UID00000001, UID00000002,...... and so on - automatically, safely, reliably, no duplicates.

Update: the column UserID is computed - but it still OF COURSE has a data type, as a quick peek into the Object Explorer reveals:

enter image description here

12
  • first id has to be bigint.second how will 12345678 geenerated with your table like this UID0000000012345678 . so it has to be UDF and format 0000... using replicate .
    – KumarHarsh
    Dec 19, 2013 at 6:04
  • 1
    thax @marc_s, work without errors. :) Another small issue can 00000000 generate randomly without incrementing??
    – Nishantha
    Dec 19, 2013 at 6:09
  • @KumarHarsh - What do you think UserID AS 'UID' + RIGHT('00000000' + CAST(ID AS VARCHAR(8)), 8) PERSISTED does?
    – Raj
    Dec 19, 2013 at 6:28
  • marc_s I have a problem. I can't create a foreign key in another table which is referring to UID column of User table because UID doesn't have a data type. How to overcome this? Apr 8, 2017 at 15:45
  • @ElhamKohestani: see my update, OF COURSE it has a datatype !!
    – marc_s
    Apr 8, 2017 at 16:14
4
CREATE TABLE dbo.tblUsers
(
    ID INT IDENTITY(1,1) NOT NULL PRIMARY KEY CLUSTERED,
    UserID AS 'UID' + RIGHT('00000000' + CAST(ID AS VARCHAR(8)), 8) PERSISTED, 
    [Name] VARCHAR(50) NOT NULL,
)

marc_s's Answer Snap

marc_s's Answer Snap

2
  • I have not tried something like that in mysql. But you can ask it from the genius @marc_s
    – Nishantha
    Apr 19, 2016 at 5:33
  • 1
    @MohammedHousseynTaleb: sorry, I don't know MySQL well enough to tell you whether it supports this kind of thing.... but YOU can consult the MySQL documentation and see if it does!
    – marc_s
    Apr 19, 2016 at 6:34
2

Reference:https://learn.microsoft.com/en-us/sql/t-sql/functions/newid-transact-sql?view=sql-server-2017

-- Creating a table using NEWID for uniqueidentifier data type.

CREATE TABLE cust  
(  
 CustomerID uniqueidentifier NOT NULL  
   DEFAULT newid(),  
 Company varchar(30) NOT NULL,  
 ContactName varchar(60) NOT NULL,   
 Address varchar(30) NOT NULL,   
 City varchar(30) NOT NULL,  
 StateProvince varchar(10) NULL,  
 PostalCode varchar(10) NOT NULL,   
 CountryRegion varchar(20) NOT NULL,   
 Telephone varchar(15) NOT NULL,  
 Fax varchar(15) NULL  
);  
GO  
-- Inserting 5 rows into cust table.  
INSERT cust  
(CustomerID, Company, ContactName, Address, City, StateProvince,   
 PostalCode, CountryRegion, Telephone, Fax)  
VALUES  
 (NEWID(), 'Wartian Herkku', 'Pirkko Koskitalo', 'Torikatu 38', 'Oulu', NULL,  
 '90110', 'Finland', '981-443655', '981-443655')  
,(NEWID(), 'Wellington Importadora', 'Paula Parente', 'Rua do Mercado, 12', 'Resende', 'SP',  
 '08737-363', 'Brasil', '(14) 555-8122', '')  
,(NEWID(), 'Cactus Comidas para Ilevar', 'Patricio Simpson', 'Cerrito 333', 'Buenos Aires', NULL,   
 '1010', 'Argentina', '(1) 135-5555', '(1) 135-4892')  
,(NEWID(), 'Ernst Handel', 'Roland Mendel', 'Kirchgasse 6', 'Graz', NULL,  
 '8010', 'Austria', '7675-3425', '7675-3426')  
,(NEWID(), 'Maison Dewey', 'Catherine Dewey', 'Rue Joseph-Bens 532', 'Bruxelles', NULL,  
 'B-1180', 'Belgium', '(02) 201 24 67', '(02) 201 24 68');  
GO
0

If you want to add the id manually you can use,

PadLeft() or String.Format() method.

string id;
char x='0';
id=id.PadLeft(6, x);
//Six character string id with left 0s e.g 000012

int id;
id=String.Format("{0:000000}",id);
//Integer length of 6 with the id. e.g 000012

Then you can append this with UID.

0

The 'newid()' method unique id generate for per record.


AddColumn("dbo.Foo", "Key", c => c.String(nullable: false, maxLength: 250, defaultValueSql: "newid()"));

-1

Table Creating

create table emp(eno int identity(100001,1),ename varchar(50))

Values inserting

insert into emp(ename)values('narendra'),('ajay'),('anil'),('raju')

Select Table

select * from emp

Output

eno     ename
100001  narendra
100002  rama
100003  ajay
100004  anil
100005  raju

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