10

I have a list of emails. I want to change all of them to test emails for my test system e.g. John@gmail.com to john@test.com. I don't want to use actual emails as it will create problems. Is it possible to change all emails at once in a single query or stored procedure.

2
  • 5
    Side-note: never send mails to @test.com: It's a real domain and the mails will be received by their mailserver. – piet.t Aug 21 '15 at 7:06
  • 6
    Side note 2: example.com is a domain intended exactly for these purposes. – Piskvor left the building Aug 21 '15 at 7:12
15

I tried this and it worked perfectly.

 UPDATE myTable  SET UserEMail = 
 (SELECT SUBSTRING(UserEMail, 0, PATINDEX('%@%',UserEMail)) + '@example.org' 
 from myTable U WHERE U.UserID = myTable.UserID)
1
  • Careful with PATINDEX as it will return 0 if there is no match. – kamalpreet Jan 29 '20 at 17:52
12

Try this

UPDATE users SET email=REPLACE(email, SUBSTRING(email,INSTR(email,'@')+1),
'example.com')
2
  • 2
    I think it requires an extension: Error in query (7): ERROR: function instr(character varying, unknown) does not exist.. Oops! question is about tsql . I have here psql – Abdennour TOUMI Jun 25 '18 at 12:30
  • Love this! Thanks a lot! Works like a charm! – lucianosousa Dec 13 '18 at 3:09
3

Add a column in the table structure and define it as: CONCAT(SUBSTRING([old_column],0,CHARINDEX('@',[old_column])),'@test.com') AS [new_column]

Refer to M.Ali's answer here to add a new column based on old column: Alter a Table by adding a new column whose value depends on another column

Use + and ISNULL instead of CONCAT in case you are using a sql-server version older than SQL Server 2012

2
  • why to add a new column? if it is possible in the existing one. – Abdul Aug 21 '15 at 7:24
  • @Abdul Yes, you can do that as well. I assumed you would need earlier email as well and this might be a good idea to keep earlier emails. Also, in this case use CHARINDEX instead of PATINDEX, for performance reasons. – Deepanshu Kalra Aug 21 '15 at 7:41
1

Use STUFF or LEFT string functions. Try this

DECLARE @emails VARCHAR(200) = 'John@gmail.com'

SELECT Stuff(@emails, Charindex('@', @emails), Len(@emails), '') + '@test.com'

SELECT LEFT(@emails, Charindex('@', @emails)-1) + '@test.com' 
1

Try the below code snippet -

create table #email (emailid varchar(20));
    insert into #email
    select 'john@gmail.com' union
    select 'john@yahoo.co.in' union
    select 'deepanshu.kalra@outlook.com'
    select * from #email;
    select replace(emailid,left(substring(emailid,charindex('@',emailid)+1,len(emailid)),charindex('.',substring(emailid,charindex('@',emailid)+1,len(emailid)))-1),'test' from #email;    
2
  • my email id is deepanshu.kalra@outlook.com. Also why are we using PATINNDEX to find a character? – Deepanshu Kalra Aug 21 '15 at 10:10
  • @DeepanshuKalra - thanks for identifying for the miss, changed the logic now. – Abhishek Aug 21 '15 at 12:00
1

This one works for me:

UPDATE [TABLE] [EMAIL] = REPLACE([EMAIL], '@company.com', '@test.com')

0
UPDATE employees SET email=REPLACE(email, SUBSTR(email,INSTR(email,'@')+1),'test.com');

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