Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a email address like user1@gmail.com and user2@ymail.com user3@hotmail.com ... etc I want a Mysql select query so that it would trim user names and .com an returns output as gmail,ymail,hotmail etc

share|improve this question
up vote 31 down vote accepted

Assuming that the domain is a single word domain like gmail.com, yahoo.com, use

select (SUBSTRING_INDEX(SUBSTR(email, INSTR(email, '@') + 1),'.',1))

The inner SUBSTR gets the right part of the email address after @ and the outer SUBSTRING_INDEX will cut off the result at the first period.

otherwise if domain is expected to contain multiple words like mail.yahoo.com, etc, use:

select (SUBSTR(email, INSTR(email, '@') + 1, LENGTH(email) - (INSTR(email, '@') + 1) - LENGTH(SUBSTRING_INDEX(email,'.',-1)))) 

LENGTH(email) - (INSTR(email, '@') + 1) - LENGTH(SUBSTRING_INDEX(email,'.',-1)) will get the length of the domain minus the TLD (.com, .biz etc. part) by using SUBSTRING_INDEX with a negative count which will calculate from right to left.

share|improve this answer
    
Thanks a lot worked for me :) – Ugesh Gali Apr 13 '10 at 9:26
    
Hi ugesh gali, could you then click on the checkmark next to this answer to mark the question as answered? Thanks! – Mr Roys Apr 13 '10 at 9:54
    
the term you're looking for is top-level-domain. and here's wikipedia for you: en.wikipedia.org/wiki/Top-level_domain – Devin May 8 '12 at 20:03
5  
this part will return all characters after the '@': SUBSTR(email, INSTR(email, '@') + 1) – s2t2 Nov 21 '13 at 20:14

I prefer:

select right(email_address, length(email_address)-INSTR(email_address, '@')) ...

so you don't have to guess how many sub-domains your user's email domain has.

share|improve this answer
    
Works with IPv4, IPv6, local names and punycode. – Cyprian Guerra yesterday

Using SUBSTRING_INDEX for "splitting" at '@' and '.' does the trick. See documentation at http://dev.mysql.com/doc/refman/5.1/de/string-functions.html#idm47531853671216.

SELECT SUBSTRING_INDEX(SUBSTRING_INDEX(email, '@', -1), '.', 1);

Example:

SELECT SUBSTRING_INDEX(SUBSTRING_INDEX("foo@bar.buz", '@', -1), '.', 1);

will give you "bar".

Here is what happens:
* Split "foo@bar.buz" at '@'. --> ["foo", "bar.buz"]
* Pick first element from right (index -1). --> "bar.buz"
* Split "bar.buz" at '.' --> ["bar", "buz"]
* Pick first element (index 1) --> "bar"
Result: "bar"

If you also need to get rid of subdomains, use:

SELECT SUBSTRING_INDEX(SUBSTRING_INDEX(SUBSTRING_INDEX(email, '@', -1), '.', -2), '.', 1);

Example:

SELECT SUBSTRING_INDEX(SUBSTRING_INDEX(SUBSTRING_INDEX("foo@1.2.3.bar.buz", '@', -1), '.', -2), '.', 1);

will give you "bar".

share|improve this answer

select (SUBSTRING_INDEX(SUBSTR(email, INSTR(email, '@') + 1),'.',1) from tableName)

Some sql statements require the table name specified where the email column belongs to.

share|improve this answer

Try this:

select SUBSTR(field_name, INSTR(field_name, '@'), INSTR(field_name, '.'))
share|improve this answer

Try this, removes the @ from the domain and just leaves the domain, example: domain.com

select SUBSTR(SUBSTR(email_field, INSTR(email_field, '@'), INSTR(email_field, '.')), 2) as domain
share|improve this answer

My suggestion would be (for mysql):

SELECT 
    LOWER(email) AS email,
    SUBSTRING_INDEX(email, '@', + 1) AS account,
 REPLACE(SUBSTRING_INDEX(email, '@', -1), CONCAT('.',SUBSTRING_INDEX(email, '.', -1)),'') -- 2nd part of mail - tld.
  AS domain,
    CONCAT('.',SUBSTRING_INDEX(email, '.', -1)) AS tld
FROM
...
ORDER BY domain, email ASC;

share|improve this answer

For PostgreSQL:

split_part(email, '@', 2) AS domain

Full query:

SELECT email, split_part(email, '@', 2) AS domain
FROM users;

Ref: http://www.postgresql.org/docs/current/static/functions-string.html

Credit to http://stackoverflow.com/a/19230892/1048433

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.