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I want to pull out duplicate records in a MySQL Database. This can be done with:

SELECT address, count(id) as cnt FROM list
GROUP BY address HAVING cnt > 1

Which results in:

100 MAIN ST    2

I would like to pull it so that it shows each row that is a duplicate. Something like:

JIM    JONES    100 MAIN ST
JOHN   SMITH    100 MAIN ST

Any thoughts on how this can be done? I'm trying to avoid doing the first one then looking up the duplicates with a second query in the code.

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See semaphorecorp.com/mpdd/mpdd.html for tricks and considerations regarding comparing addresses for equality. –  joe snyder Jun 8 '10 at 5:42

23 Answers 23

up vote 363 down vote accepted

The key is to rewrite this query so that it can be used as a subquery.

SELECT firstname, lastname, list.address FROM list
INNER JOIN (SELECT address FROM list
GROUP BY address HAVING count(id) > 1) dup ON list.address = dup.address
share|improve this answer
35  
Be careful with sub-queries. Sub-queries are/can be ridiculously bad for performance concerns. If this needs to happen often and/or with lots of duplicate records I would consider moving the processing out of the database and into a dataset. –  bdwakefield May 12 '09 at 19:18
8  
It's a uncorrelated subquery, so it shouldn't be too bad assuming either query alone isn't poorly designed. –  ʞɔıu May 12 '09 at 19:36
2  
@nick: It's still a valid point in general about subqueries. –  Powerlord May 12 '09 at 21:37
3  
This is the right idea, but again, as below, this only works if the addresses are guaranteed to be standardized... –  Matt Sep 28 '12 at 21:46
17  
+1 with this query you can find duplicates but also triplicates, quadruplicates..... and so on –  albanx Oct 22 '12 at 12:31

Why not just INNER JOIN the table with itself?

SELECT a.firstname, a.lastname, a.address
FROM list a
INNER JOIN list b ON a.address = b.address
WHERE a.id <> b.id

A DISTINCT is needed if the address could exist more than two times.

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12  
I too tested this, and it was almost 6 times slower compared to the accepted solution in my situation (latest MySQL, table of 120.000 rows). This might be due to it requiring a temporary table, run an EXPLAIN on both to see the differences. –  user215361 Jan 5 '12 at 16:06
2  
I changed the last part of the query to WHERE a.id > b.id to filter out newer duplicates only, that way I can do a DELETE directly on the result. Switch the comparison to list the older duplicates. –  Stoffe Sep 11 '13 at 7:30
    
This took 50 seconds to run, @doublejosh's answer took .13 seconds. –  antonagestam May 8 '14 at 20:53
SELECT date FROM logs group by date having count(*) >= 2
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7  
works well on a single table query –  Alvin May 15 '12 at 17:26
3  
This was a lifesaver. I used it to remove duplicates from a single table. –  Aaron May 10 '13 at 15:46
    
fantastic answer for simple dupe checking. this is by far my favorite. –  noinput Dec 26 '14 at 23:44

Find duplicate users by email address with this query...

SELECT users.name, users.uid, users.mail, from_unixtime(created)
FROM users
INNER JOIN (
  SELECT mail
  FROM users
  GROUP BY mail
  HAVING count(mail) > 1
) dupes ON users.mail = dupes.mail
ORDER BY users.mail;
share|improve this answer
    
To find the actual duplicate you only need the inner query. This is way faster than the other answers. –  antonagestam May 8 '14 at 20:52
select `cityname` from `codcities` group by `cityname` having count(*)>=2

This is the similar query you have asked for and its 200% working and easy too. Enjoy!!!

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Another solution would be to use table aliases, like so:

SELECT p1.id, p2.id, p1.address
FROM list AS p1, list AS p2
WHERE p1.address = p2.address
AND p1.id != p2.id

All you're really doing in this case is taking the original list table, creating two pretend tables -- p1 and p2 -- out of that, and then performing a join on the address column (line 3). The 4th line makes sure that the same record doesn't show up multiple times in your set of results ("duplicate duplicates").

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1  
Works nice. If the WHERE is checking with LIKE then apostrophes are found as well. Makes the query slower, but in my case it is a one-timer. –  gossi Jun 17 '12 at 13:52

Finding duplicate addresses is much more complex than it seems, especially if you require accuracy. A MySQL query is not enough in this case...

I work at SmartyStreets, where we do address validation and de-duplication and other stuff, and I've seen a lot of diverse challenges with similar problems.

There are several third-party services which will flag duplicates in a list for you. Doing this solely with a MySQL subquery will not account for differences in address formats and standards. The USPS (for US address) has certain guidelines to make these standard, but only a handful of vendors are certified to perform such operations.

So, I would recommend the best answer for you is to export the table into a CSV file, for instance, and submit it to a capable list processor. One such is LiveAddress which will have it done for you in a few seconds to a few minutes automatically. It will flag duplicate rows with a new field called "Duplicate" and a value of Y in it.

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4  
+1 for seeing the difficulty involved in matching address strings, though you may want to specify that the OP's "duplicate records" question isn't complex in itself, but is when comparing addresses –  story Feb 6 '12 at 20:39
    
Valid point. The actual question, out of the context that the Chris wrapped it in, is simple by itself. –  Matt Feb 6 '12 at 21:03

This will select duplicates in one table pass, no subqueries.

SELECT  *
FROM    (
        SELECT  ao.*, (@r := @r + 1) AS rn
        FROM    (
                SELECT  @_address := 'N'
                ) vars,
                (
                SELECT  *
                FROM
                        list a
                ORDER BY
                        address, id
                ) ao
        WHERE   CASE WHEN @_address <> address THEN @r := 0 ELSE 0 END IS NOT NULL
                AND (@_address := address ) IS NOT NULL
        ) aoo
WHERE   rn > 1

This query actially emulates ROW_NUMBER() present in Oracle and SQL Server

See the article in my blog for details:

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6  
aghh... it would be easier to read that without any formatting at all –  Javier May 12 '09 at 18:47
2  
I was just going to say that. There is such thing as over-formatting. –  Steph Rose Jan 18 '12 at 21:43
14  
Not to nitpick, but FROM (SELECT ...) aoo is a subquery :-P –  Rocket Hazmat Apr 27 '12 at 19:07
    
Never seen such formating before. This is barely readable. –  Hexodus Mar 17 at 11:19

we can found the duplicates depends on more then one fields also.For those cases you can use below format.

SELECT COUNT(*), column1, column2 
FROM tablename
GROUP BY column1, column2
HAVING COUNT(*)>1;
share|improve this answer

Not going to be very efficient, but it should work:

SELECT *
FROM list AS outer
WHERE (SELECT COUNT(*)
        FROM list AS inner
        WHERE inner.address = outer.address) > 1;
share|improve this answer

Fastest duplicates removal queries procedure:

/* create temp table with one primary column id */
INSERT INTO temp(id) SELECT MIN(id) FROM list GROUP BY (isbn) HAVING COUNT(*)>1;
DELETE FROM list WHERE id IN (SELECT id FROM temp);
DELETE FROM temp;
share|improve this answer
    
This obviously deletes only the first record from each group of duplicates. –  Palec Feb 15 at 12:08

you best answer confuse me alot and i tried this too but i want to try on single field in table. the following example i took from http://www.askbeen.com and this really good example

SELECT COUNT(*) c,title FROM data GROUP BY title HAVING c > 1;

Reference : AskBeen.com How to find duplicate records in mysql table

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 SELECT firstname, lastname, address FROM list
 WHERE 
 Address in 
 (SELECT address FROM list
 GROUP BY address
 HAVING count(*) > 1)
share|improve this answer
    
Tried this one too, but seems to just hang. Believe the return from the inner query does not satisfy the IN parameter format. –  doublejosh Jan 26 '12 at 0:35
    
What do you mean doesn't satisfy the in parameter format? All IN needs is that your subquery has to return a single column. It's really pretty simple. It's more likely that your subquery is being generated on a column that isn't indexed so it's taking an inordinate amount of time to run. I would suggest if it's taking a long time to break it into two queries. Take the subquery, run it first into a temporary table, create an index on it then run the full query doing the subquery where your duplicate field in the temporary table. –  Ryan Roper Jan 26 '12 at 18:29
    
I was worried IN required a comma separated list rather than a column, which was just wrong. Here's the query that worked for me: SELECT users.name, users.uid, users.mail, from_unixtime(created) FROM users INNER JOIN ( SELECT mail FROM users GROUP BY mail HAVING count(mail) > 1 ) dup ON users.mail = dup.mail ORDER BY users.mail, users.created; –  doublejosh Feb 1 '12 at 18:34
select * from table_name t1 inner join (select distinct <attribute list> from table_name as temp)t2 where t1.attribute_name = t2.attribute_name

For your table it would be something like

select * from list l1 inner join (select distinct address from list as list2)l2 where l1.address=l2.address

This query will give you all the distinct address entries in your list table... I am not sure how this will work if you have any primary key values for name, etc..

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Personally this query has solved my problem:

SELECT `SUB_ID`, COUNT(SRV_KW_ID) as subscriptions FROM `SUB_SUBSCR` group by SUB_ID, SRV_KW_ID HAVING subscriptions > 1;

What this script does is showing all the subscriber ID's that exists more than once into the table and the number of duplicates found.

This are the table columns:

| SUB_SUBSCR_ID | int(11)     | NO   | PRI | NULL    | auto_increment |
| MSI_ALIAS     | varchar(64) | YES  | UNI | NULL    |                |
| SUB_ID        | int(11)     | NO   | MUL | NULL    |                |    
| SRV_KW_ID     | int(11)     | NO   | MUL | NULL    |                |

Hope it will be helpful for you either!

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    SELECT *
    FROM (SELECT  address, COUNT(id) AS cnt
    FROM list
    GROUP BY address
    HAVING ( COUNT(id) > 1 ))
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SELECT t.*,(select count(*) from city as tt where tt.name=t.name) as count FROM `city` as t where (select count(*) from city as tt where tt.name=t.name) > 1 order by count desc

Replace city with your Table. Replace name with your field name

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do a nested SELECT, the inner one picks all the duplicated ids, and the outer one gets all the records with those ids

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This also will show you how many duplicates have and will order the results without joins

SELECT  `Language` , id, COUNT( id ) AS how_many
FROM  `languages` 
GROUP BY  `Language` 
HAVING how_many >=2
ORDER BY how_many DESC
share|improve this answer

not so much good, but will work for sure....

it will give all the values and duplicate values counts for a particular column.

 select d.name,
 (select e.name from details e where e.name=d.name) as counts 
 from details d order by counts desc
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select address from list where address = any (select address from (select address, count(id) cnt from list group by address having cnt > 1 ) as t1) order by address

the inner sub-query returns rows with duplicate address then the outer sub-query returns the address column for address with duplicates. the outer sub-query must return only one column because it used as operand for the operator '= any'

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Powerlord answer is indeed the best and I would recommend one more change: use LIMIT to make sure db would not get overloaded:

SELECT firstname, lastname, list.address FROM list
INNER JOIN (SELECT address FROM list
GROUP BY address HAVING count(id) > 1) dup ON list.address = dup.address
LIMIT 10

It is a good habit to use LIMIT if there is no WHERE and when making joins. Start with small value, check how heavy the query is and then increase the limit.

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Maybe it is too late to post. However i am quite intrigued to know if this does the job ?

CREATE TABLE TABLE1
  (
    FieldA VARCHAR2(30),
    FieldB VARCHAR2(30),
    FieldC VARCHAR2(30)
  );

INSERT INTO TABLE1 VALUES
  ('DUMMYDATA-A1','DUMMYDATA-B1','DUMMYDATA-C1'
  );
INSERT INTO TABLE1 VALUES
  ('DUMMYDATA-A1','DUMMYDATA-B4','DUMMYDATA-C1'
  );
INSERT INTO TABLE1 VALUES
  ('DUMMYDATA-A1','DUMMYDATA-B3','DUMMYDATA-C1'
  );
INSERT INTO TABLE1 VALUES
  ('DUMMYDATA-A1','DUMMYDATA-B2','DUMMYDATA-C1'
  );
COMMIT;

SELECT * FROM (    
  SELECT FieldA,
         FieldB,
         FieldC,
         RANK() OVER( PARTITION BY FieldA ORDER BY FieldB ASC) AS COLUMN_ALIAS
    FROM TABLE1)
 WHERE COLUMN_ALIAS>1; --IDENTIFIES DUPLICATES BASED ON RANK VALUE
share|improve this answer
    
Are you asking or answering? Also the last SELECT has unbalanced parentheses. –  Palec Apr 4 at 15:05
    
Parentheses edited. I was trying to answer . –  Krishnendu Apr 4 at 15:12
    
Then why the question at the beginning? Also please explain what your code does and how it answers the question. If you get a code snippet as an answer, you may not know what to do with it. Answer should give the OP and future visitors guidance on how to debug and fix their problem. Pointing out, what the idea behind your code is, greatly helps in understanding the issue and applying or modifying your solution. –  Palec Apr 4 at 15:18

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