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I have a table with a varchar column, and I would like to find all the records that have duplicate values in this column. What is the best query I can use to find the duplicates?

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Since you mentioned find all records, I am assuming you need to know the KEYS as well as the duplicated VALUES in that varchar column. – TechTravelThink Mar 27 '09 at 4:34
    
I can find the keys easy enough after I get the values, I really just want a list of all the duplicate values. – Jon Tackabury Mar 27 '09 at 13:49

14 Answers 14

up vote 534 down vote accepted

Do a SELECT with a GROUP BY clause. Let's say name is the column you want to find duplicates in:

SELECT name, COUNT(*) c FROM table GROUP BY name HAVING c > 1;

This will return a result with the name value in the first column, and a count of how many times that value appears in the second.

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1  
you should be getting errors if you write a query where the WHERE clause follows the GROUP BY clause... – HorusKol Dec 1 '09 at 4:28
14  
Should be HAVING rather than WHERE, but otherwise correct ;) – GordonM Jan 12 '11 at 11:57
1  
yeah it should be HAVING, you can not use where like that you will get an error even after you fix the format as it should be GROUP BY after WHERE! – Neo May 18 '11 at 2:07
3  
But how is this useful if you can't get the IDs of the rows with duplicate values? Yes, you can do a new query matching for each duplicate value, but is it possible to simply list the duplicates? – NobleUplift Jul 24 '14 at 14:41
1  
@NobleUplift You can do a GROUP_CONCAT(id) and it will list the IDs. See my answer for an example. – Matt Rardon Feb 19 '15 at 0:53
SELECT varchar_col
FROM table
GROUP BY varchar_col
HAVING count(*) > 1;
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1  
Clear winner to me. – Tim Dec 30 '11 at 18:32
    
Superior to @levik's answer since it doesn't add an extra column. Makes it useful for use with IN()/NOT IN(). – wmassingham Nov 24 '15 at 20:42
SELECT  *
FROM    mytable mto
WHERE   EXISTS
        (
        SELECT  1
        FROM    mytable mti
        WHERE   mti.varchar_column = mto.varchar_column
        LIMIT 1, 1
        )

This query returns complete records, not just distinct varchar_column's.

This query doesn't use COUNT(*). If there are lots of duplicates, COUNT(*) is expensive, and you don't need the whole COUNT(*), you just need to know if there are two rows with same value.

Having an index on varchar_column will, of course, speed up this query greatly.

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Perfect! This is what I needed – Maximus May 6 '13 at 18:10
1  
Very good. I added ORDER BY varchar_column DESC to the end of query. – trante May 28 '14 at 20:25
1  
This query returns complete records, not just distinct varchar_column's. ---- PERFECT. Thankuuu..! 1 up. – Parag Tyagi -morpheus- Aug 20 '14 at 16:52
    
This should be the accepted answer, as GROUP BY and HAVING returns only one of the possible duplicates. Also, performance with indexed field instead of COUNT(*), and the possibility to ORDER BY to group duplicate records. – Rémi Breton Sep 22 '15 at 20:08

Building off of levik's answer to get the IDs of the duplicate rows you can do a GROUP_CONCAT if your server supports it (this will return a comma separated list of ids).

SELECT GROUP_CONCAT(id), name, COUNT(*) c FROM documents GROUP BY name HAVING c > 1;
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1  
All this time without knowing about GROUP_CONCAT()! very very useful. – aesede May 21 '15 at 14:36
    
Really appreciated Matt. This is truly helpful! For those trying to update in phpmyadmin if you leave the id together with the function like this: SELECT id, GROUP_CONCAT(id), name, COUNT(*) c [...] it enables inline editing and it should update all the rows involved (or at least the first one matched), but unfortunately the edit generates a Javascript error... – Armfoot Sep 14 '15 at 11:25

Assuming your table is named TableABC and the column which you want is Col and the primary key to T1 is Key.

SELECT a.Key, b.Key, a.Col 
FROM TableABC a, TableABC b
WHERE a.Col = b.Col 
AND a.Key <> b.Key

The advantage of this approach over the above answer is it gives the Key.

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SELECT ColumnA, COUNT( * )
FROM Table
GROUP BY ColumnA
HAVING COUNT( * ) > 0
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SELECT * 
FROM `dps` 
WHERE pid IN (SELECT pid FROM `dps` GROUP BY pid HAVING COUNT(pid)>1)
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SELECT DISTINCT a.email FROM `users` a LEFT JOIN `users` b ON a.email = b.email WHERE a.id != b.id;

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1  
Worth noting that this is unbearably slow or might not even finish if the column being queried for is not indexed. Otherwise, I was able to change a.email to a.* and get all the IDs of the rows with duplicates. – NobleUplift Jul 24 '14 at 14:53

To find how many records are duplicates in name column in Employee, the query below is helpful;

Select name from employee group by name having count(*)>1;
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Does this really add more value than the 500ish x upvoted accepted answer? – LDMJoe Nov 24 '15 at 12:50
SELECT DISTINCT name, count(name) as times FROM yourtable GROUP BY name
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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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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
share|improve this answer
    
Doing the same subquery twice seems inefficient. – NobleUplift Jul 24 '14 at 14:44

Select column_name, column_name1,column_name2, count(1) as temp from table_name group by column_name having temp > 1

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For removing duplicate rows with multiple fields , first cancate them to the new unique key which is specified for the only distinct rows, then use "group by" command to removing duplicate rows with the same new unique key:

Create TEMPORARY table tmp select concat(f1,f2) as cfs,t1.* from mytable as t1;
Create index x_tmp_cfs on tmp(cfs);
Create table unduptable select f1,f2,... from tmp group by cfs;
share|improve this answer
    
can you also add an explanation? – Robert Feb 4 at 10:17
    
Why not use CREATE TEMPORARY TABLE ...? A little explanation of your solution would be great. – maxhb Feb 4 at 10:24

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