Finding duplicate values in MySQL
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?
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.
SELECT varchar_col
FROM table
GROUP BY varchar_col
HAVING COUNT(*) > 1;
IN()/NOT IN().
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.
This is achieved by the LIMIT 1, 1 at the bottom of the correlated query (essentially meaning "return the second row"). EXISTS would only return true if the aforementioned second row exists (i. e. there are at least two rows with the same value of varchar_column) .
Having an index on varchar_column will, of course, speed up this query greatly.
ORDER BY varchar_column DESC to the end of query.
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.
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;
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...
to get all the data that contains duplication i used this:
SELECT * FROM TableName INNER JOIN(
SELECT DupliactedData FROM TableName GROUP BY DupliactedData HAVING COUNT(DupliactedData) > 1 order by DupliactedData)
temp ON TableName.DupliactedData = temp.DupliactedData;
TableName = the table you are working with.
DupliactedData = the duplicated data you are looking for.
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.
Taking @maxyfc's answer further, I needed to find all of the rows that were returned with the duplicate values, so I could edit them in MySQL Workbench:
SELECT * FROM table
WHERE field IN (
SELECT field FROM table GROUP BY field HAVING count(*) > 1
) ORDER BY field
SELECT *
FROM `dps`
WHERE pid IN (SELECT pid FROM `dps` GROUP BY pid HAVING COUNT(pid)>1)
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;
My final query incorporated a few of the answers here that helped - combining group by, count & GROUP_CONCAT.
SELECT GROUP_CONCAT(id), `magento_simple`, COUNT(*) c
FROM product_variant
GROUP BY `magento_simple` HAVING c > 1;
This provides the id of both examples (comma separated), the barcode I needed, and how many duplicates.
Change table and columns accordingly.
I am not seeing any JOIN approaches, which have many uses in terms of duplicates.
This approach gives you actual doubled results.
SELECT t1.* FROM my_table as t1
LEFT JOIN my_table as t2
ON t1.name=t2.name and t1.id!=t2.id
WHERE t2.id IS NOT NULL
ORDER BY t1.name
I saw the above result and query will work fine if you need to check single column value which are duplicate. For example email.
But if you need to check with more columns and would like to check the combination of the result so this query will work fine:
SELECT COUNT(CONCAT(name,email)) AS tot,
name,
email
FROM users
GROUP BY CONCAT(name,email)
HAVING tot>1 (This query will SHOW the USER list which ARE greater THAN 1
AND also COUNT)
SELECT COUNT(CONCAT(userid,event,datetime)) AS total, userid, event, datetime FROM mytable GROUP BY CONCAT(userid, event, datetime ) HAVING total>1
I prefer to use windowed functions(MySQL 8.0+) to find duplicates because I could see entire row:
WITH cte AS (
SELECT *
,COUNT(*) OVER(PARTITION BY col_name) AS num_of_duplicates_group
,ROW_NUMBER() OVER(PARTITION BY col_name ORDER BY col_name2) AS pos_in_group
FROM table
)
SELECT *
FROM cte
WHERE num_of_duplicates_group > 1;
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
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
The following will find all product_id that are used more than once. You only get a single record for each product_id.
SELECT product_id FROM oc_product_reward GROUP BY product_id HAVING count( product_id ) >1
Code taken from : http://chandreshrana.blogspot.in/2014/12/find-duplicate-records-based-on-any.html
CREATE TABLE tbl_master
(`id` int, `email` varchar(15));
INSERT INTO tbl_master
(`id`, `email`) VALUES
(1, 'test1@gmail.com'),
(2, 'test2@gmail.com'),
(3, 'test1@gmail.com'),
(4, 'test2@gmail.com'),
(5, 'test5@gmail.com');
QUERY : SELECT id, email FROM tbl_master
WHERE email IN (SELECT email FROM tbl_master GROUP BY email HAVING COUNT(id) > 1)
SELECT ColumnA, COUNT( * )
FROM Table
GROUP BY ColumnA
HAVING COUNT( * ) > 1
I improved from this:
SELECT
col,
COUNT(col)
FROM
table_name
GROUP BY col
HAVING COUNT(col) > 1;
SELECT DISTINCT a.email FROM `users` a LEFT JOIN `users` b ON a.email = b.email WHERE a.id != b.id;
a.email to a.* and get all the IDs of the rows with duplicates.
SELECT DISTINCT a.* resolved almost instantly.
As a variation on Levik's answer that allows you to find also the ids of the duplicate results, I used the following:
SELECT * FROM table1 WHERE column1 IN (SELECT column1 AS duplicate_value FROM table1 GROUP BY column1 HAVING COUNT(*) > 1)
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;
CREATE TEMPORARY TABLE ...? A little explanation of your solution would be great.
One very late contribution... in case it helps anyone waaaaaay down the line... I had a task to find matching pairs of transactions (actually both sides of account-to-account transfers) in a banking app, to identify which ones were the 'from' and 'to' for each inter-account-transfer transaction, so we ended up with this:
SELECT
LEAST(primaryid, secondaryid) AS transactionid1,
GREATEST(primaryid, secondaryid) AS transactionid2
FROM (
SELECT table1.transactionid AS primaryid,
table2.transactionid AS secondaryid
FROM financial_transactions table1
INNER JOIN financial_transactions table2
ON table1.accountid = table2.accountid
AND table1.transactionid <> table2.transactionid
AND table1.transactiondate = table2.transactiondate
AND table1.sourceref = table2.destinationref
AND table1.amount = (0 - table2.amount)
) AS DuplicateResultsTable
GROUP BY transactionid1
ORDER BY transactionid1;
The result is that the DuplicateResultsTable provides rows containing matching (i.e. duplicate) transactions, but it also provides the same transaction id's in reverse the second time it matches the same pair, so the outer SELECT is there to group by the first transaction ID, which is done by using LEAST and GREATEST to make sure the two transactionid's are always in the same order in the results, which makes it safe to GROUP by the first one, thus eliminating all the duplicate matches. Ran through nearly a million records and identified 12,000+ matches in just under 2 seconds. Of course the transactionid is the primary index, which really helped.
Select column_name, column_name1,column_name2, count(1) as temp from table_name group by column_name having temp > 1
If you want to remove duplicate use DISTINCT
Otherwise use this query:
SELECT users.*,COUNT(user_ID) as user FROM users GROUP BY user_name HAVING user > 1;
Thanks to @novocaine for his great answer and his solution worked for me. I altered it slightly to include a percentage of the recurring values, which was needed in my case. Below is the altered version. It reduces the percentage to two decimal places. If you change the ,2 to 0, it will display no decimals, and to 1, then it will display one decimal place, and so on.
SELECT GROUP_CONCAT(id), name, COUNT(*) c,
COUNT(*) OVER() AS totalRecords,
CONCAT(FORMAT(COUNT(*)/COUNT(*) OVER()*100,2),'%') as recurringPecentage
FROM table
GROUP BY name
HAVING c > 1
Try using this query:
SELECT name, COUNT(*) value_count FROM company_master GROUP BY name HAVING value_count > 1;
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GROUP_CONCAT(id)and it will list the IDs. See my answer for an example.ERROR: column "c" does not exist LINE 1?