Fastest “Get Duplicates” SQL script
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10-07-2019 - |
Question
What is an example of a fast SQL to get duplicates in datasets with hundreds of thousands of records. I typically use something like:
SELECT afield1, afield2 FROM afile a
WHERE 1 < (SELECT count(afield1) FROM afile b WHERE a.afield1 = b.afield1);
But this is quite slow.
Solution
This is the more direct way:
select afield1,count(afield1) from atable
group by afield1 having count(afield1) > 1
OTHER TIPS
You could try:
select afield1, afield2 from afile a
where afield1 in
( select afield1
from afile
group by afield1
having count(*) > 1
);
A similar question was asked last week. There are some good answers there.
SQL to find duplicate entries (within a group)
In that question, the OP was interested in all the columns (fields) in the table (file), but rows belonged in the same group if they had the same key value (afield1).
There are three kinds of answers:
subqueries in the where clause, like some of the other answers in here.
an inner join between the table and the groups viewed as a table (my answer)
and analytic queries (something that's new to me).
By the way, if anyone wants to remove the duplicates, I have used this:
delete from MyTable where MyTableID in (
select max(MyTableID)
from MyTable
group by Thing1, Thing2, Thing3
having count(*) > 1
)
This should be reasonably fast (even faster if the dupeFields are indexed).
SELECT DISTINCT a.id, a.dupeField1, a.dupeField2
FROM TableX a
JOIN TableX b
ON a.dupeField1 = b.dupeField2
AND a.dupeField2 = b.dupeField2
AND a.id != b.id
I guess the only downside to this query is that because you're not doing a COUNT(*)
you can't check for the number of times it is duplicated, only that it appears more than once.