173

Is there a better way of doing a query like this:

SELECT COUNT(*) 
FROM (SELECT DISTINCT DocumentId, DocumentSessionId
      FROM DocumentOutputItems) AS internalQuery

I need to count the number of distinct items from this table but the distinct is over two columns.

My query works fine but I was wondering if I can get the final result using just one query (without using a sub-query)

  • IordanTanev, Mark Brackett, RC - thanks for replies, it was a nice try, but you need to check what you doing before posting to SO. The queries you provided are not equivalent to my query. You can easily see I always have a scalar a result but your query returns multiple rows. – Novitzky Sep 24 '09 at 12:30
  • Just updated the question to include your clarifying comment from one of the answers – Jeff Mar 29 '16 at 2:54
  • FYI: community.oracle.com/ideas/18664 – quetzalcoatl Sep 6 '18 at 14:49

19 Answers 19

62

If you are trying to improve performance, you could try creating a persisted computed column on either a hash or concatenated value of the two columns.

Once it is persisted, provided the column is deterministic and you are using "sane" database settings, it can be indexed and / or statistics can be created on it.

I believe a distinct count of the computed column would be equivalent to your query.

  • 3
    Excellent suggestion! The more I read, the more I am realizing that SQL is less about knowing syntax and functions and more about applying pure logic.. I wish I had 2 upvotes! – tumchaaditya Oct 4 '13 at 22:48
  • Too good suggestion. It avoided me to write unnecessary code to this. – Avrajit Roy Mar 9 '16 at 6:39
48

Edit: Altered from the less-than-reliable checksum-only query I've discovered a way to do this (in SQL Server 2005) that works pretty well for me and I can use as many columns as I need (by adding them to the CHECKSUM() function). The REVERSE() function turns the ints into varchars to make the distinct more reliable

SELECT COUNT(DISTINCT (CHECKSUM(DocumentId,DocumentSessionId)) + CHECKSUM(REVERSE(DocumentId),REVERSE(DocumentSessionId)) )
FROM DocumentOutPutItems
  • +1 Nice one, works perfect (when you have the right column types to perform a CheckSum on... ;) – Bernoulli IT Nov 7 '12 at 12:54
  • 7
    With hashes like Checksum(), there is small chance that the same hash will be returned for different inputs so the count may be very slightly off. HashBytes() is an even smaller chance but still not zero. If those two Ids were int's (32b) then a "lossless hash" could combine them into an bigint (64b) like Id1 << 32 + Id2. – crokusek Jan 31 '14 at 19:35
  • 1
    the chance is not so small even, especially when you start combining columns (which is what it was supposed to be meant for). I was curious about this approach and in a particular case the checksum ended up with a count 10% smaller. If you think of it a bit longer, Checksum just returns an int, so if you'd checksum a full bigint range you'll end up with a distinct count about 2 billion times smaller than there actually is. -1 – pvolders Jul 23 '14 at 7:53
  • 4
    Could we avoid CHECKSUM -- could we just concatenate the two values together? I suppose that risks considering as the same thing: ('he', 'art') == 'hear', 't'). But I think that can be solved with a delimiter as @APC proposes (some value that doesn't appear in either column), so 'he|art' != 'hear|t' Are there other problems with a simple "concatenation" approach? – The Red Pea Jan 9 '16 at 15:40
  • 1
    this answer is better than good: "good enough" – scottlittle Oct 9 '17 at 17:44
28

What is it about your existing query that you don't like? If you are concerned that DISTINCT across two columns does not return just the unique permutations why not try it?

It certainly works as you might expect in Oracle.

SQL> select distinct deptno, job from emp
  2  order by deptno, job
  3  /

    DEPTNO JOB
---------- ---------
        10 CLERK
        10 MANAGER
        10 PRESIDENT
        20 ANALYST
        20 CLERK
        20 MANAGER
        30 CLERK
        30 MANAGER
        30 SALESMAN

9 rows selected.


SQL> select count(*) from (
  2  select distinct deptno, job from emp
  3  )
  4  /

  COUNT(*)
----------
         9

SQL>

edit

I went down a blind alley with analytics but the answer was depressingly obvious...

SQL> select count(distinct concat(deptno,job)) from emp
  2  /

COUNT(DISTINCTCONCAT(DEPTNO,JOB))
---------------------------------
                                9

SQL>

edit 2

Given the following data the concatenating solution provided above will miscount:

col1  col2
----  ----
A     AA
AA    A

So we to include a separator...

select col1 + '*' + col2 from t23
/

Obviously the chosen separator must be a character, or set of characters, which can never appear in either column.

  • +1 from me. Thanks for your answer. My query works fine but I was wondering if I can get the final result using just one query (without using a subquery) – Novitzky Sep 24 '09 at 13:57
14

How about something like:

select count(*)
from
  (select count(*) cnt
   from DocumentOutputItems
   group by DocumentId, DocumentSessionId) t1

Probably just does the same as you are already though but it avoids the DISTINCT.

  • Yes, you right. It does the same job as my original one. – Novitzky Sep 24 '09 at 13:35
  • in my tests (using SET SHOWPLAN_ALL ON), it had the same execution plan and exact same TotalSubtreeCost – KM. Sep 24 '09 at 13:43
  • +1 for a nice try and the explanation. – Novitzky Sep 24 '09 at 13:50
  • 1
    Depending on the complexity of the original query, solving this with GROUP BY may introduce a couple of additional challenges to the query transformation to achieve the desired output (e.g. when the original query already had GROUP BY or HAVING clauses...) – Lukas Eder Dec 17 '13 at 9:08
12

To run as a single query, concatenate the columns, then get the distinct count of instances of the concatenated string.

SELECT count(DISTINCT concat(DocumentId, DocumentSessionId)) FROM DocumentOutputItems;

In MySQL you can do the same thing without the concatenation step as follows:

SELECT count(DISTINCT DocumentId, DocumentSessionId) FROM DocumentOutputItems;

This feature is mentioned in the MySQL documentation:

http://dev.mysql.com/doc/refman/5.7/en/group-by-functions.html#function_count-distinct

  • This was a SQL Server question, and both options you posted have already been mentioned in the following answers to this question: stackoverflow.com/a/1471444/4955425 and stackoverflow.com/a/1471713/4955425. – sstan Jul 28 '16 at 20:31
  • 1
    FWIW, this almost works in PostgreSQL; just need extra parentheses: SELECT COUNT(DISTINCT (DocumentId, DocumentSessionId)) FROM DocumentOutputItems; – ijoseph Jun 25 '18 at 20:12
7

Here's a shorter version without the subselect:

SELECT COUNT(DISTINCT DocumentId, DocumentSessionId) FROM DocumentOutputItems

It works fine in MySQL, and I think that the optimizer has an easier time understanding this one.

Edit: Apparently I misread MSSQL and MySQL - sorry about that, but maybe it helps anyway.

  • 6
    in SQL Server you get: Msg 102, Level 15, State 1, Line 1 Incorrect syntax near ','. – KM. Sep 24 '09 at 13:35
  • This is what I was thinking of. I want do similar thing in MSSQL if possible. – Novitzky Sep 24 '09 at 13:38
  • @Kamil Nowicki, in SQL Server, you can only have one field in a COUNT(), in my answer I show that you can concatenate the two fields into one and try this approach. However, I'd just stick with the original since the query plans would end up the same. – KM. Sep 24 '09 at 13:45
  • Please give a look in @JayTee answer. It works like a charm. count ( distinct CHECKSUM ([Field1], [Field2]) – Custodio Nov 16 '12 at 14:53
4

Many (most?) SQL databases can work with tuples like values so you can just do: SELECT COUNT(DISTINCT (DocumentId, DocumentSessionId)) FROM DocumentOutputItems; If your database doesn't support this, it can be simulated as per @oncel-umut-turer's suggestion of CHECKSUM or other scalar function providing good uniqueness e.g. COUNT(DISTINCT CONCAT(DocumentId, ':', DocumentSessionId)).

A related use of tuples is performing IN queries such as: SELECT * FROM DocumentOutputItems WHERE (DocumentId, DocumentSessionId) in (('a', '1'), ('b', '2'));

  • what databases support select count(distinct(a, b))? :D – Vytenis Bivainis Oct 11 '18 at 21:39
  • @VytenisBivainis I know PostgreSQL does--not sure since which version. – karmakaze Oct 17 '18 at 0:35
3

There's nothing wrong with your query, but you could also do it this way:

WITH internalQuery (Amount)
AS
(
    SELECT (0)
      FROM DocumentOutputItems
  GROUP BY DocumentId, DocumentSessionId
)
SELECT COUNT(*) AS NumberOfDistinctRows
  FROM internalQuery
2

if you had only one field to "DISTINCT", you could use:

SELECT COUNT(DISTINCT DocumentId) 
FROM DocumentOutputItems

and that does return the same query plan as the original, as tested with SET SHOWPLAN_ALL ON. However you are using two fields so you could try something crazy like:

    SELECT COUNT(DISTINCT convert(varchar(15),DocumentId)+'|~|'+convert(varchar(15), DocumentSessionId)) 
    FROM DocumentOutputItems

but you'll have issues if NULLs are involved. I'd just stick with the original query.

  • +1 from me. Thanks but I will stick with my query as you suggested. Using "convert" can decrease performance even more. – Novitzky Sep 24 '09 at 13:58
2

Hope this works i am writing on prima vista

SELECT COUNT(*) 
FROM DocumentOutputItems 
GROUP BY DocumentId, DocumentSessionId
  • 7
    In order for this to give the final answer, you would have to wrap it in another SELECT COUNT(*) FROM ( ... ). Essentially this answer is just giving you another way to list the distinct values you want to count. It's no better than your original solution. – Dave Costa Sep 24 '09 at 13:19
  • Thanks Dave. I know you can use group by instead of distinct in my case. I was wondering if you get the final result using just one query. I think is impossible but I might be wrong. – Novitzky Sep 24 '09 at 13:32
2

I found this when I Googled for my own issue, found that if you count DISTINCT objects, you get the correct number returned (I'm using MySQL)

SELECT COUNT(DISTINCT DocumentID) AS Count1, 
  COUNT(DISTINCT DocumentSessionId) AS Count2
  FROM DocumentOutputItems
  • 5
    The above query will return a different set of results than what the OP was looking for (the distinct combinations of DocumentId and DocumentSessionId). Alexander Kjäll already posted the correct answer if the OP was using MySQL and not MS SQL Server. – Anthony Geoghegan Jul 28 '14 at 9:21
2

I have used this approach and it has worked for me.

SELECT COUNT(DISTINCT DocumentID || DocumentSessionId) 
FROM  DocumentOutputItems

For my case, it provides correct result.

  • It does not give you the count of distinct values in conjunction of two columns. At least not in MySQL 5.8. – EngineeredBrain Aug 19 at 20:27
  • This question is tagged SQL Server, and this isn't SQL Server syntax – Tab Alleman Aug 21 at 18:30
1

I wish MS SQL could also do something like COUNT(DISTINCT A, B). But it can't.

At first JayTee's answer seemed like a solution to me bu after some tests CHECKSUM() failed to create unique values. A quick example is, both CHECKSUM(31,467,519) and CHECKSUM(69,1120,823) gives the same answer which is 55.

Then I made some research and found that Microsoft does NOT recommend using CHECKSUM for change detection purposes. In some forums some suggested using

SELECT COUNT(DISTINCT CHECKSUM(value1, value2, ..., valueN) + CHECKSUM(valueN, value(N-1), ..., value1))

but this is also not conforting.

You can use HASHBYTES() function as suggested in TSQL CHECKSUM conundrum. However this also has a small chance of not returning unique results.

I would suggest using

SELECT COUNT(DISTINCT CAST(DocumentId AS VARCHAR)+'-'+CAST(DocumentSessionId AS VARCHAR)) FROM DocumentOutputItems
0

It works for me. In oracle:

SELECT SUM(DECODE(COUNT(*),1,1,1))
FROM DocumentOutputItems GROUP BY DocumentId, DocumentSessionId;

In jpql:

SELECT SUM(CASE WHEN COUNT(i)=1 THEN 1 ELSE 1 END)
FROM DocumentOutputItems i GROUP BY i.DocumentId, i.DocumentSessionId;
0

How about this,

Select DocumentId, DocumentSessionId, count(*) as c 
from DocumentOutputItems 
group by DocumentId, DocumentSessionId;

This will get us the count of all possible combinations of DocumentId, and DocumentSessionId

0

I had a similar question but the query I had was a sub-query with the comparison data in the main query. something like:

Select code, id, title, name 
(select count(distinct col1) from mytable where code = a.code and length(title) >0)
from mytable a
group by code, id, title, name
--needs distinct over col2 as well as col1

ignoring the complexities of this, I realized I couldn't get the value of a.code into the subquery with the double sub query described in the original question

Select count(1) from (select distinct col1, col2 from mytable where code = a.code...)
--this doesn't work because the sub-query doesn't know what "a" is

So eventually I figured out I could cheat, and combine the columns:

Select count(distinct(col1 || col2)) from mytable where code = a.code...

This is what ended up working

0

If you're working with datatypes of fixed length, you can cast to binary to do this very easily and very quickly. Assuming DocumentId and DocumentSessionId are both ints, and are therefore 4 bytes long...

SELECT COUNT(DISTINCT CAST(DocumentId as binary(4)) + CAST(DocumentSessionId as binary(4)))
FROM DocumentOutputItems

My specific problem required me to divide a SUM by the COUNT of the distinct combination of various foreign keys and a date field, grouping by another foreign key and occasionally filtering by certain values or keys. The table is very large, and using a sub-query dramatically increased the query time. And due to the complexity, statistics simply wasn't a viable option. The CHECKSUM solution was also far too slow in its conversion, particularly as a result of the various data types, and I couldn't risk its unreliability.

However, using the above solution had virtually no increase on the query time (comparing with using simply the SUM), and should be completely reliable! It should be able to help others in a similar situation so I'm posting it here.

-1

You can just use the Count Function Twice.

In this case, it would be:

SELECT COUNT (DISTINCT DocumentId), COUNT (DISTINCT DocumentSessionId) 
FROM DocumentOutputItems
  • this doesn't do as require in the question, it counts the distinct in separate for each column – naviram Jan 10 at 22:17
-1

This code uses distinct on 2 parameters and provides count of number of rows specific to those distinct values row count. It worked for me in MySQL like a charm.

select DISTINCT DocumentId as i,  DocumentSessionId as s , count(*) 
from DocumentOutputItems   
group by i ,s;

protected by Community Mar 21 at 21:21

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

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