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Table: UserId, Value, Date.

I want to get the UserId, Value for the max(Date) for each UserId. That is, the Value for each UserId that has the latest date. Is there a way to do this simply in SQL? (Preferably Oracle)

Update: Apologies for any ambiguity: I need to get ALL the UserIds. But for each UserId, only that row where that user has the latest date.

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10  
What if there are multiple rows having the maximum date value for a particular userid? –  David Aldridge Sep 23 '08 at 18:29
    
Depending on what my goal is and the context of the issue, dealing with multiple max: If I want to elminate duplicates completely(i.e. two with a max is a data issue that is a seperate exception report), then I use a count(max_date) over the same partition as the max(my_date), and keep only count = 1, and the exception report query includes count > 1. If I want to arbitrarily grab either one of the max, then I use a row number over my_date with the same partition, and grab only rowNum = 1 in the outer query. –  AaronLS Feb 22 '12 at 20:03
    
What are the key fields of the table? –  vamosrafa Jun 20 '13 at 9:53
    
some solutions below compared: sqlfiddle.com/#!4/6d4e81/1 –  Used_By_Already Aug 7 at 7:27

28 Answers 28

up vote 178 down vote accepted

This will retrieve all rows for which the my_date column value is equal to the maximum value of my_date for that userid. This may retrieve multiple rows for the userid where the maximum date is on multiple rows.

select userid,
       my_date,
       ...
from
(
select userid,
       my_Date,
       ...
       max(my_date) over (partition by userid) max_my_date
from   users
)
where my_date = max_my_date

"Analytic functions rock"

Edit: With regard to the first comment ...

"using analytic queries and a self-join defeats the purpose of analytic queries"

There is no self-join in this code. There is instead a predicate placed on the result of the inline view that contains the analytic function -- a very different matter, and completely standard practice.

"The default window in Oracle is from the first row in the partition to the current one"

The windowing clause is only applicable in the presence of the order by clause. With no order by clause, no windowing clause is applied by default and none can be explicitly specified.

The code works.

share|improve this answer
    
Sorry, but I don't think this is right. The default window in Oracle is from the first row in the partition to the current one. This may or may not include the maximum date. Secondly using analytic queries and a self-join defeats the purpose of analytic queries. –  user11318 Sep 23 '08 at 15:51
    
Huh, I just double-checked the documentation and you are right. I've been bitten by the default window in the presence of an ORDER BY enough that I didn't realize that the default is different with no ORDER BY. I switched my vote. –  user11318 Sep 23 '08 at 18:17
    
"I've been bitten by the default window in the presence of an ORDER BY ..." Me too :) –  David Aldridge Sep 23 '08 at 18:30
17  
When applied to a table having 8.8 million rows, this query took half the time of the queries in some the other highly voted answers. –  Derek Mahar Apr 15 '11 at 23:59
8  
In MS SQL Server, this works if you give the inline view (the part in parentheses) an alias. Anything (like "x") after the closing parenthesis will do. (select...from users) x where... –  Garland Pope Apr 28 '11 at 22:34

I see many people use subqueries or else vendor-specific features to do this, but I often do this kind of query without subqueries in the following way. It uses plain, standard SQL so it should work in any brand of RDBMS.

SELECT t1.*
FROM mytable t1
  LEFT OUTER JOIN mytable t2
    ON (t1.UserId = t2.UserId AND t1."Date" < t2."Date")
WHERE t2.UserId IS NULL;

In other words: fetch the row from t1 where no other row exists with the same UserId and a greater Date.

(I put the identifier "Date" in delimiters because it's an SQL reserved word.)

In case if t1."Date" = t2."Date", doubling appears. Usually tables has auto_inc(seq) key, eg Id. To avoid doubling can be used follows:

SELECT t1.*
FROM mytable t1
  LEFT OUTER JOIN mytable t2
    ON t1.UserId = t2.UserId AND ((t1."Date" < t2."Date") 
         OR (t1."Date" = t2."Date" AND t1.id < t2.id))
WHERE t2.UserId IS NULL;

Re comment from @Farhan:

Here's a more detailed explanation:

An outer join attempts to join t1 with t2. By default, all results of t1 are returned, and if there is a match in t2, it is also returned. If there is no match in t2 for a given row of t1, then the query still returns the row of t1, and uses NULL as a placeholder for all of t2's columns. That's just how outer joins work in general.

The trick in this query is to design the join's matching condition such that t2 must match the same userid, and a greater date. The idea being if a row exists in t2 that has a greater date, then the row in t1 it's compared against can't be the greatest date for that userid. But if there is no match -- i.e. if no row exists in t2 with a greater date than the row in t1 -- we know that the row in t1 was the row with the greatest date for the given userid.

In those cases (when there's no match), the columns of t2 will be NULL -- even the columns specified in the join condition. So that's why we use WHERE t2.UserId IS NULL, because we're searching for the cases where no row was found with a greater date for the given userid.

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8  
As as a developer who does not think in SQL very often, I find this very clever! –  Michael Easter Aug 11 '10 at 14:12
7  
Very smart solution. Thanks for sharing! –  Bartosz Dec 9 '10 at 16:00
5  
Wow Bill. This is the most creative solution to this problem I've seen. It is pretty performant too on my fairly large data set. This sure beats many of the other solutions I've seen or my own attempts at solving this quandary. –  Justin Jan 13 '11 at 2:07
22  
When applied to a table having 8.8 million rows, this query took almost twice as long as that in the accepted answer. –  Derek Mahar Apr 15 '11 at 23:11
11  
@Derek: Optimizations depend on the brand and version of RDBMS, as well as presence of appropriate indexes, data types, etc. –  Bill Karwin Apr 19 '11 at 17:30
SELECT userid, MAX(value) KEEP (DENSE_RANK FIRST ORDER BY date DESC)
  FROM table
  GROUP BY userid
share|improve this answer
6  
The most efficient query in this entire thread. Should be upvoted much more than just by me. –  Rob van Wijk Jan 4 '11 at 14:21
    
In my tests using a table having a large number of rows, this solution took about twice as long as that in the accepted answer. –  Derek Mahar Apr 15 '11 at 23:16
4  
Show your test, please –  Rob van Wijk Apr 9 '12 at 7:32
    
I confirm it's much faster than other solutions –  tamersalama Sep 12 '12 at 1:02
    
trouble is it does not return the full record –  Used_By_Already Aug 7 at 7:03

I don't know your exact columns names, but it would be something like this:

    select userid, value
      from users u1
     where date = (select max(date)
                     from users u2
                    where u1.userid = u2.userid)
share|improve this answer
2  
Probably not very efficent, Steve. –  David Aldridge Sep 23 '08 at 14:43
5  
You are probably underestimating the Oracle query optimizer. –  Rafał Dowgird Sep 23 '08 at 14:57
3  
Not at all. This will almost certainly be implemented as a full scan with a nested loop join to get the dates. You're talking about logical io's in the order of 4 times the number of rows in the table and be dreadful for non-trivial amounts of data. –  David Aldridge Sep 23 '08 at 15:02
3  
FYI, "Not efficient, but works" is the same as "Works, but is not efficient". When did we give up on efficient as a design goal? –  David Aldridge Sep 23 '08 at 15:43
5  
In my tests using a table having 8.8 million rows, this solution took no more time to execute than the query in the accepted answer. It seems that we should not underestimate the Oracle query optimizer. –  Derek Mahar Apr 15 '11 at 23:21

Not being at work, I don't have Oracle to hand, but I seem to recall that Oracle allows multiple columns to be matched in an IN clause, which should at least avoid the options that use a correlated subquery, which is seldom a good idea.

Something like this, perhaps (can't remember if the column list should be parenthesised or not):

SELECT * 
FROM MyTable
WHERE (User, Date) IN
  ( SELECT User, MAX(Date) FROM MyTable GROUP BY User)

EDIT: Just tried it for real:

SQL> create table MyTable (usr char(1), dt date);
SQL> insert into mytable values ('A','01-JAN-2009');
SQL> insert into mytable values ('B','01-JAN-2009');
SQL> insert into mytable values ('A', '31-DEC-2008');
SQL> insert into mytable values ('B', '31-DEC-2008');
SQL> select usr, dt from mytable
  2  where (usr, dt) in 
  3  ( select usr, max(dt) from mytable group by usr)
  4  /

U DT
- ---------
A 01-JAN-09
B 01-JAN-09

So it works, although some of the new-fangly stuff mentioned elsewhere may be more performant.

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3  
This works nicely on PostgreSQL too. And I like the simplicity and generality of it -- the subquery says "Here's my criteria", the outer query says "And here's the details I want to see". +1. –  j_random_hacker Jun 15 '10 at 6:00

I know you asked for Oracle, but in SQL 2005 we now use this:


-- Single Value
;WITH ByDate
AS (
SELECT UserId, Value, ROW_NUMBER() OVER (PARTITION BY UserId ORDER BY Date DESC) RowNum
FROM UserDates
)
SELECT UserId, Value
FROM ByDate
WHERE RowNum = 1

-- Multiple values where dates match
;WITH ByDate
AS (
SELECT UserId, Value, RANK() OVER (PARTITION BY UserId ORDER BY Date DESC) Rnk
FROM UserDates
)
SELECT UserId, Value
FROM ByDate
WHERE Rnk = 1
share|improve this answer

I don't have Oracle to test it, but the most efficient solution is to use analytic queries. It should look something like this:

SELECT DISTINCT
    UserId
  , MaxValue
FROM (
    SELECT UserId
      , FIRST (Value) Over (
          PARTITION BY UserId
          ORDER BY Date DESC
        ) MaxValue
    FROM SomeTable
  )

I suspect that you can get rid of the outer query and put distinct on the inner, but I'm not sure. In the meantime I know this one works.

If you want to learn about analytic queries, I'd suggest reading http://www.orafaq.com/node/55 and http://www.akadia.com/services/ora_analytic_functions.html. Here is the short summary.

Under the hood analytic queries sort the whole dataset, then process it sequentially. As you process it you partition the dataset according to certain criteria, and then for each row looks at some window (defaults to the first value in the partition to the current row - that default is also the most efficient) and can compute values using a number of analytic functions (the list of which is very similar to the aggregate functions).

In this case here is what the inner query does. The whole dataset is sorted by UserId then Date DESC. Then it processes it in one pass. For each row you return the UserId and the first Date seen for that UserId (since dates are sorted DESC, that's the max date). This gives you your answer with duplicated rows. Then the outer DISTINCT squashes duplicates.

This is not a particularly spectacular example of analytic queries. For a much bigger win consider taking a table of financial receipts and calculating for each user and receipt, a running total of what they paid. Analytic queries solve that efficiently. Other solutions are less efficient. Which is why they are part of the 2003 SQL standard. (Unfortunately Postgres doesn't have them yet. Grrr...)

share|improve this answer
    
You also need to return the date value to answer the question completely. If that means another first_value clause then I'd suggest that the solution is more complex than it ought to be, and the analytic method based on max(date) reads better. –  David Aldridge Sep 23 '08 at 18:01
    
The question statement says nothing about returning the date. You can do that either by adding another FIRST(Date) or else just by querying the Date and changing the outer query to a GROUP BY. I'd use the first and expect the optimizer to calculate both in one pass. –  user11318 Sep 23 '08 at 18:11
    
"The question statement says nothing about returning the date" ... yes, you're right. Sorry. But adding more FIRST_VALUE clauses would become messy pretty quickly. It's a single window sort, but if you had 20 columns to return for that row then you've written a lot of code to wade through. –  David Aldridge Sep 23 '08 at 18:18
    
It also occurs to me that this solution is non-deterministic for data where a single userid has multiple rows that have the maximum date and different VALUEs. More a fault in the question than the answer though. –  David Aldridge Sep 23 '08 at 18:22
1  
I agree it is painfully verbose. However isn't that generally the case with SQL? And you're right that the solution is non-deterministic. There are multiple ways to deal with ties, and sometimes each is what you want. –  user11318 Sep 23 '08 at 19:51

Wouldn't a QUALIFY clause be both simplest and best?

select userid, my_date, ...
from users
qualify rank() over (partition by userid order by my_date desc) = 1

For context, on Teradata here a decent size test of this runs in 17s with this QUALIFY version and in 23s with the 'inline view'/Aldridge solution #1.

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1  
This is the best answer in my opinion. However, be careful with the rank() function in situations where there are ties. You could end up with more than one rank=1. Better to use row_number() if you really do want just one record returned. –  cartbeforehorse May 26 '12 at 13:18
1  
Also, be aware that the QUALIFY clause is specific to Teradata. In Oracle (at least) you have to nest your query and filter using a WHERE clause on the wrapping select statement (which probably hits performance a touch, I'd imagine). –  cartbeforehorse May 26 '12 at 13:40
Select  
   UserID,  
   Value,  
   Date  
From  
   Table,  
   (  
      Select  
          UserID,  
          Max(Date) as MDate  
      From  
          Table  
      Group by  
          UserID  
    ) as subQuery  
Where  
   Table.UserID = subQuery.UserID and  
   Table.Date = subQuery.mDate
share|improve this answer

Just had to write a "live" example at work :)

This one supports multiple values for UserId on the same date.

Columns: UserId, Value, Date

SELECT
   DISTINCT UserId,
   MAX(Date) OVER (PARTITION BY UserId ORDER BY Date DESC),
   MAX(Values) OVER (PARTITION BY UserId ORDER BY Date DESC)
FROM
(
   SELECT UserId, Date, SUM(Value) As Values
   FROM <<table_name>>
   GROUP BY UserId, Date
)

You can use FIRST_VALUE instead of MAX and look it up in the explain plan. I didn't have the time to play with it.

Of course, if searching through huge tables, it's probably better if you use FULL hints in your query.

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select VALUE from TABLE1 where TIME = 
   (select max(TIME) from TABLE1 where DATE= 
   (select max(DATE) from TABLE1 where CRITERIA=CRITERIA))
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I think something like this. (Forgive me for any syntax mistakes; I'm used to using HQL at this point!)

EDIT: Also misread the question! Corrected the query...

SELECT UserId, Value
FROM Users AS user
WHERE Date = (
    SELECT MAX(Date)
    FROM Users AS maxtest
    WHERE maxtest.UserId = user.UserId
)
share|improve this answer
    
Doesn't meet the "for each UserId" condition –  David Aldridge Sep 23 '08 at 14:42
    
Where would it fail? For every UserID in Users, it will be guaranteed that at least one row containing that UserID will be returned. Or am I missing a special case somewhere? –  jdmichal Sep 23 '08 at 14:45

(T-SQL) First get all the users and their maxdate. Join with the table to find the corresponding values for the users on the maxdates.

create table users (userid int , value int , date datetime)
insert into users values (1, 1, '20010101')
insert into users values (1, 2, '20020101')
insert into users values (2, 1, '20010101')
insert into users values (2, 3, '20030101')

select T1.userid, T1.value, T1.date 
    from users T1,
    (select max(date) as maxdate, userid from users group by userid) T2    
    where T1.userid= T2.userid and T1.date = T2.maxdate

results:

userid      value       date                                    
----------- ----------- -------------------------- 
2           3           2003-01-01 00:00:00.000
1           2           2002-01-01 00:00:00.000
share|improve this answer

The answer here is Oracle only. Here's a bit more sophisticated answer in all SQL:

Who has the best overall homework result (maximum sum of homework points)?

SELECT FIRST, LAST, SUM(POINTS) AS TOTAL
FROM STUDENTS S, RESULTS R
WHERE S.SID = R.SID AND R.CAT = 'H'
GROUP BY S.SID, FIRST, LAST
HAVING SUM(POINTS) >= ALL (SELECT SUM (POINTS)
FROM RESULTS
WHERE CAT = 'H'
GROUP BY SID)

And a more difficult example, which need some explanation, for which I don't have time atm:

Give the book (ISBN and title) that is most popular in 2008, i.e., which is borrowed most often in 2008.

SELECT X.ISBN, X.title, X.loans
FROM (SELECT Book.ISBN, Book.title, count(Loan.dateTimeOut) AS loans
FROM CatalogEntry Book
LEFT JOIN BookOnShelf Copy
ON Book.bookId = Copy.bookId
LEFT JOIN (SELECT * FROM Loan WHERE YEAR(Loan.dateTimeOut) = 2008) Loan 
ON Copy.copyId = Loan.copyId
GROUP BY Book.title) X
HAVING loans >= ALL (SELECT count(Loan.dateTimeOut) AS loans
FROM CatalogEntry Book
LEFT JOIN BookOnShelf Copy
ON Book.bookId = Copy.bookId
LEFT JOIN (SELECT * FROM Loan WHERE YEAR(Loan.dateTimeOut) = 2008) Loan 
ON Copy.copyId = Loan.copyId
GROUP BY Book.title);

Hope this helps (anyone).. :)

Regards, Guus

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Assuming Date is unique for a given UserID, here's some TSQL:

SELECT 
    UserTest.UserID, UserTest.Value
FROM UserTest
INNER JOIN
(
    SELECT UserID, MAX(Date) MaxDate
    FROM UserTest
    GROUP BY UserID
) Dates
ON UserTest.UserID = Dates.UserID
AND UserTest.Date = Dates.MaxDate 
share|improve this answer

With PostgreSQL 9, you can use this:

select user_id, user_value_1, user_value_2
  from (select user_id, user_value_1, user_value_2, row_number()
          over (partition by user_id order by user_date desc) 
        from users) as r
  where r.row_number=1
share|improve this answer

i thing you shuold make this variant to previous query:

SELECT UserId, Value FROM Users U1 WHERE 
Date = ( SELECT MAX(Date)    FROM Users where UserId = U1.UserId)
share|improve this answer
select userid, value, date
  from thetable t1 ,
       ( select t2.userid, max(t2.date) date2 
           from thetable t2 
          group by t2.userid ) t3
 where t3.userid t1.userid and
       t3.date2 = t1.date

IMHO this works. HTH

share|improve this answer

I think this should work?

Select
T1.UserId,
(Select Top 1 T2.Value From Table T2 Where T2.UserId = T1.UserId Order By Date Desc) As 'Value'
From
Table T1
Group By
T1.UserId
Order By
T1.UserId
share|improve this answer

First try I misread the question, following the top answer, here is a complete example with correct results:

CREATE TABLE table_name (id int, the_value varchar(2), the_date datetime);

INSERT INTO table_name (id,the_value,the_date) VALUES(1 ,'a','1/1/2000');
INSERT INTO table_name (id,the_value,the_date) VALUES(1 ,'b','2/2/2002');
INSERT INTO table_name (id,the_value,the_date) VALUES(2 ,'c','1/1/2000');
INSERT INTO table_name (id,the_value,the_date) VALUES(2 ,'d','3/3/2003');
INSERT INTO table_name (id,the_value,the_date) VALUES(2 ,'e','3/3/2003');

--

  select id, the_value
      from table_name u1
      where the_date = (select max(the_date)
                     from table_name u2
                     where u1.id = u2.id)

--

id          the_value
----------- ---------
2           d
2           e
1           b

(3 row(s) affected)
share|improve this answer

This will also take care of duplicates (return one row for each user_id):

SELECT *
FROM (
  SELECT u.*, FIRST_VALUE(u.rowid) OVER(PARTITION BY u.user_id ORDER BY u.date DESC) AS last_rowid
  FROM users u
) u2
WHERE u2.rowid = u2.last_rowid
share|improve this answer

Just tested this and it seems to work on a logging table

select ColumnNames, max(DateColumn) from log  group by ColumnNames order by 1 desc
share|improve this answer

This should be as simple as:

SELECT UserId, Value
FROM Users u
WHERE Date = (SELECT MAX(Date) FROM Users WHERE UserID = u.UserID)
share|improve this answer
    
incorrect, this does not do what OP needs. –  Woot4Moo Mar 18 '13 at 14:16

I'm quite late to the party but the following hack will outperform both correlated subqueries and any analytics function but has one restriction: values must convert to strings. So it works for dates, numbers and other strings. The code does not look good but the execution profile is great.

select
    userid,
    to_number(substr(max(to_char(date,'yyyymmdd') || to_char(value)), 9)) as value,
    max(date) as date
from 
    users
group by
    userid

The reason why this code works so well is that it only needs to scan the table once. It does not require any indexes and most importantly it does not need to sort the table, which most analytics functions do. Indexes will help though if you need to filter the result for a single userid.

share|improve this answer
    
It is a good execution plan compared to most, but applying all those tricks to more then a few fields would be tedious and may work against it. But very interesting - thanks. see sqlfiddle.com/#!4/2749b5/23 –  Used_By_Already Aug 7 at 7:11
    
You are right it can become tedious, which is why this should be done only when the performance of the query requires it. Such is often the case with ETL scripts. –  aLevelOfIndirection Aug 13 at 15:07

If (UserID, Date) is unique, i.e. no date appears twice for the same user then:

select TheTable.UserID, TheTable.Value
from TheTable inner join (select UserID, max([Date]) MaxDate
                          from TheTable
                          group by UserID) UserMaxDate
     on TheTable.UserID = UserMaxDate.UserID
        TheTable.[Date] = UserMaxDate.MaxDate;
share|improve this answer
    
I believe that you need to join by the UserID as well –  Tom H. Sep 23 '08 at 14:49
    
You're right. Fixed. –  finnw Sep 23 '08 at 18:23
select   UserId,max(Date) over (partition by UserId) value from users;
share|improve this answer
2  
This will return all rows, not just one row per user. –  Jon Heller Apr 21 '13 at 4:05

Note that bunch of solutions to this common problem can surprisingly be found in the one of most official sources, MySQL manual! See Examples of Common Queries :: The Rows Holding the Group-wise Maximum of a Certain Column.

share|improve this answer

Solution for MySQL which doesn't have concepts of partition KEEP, DENSE_RANK.

select userid,
       my_date,
       ...
from
(
select @sno:= case when @pid<>userid then 0
                    else @sno+1
    end as serialnumber, 
    @pid:=userid,
       my_Date,
       ...
from   users order by userid, my_date
) a
where a.serialnumber=0

Reference: http://benincampus.blogspot.com/2013/08/select-rows-which-have-maxmin-value-in.html

share|improve this answer
    
This does not work "on other DBs too". This only works on MySQL and possibly on SQL Server because it has a similar concept of variables. It will definitely not work on Oracle, Postgres, DB2, Derby, H2, HSQLDB, Vertica, Greenplum. Additionally the accepted answer is standard ANSI SQL (which by know only MySQL doesn't support) –  a_horse_with_no_name Aug 30 '13 at 18:55
    
horse, I guess you are right. I don't have knowledge about other DBs, or ANSI. My solution is able to solve the issue in MySQL, which doesn't have proper support for ANSI SQL to solve it in standard way. –  Ben Lin Sep 5 '13 at 16:28

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