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let's assume we have two tables

table1
    ----------------------
    |ID         | Date   |
    ----------------------
    |1          |20110101|
    |1          |20110102|
    |1          |20110103|
    |2          |20110102|
    |2          |20110103|
    |2          |20110104|
    ----------------------

table2
    ----------------------
    |ID2        |val     |
    ----------------------
    |1          |152     |
    |2          |155     |
    ----------------------

Using this query

SELECT * FROM table1, table2
WHERE table1.ID = table2.ID2
GROUP BY table1.ID 
ORDER BY DATE DESC

Mysql should return this

-------------------------------------------
|ID         |date    |ID2        |val     |
-------------------------------------------
|1          |20110103|1          |152     |
|2          |20110104|2          |155     |
-------------------------------------------

In Oracle I get this error: ORA-00979: not a GROUP BY expression

EDIT: The MAX function on the column Date does not work because this column is varchar(200) The database/tables structure is not mine and I cannot alter it.

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Shouldn't that be WHERE table1.ID = table2.ID2 ? –  Xavi López Oct 26 '11 at 10:39
    
Yeah sorry I forget to write it!! –  Marcx Oct 26 '11 at 10:44

5 Answers 5

up vote 2 down vote accepted

You need to do one of two things...

  • GROUP BY and use aggregate functions to consolidate multiple records down to one
  • Use some lookup to identify the one record you want from the group


In your case, you don't just want a MAX() from table1, as it may be possible that a higher id has a lower date. In that case, I'd be inclined to use a lookup system...

WITH
  ordered_table1 AS
(
  SELECT
    ROW_NUMBER() OVER (PARTITION BY id ORDER BY date_field DESC) AS sequence_number,
    *
  FROM
    table1
)
SELECT
  *
FROM
  ordered_table1
INNER JOIN
  table2
    ON table2.id = ordered_table1.id
WHERE
  ordered_table1.sequence_id = 1

NOTE: This assumes your date is formatted such that alphanumeric ordering WILL yield the correct date order. If that is NOT the case (and d-m-yyyy will not order correctly), you need to replace date_field with TO_DATE(date_field) to ensure the correct order.

NOTE: Use of TO_DATE(date_field) will also probably fix your MAX() problems.

NOTE: If you want to store dates as strings, but them to be order friendly, use yyyy-mm-dd

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Wouldn't using a DISTINCT ID, MAX(date) select with a group by ID eliminate the need for the row_number? –  Tom Hubbard Oct 26 '11 at 11:21
1  
The OP has stated tat MAX(date) won't work as the date field is a string in the format d-m-yyyy. As per my second NOTE:, this means that MAX(TO_DATE(date_field)) is needed to make it work. At that point, the DISTINCT is also no longer needed. The benefit of ROW_NUMBER(), however, is that it is more generalised - If there are other un-ordered fields in table1, this will still find them. If the real-life case does actually only have id and date fields then yes using MAX(TO_DATE(date)) is sufficient when used with GROUP BY table1.id, table2.id2, table2.val. –  MatBailie Oct 26 '11 at 11:36
    
I understand. Thanks for the clarification. –  Tom Hubbard Oct 26 '11 at 11:43
    
Thanks It seems it works good.. –  Marcx Oct 26 '11 at 12:33

In the select and order by clause of a SQL Statement with group by you can only use the columns/expression used in the group by or aggregate functions (min, max, avg ..) of other columns.

I know this for oracle and I am a little surprised that this is different in MySQL

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Try it in following way:

   SELECT *
     FROM table1
LEFT JOIN table2 
       ON table1.ID = table2.ID
 ORDER BY DATE DESC
 GROUP BY table1.ID
share|improve this answer
    
it works but it returned me multiple rows for the same ID, I only want 1 row for ID.. –  Marcx Oct 26 '11 at 10:52
    
@Marcx check my edit. - added group by –  hsz Oct 26 '11 at 10:54
    
MySQL will allow the lack of aggregate functions here, ORACLE will not. You have a GROUP BY after an ORDER by which won't compile. Other than using JOIN instead of , (and JOIN is a whole bunch better, thank you!) the query is not almost identical to what the OP tried to get the error message. –  MatBailie Oct 26 '11 at 11:18
    
Ok - I remember one case that I had to specify fields I group by in SELECT statement. What about SELECT table1.ID, table1.Date, table2.ID2, table2.val FROM .... ? –  hsz Oct 26 '11 at 11:22
    
The OP needs one record from table1 for each record in table2. Thus your use of GROUP BY (as well as the OP's). This will lead to multiple values in the date field, and thus need an aggregate function over that field. The OP has stated, however, that MAX() can't be used as the field is a string. This means that MAX(TO_DATE(date_field)) is need for your solution to work. –  MatBailie Oct 26 '11 at 11:31

In general, saying select * from in combination with group by is a bad idea. The expressions in the select clause need to be scalar, that is, either aggregate functions of the group, or unrelated to the grouping, or in the group by clause themselves. Select * pretty much guarantees that that will not be the case. You probably want something like this instead:

select t1.id, max(t1.date), t2.id, max(t2.val)
  from table1 t1
  join table2 t2 on t1.id=t2.id
  group by t1.id
  order by  max(t1.date) desc
share|improve this answer
    
the column date is a varchar(200) so the function MAX does not work... –  Marcx Oct 26 '11 at 10:56
    
why would you ever make a date column a varchar? In any case, to create an output like the one you want, you need some sort of aggregate function which tells the database which of the date values to take. –  wallenborn Oct 26 '11 at 12:23
    
I did not create this... And I also cannot alter it.. –  Marcx Oct 26 '11 at 12:38

Group by in oracle implies that you are trying to run an aggregate function (sum, count, etc.) on one of the columns. It appears that you are just looking to order by ID first and then the date. I would do something like this:

SELECT * 
FROM   table1
       JOIN table2 ON (table1.ID = table2.ID2)
ORDER BY ID,
         DATE DESC

If that is not what you are intending, then the answer is that you need each column in the select clause that is not part of an aggregate function to be in the group clause.

EDIT

In response to the comment:

It's probably best to filter table 1 down first as a subquery and then join to table2:

SELECT *
FROM   (SELECT DISTINCT ID,MAX(TO_DATE(DATE,'mm-dd-yyyy')) FROM Table1 GROUP BY ID) T1
       JOIN Table2 ON (T1.ID = Table2.ID2)
ORDER BY date DESC
share|improve this answer
    
Yeah, but this way I got multiple rows for the same ID, because and ID can have multiple 'date'.. I only want 1 row for ID, so using MYSQL I used group by that returned my only 1 record –  Marcx Oct 26 '11 at 10:50
    
@Marcx - Your comment confuses me, are you using MySQL or ORACLE? They behave differently, allow different syntax, and have different operators available to them... –  MatBailie Oct 26 '11 at 11:22
    
I'm using Oracle. The date column is varchar so I cannot use max() –  Marcx Oct 26 '11 at 11:46
    
This answer has MAX(TO_DATE(date)). Using TO_DATE() should allow MAX() to behave as you desire it to. –  MatBailie Oct 26 '11 at 11:48
    
using SELECT DISTINCT ID,MAX(TO_DATE(DATE,'YYYYMMDD')) FROM table1 return me a ORA-00937: not a single-group group function, btw the MAX(TO_DATE()) function works great unless I don't select the ID... –  Marcx Oct 26 '11 at 12:23

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