-1

I have a table structured like this:

ID    NAME     SURNAME      EXTRA       TYPE
______________________________________________

1     MARIO     ROSSI       RED          10
2     MARCO     VERDI       YELLOW       10
3     GIANNI    BLU         TEACHER      20
4     LUCA      BLU         STUDENT      20 
5     LUCA      ROSSI       GREEN        10 
6     MARIA     GIALLA      10/08/05     30  
7     MARTA     ROSA        11/01/79     30
8     FRANCO    NERO        BARMAN       20
9     MARY      NERI        05/09/88     30
10    MAX       BLU         06/08/98     30

Now I need to order the query by name, surname and (extra[DESC] where type=30), so with this 3rd condition I mean that I would arrange all extra data where type is 30 in descending order:

....
6     MARIA     GIALLA      10/08/05     30  
10    MAX       BLU         06/08/98     30
9     MARY      NERI        05/09/88     30
7     MARTA     ROSA        11/01/79     30
....

So I've tried this:

select * from my_table order by name, surname, if(my_table.type=30, extra desc, extra asc) 

but it gives me an Sql Error.

Thanks for your support.

Thanks to other programmers, and in according to my data, I solved in this way: ORDER BY name, surname, if(TYPE=30, STR_TO_DATE(EXTRA,'%d/%m/%Y %H.%i'), null) DESC

8
  • 1
    would you mind sharing the exact error you get?
    – Olli
    Nov 4, 2015 at 13:21
  • Also, I don't understand how the desired result set conforms to the requirement. Do you want the results that are dates (i.e. type 30) to be stored in descending order of date? If so, consider storing dates as if they were proper date data types (i.e. yyyy/mm/dd)
    – Strawberry
    Nov 4, 2015 at 13:28
  • It's rather non-sensical to order by date when all combinations of name and surname are unique.
    – Strawberry
    Nov 4, 2015 at 13:51
  • Olli- Mysql gives me a general Error. Nov 4, 2015 at 14:24
  • Strawberry- Yes, I desire have the result in date type descending but the first 2 conditions are By name, surname Nov 4, 2015 at 14:26

3 Answers 3

1

Try this query :-

ORDER BY 
IF(type='30', extra, 0) DESC,
IF(type !='30', extra, 0) ASC
2
  • Thanks for you reply but this solution doesn't work :/ Nov 4, 2015 at 14:24
  • Aside from needing the name/surname before the extra, you were on track with my thinking.
    – DRapp
    Nov 4, 2015 at 15:25
1

More usefully, consider the following:

    DROP TABLE IF EXISTS my_table;

    CREATE TABLE my_table
    (ID INT NOT NULL AUTO_INCREMENT PRIMARY KEY
    ,NAME VARCHAR(12) NOT NULL     
    ,SURNAME VARCHAR(12) NOT NULL      
    ,EXTRA VARCHAR(12) NOT NULL      
    ,TYPE INT NOT NULL
    );

    INSERT INTO my_table VALUES
    ( 1,'MARIO','ROSSI','RED','10'),
    ( 2,'MARCO','VERDI','YELLOW','10'),
    ( 3,'GIANNI','BLU','TEACHER','20'),
    ( 4,'LUCA','BLU','STUDENT','20'),
    ( 5,'LUCA','ROSSI','GREEN','10'),
    ( 6,'MARIA','GIALLA','2005/08/10','30'),
    ( 7,'MARTA','ROSA','1979/01/11','30'),
    ( 8,'FRANCO','NERO','BARMAN','20'),
    ( 9,'MARY','NERI','1988/09/05','30'),
    (10,'MAX','BLU','1998/08/06','30'),
    (11,'MARIO','ROSSI','PLUMBER','20'),
    (12,'MARCO','VERDI','TAILOR','20'),
    (13,'GIANNI','BLU','YELLOW','10'),
    (14,'LUCA','BLU','BLUE','10'),
    (15,'LUCA','ROSSI','BAKER','20'),
    (16,'MARIO','ROSSI','2004/08/10','30'),
    (17,'MARCO','VERDI','1978/01/11','30'),
    (18,'FRANCO','NERO','RED','10'),
    (19,'FRANCO','NERO','1987/09/05','30'),
    (20,'MARIA','GIALLA','1995/08/06','30');

    SELECT name
         , surname
         , MAX(CASE WHEN type = 10 THEN extra END) colour
         , MAX(CASE WHEN type = 20 THEN extra END) occupation
         , MAX(CASE WHEN type = 30 THEN extra END) date
      FROM my_table
     GROUP 
        BY name
         , surname
     ORDER 
        BY name
         , surname
         , extra
         , type
         , date DESC;
+--------+---------+--------+------------+------------+
| name   | surname | colour | occupation | date       |
+--------+---------+--------+------------+------------+
| FRANCO | NERO    | RED    | BARMAN     | 1987/09/05 |
| GIANNI | BLU     | YELLOW | TEACHER    | NULL       |
| LUCA   | BLU     | BLUE   | STUDENT    | NULL       |
| LUCA   | ROSSI   | GREEN  | BAKER      | NULL       |
| MARCO  | VERDI   | YELLOW | TAILOR     | 1978/01/11 |
| MARIA  | GIALLA  | NULL   | NULL       | 2005/08/10 |
| MARIO  | ROSSI   | RED    | PLUMBER    | 2004/08/10 |
| MARTA  | ROSA    | NULL   | NULL       | 1979/01/11 |
| MARY   | NERI    | NULL   | NULL       | 1988/09/05 |
| MAX    | BLU     | NULL   | NULL       | 1998/08/06 |
+--------+---------+--------+------------+------------+

You can join a result like this (or actually a much simpler alternative - but I'll stick with this for now) back onto the original table to order the results as you'd like. I've added in the STR_TO_DATE function just for reference. Obviously it's unnecessary here, and very slightly different from how it would need to be in your version...

 SELECT x.*
      , y.date
   FROM my_table x
   LEFT
   JOIN
      ( SELECT name
             , surname
             , MAX(CASE WHEN type = 30 THEN extra END) date
          FROM my_table
         GROUP
            BY name
             , surname
      ) y
     ON y.name = x.name
    AND y.surname = x.surname
  ORDER
     BY x.name
      , x.surname
      , STR_TO_DATE(y.date,'%Y/%m/%d') DESC;

+----+--------+---------+------------+------+------------+
| ID | NAME   | SURNAME | EXTRA      | TYPE | date       |
+----+--------+---------+------------+------+------------+
| 18 | FRANCO | NERO    | RED        |   10 | 1987/09/05 |
| 19 | FRANCO | NERO    | 1987/09/05 |   30 | 1987/09/05 |
|  8 | FRANCO | NERO    | BARMAN     |   20 | 1987/09/05 |
| 13 | GIANNI | BLU     | YELLOW     |   10 | NULL       |
|  3 | GIANNI | BLU     | TEACHER    |   20 | NULL       |
| 14 | LUCA   | BLU     | BLUE       |   10 | NULL       |
|  4 | LUCA   | BLU     | STUDENT    |   20 | NULL       |
| 15 | LUCA   | ROSSI   | BAKER      |   20 | NULL       |
|  5 | LUCA   | ROSSI   | GREEN      |   10 | NULL       |
| 17 | MARCO  | VERDI   | 1978/01/11 |   30 | 1978/01/11 |
|  2 | MARCO  | VERDI   | YELLOW     |   10 | 1978/01/11 |
| 12 | MARCO  | VERDI   | TAILOR     |   20 | 1978/01/11 |
|  6 | MARIA  | GIALLA  | 2005/08/10 |   30 | 2005/08/10 |
| 20 | MARIA  | GIALLA  | 1995/08/06 |   30 | 2005/08/10 |
| 11 | MARIO  | ROSSI   | PLUMBER    |   20 | 2004/08/10 |
| 16 | MARIO  | ROSSI   | 2004/08/10 |   30 | 2004/08/10 |
|  1 | MARIO  | ROSSI   | RED        |   10 | 2004/08/10 |
|  7 | MARTA  | ROSA    | 1979/01/11 |   30 | 1979/01/11 |
|  9 | MARY   | NERI    | 1988/09/05 |   30 | 1988/09/05 |
| 10 | MAX    | BLU     | 1998/08/06 |   30 | 1998/08/06 |
+----+--------+---------+------------+------+------------+
14
  • Thanks, but the problem is that I have a field named "extra" which contains date, char, int ecc.... and I need to add at the end of conditions that already exists ( in ORDER BY ) this: show me all records (in DESC way) where the type field is 60 ( we know that the field=60 is a date in this format 10/05/2015 15.50). thanks a lot for your support Nov 4, 2015 at 15:49
  • @FrancescoL. You can join this result back to the original query to order the core data set in the correct manner.
    – Strawberry
    Nov 4, 2015 at 15:56
  • I discover that probably the problem is that I have the field EXTRA as TEXT (I can't change this) so, when in this field there is a date mysql consider it as a string and it order those strings. So I need to convert before the text (in this case 10/08/2015 13.45) in a format date with STR_TO_DATE and then maybe I'll be able to make the order by correctly. Right? Or there is a simplest way to resove it? Nov 4, 2015 at 16:21
  • You should store dates as dates (i.e. YYYY/DD/MM) - even where you can't take advantage of the DATE data type. Really, even when using an EAV model such as this, you should still store data in its respective data types, so all integers go in an INTs column, dates go in a DATEs column, and strings go in a VARCHAR column. If it was me, I would construct a separate table for each data type.
    – Strawberry
    Nov 4, 2015 at 16:37
  • Well, then you've answered your own question ;-)
    – Strawberry
    Nov 4, 2015 at 16:43
0

It should be like this:

SELECT *
FROM Tabletest
order by 
  CASE WHEN type <> 30 THEN 1 ELSE 2 END,
  CASE WHEN type <> 30 THEN Name END,
  CASE WHEN type <> 30 THEN Surname END,
  CASE WHEN type = 30 THEN STR_TO_DATE(extra,'%m/%d/%Y') ELSE 0 END DESC

this will order the results as:

enter image description here

10
  • Can you provide a demo?
    – Strawberry
    Nov 4, 2015 at 13:54
  • how can I provide a demo? Nov 4, 2015 at 14:29
  • Thanks Mahmoud but also this solution can't help me: the order of EXTRA is casual and not for decr date :/ Nov 4, 2015 at 14:30
  • Mahmoud the result you posted is what I need! Unfortunatly I tried to reproduce it on my database but the order of the last set (Type=60) is random and not by date DESC. Nov 4, 2015 at 15:02
  • @MahmoudGamal, sincerely in db the date is rapresented as: 18/03/2015 10.30 but I don't think the problem is that, I replaced the code in this way: CASE WHEN TYPE= 30 THEN STR_TO_DATE(EXTRA,'%d/%m/%Y H.i') ELSE 0 END DESC Nov 4, 2015 at 15:23

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