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In my table I have two fields among others : article_id and version

Example:

   article_id | version
   -----------|----------   
        5     |   1
        5     |   2
        6     |   1

What I want to do is to retrieve the latest version for each article id. (In my example I want to retrieve the article 5 version 2 object and article 6 and version 1 object).

The problem is that mysql is doing the group by instead of the order by so it returns to me the FIRST version of each article, but I want the opposite.

Do you have an idea please ?

Solution

select *
from article r
where r.version=(
 select max(version) 
 from article r2 
 where r2.article_id = r.article_id
);
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What have you tried so far? –  Neil Knight Feb 10 '11 at 15:11
    
SELECT * FROM ressources ORDER BY version DESC GROUP BY article_id –  sf_tristanb Feb 10 '11 at 15:13
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5 Answers

up vote 5 down vote accepted

Your question is a bit vague, but I believe is is more or less this what you want:

select * from (
   select
      <table>.*,
      row_number() over (partition by article_id order by version desc) r  
   from 
      <table>
)
where r = 1

The query returns one record for each (distinct) article_id. This record is the one with the highest version for the article_id returned.

So, together with a "test case", this can be seen in action:

create table tq84_resorces (
  id           number primary key,
  article_id   number not null,
  version      number not null
);

insert into tq84_resorces values (50, 5, 1);
insert into tq84_resorces values (60, 5, 2);
insert into tq84_resorces values (70, 6, 1);


select * from (
   select
      tq84_resorces.*,
      row_number() over (partition by article_id order by version desc) r  
   from 
      tq84_resorces
)
where r = 1

which returns:

        ID ARTICLE_ID    VERSION          R
---------- ---------- ---------- ----------
        60          5          2          1
        70          6          1          1
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Ok, i never saw such syntax :). Anyway i found a decent solution (see my edit.) Thanks for helping ;) –  sf_tristanb Feb 10 '11 at 15:43
    
Thanks for you test case ! indeed it works pretty well :-) –  sf_tristanb Feb 10 '11 at 15:48
    
@Tristan: The row_number() method is really the only way you should approach this. The self-join methods may be common in other databases but in Oracle it's not a very good solution. Analytic functions are much faster and even much simpler when you get used to them. –  jonearles Feb 11 '11 at 5:06
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select
    article_id,
    max(version) as Version

from article

group by article_id
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It returns me the wrong ID but the right article_id and version –  sf_tristanb Feb 10 '11 at 15:19
    
What do you mean "the wrong ID but right article_id and version"? –  Adam Robinson Feb 10 '11 at 15:26
    
it returns : id: 5 (bad) / article_id : 5 (good) / version: 2 (good) –  sf_tristanb Feb 10 '11 at 15:31
    
the correct id matching article_id 5 and version 2 is 3 and not 5. That's what i meant :) –  sf_tristanb Feb 10 '11 at 15:32
    
@Tristan: You never mentioned an ID column. Using this approach will only give the correct article_id and version column. I could give a SQL Server-compliant query using row_number(), but I don't know how to deal with ranking/row numbering in Oracle, which is what you'd have to do. Why do you need the ID column? –  Adam Robinson Feb 10 '11 at 15:33
show 4 more comments
select yt.id, yt.article_id, yt.version
    from (select article_id, max(version) as max_version
              from YourTable
              group by article_id) t
        inner join YourTable yt
            on t.article_id = yt.article_id
                and t.max_version = yt.version
share|improve this answer
    
It returns me the wrong ID but the right article_id and version –  sf_tristanb Feb 10 '11 at 15:20
    
@Tristan: Edited my answer. –  Joe Stefanelli Feb 10 '11 at 15:44
    
Thanks, it works much better :-) –  sf_tristanb Feb 10 '11 at 15:48
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first you should change the version column into integer (maybe with a prefix coulumn if you strongle neet the String), than you are able to select MAX(version) Group By article_id

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Will this work:

select articleId, (select top 1 version 
                  from article ar2 
                  where ar2.articleId = ar.articleId
                  order by version desc) as version
from article ar
group by ar.articlId

Works in sql server 2005, did not test in mysql.

share|improve this answer
    
ergh, it must be Oracle compliant, i totally forgot that. and Top is not oracle compliant :o –  sf_tristanb Feb 10 '11 at 15:22
    
Sorry missed the oracle part. –  Haeflinger Feb 10 '11 at 15:27
    
my bad, i tagged it as mysql :) –  sf_tristanb Feb 10 '11 at 15:29
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