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i have this query and count(artikel.artikelid) returns 2 instead of 3. i know why, because i have the artikelid twice (8135) in the 'where in...' part but i would like it to return 3

here is my problem query:

SELECT    cg.CategorieGroepID, 
          cg.GroepsNaam, 
          cg.BenodigdAantal, 
          cg.ActieCatId, 
          cg.ActieActief, 
          count(Artikel.ArtikelID)
FROM      CategorieGroep cg INNER JOIN
          Categorie ON cg.CategorieGroepID = Categorie.CategorieGroepID INNER JOIN
                  Artikel ON Categorie.CategorieID = Artikel.CategorieID
                  where artikel.artikelid in(8135,8135,7914)
group by  cg.CategorieGroepID, 
          cg.GroepsNaam, 
          cg.BenodigdAantal, 
          cg.ActieCatId, 
          cg.ActieActief

too clear things up, the where artikel.artikelid in(8135,8135,7914) part is meant to be used later for a dynamic array of artikelid's

people can have the same artikelid twice and then the query should return 2 instead of one. i am sorry if my question is not totally clear.

it is meant for building an overview of a users shoppingbasket. people can order artikelid 8135 (for instance) twice or even more and the query should return the amount of products by main categorie

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Why do you want it to return 3 if there are only 2 articles? –  Theresa Sep 30 '09 at 13:28
    
can't you just use count(Artikel.*) instead? –  marc_s Sep 30 '09 at 13:47
    
@ capsoft - Please explain, in a sentence, exactly what this query is trying to do. What information are you trying to get from the database? I think if you can answer that, I think it will be clear to the people on this forum as to what the query should be. –  J. Polfer Sep 30 '09 at 14:08
    
@sheepsimulator - in my app i have a dynamic array of artikelid's. some are double, some a triple in the array, some just single. now i want to group them by their main category id. double artikelid's should be seen as single so that when you count it, you get more then just the amount of unique artikelid's –  JP Hellemons Sep 30 '09 at 14:11
    
@ capsoft - Most of the people below are telling you that it can't be done the way you asked using the COUNT() function. This is not because of a problem with COUNT() but because you are asking something that doesn't make sense to a relational database. It can't COUNT() the same artikelid twice or three times because there is only one of them! Because the database only counts what is actually there, not what you put in your list. I think you need to re-evaluate how you are getting your count, and I don't think you should rely on the database for it. Cf. Lars D's answer. –  J. Polfer Oct 1 '09 at 17:52

8 Answers 8

In order to generate three records, you need to join your table with another table that contains three records. Some SQL database systems allow you to specify this as a subquery, to specify code or to make a memory table that contains (8135,8135,7914), so that you can join it. But if your SQL engine is very simple, you actually need to insert it into a real table.

However, I assume that these numbers come from program code, so if you program source code knows the count of numbers, why not use that, instead?

Third solution: If your SQL database supports union inside subselects, then you can replace your "join artikel" with "join (select ... from artikel where artikelid=8135 ... union select ... from artikel where artikelid=8135 ... union select ... from artikel where artikelid=7914).

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i think that you have a point with the union part, but i don't know exactly what you mean. can you give me an example please? –  JP Hellemons Sep 30 '09 at 13:55

Note that it doesn't matter how many times you have a value in the IN clause list, it will still only match once per row.

So the part about you having 8135 twice in the list, that's not the reason you get 2 or 3 or whatever. Internally it will count as one unique value to match against.

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ok, but how do i resolve it? –  JP Hellemons Sep 30 '09 at 13:32

It will only return 2 because one of them matches the (redundant) condition "in (8135, 8135...".

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ok, but how can i fix it. sorry if my question was not clear –  JP Hellemons Sep 30 '09 at 13:32
    
There is no fixing - which 3rd one are you expecting to get? –  Otávio Décio Sep 30 '09 at 13:34

If there aren't actually 2 records with the artikelid of 8135 it won't return 3. Why not just do

SELECT cg.CategorieGroepID, cg.GroepsNaam, cg.BenodigdAantal, cg.ActieCatId, cg.ActieActief, 3?

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well i wanted to make the where in ... dynamic so that i can pass in an array of id's. –  JP Hellemons Sep 30 '09 at 13:34

If you know you want that column to return 3, you can end the select clause with "3" instead of count(Artikel.ArtikelID).

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Can't you add a rowindex column to have consecutive values and then count for this column?

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You can put the value 8135 into the In ( ... ) clause as many times as you want and it will not affect how many rows are returned with that value, the Count(ArtikelID) should be the same even if it is listed 10 times. If the query is returning '2', then that means there are 2 rows in the returned rowset... One row with value 8135, and one row with value 7914.

What exactly are you trying to count wit hthe value of '3' that you are trying to ghet the query to produce? The number of entries in your In Clause ? or something related to the data in the table?

If you are trying to get the row with value 8135 to be counted twice, You can't do that by listed the value twice in the In clause.

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ok charles, how can i make it counted that value twice? –  JP Hellemons Sep 30 '09 at 13:42
up vote 0 down vote accepted
SELECT    cg.CategorieGroepID, 
      cg.GroepsNaam, 
      cg.BenodigdAantal, 
      cg.ActieCatId, 
      cg.ActieActief, 
      count(a.ArtikelID),
      case cg.BenodigdAantal 
      when 0 then 0 else count(a.ArtikelID)/cg.BenodigdAantal end as gratisart
FROM      CategorieGroep cg INNER JOIN
      Categorie ON cg.CategorieGroepID = Categorie.CategorieGroepID INNER JOIN
              Artikel a ON Categorie.CategorieID = a.CategorieID,
               (SELECT artikelid FROM Artikel WHERE artikelid=8135 UNION ALL
							SELECT artikelid FROM Artikel WHERE artikelid=8135 UNION ALL
							SELECT artikelid FROM Artikel WHERE artikelid=8135 UNION ALL
							SELECT artikelid FROM Artikel WHERE artikelid=7600 UNION ALL
							SELECT artikelid FROM Artikel WHERE artikelid=7914)  b
							where a.artikelid = b.artikelid
group by  cg.CategorieGroepID, 
      cg.GroepsNaam, 
      cg.BenodigdAantal, 
      cg.ActieCatId, 
      cg.ActieActief
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