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I have table 'Images' I want to get the main image if exist, and if not, get the first row in the table. I use this:

SELECT Students.Id, Images.ImagePath
FROM Students INNER JOIN    
     Images 
     ON  Students.Id = Images.StudentId 
     AND (   (Images.IsMain = 1) 
          OR (Images.ImagePath = (
              SELECT TOP(1) ImagePath 
              FROM  Images 
              WHERE StudentId = Students.IdId)))
WHERE Students.Id = @StudentId

If there is no 'IsMain' in Images I get only one row, but if there is 'IsMain', I get the row twice.

http://sqlfiddle.com/#!3/3ade7/1

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"If there is no 'IsMain' in Images I get only one row, but if there is 'IsMain', I get the row twice." I want to get the "main" and if not exist, the first, not both. –  Mosh Feu Jan 21 '13 at 12:03

4 Answers 4

up vote 1 down vote accepted

Your problem is that you were selecting the IsMain image and the first image.

The following code selects the first row, which will be the IsMain one if it exists, otherwise the top row.

SELECT Students.Id, Images.ImagePath
FROM Students INNER JOIN    
    Images 
    ON  Students.Id = Images.StudentId 
    AND Images.ImagePath = (
        SELECT TOP(1) ImagePath 
        FROM Images 
        WHERE StudentId = Students.Id
        ORDER BY IsMain DESC) -- This line forces the IsMain image to be the top image returned.
WHERE Students.Id = 1
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Thanks RB. simple and smart. –  Mosh Feu Jan 21 '13 at 12:28
    
@mosh No problems :) I just wish I knew why it got downvoted! –  RB. Jan 21 '13 at 12:40

SELECT  a.*,
        CASE 
            WHEN b.StudentID IS NULL
            THEN c.ImagePath
            ELSE b.ImagePath
        END AS ImagePath
FROM    Students a
        LEFT JOIN
        (
            SELECT  StudentID, ImagePath
            FROM    Images
            WHERE   IsMain = 1
        ) b ON a.ID = b.StudentID
        LEFT JOIN
        (
            SELECT StudentID, ImagePath,
                    ROW_NUMBER() OVER (PARTITION BY  StudentID 
                                    ORDER BY ImagePath ASC) rn
            FROM    Images
        ) c ON c.rn = 1 AND
                a.ID = c.StudentID

UPDATE

much more better one,

SELECT  a.*,
        c.ImagePath
FROM    Students a
        LEFT JOIN
        (
            SELECT StudentID, ImagePath,
                    ROW_NUMBER() OVER (PARTITION BY  StudentID 
                                    ORDER BY IsMain DESC) rn
            FROM    Images
        ) c ON  c.rn = 1 AND
                a.ID = c.StudentID
-- WHERE    a.ID = 1   -- remove this if you want for specific Student

If the student is required to have atleast one record on table Images, then change LEFT JOIN to INNER JOIN.

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I updated the answer. –  John Woo Jan 21 '13 at 12:35

How about,

SELECT 
            S.Id, 
            COALESCE(MI.ImagePath, OI.ImagePath) ImagePath
FROM 
            Students S
    LEFT JOIN   
            Images MI 
                ON  S.Id = MI.StudentId AND MI.IsMain = 1
    INNER JOIN
            Images OI
            ( 
              SELECT TOP 1 ImagePath 
              FROM  Images 
              WHERE StudentId = Students.IdId
            )
    WHERE
        Students.Id = @StudentId

You ought to specify an order by in the sub query so you know which other image would be chosen.

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why all those queries are so complicated, am i missing something ? its as simple as getting first row

SELECT top (1) Students.Id, Images.ImagePath
FROM Students INNER JOIN    
     Images 
     ON  Students.Id = Images.StudentId 
WHERE Students.Id = 1
order by case when Images.IsMain = 1  then 1 else 0 end desc 
--order by Images.IsMain = 1  
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you query returns invalid result, sqlfiddle.com/#!3/b5e2d/2 . it should be image2 –  John Woo Jan 21 '13 at 12:21
    
thx, corrected . –  WKordos Jan 21 '13 at 12:25
    
yes, this will work :D but for specific ID only. if you remove WHERE Students.Id = 1 and the OP wants to get all records, this query will fail because of TOP (1) –  John Woo Jan 21 '13 at 12:29
    
in his query was Students.Id = @StudentId so i assume that he wanted image for a single user, not all of them –  WKordos Jan 21 '13 at 12:37

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