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I want to have the following output.

I would like to have celebrity and their photos in database. Each celebrity might have more than one photo. Each photo might have more than one celebrity

If a celebrity has more than one photo, I need to get a random photo with celebrity name.

I designed the table like this.

Celebrity table (Celebrity):

id 
name

Photos table (Photos):

id
photo location

A join table for celebrity and Photos (Celebrity_Photos):

Celebrity id
Photos id

But I don't know the right query to get the expected result. Or i might have designed the table wrongly.

Suggest me the best way to do this.

I know the join query. But i know the basic join query. It gives the info like this.

celeb1 photo1
celeb1 photo2
celeb2 photo1

But i am looking to acheive

 celeb1 photo2
 celeb2 photo1

OR

celeb1 photo1
celeb2 photo1
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closed as not a real question by deceze, John Conde, Brian Hoover, bmargulies, Jocelyn Jan 26 '13 at 23:45

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

6 Answers 6

The photo with the minimum id for every celebrity:

SELECT 
    c.*                        -- columns you need from Celebrity
  , p.*                        -- and Photo tables
FROM 
    celebrity AS c
  LEFT JOIN 
    ( SELECT celebrity_id
           , MIN(photo_id) AS photo_id
      FROM celebrity_photo
      GROUP BY celebrity_id
    ) AS cp
      ON cp.celebrity_id = c.celebrity_id
  LEFT JOIN 
    photo AS p
      ON p.photo_id = cp.photo_id ;

A random photo for every celebrity:

SELECT 
    c.*                        -- columns you need from Celebrity
  , p.*                        -- and Photo tables
FROM 
    celebrity AS c
  LEFT JOIN 
    photo AS p
      ON p.photo_id = 
        ( SELECT cp.photo_id 
          FROM celebrity_photo AS cp
          WHERE cp.celebrity_id = c.celebrity_id 
          ORDER BY RAND()
              LIMIT 1
        ) ;
share|improve this answer
    
I am not getting random photo. It always gives the first photo for that celebrity. –  Mahesh Jan 26 '13 at 16:06
    
Edited. Missed taht in first reading. –  ypercube Jan 26 '13 at 16:12
    
I am getting different result everytime. I tried to get name, photo and photo_location. Sometimes, the photo and photo_location is NULL. Sometimes, It lists all the photos of the celebrity. I got more than one result everytime. –  Mahesh Jan 26 '13 at 16:17
    
Did you try the (2nd) query as it is? Are there photos for every celebrity? I can't see how you get Nulls if there are. –  ypercube Jan 27 '13 at 8:48

Use this:

SELECT * FROM (SELECT RAND() RND_INDEX, P.PHOTO_ID, P.PHOTO_LOCATION, C.ID, C.NAME
FROM PHOTOS P, CELEBRITY_PHOTOS CP, CELEBRITY C
WHERE P.PHOTO_ID = CP.PHOTO_ID AND CP.ID = DESIRED_CELEBRITY AND CP.ID = C.ID) A ORDER BY RND_INDEX LIMIT 1
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Assumption - you are not taking into consideration photos that have multiple celebrities. Correction - correct term for what you call a join table is an association table.

I believe your syntax is fine. The random aspect adds a little bit of complexity and would like need to be done outside the query.


Not sure how your tables or code will be set-up but here is the query assuming you are looping through the list of celebrity or have a celebrity id or name (I use $celebrity_id).

SELECT PHOTO_T.id 
FROM PHOTO_T, CELEBRITY_PHOTO_A, CELEBRITY_T
WHERE PHOTO_T.id = CELEBRITY_PHOTO_A.photo_id AND CELEBRITY_PHOTO_A.celebrity_id = CELEBRITY_T.id AND CELEBRITY_T.id = $celebrity_id
ORDER BY RAND() LIMIT 0,1;

Performance may be slow with the RAND() but it will get you what you want.

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My approach:

[CELEB]  
celeb_id
celeb_name  

[CELEB_PHOTO]  
celeb_photo_id
celeb_id
photo_name

Your design is fine, I would start with the below query if there is not a huge amount of records at the mo:

SELECT * FROM `CELEB_PHOTO` WHERE `celeb_id` = $celeb_id ORDER BY RAND() LIMIT 1 

You then could get the name of the celeb by query the CELEB table.

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I could be wrong but, I'm not sure the photos table contains a celebrity_id column? Looks like he's using a Join Table? –  PGallagher Jan 26 '13 at 15:52
    
I could be wrong also. I got the design like: Photos(photo_id, celeb_id, photo_name). –  mallix Jan 26 '13 at 15:54
    
Yes i dont have celebrity_id in photos table –  Mahesh Jan 26 '13 at 15:54
    
Oh, so you want a PIVOT table for many to many relationship ? –  mallix Jan 26 '13 at 15:55
1  
It depends. If the 2 celebs could have the same photo assigned or not. –  mallix Jan 26 '13 at 15:56

You don't need the join table (association table) as its not 'many to many' add another column to your photos table celeb_id you might want to designate it a foreign key.. and then use SELECT * FROM Celebrity c LEFT OUTER JOIN Photos p ON c.celeb_id =p.celeb_id order by rand() limit 1;

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I've assumed that you may have several celebrities in 1 photo. If so, your design is just fine.

So, how about this;

SELECT Celebrity.name, Photos.photo_location
FROM Celebrity_Photos
INNER JOIN Celebrity on Celebrity.id = Celebrity_Photos.celeb_id
INNER JOIN Photos on Photos.id = Celebrity_Photos.photo_id
ORDER BY rand()
LIMIT 1

I assume you only want 1 photo returning. If not, then simply remove the line;

LIMIT 1
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