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I have three tables, images, tags and links(the table below)

   ImageNO | TagNO
     1     | Sport
     2     | Cars
     3     | Sport
     4     | Sport
     3     | Cars
     1     | Music
     2     | Sport

(Obviously TagNO would be a number in the actual table)

What I want to do is allow filtering such that users can select any number of tags and images will be filtered to only the images with all of the tags chosen. For example if a user selects "sport", "imageNO" 1, 3 , 4 and 2 would be displayed. If the user also selects "cars" the query is refined and only "imageNO" 3 and 2 will be displayed.

I have tried a number of things so far from examples across the web, this is the closest i have come to...

SELECT *
 FROM  images 
  LEFT JOIN links 
   ON INO = links.INO
  LEFT JOIN tags 
   ON tags.TagNO = links. TagNO
  WHERE links. TagNO
  IN ($tags)
  GROUP BY INO
  HAVING COUNT( INO ) >1

($tags) is an array of tag numbers.

The problem with this is an image with only one tag will never be displayed as the count number is = 1 not > 1. Any help would be much appreciated, thanks in advance.

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1  
Please stop editing and removing the formatting that others have helpfully provided. It is much easier for someone to help you if the data and SQL provided is in an easy to read format. – LOD121 Nov 21 '12 at 22:21
    
You could probably do this with a bitmask. If I can think of a specific implementation I'll attach it. – ethrbunny Nov 21 '12 at 22:22
up vote 0 down vote accepted

You have to join multiple times on the same table. Use aliases to this end:

SELECT * FROM images
  LEFT JOIN links AS l1 ON l1.INO = images.INO
  LEFT JOIN tags AS t1 ON t1.TagNO = l1.TagNO
  LEFT JOIN links AS l2 ON l2.INO = images.INO
  LEFT JOIN tags AS t2 ON t2.TagNO = l2.TagNO
  [...]
  WHERE t1.tagNO = $tag1
    AND t2.tagNO = $tag2
  [...]
share|improve this answer
    
Thanks for replying kmkaplan, $tags is being passed as an array, so there is an undefined number of tags, would this still work? – user1535190 Nov 21 '12 at 23:17
    
Yes… But you will have to build a SQL with as many links and tags joins as there are elements in $tags. That is you need to build the SQL request at runtime. – kmkaplan Nov 21 '12 at 23:19
    
OK thanks i will give it a go. – user1535190 Nov 21 '12 at 23:25

I think this question addresses the same problem, and the accepted answer's approach would probably work for you too. Something along the lines of:

SELECT * 
FROM images i
JOIN links l ON l.INO = i.INO
JOIN tags t ON t.TagNO = l.TagNO
WHERE l.TagNO IN ('sports','cars')
GROUP BY i.INO
HAVING COUNT(DISTINCT t.TagNO) = 2

...the important bit being the COUNT(DISTINCT t.TagNO) = [number of tags]

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