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I'm trying to remember what the SQL solution is for this type of problem. Let's say I have the following tables:

tagged_nodes:

  1. nid - Node id. Foreign key.
  2. tid - Tag id. Foreign key.
  3. tnid - Primary key (irrelevant to the problem at hand).

nodes:

  1. nid - Node id. Primary key.
  2. ... - Other columns are irrelevant.

Assuming I have a set of tag ids (tid), I want to return the set of associated nodes (intersection). How do I do this?

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2 Answers 2

SELECT nodes.* FROM nodes                           /* Load node info */
JOIN tagged_nodes ON tagged_nodes.nid = nodes.nid   /* Match node-tag rows with node rows */
WHERE tagged_nodes.tid IN (1, 2, 3)                 /* Filter using tag relationship */
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Ah, thanks. Seemed like a simple problem. –  Hamster Nov 12 '11 at 23:23
    
Sure, glad to help! –  Jon Gauthier Nov 12 '11 at 23:24
    
@Hamster, are you sure you want this? The answer by Hans wouldn't be called an intersection. –  ypercube Nov 13 '11 at 0:24
    
I think you're right. Thanks for pointing that out. –  Hamster Nov 16 '11 at 21:42
up vote -1 down vote accepted

So here's what I've come up with:

$this->Sql = 'SELECT DISTINCT * FROM `nodes` `n`
    JOIN `tagged_nodes` `t` ON t.nid=n.nid';

 $i=0;
foreach( $tagids as $tagid ) {
     $t = 't' . $i++;
    $this->Sql .= ' INNER JOIN `tagged_nodes` `'.$t.'` ON '
        .$t'.tid=t.tid WHERE '.$t.'.tid='.$tagid;
}

It's in PHP since I need it to be dynamic, but it would basically be the following if I needed, say, only 2 tags (animals, pets).

SELECT * FROM nodes n JOIN tagged_nodes t ON t.nid=n.nid
INNER JOIN tagged_nodes t1 ON t1.tid=t.tid WHERE t1.tid='animals'
INNER JOIN tagged_nodes t2 ON t2.tid=t.tid WHERE t2.tid='pets'

Am I on the right track?

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