I have an SQL setup akin to the following:

ARTICLES

  • id (PK)
  • name

TAGS

  • id (PK)
  • tag

...and a third table logging associations between the two, since there can be multiple tags to each article:

ARTICLE_TAG_ASSOCS

  • id (PK)
  • article_id (FK)
  • tag_id (FK)

Via this question I managed to construct a query that would find articles that were tagged with at least one of a number of tags, e.g.

SELECT articles.*
FROM articles
JOIN article_tag_assocs ata ON articles.id = ata.article_id
JOIN tags ON tags.id = ata.tag_id
WHERE tags.tag = 'budgie' OR tags.tag = 'parrot';

Question: How can I alter the above to find articles that match ALL tags, i.e. both 'budgie' and 'parrot', not just one?

Clearly modifying the logic to

WHERE tags.tag = 'budgie' && tags.tag = 'parrot';

...is logically flawed, since MySQL is considering each tag in isolation, one at a time, but hopefully you get what I mean.

  • @Barmar: I'm sure this same question has been asked and answered before, but I'm not sure the question that was identified as a duplicate is actually the same question; I think it would be difficult for OP to extend the answers given to that question into a solution for the question OP asked. – spencer7593 Jul 1 '14 at 21:29
  • Totally agree!.. – Utkanos Jul 1 '14 at 21:30
  • @spencer7593 I think it's essentially the same question, it just requires an additional join. But since you don't think the OP will be able to extrapolate that much, I've reopened. – Barmar Jul 1 '14 at 21:33
  • Well handled, @Barmar, thanks. – Utkanos Jul 1 '14 at 21:36
up vote 2 down vote accepted

There are several workable approaches.

One approach is to perform separate JOIN operations for each tag. For example:

SELECT articles.*
  FROM articles

  JOIN article_tag_assocs ata
    ON ata.article_id = articles.id
  JOIN tags ta
    ON ta.id = ata.tag_id
   AND ta.tag = 'budgie'

  JOIN article_tag_assocs atb
    ON atb.article_id = articles.id
  JOIN tags tb
    ON tb.id = atb.tag_id
   AND tb.tag = 'parrot'

Note that this can return "duplicate" rows if a given articles is associated to the same tag value more than once. (Adding the DISTINCT keyword or a GROUP BY clause are ways to eliminate the duplicates.)


Another approach, if we are guaranteed that a given article has no duplicate tag values, is to use an inline view to get the list of article_id that are associated with both tags, and then JOIN that set to the articles table. For example:

SELECT a.*
  FROM ( SELECT ata.article_id
           FROM article_tag_assocs ata
           JOIN tags t
             ON t.id = ata.tag_id
          WHERE t.tag IN ('budgie','parrot')
          GROUP BY ata.article_id
         HAVING COUNT(1) = 2
       ) s
   JOIN articles a
     ON a.id = s.article_id 

Note that the literal "2" in the HAVING clause matches the number of values in the predicate on the tag column. The inline view (aliased as s) returns a distinct list of article_id, and we can join that to the articles table.

This approach is useful if you wanted to match, for example, at least three out of four tags. We could use lines like this in the inline view query.

          WHERE t.tag IN ('fee','fi','fo','fum')

         HAVING COUNT(1) >= 3

Then, any article that matched at least three of those four tags would be returned.

These aren't the only ways to return the specified result, there are several other approaches.


As Roland's answer pointed out, you can also do something like this:

   FROM articles a
  WHERE a.id IN ( <select article id values related to tag 'parrot'> )
    AND a.id IN ( <select article id values related to tag 'bungie'> )

You could also use an EXISTS clause with a correlated subquery, though this approach doesn't usually perform as well with large sets, due to the number of executions of the subquery

  FROM articles a
  WHERE EXISTS ( SELECT 1
                   FROM article_tag_assocs s1
                   JOIN tags t1 ON t1.tag = 'bungie'
                  WHERE s1.article_id = a.id
               )    
    AND EXISTS ( SELECT 1
                   FROM article_tag_assocs s2
                   JOIN tags t2 ON t2.tag = 'parrot'
                  WHERE s2.article_id = a.id
               )

NOTE: in this case, it is possible to reuse the same table aliases within each subquery, because it doesn't lead to ambiguity, though I still prefer distinct aliases because the table aliases show up in the EXPLAIN output, and the distinct aliases make it easier to match the rows in the EXPLAIN output to the references in the query.)

  • Interesting - I hadn't realised you could join to the same table twice. Is the different alias naming (ata vs atb, ta vs tb) significant? Would it fail without that? – Utkanos Jul 1 '14 at 21:11
  • 1
    Table aliases have to be distinct within the query. One reference to the table doesn't necessarily require an alias, but any second, third, etc. reference to the same table will require a table alias. You can't assign the same table alias to two different references (at the same level within the query) without MySQL objecting to an "ambiguous" reference. – spencer7593 Jul 1 '14 at 21:16
  • 10.5k without realising that? I'm guessing your forte lies in other areas. ;-) – Strawberry Jul 1 '14 at 21:18
  • You can make the second query duplicate-safe by changing COUNT(1)to COUNT(DISTINCT tb.tag). And here's a side remark to COUNT(1): this is the same as COUNT(*), only more complicated. With COUNT(*) you say "count records"; with COUNT(1) you say "select a 1 for each record and then count all records for which this 1 is not null", which is all records, too, only quite obfuscated. Usually, however, dmbs see through this and simply count records, rather then doing all the work you actually tell them to do. – Thorsten Kettner Jul 1 '14 at 21:26
  • 1
    COUNT(*) and COUNT(1) are operationally the same, aren't they? Doesn't the processor just convert to COUNT(1) at run time? – Strawberry Jul 1 '14 at 23:18

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.