I have a (simplified) scenario that goes something like this:

Document table:

   id   |    title   |  text
   ===========================
    1   |    Title1  |  "AAA"
    2   |    Title2  |  "BBB" 
    3   |    Title3  |  "CCC"

Document pictures

   id   |   doc_id    |  url
   ===================================================
    1   |    1       |  "http://some.domain.com/1.jpg"
    2   |    1       |  "http://some.domain.com/2.jpg"
    3   |    2       |  "http://some.domain.com/3.jpg"
    4   |    4       |  "http://some.domain.com/3.jpg"

Let's name these table documents and doc_pictures. I'm trying to create a query that will return all the documents that have more than one picture. In this example this means returning only the document with id 1.

Limitations and assumptions:

  1. Both of the tables are huge thus complex queries might take too long.
  2. I don't care how many foreign picture rows the document has. I only care that it's more than 1.
  3. I don't mind if the output is the id of the document or the row from the pictures table.
  4. I don't mind getting just a small subset of such documents (for example 10 documents that have more than 1 picture, and not all of the documents that have more than 1 picture)

The db is Mysql

up vote 9 down vote accepted

This can be used to get the document ids.

 select 
     doc_id,
     count(1)
 from 
     doc_pictures
 group by 
     doc_id
 having 
     count(1) > 1

And then you can use a where in on the documents table using those ids.

Something like this:

 select 
     *
 from
     documents
 where 
     id in (
        select 
            doc_id                
        from 
            doc_pictures
        group by 
            doc_id
        having 
            count(1) > 1
     )
select doc_id
from doc_pictures
group by doc_id
having count(distinct url) > 1;
  • This did not work for me. – Pistos Apr 19 '16 at 20:33
  • What was the problem?? – muhmud Apr 29 '16 at 4:13
  • It did not return the correct results. The voted answer, above, did. – Pistos May 1 '16 at 20:04
  • You're right! Updated the answer – muhmud May 4 '16 at 2:40

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