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A complex one here? (for me at least). I have a table called "tickets", with the "id" column being the unique key. I have another table called "Labels", which doesnt have a unique key (from the looks of it). In "Tickets" we store ticket information (messages, who made the ticket etc). We can add a label to a ticket when we create it, so that we can search for tickets with those labels e.g. "review later".

What I am trying to do, is a reverse type query e.g. show me all tickets that dont have a specific label associated to it e.g. dont show me any tickets with "review later". IF A TICKET DOESNT HAVE ANY LABELS NOTHING IS PUT IN THE LABEL TABLE. I just cant get any type of query I write, by hand or with a query builder to work.

Im my image, you can see Tickets.id has 174 against it, which is also shown in Labels.ticket_id 174 with 2 x Labels set against it.

No matter what query, join, does, does not etc I try, I either get back no results OR for some strange reason, I still get ticket 174 showing up.

Here is the most simple query I have tried.. however, I think Ive tried about 30 iterations by now from simple to very complex.

    SELECT tickets.id
    FROM
      tickets, labels_tickets
    WHERE
      tickets.id <> labels_tickets.ticket_id
    GROUP BY
      tickets.id

Can anyone suggest why this wouldnt work or think of any method to build a statment that says:

Show me all tickets.id from tickets that doesnt have the label "MyLabel" or doesnt have a value at all in the Labels table.

Many thanks!

share|improve this question
up vote 1 down vote accepted
    SELECT tickets.id 
    FROM 
      tickets 
    WHERE 
      tickets.id NOT IN (SELECT ticket_id from labels_tickets where labels_tickets.label = 'out of hours' or labels_tickets.label = null) 
    GROUP BY 
      tickets.id 

Try this I think it will work.

share|improve this answer
    
Ill give that a go too! Thankyou... this has been driving me nuts for hours now! – Will Oct 8 '12 at 17:38
    
If labels_tickes.ticket_id contains NULL values this will return incorrect results. If that is possible, then a where ticket_id is not null should be added to the sub-select. – a_horse_with_no_name Oct 8 '12 at 17:44
    
This seems to be working. Ive changed the query above to reflect one of my labels and also the null value! Many thanks. – Will Oct 9 '12 at 20:09
    
@Will you are welcome – Abubakkar Rangara Oct 10 '12 at 4:02

The following gets all tickets that do not have a ReviewLater label:

SELECT lt.ticket_id
FROM labels_tickets
group by lt.ticket_id
having sum(case when label = 'ReviewLater' then 1 else 0 end) = 0

This treats all the labels as a group. The sum counts the number that have the desired label. You want the ones where this count is 0.

I strongly recommend using a group by and having for such set-membership type queries. It generalized easily to arbitrary combinations of the presence or absence of tags.

share|improve this answer
    
Managed to get it working with Abu's answer. Many thanks for your help! – Will Oct 9 '12 at 21:30

You can do a outer join and select only the tickets where no ticket_id is found in the labels_tickets table.

SELECT t.id
FROM tickets t
LEFT OUTER JOIN labels_tickets l ON t.id = l.ticket_id
WHERE l.ticket_id IS NULL
GROUP BY t.id
HAVING sum(l.label = 'review later') = 0

See this JOIN examples

share|improve this answer
    
I think.. from the looks of it.. that worked! And I tried a left outer join and searched for null too! Im going to run some tests and I will get back accept as answer if alls going well!! Thankyou! – Will Oct 8 '12 at 17:36
    
This is close! it does return all tickets that arent listed in the "Labels" table... but doesnt give me the option to filter on a keyword within the label database e.g. "review later".. Im now thinking how to add in an AND or OR or something to do that? – Will Oct 8 '12 at 17:53
    
Please try my update. – juergen d Oct 8 '12 at 22:09
    
Hi Juergen. Im still not having any luck, but its possible Ive re-written your query incorrectly, so Ive posted my take on your query above. The query does run, but returns 0 results. – Will Oct 9 '12 at 19:56
    
Managed to get it working with Abu's answer. Many thanks for your help! – Will Oct 9 '12 at 21:29

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