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i think today is not my day - sorry, but i have another COUNT(*) question:

I have this easy query:

SELECT * FROM domains 
LEFT JOIN subpages ON subpages.domainid = domains.id 
WHERE domains.id = 293 
AND subpages.seitenart = 'Startseite'

It works perfect but i need additionally a

SELECT COUNT(*) AS total FROM subpages WHERE subpages.statussub = '1' AND subpages.domainid = 293

Okay, for a better understanding: I have the table "domains" and the table "subpages". Now i want to display the Domaindetails of one Domain where i need the domain table and subpages table with field subpages.seitenart = "Startseite".

Additionally i have to count all subpages in the subpages table where subpages.statussub = '1'

Hope this is better explained!

Can anyone help pls?

Thanks, Sascha

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Can't you put the second select as a select in your first query? –  ChrisH Mar 23 '11 at 14:11
    
What do you mean by "need additionally"? Just run the query additionally :) –  Quassnoi Mar 23 '11 at 14:12
    
I would suggest to have that count query as separate select rather than doing some sql trick to combine those 2 queries into one. –  anubhava Mar 23 '11 at 14:12
    
@SiteSafeNL - okay, i will try –  codeworxx Mar 23 '11 at 14:13
    
@anubhava: this is not the professional way... –  codeworxx Mar 23 '11 at 14:13

1 Answer 1

up vote 1 down vote accepted

If you dont want to limit the COUNT to seitenart = 'Startseite' try:

SELECT domains.*, COUNT(s1.<column_name>) as total
FROM subpages s1, domains LEFT JOIN subpages s2 ON s2.domainid = domains.id
WHERE domains.id = 293
AND s2.seitenart = 'Startseite'
AND s1.statussub = '1'
AND s1.domainid = domains.id
share|improve this answer
    
you're right, i dont want to limit count to seitenart="Startseite" but with your query i get an error, that "unknown column s1 in field list" - if i change count(s1) to count(s1.*) then i need a group by?!?! any help? –  codeworxx Mar 23 '11 at 14:20
    
I got it wrong - I don't think you can use s1.* inside the COUNT() function. Try using s1.subpage_id or whatever unique ID you have on the subpages table. –  Jon Mar 23 '11 at 14:24
    
yes, this worked. Thanks so much! –  codeworxx Mar 23 '11 at 14:32

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