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I have the following query. But currently i'm struggling to get it to return rows that don't have and data in them with the aggregation.

I thought it would work with the aggregation and group by clause, so if anyone could expalin why that would be great!

SELECT a.id, a.name, a.slug, COUNT(i.area_id) as numItems
FROM `area` `a`
LEFT JOIN `item` `i` ON a.id=i.area_id
WHERE i.date_expired > CURDATE() AND i.live = 1
GROUP BY `a`.`name`
ORDER BY `a`.`name`

Thanks

share|improve this question
up vote 1 down vote accepted

It's because you're referencing the item table in your WHERE criteria which is off setting the OUTER JOIN. Move that to the JOIN instead:

SELECT a.id, a.name, a.slug, COUNT(i.area_id) as numItems
FROM `area` `a`
LEFT JOIN `item` `i` ON a.id=i.area_id
    AND i.date_expired > CURDATE() AND i.live = 1
GROUP BY `a`.`name`
ORDER BY `a`.`name`
share|improve this answer
    
Thanks to you all! – Jonnny Jun 26 '13 at 3:08
    
@Jonnny -- np, glad we could help! – sgeddes Jun 26 '13 at 3:09

you should be filtering on the ON clause because you are doing LEFT JOIN. eg.

SELECT a.id, a.name, a.slug, COUNT(i.area_id) as numItems
FROM   area a
       LEFT JOIN item i 
          ON a.id = i.area_id AND
             i.date_expired > CURDATE() AND 
             i.live = 1
GROUP BY a.name
ORDER BY a.name

the difference between filtering on the ON clause and on the WHERE clause is that ON clause filters the records first before the tables will be joined while the WHERE clause filters the records from the result of joined table.

share|improve this answer

The problem is that the where clause undoes the left join. The values of all fields for i can be NULL when there is no match -- and these get filtered out, because the comparisons are never true.

You can fix this easily by moving the comparisons to the on clause:

SELECT a.id, a.name, a.slug, COUNT(i.area_id) as numItems
FROM `area` `a`
LEFT JOIN `item` `i` ON a.id=i.area_id and
                        i.date_expired > CURDATE() AND i.live = 1
GROUP BY `a`.`name`
ORDER BY `a`.`name`
share|improve this answer

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