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Hi I ve written django sqlite orm syntax to retrieve particular set of records

JobStatus.objects.filter(status='PRF').values_list('job', flat=True).order_by('job').aggregate(Count(status)__gt=3).distinct()

But it gives me an error and the sql equivalent for this syntax works fine for me.

This is my sql equivalent.

SELECT
  *
FROM tracker_jobstatus
WHERE status = 'PRF'
GROUP BY job_id
HAVING COUNT(status) > 3;

and um getting the result as follows

+----+--------+--------+---------+---------------------+---------+
| id | job_id | status | comment | date_and_time       | user_id |
+----+--------+--------+---------+---------------------+---------+
| 13 |      3 | PRF    |         | 2012-11-12 13:16:00 |       1 |
| 31 |      4 | PRF    |         | 2012-11-12 13:48:00 |       1 |
+----+--------+--------+---------+---------------------+---------+

Um unable to find the django sq lite equivalent for this. i will be very grateful if anyone can help.

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I asked about this in #django on Freenode some time ago and got the response that it wasn't possible. Sorry to be a bearer of bad news. –  GlennS Nov 12 '12 at 13:07
2  
not possible? if there is a proper tutorial we can figure it out in a what ever way . Thank you . –  Kalanamith Nov 12 '12 at 13:09
1  
Glad to be proved wrong, thanks. –  GlennS Nov 14 '12 at 16:48
    
Welcome always GlennS –  Kalanamith Nov 14 '12 at 18:24

2 Answers 2

up vote 18 down vote accepted

Finally I've managed to figure it out. The ORM syntax is something like this.

JobStatus.objects.filter(status='PRF').values_list('job', flat=True).order_by('job').annotate(count_status=Count('status')).filter(count_status__gt=1).distinct()
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More general rule for this: you need to create new column (by annotate) and then filter through that new column. This queryset will be transformed to HAVING keyword.

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