Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a query like the following one:

  SELECT case_filed_by,
         office_code,
         desg_code, 
         court_code,
         court_case_no,
         COUNT(office_code) as count 
    FROM registration_of_case 
   WHERE TRUE 
     AND SUBSTR(office_code, 1, 0) = SUBSTR('', 1, 0) 
ORDER BY court_code, court_case_no

I am getting the following error:

ERROR: column "registration_of_case.case_filed_by" must appear in the GROUP BY clause or be used in an aggregate function LINE 1: SELECT case_filed_by,office_code,desg_code, court_code,court […]

share|improve this question
2  
Why do you think there's something wrong with it? –  Aziz Nov 9 '11 at 5:20
    
getting an error like this..ERROR: column "registration_of_case.case_filed_by" must appear in the GROUP BY clause or be used in an aggregate function LINE 1: SELECT case_filed_by,office_code,desg_code, court_code,court... –  user731060 Nov 9 '11 at 5:22
    
What version of PostgreSQL? AKAIK, 9.1+ should support this but not prior versions. –  OMG Ponies Nov 9 '11 at 5:26
    
You're using COUNT() ... therefore, you need to group entries using GROUP BY. Check w3schools.com/sql/sql_groupby.asp –  Aziz Nov 9 '11 at 5:28
    
version is PostgreSQL8.4 –  user731060 Nov 9 '11 at 5:28

3 Answers 3

up vote 2 down vote accepted

As you describe in your comments, you actually want the number of selected rows in a separate field of your result set.

You can achieve this by using a subselect for the count and the join these two queries.

Something like this:

  SELECT case_filed_by,
         office_code,
         desg_code, 
         court_code,
         court_case_no,
         office_code_count 
    FROM registration_of_case,
         (SELECT COUNT(office_code) AS office_code_count 
            FROM registration_of_case 
           WHERE TRUE 
             AND SUBSTR(office_code, 1, 0) = SUBSTR('', 1, 0)
         ) AS count_query
   WHERE TRUE 
     AND SUBSTR(office_code, 1, 0) = SUBSTR('', 1, 0) 
ORDER BY court_code, court_case_no

I couldn't test the query, but it should work or at least point you into the right direction.

share|improve this answer
    
ya..it is working..thanks –  user731060 Nov 9 '11 at 10:54

You are using COUNT(), which is an aggregate function, along with a number of fields that are not part of the GROUP BY (since there is none) or in the aggregate function (except office_code).

Now, in MySQL something like this is allowed because the engine will select one record from the group and return that (although the query cannot affect it in any way, that's usually okay). Postgresql clearly cannot. I don't use Postgresql and I can work it out.

If Postgresql has a "non-strict" mode, I suggest you enable that; otherwise, either correct your query or change database types.

I would suggest an appropriate query, if I knew what Postgresql does, and doesn't, allow.

share|improve this answer

Add a group by clause like this,

"group by case_filed_by,office_code,desg_code,court_code,court_case_no"

Now try exceuting, it will work. The simple logic is if you want to use aggreagate function together with other columns in table, group by that columns. Check it out and comment if works

share|improve this answer
    
at that time count is always 1.i want to get total selected rows. –  user731060 Nov 9 '11 at 5:35
    
If you want total rows in your count(), you will have the same count in every row.. is that ok? And can you pls explain your business logic, so that I can help you with it –  Madhana Kumar Nov 9 '11 at 5:52
    
ya..i want total count in each row.it is not an issue if same count in every row –  user731060 Nov 9 '11 at 6:03
    
i want to get this count for displaying as label like total rows found.all other things as search result –  user731060 Nov 9 '11 at 6:10

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.