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I am developing a SQL sproc and I want to return the number of rows for each table. How could I rewrite this statement so that it will list number of rows from each table below?

SELECT COUNT(*)
FROM [test_setup_details_form_view] [tsdf]
JOIN [test_setup_header_form_view] 
    ON [test_setup_header_form_view].[test_setup_header_id] 
        = [tsdf].[test_setup_header_id]
JOIN [test_header_rv] [th] with(nolock) 
    ON [th].[test_setup_header_id] 
        = [test_setup_header_form_view].[test_setup_header_id]
JOIN [test_details_answers_expanded_view] [tdae] 
    ON [tdae].[test_setup_details_id] = [tsdf].[test_setup_details_id] 
        AND [th].[test_header_id] = [tdae].[test_header_id]
JOIN [event_log_rv] [e] 
    ON [e].[event_log_id] = [tdae].[event_log_id]

When I execute this statement, it just gives me the total rows after all of the joins.

share|improve this question
    
By definition, since you have inner joins, there are the same number rows resulting from the join in every single table. Are you just trying to get some kind of report of the table counts in each table, even the rows that aren't involved in the join? –  Aaron Bertrand Jan 18 '13 at 20:29
    
You're joining everything together. so how else would it work? I think you should edit your question to show, individually, how you'd get the count from each table you ahve in question. e.g. to get the total count from tsdf, do.... and to get the total records from tshfv, do... Then I think the question (and answer) will be more clear. –  Eli Gassert Jan 18 '13 at 20:29
    
Can't you just add up the count from each table separately? Once you do the joins, it's all aggregated into a single result set; at which point it's too late (or so I'd think). –  A-Dubb Jan 18 '13 at 20:31
1  
Are you trying to get counts of the tables individually? Or are you trying to get counts of the rows used in the joins? –  Gordon Linoff Jan 18 '13 at 20:31
    
Can you clarify your question so the accepted answer makes some sense relative to the problem you have? Right now you are talking about joins and that doesn't seem to be what you are after at all. –  Aaron Bertrand Jan 19 '13 at 0:34

3 Answers 3

up vote -2 down vote accepted

From each table? Why not use the metadata tables then?

You are trying to do something in code that already exists in the metadata tables:

Select 
    schema_name(schema_id) + '.' + t.name as TableName
,   i.rows
from sys.tables t (nolock) 
    join sys.sysindexes i (nolock) on t.object_id = i.id 
        and i.indid < 2
share|improve this answer
1  
sys.sysindexes is a backward compatibility view and I don't believe it is guaranteed to be up to date. In 2005 and above, much safer to use sys.dm_db_partition_stats or sys.partitions. Also about blindly throwing NOLOCK everywhere: dba.stackexchange.com/questions/33074/… –  Aaron Bertrand Jan 18 '13 at 20:36
2  
Maybe give these two a read. A lot of the time, you WANT locks because that's what guarantees you are displaying consistent data. When you don't care about consistency should be few and far between if you are using SQL Server. I don't think it's necessary to draw out all of NOLOCK's cons in a comment thread just to satisfy you. You are recommending it as a best practice; YOU defend it. stackoverflow.com/questions/686724/… stackoverflow.com/questions/1452996/… –  Aaron Bertrand Jan 18 '13 at 22:17
1  
Also, do you really believe that it's ok to show a customer that his balance is $20,000 instead of $10,000 because you used NOLOCK to prevent blocking? (Also, can you show me an example where NOLOCK prevents a deadlock that would happen without it?) –  Aaron Bertrand Jan 18 '13 at 22:26
1  
It doesn't help the query speed where did I say that? Using no lock is like using a seat belt, 99% of the time you won't need it at all. However there is a time sometimes when you are selecting millions of rows and something is trying to insert into that same table. I would rather data be able to insert and update then to lock tables because I want real data that committed in production. It is a setting that you can run a little hotter and more dangerous with your timings in you are protected against locks. It is not required, it is a choice knowing what it does. Why does it bother you? –  djangojazz Jan 19 '13 at 0:42
1  
Because the more often it appears in answers (especially accepted answers), the more people will take it as gospel that this is the right way to do it all the time. I'm not sure what industries you work in, but in 99% of the scenarios I have come across in my career, dirty reads were NOT okay. Again, YOU may understand the consequences (or you may not), but it's not fair to make the assumption that all of your readers do. In the end it's just more consulting money for someone when they come in to fix it, because if you're using it to avoid locks, it's broken. –  Aaron Bertrand Jan 19 '13 at 1:08

If you are trying to just get counts for each of these tables irrespective of the joins:

SELECT
  OBJECT_SCHEMA_NAME([object_id]),
  OBJECT_NAME([object_id]),
  c
FROM
( 
  SELECT [object_id],
    c = SUM(row_count)
  FROM
    sys.dm_db_partition_stats -- no NOLOCK necessary
  WHERE
    index_id IN (0,1)
    AND OBJECT_NAME([object_id]) IN
    ( 
      N'test_setup_details_from_view',
      N'test_setup_header_from_view',
      ... etc etc. ...
    )
  GROUP BY [object_id]
) AS x;
share|improve this answer

Use count (distinct <columnname>) on a unique column for each table that you need to count.

share|improve this answer
    
How will that help if each table will be filtered down to only the rows that match the join? –  Aaron Bertrand Jan 18 '13 at 20:31
    
+1, I would do the same. –  Darwin Gautalius Jan 18 '13 at 20:32
    
@Darwin why? Are you sure everybody understand the OP's requirements? And what if some of the tables have compound primary keys (or no defined or candidate keys)? –  Aaron Bertrand Jan 18 '13 at 20:37
    
Counting the total number of rows in a table is a rather trivial question, so I feel safe assuming that was not the OP's question. Compound primary keys or lack of any candidate key definitely would make the problem more difficult. –  Aaron Kurtzhals Jan 18 '13 at 20:53
    
How do you measure "rather trivial"? Based on whose knowledge and experience? –  Aaron Bertrand Jan 18 '13 at 21:06

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