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I have a problem with mining through database. I have continuous data like this:

ID | TIMESTAMP | V1 | V2 | V3 | V4 | V5 | V6 | V7 | V8 | V9 | V10 | 

'4271510','2012-01-15 16:05:21.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271573','2012-01-15 16:05:24.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271636','2012-01-15 16:05:27.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271697','2012-01-15 16:05:27.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271760','2012-01-15 16:05:33.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271825','2012-01-15 16:05:37.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271889','2012-01-15 16:05:40.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4271954','2012-01-15 16:05:44.000','3,68','690,72','3,5','1261,7','3,3','1841,59','3,83','873,74','4','767,67'
'4272019','2012-01-15 16:05:48.000','3,68','374,30','3,5','188,12','3,3','64,83','4','1,82','NULL','NULL'
'4272077','2012-01-15 16:05:52.000','334','43,29','4,68','199,71','4','199,71','NULL','NULL','NULL','NULL'

I need to determine about events. When an event occurs few things might (but it's not certain) happen:

  1. some values from V1 to V10 become NULLS (usually the first are V9, V10 or V7, V8, V9, V10, as in example)
  2. value of V1 goes substantially up
  3. values of even V's (V2, V4, V6...) go substantially down

To complicate thing a little more: when V1 goes up it's already after an event, so event is determined by NULLs, but sometimes there are NULLs in normal data (but in that time none of other conditions would be met).

In provided data, event occurs at ID=4272019: first nulls came up and values of even V's are down.

How to write a script in SQL like that?

My approach was:

a. find the second condition - save timestamp of it

b. now find few (5-10) data rows prior to that timestamp

c. look in those rows for the first and third conditions

but I'm not experienced enough to write it in SQL (as you'll see in my NullCount function) and I stucked at b) and c) points. I'm also not sure if it's optimal one. Can you help me with those? In particular:

  1. How to write function to determine if there was "substantially" decrease in values V2, V4, V6, V8, V10?
  2. How to put that together with "NullCount" (first condition) in SQL syntax?

Or maybe you can advice me a better approach?

Here is my NullCount function:

CREATE FUNCTION NullCount(@ID INT)
  RETURNS INT 
  AS
  BEGIN
    DECLARE @NULLS INT;

    SET @NULLS = (select V1s+V2s+V3s+V4s+V5s+V6s+V7s+V8s+V9s+V10s
from
(select 
sum(case when V1 is null THEN 1 else 0 end) AS V1s,
sum(case when V2 is null THEN 1 else 0 end) AS V2s,
sum(case when V3 is null THEN 1 else 0 end) AS V3s,
sum(case when V4 is null THEN 1 else 0 end) AS V4s,
sum(case when V5 is null THEN 1 else 0 end) AS V5s,
sum(case when V6 is null THEN 1 else 0 end) AS V6s,
sum(case when V7 is null THEN 1 else 0 end) AS V7s,
sum(case when V8 is null THEN 1 else 0 end) AS V8s,
sum(case when V9 is null THEN 1 else 0 end) AS V9s,
vsum(case when V10 is null THEN 1 else 0 end) AS V10s
from MainDataTable
where ID = @ID
group by ID) as tempTab);

RETURN @NULLS;
END
share|improve this question
    
It's an ANSI standard to ignore nulls when counting... so you just need to minus count(v1) etc from count(*) –  Ben Feb 24 '12 at 11:33
    
Maybe SQL isn't the best way to do this. –  Anony-Mousse Feb 25 '12 at 14:07

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