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 PL/SQL table with two columns: log_date (DATE) and value (FLOAT). The data is very fine-grained, the difference between log_dates could be a few milliseconds. The value changes over time. I want to find, using SQL, the maximum and minimum amount of time between log_dates it takes for value to increase.

Edit: Example

log_date | value
-------------------  
  15:00  |  10
  15:01  |  10
  15:02  |  11
  15:03  |  11
  15:04  |  11
  15:05  |  11
  15:06  |  12

Between 15:00 and 15:02 value increased BUT it also increased between 15:03 and 15:06 which took longer, and so I want a query that would return (in this case) '3 minutes' (as a DATE or a NUMBER) - the longest amount of time it took for value to increase.

share|improve this question
    
Could you post sample data and expected output from that sample? I'm not sure I fully understand the question. –  Pavel Urbančík Nov 11 '10 at 9:24

3 Answers 3

up vote 0 down vote accepted

I can give you an answer in T-SQL, but I'm not sure what dialect you're using. TBH, a loop here is the first thing that springs to mind (someone else may have a better way of doing it!):

DECLARE @temp TABLE ( log_date DATETIME, value FLOAT )
INSERT INTO @temp ( log_date, value ) SELECT log_date, value FROM <MyTableName>

DECLARE @diff TABLE ( time_diff INT, old_value FLOAT, new_value FLOAT )

-- the loop

DECLARE @prev_value FLOAT, 
        @cur_value FLOAT,
        @prev_log_date DATETIME,
        @cur_log_date DATETIME

WHILE EXISTS ( SELECT NULL FROM @temp )
BEGIN

    SELECT TOP 1 @cur_log_date = log_date, @cur_value = value
    FROM @temp
    ORDER BY log_date

    IF ( @prev_value IS NOT NULL AND @prev_log_date IS NOT NULL )
    BEGIN

        INSERT INTO @diff ( time_diff, old_value, new_value )
        SELECT DATEDIFF('ms', @prev_log_date, @cur_log_date ),
               @prev_value, @cur_value

    END

    SELECT @prev_log_date = @cur_log_date, @prev_value = @cur_value
    DELETE FROM @temp WHERE log_date = @cur_log_date

END

SELECT MAX(time_diff), MIN(time_diff) FROM @diffs

This way, you end up with a table of all differences that you can then query.

HTH

share|improve this answer

Try something like the following:

select top 1 * from
(
  select 
    max(log_date) - min(log_date) as duration,
    value
  from logdata
  group by value
)
order by duration asc

and change the asc to desc for the other value.

[edit] I can't actually test this at the moment, so I'm not sure if the max-min will work, you can use the datediff function posted in one of the other answers as an alternative if this fails. [/edit]

share|improve this answer

You can use this query to find the max and min log_date for a specific value. But for this you will have to specify the value. You might have to modify the query a little if you want to make it more generic

SELECT MAX(log_dates) AS MaxLogDate, MIN(log_dates) AS MinLogDate 
  FROM yourtable 
 WHERE <ANY condition IF needed> 
 GROUP 
    BY VALUE 
HAVING VALUE = <specify VALUE>;
share|improve this answer
    
Always reason a downvote. And, how would I know the question was edited after I answered. So much for trying to help! –  Pavanred Nov 11 '10 at 9:51
    
Don't take it personally - the above does not answer the question I asked, that's all. –  Peter Nov 11 '10 at 10:17
    
That's cool man. Will edit my answer to fit your question once I find some time. –  Pavanred Nov 11 '10 at 10:25

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.