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I am dealing with an issue and need some expert advice on to achieve the problem, my sql query generates output with two columns, 1st column displays id (for e.g. abc-123 in following table) and next column displays corresponding result to the id stored in db which is pass or fail.

I need to implement, when resolution is pass it should display success attempt, in following example, abc-123 failed 1st time however def-456 passed in next attempt thus success rate is 50%, now counter should reset and go to next row where there is pass thus it should show 100%, again when code hits pass counter resets then goes next and displays 33% bec there are two fail and one pass at the end, how it can be achieved in sql? (id and resolution are column names)

**date**       **id resolution**    
 6/6/2012     abc-123   fail       50%
 6/7/2012     abc-456   pass    
 6/8/2012     abc-789   pass       100%
 6/9/2012     abc-799   fail       33%
 6/10/2012    abc-800   fail    
 6/1/2012     abc-900   pass

Thanks

share|improve this question
    
Writing 'o/p' instead of 'output' is just confusing. –  Mark Byers Jun 29 '12 at 19:46
    
fixed it in the body –  yokoyoko Jun 29 '12 at 19:48
2  
Is there some order or timestamp column to indicate which item is before the next? –  Holger Brandt Jun 29 '12 at 19:48
    
Hi Holger, I fixed the output, id is in ascending columns, also yes there is a date column which is in ascending order. –  yokoyoko Jun 29 '12 at 19:50
1  
1) You are thinking about the problem procedurally, whereas SQL works with sets. 2) Your analysis of the data makes no sense to me. Why should the records on 6/6 and 6/7 be grouped together to compute a percent? They do not share a common id. Can there not be multiple resolutions on the same day? How would you group them for percents then? –  dbenham Jun 29 '12 at 20:18

2 Answers 2

up vote 3 down vote accepted
SELECT
  *
FROM
  table
INNER JOIN
(
  SELECT
    MIN(g.id)   AS first_id,
    MAX(g.id)   AS last_id,
    COUNT(*)    AS group_size
  FROM
    table AS p
  INNER JOIN
    table AS g
      ON g.id > COALESCE(
                  (SELECT MAX(id) FROM table WHERE id < p.id AND resolution = 'pass'),
                  ''
                )
     AND g.id <= p.id
  WHERE
    p.resolution = 'pass'
  GROUP BY
    p.id
)
  AS groups
    ON  table.id >= groups.first_id
    AND table.id <= groups.last_id
share|improve this answer
    
I've assumed that your id column is a VARCHAR() or similar. Which is why I use '' in the COALESCE() (to include all id's). –  MatBailie Jun 29 '12 at 20:11
    
HI Dems, id column is varchar(), I will give a try. Thanks!!! –  yokoyoko Jun 29 '12 at 20:16
1  
@Dems somthing's not quite right –  Conrad Frix Jun 29 '12 at 20:17
1  
@yokoyoko - Because in that sql fiddle the table is called table1 but you have it as table in some places and table1 in others. Try this link? sqlfiddle.com/#!2/177cb/8/0 –  MatBailie Jun 29 '12 at 20:29
2  
@yokoyoko - Yes. Success rate in the group = 100.0 / group_size. And if you only want to show it on the first record in the group then you can use... CASE WHEN table.id = groups.first_id THEN 100.0 / groups.group_size ELSE NULL END AS pass_rate, Exactly how you use the data is up to you, but the query as is should give you eveything you need to calculate what you want where you want. sqlfiddle.com/#!2/6a3d5/3 –  MatBailie Jun 29 '12 at 20:34

There's more than one way to do it:

SELECT st.*, 
       @prev:=@counter + 1,
       @counter:= CASE 
         WHEN st.resolution = 'pass'
         THEN 0
         ELSE @counter + 1
       END c,
       CASE WHEN @counter = 0 
            THEN CONCAT(FORMAT(100/@prev, 2), '%') 
            ELSE '-' 
       END res
  FROM so_test st, (SELECT @counter:=0) sc

Here's proof of concept.

share|improve this answer
    
Actually that link with grouped query helped much. The concept itself is simple: we have two variables, one (@prev) accumulates failures, another (@counter) helps the first one, but also acts like an independent trigger of a sort. ) –  raina77ow Jun 29 '12 at 20:21
    
And yes, from my point of view these kinds of tasks are better served with some procedural approach. ) But then again, requirements differ. –  raina77ow Jun 29 '12 at 20:22

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