Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

Possible Duplicate:
SQL : Count the number of occurences occuring on output column and calculate some percentage based on the occurences

Here is url for test data / table : http://sqlfiddle.com/#!2/56ffd4/1

My table generates o/p for following table :

(id,       resolution) 
('abc-123', 'fail'),
('abc-456', 'pass'),
('abc-789', 'pass'),
('abc-799', 'fail'),
('abc-800', 'pass'),
('abc-900', 'pass');

my script o/p is :

id          RESOLUTION  TS              @PREV   C   RES
abc-123     fail    July, 02 2012         1     1   -
abc-456     pass    July, 02 2012         2     0   50.00%
abc-789     pass    July, 02 2012         1     0   100.00%
abc-799     fail    July, 02 2012         1     1   -
abc-800     pass    July, 02 2012         2     0   50.00%
abc-900     pass    July, 02 2012         0     0   100.00%

here is o/p script:

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

I need to append two columns to above output table to count occurrences for passing and fail values as:

id          RESOLUTION  TS              @PREV   C            fail   pass
    abc-123     fail    July, 02 2012         1     1   -        1
    abc-456     pass    July, 02 2012         2     0   50.00%          1
    abc-789     pass    July, 02 2012         1     0   100.00%         1
    abc-799     fail    July, 02 2012         1     1   -        1
    abc-800     pass    July, 02 2012         2     0   50.00%          1
    abc-900     pass    July, 02 2012         0     0   100.00%         1
share|improve this question

marked as duplicate by casperOne Jul 3 '12 at 13:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
And what is your question? What you need to get as a result? – zerkms Jul 2 '12 at 22:29
    
I need to append two columns of "fail" and "pass" , i.e. count unique occurrences – yokoyoko Jul 2 '12 at 22:30
    
according to your query - you know how to use CASE WHEN. Why not use it as you do it for RESOLUTION column? – zerkms Jul 2 '12 at 22:45
    
I am bit confused, can you please guide on how to use it for resolution. – yokoyoko Jul 2 '12 at 22:47
    
You ask about 'counts' but don't show zeroes for the counts. The data you show above only has one record per ID value, so the counting is trivial. However, if you intend the data to have, say, 5 records for a single ID, 4 of them showing 'fail' and one showing 'pass', then you have a lot more work to do, but you need to explain this in the question (and illustrate). While it is possible to map zero counts to NULL, it is hardly nice to look at in the SQL (though there are worse travesties committed daily). – Jonathan Leffler Jul 3 '12 at 0:59
up vote 1 down vote accepted

Well if you just want the pass and fail columns at the end of the output table as you've specified then put a comma after

END res 

and add the following after it:

CASE WHEN st.resolution = 'fail'
            THEN 1
            ELSE NULL
END fail,
CASE WHEN st.resolution = 'pass'
            THEN 1
            ELSE NULL
END pass

Not sure what the blank is in your columns but I've just set them as NULL.

share|improve this answer

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