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.

How to pivot the following table by week1, week2, week3..etc. for each month? Thanks.

for example db table:

enter image description here

This is the table I need:

enter image description here

This is what I did but I need more efficient way to do this.

SELECT    'Oct' AS [Month]
,[Ocd]
          ,(select Wk_Cmpl from tb1 where WkNum = '1' and RIGHT(wkdt,2) = '10' and Ocd = '167') as wk1
          ,(select WKLY_PCT from tb1 where WkNum = '1' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as [wk1%]
          ,(select WE from tb1 where WKNum = '2' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as wk2
          ,(select WKLY_PCT from tb1 where WkNum = '2' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as [wk2%]
          ,(select WE from tb1 where WkNum = '3' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as wk3
          ,(select WKLY_PCT from tb1 where WkNum = '3' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as [wk3%]
          ,(select WE from tb1 where WkNum = '4' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as wk4
          ,(select WKLY_PCT from tb1 where WkNum = '4' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as [wk4%]
          ,(select WE from tb1 where WkNum = '5' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as wk5
          ,(select WKLY_PCT from tb1 where WkNum = '5' and SUM_LVL_Sort=3.00 and RIGHT(wkdt,2) = '10' and Ocd = '167') as [wk5%]
          ,[WKLY_AVG]                           As [Wk Avg] 
          ,[MTH]                                AS [Mo. Cmpl] 
          ,[COMB_FYTD_COMPLT_ALL]               As [M/YTD Total]
          ,[COMB_FYTD_COMPLT_TARGET_PCT]        As [% Goal]
FROM tb1
share|improve this question
    
Looks like you already did it in Excel. Are you asking how to do it completely in SQL? What RDBMS are you using? –  James L. Sep 21 '12 at 22:26
    
yes, I'm trying to do it in SQL, SSMS 2008, thanks. –  user1672932 Sep 21 '12 at 22:29
    
Have you looked at the PIVOT SQL command in the MS BOL? What have you tried already in SSMS / SQL? –  James L. Sep 21 '12 at 22:31
    
@JamesL. Please see above query. –  user1672932 Sep 21 '12 at 23:50

1 Answer 1

up vote 3 down vote accepted

You will need to use UNPIVOT and PIVOT for this. You were not clear on how you determined the WklyAvg or %Goal but this should get you started:

select p1.mo,
    p1.[wkCmpl_1], p1.[wkCmplPct_1], p1.[wkCmpl_2], p1.[wkCmplPct_2],
    p1.[wkCmpl_3], p1.[wkCmplPct_3], p1.[wkCmpl_4], p1.[wkCmplPct_4],
    p1.[wkCmpl_5], p1.[wkCmplPct_5],
    t1.WkAvg,
    t1.MoCmpl,
    t2.M_YTD_Total,
    t1.PctGoal
from 
(
  select mo,
    [wkCmpl_1], [wkCmplPct_1], [wkCmpl_2], [wkCmplPct_2],
    [wkCmpl_3], [wkCmplPct_3], [wkCmpl_4], [wkCmplPct_4],
    [wkCmpl_5], [wkCmplPct_5]
  from 
  (
    select datepart(month, wk_endt) mo,
        value,
        col + '_' + cast(wkNum as varchar(10)) col
    from 
    (
      select wk_endt,
        wkNum,
        cast(wkCmpl as decimal(10, 2)) wkCmpl,
        wkCmplPct
      from yourtable
    ) x
    unpivot
    (
      value
      for col in (wkCmpl, wkCmplPct)
    ) u
  ) x1
  pivot
  (
    max(value)
    for col in ([wkCmpl_1], [wkCmplPct_1], [wkCmpl_2], [wkCmplPct_2],
               [wkCmpl_3], [wkCmplPct_3], [wkCmpl_4], [wkCmplPct_4],
               [wkCmpl_5], [wkCmplPct_5])
  ) p
) p1
inner join
(
  select month(wk_endt) mo,
    wkcmpl,
    avg(WkAvg) as WkAvg,
    MoCmpl,
    max(M_YTD_Total) M_YTD_Total,
    PctGoal
  from yourtable
  group by month(wk_endt), wkcmpl, MoCmpl, PctGoal
) t1
  on p1.mo = t1.mo
  and p1.wkCmpl_1 = t1.wkcmpl
inner join
(
    select month(wk_endt) mo, max(M_YTD_Total) M_YTD_Total, MAX(wknum) wknum
    from yourtable
    group by month(wk_endt)
) t2
    on t1.mo = t2.mo

see SQL Fiddle with Demo

share|improve this answer

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.