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I first make a subquery to show the MAX values of (complete_dt-create_dt) grouped by every HOUR of the day. Then, I group by day, since I want to show the max value (of the grouped by hour max) for each day.

What I get is the MAX value of all days showed up in every row:

max(TIMELENGTH) |   DAY
210.5           |        16
210.5           |        17
210.5           |        27

This is the query I use, what am I doing wrong:

select max(hours.timelength) TimeLength, TO_CHAR(trunc(t.create_dt), 'DD') DAY   
FROM ORDERS t, 
     (select round(avg(24 * 3600 * (m.complete_dt-m.create_dt)),1) TimeLength
     from ORDERS m
     GROUP BY TRUNC(m.create_dt, 'HH')) hours  
where t.order_status_id in (80)
GROUP BY TO_CHAR(trunc(t.create_dt), 'DD')

Thank you,

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You are not joining the two tables. –  bluefeet Feb 11 '13 at 10:18

2 Answers 2

up vote 0 down vote accepted

This might give you what you're after.

select max(hours.timelength) TimeLength, hours.Day   
FROM
 (
 select 
 round(avg(24 * 3600 * (m.complete_dt-m.create_dt)),1) TimeLength,
 TO_CHAR(trunc(t.create_dt), 'DD') Day,
 TRUNC(m.create_dt, 'HH') hours
 from ORDERS m
 where t.order_status_id in (80)
 GROUP BY TRUNC(m.create_dt, 'HH'), TO_CHAR(trunc(t.create_dt), 'DD')
 ) hours  
GROUP BY hours.Day

Your original query had no join between t and hours

share|improve this answer
    
Hmm, thanks a lot. When I run it I face an error though: FROM keyword not found where expected. (and the last parentheses of line 7 [right before hours] is highlighted with the error. I tried to fix it but nothing. –  Honesta Feb 11 '13 at 10:29
    
oh.. extra paranthesis. –  Nick.McDermaid Feb 11 '13 at 10:33
    
yes I fixed it now. the results seems fine. Thanks a lot. –  Honesta Feb 11 '13 at 10:39
    
Do you know why this one works and the other doesn't? The other one would have done a cross join, meaning if ORDERS has 10,000 rows it, your select would have produced 100,000,000 rows. Your DBA wouldn't be happy with that! Anyway good luck. –  Nick.McDermaid Feb 11 '13 at 11:14
    
I dont get why you group by day twice though. Shouldn't that somehow be redundant? Thanks for the answer, it helped me a lot ;) –  Honesta Feb 12 '13 at 8:17

I think you want something like:

select max(hours.timelength) as TimeLength, trunc(firstcreate_dt) as DAY   
FROM ORDERS t, 
     (select round(avg(24 * 3600 * (m.complete_dt-m.create_dt)),1) TimeLength,
             min(create_dt) as firstcreate_dt
      from ORDERS m
      where t.order_status_id in (80)
      GROUP BY TRUNC(m.create_dt, 'YYYY-MM-DD HH')
     ) hours  
GROUP BY trunc(firstcreate_dt)

You do not want to use to_char(. . . , 'DD') because that only returns the day of the month.

Also, in the expression to_char(trunc(t.create_dt), 'DD') the trunc() is unnecessary.

share|improve this answer
    
Thanks, actually I needed only the days :) thats why the to_char(..., 'DD'). Thanks for the trunc redudancy, I'll take it out. Though I see a difference between your answer and @ElectricLlama answer. He also groups by Days inside the subquery, I'm not sure if this brings any difference. –  Honesta Feb 12 '13 at 8:21
    
@hoesta . . . The two are equivalent. He groups separately by days and hours. I group by one field that contains days and hours (these should have the same performance as well). That solution explicitly pulls the date from the subquery; this calculates it based on the min creation date. That version is fine, except for the days-of-month. Going by just days-of-month doesn't seem like the right way to go in most cases. –  Gordon Linoff Feb 12 '13 at 14:06

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