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select *, SUM(date) as Summary from main as pos_s
left join Main as ma on ma.ID=pos_s.mID
left join Partners as p on p.ID=h.PartnerID
left join Brands as br on br.id=pos_s.BRID
where p.ID = '1'
GROUP BY DAY(h.date)
ORDER m.date

and i get this data:

name  |   date    |  sum
++++++++++++++++++++++++++
lala  | 01.02.12  |   1
lala  | 02.02.12  |   2
lala  | 03.02.12  |   43
asd   | 01.02.12  |   12
asd   | 02.02.12  |   23
bebb  | 01.02.12  |   2
bebb  | 02.02.12  |   183
bebb  | 03.02.12  |   22
bebb  | 04.02.12  |   32

Look, THIS IS VERY IMPORTANT. I have 3 dates for 'lala', 2 dates for 'asd' and 4 dates for 'bebb'.

I should have for all this records for 4 dates (from 01.02.12 to 04.02.12) like the last one records has ('bebb').

Question: how i can create a query to select 4 values (count as many as 'bebb' value has) for 'lala', 'asd' (but sum for this values would be of course 0)?

I mean like this:

name  |   date    |  sum
++++++++++++++++++++++++++
lala  | 01.02.12  |   1
lala  | 02.02.12  |   2
lala  | 03.02.12  |   43
lala  | 04.02.12  |   0
asd   | 01.02.12  |   12
asd   | 02.02.12  |   23
asd   | 03.02.12  |   0
asd   | 04.02.12  |   0
bebb  | 01.02.12  |   2
bebb  | 02.02.12  |   183
bebb  | 03.02.12  |   22
bebb  | 04.02.12  |   32

UPDATED record 'bebb' has 4 dates, right? Right. 'asd' has 2 and 'lala' has 3 dates. I need to add 1 date to 'lala' and 2 to 'asd'. Why? Because 'bebb' has 4 (for exmaple if bebb would had 50 records it will be necessary to add 46 record for 'lala' and 48 record for 'asd').

share|improve this question
    
possible duplicate of Dynamically creating date periods using MySQL. Create the time period and left join against your results –  Mosty Mostacho Mar 6 '12 at 15:03
    
so u mean to say.. u want to generate some dummy records for lala and asd by taking bebb into consideration? –  SOaddict Mar 6 '12 at 15:03
    
@Venk, yeah yeah, and as many as some record has. If some record has 5 records ('bebb' has only 4) it will be generate some 1 additional record with sum '0' for 'bebb', for example, next, for 'asd' will be generate 3 additional , and for 'lala' will be 2 –  remizpez Mar 6 '12 at 15:04
    
Every name needs to have an entry for each date in the database, setting the sum to 0 when an entry does not really exist. –  Orbling Mar 6 '12 at 15:05
    
what does the alias "h" refer to in your query? –  Abhay Mar 6 '12 at 15:20

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