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Quick question, I have the following table

+-------------+---------------------+
| total       | o_date              |
+-------------+---------------------+
|          35 | 01-11-2009 19:32:44 | 
|        41.5 | 01-12-2009 22:33:49 | 
|        61.5 | 01-23-2009 22:08:24 | 
|          66 | 02-01-2009 22:33:57 | 
|       22.22 | 02-01-2009 22:37:34 | 
|       29.84 | 04-20-2009 15:23:49 | 
+-------------+---------------------+

I would like to add up the total for each month and group the total by month. So for instance Jan-> 138 Feb-> 88.2 Apr-> 29.84

Any clues about it. Thanks

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7 Answers 7

up vote 37 down vote accepted

This solution will give you the month name as a column of your resultset, followed by the total as required.

SELECT MONTHNAME(o_date), SUM(total) 
FROM theTable
GROUP BY YEAR(o_date), MONTH(o_date)
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You may also want to add the year to the select list -> YEAR(o_date) –  Simon Fox Jun 2 '09 at 2:20
    
Or, to get it in the format you specified, you can do SELECT CONCAT(MONTHNAME(o_date), '-> ', SUM(total)) –  James Skidmore Jun 2 '09 at 2:52

As I recall from a past MySQL life a query like

SELECT LEFT(o_date, 7) month, SUM(total) FROM TABLE group BY month

is using the index on the o_date field (which unfortunately I would not guarantee for YEAR() and MONTH()).

You would have to format the month field though and this will most likely not be indexed on any other database system...

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select year(o_date), month(o_date), sum(total)
from table
group by year(o_date), month(o_date);
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That's assuming you want months in different years grouped seperately –  Todd Gardner Jun 2 '09 at 2:20
SELECT SUM(total)
FROM table
GROUP BY MONTH(o_date)
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Try Group BY, like this:

select count(A_id) As Tid,Day(CrDate) from Ap Group By Day(CrDate)
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Yea work for me this way:

SELECT MONTHNAME(date), SUM(`in`) as SOMA, date FROM transactions GROUP BY YEAR(date), MONTH(date)

But i need only show result of this year (2014) how can i do that?

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1  
Please ask a separate question if you are having a problem with something –  Illidanek Aug 15 '14 at 12:02

Try using WHERE with above solution

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. –  cfi Sep 2 '14 at 20:02

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