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I have a table like this

| ID | CAMPAIGN_ID | CHARGES |                            DATE |
----------------------------------------------------------------
|  1 |           1 |      15 | November, 17 2012 09:53:08+0000 |
|  2 |           1 |      15 | November, 18 2012 09:53:08+0000 |
|  3 |           1 |      15 | November, 22 2012 09:53:08+0000 |
|  4 |           1 |      15 | November, 24 2012 09:53:08+0000 |
|  5 |           1 |      15 | November, 26 2012 09:53:08+0000 |
|  6 |           1 |      10 | November, 27 2012 09:53:08+0000 |
|  7 |           1 |      10 | November, 28 2012 09:53:08+0000 |
|  8 |           1 |      10 | December, 02 2012 09:53:08+0000 |
|  9 |           1 |      10 | December, 04 2012 09:53:08+0000 |
| 10 |           1 |      10 | December, 05 2012 09:53:08+0000 |
| 11 |           1 |      10 | December, 06 2012 09:53:08+0000 |
| 12 |           1 |      10 | December, 07 2012 09:53:08+0000 |
| 13 |           1 |      15 | December, 08 2012 09:53:08+0000 |
| 14 |           1 |      15 | December, 09 2012 09:53:08+0000 |
| 15 |           1 |      15 | December, 10 2012 09:53:08+0000 |
| 16 |           1 |      15 | December, 12 2012 09:53:08+0000 |
| 17 |           1 |      15 | December, 13 2012 09:53:08+0000 |

SQL Fiddle Schema

I want to select the dates on which the charges are being changing. The output is here

| ID | CAMPAIGN_ID | CHARGES |                            DATE |
----------------------------------------------------------------
|  6 |           1 |      10 | November, 27 2012 09:53:08+0000 |
| 13 |           1 |      15 | December, 08 2012 09:53:08+0000 |

How can i achieve this with mysql.

share|improve this question
    
why id 6 and 13? –  John Woo May 6 '13 at 13:51
    
because on id 6 there is a different charges from the previous ones. and same goes with 13 –  raheel shan May 6 '13 at 13:52
    
Have you tried to group? –  UltimateProgrammer_BR May 6 '13 at 13:54
    
As you can see grouping by charges will not do the trick. It will group 15 which i have already in the starting records –  raheel shan May 6 '13 at 13:55
    
Have you checked this? –  user1190992 May 6 '13 at 13:56

2 Answers 2

up vote 1 down vote accepted

Here's another way...

SELECT b.*
  FROM
     ( SELECT x.* 
     , COUNT(*) rank
  FROM campaign_charges x
  JOIN campaign_charges y
    ON y.campaign_id = x.campaign_id
   AND y.id <= x.id
 GROUP
    BY x.campaign_id
     , x.id
      ) a
JOIN     ( SELECT x.* 
     , COUNT(*) rank
  FROM campaign_charges x
  JOIN campaign_charges y
    ON y.campaign_id = x.campaign_id
   AND y.id <= x.id
 GROUP
    BY x.campaign_id
     , x.id
      ) b
     ON b.campaign_id = a.campaign_id AND b.rank = a.rank+1
   AND a.charges <> b.charges;

SQL Fiddle Demo

share|improve this answer
    
thanks for the answer. Produces exactly what i need. –  raheel shan May 6 '13 at 14:36

MySQL has no window functions, but you could do this using a variable. E.g. something like (note: it's probably invalid sql due to dup aliases, but it should put you on the right track):

select ranked_campaigns.id, ranked_campaigns.campaign_id, ranked_campaigns.charges, ranked_campaigns.date
from (
  select id, campaign_id, charges, date, @rank = @rank + 1 as rank
  from ( select @rank := 1) as r,
       ( select id, campaign_id, charges, date
         from campaigns
         order by campaign_id, date ) as raw_campaigns
  ) as ranked_campaigns
join (
  select id, campaign_id, charges, date, @rank = @rank + 1 as rank
  from ( select @rank := 1) as r,
       ( select id, campaign_id, charges, date
         from campaigns
         order by campaign_id, date ) as raw_campaigns
  ) as ranked_campaigns2
on ranked_campaigns.rank = ranked_campaigns2.rank - 1
and ranked_campaigns.campaign_id = ranked_campaigns2.campaign_id
and ranked_campaigns.charges <> ranked_campaigns2.charges;
share|improve this answer
    
it is completely out of story. Gives output that is not required. And please use the fiddle for this. –  raheel shan May 6 '13 at 14:03
    
no no... you need that not required rank output as a criteria for a join as shown in my edit. –  Denis May 6 '13 at 14:05

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