3

I am trying to include results from other tables in a previous query using multiple joins below:

SELECT mid                             as mID,
   round((x.qty_sum / x.qty_count), 5) as qtAVG,
   round(x.qty_stddev, 5)              as qtSTDDEV,
   x.qty_count                         as qtCOUNT,
   round((x.rel_sum / x.rel_count), 5) as relAVG,
   round(x.rel_stddev, 5)              as relSTDDEV,
   x.rel_count                         as relCOUNT,
FROM (SELECT t.mid,
         SUM( mt = 'qt' )   as qty_count,
         SUM(CASE WHEN t_r.mt = 'qt' THEN rt END)  as qty_sum,
         STD(CASE WHEN t_r.mt = 'qt' THEN rt END)  as qty_stddev,
         SUM( t_r.mt = 'rel' ) as rel_count,
         SUM(CASE WHEN t_r.mt = 'rel' THEN rel END) as rel_sum,
         STD(CASE WHEN t_r.mt = 'rel' THEN rel END) as rel_stddev
  FROM t_r r
right join t_m t on t.mid = r.mid
right join m_k m on m.mid = t.mid
right join k_d k on m.kid = k.kid
  GROUP BY t.mid
 ) x;

Using my query above, qty_count for 111 when mt is qt returns 6 instead of 2. 2 * (count of 111 in table m_k)

When I remove this portion of the join, I get the desired sum for qtCOUNT and relCOUNT

right join m_k m on m.mid = t.mid
right join k_d k on m.kid = k.kid

What am I doing wrong and how may I solve it?

Data:

m_k

mid  kid
--------
109  2
110  2
110  4
111  1
111  2
111  3

k_d

kid  k_desc
-----------
1    desc1
2    desc2
3    desc3
4    desc4

m_d

mid  col1   col2   col3   col4
-------------------------------
109  val_a  val_d  val_g  val_j
110  val_b  val_e  val_h  val_k
111  val_c  val_f  val_i  val_l

t_r

mid  rt  stamp                  mt
----------------------------------
111  3   2018-12-08 01:30:31   rel
111  4   2018-12-08 03:41:56   qt
111  3   2018-12-08 02:29:10   qt
110  1   2018-12-08 06:13:51   rel
110  5   2018-12-08 11:44:39   qt
109  1   2018-12-08 10:39:51   rel

Other queries that achieve the same as above is fine.

4
  • Probably because of the laravel tag ;-) – David Heremans Dec 12 '18 at 19:42
  • We can't tell what is going on -- What table are mt and mid in? Please edit the query to qualify them. – Rick James Dec 14 '18 at 23:42
  • Please provide SHOW CREATE TABLE for each table. – Rick James Dec 14 '18 at 23:43
  • You gave Data for Table m_d (which is not used in your query) and omitted sample Data for Table t_m (which you reference in your query). Without the data for t_m, it is difficult to help you; because assumptions must then be made about the missing data since you didn't use mnemonic names for your Tables. – MikeTeeVee Dec 21 '18 at 8:04
7

I solved this problem by moving

right join m_k m on m.mid = t.mid
right join k_d k on m.kid = k.kid

outside of the derived table x. Final query looks like this:

SELECT mid                             as mID,
   round((x.qty_sum / x.qty_count), 5) as qtAVG,
   round(x.qty_stddev, 5)              as qtSTDDEV,
   x.qty_count                         as qtCOUNT,
   round((x.rel_sum / x.rel_count), 5) as relAVG,
   round(x.rel_stddev, 5)              as relSTDDEV,
   x.rel_count                         as relCOUNT,
FROM (SELECT mid,
         SUM( mt = 'qt' )   as qty_count,
         SUM(CASE WHEN mt = 'qt' THEN rt END)  as qty_sum,
         STD(CASE WHEN mt = 'qt' THEN rt END)  as qty_stddev,
         SUM( mt = 'rel' ) as rel_count,
         SUM(CASE WHEN mt = 'rel' THEN rel END) as rel_sum,
         STD(CASE WHEN mt = 'rel' THEN rel END) as rel_stddev
  FROM t_r r
right join t_m t on t.mid = r.mid
  GROUP BY mid
 ) x
right join m_k m on m.mid = x.mid
right join k_d k on k.kid = m.kid
group by m.mid;
2
  • 1
    The rationale: All JOINing is done before aggregates (COUNT, SUM, etc). So, be sure to do only the JOINs necessary before GROUP BY. – Rick James Dec 14 '18 at 23:46
  • Why are you Right-Joining to m_k and k_d? You don't use them in your select. Same things goes for your Group-By of m.mid - you are not using any aggregate functions in your Select for this to work. – MikeTeeVee Dec 21 '18 at 8:09

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.