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I have two tables like this

table1

orig1 orig2 orig3 xref1 xref2 xref3
1      1     1     2     2     2
1      1     1     3     3     3
23    23    23     12   12    12

table2

orig1 orig2 orig3 xref1 xref2 xref3  version
1      1     1     1     1      1       0


expected output:-

orig1,orig2,orig3,count_table2
1,1,1,1

I am trying to select the first 3 columns in table1 and count(*) from table2. I tried like this

SELECT orig1,orig2,orig3 from table1, COUNT(table2.*) as t2, FROM table1 LEFT JOIN tabel2 ON table1.orig1 = table2.orig1

Its printing NUll only. any help would be appreciated.

  • 1
    You should normilize the tables to somethings like origin columns id. origin_number and value then it's much eaizer to use COUNT query on the tables. – Raymond Nijland May 4 '18 at 15:09
  • @RaymondNijland any example – Teju Priya May 4 '18 at 15:10
  • 1
    No even close to valid sql,Never mind producing null. – P.Salmon May 4 '18 at 15:14
  • @P.Salmon yeah I know. I am not that good in sql.Any help would be appreciated – Teju Priya May 4 '18 at 15:17
  • It's not clear what your expected output is - you could clarify by adding expected output to the question. – P.Salmon May 4 '18 at 15:19
2

I can't say your expected output makes sense to me but you can get your desired result like this

drop table if exists table1, table2;
create table table1(orig1 int,orig2 int,orig3  int,xref1 int,xref2 int,xref3 int);
insert into table1 values
(1   ,   1  ,   1   ,  2  ,   2  ,   2),
(1   ,   1  ,   1   ,  3  ,   3  ,   3),
(23  ,  23  ,  23   ,  12 ,  12  ,  12);

create table table2(orig1 int, orig2 int, orig3 int,xref1 int,xref2 int,xref3 int, version int);
insert into table2 values
(1 ,     1  ,   1  ,   1   ,  1  ,    1  ,     0);

select distinct t1.orig1,t1.orig2,t1.orig3,obs
from table1 t1
join
(select t2.orig1,count(*)  obs
from table2 t2
group by t2.orig1) t2
on t2.orig1 = t1.orig1;

+-------+-------+-------+-----+
| orig1 | orig2 | orig3 | obs |
+-------+-------+-------+-----+
|     1 |     1 |     1 |   1 |
+-------+-------+-------+-----+
1 row in set (0.00 sec)
  • I think effort could be more sensibly invested in revising the schema – Strawberry May 4 '18 at 15:56

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