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I have a table 1 with a one to many relationship to table 2. Table 1 also has a one to many relationship with table 3

I want to combine the results of the join but all im getting is repeated values

Here is the structure:

table 1
reportnumber
1
2
3

table 2
reportnumber  col1
1              a
1              b
2              c
3              a

table 3
reportnumber  col2
1              x
1              y
1              z
2              w

expected result set

reportnumber   col1   col2
1                a      x
1                b      y
1                       z
2                c      w
3                a

I'm sure this is possible with a left outer join but i just cant get the syntax right

Any clues?

This is what im trying

select * from table1 a 
left outer join table2 b on a.reportnumber=b.reportnumber
left outer join table3 on a.reportnumer=c.reportnumber 

But the results look like this

reportnumber   col1   col2
1               a       x
1               a       y
1               a       z
1               b       x
1               b       y
1               b       z
...
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3  
you state that you can't get the syntax right, you should really edit your post with the queries that you have tried. –  bluefeet Mar 26 at 20:43
    
Also the incorrect result set may help –  jaywayco Mar 26 at 20:54

1 Answer 1

This isn't easy in MySQL, but you can do it with variables. This has little to do with a join. Or, it has a lot to do with join, but you don't have the right join keys and you don't have full outer join.

The solution is to enumerate the rows from each table with the data columns. Then aggregate using the enumeration and reportnumber:

select reportnumber, max(col1) as col1, max(col2) as col2
from ((select t2.reportnumber, col1, null as col2, @rn2 := @rn2 + 1 as rn
       from table2 t2 cross join
            (select @rn2 := 0) const
      ) union all
      (select t3.reportnumber, null, t3.col2, @rn3 := @rn3 + 1 as rn
       from table3 t3 cross join
             (select @rn3 := 0) const
      )
     ) t
group by reportnumber, rn;
share|improve this answer
    
i don't understand this, but i tried it. it said "every derived table must have its own alias" –  case1352 Mar 26 at 21:06
    
@case1352 . . . Every derived table does have its own alias in this query. –  Gordon Linoff Mar 26 at 21:35

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