Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Here is my query (I replaced table names with generic ones). I am trying to do a union all on two different queries in order to group them all by date so that results with similar dates come out as one row.

I am getting the "Every derived table must have its own alias" error when attempting to execute. What am I typing in wrong?

I have researched this but couldn't find the answer. Every selected field has an alias? Or is the issue in the first SELECT?

SELECT SUM(val), id, dat, title FROM (

                      SELECT table1.product_id as id, SUM(table1.qty) as val, DATE_FORMAT(table1.created, '%Y-%m-1') as dat, table2.title as title 
                      FROM table1
                      LEFT JOIN table3 ON table1.event_id = table3.id
                      LEFT JOIN table2 ON table1.product_id = table2.id
                      WHERE table1.user_id = $user_id AND table3.active != 2 AND table3.temp = 0 AND table2.active != 2

                      GROUP BY dat

                      UNION ALL

                      SELECT table4.product_id as id, SUM(table4.qty) as val, DATE_FORMAT(table4.created, '%Y-%m-1') as dat, table2.title as title 
                      FROM table4
                      LEFT JOIN table5 ON table4.festival_id = table5.id
                      LEFT JOIN table2 ON table4.product_id = table2.id
                      WHERE table4.user_id = $user_id AND table5.active != 2 AND table2.active != 2

                      GROUP BY dat

                      )
                      GROUP BY id
                      ORDER BY dat ASC

Here is what I am attempting to do:

My original result:

Array
(
[0] => stdClass Object
    (
        [id] => 1
        [val] => 1
        [dat] => 2012-05-1
        [title] => Test Product
    )

[1] => stdClass Object
    (
        [id] => 1
        [val] => 8
        [dat] => 2012-06-1
        [title] => Test Product
    )

[2] => stdClass Object
    (
        [id] => 2
        [val] => 4
        [dat] => 2012-06-1
        [title] => Test Product 2
    )

[3] => stdClass Object
    (
        [id] => 3
        [val] => 6
        [dat] => 2012-06-1
        [title] => Test Product 3
    )

[4] => stdClass Object
    (
        [id] => 1
        [val] => 10
        [dat] => 2012-05-1
        [title] => Test Product
    )

[5] => stdClass Object
    (
        [id] => 1
        [val] => 8
        [dat] => 2012-06-1
        [title] => Test Product
    )

[6] => stdClass Object
    (
        [id] => 2
        [val] => 3
        [dat] => 2012-06-1
        [title] => Test Product 2
    )

[7] => stdClass Object
    (
        [id] => 3
        [val] => 3
        [dat] => 2012-06-1
        [title] => Test Product 3
    )

)

So if they have a similar date and ID, I need those to be just one result. Like so:

    Array
(
[0] => stdClass Object
    (
        [id] => 1
        [val] => 11
        [dat] => 2012-05-1
        [title] => Test Product
    )

[1] => stdClass Object
    (
        [id] => 1
        [val] => 8
        [dat] => 2012-06-1
        [title] => Test Product
    )

[2] => stdClass Object
    (
        [id] => 2
        [val] => 7
        [dat] => 2012-06-1
        [title] => Test Product 2
    )

[3] => stdClass Object
    (
        [id] => 3
        [val] => 9
        [dat] => 2012-06-1
        [title] => Test Product 3
    )

)

Please let me know if you need anything else. Thanks in advance.

share|improve this question
up vote 1 down vote accepted

Try this:

SELECT SUM(val), id, dat, title FROM (

                  SELECT table1.product_id as id, SUM(table1.qty) as val, DATE_FORMAT(table1.created, '%Y-%m-1') as dat, table2.title as title 
                  FROM table1
                  LEFT JOIN table3 ON table1.event_id = table3.id
                  LEFT JOIN table2 ON table1.product_id = table2.id
                  WHERE table1.user_id = $user_id AND table3.active != 2 AND table3.temp = 0 AND table2.active != 2

                  GROUP BY dat

                  UNION ALL

                  SELECT table4.product_id as id, SUM(table4.qty) as val, DATE_FORMAT(table4.created, '%Y-%m-1') as dat, table2.title as title 
                  FROM table4
                  LEFT JOIN table5 ON table4.festival_id = table5.id
                  LEFT JOIN table2 ON table4.product_id = table2.id
                  WHERE table4.user_id = $user_id AND table5.active != 2 AND table2.active != 2

                  GROUP BY dat

                  ) AS t
                  GROUP BY id, dat
                  ORDER BY dat ASC

As the error suggests, every view/derived table must have an alias..

Edit: This will give you records with distinct id/dat pair. Seems this is what is you are after.

share|improve this answer
    
I've seen that AS t in other examples, what key / purpose does that serve? – K_G Jun 19 '12 at 15:07
    
Its an alias (meaning a name) you specify for every table in the query. For proper tables, it has a name of its own, but for derived tables, it doesn't have a name. Without a name it becomes impossible to specify the table. This is the standard behaviour of MySQL. Not so in SQLite. See this link for some more info.. stackoverflow.com/questions/9442119/… – nawfal Jun 19 '12 at 15:13
    
The results are not being grouped together now, as desired above. How would I restructure my given query to display as requested? – K_G Jun 19 '12 at 15:31
    
@K_G I do not know what exactly you want. If you do not want duplicates in the resultant union of two queries, use union instead of union all. Moreover, you can also group on t.dat rather than doing two individual groups, but then it will behave differently. To know which behaviour u want, only u know. MySQL group by are a bit tricky to understand. Giving us some test data and output u expect would help us better in giving the right query – nawfal Jun 19 '12 at 15:41
    
what I am getting and what I want are already in the original question – K_G Jun 19 '12 at 15:47

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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