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I’m trying to execute a query like this one:

SELECT
  (17 + 4) AS foo,
  foo * 2 AS bar;

It fails, returning Unknown column 'foo' in 'field list'. So I did this:

SELECT
  (@foo := 17 + 4) AS foo,
  @foo * 2 AS bar;

Which works. The problem now is that I want to integrate this computed value (foo) in the WHERE clause:

SELECT
  (@foo := 17 + 4) AS foo,
  @foo * 2 AS bar
FROM lorem
WHERE foo = 21;

Fails: Unknown column 'foo' in 'where clause'.

If I replace foo with @foo in the WHERE, it works. But if I replace the literals by a column, it stops working:

SELECT
  (@foo := ipsum) AS foo,
  @foo * 2 AS bar
FROM lorem
WHERE @foo = 33;

Returns an empty set with this content in table lorem:

SELECT * FROM lorem;
+-------+
| ipsum |
+-------+
|    33 |
+-------+
share|improve this question
    
Shoudnt foo in WHERE clause be a column? –  Mihai Sep 11 '13 at 11:54
    
Isn't the WHERE clause executed before the select-clause? –  Jimmy T. Sep 11 '13 at 11:56

4 Answers 4

Subselect!

SELECT foo
     , foo * 2 As bar
FROM   (
        SELECT (17 + 4) AS foo
       ) As hey_look_at_me
WHERE  foo = 42
share|improve this answer
up vote 2 down vote accepted

I found the solution, it works using the HAVING clause instead of WHERE, like this:

SELECT
  (@foo := ipsum * 2) AS foo,
  @foo * 2 AS bar
FROM lorem
HAVING foo = 66;

Returns:

+------+------+
| foo  | bar  |
+------+------+
|   66 |  132 |
+------+------+

With:

SELECT * FROM lorem;
+-------+
| ipsum |
+-------+
|    33 |
|    41 |
+-------+

Because the HAVING is evaluated after the SELECT one; while the WHERE clause is evaluated before it and just after the FROM.

share|improve this answer

I dont know why you want to do this but this will do it.

SELECT (@foo := 17 + 4) AS foo, @foo:=@foo * 2 AS bar; FROM table WHERE @foo = 42;

foo is not a column, its a computed value so you cant use it in the where clause. And @foo has value 21 in your query, if you say @foo = 42 it will fail so it wont give any result.

So if you want the final value to be validated then assign it to the variable and validate it.

share|improve this answer
    
I fixed a mistake in my question: it is not @foo = 42 but @foo = 21, it's bar that is equal to 42. I edited my question with a new case, slightly different, that doesn't work. –  Kévin Lesénéchal Sep 11 '13 at 12:20
    
Are you doing this understand how an sql works? –  DB_learner Sep 11 '13 at 12:29
    
@KévinLesénéchal. It works like set, it sets value to a variable and runs the query. But when you assign value from a table, it runs the query first and then assigns bind value. This is why you get value when you assign constant and you dont when you assign from table. Try SELECT (foo := ipsum) AS foo, foo * 2 AS bar FROM lorem without where filter. You could see value 33 for filter but you cant use it in where clause becuase the value is assigned after running the query with where clause, at that time value of foo is empty. –  DB_learner Sep 11 '13 at 12:37
    
So must I compute the value twice? In the WHERE clause and in the SELECT fields? –  Kévin Lesénéchal Sep 11 '13 at 12:44
    
@KévinLesénéchal Why do you need a variable here, why cant you directly use the column. Purpose of set variable is to assign constant value. If you have value in a column, its better to use it directly than assigning to variable. Do all your calculations directly on the column, not on variable. –  DB_learner Sep 11 '13 at 12:49

in Oracle SQL i am able to do it simply. Values in table table_temp

select * from table_temp;
foo bar
11  54
17  42


SELECT
  17+4 AS foo,
   foo * 2 AS bar
  from table_temp
  where bar =42;

foo bar
21  42
share|improve this answer
    
The question is tagged MySQL! –  gvee Sep 11 '13 at 12:11
    
Even if the question was for Oracle, the answer is wrong. The condition "bar=42" that's being evaluated in the WHERE clause is based on the physical column bar in the table; not the calculated bar from SELECT. –  Joe Sep 11 '13 at 15:49

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