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I have two tables

TABLE_A
+-------+------------------+------+-----+---------+-------+
| Field | Type             | Null | Key | Default | Extra |
+-------+------------------+------+-----+---------+-------+
| bid   | int(10) unsigned | NO   | PRI | 0       |       |
| uid   | int(10) unsigned | NO   | PRI | 0       |       |
+-------+------------------+------+-----+---------+-------+
2 rows in set (0.00 sec)

and

TABLE_B
+-------+------------------+------+-----+---------+-------+
| Field | Type             | Null | Key | Default | Extra |
+-------+------------------+------+-----+---------+-------+
| bid   | int(10) unsigned | NO   | PRI | 0       |       |
| uid   | int(10) unsigned | NO   | PRI | 0       |       |
+-------+------------------+------+-----+---------+-------+

I want to select bid from both tables when the uid = 123; Note: each table has about 15 results and some exists in both tables, I need to select distinctively. so I tried this:

SELECT DISTINCT ta.bid, 
                tb.bid 
FROM   table_a AS ta 
       JOIN table_b AS tb using (uid) 
WHERE  uid = 123; 

And I got the wrong answer obviously. Why is it getting 150+ results instead of 30?

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5  
UNION? Failing that, consider providing proper DDLs and/or an sqlfiddle TOGETHER WITH THE DESIRED RESULT SET –  Strawberry Jan 2 at 11:18
    
If you want to get results from both tables that match uid = 123 ? –  Dibyendu Dutta Jan 2 at 11:22
    
Oh yeah totally forgot union :) please post it as the answer so I can accept it –  saadlulu Jan 2 at 11:23
    
@DibyenduDutta Yes thats what I want –  saadlulu Jan 2 at 11:23

6 Answers 6

up vote 2 down vote accepted

Try this

SELECT DISTINCT bid FROM TABLE_A WHERE uid = 123
UNION 
SELECT DISTINCT bid FROM TABLE_B WHERE uid = 123

OR

SELECT DISTINCT bid 
FROM (SELECT bid FROM TABLE_A WHERE uid = 123
      UNION 
      SELECT bid FROM TABLE_B WHERE uid = 123
     ) AS A
share|improve this answer
    
I just need to make sure the end result does not contain any duplicates, adding distinct to each select wont work since I need it to be for the result –  saadlulu Jan 2 at 11:29
    
@saadlulu Check my updated answer –  Saharsh Shah Jan 2 at 11:32
    
Perfect answer thanks –  saadlulu Jan 2 at 11:33
    
@saadlulu You're most welcome... –  Saharsh Shah Jan 2 at 11:34
1  
There's no need for the DISTINCT. The UNION will do that for you anyway.... –  Ben Jan 2 at 12:01
SELECT ta.bid, 
       tb.bid 
FROM   table_a AS ta, 
       table_b AS tb 
WHERE  ta.uid = tb.uid 
       AND ta.uid = 123 
GROUP  BY ta.bid, 
          tb.bid 

Second Method would be

SELECT ta.bid, 
       tb.bid 
FROM   table_a AS ta 
       INNER JOIN table_b AS tb 
               ON ( ta.uid = tb.uid ) 
                  AND ( ta.uid = 123 ) 
share|improve this answer
    
I need to specify the uid, update your answer please :) –  saadlulu Jan 2 at 11:27
    
Updated with the Matching Condition UID –  Saad Bhutto Jan 2 at 11:29
    
The bid has to match and I have to specify the uid, like uid = 123 –  saadlulu Jan 2 at 11:31

Try This

select tb1.bid, tb2.bid from TABLE_A  AS tb1  , TABLE_B  AS tb2 
where tb1.bid = tb2.bid 
AND tb1.bid = 123
group by tb1.bid
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It has to be distinct –  saadlulu Jan 2 at 11:34
    
Well happy that you got your answer :) –  Dibyendu Dutta Jan 2 at 11:37

You need to do a union, filtering the remaining results

SELECT bid 
FROM   table_a 
WHERE  uid = 123 
UNION 
SELECT bid 
FROM   table_b 
WHERE  uid = 123 

Here's a fiddle to help you visualize the result: http://sqlfiddle.com/#!2/27eea5/4

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USE UNION Its Used to Combines the result of two or more SELECT statements.

SELECT  bid FROM TABLE_A WHERE uid = 123
UNION 
SELECT  bid FROM TABLE_B WHERE uid = 123
share|improve this answer

try this..

SELECT DISTINCT bid 
FROM   (SELECT bid 
        FROM   table_a 
        WHERE  uid = 123 
        UNION 
        SELECT bid 
        FROM   table_b 
        WHERE  uid = 123) AS temp; 
share|improve this answer
2  
There's no need for the DISTINCT. The UNION will do that for you anyway.... –  Ben Jan 2 at 11:51
    
@ben thanks for sharing info. –  users'squerystack Jan 2 at 11:58

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