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I have a MySQL table that has about 30k records, of which 2k I estimate are duplicate.

How do I craft a query to show duplicates that share ALL of the following columns STREET_NUMBER, STREET_NAME, UNIT_NUMBER, ZIP_CODE but another column called MLS_ID that are NOT the same?

I only want to see the records where there is a complete match and the MLS_ID is different.

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Should the last sentence say "I want the records where there is a complete match EXCEPT FOR the MLS_ID"? –  Matt Fenwick Dec 9 '11 at 18:36

3 Answers 3

up vote 1 down vote accepted

I think this should work (untested)

SELECT *  
  FROM Table1 T
 INNER JOIN
          (
            SELECT STREET_NUMBER, STREET_NAME, UNIT_NUMBER, ZIP_CODE
              FROM Table1 T1
             GROUP BY STREET_NUMBER, STREET_NAME, UNIT_NUMBER, ZIP_CODE
            HAVING COUNT(DISTINCT MLS_ID) > 1
          ) T2 ON T.STREET_NUMBER = T2.STREET_NUMBER AND T.STREET_NAME = T2.STREET_NAME AND         T.UNIT_NUMBER = T2.UNIT_NUMBER AND T.ZIP_CODE = T2.ZIP_CODE
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Try this(untested):

SELECT * FROM table t1 INNER JOIN table t2 
  USING(STREET_NUMBER, STREET_NAME, UNIT_NUMBER, ZIP_CODE) 
  WHERE t1.MLS_ID != t2.MLS_ID;
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If we have 3 different records with different MLS_ID but same street_number,streetname etc. Then this query will return 6 records ... I havent tested it but, that seems logical ..... –  Nitin Midha Dec 9 '11 at 18:22

You could do a group-by, and take only those groups where the count is greater than 1 (i.e. where there are duplicates):

select 
  <grouping columns>  -- put STREET_NUMBER, STREET_NAME, etc. here
from
  (select distinct * from <tablename>)
group by
  <grouping columns>  -- and here!
having 
  count(*) > 1

Just don't put MLS_ID in the group-by clause. This assumes that MLS_ID is the only non-grouping column.

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sweet, thanks for the help! –  Rocco The Taco Dec 9 '11 at 18:51

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