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Still a mysql newb and I looked extensively through previous questions trying to find an appropriate solution.

I have two tables CaseReportsTempImport2011Q3 and FDADrugsDB, I want to do a left join to match CaseReportsTempImport2011Q3.drugname to FDADrugsDB.ReferenceDrugName and FDADrugsDB.DrugName

What I envisioned was something like:

SELECT DISTINCT(CaseReportsTempImport2011Q3.DRUGNAME)
, FDADrugsDB_Product.drugname
, FDADrugsDB_Product.ReferenceDrug
, FDADrugsDB_Product.activeingred
FROM CaseReportsTempImport2011Q3
LEFT JOIN FDADrugsDB_Product ON CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.ReferenceDrug) 
LEFT JOIN FDADrugsDB_Product ON CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.DrugName) 
ORDER BY LENGTH(CaseReportsTempImport2011Q3.DRUGNAME) ASC

But that doesn't work I get 'Not unique table/alias: 'FDADrugsDB_Product'' - Any help?

Thanks

EDIT FOR BETTER SOLUTION REQUEST/REPHRASE Per borealids "However, I'm not sure this is what you want to do - joining the table twice will produce a multiplicative number of results. I think you might have wanted one join with an ON ... OR ..., making the join condition an "or" of the two reasons for linkage."

I would like to know how to do that.

SOLUTION ON CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.ReferenceDrug) OR CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.DrugName

Thanks tom and borealid.

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Just use AND / OR as you would with WHERE like JOIN foo ON foo.fk = bar.id AND foo.name = bar.name and remove the second JOIN or alias your tables though that seems pointless –  T I Jan 26 '12 at 16:58

3 Answers 3

up vote 4 down vote accepted

To make the query you wrote valid, you need to assign two different relation names to the two uses of the same table.

LEFT JOIN FDADrugsDB_Product FDA_first ON

and

LEFT JOIN FDADrugsDB_Product FDA_second ON

and then use the names FDA_first and FDA_second to refer to results from each set distinctly. Otherwise the query engine can't tell what you mean when you say FDADrugsDB_Product - there are two of them, each different!

However, I'm not sure this is what you want to do - joining the table twice will produce a multiplicative number of results. I think you might have wanted one join with an ON ... OR ..., making the join condition an "or" of the two reasons for linkage.

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Yes, I would love to figure out how to do an ON OR for one join, I tried but my syntax is quite new and rusty. How would I do this? –  cerd Jan 26 '12 at 17:19
    
@cerd: ON CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.ReferenceDrug) OR CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.DrugName). That's not the same as doing two joins. –  Borealid Jan 26 '12 at 17:23
    
Thanks, that worked like a charm. –  cerd Jan 26 '12 at 17:32

You need to give the tables alias names, otherwise MySql won't know which instance of the FDADrugsDB table you are talking about. i.e.

FROM CaseReportsTempImport2011Q3 a
LEFT JOIN FDADrugsDB_Product b ON CaseReportsTempImport2011Q3.DRUGNAME LIKE    TRIM(FDADrugsDB_Product.ReferenceDrug) 
LEFT JOIN FDADrugsDB_Product c  ON CaseReportsTempImport2011Q3.DRUGNAME LIKE TRIM(FDADrugsDB_Product.DrugName) 
share|improve this answer
    
You forgot to use the alias names in the LIKE. –  Borealid Jan 26 '12 at 17:01
    
thanks. I was just giving a quick example and not checking the whole syntax. bad practice on my part as it would lead to confusion :-) –  Brian Jan 26 '12 at 17:24
1  
Yeah, I'm not nitpicking, just worried they would try running your query and get the same error message. –  Borealid Jan 26 '12 at 17:24
  ...
FROM
  CaseReportsTempImport2011Q3  i
  LEFT JOIN FDADrugsDB_Product p ON    i.DRUGNAME LIKE TRIM(p.ReferenceDrug) 
                                    OR i.DRUGNAME LIKE TRIM(p.DrugName) 
ORDER BY 
  LENGTH(i.DRUGNAME) ASC

Note that you should probably use = instead of LIKE, unless ReferenceDrug and DrugName contain match patterns.

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Yeah the data is pretty dirty so have to use a LIKE and maybe even some REGEXP. –  cerd Jan 26 '12 at 17:24
    
@cerd Yeah, but without including a % somewhere in your condition, LIKE behaves like =. Anyway, if that's what you need, it's okay. –  Tomalak Jan 26 '12 at 17:26

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