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I have three tables and I'm trying to do a SELECT from one and INSERT to the other with using ON on the three columns with the same values.

Here's what I trying...

INSERT INTO
CustomerDetails_TEST
(Region_ID)

SELECT
RegionStatesUS.Region_ID

LEFT JOIN Customers ON Customers.Customer_ID = CustomerDetails_TEST.Customer_ID
LEFT JOIN RegionStatesUS ON RegionStatesUS.RegionState = Customers.BillingStateOrProv

FROM Customers
WHERE Customers.Customer_ID = CustomerDetails_TEST.Customer_ID

The tables are...

CustomerDetails_TEST
RegionStatesUS
Customers

And I'm trying to INSERT the value from RegionStatesUS.Region_ID using the Customer_ID INTO CustomerDetails_TEST.Region_ID

What am I missing here?

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Are you getting any error? –  A. Agius Sep 13 '12 at 15:16
    
Error: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'LEFT JOIN Customers ON Customers.Customer_ID = CustomerDetails_TEST.Customer_ID ' at line 8 –  Monty Sep 13 '12 at 15:22
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3 Answers

up vote 1 down vote accepted

Your SQL syntax is wrong, I think you might want this:

INSERT INTO CustomerDetails_TEST (Region_ID)
SELECT r.Region_ID
FROM Customers c1
LEFT JOIN CustomerDetails_TEST c2
    ON c1.Customer_ID = c2.Customer_ID
LEFT JOIN RegionStatesUS r
    ON c1.BillingStateOrProv = r.RegionState 

Update query would be similar to this not tested:

UPDATE CustomerDetails_TEST c1
LEFT JOIN Customers c2
    ON c1.Customer_ID = c2.Customer_ID
LEFT JOIN RegionStatesUS r
    ON c2.BillingStateOrProv = r.RegionState 
SET c1.Region_ID = r.Region_ID
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This is Great! What about the UPDATE, how would I use it for UPDATEing each record in CustomerDetails_TEST? –  Monty Sep 13 '12 at 16:09
    
@Monty see my edit, your UPDATE would be similar to my edit. –  bluefeet Sep 13 '12 at 16:21
    
Very simple! Thanks for your help! –  Monty Sep 13 '12 at 16:24
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FROM comes before LEFT JOIN. The error message is hinting at that. Try again.

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Couldn't see where to comment just a note on how to update, or

insert into mytable
select from sometable
on duplicate key update
id = sometable.id;
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