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I'm writing a SQL (Oracle) to update a table with the values in another table. But since there is a 2 column unique constraint, the update always failed. It is something like this:

Table A
- A_1
- A_2
- A_3
(There is a unique constraint for A_1 + A_3 )

Table B
- B_1
- B_2

Here is my current sql:

UPDATE A a
SET a.A_1 =
    (SELECT b.B_1
    FROM B b
    WHERE a.A_2 = b.B_2
    )
AND EXISTS
    (SELECT b.B_1
    FROM B b
    WHERE a.a.A_2 = b.B_2
    )

I want to skip the lines that violate the unique constraint but I don't know how to do it. Please advise. Thank you!

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1 Answer

up vote 0 down vote accepted

You can put an AND NOT EXISTS at the end, checking the constrained values against the new ones (as would be after the update):

...
AND NOT EXISTS
(
    SELECT 1
    FROM A checkA
    WHERE checkA.A_1 = (SELECT b.B_1 FROM B b WHERE a.A_2 = b.B_2)
    AND checkA.A_3 = a.A_3
)
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Thank you for your answer. I got the idea. I'm trying it right now. But I'm seeing an issue of running too long time. The B table is very big. Do you have any idea to improve it? Thank you! –  Xiezi Jan 23 '13 at 19:07
    
Forgive my naivety but I would start by looking at why you are doing an update but arbitrarily ignoring rows because they would fail a constraint. In my book the fact that it would fail a constraint says you're doing something wrong in the first place... –  lc. Jan 23 '13 at 19:11
    
Your point makes sense to me, too. This is actually a data backfilling from a table to another table. The B table is a middleware forwarding the data to the A table. Now we are merging it to A table. Since we have added some new features to A which is not going through B, there could be some conflict data between A and B. This is caused our new feature's defect. We are going to ingore it for now. –  Xiezi Jan 23 '13 at 19:20
    
Gotcha. I can't think of anything of the top of my head to make it any faster, but you can check the output of an EXPLAIN and see if that helps. –  lc. Jan 23 '13 at 19:24
1  
You can check if you have an index on B(B_2,B_1) –  Plouf Jan 23 '13 at 19:27
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