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I have a table with three columns: Day, Key, Value. If there is a value absent from the Key column, I want to be able to insert it:

DAY | KEY | VALUE
------------------
Mon   Run   50    
Mon   Bike  20
Tues  Run   25
Tues  Bike  60
Wed   Run   20
Wed   Swim  5

I want to be able to identify the row with the missing 'Bike' value from the column and insert it. So there would be an additional row

Wed Bike 20

How should I go about achieving this?

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By the logic, swim should be flagged too - for Mon & Tues, right? –  OMG Ponies Nov 19 '11 at 17:39
    
I want to be able to choose that value. So I'd Look to see which days didn't include bike, then add it to those days. –  hoakey Nov 19 '11 at 17:41
    
So you don't know the value beforehand? User interaction/decision means at least two queries - one to see the list, the second to implement the change(s). –  OMG Ponies Nov 19 '11 at 17:47
    
It can be a fixed value. For example it always just looks for 'Bike'. –  hoakey Nov 19 '11 at 17:51

1 Answer 1

up vote 1 down vote accepted

Can you please try this? It's the hard-coded approach:

INSERT INTO <yourtable> (day, key, value)
SELECT DISTINCT t1.day AS day, 'Bike' as key, 20 as value
FROM
    <yourtable> AS t1
    LEFT OUTER JOIN 
    (SELECT day, key FROM <yourtable> WHERE key='Bike') AS t2
    ON t1.day = t2.day
WHERE t2.key IS NULL;

Or if you can, please use stored procedures (which will allow you to choose the activity and value:

CREATE PROCEDURE dbo.InsertActivityWhereMissing 
      @activity VARCHAR(50)
    , @activityValue INT
AS
BEGIN
    INSERT INTO <yourtable> (day, key, value)
    SELECT t1.day AS day, @activity as key, @activityValue as value
    FROM
        (SELECT day FROM <yourtable> GROUP BY day) AS t1
        LEFT OUTER JOIN 
        (SELECT day, key FROM <yourtable> WHERE key = @activity) AS t2
        ON t1.day = t2.day
    WHERE t2.key IS NULL;
END

This way, you can perform the same action for any particular "activity" (I'm just naming it that way, but I'm referring to Run, Bike, Swim or anything else)

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Gosh, that's so weird :( I recreated the tables and executed my code (minus the insert) and the select returned his desired result... Then I ran the insert and it worked, and when I did the select again nothing returned anymore since the wednesday 'bike' row was previously inserted :( –  Nonym Nov 19 '11 at 18:18
    
Perfect. Thanks so much :¬) –  hoakey Nov 19 '11 at 18:34

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