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Warning: vagueness & unclear questioning will abound because I know squat about databases.

I just discovered that I need to use views as surrogates for a cronned update statement. I can somewhat get the view to work, but I'm having trouble with rows.

This post helped me to bang out the update I need, but now that I know that views can run that update whenever it's needed rather than on a cron schedule, how can I set the view's column value based upon the view's row id or equivalent?

I've got the select I need:

 SELECT SUM( table2.column1/ (

 SELECT table2constant
 FROM table3
 FROM table2
 WHERE table2table1id = table1id

table1id is the AI id column for table1. table2table1id is PKd to table1id. I'd like the view to have a column PKd to table1id like with table2, and the view needs to have every distinct table1id represented.

I'm sure the jargon's way off, but hopefully you can see what I need.

Will provide as many edits as necessary for clarity.

Many thanks in advance!


Should I create a trigger that creates the view upon insert to table1? Just found about materialization which is what I need/want?


I need a summed value for each table1.table1id


With this code, I'm getting the first id from table1 and only the total sum. I need a sum for each

CREATE VIEW db1.sums as 

SELECT SUM( table2.column1/ (

 SELECT table2constant
 FROM table3
 ) as theSum, table1id
 FROM table1, table2
 WHERE table2.table2table1id = table1.table1id
share|improve this question
So table3 has a single row with a single constant? what is the layout of your tables? I need to understand only the minimal amount of information about what you want but it needs to be a bit clearer. – xception Oct 6 '12 at 19:07
yep, table3 is just constant repository. sry for ambiguity, but i have no idea what i'm doing, only in general terms. table1.table1id is AI primary. table2.table2table1id is PKd to table1.table1id. table2.column1 is just a column. table1id is table1.table1id. thank-you very much for your help – user1382306 Oct 6 '12 at 19:14
If it's a constant you can just type it in numerically instead, also make the sum first than divide, it should be faster than dividing each term individually. – xception Oct 6 '12 at 19:16

2 Answers 2

up vote 2 down vote accepted

To be clear I'm still not sure what you're trying to accomplish here but if what you posted works, try

SELECT table1.table1id,
    SUM( table2.collumn1 ) / (SELECT table2constant FROM table3 ) as theSum
 FROM table1, table2
 WHERE table2.table2table1id = table1.table1id GROUP BY table1.table1id

you can replace (SELECT table2constant FROM table3 ) with your constant if it has no reason to otherwise be in the database (if it's not updated)

share|improve this answer
absolutely beautiful! i love this site and all of you. is there a way i can give two checkmarks? brenjt helped me limp closer too. – user1382306 Oct 6 '12 at 19:18
No, you can only give one up on each answer and a single checkmark on the one that answers your question. Updated the answer a bit, hope it explains some more. – xception Oct 6 '12 at 19:20
I gave brenjt a 1 up on his answer on your behalf :) he was the one who gave you the original idea after all, without him I wouldn't have been able to fix it anyway cause I didn't know what you wanted. – xception Oct 6 '12 at 19:28

Its actually very simple. Here is an example of how you can do it.

SELECT SUM( table1.column / table2.column ), table1.*, table2.*
FROM table1, table2 
WHERE = table2.column_id
share|improve this answer
thank-you for trying, but that puts all values into a single field. i need a value for each table1.table1id. I very much appreciate your help & effort. – user1382306 Oct 6 '12 at 17:11
@JoeCoderGuy updated my answer. It will pull all columns from both tables – brenjt Oct 6 '12 at 17:30
i feel close, but now i'm getting #1060 - Duplicate column name 'id'. Sorry, had to change column names for security. table1 has an id column, and so does table2. thank-you very much for your help – user1382306 Oct 6 '12 at 18:43
OK, I'm seeing the pattern. I can name the columns, sum1 and id, but I'm fuzzy on how to isolate the sums to each The sums should be distinct for each id. Right now, I'm getting a total sum, and only one id. Thank-you very much. – user1382306 Oct 6 '12 at 18:55

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