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I am trying to bring together two separate designs here so I understand the overall approach may not be ideal. Basically through user input in PHP table1 and part of table2 is populated and then in turn I need the rest of table2 and table3 to be populated automatically.

I have the following db

enter image description here

with this trigger

DELIMITER |

CREATE TRIGGER new_trigger AFTER INSERT on table2
FOR EACH ROW BEGIN
    INSERT INTO table3(att1, DateCreated, DateUpdated)
    VALUES('PG', now(), now());
    UPDATE table2 SET table3Id = table3.LAST_INSERT_ID();
END;
|

DELIMITER ;

although MySQL accepts the trigger as written without any errors I get this error when the app runs:

 General error: 1442 Can't update table 'table2' in stored function/trigger 
    because it is already used by statement which invoked this stored function/trigger

I believe this comes from MySQL triggers can't manipulate the table they are assigned to. So if this is the reason for the error how else can I achieve the same results?

EDIT: (ANSWER)

Thanks to the help from mootinator here and in chat. Here is his solution that works as I need it to.

CREATE TRIGGER new_trigger BEFORE INSERT on table2
FOR EACH ROW BEGIN
    INSERT INTO table3(att1, DateCreated, DateUpdated)
    VALUES('PG', now(), now());
    SET NEW.table3Id = LAST_INSERT_ID();
END;
share|improve this question
    
It might be good to describe the actual situation you have with all the table names and relationships. Perhaps the issue can be solved by some other way, avoiding triggers. –  ypercube Sep 25 '11 at 19:34
    
ypercube I decided to simplify things here posting it as I did. I will be moving to a better solution once I have the time to rewrite the affected parts of the app but we needed to get something working asap, bandaid or not. –  enfield Sep 25 '11 at 19:40
    
It seems that @mootinator's answer has solved your problem, fine. From what I understand, you could also try a transaction approach. Never issuing an INSERT on table2 but a transaction that inserts first to table3 and then to table2 (using the LAST_INSERT_ID(), same way as the trigger does). This has the advantage that a transaction is atomic, meaning it either fails or succeeds altogether. With a (BEFORE) trigger, you can sometimes end with a row inserted in table3 and then having the INSERT fail to add the row in table2 leaving the row in table3 childless. –  ypercube Sep 25 '11 at 19:47
    
@ypercube you make a good point. Couldn't I just take this logic from the trigger and turn it into a function that is initiated by a trigger? –  enfield Sep 25 '11 at 19:57
    
My point is to have no triggers at all. Just a START TRANSACTION; INSERT INTO table3 ...; INSERT INTO table2 ...; COMMIT; And forbid your apps from doing any INSERT into table2. See here for documentation: dev.mysql.com/doc/refman/5.1/en/commit.html –  ypercube Sep 25 '11 at 20:04

1 Answer 1

up vote 2 down vote accepted

You can't use an AFTER trigger because the new change you make would (potentially) cause the AFTER trigger to be run again in an infinite loop. You have to use a BEFORE trigger to edit the row before it gets written.

Try eg:

CREATE TRIGGER new_trigger BEFORE INSERT on table2
FOR EACH ROW BEGIN
    INSERT INTO table3(att1, DateCreated, DateUpdated)
    VALUES('PG', now(), now());
    SET NEW.table3Id = LAST_INSERT_ID();
END;
share|improve this answer
    
I have tried a BEFORE trigger also, regardless the same error appears. Like I said I think the problem is that MySQL triggers can't manipulate the table they are assigned to as other dbs can. –  enfield Sep 25 '11 at 18:49
    
Did you leave the UPDATE table2 in the TRIGGER or did you replace it with NEW.table2Id = table3.LAST_INSERT_ID();? –  Kevin Stricker Sep 25 '11 at 18:51
    
Also, your UPDATE statement refers to the whole table, not a specific row. –  Kevin Stricker Sep 25 '11 at 18:54
    
Yes it is a different trigger since you can't update a new record. I used essentially what you have INSERT INTO table2(table3ID) VALUES(table3.LAST_INSERT_ID()); –  enfield Sep 25 '11 at 18:54
    
That isn't essentially what I have. Changing column values on the inserted row is allowed using the NEW alias is allowed, changing the table some other way isn't. –  Kevin Stricker Sep 25 '11 at 18:58

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