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I recently asked a question about writing to multiple tables: PHP/MySQL insert into multiple data tables on submit

I have now tried out this code and there are no errors produced in the actual code but the results I am getting are strange. When a user clicks register this 'insert.php' page is called and the code can be found below.

<?php

$username = $_POST["username"];
$password = $_POST["password"]; 
$institution = $_POST["institution"];

$conn = pg_connect("database connection information"); //in reality this has been filled
$result = pg_query($conn, "INSERT INTO institutions (i_id, name) VALUES (null, '$institution') RETURNING i_id");
$insert_row = pg_fetch_row($result);
$insti_id = $insert_row[0];

// INSTITUTION SAVED AND HAS ITS OWN ID BUT NO MEMBER OF STAFF ID

$resultTwo = pg_query($conn, "INSERT INTO staff VALUES (NULL, '$username', '$password', '$insti_id'");
$insert_rowTwo = pg_fetch_row($resultTwo);
$user_id = $insert_rowTwo[0];
// USER SAVED WITH OWN ID AND COMPANY ID
// ASSIGN AN INSTITUTION TO A STAFF MEMBER IF THE STAFF'S $company_id MATCHES THAT OF THE
// INSTITUION IN QUESTION
$update = pg_query($conn, "UPDATE institutions SET u_id = '$user_id' WHERE i_id = '$insti_id'");  

pg_close($conn);

?>

What the result of this is just the browser waiting for a server response but there it just constantly waits. Almost like an infinite loop I'm assuming. There are no current errors produced so I think it may be down to a logic error. Any ideas?

share|improve this question
    
Can you check the database and see if the rows are inserted? – ChrisForrence Aug 23 '12 at 16:15
    
Done this and no they are empty – WebDevDanno Aug 23 '12 at 16:18
    
Alright, after each pg_query, add the following, replacing $result with $resultTwo and $update as needed: if($result == false) echo pg_last_error($conn); – ChrisForrence Aug 23 '12 at 16:26
1  
This code tries to fetch the results of an INSERT, but an INSERT without a RETURNING has not result to fetch. Also it is not doing any error checking. On top of that, it has holes for SQL injections everywhere. – Daniel Vérité Aug 23 '12 at 16:28
1  
You say "MySQL", but it looks like you're using PostgreSQL? – Steven Van Ingelgem Aug 23 '12 at 16:29
up vote 2 down vote accepted

The errors:

  • RETURNING clause is missing in the second INSERT statement.

  • Provide an explicit list of columns for your second INSERT statement, too.

  • Don't supply NULL in the INSERT statements if you want the column default (serial columns?) to kick in. Use the keyword DEFAULT or just don't mention the column at all.

The better solution:

Use data-moidifying CTE, available since PostgreSQL 9.1 to do it all in one statement and save a overhead and round trips to the server. (MySQL knows nothing of the sort, not even plain CTEs).

Also, skip the UPDATE by re-modelling the logic. Retrieve one id with nextval(), and make do with just two INSERT statements.

Assuming this data model (you should have supplied that in your question):

CREATE TABLE institutions(i_id serial, name text, u_id int);
CREATE TABLE staff(user_id serial, username text, password text, i_id int);

This one query does it all:

WITH x AS (
    INSERT INTO staff(username, password, i_id) -- provide column list
    VALUES ('$username', '$password', nextval('institutions_i_id_seq'))
    RETURNING user_id, i_id
    )
INSERT INTO institutions (i_id, u_id, name)
SELECT x.i_id, x.user_id, '$institution'
FROM   x
RETURNING u_id, i_id; -- if you need the values back, else you are done

Data model

You might think about changing your data model to a classical n:m relationship. Would include these tables and primary keys:

staff (u_id serial PRIMARY KEY, ...)
institution (i_id serial PRIMARY KEY, ...)
institution_staff (i_id, u_id, ...,  PRIMARY KEY(i_id, u_id)) -- implements n:m

You can always define institution_staff.i_id UNIQUE, if a user can only belong to one institution.

share|improve this answer
    
Thank you very much for your help! – WebDevDanno Aug 24 '12 at 9:14
    
A delayed reply but if I changed my data model would the query above still work? Because I have the data model you assumed but I have enforced referential integrity between u_id and i_id in each table so they are FK references. – WebDevDanno Sep 4 '12 at 10:12

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