1

If inserting into two mysql tables at the same time is there a chance that another user could insert at the same time making the tables offset?

For example hypothetically: (In php)

$conn = new mysqli($servername, $username, $password, $dbname);

$sql = "INSERT INTO Name (user_id, name, email)
VALUES (DEFAULT, 'User name', 'john@example.com')";

if ($conn->query($sql) === TRUE) {
    echo "New record created successfully";
} else {
    echo "Error: " . $sql . "<br>" . $conn->error;
}
$sql = "INSERT INTO Location (user_id, addressline1, addressline1, postcode)
VALUES (DEFAULT, '123 street', 'anytown, country', '123456')";

if ($conn->query($sql) === TRUE) {
    echo "New record created successfully";
} else {
    echo "Error: " . $sql . "<br>" . $conn->error;
}
$conn->close();

If 'John' ran this at the same times as 'Bob' is it possible for john's Name to be given the auto-increment id of 1 and his Location to be given 2 because Bob's Location was given 1 first even though his Name was given 2.

Kinda hard to explain.

  • I want to know if 1000's if not millions of people are running this could it occur?
  • is there some reason MySQL will stop this from happening?
  • if not what can/can anything be done to prevent it?
3
  • 4
    insert_id may be of use to you. it fetches the autoincremented id that was created per the last insert statement, which you would then use in your second query to make sure the ids match. – castis May 5 '15 at 23:44
  • 2
    To answer the actual question: Yes absolutely. You need to read the inserted id ^. – developerwjk May 5 '15 at 23:46
  • The process is connection specific, so the last id is the last id inserted by that connection – Strawberry May 5 '15 at 23:51
2

In your scenario, given the code you posted, the thing you're worried about is possible and will definitely happen as you gain more and more users.

Using insert_id from mysqli will solve this issue for you. The autoincremented id from the last successful insert query is stored in here for precisely this reason. Change your second sql query to this.

$sql = "INSERT INTO Location (user_id, addressline1, addressline1, postcode)
VALUES ({$conn->insert_id}, '123 street', 'anytown, country', '123456')";

and its no longer a problem.

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.