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I want to make sure the ID column is incremented for every insert on a table.

I tried this statement:

INSERT INTO Anlagenteil (ID, TaId, Subtype, Name)
VALUES                  (MAX(ID)+1, 0, 'BdAnlageteil', 'Barcodeleser0');

Unfortunately I get this error message:

Msg 207, Level 16, State 1, Line 1
Invalid column name 'ID'.
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3  
If you need incrementing values, it's usually better to use the built in features (in SQL Server, that would be an IDENTITY column). Consider what happens with your approach if two users run the same code at the same time. –  Damien_The_Unbeliever Jul 3 '13 at 9:52

3 Answers 3

up vote 1 down vote accepted

Use nested query like this:

INSERT INTO Anlagenteil (ID, TaId, Subtype, Name)
VALUES ((SELECT ISNULL(MAX(ID) + 1, 1) FROM Anlagenteil), 0, 'BdAnlageteil', 'Barcodeleser0');
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Invalid column name 'ID'.

This suggests you don't have an ID column at all.

You should add this column to the table, and set it to auto-increment, rather than writing the logic to do this yourself.

As @Damien_The_Unbeliever has pointed out, this could cause issues if 2 people run the script at the same time.

ALTER TABLE Anlagenteil
ADD ID INT IDENTITY(1,1)

Then your SQL statement can just be:

INSERT INTO Anlagenteil (TaId, Subtype, Name)
VALUES                  (0, 'BdAnlageteil', 'Barcodeleser0')

And the new ID value will automatically be added.

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1  
ID is definitely a valid column name. –  BetaRide Jul 3 '13 at 9:58

Try this-

Using mysqli_insert_id() function

The mysqli_insert_id() function returns the id (generated with AUTO_INCREMENT) used in the last query.

Example=

 <?php
$con=mysqli_connect("localhost","my_user","my_password","my_db");
// Check connection

mysqli_query($con,"INSERT INTO Persons (FirstName,LastName,Age) 
VALUES ('Glenn','Quagmire',33)");

// Print auto-generated id
echo "New record has id: " . mysqli_insert_id($con); 


  $last_id= mysqli_insert_id($con);

 // Adding 1 to the last insert id to get new id

  $new_id=$last_id+1;

mysqli_close($con);
?>
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This question is dealing with SQL not PHP. On top of that, it is tagged sql-server, a Microsoft product. It appears that your example is using MySQL. –  Travis Pessetto May 14 at 22:52

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