-2

I'm trying to insert values like this:

$sql = "INSERT INTO daily_food (number, weight, title, price) VALUES ('1', SELECT weight, title, price FROM food where title = '$add_food' LIMIT 1)";
mysqli_query($conn, $sql);

I have database with food which i'm selecting from. I would like to insert that number aswell but code is doing nothing. I'm new in sql so i can't figure out how the code should look.

2

Just use insert . . . select, values is not necessary:

INSERT INTO daily_food (number, weight, title, price) 
    SELECT 1, weight, title, price
    FROM food 
    WHERE title = '$add_food'
    LIMIT 1;

Im assuming that number is, indeed, a number, so quotes are not needed.

In addition, you should be passing in $add_food as a parameter, something like this:

INSERT INTO daily_food (number, weight, title, price) 
    SELECT 1, weight, title, price
    FROM food 
    WHERE title = ?
    LIMIT 1;
  • @TimBiegeleisen . . . Not to the syntax error the OP is getting. But, it is important for other reasons. – Gordon Linoff Oct 20 '18 at 14:03
  • There is that, the number is not in the food database. I would like to give it strictly to the data in daily_food database. – Jakub Kříž Oct 20 '18 at 14:10
  • @JakubKříž . . . You probably want an auto-increment column in daily_food (and a name such as daily_food_id instead of number). That said, it doesn't have to be in food because this query returns it as a constant. – Gordon Linoff Oct 20 '18 at 14:12

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.