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I'm trying to insert this information into my database, I have practically the same code setup for SELECT queries and they work. Any INSERT queries I try will not work.

This function returns true, and I've echoed the query this function creates and have used PHPMyAdmin to run the SQL query where it'll show in the database but when doing it through this php code the INSERT never shows up in the database.

EDIT : I noticed that one of my columns (orderID) that is set to auto increment IS increasing every time I run this function but for whatever reason the query is not actually getting placed into the table.

This Image shows orderID of 29 is missing, I got those table results by doing 2 PHPMyAdmin INSERT queries, then one with the function and one more with PHPMyAdmin. Is there any way my function could be deleting the insert?

function add_to_cart($user_id, $product_id, $quantity) {
global $mysqli;
    if($result = $mysqli->query("INSERT INTO orders (userID, productID, quantity, orderDate) VALUES ('$user_id', '$product_id', '$quantity', NOW())")){
         return $result;
    }

return false;
}

The user connecting to the database has full privileges to the database so that shouldn't be the issue

share|improve this question
2  
change the return false to die($mysqli->error()) and see what pops up. you don't state HOW you handle the return values, so I'm assuming you're not checking for failure properly. –  Marc B Dec 2 '13 at 18:39
1  
global $mysqli; do you really need that ? –  Shankar Damodaran Dec 2 '13 at 18:40
    
If your userID column is set to AUTO_INCREMENT chances are it won't work. If it is, remove userID, and '$user_id', Also check what the column orderDate is set to. Could be a number of things. –  Fred -ii- Dec 2 '13 at 18:48
    
wild guess: are you commiting the transactions? (DML instructions affecting MyISAM tables are autocommited, but instructions affecting InnoDB tables can be commited later) –  Barranka Dec 2 '13 at 18:48
2  
We shouldn't be here "taking shots", programming shouldn't be a "let's try something I know won't change anything, maybe it works". ...But I'm guilty of that too, I admit it :D –  Damien Pirsy Dec 2 '13 at 19:25

2 Answers 2

Judging by other numerous questions of the same kind, you are just looking for the results in the wrong database.

Speaking of the function itself, it is bloated and unsafe.

You should use prepared statements.

function add_to_cart($user_id, $product_id, $quantity) {
    global $pdo;
    $sql = "INSERT INTO orders (userID, productID, quantity, orderDate) VALUES (?, ?, ?, NOW())";
    $pdo->prepare($sql)->execute(func_get_args());
}

there is no point in returning anything as in case of error an exception would be thrown. And even if there was, still there is no use for a tautology like IF result == true THEN return true ELSE return false. You can simply return the result itself.

share|improve this answer
    
Well I'm positive I'm looking at the right table for results. I'm checking them in PHPMyAdmin and the queries I entered in via PHPMyAdmin are showing up in orders I've updated my original post. The queries aren't going into the database butone of the columns is auto-incrementing every time I try to run the query. –  ItsComcastic Dec 2 '13 at 19:02
1  
Well, debug your code. Community can do next to nothing with it. It could be a transaction or whatever. But it's only you who can find out –  Your Common Sense Dec 2 '13 at 19:03
    
The whole reason I'm posting here is because I've debugged my code and have searched everywhere else. I don't see anything wrong with my code and I haven't seen anyone else with my problem. i.imgur.com/YYIgzk6.png The orderID of 29 is missing, I got those table results by doing 2 PHPMyAdmin INSERT queries, then one with the function and one more with PHPMyAdmin. Is there any way my function could be deleting the insert? –  ItsComcastic Dec 2 '13 at 19:14
    
Look. There is ALWAYS a way for your code to malfunction. Unfortunately, there is infinite number of causes - makes all the guesswork out of business. The only way to find the issue is to debug your code. Which a merely your duty as a programmer. –  Your Common Sense Dec 2 '13 at 19:21
up vote 0 down vote accepted

I was able to fix the problem by adding $mysqli->commit(); after $mysqli->query()

I needed to do this because I changed the default options and had "SET AUTOCOMMIT = 0"

Taking that out allowed me to remove $mysqli->commit()

function add_to_cart($user_id, $product_id, $quantity) {
    global $mysqli;
    if($result = $mysqli->query("INSERT INTO orders (userID, productID, quantity, orderDate) VALUES ($user_id, $product_id, $quantity, NOW())")){
        if (!$mysqli->commit()) {
            print("Transaction commit failed\n");
        }
        return $result;
    }
    die($mysqli->error());
}
share|improve this answer
    
You have solved not the issue but consequence. I strongly suggests to find an operator or a setting that actually starts a transaction. Most likely you just copy-pasted it somewhere with other code. –  Your Common Sense Dec 3 '13 at 6:03
    
I never turned on autocommit. So if what Barranka said is correct, I need to commit the INSERT query and it doesn't have anything to do with an open transaction. I just checked all of my functions I only have this query making a change to the database. –  ItsComcastic Dec 3 '13 at 20:37
    
You don't have to turn autocommit on. Because it's on by default. You rather shouldn't turn it off. –  Your Common Sense Dec 3 '13 at 20:38
1  
Looked at my Mysqli initialization code more closely.. Turns out I did turn autocommit off. That's what I get for copying that block of code from online. –  ItsComcastic Dec 4 '13 at 0:42

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