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I am confused, I don't know what's wrong. I'm about to transfer all data from my first table to the other. Here is my code:

$getdata = mysql_query("SELECT Quantity, Description, Total FROM ordercart");

while($row = mysql_fetch_row($getdata))
{
foreach($row as $cell){

$query1 = mysql_query("INSERT INTO ordermem (Quantity, Description, Total) VALUES 
($cell)",$connect);

}
mysql_free_result($getdata);
}

I get the error: Warning: mysql_fetch_row(): 5 is not a valid MySQL result resource.

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Use error messages to find out what goes wrong. The manual shows how. php.net/manual/en/function.mysql-query.php –  Pekka 웃 Oct 17 '12 at 14:59
    
Please read up on proper SQL escaping. This example is a serious liability. –  tadman Oct 17 '12 at 15:15
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5 Answers

You only pass one value in the INSERT, which expects three values to be passed to the fields Quantity, Description, Total:

INSERT INTO ordermem (Quantity, Description, Total) VALUES 
($cell);

Change it to:

INSERT INTO ordermem (Quantity, Description, Total) VALUES 
($cell, $descriptionParam, $totalParam);

You may also try to use INSERT INTO SELECT directly instead of two distinct statements like so:

INSERT INTO ordermem (Quantity, Description, Total)
SELECT Quantity, Description, Total FROM ordercart;
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Why don't you just use MYSQL for this? It can be done by 2 queries.

Copy table

CREATE TABLE `ordermem` LIKE `ordercart`;

Insert data

INSERT INTO `ordermem` (SELECT * FROM ordercart);
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You can do it in one shot: CREATE TABLE ordermem AS SELECT * FROM ordercart –  tadman Oct 17 '12 at 15:16
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You are trying to insert 1 value into 3 fields. You need to have 1 value for each field. For example:

$quantity="$_GET['qty']";
$description="$_GET['desc']";
$total="$_GET['total']";

$query = mysql_query("INSERT INTO ordermem (Quantity, Description, Total) 
                                    VALUES ('$quantity','$description','$total'))
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Use debugging to find out the source of your problem.

mysql_query() returns a boolean value that tells you whether the operation succeeded or not. If it did not succeed, the mysql_error() function give you mySQL's error message.

Example:

$query1 = mysql_query("INSERT INTO ordermem (Quantity, Description, Total) VALUES ($cell)",$connect);

if (!$query1)  
  trigger_error("mySQL Error: mySQL returned ".mysql_error(), E_USER_ERROR);

This will give you a message something like "Number of values does not match the number of columns", which gives you a hint about what's wrong.

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Try this :

$query = "INSERT INTO ordermem (Quantity, Description, Total) SELECT Quantity, Description, Total FROM ordercart";

mysql_query($query);
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