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You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'Resource id #2' at line 1

[Edit: following code picked out of a comment further down... indentation could be wrong]

//This is the directory where images will be saved 
$target_path = "images/";     
$target = $target_path . basename ($_FILES['photo']['name']); 
$did = $_POST['did']; 
$name = $_POST['dname']; 
$disc = $_POST['ddisc']; 
$price = $_POST['dprice']; 
$pic=($_FILES['photo']['name']); 
$con = mysql_connect("","restoraunt","123456"); 
// àéôä ùí äùøú ùìê, localhost àå îùäå? 
if (!$con) { die('Could not connect: ' . mysql_error()); } 
mysql_select_db("restoraunt", $con); 
mysql_query("INSERT INTO menu VALUES ('$did', '$name', '$disc', '$price','a','c','$pic')") ;
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6  
I means that You have an error in your SQL syntax; Please post your SQL query :) –  Silver Light Feb 1 '11 at 14:49
    
I don't think you're going to get much help with your question as it is. You really need to at the very least post your SQL and a description of what you're trying to do. –  Nick Feb 1 '11 at 14:50
3  
You are most probably sticking a query result resource into another SQL query. –  BoltClock Feb 1 '11 at 14:52

2 Answers 2

The fact that you're saying "near 'Resource id #2'" means that your SQL is actually the text Resource id #2 which is not a valid SQL.

I figure that you are doing this: mysql_query($someVariable) The variable that you are passing is actually an object, not a string.

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3  
Actually, it's not an object, but a PHP resource type. And that resource is typecasted when it is concatenated into the SQL string. –  Gordon Feb 1 '11 at 14:57
    
Sometimes I lie to the OP to explain things in easier terms. –  Mikhail Feb 1 '11 at 15:26
    
it's not easier terms, it's wrong terms. Objects and Resources have fixed meaning in PHP. They are not the same things. –  Gordon Feb 4 '11 at 8:44

There is an error in you're sql query right before Resource id #2 , mysql server can't iterpret it . Post the full query and we'll be able to tell you more about the error .

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//This is the directory where images will be saved $target_path = "images/"; $target = $target_path . basename ($_FILES['photo']['name']); $did = $_POST['did']; $name = $_POST['dname']; $disc = $_POST['ddisc']; $price = $_POST['dprice']; $pic=($_FILES['photo']['name']); $con = mysql_connect("","restoraunt","123456"); // àéôä ùí äùøú ùìê, localhost àå îùäå? if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("restoraunt", $con); mysql_query("INSERT INTO menu VALUES ('$did', '$name', '$disc', '$price','a','c','$pic')") ; –  margo7106 Feb 1 '11 at 15:24
    
right before mysql_query... write var_dump("INSERT INTO menu VALUES ('$did', '$name', '$disc', '$price','a','c','$pic')");die(); and post what you get , i can't understand anything from what you posted there . –  Poelinca Dorin Feb 1 '11 at 15:30

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