Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Since moving my script to another server I started getting the following errors when I try to insert a record. How do I resolve this?

Warning: mysql_query() expects parameter 1 to be string, resource given in /home/aware/public_html/product_submit.php on line 58

Warning: mysql_query() expects parameter 1 to be string, resource given in /home/aware/public_html/product_submit.php on line 60

Warning: mysql_query() expects parameter 1 to be string, resource given in /home/aware/public_html/product_submit.php on line 61

Warning: mysql_query() expects parameter 1 to be string, resource given in /home/aware/public_html/product_submit.php on line 62

Warning: mysql_query() expects parameter 1 to be string, resource given in /home/aware/public_html/product_submit.php on line 63 product added

Here is the code:

<?php
  $page_title = "Aware | Product Submitted";
  include('includes/header.html');
  if (!empty($_POST['code'])) {
      $code = $_POST['code'];
  } else {
      $code = null;
      echo '<p><a href="product_create.php">Enter a product code</a>.</p>';
      exit;
  }
  if (!empty($_POST['pid'])) {
      $pid = $_POST['pid'];
  } else {
      $pid = null;
      echo 'Product ID is not defined.  All SKU information must be linked to a product.';
      exit;
  }
  if (!empty($_POST['sid'])) {
      $sid = $_POST['sid'];
  } else {
      $sid = null;
      echo 'SKU ID is not defined.  All SKU information must be linked to a product.';
      exit;
  }
  if (!empty($_POST['image'])) {
      $image_name = $_POST['image'];
  } else {
      $image_name = null;
      echo '<p>You need to upload a product image!</p>';
  }
  if (!empty($_POST['title'])) {
      $title = $_POST['title'];
  } else {
      $title = null;
      echo '<p>You must enter a product title!</p>';
  }
  if (!empty($_POST['description'])) {
      $description = $_POST['description'];
  } else {
      $description = null;
      echo '<p>You must enter a product description!</p>';
  }
  $material = $_POST['material'];
  $type = $_POST['type'];
  $color = $_POST['color'];
  $image_name = $_POST['image'];
  $bulk = $_POST['bulk'];
  $stock = $_POST['stock'];

  // Connect to the db.
  require_once('mysqli_connect.php');
  // Make the query:
  $product = "INSERT INTO product (code, title, description, image_name, bulk) VALUES ('$code', '$title', '$description', '$image_name', '$bulk')";
  $sku = "INSERT INTO sku (product_idproduct, stock) VALUES ('$pid', '$stock')";
  $material = "INSERT INTO amaterial (sku_idsku, material) VALUES ('$sid', '$material')";
  $type = "INSERT INTO atype (sku_idsku, type) VALUES ('$sid', '$type')";
  $color = "INSERT INTO amcolor (sku_idsku, color) VALUES ('$sid', '$color')";
  $p = mysqli_query($dbc, $product);
  // Run the query.
  $s = mysqli_query($dbc, $sku);
  $m = mysqli_query($dbc, $material);
  $t = mysqli_query($dbc, $type);
  $c = mysqli_query($dbc, $color);
  if ($code && $pid && $title && $description) {
      echo "product added";
 } else {
      // Missing form value.
      echo '<p>Please go back and fill out the form again.</p>';
      exit;
  }
  include('includes/footer.html');
?>
share|improve this question
3  
Aside from the SQL injection problems, I think we'll need to see the contents of mysqli_connect to help. – eykanal May 9 '11 at 12:05
    
yes the problem lies between the first parameter of mysqli_query($dbc). could you post the code that you are using to connect. – Ibrahim Azhar Armar May 9 '11 at 12:09
    
Thanks for taking a look. I think my problem was connecting with mysqli put my variable where mysql. After I made them consistent it worked. – Busilinks May 13 '11 at 6:10
up vote 3 down vote accepted

your code looks like this:

$p = mysqli_query($dbc, $product);
$s = mysqli_query($dbc, $sku);
$m = mysqli_query($dbc, $material);
$t = mysqli_query($dbc, $type);
$c = mysqli_query($dbc, $color);

However, this isn't the code which is complaining -- the error states it's a problem with mysql_query, not mysqli_query which is in your code.

My hunch is that you're looking a different version of your code to that which is actually running -- ie you think you're using mysqli_query in your code, but the actual code on the server has mysql_query.

These two functions, apart from being easily confused due to just having one character apart in their function name, require a different set of parameters. If your code is using mysqli_query, then it is correct, but if you've dropped the 'i' and you're acutally using mysql_query, then the error makes sense, because mysql_query expects the query string to be the first parameter.

It is generally a bad idea to mix and match between these two - you should either use the mysql_xx functions or mysqli_xx, but not both. Make sure you code is consistent and only uses one one or the other.

I'd also echo @eykanal's comment about your code being vulnerable to SQL injection attacks. You should ensure that all the variables in your query strings are properly escaped.

share|improve this answer
    
This helped me a lot. Thanks much. – Busilinks May 13 '11 at 6:11

The parameter order is correct for mysqli_query. However the error message shows 'mysql_query' (without the i). You may wanna look into that first.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.