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When is use the following code without mysql_real_escape_string, works fine. I simply trying to grab a text string that may have apost. from an input form and format it to put in mysql table.

    <?php
    $filenamee = $_FILES["file"]["name"];
    $filename =strval($filenamee);
    echo "file name is".$filename;

     $con=mysqli_connect("localhost","blasbott_admin","lubu1973","blasbott_upload");
     // Check connection
     if (mysqli_connect_errno())
       {
   echo "Failed to connect to MySQL: " . mysqli_connect_error();
   }
 $companyName = mysql_real_escape_string($_POST['companyName']);
// $companyName = mysql_real_escape_string($companyNamee);
 //$companyName = mysql_real_escape_string($companyNamee);

$sql="INSERT INTO ads (companyName, webSite, picture)
 VALUES ('$companyName','$_POST[webSite]','$filename')";

if (!mysqli_query($con,$sql))
   {
   die('Error: ' . mysqli_error($con));
   }
   echo"<br>";
 echo "1 record added";

mysqli_close($con);
 ?> 
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I see this type of question all the time, you should read common database debugging for PHP and MySQL. –  Jason McCreary Jul 25 '13 at 22:43
3  
Are those your actual database connection details? –  andrewsi Jul 25 '13 at 22:46
    
Instead of escaping the $_POST data have you thought about using prepared statements ? You are trying to escape the companyName but then you are directly Posting['website'] into your query. –  South Coast Web Jul 25 '13 at 22:49
    
no actual values; just fooling local until i build somthing actual. I'll have a look at prepared statments. I don't know much, but someone warned me about mysql injections. Thanks for your help; love the people here. –  Dennis1973 Jul 26 '13 at 15:59
    
Thanks Jason, i did read a few posts on this first. It was a novice mistake mixing mysqli_real_escape_string with mysql_real_escape_string However im glad i made it and learned about mysql injections, and south coast web lead me to prepared statments thx south –  Dennis1973 Jul 26 '13 at 19:58

6 Answers 6

up vote 1 down vote accepted

You're at risk of MySQL injections. Never insert data directly to a database without some sort of projection first. It's a major security risk. Also use mysqli_real_escape_string instead, and note that your $_POST[webSite] is unprotected.

Also, your error means that your database details are not correct.

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changing to mysqli_real_escape_string solved things. Reading up on mysql injections to protect the database. Thanks –  Dennis1973 Jul 26 '13 at 15:52
    
Thanks for bringing those security risks to my attention. mysqli_real_escape_string solved the problem, but i didn't know about mysql injections; thanks. –  Dennis1973 Jul 26 '13 at 19:53
    
mysqli_real_escape_string was the fix for me. Didn't realize I had to use that when I was using mysqli. Makes sense though since it uses the connection you opened. –  earl3s May 18 at 18:58

No, you shouldn't mix mysql and mysqli.

Use here instead of mysql_real_escape_string($var):

$con->real_escape_string($var);
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A working code example that is a solution to this problem is available here:

http://www.w3schools.com/php/func_mysqli_real_escape_string.asp

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Why did you answer this old question? –  student Feb 25 at 18:09
    
I had the problem and came across this thread so decided to leave it here for people who come here after me while googling the same thing. Age is more or less irrelevant for some questions and the answers here did not solve the problem in a way that was understandable for me. The example I linked to is a lot more obvious and explicit solution. –  Maija Vilkina Feb 26 at 18:35

You need to write the correct username and password to connect with database

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Try mysqli_real_escape_string instead.

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You must connect with database first before using Warning: mysql_real_escape_string()

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