1005

I am trying to select data from a MySQL table, but I get one of the following error messages:

mysql_fetch_array() expects parameter 1 to be resource, boolean given

This is my code:

$username = $_POST['username'];
$password = $_POST['password'];

$result = mysql_query('SELECT * FROM Users WHERE UserName LIKE $username');

while($row = mysql_fetch_array($result)) {
    echo $row['FirstName'];
}
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  • 15
    you can get more useful eroor msg using:: QUERY or die(mysql_error());
    – nik
    Jun 4, 2010 at 10:26
  • 124
    Also the obligatory note: Your code is prone to SQL injection. You should validate and/or escape the user input. Have a look at mysql_real_escape_string. Never trust user data. Jun 4, 2010 at 10:26
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    Actually, the OP's code will cause a syntax error on the MySQL server, but at least it is not vulnerable to SQL Injection because single quotes doesn't have variable interpolation.
    – szgal
    Jul 4, 2014 at 14:06
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    @FelixKling I realize this is very old, and likely the most accurate possible at the time, but your comment is now dangerously wrong in one way: mysql_real_escape_string is not the be-all and end-all of SQL injection protection; it's still vulnerable to a number of attacks. (No, you never said it's perfect, but you implied it was the only required solution) The best solution now is PDO, as far as I know.
    – anon
    Mar 13, 2017 at 0:30
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    Gah. Extending this question to include MySQLi and PDO was a bad idea. They each have their own slightly different syntax and error messages and they could perfectly well have had their own questions. Combining everything into one giant three-part question just makes this less Googleable and forces people who arrive here to wade through irrelevant content to get to what they want. It's also invalidated a great many of the answers below, and makes this question "Too Broad" by the standards we normally apply. It's a mess, in my opinion, but it's too late to fix now.
    – Mark Amery
    Nov 15, 2018 at 23:30

31 Answers 31

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since $username is a php variable we need to pass it as string to mysqli so since in the query u started with a single quote we will use the double quote, single quote and a fullstop for the concatination purposes ("'.$username.'") if you started with a double quote you would then reverse the quotes ('".$username."').

$username = $_POST['username'];
$password = $_POST['password'];
$result = mysql_query('SELECT * FROM Users WHERE UserName LIKE "'.$username.'"');

while($row = mysql_fetch_array($result))
     {
      echo $row['FirstName'];
     }

$username = $_POST['username'];
$password = $_POST['password'];
$result = mysql_query("SELECT * FROM Users WHERE UserName LIKE '".$username."' ");

while($row = mysql_fetch_array($result))
     {
      echo $row['FirstName'];
     }

but use of Mysql has depreciated much, use PDO instead.it is simple but very secure

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  • But Mysql use has depreciated. you can use PDO instead. Let me give you a sample login. Oct 4, 2015 at 20:48
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    Passwords should NEVER EVER be stored in plain text form, make use of the built in fucntions that PHP has for dealing with the hashing of passwords and the verifying of hashed passwords! Apr 12, 2018 at 20:28
  • Do not use this code. It is wide open to SQL injection attacks.
    – Avro_Abir
    May 16, 2021 at 20:07
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