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i am getting the error Warning: mysqli_query() expects parameter 2 to be string, object given in C:\Program Files (x86)\EasyPHP-DevServer-13.1VC9\data\localweb\login.php on line 10 Error:

on executing the query

<?php
$con=mysqli_connect("127.0.0.1","root","","forms");
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

  $sql=mysqli_query($con,"SELECT * FROM register Where username='$_POST[username]' AND password='$_POST[password]'");

  if (!mysqli_query($con,$sql))
  {
  die('Error: ' . mysqli_error($con));
  }
echo "login success";

mysqli_close($con);
?>
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2  
Your code is exposed to SQL Injection. Clean up input data first. –  Raptor Jun 6 '13 at 7:08
1  
also, you called mysqli_query() twice. 2nd is incorrect & unnecessary –  Raptor Jun 6 '13 at 7:09
    

5 Answers 5

Try

  <?php
      $con=mysqli_connect("127.0.0.1","root","","forms");
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

  $sql="SELECT * FROM register Where username='$_POST[username]' AND password='$_POST[password]'";

  if (!mysqli_query($con,$sql))
  {
  die('Error: ' . mysqli_error($con));
  }
echo "login success";

mysqli_close($con);
?>

Because you can execute a query ,It should be a string. But in your code

$sql=mysqli_query()

Returns an object to $sql

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if(!mysqli_query($con,$sql)) isn't good as $sql is an object, not a string

$sql is an object as mysql_query

Returns FALSE on failure. For successful SELECT, SHOW, DESCRIBE or EXPLAIN queries mysqli_query() will return a mysqli_result object. For other successful queries mysqli_query() will return TRUE.

So you have not to do another mysqli_query, just modify your if in the following way

if(!$sql)
{
  //do something
}

This will work if you need to check query failures, otherwise it could return a mysqli_result even your query have returned 0 rows, so please pay attetion.

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Replace :

if (!mysqli_query($con,$sql))

with

if($sql === FALSE)

By checking $sql is FALSE to prove the query is failed or not.

See : mysqli_query()

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Try this code:

  $sql="SELECT * FROM register Where username='".$_POST[username]."' AND password='."$_POST[password]."'";

  if (!mysqli_query($con,$sql))
  {
  die('Error: ' . mysqli_error($con));
  }

In your code you have already use the mysqli_query and you are passing the object of that in mysqli_query again.

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$sql = 'SELECT * FROM register Where username=\'' . $_POST[username]. '\' AND password=\''. $_POST[password].'\' ';
$response=mysqli_query($con, $sql);
if (empty( $response ))
{
    die('Error: ' . mysqli_error($con));
}

Try this.

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