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I am trying to insert data into a database mysql phpAdmin.

My webhost is 000webhost.

My connection to mysql database code:

    <?PHP

$mysql_host = "mysql2.000webhost.com";
$mysql_database = "*********";
$mysql_user = "********";
$mysql_password = "**********";

$dbcon = mysql_connect($mysql_host,$mysql_user,$mysql_password,$mysql_database);


if (!$dbcon) {
    die('error connecting to database');
    }
echo ('You have connected successfully');


?>

My insert data code:

 <?PHP

if (isset($_POST['submitted'])) {

    include('connect_mysql.php');

    $fname = $_POST['fname'];
    $lname = $_POST['lname'];
    $sqlinsert = "INSERT INTO people (firstname, lastname) VALUES ('$fname', '$lname')";

    if (!mysql_query($dbcon, $sqlinsert)) {
        die('error inserting new record');
        } // end of nested if statement
        $newrecord = "1 record added to the database";
}

?>

<html>
<head>
<title>Insert Data into DB</title>
</head>
<body>

<h1>Insert Data into DB</h1>

<form method="post" action="insert-data.php">
<input type="hidden" name="submitted" value="true" />
<fieldset>
    <legend>New People</legend>
    <label>First Name: <input type="text" name="fname" /></label>
    <label>Last Name: <input type="text" name="lname" /></label>
</fieldset>
<br />
<input type="submit" value="add new person" />
</form>
<?PHP
echo $newrecord
?>

</body>
</html>

Instead of letting me put it into the database it brings me to this page http://error404.000webhost.com/?

share|improve this question
    
You don't have $ sign before the variable names in your query –  Mr. Alien Apr 14 at 9:00
    
u are mixing mysqli_ and mysql fix it first !! –  Abhik Chakraborty Apr 14 at 9:00
    
see my answer to check –  Ashish Ratan Apr 14 at 9:09

4 Answers 4

try change

<label>First Name: <input type="text name="fname" /></label>
    <label>Last Name: <input type="text name="lname" /></label>

to

<label>First Name: <input type="text" name="fname" /></label>
    <label>Last Name: <input type="text" name="lname" /></label>

and also insert query and connection to

$dbcon = mysql_connect($mysql_host,$mysql_user,$mysql_password,$mysql_database);

$sqlinsert = "INSERT INTO people (firstname, lastname) VALUES ('$fname', '$lname')";
share|improve this answer
    
yup dude.. its the answer –  Ashish Ratan Apr 14 at 9:10
    
it still brings me to error404.000webhost.com? –  cow Apr 14 at 9:15

First change below code:

$dbcon = mysqli_connect($mysql_host,$mysql_user,$mysql_password,$mysql_database);

To :

$dbcon = mysql_connect($mysql_host,$mysql_user,$mysql_password,$mysql_database);

Then change below code:

 $sqlinsert = "INSERT INTO people (firstname, lastname) VALUES ('fname', 'lname')";

To:

$sqlinsert = "INSERT INTO people (firstname, lastname) VALUES ('$fname', '$lname')";
share|improve this answer
    
it still brings me to this error404.000webhost.com? –  cow Apr 14 at 9:07

can u please change this line?

<fieldset>
    <legend>New People</legend>
    <label>First Name: <input type="text name="fname" /></label>
    <label>Last Name: <input type="text name="lname" /></label>
</fieldset>

to

<fieldset>
    <legend>New People</legend>
    <label>First Name: <input type="text" name="fname" /></label>
    <label>Last Name: <input type="text" name="lname" /></label>
</fieldset>

you are setting wrong attributes so its not getting the values..

after that, u have to update your sql query:

$sqlinsert = "INSERT INTO people (firstname, lastname) VALUES ('$fname', '$lname')";
share|improve this answer
    
^I did that still brings me to error404.000webhost.com? –  cow Apr 14 at 9:14
    
frst of ol, there is no image present there.. so will u please write the exception here ??? –  Ashish Ratan Apr 14 at 9:15
    
don't spread spams or advertising link, u may be ban –  Ashish Ratan Apr 14 at 9:16
    
that wasn't an advertising link. READ THE URL IT SAYS ERROR –  cow Apr 14 at 9:17
up vote 0 down vote accepted

It DID have to be mysqli

my problem was the - had to be changed to an _ on <form method="post" action="insert-data.php">

working code:

<?PHP

if (isset($_POST['submitted'])) {

    include('connect_mysql.php');
    $fname = $_POST['fname'];
    $lname = $_POST['lname'];
    $sqlinsert = "INSERT INTO people (firstname, lastname) VALUES ('$fname', '$lname')";

    if (!mysqli_query($dbcon, $sqlinsert)) {
    die('error inserting new record');
    }
    $newrecord = "1 new record added to the database";
}





?>

<html>
<head>
<title>Insert Data into DB</title>
</head>
<body>

<h1>Insert Data into DB</h1>

<form method="post" action="insert_data.php">
<input type="hidden" name="submitted" value="true" />
<fieldset>
    <legend>New People</legend>
    <label>First Name: <input type="text" name="fname" /></label>
    <label>Last Name: <input type="text" name="lname" /></label>
</fieldset>
<br />
<input type="submit" value="add new person" />
</form>
<?PHP
echo $newrecord
?>
</body>
</html>
share|improve this answer
    
mostly correcting syntax –  cow Apr 17 at 4:59

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