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I am trying to get my sql to post information from a html form into my database however keep getting:

( ! ) SCREAM: Error suppression ignored for
( ! ) Notice: Undefined index: firstname in C:\wamp\www\insert.php on line 29
Call Stack
#   Time    Memory  Function    Location
1   0.0005  247624  {main}( )   ..\insert.php:0

The code i am using is:

<form action="insert.php" method="post">
   Name: <input type="text" name="firstname">
   <input type="submit" value="Submit">
</form>

<?php
// This is the connection to my database
$con = mysql_connect('127.0.0.1', 'shane', 'diamond89');
if (!$con){
   die('Could not Connect: ' . mysql_error());
}

// This selects which database i want to connect to
$selected = mysql_select_db("shane",$con);
if (!$con){
   die("Could not select data");
}

// This inserts new information to the Database
$name = $_POST['name'];

$query = "INSERT INTO test1 VALUES('id', '$name')";
mysql_query($query) or die('Error' . mysql_error());

// This closes my connection
mysql_close($con)
?>
share|improve this question
    
This also adds a blank record to my table –  user1839483 May 21 '13 at 11:49
    
Add this to the start of your code: echo "<pre>".print_r($_POST); This should give you an idea of what html is passing to your script. PHP seems ok.. lets check.. –  TomPHP May 21 '13 at 12:08
    
Post the table definition as well. –  Stephen O'Flynn May 22 '13 at 7:14

6 Answers 6

Your form has an input named firstname not name, so $_POST['name'] should be $_POST['firstname']

change

    // This inserts new information to the Database
    $name = $_POST['name'];

to

   // This inserts new information to the Database
   $name = $_POST['firstname'];
share|improve this answer
    
still getting: ( ! ) SCREAM: Error suppression ignored for ( ! ) Notice: Undefined index: firstname in C:\wamp\www\insert.php on line 29 Call Stack # Time Memory Function Location 1 0.0006 247632 {main}( ) ..\insert.php:0 –  user1839483 May 21 '13 at 11:42
Name:
<?php
// This is the connection to my database
$con = mysql_connect('127.0.0.1', 'shane', 'diamond89');
if (!$con){
die('Could not Connect: ' . mysql_error());
}

// This selects which database i want to connect to
$selected = mysql_select_db("shane",$con);
if (!$con){
die("Could not select data");
}
if($_POST['firstname'])
{
// This inserts new information to the Database
$name = $_POST['firstname'];

$query = "INSERT INTO test1 VALUES('id', '$name')";
mysql_query($query) or die('Error' . mysql_error());

// This closes my connection
mysql_close($con)
}
?>
share|improve this answer
    
still getting: ( ! ) Notice: Undefined index: firstname in C:\wamp\www\insert.php on line 27 Call Stack # Time Memory Function Location 1 0.0005 248000 {main}( ) ..\insert.php:0 –  user1839483 May 21 '13 at 11:41
1  
use if(isset($_POST['firstname'])) –  Stephen O'Flynn May 22 '13 at 8:06

The first time you view your page, $_POST is undefined as the form hasn't been posted. Once the user submits, the $_POST will be valid.

You should try to see if the values exists before using it.

eg

if (isset($_POST['xxx']))
{
/* Do Something */
}
share|improve this answer

Are you getting values after submit the form?. Try:

<?php

print_r($_POST);

?>
share|improve this answer

I upvoted the answer by AB Åttìtúðê Þêrfëçt that corrects your PHP code. However, this might help:

Through wamp tray icon, open php.ini file and find

    error_reporting = E_ALL

Replace w/

    error_reporting = E_ALL & ~E_NOTICE

Then save file and restart wamp

From: http://forum.wampserver.com/read.php?2,72161,72201

share|improve this answer
    
That's not really helpful, because it's just telling PHP to shut up about the programmer's neglectfulness ... –  CBroe May 22 '13 at 8:01

Thank you for all of your help i worked this out with a bit of hair pulling. I came up with

    <?php
// This is the connection to my database
$con = mysql_connect('127.0.0.1', 'shane', 'diamond89');
if (!$con){
die('Could not Connect: ' . mysql_error());
}

// This selects which database i want to connect to
$selected = mysql_select_db("shane",$con);
if (!$con){
die("Could not select examples");
}

$name=$_POST['firstname'];

$sql="INSERT INTO test1(name)VALUES('$name')";
$result=mysql_query($sql);

if($result){
echo "Successful";
echo "<BR>";
echo "<a href='sql_table.php'>Back to main page</a>";

}

else {
echo "ERROR";

}

// This closes my connection
mysql_close($con)
?>
share|improve this answer

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