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I have some data which is received from adobe flash AS3, the PHP file receives it, but I cant seem to send the data to mySQL...

Here is my PHP code:

<?php

if(isset($_POST['userFirstName'])){ $userFirstName = $_POST['userFirstName']; }
if(isset($_POST['userLastName'])){ $userLastName = $_POST['userLastName']; }
if(isset($_POST['userEmail'])){ $userEmail = $_POST['userEmail']; }
if(isset($_POST['userNumber'])){ $userNumber = $_POST['userNumber']; }
if(isset($_POST['userMsg'])){ $userMsg = $_POST['userMsg']; }

$username="******";
$password="*******";
$database="b-elite-fitness";

mysql_connect("localhost","$username","$password") or die (mysql_error());
mysql_select_db("$database") or die (mysql_error());

mysql_query("INSERT INTO formdp 
(ID ,firstname, lastname, email, number, message) 
VALUES('','$userFirstName[firstname]','$userLastName[lastname]','$userEmail[email]','$userNumber[number]','$userMsg[message]')")
or die (mysql_error());
echo "foo=bar&checking=ok";
mysql_close();
?>

I get this error for the php file...

( ! ) Notice: Undefined variable: userFirstName in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack
#   Time    Memory  Function    Location 1  
0.0094  253176  {main}( )   ..\form.php:0

( ! ) Notice: Undefined variable: userLastName in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack
#   Time    Memory  Function    Location 1  
0.0094  253176  {main}( )   ..\form.php:0

( ! ) Notice: Undefined variable: userEmail in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack
#   Time    Memory  Function    Location 1  
0.0094  253176  {main}( )   ..\form.php:0

( ! ) Notice: Undefined variable: userNumber in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack
#   Time    Memory  Function    Location 1  
0.0094  253176  {main}( )   ..\form.php:0

( ! ) Notice: Undefined variable: userMsg in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack
#   Time    Memory  Function    Location 1  
0.0094  253176  {main}( )   ..\form.php:0

Can anyone help me out I've been going at the problem for the past few days...

I'm new to PHP so could do with explanations as well...

EDIT UPDATE.... I changed the coding, however still get the same errors... here is my new coding....

<?php

if(isset($_POST['userFirstName'])){ $userFirstName = $_POST['userFirstName']; }
if(isset($_POST['userLastName'])){ $userLastName = $_POST['userLastName']; }
if(isset($_POST['userEmail'])){ $userEmail = $_POST['userEmail']; }
if(isset($_POST['userNumber'])){ $userNumber = $_POST['userNumber']; }
if(isset($_POST['userMsg'])){ $userMsg = $_POST['userMsg']; }

$username="root";
$password="dp10aap";
$database="b-elite-fitness";

mysql_connect("localhost","$username","$password") or die (mysql_error());
mysql_select_db("$database") or die (mysql_error());

mysql_query("INSERT INTO formdp 
    (id ,firstname, lastname, email, number, message) 
    VALUES('NULL','$userFirstName','$userLastName','$userEmail','$userNumber','$userMsg')") 
or die (mysql_error());
mysql_close();
?>

and here are my errors...

( ! ) Notice: Undefined variable: userFirstName in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack

Time Memory Function Location

1 0.0112 252456 {main}( ) ..\form.php:0

( ! ) Notice: Undefined variable: userLastName in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack

Time Memory Function Location

1 0.0112 252456 {main}( ) ..\form.php:0

( ! ) Notice: Undefined variable: userEmail in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack

Time Memory Function Location

1 0.0112 252456 {main}( ) ..\form.php:0

( ! ) Notice: Undefined variable: userNumber in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack

Time Memory Function Location

1 0.0112 252456 {main}( ) ..\form.php:0

( ! ) Notice: Undefined variable: userMsg in C:\wamp\www\NewtestForm\form.php on line 18 Call Stack

Time Memory Function Location

1 0.0112 252456 {main}( ) ..\form.php:0

share|improve this question
    
If these variables are undefined, your initial isset calls are returning false, so in fact your PHP is not receiving the data you are POSTing. The problem is elsewhere. –  fuzic Mar 10 '13 at 21:01
1  
fyi mysql is deprecated, and this code is vulnerable to SQL injection. you should be using placeholders with mysqli or PDO –  Eevee Mar 10 '13 at 21:03
    
use NULL instead of '' for your ID field. Presuming you have set the ID field to an auto incrementing integer? –  Beneto Mar 10 '13 at 21:09
    
@Beneto thanks this helps –  DP187 Mar 10 '13 at 21:32
    
@fuzic Could you help me identify where the problem may lay... if i show you my AS3 coding as well... as i initily thought that the error was between AS3 and PHP and not PHP to MYSQL...? –  DP187 Mar 10 '13 at 21:40

3 Answers 3

This is incorrect: $userFirstName[firstname]

I assume that $_POST['userFirstName'] is a string, in which case you would only use $userFirstName to access the variable. If it is an array, you are missing quotes to access the array index: $userFirstName['firstname'].

The same goes for the rest of your variables.

share|improve this answer
    
I get the following error now.... Parse error: syntax error, unexpected '' (T_ENCAPSED_AND_WHITESPACE), expecting identifier (T_STRING) or variable (T_VARIABLE) or number (T_NUM_STRING –  DP187 Mar 10 '13 at 21:50

You made your own variables associative arrays by adding ['identifier'] to them. That makes them different from the initial ones, and then you try to use them as if you have put some value in them, that's why you get the errors. Just use them the way they are. Like this

mysql_query("INSERT INTO formdp (ID ,firstname, lastname, email, number, message) 
VALUES('','$userFirstName','$userLastName','$userEmail','$userNumber','$userMsg')")
or die (mysql_error());

Remember to sanitize your user's input and also note that PHP's mysql extenstion is deprecated. Consider mysqli or PDO.

share|improve this answer
    
I changed it like you suggested, i get a final error of Parse error: syntax error, unexpected end of file... on the last line –  DP187 Mar 10 '13 at 21:31
    
I still get the same errors... after checking my coding i missed out " i added it and get the same error as i did before even after changing the coding as you suggested... @chibuzo –  DP187 Mar 10 '13 at 21:34
    
@user2080616 edit your question and add the code for your form, let's start from there. –  Chibuzo Mar 10 '13 at 22:13
    
there you go I've changed the coding as you suggested, however i get the same errors... any ides ? –  DP187 Mar 10 '13 at 22:26
    
Your $_POST variables are most likely not set. –  Chibuzo Mar 11 '13 at 19:49

Your php code is not receiving your POSt data. Have you done a vardump on $_POSt to see what exactly it is holding?

share|improve this answer
    
no how would i do that ? –  DP187 Mar 11 '13 at 1:53

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