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I am unable to pass the following form data:

<form method="post" action="form.php" id="contact" enctype="multipart/form-data">
        <fieldset>
        <legend>Contact Us</legend>
        <div id="conleft">
        <label>First Name:</label><input type="text" name="firstName" required />
        <label>Last Name:</label><input type="text" name="lastName" required />
        <label>House/Flat No:</label><input type="text" name="houseNum"  />
        <label>Address:</label><input type="text" name="address" />
        <label>Town/City:</label> <input type="text" name="city" />
        <label>Postcode:</label> <input type="text" name="postcode" />
        <label>Telephone:</label> <input type="tel" name="telephone" />
        <label>Email:</label> <input type="email" name="email" required />
        </div>
        <div id="conright">
        <label>Enquiry:</label><textarea name="description" rows="13" required ></textarea>
        <label>Date:</label><input type="month" name="date" /><br /><br />
        <input type="submit" name="submit" value="Send" />
        <input type="reset" name="Reset" value="Reset" />
        <input type="hidden" name="customerNo" />
        <input type="hidden" name="enquiryNo" />
        <input type="radio" name="type" value="customer" checked />
        </div>
        </fieldset>
    </form>

with the following PHP to MySQL database

<?php
$con=mysqli_connect("localhost", "root", "myuser","mypass");
// Check connection
if (mysqli_connect_errno())
{
echo "Failed to connect to MySQL: " . mysqli_connect_error();
}

$sql1="INSERT INTO customers (NULL, firstName, lastName, houseNum, address, city, postcode, telephone, email, type)
VALUES ('$_POST[customerNo]','$_POST[firstName]','$_POST[lastName]','$_POST[houseNum]','$_POST[address]','$_POST[city]','$_POST[telephone]', '$_POST[postcode]''$_POST[email]','$_POST[type]')";

mysqli_query($con,$sql1);

$sql2="INSERT INTO enquiry (NULL, customerNo, description, date)
VALUES ('$_POST[enquiryNo]','$_POST[customerNo]','$_POST[description]','$_POST[lastName]','$_POST[date]')";

mysqli_query($con,$sql2);

echo "<script language=javascript>window.location = 'thanks.html';</script>";

mysqli_close($con);
?>

The web page acts as if the form data has been sent by showing the thank.html page when submitted, but no data is populated in the database. I've set AUTO INCREMENT, PRIMARY and FOREIGN keys, is it the way I am trying to the pass the values?

share|improve this question
1  
Try outputting errors with your queries: mysqli_query($con,$sql1) or die(mysqli_error()); –  showdev Apr 19 '13 at 18:29
    
Since you're using mysqli, use the SQL placeholder system to avoid nasty SQL injection bugs. What you're doing here is reckless. –  tadman Apr 19 '13 at 18:30
1  
Nitpick: There is not such thing as a "phpmyadmin database". There is the MySQL database, and the phpmyadmin MANAGEMENT TOOL for the mysql database. –  Marc B Apr 19 '13 at 18:48
1  
@george: these days it's more like "the interwebitubez are NOT (facebook|google|twitter|whatever).com". –  Marc B Apr 19 '13 at 18:54
1  
@Marc B. no probs, not sure why i wrote it. got the title right :) –  Lee Chant Apr 19 '13 at 18:58

4 Answers 4

Well first of all, you NEED to check your posted inputs for SQL injection.

But if you do this, for now, it should work

   $sql1="INSERT INTO customers (NULL, firstName, lastName, houseNum, address, city, postcode, telephone, email, type) VALUES ('". $_POST['customerNo'] ."','".$_POST['firstName'] ."','".$_POST['lastName'] ."','".$_POST['houseNum'] ."','". $_POST['address'] ."','". $_POST['city'] ."','". $_POST['telephone'] ."', '". $_POST['postcode'] ."','". $_POST['email'] ."','". $_POST['type'] ."')";

mysqli_query($con,$sql1) or die(print_r(mysqli_error()));

for a simple SQL injection cleanser, I use this,

function scrubSQL($con,$string)
{

     $string = htmlspecialchars(strip_tags(trim($string)));
     $string = str_replace("'","",$string);
     $string = mysqli_real_escape_string($con,$string);

     return $string;        

}
share|improve this answer
    
There is nothing wrong with the OP's PHP so this does nothing. It's MySQL and general logic issues. –  Phill Sparks Apr 19 '13 at 19:22
    
I've been trying to get my head around prepared statements but not grasping them very well, thanks for the above example. How would I use a prepared statement in the context of my code? Would really appreciate if somebody could find the time to show me how my code would have to change to help me get to grips with this –  Lee Chant Apr 19 '13 at 22:57

Try to change the first query as following :

$sql1="INSERT INTO customers (customerNo,firstName, lastName, houseNum, address, city, postcode, telephone, email, type)VALUES('{$_POST['customerNo']}','{$_POST['firstName']}','{$_POST['lastName']}','{$_POST['houseNum']}','{$_POST[address]}','{$_POST['city']}', '{$_POST['postcode']}','{$_POST['telephone']}','{$_POST['email']}','{$_POST['type']}')";

and the second query like this :

$sql2="INSERT INTO enquiry (enquiryNo,customerNo, description,lastname,date)VALUES('{$_POST['enquiryNo']}','{$_POST['customerNo']}','{$_POST['description']}','{$_POST['lastName']}','{$_POST['date']}')";

Try that and tell me the result :)

share|improve this answer
    
@Lee Chant : You did not tell if my answer was helpful or not and if you need any explanation or any help that i can give you ? –  Last Breath Apr 19 '13 at 19:03
    
@Lee Chant : Check my edit :) Your query absolutely have a lot of errors so i wish that i have corrected it for you :) Any help i am here :) –  Last Breath Apr 19 '13 at 19:08
    
Yes thanks @Last Breath, i used this and the above to resolve my issue –  Lee Chant Apr 19 '13 at 19:22
    
please if you solve your issue accept the most helpful answer and if you need any more help tell us :) @LeeChant –  Last Breath Apr 19 '13 at 19:25

It looks like you're trying to insert a value into the NULL column, which is presumably meant to be the ID or No column? I'm assuming your Primary Keys are customerNo and enquiryNo, try the code below:

$sql1 = "INSERT INTO customers (firstName, lastName, houseNum, address, city, postcode, telephone, email, type) VALUES ('$_POST[firstName]','$_POST[lastName]','$_POST[houseNum]','$_POST[address]','$_POST[city]','$_POST[telephone]', '$_POST[postcode]''$_POST[email]','$_POST[type]')";
mysqli_query($con, $sql1) or die('Query 1 Failed: '.mysqli_error($con));

$customer_no = mysqli_insert_id($con);

$sql2 = "INSERT INTO enquiry (customerNo, description, date) VALUES ('$customerNo','$_POST[description]','$_POST[lastName]','$_POST[date]')";
mysqli_query($con, $sql2) or die('Query 2 Failed: '.mysqli_error($con));

To get the primary key of a newly inserted record you can use mysqli_insert_id().

I've also added some error trapping for if the query fails. I would recommend looking in to prepared statements as these will help protect your database from SQL injection attacks.

share|improve this answer
    
Had to make a few little tweeks, but this now inputs into the database. The only problem I have is that i want the customerNo from customer table to populate in the enquiry table too as a foreign key. at the moment it is a different number, any ideas? I shall make the security my next priority as it keeps getting mentioned. Many thanks for your help –  Lee Chant Apr 19 '13 at 19:20
    
Ah, since you were posting your customerNo and enquiryNo hidden on the form I presumed that you had already got these. You'll want mysqli_insert_id() to get the primary key of the last INSERT statement. I've updated my answer to reflect this. –  Phill Sparks Apr 19 '13 at 19:22
1  
Would who ever down-voted me please kindly explain what could improve this answer? A down vote on its own means nothing! –  Phill Sparks Apr 19 '13 at 19:56
    
Seem to have hot a slight error when implementing @Phil Sparks solution: Query 2 Failed: Cannot add or update a child row: a foreign key constraint fails (dbname.enquiry, CONSTRAINT enquiry_ibfk_1 FOREIGN KEY (customerNo) REFERENCES customer (customerNo)) It doesn't appear to like the foreign key, works without a foreign key but that's the not desired result –  Lee Chant Apr 19 '13 at 21:57
    
@LeeChant please update your original post with this information, and also detail the FKs... perhaps provide the create table syntax for the two tables? –  Phill Sparks Apr 20 '13 at 18:37

use '".$_POST['customerNo']."' instead of '$_POST[customerNo]' and something like that for all $_POST values in your INSERT command

EDIT 1:

It seems customerNO and enquiryNo are auto-increment columns. So

$sql1="INSERT INTO customers (NULL, firstName, lastName, houseNum, address, city, postcode, telephone, email, type)
VALUES ('$_POST[customerNo]','$_POST[firstName]','$_POST[lastName]','$_POST[houseNum]','$_POST[address]','$_POST[city]','$_POST[telephone]', '$_POST[postcode]''$_POST[email]','$_POST[type]')";

should be

$sql1="INSERT INTO customers (customerNo, firstName, lastName, houseNum, address, city, postcode, telephone, email, type)
VALUES (NULL,'$_POST[firstName]','$_POST[lastName]','$_POST[houseNum]','$_POST[address]','$_POST[city]','$_POST[telephone]', '$_POST[postcode]''$_POST[email]','$_POST[type]')";

mysqli_query($con,$sql1);
$customerNO=mysql_insert_id();

and then

$sql2="INSERT INTO enquiry (NULL, customerNo, description, date)
VALUES ('$_POST[enquiryNo]','$_POST[customerNo]','$_POST[description]','$_POST[lastName]','$_POST[date]')";

should be

$sql2="INSERT INTO enquiry (enquiryNO, customerNo, description, date)
VALUES (NULL,'$customerNo','$_POST[description]','$_POST[lastName]','$_POST[date]')";
share|improve this answer
    
-1 for being outright wrong. OP's php syntax is fine. –  Marc B Apr 19 '13 at 18:49
    
@MarcB , thanks . i updated the answer –  Amir Apr 20 '13 at 3:29

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