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I'm rather new to php and mysql, but I've managed to achieve a lot over the past weeks. I currently have a form that users fill out, and it stores the category and contents they provide.

Additionally, in order to create users I've followed this tutorial ( http://www.wikihow.com/Create-a-Secure-Login-Script-in-PHP-and-MySQL ) and have working user accounts and security linked with the page. This may be a simple question but I'm a bit stumped with how to link up a feature I need.

In short I want the insert line from my send_post.php to detect the currently logged in user and store it in a row called "contributor" or the like.

mysqli_query($connect,"INSERT INTO mytable (category, contents, date)
VALUES ('$_POST[category]', '$_POST[contents]', NOW())");

So it obviously needs to be (category, contents, date, contributor) but I'm not sure how to pull the currently logged in username and define it as 'contributor' in my send_post.php

[Via the tutorial, usernames are stored in a separate table named 'members' along with their numerical ID, email, hashed password, and salt. I know how to call that information but no idea how to get the current user.]

Here is the full send_post.php

<?php
include 'db_connect.php';
include 'functions.php';
sec_session_start();
if(login_check($mysqli) == true) {

//Connecting to sql db.
$connect=mysqli_connect("localhost","mydbusername","mydbpass","mysqldb");

header("Location: http://mysite.com/1.php");

if (mysqli_connect_errno()) { echo "Fail"; } else { echo "Success"; }

//Sending form data to sql db.
mysqli_query($connect,"INSERT INTO mytable (category, contents, date)
VALUES ('$_POST[category]', '$_POST[contents]', NOW())");

} else {
   echo 'Access denied. <br/>';
}

?>

I would be very grateful and upvote for any help. Thanks

Edit, Current send_post.php

<?php
include 'db_connect.php';
include 'functions.php';
sec_session_start();
if(login_check($mysqli) == true) {

//Connecting to sql db.
$connect=mysqli_connect("localhost","myusername","mypassword","mysqldb");

header("Location: http://mysite.com/1.php");

if (mysqli_connect_errno()) { echo "Fail"; } else { echo "Success"; }

$stmt = $mysqli -> prepare('INSERT INTO mytable (category, contents, date, userid) 
                            VALUES (?,?,NOW(),?)');
$stmt -> bind_params('ssi', $_POST['category'], $_POST['contents'], $_SESSION['user_id']);
$stmt -> execute();


} else {
   echo 'Access denied. <br/>';
}

?>

EDIT 2, Errors: (actually I got 3)

[07-Oct-2013 21:05:54] PHP Fatal error: Call to undefined method mysqli_stmt::bind_params() in /home2/mememe/public_html/mysite/send_post.php on line 22

[07-Oct-2013 21:05:54] PHP Warning: session_start() [function.session-start]: Cannot send session cache limiter - headers already sent (output started at /home2/mememe/public_html/mysite/index_3.php:7) in /home2/mememe/public_html/mysite/functions.php on line 12

[07-Oct-2013 21:05:54] PHP Warning: session_regenerate_id() [function.session-regenerate-id]: Cannot regenerate session id - headers already sent in /home2/mememe/public_html/mysite/functions.php on line 13

Edit 3: echo returns

Array ( [user_id] => 3 [username] => THEUSERNAME [login_string] => tons of hash infor like 4eb86947c8007ef1d0bb658168a76affa5c666518d3b58d76bf3040dc36d7a399c6c110a8c7f0d9f03d2b4d63271bd1335c61311edb152670f010f04583e7578 )

share|improve this question
    
Firstable you are wide open for SQL Injections. Second: I didn't hear about sec_session_start() function. What it does? Third: header("Location: mysite.com/1.php"); redirects you to another page, so the code below doesn't run never. –  bksi Oct 8 '13 at 1:49
    
For one thing, you need to replace sec_session_start(); with session_start(); - I for one, have never heard of sec_session_start(); and "IT" needs to be inside ALL your files, included files as well. –  Fred -ii- Oct 8 '13 at 1:54
    
I haven't learned to santise yet, I'm going after that as soon as I understand some of these core concepts. The sec_session_start is a custom secure way to start the php session located in the tutorial I linked. The header links to the same page that the form is on. When the user submits the category and contents the page refreshes and it shows up on a table on the same page right after they submit it. It..works fine? Still need help with the issue I asked about –  sylcat Oct 8 '13 at 1:55
    
And what to do about header("Location: http://mysite.com/1.php"); –  Fred -ii- Oct 8 '13 at 1:56
    
Again, "sec_session_start" is just a custom secure session function created in a big functions.php from the tutorial I posted. –  sylcat Oct 8 '13 at 1:56
show 1 more comment

1 Answer

up vote 0 down vote accepted

By following that tutorial your current user id is stored in

$_SESSION['user_id']

The tutorial's login functions are here

You need to add a userid field in you MySQL table called "mytable"

then execute an SQL statement like this.

$stmt = $mysqli -> prepare('INSERT INTO mytable (category, contents, date, userid) 
                            VALUES (?,?,NOW(),?)');
$stmt -> bind_param('ssi', $_POST['category'], $_POST['contents'], $_SESSION['user_id']);
$stmt -> execute();

EDIT

After reading the tutorial more they cleared the $_SESSION['user_id'] when executing login_check($mysqli) so before you call that insert

$userId = $_SESSION['user_id'];

Your code should be like this

<?php
include 'db_connect.php';
include 'functions.php';
sec_session_start();

$userId = $_SESSION['user_id'];
if(login_check($mysqli) == true) {

//Connecting to sql db.
$connect=mysqli_connect("localhost","mydbusername","mydbpass","mysqldb");

header("Location: http://mysite.com/1.php");

if (mysqli_connect_errno()) { echo "Fail"; } else { echo "Success"; }

//Sending form data to sql db.
$stmt = $mysqli -> prepare('INSERT INTO mytable (category, contents, date, userid) 
                            VALUES (?,?,NOW(),?)');
$stmt -> bind_param('ssi', $_POST['category'], $_POST['contents'], $userId);
$stmt -> execute();
$stmt -> close();

} else {
   echo 'Access denied. <br/>';
}

?>
share|improve this answer
    
Thank you, I am testing this out now! –  sylcat Oct 8 '13 at 2:01
    
That seems to break the system the way I have implemented it. Was I wrong to entirely replace my insert statement with your code? Now it just refreshes and nothing is placed into the table. –  sylcat Oct 8 '13 at 2:28
    
Make sure to add a new field in MySQL. You have to add userid to your table in the database –  Chris Oct 8 '13 at 2:34
    
I have, I'm trying to paste my current code but the comment section doesn't allow that many characters. (A bit new to stack overflow) –  sylcat Oct 8 '13 at 2:36
    
Edit your original post with the current code –  Chris Oct 8 '13 at 2:39
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