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Okay, Here's my problem. I am trying to make a posting script for my website. However this script is not working; the script is below:

   <?php
      // Make sure the user is logged in before going any further.
      if (!isset($_SESSION['user_id'])) {
        echo '<p class="login">Please <a href="login.php">log in</a> to access this page.</p>';
        exit();
      }
      else {
        echo('<p class="login">You are logged in as ' . $_SESSION['username'] . '. <a href="logout.php">Log out</a>.</p>');
      }

      // Connect to the database
      $dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME);

      if (isset($_POST['submit'])) {
        // Grab the profile data from the POST
        $post1 = mysqli_real_escape_string($dbc, trim($_POST['post1']));
        $query = "INSERT INTO ccp2_posts ('post') VALUES ('$post1')";

        $error = false;

      mysqli_close($dbc);
     ?>




     <form enctype="multipart/form-data" method="post" action="<?php echo $_SERVER['PHP_SELF']; ?>">
        <legend>Posting</legend>
            <label for="post">POST:</label>
            <textarea rows="4"  name="post1" id="post" cols="50">Write your post here...</textarea><br />
            <input type="submit" value="submit" name="submit" />
    </form>

    </div>

      <?php

    include ("include/footer.html");

    ?>

    </body> 
    </html>

Nothing shows up in the database when I submit the form. Help would be amazing. Thanks.

share|improve this question
1  
Quick tip: Use action="" rather than putting $_SERVER['PHP_SELF'] into the action. This is great if you're using RewriteRule stuff to produce "pretty" URLs. –  Niet the Dark Absol Jan 25 at 3:59
    
And session_start(); is located... –  Fred -ii- Jan 25 at 3:59
    
Check for errors –  Ed Heal Jan 25 at 3:59
    
You never close your 2nd if statement –  Yani Jan 25 at 4:01
    
you does not close your second if statement. also you miss mysql_query($query); –  Sadikhasan Jan 25 at 4:03

5 Answers 5

You haven't executed the query. All you've done is opened a connection, defined the query string and closed the connection.

Add:

if(msyqli_query($dbc, $query)) {
  // Successful execution of insert query
} else {
  // Log error: mysqli_error($dbc)
}

after this line:

$query = "INSERT INTO ccp2_posts ('post') VALUES ('$post1')";

Update:

Started editing but had to leave... As other answerers have pointed you need to either quote the post column with a backick or remove the single quote that you currently have altogether. The only case where you need to use backticks to escape identifiers that are one of the MySQL Reserved Words.

So the working version of your query would be:

$query = "INSERT INTO ccp2_posts (post) VALUES ('$post1')";
share|improve this answer
    
Okay... here's the thing. Nobody is getting the point of the question. Maybe its the way I worded it. I want to add comments to posts. This is the code for the post not for the commenting that's the part I need help on. –  user2544765 Feb 18 at 17:01

You may have other problems, but your SQL is bad. You can't use single quotes around 'post'. You want backticks or nothing:

INSERT INTO ccp2_posts(post) VALUES ('$post1')
share|improve this answer

You missed

mysqli_query($dbc,$query);

In your code,

$query = "INSERT INTO ccp2_posts ('post') VALUES ('$post1')";
mysqli_query($dbc,$query);
share|improve this answer
    
You missed the fact they're using mysqli. –  Niet the Dark Absol Jan 25 at 4:03
    
@NiettheDarkAbsol it is a typo –  ling.s Jan 25 at 4:03
    
Missing argument... you'll get it right in a minute, I'm sure! –  Niet the Dark Absol Jan 25 at 4:04

Your query is not quite right:

$query = "INSERT INTO `ccp2_posts` (`post`) VALUES ('$post1')";

Note that those are backticks `, not single-quotes. This is very important! Backticks are used to name databases, tables and column names, and in particular it means you don't have to remember the extensive list of every single reserved word. You could call your column `12345 once I caught a fish alive!` if you want to!

Anyway, more importantly, you aren't actually running your query!

mysqli_query($dbc,$query);
share|improve this answer

You are not submiting to the database using, for example, the mysql_query() function.

share|improve this answer
1  
sidenote: stop using deprecated mysql_* functions. use MySQLi or PDO instead. Here is a good tutorial for PDO. –  Raptor Jan 25 at 4:08
    
@ShivanRaptor is right. Prepared statements rules! –  D. Melo Jan 25 at 4:10

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