0

I have a data-table in mySQL and I need help accessing the information to display on an HTML Page.

Here are some details.

Host: 127.0.0.1:8889
username: root
password: root
database-name: gibsonek
table-name: events

Here is my code:

<html>
  <head>
    <meta charset="UTF-8">
    <title>Gibson Ek Schedule</title>

<!--JQuery Add-->    
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.1.0/jquery.min.js"></script>

<!--My JS Add-->
<script src="script.js"></script>

<!--Normalize CSS Add-->
<link rel="stylesheet" href="css/normalize.css">


<!--Google Font - Open Sans - Add -->
<link rel='stylesheet prefetch' href='https://fonts.googleapis.com/css?family=Open+Sans:300,400,600'>

<!--Bootstrap Add-->
<link rel='stylesheet prefetch' href='https://maxcdn.bootstrapcdn.com/font-awesome/4.6.3/css/font-awesome.min.css'>

<!--My CSS Add-->
<link rel="stylesheet" type="text/css" href="style.css">




  </head>




  <body>
    <div class="container">
  <div class="navbar">
    <span>Gibson Ek Schedule</span>
  </div>

  <div class="header">
    <div class="color-overlay">
      <div class="day-number"></div>
      <div class="date-right">
        <div class="day-name"></div>
        <div class="month"></div>
      </div>
    </div>

  </div>

  <div class="timeline">
    <ul id = "l">

<?php

$connection = mysql_connect('127.0.0.1:8889', 'root', 'root');
mysql_select_db('gibsonek');

$query = "SELECT * FROM `events` WHERE 1"; 
$result = mysql_query($query);



while($row = mysql_fetch_array($result)){  


echo "<p>SQL DATA WILL GO IN HERE</p>";  
}





mysql_close(); //Make sure to close out the database connection



?>





    </ul>
  </div>  
</div>




  </body>


</html>
6
  • but i am getting what you want ? which manner you want to display result Sep 8 '16 at 4:45
  • Is this a question or what? Sep 8 '16 at 4:46
  • 1) mysql_ should not be used since it was depreciated in older versions of PHP and removed in PHP7. 2) what is your problem?
    – Memor-X
    Sep 8 '16 at 4:47
  • What is this? Homework?
    – Devon
    Sep 8 '16 at 4:51
  • Sorry everybody I am a beginner. I want to do say the data as text. Sep 8 '16 at 4:54
0

Please use PDO (it's more flexible and safe)

$servername = "127.0.0.1:8889";
$username = "root";
$password = "root";
$dbname = "gibsonek";

$conn = new PDO("mysql:host=$servername;dbname=$dbname", $username, $password);
$conn->setAttribute(PDO::ATTR_ERRMODE, PDO::ERRMODE_EXCEPTION);
$stmt = $conn->prepare("SELECT * FROM `events` WHERE id='1'"); 
$stmt->execute();
$result = $stmt->setFetchMode(PDO::FETCH_ASSOC);
$result = $stmt->fetchAll();

var_dump($result); // or as you like

There is a good article.
There is a best guide.

8
  • It's not working for me. I want to add a new paragraph with a value from my SQL for every record Sep 8 '16 at 5:33
  • @JoshFeinsilber All the data from your DB stored in variable $result. You must extract data with cycles Sep 8 '16 at 5:38
  • Okay, I see. Can you write that so that it will make a new paragraph with the text of a row from SQL. Sorry, first time doing this. Sep 8 '16 at 5:41
  • This is a very good video. See it and learn it. youtube.com/watch?v=hSS1Ml6YOt8 Sep 8 '16 at 5:42
  • Ok thanks! So I have this, but it isn't working: <?php $servername = "127.0.0.1:8889"; $username = "root"; $password = "root"; $dbname = "gibsonek"; $conn = new PDO("mysql:host=$servername;dbname=$dbname", $username, $password); $conn->setAttribute(PDO::ATTR_ERRMODE, PDO::ERRMODE_EXCEPTION); $stmt = $conn->prepare("SELECT * FROM events WHERE id='1'"); $stmt->execute(); $result = $stmt->setFetchMode(PDO::FETCH_ASSOC); $result = $stmt->fetchAll(); echo($result); ?> Sep 8 '16 at 5:50
0
<div class="timeline">
    <ul id = "l">
    <?php
        $host = "127.0.0.1:8889";
        $username = "root";
        $password = "root";
        $db_name = "gibsonek"; 

        $mysqli = new mysqli($host, $username, $password, $db_name);

        if ($mysqli->connect_error) {
               die('Error : ('. $mysqli->connect_errno .') '.$mysqli->connect_error);
        }

        $query = "SELECT * FROM `events` WHERE id='1'"; // Here if 1 means id 
        $result = $mysqli->query($query);
        while($row = $result->fetch_assoc()) {
        ?>
        <!-- Here You can add any HTML or css -->
        <li><?php echo $row["column"]; ?> </li> // write your column name what you want to show 

    <?php
      }
    ?>
    </ul>
</div>

I think that would be clear for you, leave a comment if any query. Thanks

-1

I think you missed something here is correct code:

<?php

    $connection = mysql_connect('127.0.0.1:8889', 'root', 'root');
    mysql_select_db('gibsonek');

    $query = "SELECT * FROM `events` WHERE id(or any column as u want)='1'"; 
    $result = mysql_query($query);

    while($row = mysql_fetch_array($result)){  

                   print_r($row);  
    }

    mysql_close(); //Make sure to close out the database connection
    ?>
1
  • It's not working for me. I want to add a new paragraph with a value from my SQL for every record Sep 8 '16 at 5:33

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