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I'm trying to connect to a mysql database using mysql_connect and it fetches the desired result. However when I'm trying to fetch using mysqli_connect below error msg is shown:

Access Denied for user "@"'localhost ' to database "tbl_name"

Here is my Php code:

db_connect.php

<?php

/**
 * A class file to connect to database
 */
class DB_CONNECT {

    // constructor
    function __construct() {
        // connecting to database
        $this->connect();
    }

    // destructor
    function __destruct() {
        // closing db connection
        $this->close();
    }

    /**
     * Function to connect with database
     */
    function connect() {
        // import database connection variables
        require_once __DIR__ . '/db_config.php';

        // Connecting to mysql database
        //$con = mysql_connect(DB_SERVER, DB_USER, DB_PASSWORD) or die(mysql_error());
        $con = mysqli_connect(DB_SERVER,DB_USER, DB_PASSWORD,DB_DATABASE);

        // Selecing database
        $db = mysql_select_db(DB_DATABASE) or die(mysql_error()) or die(mysql_error());

        // returing connection cursor
        return $con;
    }

    /**
     * Function to close db connection
     */
    function close() {
        // closing db connection
        mysql_close();
    }

}

?>

getallimages.php

<?php

/*
 * Following code will list all the images
 */

// array for JSON response
$response = array();

// include db connect class
require_once __DIR__ . '/db_connect.php';

// connecting to db
$db = new DB_CONNECT();

// get all products from products table
$result = mysql_query("SELECT *FROM images_tbl") or die(mysql_error());

// check for empty result
if (mysql_num_rows($result) > 0) {
    // looping through all results
    // products node
    $response["products"] = array();

    while ($row = mysql_fetch_array($result)) {
        // temp user array
        $product = array();
        $product["images_id"] = $row["images_id"];
        $product["images_path"] = $row["images_path"];
        $product["submission_date"] = $row["submission_date"];        

        // push single product into final response array
        array_push($response["products"], $product);
    }
    // success
    $response["success"] = 1;

    // echoing JSON response
    echo json_encode($response);
} else {
    // no products found
    $response["success"] = 0;
    $response["message"] = "No products found";

    // echo no users JSON
    echo json_encode($response);
}
?>
  • You're mixing MySQL APIs mysqli_ and mysql_. They do not mix. Add error reporting to the top of your file(s) right after your opening <?php tag error_reporting(E_ALL); ini_set('display_errors', 1); and you'll see what I mean. Your first/commented code //$con = mysql_connect(DB_SERVER, DB_USER, DB_PASSWORD) or die(mysql_error()); is the one to use, as per John's answer. – Funk Forty Niner Sep 16 '14 at 18:03
  • I suggest you to use pdo as it provides connectivity to several databases not just mysql without need to rewrite your code. Have a look on a great tutorial a2znotes.blogspot.com/2014/09/introduction-to-pdo.html – RN Kushwaha Sep 16 '14 at 18:07
4

You forgot to comment this line:

$db = mysql_select_db(DB_DATABASE) or die(mysql_error()) or die(mysql_error());

That is still trying to connect and is what is throwing your error.

Also, your close() method needs to be updated to mysqli.

  • I'm confused. Isn't OP mixing APIs? – Funk Forty Niner Sep 16 '14 at 17:59
  • @Fred-ii- Hint: look one line above this one. ;) – John Conde Sep 16 '14 at 18:00
  • Yeah, I noticed that; kinda threw me off. I'm not the sharpest knife in the drawer today; head cold of all things. – Funk Forty Niner Sep 16 '14 at 18:00
  • Careful though. OP is using both $con and $db as connection variables. Up to the OP to take their pick, I guess. ;) Notice the return $con;? – Funk Forty Niner Sep 16 '14 at 18:05
  • 1
    Pretty sure that's the one they want since they're trying to migrate to mysqli. But either way they need to go back and doublecheck that they converted everything and didn't overlook a line or two in their code. – John Conde Sep 16 '14 at 18:08
1

It should be:

$con = new mysqli(DB_SERVER,DB_USER, DB_PASSWORD,DB_DATABASE);

Have a look at the manual and try to use mysqli as objected-oriented as much as possible.

0

i got the answer and here is the updated code:-

<?php
$mysqli = new mysqli("localhost", "root", "", "test");
if ($mysqli->connect_errno) {
    echo "Failed to connect to MySQL: (" . $mysqli->connect_errno . ") " . $mysqli->connect_error;
}

$res = $mysqli->query("SELECT * FROM images_tbl");

$rows = array(); 

while ($row = $res->fetch_assoc()) {

    $rows[]=$row;



}
echo json_encode(array('Images'=>$rows));
// CLOSE CONNECTION
    mysqli_close($mysqli);
?>      

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