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I edit my code working good but still one problem ... the data that selected from my database and displayed in my suggestion input ( only one row and last ID ) !!! How can I do it to display all data rows from my database ????

<?php
$q = strtolower($_GET["q"]);

if (!$q) return;

$host = "localhost";
$user = "root";
$password = "";
$database = "private_message_system";

//make connection
$server = mysql_connect($host, $user, $password);
$connection = mysql_select_db($database, $server);

$query = mysql_query("SELECT * FROM users");


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


    $items = array($row["user_name"] => $row["user_email"]);    

}

$result = array();

foreach ($items as $key=>$value) {
if (strpos(strtolower($key), $q) !== false) {

    array_push($result, array(
        "name" => $key,
        "to" => $value
    ));
}
}

echo json_encode($result);
?>
share|improve this question
    
So you want these to come from a DB? –  Pez Cuckow Sep 4 '12 at 13:12
1  
I don't see any MySQL here. It looks like you are turning an array into JSON. –  woz Sep 4 '12 at 13:14

2 Answers 2

As I know mysql doesn't have a array type like postgres so you have to fetch it one by one:

// here is where you get your to connection to the database
$conn = mysql_connect("your IP", "username", "password");
mysql_select_db("mydb", $conn);

// here you have to do the select to retrieve data from the table.
$query = "SELECT `name`, `to` from mytable";

// now you got all the records but you still need to iterate over this result
$result = mysql_query($query, $conn);
$array = array();

  // retrieve a record and append it to the array
 while($record = mysql_fetch_assoc($result)):
   $array[] = $record;

 endwhile;

// please close the door.... 
 mysql_close($conn);
  echo json_encode($array);
share|improve this answer
1  
Down vote explain please? –  Hola Soy Edu Feliz Navidad Sep 4 '12 at 13:23
1  
See the comment on mine, sigh –  Pez Cuckow Sep 4 '12 at 13:27
    
thanks for answer but not working –  Saeed Aknan Sep 4 '12 at 14:16

See below for a basic implementation of connecting to MySQL and searching for your $q, I've left a few comments for you to make it clearer what's going on!

<?php

// Get the query term from the url
$q = strtolower($_GET["q"]);

// Do nothing if it's empty or not set
if (empty($q)) return;

// Result array which we are going to get from MySQL
$result= array();

// Make a SQL Connection
mysql_connect("localhost", "admin", "password") or die(mysql_error());

// Try to connect to your DATABASE (change the name) or throw an error
mysql_select_db("DATABASE") or die(mysql_error());

// Get data from the "email" table 
// Where the name field is LIKE the search term
$result = mysql_query("SELECT * FROM email WHERE name LIKE '%".mysqli_real_escape_string($q)."%'") 
or die(mysql_error());  //throw an error if something went wrong

//Read all the results ($row) in a loop and put them in the result array
while($row = mysql_fetch_array( $result )) {
    $result[] = array('name' => $row['name'], 'to' => $row['to']);
} 

// Output the array as JSON
echo json_encode($result);

?>

For the more PHP experienced I am aware you can get an array from MySQL but have left it like this to make it clearer.


Enable error reporting

ini_set('display_errors', 1);
error_reporting(E_ALL);
share|improve this answer
1  
Down vote explain please? –  Pez Cuckow Sep 4 '12 at 13:18
    
that's autocomplete code take a result suggestion from above code with file name emails.php in the suggestion result you will see the name and emails of users (Peter Pan"=>"peter@pan.de and "Molly"=>"molly@yahoo.com" ... etc ) i need to remove the names and email's and selected from my database –  Saeed Aknan Sep 4 '12 at 13:25
1  
That's exactly what the above code does... please read the comments... –  Pez Cuckow Sep 4 '12 at 13:26
    
thanks for answer but not working –  Saeed Aknan Sep 4 '12 at 14:16
    
@ Saeed Aknan. what are you trying to say? I don't understand what you mean. –  roel Sep 4 '12 at 14:29

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