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I needed to log into a database using jSON and Ajax to refresh it onto itself. Here is the fixed code to do so:

< auth.php >`

<head>
    <script src="//ajax.googleapis.com/ajax/libs/jquery/1.8.0/jquery.min.js"
    type="text/javascript"></script>
    <link rel="stylesheet" type="text/css" href="css/style.css">
    <script type="text/javascript">
        $(document).ready(function() {

$("#login").click(function() {

    var action = $("#form1").attr('action');
    var form_data = {
        email: $("#email2").val(),
        password: $("#password").val(),
    };
$.getJSON("login.php",form_data,function(data){
    switch(data.retval){
      case 0: $("#form").html("You have logged in successfully,"+ data.data.displayName+"!");
      break;
      case 1: $("#status").html("Invalid Username/Password, please try again.");
      break;
      default: $("#status").html("Database error, please try again.");
      break;
   }
});
});
});
    </script>
</head>

<body>
    <div id="fullBG">
        <div id="formBG">
            <div id="form">
                <div id="status">
                    <br />
                    <br />
                </div>
                <form id="form1" name="form1" action="login.php" method="post">
                    <input type="email" placeholder="Email" name="email" id="email2" size="30">
                    <br>
                    <input type="password" placeholder="Password" name="password" id="password"
                    size="30">
                    <br>
                    <input type="button" value="Login" class="sub" id="login">
                </form>
                <br />
                <br />
                <form method="link" action="register.php">
                    <input type="submit" value="Register" class="register">
                </form>
            </div>
        </div>
    </div>
</body>

</html>`

< login.php >`

<?php
ob_start();
session_start();
mysql_connect('', '', '') or 
die('Could not connect: ' . mysql_error());
mysql_select_db('phppro2') or
die ('Can\'t use database: ' . mysql_error());

// retval: 0 - login ok, 1 - login failed, 2 - internal error
$json = array("retval" => 2, "data" => NULL, "debug" => "");

$email = mysql_real_escape_string($_REQUEST['email']);
$password = mysql_real_escape_string($_REQUEST['password']);

$sql="SELECT * FROM users WHERE email='$email' and password='$password'";

$json['debug'] .= "SQL query was: ".$sql."\n";
$result=mysql_query($sql);
if (!$result) {
$json['debug'] .= "SQL query failed\n";
$json['debug'] .= "Other output: ". ob_get_contents();
ob_end_clean();
die(json_encode($json));
}
$count=mysql_num_rows($result);

if($count==1){
$json['retval'] = 0;
$json['data'] = mysql_fetch_assoc($result);
} else {
$json['retval'] = 1;
}
$json['debug'] .= "Other output: ". ob_get_contents();
ob_end_clean();
echo json_encode($json);`

// Old problem:

I need to retrieve the information from my database and load it using Ajax. I had everything working, but my auth.php file was overwritten and I lost it. I tried to retrace my steps but I am getting lost. The page no longer refreshes onto itself and it does not retrieve the data. (I removed my database information, but it is connected)

My login.php I have not changed, so I assume it's accurate.

share|improve this question
    
The only issue i can see is that you're not preventing the default action within $("#login").click(function() { to stop the form from submitting and the page redirecting. infact, it should just be $('#form1').submit(function(){ return false }); where all your code comes before return false. –  Ohgodwhy Oct 2 '12 at 16:12
    
you have given same ID to two buttons –  GBD Oct 2 '12 at 16:18
    
also switch statement missing –  GBD Oct 2 '12 at 16:20

1 Answer 1

up vote 0 down vote accepted

1) you shouldn't keep same ID of two buttons (Register & Login Button)

2) change your javascript function as below

 $.getJSON("login.php",form_data,function(data){
        switch(data.retval){
          case 0: $("#form").html("You have logged in successfully,"+ data.data.displayName+"!");
          break;
          case 1: $("#status").html("Invalid Username/Password, please try again.");
          break;
          default: $("#status").html("Database error, please try again.");
          break;
       }
    }

3) Also your status div should have to be blank

<div id="status"></div>

4) syntax error on http://samaradionne.com/phppro2/auth.php

$(document).ready(function() {

    $("#login").click(function() {

        var action = $("#form1").attr('action');
        var form_data = {
            email: $("#email").val(),
            password: $("#password").val(),
        };
 $.getJSON("login.php",form_data,function(data){
        switch(data.retval){
          case 0: $("#form").html("You have logged in successfully,"+ data.data.displayName+"!");
          break;
          case 1: $("#status").html("Invalid Username/Password, please try again.");
          break;
          default: $("#status").html("Database error, please try again.");
          break;
       }
    });
  });
});
share|improve this answer
    
The two ID's were definitely an oversight, I meant to put it only on the login. Also why is it data.data ? I changed this code but it is still not working. The "Invalid Username/Password, please try again." shows up automatically before any information is submitted. –  Black Bird Oct 2 '12 at 16:58
    
@erraziB ahh. ok. wanted to bring your attention –  GBD Oct 2 '12 at 16:59
    
samaradionne.com/phppro2/auth.php This is the page I am working on if it helps! –  Black Bird Oct 2 '12 at 17:02
    
one more thing was missing. edited my answer.. need to pass form_data –  GBD Oct 2 '12 at 17:05
    
you have syntax error into given about link auth.php –  GBD Oct 2 '12 at 17:07

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