-1

I am trying to add records into the database table without reloading the page, I am using ajax in my case eventually got a response(201) from the server(alert("Error occurred !")). I just messed up with this code from the last couple of hours but didn't find the hit where I am getting wrong.

records.html

<!DOCTYPE html>
<html>
<head>
	<title>Insert data in MySQL database using Ajax</title>
	<link rel="stylesheet" href="https://maxcdn.bootstrapcdn.com/bootstrap/3.3.7/css/bootstrap.min.css">
	<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.2.1/jquery.min.js"></script>
</head>
<body>
<div style="margin: auto;width: 60%;">
	<div class="alert alert-success alert-dismissible" id="success" style="display:none;">
	  <a href="#" class="close" data-dismiss="alert" aria-label="close">×</a>
	</div>
	<form id="fupForm" name="form1" method="post">
		<div class="form-group">
			<label for="email">Name:</label>
			<input type="text" class="form-control" id="name" placeholder="Name" name="name">
		</div>
		<div class="form-group">
			<label for="pwd">Email:</label>
			<input type="email" class="form-control" id="email" placeholder="Email" name="email">
		</div>
		<div class="form-group">
			<label for="pwd">Phone:</label>
			<input type="text" class="form-control" id="phone" placeholder="Phone" name="phone">
		</div>
		<div class="form-group" >
			<label for="pwd">City:</label>
			<select name="city" id="city" class="form-control">
				<option value="">Select</option>
				<option value="Delhi">Delhi</option>
				<option value="Mumbai">Mumbai</option>
				<option value="Pune">Pune</option>
			</select>
		</div>
		<input type="button" name="save" class="btn btn-primary" value="Save to database" id="butsave">
	</form>
</div>

<script>
$(document).ready(function() {
	$('#butsave').on('click', function() {
		$("#butsave").attr("disabled", "disabled");
		var name = $('#name').val();
		var email = $('#email').val();
		var phone = $('#phone').val();
		var city = $('#city').val();
		if(name!="" && email!="" && phone!="" && city!=""){
			$.ajax({
				url: "input.php",
				type: "POST",
				data: {
					name: name,
					email: email,
					phone: phone,
					city: city				
				},
				cache: false,
				success: function(dataResult){
					var dataResult = JSON.parse(dataResult);
					if(dataResult.statusCode==200){
						$("#butsave").removeAttr("disabled");
						$('#fupForm').find('input:text').val('');
						$("#success").show();
						$('#success').html('Data added successfully !'); 						
					}
					else if(dataResult.statusCode==201){
					   alert("Error occured !");
					}
					
				}
			});
		}
		else{
			alert('Please fill all the field !');
		}
	});
});
</script>
</body>
</html>

input.php

<?php
include "mysqli_connect.php";
    $name=$_POST['name'];
    $email=$_POST['email'];
    $phone=$_POST['phone'];
    $city=$_POST['city'];
    $sql = "INSERT INTO `bulk`( `name`, `email`, `phone`, `city`) 
    VALUES ('$name','$email','$phone','$city')";
    if (mysqli_query($con, $sql)) {
        echo json_encode(array("statusCode"=>200));
    } 
    else {
        echo json_encode(array("statusCode"=>201));
    }
    mysqli_close($con);

?>

Table structure: here

4
  • what have you tried so far to solve possible issue(s) - how have you gone about debugging your code?
    – lovelace
    Sep 16, 2019 at 11:58
  • I checked whether data is coming or not into the input.php, I guess the mistake is in records.html file in ajax code
    – Ns789
    Sep 16, 2019 at 12:06
  • check if the connection to the database is successful: if(mysqli_connect_errno()){ echo mysqli_connect_error(); }
    – jibsteroos
    Sep 16, 2019 at 12:45
  • Side note, you disable the button. You then check to see if the form is valid, if not, you tell them to fix it. The button is disabled.... not sure how they can try again. Sep 16, 2019 at 13:54

3 Answers 3

1

Try adding datatype:"JSON" in your ajax call

$.ajax({
    url: "input.php",
    datatype: "JSON",
    type: "POST",
    data: {
        name: name,
        email: email,
        phone: phone,
        city: city              
    },
    cache: false,
    success: function(dataResult){
        var dataResult = JSON.parse(dataResult);
        alert(dataResult);
        if(dataResult.statusCode==200){
            $("#butsave").removeAttr("disabled");
            $('#fupForm').find('input:text').val('');
            $("#success").show();
            $('#success').html('Data added successfully !');                        
        }
        else if(dataResult.statusCode==201){
           alert("Error occured !");
        }

    }
});
0
1

In input.php, check whether the data is coming or not:

if(isset($_POST['name']) && isset($_POST['email']) && isset($_POST['phone']) && isset($_POST['city']))
{
   /// your insert code
}
2
  • thanks for posting, I apply your code and Now I guess data is not coming to input.php page from records.html
    – Ns789
    Sep 16, 2019 at 12:02
  • in ajax check whether the value is coming or not like alert(name) Sep 16, 2019 at 12:05
1
data: {
    'name': name,
    'email': email,
    'phone': phone,
    'city': city                
    }

Try this and if it doesn't work do a print_r of the $name variables to see if they are filled incorrectly.

2
  • I cant be print_r because input.php is running in the background when i hit the button
    – Ns789
    Sep 16, 2019 at 11:55
  • Is id field autoincrement type?
    – lfpp
    Sep 16, 2019 at 11:57

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.