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function postData() {
    var fName=$("#fName").val();
    var lName=$("#lName").val();
    var city=$("#city").val();
    var data="fName="+fName+"&lName="+lName+"&city="+city+"&submit=submit";
    $.ajax({
        type:'POST',
        url:'employeeajaxcodebehind.php',
        data:data,
        success:function(data){
        $("#results").html(data);
        }
    });
}

Php Code below

if(isset($_POST['submit'])) {
    $fName=$_POST['fName'];
    $lName=$_POST['lName'];
    $city=$_POST['city'];
    $Query="INSERT INTO employee(emp_id,firstname,lastname,city) VALUES ('','$fName','$lName','$city')";
    $Result=mysql_query($Query);
    viewRecord();
}

Html:

<form method="POST">
    Firstname: <input type="text" id="fName" name="fName"><br>
    Lastname: <input type="text" id="lName" name="lName"><br>
    City: <input type="text" id="city" name="city"><br>
    <input type="submit" id="submit" name="submit" onclick="postData();">
</form>

Now problem is that whenever I open the page I insert one record and its getting saved successfully on my DB. But when I add another record its not getting saved... I have to reload the page on every insert...

Whats is the problem here? Also the php function viewRecord(); should be executed but its not...

share|improve this question
    
Where is the HTML / your form? – Precastic Jun 19 '13 at 3:58
    
how is postData called? – Arun P Johny Jun 19 '13 at 3:59
    
check please now .. i've added html – Rameez Shah Jun 19 '13 at 4:00
    
try by putting return false on onSubmit event of form – muneebShabbir Jun 19 '13 at 4:03
1  
You wouldn't want to get a little Bobby Tables on your hands.. littlebobbytables.com – Jeff Jun 19 '13 at 4:31
up vote 0 down vote accepted

Use .serialize() to get data from form.

Also your form send data two times - at onclick and onsubmit. Please prevent onsubmit event by adding return false;

share|improve this answer
    
i Don't know how to use serialize() as this is the very first jquery work i'm dong... I should remove if(isset($_POST['submit']) ? – Rameez Shah Jun 19 '13 at 4:08

The problem as @skparwal mentioned is that you are trying to insert '' into your primary key. You need to use mysql_error() after your insert to see what errors occur. Have a look at this link on how to do this: http://php.net/manual/en/function.mysql-error.php

Also, your ajax won't work as expected because you are not returning false for onClick() which means that the form is being submitted each time after the ajax call gets triggered.

Furthermore, you should be moving to mysqli or PDO because mysql is deprecated.

Edit

Try this but it is not meant to work or be a final implementation, it is just to get you on the right path. It is untested so there might be some errors:

Change your javascript to this:

$(function(){
    $('#submit').click(postData);
});

function postData() {
    var fName=$("#fName").val();
    var lName=$("#lName").val();
    var city=$("#city").val();
    var data="fName="+fName+"&lName="+lName+"&city="+city+"&submit=submit";
    $.ajax({
        type:'POST',
        url:'employeeajaxcodebehind.php',
        data:data,
        success:function(data){
            $("#results").html(data);
        }
    });
    return false;
}

Change your PHP to this:

if(isset($_POST['submit'])) {
    $fName=$_POST['fName'];
    $lName=$_POST['lName'];
    $city=$_POST['city'];
    $Query="INSERT INTO employee(firstname,lastname,city) VALUES ('$fName','$lName','$city')";
    if( !( $Result=mysql_query($Query) ) )
        exit( '@todo need to check for error here' );
    viewRecord();
}

Change your HTML to this:

<form method="POST">
    Firstname: <input type="text" id="fName" name="fName"><br>
    Lastname: <input type="text" id="lName" name="lName"><br>
    City: <input type="text" id="city" name="city"><br>
    <input type="submit" id="submit" name="submit">
</form>
share|improve this answer
    
can you please tell me how to return false ? – Rameez Shah Jun 19 '13 at 4:20
    
@RameezShah Have a look at my edit & try that – Precastic Jun 19 '13 at 4:28
    
Yeahhhhhhh :D Workinggg fine... even the function viewRecord(); is working... what was i doing wrong :S my teacher taugth me that way :S – Rameez Shah Jun 19 '13 at 4:32
    
btw Thanks All :) – Rameez Shah Jun 19 '13 at 4:39

This is because you are adding the emp_id as blank (if it is not a primary key or unique key). You need to omit this in the sql:

$sql = "INSERT INTO employee(firstname,lastname,city) VALUES ('$fName','$lName','$city')";

JS Changes: as you are using submit button. you need to prevent the page not to refresh. So change your ajax call like this one:

<script type='text/javascript'>
    /* attach a submit handler to the form */
    $("#commentForm").submit(function(event) {

      /* stop form from submitting normally */
      event.preventDefault();

      /* get some values from elements on the page: */
      var $form = $( this ),
      var url =  "employeeajaxcodebehind.php" // or $form.attr( 'action' );

      /* Send the data using post */
      var posting = $.post( url, { fName: $('#fName').val(), lName: $('#lName').val(), city: $('#city').val() } );

      /* Put the results in a div */
      posting.done(function( data ) {
        $("#results").html(data);
      });
    });
</script>
share|improve this answer
    
This is a primary key – Rameez Shah Jun 19 '13 at 4:05
    
then use the query that i have write in my answer. it will work fine. check it – skparwal Jun 19 '13 at 4:06
    
if you define a primary key then it should not save the null value into it. (if you define a unique key, it will take a null value only once). – skparwal Jun 19 '13 at 4:08
    
No but its autoincrement :S – Rameez Shah Jun 19 '13 at 4:11
    
have to tried the above query? Yes, it should be an autoincreament. – skparwal Jun 19 '13 at 4:16

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