Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a form where I keep various fields (name, email, comments) in a mysql database, the data is written, but I would like to show data without reloading the page, press the submit button and view the new comment. .

HTML:

<form action="" method="post" id="form">
    <fieldset>
        <input type="hidden" name="noticia_id" value="<?php echo $id;  ?>"><br>
        <p><label>NOMBRE *</label>
        <input type="text" id="nombre" name="usuario"></p>
        <p><label for="email">EMAIL (No se publicará) *</label>
        <input type="text" id="email" name="email"></p>
        <p><label for="comment">COMENTARIO</label>
        <textarea name="comentario" id="comment" cols="100%" rows="10" tabindex="4"></textarea></p>
        <p><input type="submit" name="submit" id="submit" tabindex="5" value="Enviar " /></p>

    </fieldset>
</form>

PHP:

<?php
if ($_POST) {
    //conectamos a la base  
    $connect=mysql_connect("localhost","root","");  
    //Seleccionamos la base  
    mysql_select_db("mostra",$connect);
    $id=$_POST['noticia_id'];
    $nick=$_POST['usuario']; 
    $email=$_POST['email']; 
    $comentario=$_POST['comentario']; 
    $query = "INSERT INTO comentarios (usuario,email,comentario,noticia_id, fecha) VALUES('$nick','$email','$comentario','$id', NOW())";
    mysql_query($query) or die(mysql_error());

    $query = "UPDATE  noticias SET num_comentarios= num_comentarios+1 where id_noticia='".$id."'";
    mysql_query($query) or die(mysql_error());
}

?>

How do I create a jquery function or an other method to insert this data without having to reload the page?

I've looked at tutorials but I can not help me!

share|improve this question
1  
You need to use AJAX. –  ewein Dec 10 '12 at 2:04
    
api.jquery.com/jQuery.ajax –  Jonathan de M. Dec 10 '12 at 2:05
1  
You also need to protect against SQL injection. I'd recommend parameterized queries. –  BAF Dec 10 '12 at 2:05
    
Concerning what BAF said, take a look at PDO as well. –  ewein Dec 10 '12 at 2:07
    
@jonathan de M Yes, I've gotten into this page, but do not understand how to do it with my parameters: (, I'm newbie: S, I tried but I can not with my parameters –  berti Dec 10 '12 at 2:08

3 Answers 3

up vote 1 down vote accepted

In your javascript use Jquery to make a AJAX call as such:

Say you have a php page called url.php which is doing the SQL insertions and that you are passing a parameter called par1 do the following:

$.ajax({
    url: "ver.php?par1=" + parValue,
    type: 'POST',
    success: function(result) {
        // use the result as you wish in your html here
}});

then in ver.php do:

$par1 = $_POST['par1'];

Ok try this code:

HTML code:

<fieldset>
    <input type="hidden" name="noticia_id" value="<?php echo $id;  ?>"><br>
    <p><label>NOMBRE *</label>
    <input type="text" id="nombre" name="usuario"></p>
    <p><label for="email">EMAIL (No se publicará) *</label>
    <input type="text" id="email" name="email"></p>
    <p><label for="comment">COMENTARIO</label>
    <textarea name="comentario" id="comment" cols="100%" rows="10" tabindex="4"></textarea></p>
    <p><input type="button" name="submit" id="submit" onclick="send_data()" tabindex="5" value="Enviar " /></p>

</fieldset>

Javascript Code:

function send_data()
{
    var usuario = $('#nombre').val();
    var email = $('#email').val();
    var commentario = $('#comment').val();

    $.ajax({
    url: "ver.php?usuario=" + usuario + "&email=" + email + "&comentario=" + commentario,
    type: 'POST',
    success: function(result) {
        // use the result as you wish in your html here
    }});

}

PHP Code:

$connect=mysql_connect("localhost","root","");  
//Seleccionamos la base  
mysql_select_db("mostra",$connect);
$nick=$_POST['usuario']; 
$email=$_POST['email']; 
$comentario=$_POST['comentario']; 
$query = "INSERT INTO comentarios (usuario,email,comentario,noticia_id, fecha) VALUES('$nick','$email','$comentario','$id', NOW())";
mysql_query($query) or die(mysql_error());

$query = "UPDATE  noticias SET num_comentarios= num_comentarios+1 where id_noticia='".$id."'";
mysql_query($query) or die(mysql_error());
share|improve this answer
    
you're using GET in ajax and post in php –  Jonathan de M. Dec 10 '12 at 2:12
    
yes, the file is called "ver.php" –  berti Dec 10 '12 at 2:15
    
What would $ par1 = $ _POST ['par1'];? i don't understand :S. 've pasted inside <head> script and does not work :S –  berti Dec 10 '12 at 2:20
    
That is php code, $par1 will hold the value that is being passed to ver.php in the par1 parameter which you can use to insert the value into your database. –  ewein Dec 10 '12 at 2:22
    
forgive my clumsiness, but $ par1 = $ _POST ['par1']; contain contain the same value as $ id = $ _POST ['article_id'];, no? $ id = $ _POST ['article_id']; indicates the page number on which we are now –  berti Dec 10 '12 at 2:27

AJAX is the best way to accomplish what you are looking for also your code is extremely vulnerable to SQL injection I suggest doing your homework on PDO prepared statements to help safeguard against it. Take a look here Reload MySQL data inside a DIV using Ajax

share|improve this answer
    
id be interested in finding out why this got down voted –  Yamaha32088 Dec 10 '12 at 2:14
    
Sorry, but I think I did not put any negative feedback –  berti Dec 10 '12 at 2:21
<script type="text/javascript">
    $(function(){
        $('form').submit(function(){
            $.ajax({
                type:'POST',
                data:{'usuario':$(this).find("input[name=usuario]").val(),'email':$(this).find("input[name=email]").val()},
                success:function(returnData){
                    console.log(returnData)
                }
            })
            return false;
        })
    })
</script>
share|improve this answer
    
-1, code dumps are not answers. You have not explained what this code is, how it works, why it was written, or how it will help fix the problem. –  Charles Dec 10 '12 at 2:11
    
Hello :) Thank you, I just test your code, but not working. I've pasted inside <head> script and does not work: ( –  berti Dec 10 '12 at 2:14

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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