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 database and I get info from it and put it into php page. BUT the thing is, I cant put data from that php file to database. I use form to put there the value of variable, but it says [html span element]. and I get errors: Notice: Undefined index: souls in xxx/the_cave.php on line 20 Notice: Undefined index: bones in xxx/the_cave.php on line 21

Here is the code: JS:

document.getElementById("souls_form").value=<?php echo $souls_value; ?>;
    document.getElementById("bones_form").value=<?php echo $bones_value; ?>;
    function upload(){
        <?php upload(); ?>}

PHP part:

$current_souls=$_POST['souls'];
$current_bones=$_POST['bones'];
function upload(){
    mysqli_query($db,"UPDATE Data SET Souls=$current_souls, Bones=$current_bones WHERE Username='$username'");

HTML form

<form style="visibility:hidden" action="" method="post">
<input  name="souls" id="souls_form">
<input  name="bones" id="bones_form">
</form>     
share|improve this question
    
What's the meaning of the Javascript code? –  Ruben Giaquinto Feb 13 '14 at 17:42
    
On load I set input's value with Javascript –  yamahamm Feb 13 '14 at 17:43
    
text is the default type. –  Barmar Feb 13 '14 at 17:44
    
still the same... Don't I need to submit the form somehow? –  yamahamm Feb 13 '14 at 17:45
    
Through the HTML form you would pass the values. It is right? –  Ruben Giaquinto Feb 13 '14 at 17:45

1 Answer 1

UPDATED CODE

<script>
var souls1=<?php echo $souls_value;?>
var bones1=<?php echo $bones_value;?>
//do your process
//after the values changes for variables souls1,bones1
//YOU HAVE TO CALL AJAX CALL TO SAVE YOUR UPDATED VARIABLES DATA INTO DB
$.ajax({
url:'updatedata.php',
type:"POST",
data:{souls:souls1,bones:bones1},
success:function(result)
{
if(result)
{
alert('updated succesfully');
}
}
});

updatedata.php

<?php
if(isset($_POST['souls'])&&isset($_POST['bones']))
{
$current_souls=$_POST['souls'];
$current_bones=$_POST['bones'];
if(mysqli_query($db,"UPDATE Data SET Souls='$current_souls', Bones='$current_bones' WHERE      Username='$username'"))
{
echo 'TRUE';
}
}
?>

As the Php code executes first than all other codes, the $current_souls=$_POST['souls']; is executing first so you have to check form submission using isset() other wise no error will be printed

share|improve this answer
    
doesn't work either –  yamahamm Feb 13 '14 at 18:40
    
what do you want to do exactly? this code wont fire any errors –  Feroz Akbar Feb 13 '14 at 18:44
    
ummm ill try to explain as simply as I can. I got $souls_value and $bones_value from MYSQL DB. And I transform this variable into JS variable. Till this part it works ok. I can ad, subtract from those vars. So those vars change. And for example I have souls=10000 on the load of page and then when I close I have lets say 10207. And I want to put this variable in DB. So I try to use hidden form to set it value of souls(bones) and then using PHP I want to get those values and simply put it in DB –  yamahamm Feb 13 '14 at 18:51
    
i have updated my answer once see it,if it helps then accept as a answer –  Feroz Akbar Feb 13 '14 at 19:09
    
One question: I need to create one more php file right? –  yamahamm Feb 13 '14 at 19:13

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.