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I want to execute some php code on submit button click without refreshing/reloading my page. Is it possible? also i have javascript function on page load that's why i don't want to refresh my page. thanks in advance.

<?php
if(isset($_POST["search"]))
{
$show = "SELECT * FROM data";
$rs = mysql_query($show) or die(mysql_error());
 $add_to_textbox = "<input type='button' name='btn' value='add' />";
#****results in Grid****
    echo "<table width='360px' border='1' cellpadding='2'>";
    $rowID=1;
while($row = mysql_fetch_array($rs))
{
    echo "<tr>";
    echo "<td width='130px' id='name.$rowID.'>$row[Name]</td>";
    echo "<td width='230px' id='link.$rowID.'><a href = '$row[Link]'>$row[Link]</a></td>";
    echo "<td width='130px' onclick='Display($rowID);'>$add_to_textbox</td>";
    echo "</tr>";
    $rowID++;
}
    echo "</table>";
#**********************
mysql_free_result($rs);
}
?>

<script type="text/javascript">
function Display(rowID){
    var linkVal = document.getElementById('link'+rowID+'').innerHTML.replace(/<\/?[^>]+(>|$)/g, "\n");
    document.getElementById("name").value = document.getElementById('name'+rowID+'').innerHTML;
    document.getElementById("link").value = linkVal; 
    }
</script>

here is my code

share|improve this question
    
simply use ajax. –  polin Nov 26 '12 at 6:07
    
Use ajax, you can google it. –  cmnajs Nov 26 '12 at 6:08
    
can you show me how? @polin –  Bkay Nov 26 '12 at 6:10
    
@Bkay well it is really important 4 you to know exactly what ajax does. It can be done on server and client side, hit database or not. So for initial knowledge plz go to w3schools.com for initial konwledge –  polin Nov 26 '12 at 6:14
    
@polin i have searched it a lot but still didn't find the appropriate answer. :( –  Bkay Nov 26 '12 at 6:18

2 Answers 2

up vote 4 down vote accepted

Well, you need to use the javascript / ajax.

Example: on your submit link (a href for exaple), add call-in-to js function submitMe and pass on whatever variables you need

function submitMe() {
    jQuery(function($) {    
        $.ajax( {           
            url : "some_php_page.php?action=getsession",
            type : "GET",
            success : function(data) {
                alert ("works!"); //or use data string to show something else
                }
            });
        });
    }

IF you want to change some content dynamically, it is easy- you just need to create tags, and assign ID to them : <div id="Dynamic"> </div>

Then you load ANYTHING between those two tags using

document.getElementById("Dynamic").innerHTML = "<b>BOOM!</b>";

Meaning that you calling area between two tags and loading something into them. The same way you GET data from that place:

alert(document.getElementById("Dynamic").innerHTML);

Please read this: http://www.tizag.com/javascriptT/javascript-getelementbyid.php

In addition, play and experiment with DOM elements and learn how they interact. It is not hard, just takes some time to grasp all concepts.

share|improve this answer
    
can u please elaborate? –  Bkay Nov 26 '12 at 6:15
    
okay I got it now Thanks @andrew . –  Bkay Nov 26 '12 at 6:23

Whenever you send request ajax (with plain js anyway) from a html form, make sure you add the return false statement to prevent redirection: something like:

<form method="post" ... onsubmit="ajax_post(); return false;">

You have to use ajax, but you can do it in plain javascript (without jquery). Jquery makes it easier.

plain javascript example: This function will trigger an ajax, via get, without parameter: you can tweak it so it run in POST and be able to send some parameter: file represent the php file to request and html represent the container whre the data will be displayed:

function plain_ajax(file,html){
    if (window.XMLHttpRequest){ 
          r=new XMLHttpRequest();   //For Most BRowser
    } else{ 
          r=new ActiveXObject("Microsoft.XMLHTTP");  //for Explorer
    }

    //When the state change
    r.onreadystatechange=function(){ 
       //ReadyState 4 = Loaded     see: http://www.w3.org/TR/2006/WD-XMLHttpRequest-20060405/
       //status 200 = ok           see: http://en.wikipedia.org/wiki/List_of_HTTP_status_codes
       if(r.readyState==4 && r.status==200){
           //Replace the content with the response, Using creatDocumentFragment is more efficient 
           //at the cost of a few more lines But it  would alos allow you to append the data
           //instead of replacing it using innerHTML;
           document.getElementById(html).innerHTML = r.responseText;
        }
    }

    //Opening the connection and sending the request.
    r.open("GET",file,true); 
    r.send();
}
share|improve this answer
    
if(r.readyState==4 && r.status==200) can u please explain this line of code? –  Bkay Nov 26 '12 at 6:41
    
When the 'state 'change' it check if the request was completed successfully (200). If so it will replace the content of (html) by the response –  Louis Loudog Trottier Nov 26 '12 at 16:43
    
I've commented the script and added few documentation. In reality it's prety simple. –  Louis Loudog Trottier Nov 26 '12 at 16:51

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