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I've been trying to figure out how to use jsonp in my situation, but no luck. This counts the clicks and on each click it writes the name and location to a txt file.

var count1 = 0;
function countClicks1() {
count1 = count1 + 1;
document.getElementById("p1").innerHTML = count1;
function doAjax()
   type: "POST",
   url: "phpfile.php",
   data: "name=name&location=location",
    success: function(msg){
     alert( "Data Saved: " + msg );

document.write('<button onclick="countClicks1(); doAjax();">Count</button>');
document.write('<p id="p1">0</p>');

This is the php file phpfile.php

$name = $_POST['name'];
$location = $_POST['location'];
$myFile = "test.txt";
$fh = fopen($myFile, 'w') or die("can't open file");
fwrite($fh, $name);
fwrite($fh, $location);   

If these two files are on the same domain everything is fine. But if I want to do the same for another domain, it won't work. I would like to send the same information with jsonp to the phpfile.php. I know it should be with GET but I just can't figure out how.

share|improve this question
It's not JSONP. – Saeed Neamati Dec 9 '11 at 7:42
You may use getJSON : – Dr.Molle Dec 9 '11 at 7:47
Please stop using document.write. It makes my eyes hurt... – atornblad Dec 9 '11 at 7:59
Off-topic: About the PHP code - are you sure that fopen($myFile, 'w') is correct? That will open a file for writing, and all previous content will be overwritten. I think you want to do fopen($myFile, 'a') instead. That opens the file for appending. – atornblad Dec 9 '11 at 8:12
i m just using the txt file for testing. what should I use instead of document.write? – ciprian Dec 9 '11 at 9:33

1 Answer 1

up vote 1 down vote accepted

First of all, your php file does not output anything, so I wouldn't call this JSONP at all. JSONP is a method for getting JSON data using a GET request that returns a chunk of Javascript that can be loaded using a <SCRIPT> tag.

For doing JSONP yourself, you'll have to do something like this:

$callback = $_GET['callback'];
$name = $_GET['name'];
$location = $_GET['location'];
$myFile = "test.txt";
$fh = fopen($myFile, 'w') or die("can't open file");
fwrite($fh, $name);
fwrite($fh, $location);   
header("Content-Type: application/javascript");

<?php echo $callback; ?>("Message from the server");

Then perform the call something like this:

          function(message) {

BUT... Since you don't actually return any data from the server, you could just as well just fake-load an image with the correct URL. That would greatly reduce the overhead.

share|improve this answer
thank you for your help! – ciprian Dec 9 '11 at 11:40
how do I return data from the server? I want to check if the user is logged in or not – ciprian Dec 16 '11 at 18:38

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