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I am trying to get the source code of a website by using XMLhttpRequest in javascript, but I cannot get the response. How do I get source code using XMLhttpRequest? Here is what I have right now:

<script language="Javascript" type="text/javascript">
var req = new XMLHttpRequest();
req.open(
    "GET",
    "http://www.google.com",
    true);
req.onreadystatechange = statusListener;
req.send(null);

function statusListener()
{
if (req.readyState == 4) 
    {
        var docx=req.responseXML;
        alert(docx);
    }
}
</script>
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3 Answers

up vote 0 down vote accepted

Use this in place of the given if statement.

    if (req.readystate == 4) {
        if (req.status == 200) {
            var docx=req.responseXML;           
            alert(docx);
            //Can also try this just in case:
            //var doc = req.responseText;
            //alert(doc);
        }
    }

You're not checking to make sure the status is ok, this could make the script fail by returning an error (which you might not see if you have debugging off, due to it being Javascript) since the response is not ready until both the ready state is 4 and the status code is 200. Also, if responseXML doesn't work try responseText, as it might not be properly formatted.

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You set up the XHR object in a variable called "req", but then your callback uses "xmlhttp".

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sorry, i was a mistake when i was copy-pasting code. It still wont work even if it is correct –  Franz Payer Jan 18 '11 at 20:46
    
As @SLaks wrote, if the domain of the page that contains your code is different from the domain at which the content resides, then you can't fetch the content. –  Pointy Jan 18 '11 at 20:47
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You can't do a xmlHttpRequest to a different domain than your page, but you can still retrieve the contents with a proxy script in your domain:

#proxy-script (proxy.php)
<?php
echo file_get_contents ( $_GET['url'] );
?>

And your javascript should look like this:

<script language="Javascript" type="text/javascript">
var myUrl = "http://www.google.com";
var req = new XMLHttpRequest();
req.open(
    "GET",
    "/proxy.php?url="+encodeURIComponent(myUrl),
    true);
req.onreadystatechange = statusListener;
req.send(null);

function statusListener()
{
if (xmlhttp.readyState == 4) 
    {
        var docx=xmlhttp.responseXML;
        alert(docx);
    }
}
</script>
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except you'd also want to fix the error in the original, which is that the XHR object is called "req" but the callback refers to it as "xmlhttp". –  Pointy Jan 18 '11 at 20:49
1  
You'd also want to address the security implications of calling file_get_contents on whatever is in $_GET['url'], since that could be used to retrieve all your server-side code. –  Spencer Hakim Jan 18 '11 at 20:59
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