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Sending a post request and a PHP file to write it in a file, for testing i just used "dummy text" to send a message

//FILE - SSE.html
// xmlhttprequest post

//function.................................................

function loadXMLDoc(){    
var xmlhttp;    
if (window.XMLHttpRequest){       
xmlhttp=new XMLHttpRequest();      
console.log("request made");  
}     
else      
{     
 xmlhttp=new ActiveXObject("Microsoft.XMLHTTP");      
}   
xmlhttp.onreadystatechange=function(){   
if (xmlhttp.readyState==4 && xmlhttp.status==200){      

console.log(xmlhttp.responseText);
}   
 }   

xmlhttp.open("POST","writeToFile.php",true);    
xmlhttp.setRequestHeader("Content-type","text/plain;charset=UTF-8");   
xmlhttp.send("dummy text");   
}

// html body.................................................
<form>
<textarea name="q" onKeyUp="loadXMLDoc()" id="ta1" cols=40 rows=10></textarea>
</form>
<textarea id="ta2" cols=40 rows=10></textarea>

//PHP file.......

<?php 


$clientData=$_POST["q"];  

$File = "WrittenByPHP.txt";   
$Handle = fopen($File, w');    
$Data = $clientData;   
fwrite($Handle, $Data);   
fclose($Handle);   ?>

RESULT in console............some junk values..............................

request made SSE.html:46
( ! ) Notice: Undefined index: q in C:\wampnew\www\RD\writeToFile.php on line 4 Call Stack #TimeMemoryFunctionLocation 10.0003252112{main}( )..\writeToFile.php:0

---------------------------------------------------------------------------- Why the above junk code resulted? advance thanks.

share|improve this question
1  
Because, your php file expects a variable named q sent by the form. Also replace $Handle = fopen($File, w'); with $Handle = fopen($File, 'w'); –  web-nomad Oct 3 '12 at 8:17
    
Because your php code has printed Notice that says clearly that you try to get element of array with the key q that is undefined (in another words, does not exist). –  Leri Oct 3 '12 at 8:17

1 Answer 1

Check if isset() and exit the script:

<?php
    if(isset($_POST["q"])){

        $clientData = $_POST["q"]; 
        $File = "WrittenByPHP.txt";
        $Handle = fopen($File, 'w');    
        $Data = $clientData;   
        fwrite($Handle, $Data);   
        fclose($Handle);
        die;
    }
?>

You should sent the q parameter in post.

var params = "q="+document.getElementById('ta1').value;
xmlhttp.open("POST","ajax.php",true);
xmlhttp.setRequestHeader("Content-type", "application/x-www-form-urlencoded");
xmlhttp.setRequestHeader("Content-length", params.length);
xmlhttp.setRequestHeader("Connection", "close");
xmlhttp.send(params);

form:

<form>
   <textarea name="q" onKeyUp="loadXMLDoc()" id="ta1" cols=40 rows=10></textarea>
</form>

This will submit on every onKeyUp, you should change it to onblur

share|improve this answer
    
junk code gone.. thanks.. but value not captured... q given as parameter as you said xmlhttp.send("q=dummy text"); –  user1716366 Oct 3 '12 at 8:39
    
You have to add all my javascript. –  Mihai Iorga Oct 3 '12 at 8:43

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