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I am using a sample of 2 files to practice ajax. I copied the code from This Site but when I try to run it it gives the following error 404 Not Found in Javascript Console. Here is my html and php code :-

HTML file

<html>
<head>
<script type="text/javascript">
 function showResult(str){
 if (str.length==0)
    {
     document.getElementById("livesearch").innerHTML="";
     document.getElementById("livesearch").style.border="0px";
     return;
    }
 if (window.XMLHttpRequest)
    {// code for IE7+, Firefox, Chrome, Opera, Safari
      xmlhttp=new XMLHttpRequest();
    }

    xmlhttp.onreadystatechange=function()
     {
       if (xmlhttp.readyState==4 && xmlhttp.status==200)
          {
            document.getElementById("livesearch").innerHTML=xmlhttp.responseText;
            document.getElementById("livesearch").style.border="1px solid #A5ACB2";
          }
     }
  xmlhttp.open("GET","livesearch.php?q="+str,true);
  xmlhttp.send();
  }
 </script>
 </head>
 <body>
 <form>
    <input type="text" size="30" onkeyup="showResult(this.value)" />
    <div id="livesearch"></div>
 </form>

 </body>
 </html> 

PHP File

<?php
$xmlDoc=new DOMDocument();
$xmlDoc->load("http://localhost/php/ajax/links.xml");

$x=$xmlDoc->getElementsByTagName('link');
//get the q parameter from URL
$q=$_GET["q"];

//lookup all links from the xml file if length of q>0
if (strlen($q)>0)
{
  $hint="";
  for($i=0; $i<($x->length); $i++)
    {
  $y=$x->item($i)->getElementsByTagName('title');
  $z=$x->item($i)->getElementsByTagName('url');
  if ($y->item(0)->nodeType==1)
  {
  //find a link matching the search text
  if (stristr($y->item(0)->childNodes->item(0)->nodeValue,$q))
  {
  if ($hint=="")
    {
    $hint="<a href='" .
    $z->item(0)->childNodes->item(0)->nodeValue .
    "' target='_blank'>" .
    $y->item(0)->childNodes->item(0)->nodeValue . "</a>";
    }
  else
     {
     $hint=$hint . "<br /><a href='" .
     $z->item(0)->childNodes->item(0)->nodeValue .
     "' target='_blank'>" .
     $y->item(0)->childNodes->item(0)->nodeValue . "</a>";
     }
    }
   }
  }
 }
 if ($hint==""){
 $response="no suggestion";
 }
 else{
  $response=$hint;
  }

 //output the response
 echo $response;
 ?> 
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1  
Is livesearch.php being hosted on the same machine? Remember that you can't send a cross domain AJAX request (easily). –  styfle Jan 18 '12 at 6:40
    
Are you sure that the php-file and the html-file are placed in the same folder ? However, you should use encodeURIComponent on str to encode it before you append it to the URL. –  Dr.Molle Jan 18 '12 at 6:45
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2 Answers

up vote 1 down vote accepted

If your PHP file correctly named livesearch.php?

Here's a simpler AJAX example: http://a.dabase.com/

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I was bashing my head with a problem just like this one hopelessly and something Dr.Molle said in the comments helped me.

I have a PHP ("parent" file) that includes another PHP ("son" file lets call it "livesearch.php" as in the code above) where the Java Script for AJAX is.

I had basically the same code as ScoRpion here:

xmlhttp.open("GET","livesearch.php?q="+str,true);

But it should be:

xmlhttp.open("GET","parent/livesearch.php?q="+str,true);

Because in my case the main PHP page is "parent.php", not "livesearch.php".

I hope it helps!

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