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I am doing ajax function to do insert into DB using form and input type=hidden but when I put more than form in the same page it is always take just the first value in the first form

here is the code:

the Ajax function

<script language="javascript" type="text/javascript">
   //Browser Support Code
   function ajaxFunction(){
      var ajaxRequest; // The variable that makes Ajax possible!  
      try{
         // Opera 8.0+, Firefox, Safari
         ajaxRequest = new XMLHttpRequest();
      } catch (e){
         // Internet Explorer Browsers
         try{
             ajaxRequest = new ActiveXObject("Msxml2.XMLHTTP");
             } catch (e) {
                try{
                   ajaxRequest = new ActiveXObject("Microsoft.XMLHTTP");
                } catch (e){
                  // Something went wrong
                  alert("Your browser broke!");
                  return false;
                }
            }
       }
       // Create a function that will receive data sent from the server
       ajaxRequest.onreadystatechange = function(){
       if(ajaxRequest.readyState == 4){
          var ajaxDisplay = document.getElementById("ajaxDiv");
          ajaxDisplay.innerHTML = ajaxRequest.responseText;
       }
    }
    var in1 = document.getElementById("in1").value;
    var queryString1 = "?in1=" + in1;

    //ajaxRequest.open("GET", "/sites/all/php/check.php" + queryString, true);
    ajaxRequest.open("GET", "/sites/all/php/check.php" + queryString1, true);
    ajaxRequest.send(null);
}
//–>
</script>

here is the html forms

    <form name="myForm1">
         <input type="hidden" value="1" id="in1">
         <a onclick="ajaxFunction()" class="folloo"></a> 
         <form name="myForm2">
               <input type="hidden" value="2" id="in1">
               <a onclick="ajaxFunction()" class="folloo"></a> 
               <form name="myForm3">
                     <input type="hidden" value="3" id="in1">
                     <a onclick="ajaxFunction()" class="folloo"></a>
               </form>
         </form>
   </form>

and here is the check.php code that do the DB query

<?php
   //Connect to MySQL Server
   //connect to your database ** EDIT REQUIRED HERE **
   mysql_connect("localhost","admin","123456") or die('Cannot connect to the database
                 because: ' . mysql_error());

   //specify database ** EDIT REQUIRED HERE **
   mysql_select_db("dbname") or die("Unable to select database"); 
   //select which database we're using

   // Retrieve data from Query String
   $in1 = $_GET['in1'];

   // Escape User Input to help prevent SQL Injection
   $in1 = mysql_real_escape_string($in1);

   //Build and run a SQL Query on our MySQL tutorial
   if($in1){
       mysql_query("INSERT INTO test (name)
                  VALUES ('" . $in1. "')");
   }

?>

put when i click on any link it is always send the first value.

cah anyone tell mewhat is the problem here?

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1 Answer

id values must be unique on the page. You've shown that you have multiple input type="hidden" elements with the same id value ("in1"). If you have more than one element with the same id value, when you try to look it up (for instance, using getElementById), most browsers will give you the first one, but it's undefined behavior because the markup/DOM is invalid.

The fix is to fix the IDs so that they're unique, or not use IDs at all and use something that isn't required to be unique, such as name or class — but then you'll need to retrieve it with querySelectorAll or similar, and deal with the fact that you have multiple matching elements.

share|improve this answer
    
document.getElementsByName("").value return undefined value –  Man Mann Jun 8 '12 at 16:47
    
@ManMann: getElementsByName returns elements, plural, in the form of a NodeList. value is a property of individual elements. (Also, I assume you're not passing an empty string into it as you've shown above?) If you give it a string with the name of the elements, and then look at the resulting list's length, and index into it with [0], [1], etc., you should be able to find the value property on each of those. –  T.J. Crowder Jun 8 '12 at 16:50
    
: I did the changes but still return undefined value :( –  Man Mann Jun 8 '12 at 16:54
    
can I change it to jquery function?? –  Man Mann Jun 8 '12 at 16:57
    
@ManMann: "I did the changes but still return undefined value" Works for me: Example | Source. "can I change it to jquery function" Of course: Example | Source –  T.J. Crowder Jun 8 '12 at 18:15
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