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Asked: 2026-05-21T23:13:17+00:00

I am trying to send some form without reloading the page and I am

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I am trying to send some form without reloading the page and I am trying to understand the under-the-hood details therefore not using any JavaScript library:

var http = createRequestObject();
function createRequestObject() {
    var objAjax;
    if (window.XMLHttpRequest)
    {// code for IE7+, Firefox, Chrome, Opera, Safari
        objAjax=new XMLHttpRequest();
    }
    else
    {// code for IE6, IE5
        objAjax=new ActiveXObject("Microsoft.XMLHTTP");
    }
    return objAjax;
}

function display_progress() { ... }    

function upload_file() {
    var request = 'UploaderServlet';
    http.open('post', request);
    http.onreadystatechange = display_progress;
    http.send(null); // HERE PROBABLY THE DATA SHOULD BE SENT
}

<form enctype="multipart/form-data" id="upload_form" name="upload_form" method="POST" action="UploaderServlet" onsubmit="upload_file(); return false;" target="upload_target">
Choose a file <br />  
<input name="file" size="27" type="file" id="file" /> <br/> 
<input type="submit" name="uploadSubmitButton" value="Upload" /><br /> 
<br />  
</form> 

<iframe id="upload_target" name="upload_target" src="#" style="width:0;height:0;border:0px solid #fff;"></iframe>

The upload_file() is called, but if I get it right, the data is not sent. Please advice regarding the correct way to send the data.

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1 Answer

  1. Editorial Team

    Pass attribute in form {url:"",method:"",data:{...},callback:function(){}}

    var ajax=function(){
  try{
    var xml       =new XMLHttpRequest();
    var args      =arguments;
    var context   =this;
    var multipart ="";

    xml.open(args[0].method,args[0].url,true);

    if(args[0].method.search(/post/i)!=-1){
      var boundary=Math.random().toString().substr(2);
      xml.setRequestHeader("content-type",
                  "multipart/form-data; charset=utf-8; boundary=" + boundary);
      for(var key in args[0].data){
        multipart += "--" + boundary
                   + "\r\nContent-Disposition: form-data; name=" + key
                   + "\r\nContent-type: application/octet-stream"
                   + "\r\n\r\n" + args[0].data[key] + "\r\n";
      }
      multipart += "--"+boundary+"--\r\n";
    }

    xml.onreadystatechange=function(){
      try{
        if(xml.readyState==4){
          context.txt=xml.responseText;
          context.xml=xml.responseXML;
          args[0].callback();
        }
      }
      catch(e){}
    }

    xml.send(multipart);
  }
  catch(e){}
}

    If you want to get back response you can use this

    var response={};
ajax.call(response,{...args...})

    and you can retrieve all data by response.txt or response.xml

    A bit late update

    As for @Varun question about <input type='file'> uploads, this code can’t handle file uploads directly, in order to send files using this code, you need to perform preprocessing of the raw file data using File API to get non-binary streams (like base64 or any other bin2hex-like form).

    But, since it’s a 2015 year, I can suggest to move from the construction of the multipart streams to something a bit more robust, like the FormData API.

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