0

So I am trying to create a simple ajax request that returns hello world text from data.txt (in same root directory).

PROBLEM: When checking the status === 200 if statement doesn't display anything i.e. its not returning true.

TWIST: But if the if statement is removed the request is logged onto the console (but the data is not being written on the page.

CODE

// AJAX REQUEST EXAMPLE
// XHR is the api that is used for AJAX REQUESTS
// Create a XHR request object

var request = new XMLHttpRequest();
// create the 'request' for this object. open() reqest method GET/POST, location of the data file (ajax requests has same domain poilcy - so you can't request data objects for domains from other than what your currently on), true/fasle (whether we want request ot be asyncronous or not fasle means its asyc i.e. brwoser waits until requests is done before it does anything else )
request.open('GET', 'data.txt', true);
// send request to the server for data
request.send();
if (request.status=== 200) {
  document.writeln(request.responseText);

 }
    console.log(request);
1
  • it's not clear .
    – melbx
    Dec 31, 2017 at 13:38

2 Answers 2

1

hope that this will help you to understand, I have placed some comments for you. Feel free to ask me everything:

<!DOCTYPE html>

<html>

<head>
  <meta charset="utf-8">
  <title>stackoverflow test</title>
  <script src="https://ajax.googleapis.com/ajax/libs/jquery/3.2.1/jquery.min.js"></script>
</head>

<body>

  <script type="text/javascript">
    // AJAX REQUEST EXAMPLE
    // XHR is the api that is used for AJAX REQUESTS
    // Create a XHR request object

    var request = new XMLHttpRequest();


    request.onreadystatechange = function() //This is to wait for response (eventually from your PHP script)
    {
      if (request.readyState === 4 && request.status === 200) //And when status is OK use result
      {

        document.writeln(request.responseText);
        console.log(request.status); //here the status request
        console.log(request); //here the complete object request
      }
    }

    // open() request method GET/POST, location of the data file (ajax requests has same domain policy - so you can't request data objects for domains from other than what your currently on), true/false (whether we want request ot be asyncronous or not false means its asyc i.e. browser waits until requests is done before it does anything else )
    request.open('GET', 'data.txt', true);
    // send request to the server for data
    request.send();


  </script>


</body>

</html>

Now you will get 200 as success request in browser console, and the data.txt output in the browser.

stack_example

Cheers, Giulio

4
  • Okay your code works: 2 Questions: apart from checking request.readyState === 4 and adding onreadystatechange () the code isn't much different, then why doesn't my code work? ideas :)
    – Shaz
    Dec 31, 2017 at 14:38
  • Question 2: onreadystatechange is it required, and what is its purpose with php?
    – Shaz
    Dec 31, 2017 at 14:38
  • Trying to figure out what I am fundamentally doing wrong here so as to not repeat it ;)
    – Shaz
    Dec 31, 2017 at 14:40
  • @Shaz the question 1 -> one of the main reasons that causes the wrong execution of your code is related to the fact that you don't have onReadyStateChange event listener. In fact this listener is really useful especially in AJAX for verify if an element was correctly loaded and if the loading state of an element has changed or not. Question 2 -> the purpose with PHP is for make an external (and absolutely more secure) additional control of your request with $_SESSION["Status"] === "200"] for example. Let me know if my explanation is clear :-) Dec 31, 2017 at 15:06
0

200 mean success

Check here : https://support.oneskyapp.com/hc/en-us/articles/222410047-What-are-those-API-status-code-e-g-200-201-400-503-

1
  • I know, but by removing the if statement entirely i get the request object shown in my console by doesn't display text in browser
    – Shaz
    Dec 31, 2017 at 14:10

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.