4

Update

TL;DR: This is potentially a bug in Safari and/or Webkit.

Longer TL;DR: In Safari, after the Fetch API is used to make a GET request, Safari will automatically (and unintentionally) re-run the the request when the page is reloaded even if the code that makes the request is removed.

Newly discovered minimal reproducible code (courtesy of Kaiido below):

Front end

<script>fetch('/url')</script>

Original Post

I have a javascript web application which uses the fetch API to make a GET request on a Node.js (express) server.

In Safari (where the problem is): The request completes as expected.

BUT

When I reload the page it will resend the GET request and thus cause duplicates.

In Chrome (acting as control): Everything works (ie no duplicates).

HTML

<div id="buttonTarget"></div>

Front End JS

class ErrorReproduce{
     constructor(){}

     makeButton(){
          let button = document.createElement('button');
          button.innerText = 'Send get request';
          button.onclick = ()=>{
               this.asyncMethod();
          };
          buttonTarget.appendChild(button);
     }//end makeButton()

     async asyncMethod(){
          let data = await fetch('path/to/testError', {
               method: 'GET',
               cache:'no-cache',
               credentials: 'same-origin',
               headers: {
                    'Content-Type': 'application/json',
               },
          }).then(response => response.json());
     }//end asyncMethod
}//end ErrorReporduce

let errRepro = new ErrorReproduce();
errRepro.makeButton();

Backend JS

router.get('path/to/testError',(req,res)=>{
     res.send({ok:true});
})

How to reproduce

  1. Click button - see the GET request in the log

  2. Reload page WITHOUT re-clicking the button - see the duplicate request in the log

Expected Behavior

I expect that after clicking the button and reloading the page WITHOUT pressing the button again that there will not be a duplicate request, but the request is indeed duplicated IMMEDIATELY by the browser after the page reloads.

Server log after page reload Safari (error):

GET /path/to/testError 304 3.206 ms - -

... (other normal requests) ...

Server log after page reload Chrome (expected):

... (other normal requests) ...

Edits

I tried setting the type attribute of the to 'button' (bug persists)

I tried using CMD+R and the Reload page button (bug in both)

Link to bug report

Bug Report

10
  • 1
    You mean you first click that button, then reload the page, and without clicking the button again, the request is made automatically by the browser? How did you reload the page? What if you set the type property of your <button> to "button"? – Kaiido Jun 24 '19 at 1:29
  • @Kaiido correct: (1) click button - see request in log (2) reload page WITHOUT pressing the button again (I'm using CMD+R) - see request again in the log. I will try your suggestion and edit my question to include the new information. thank you. – respectful Jun 24 '19 at 1:31
  • @Kaiido I tried button.type = 'button' and button.setAttribute('button') and the bug persists. I will try a different page reload. – respectful Jun 24 '19 at 1:38
  • 1
    Finally got a little time to test it out and I can repro... It also happens when using XMLHttpRequest, it also happens when doing the request from the global scope at parsing. This means a minimal repro is just <script>fetch('/url')</script> then reload and look how you get two requests to /url at every reload, and then still one from nowhere even if you remove that <script> tag. I once again run out of time for further digging, but honestly, I would consider it a bug and advice you to open an issue on webkit's bug-tracker. – Kaiido Jun 24 '19 at 6:15
  • Ps: Should also be noted that these requests are hidden from the network panel, even with "Preserve Log". – Kaiido Jun 24 '19 at 6:17
0

Bug has been fixed in WebKit. Link to Changeset 247276 in webkit

1
  • Comments are not made to be eternal, you may at least include the link to the bug-report in this answer. – Kaiido Jul 11 '19 at 7:08

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.