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Hey I am getting this confirmation by firefox.

To display this page, Firefox must send information that will repeat any action
(such as a search or order confirmation) that was performed earlier.

Anybody knows what is this confirmation for?

And how to get rid out of this?

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Better answers are given in a question that was posted later: stackoverflow.com/questions/12622019 – BlueRaja - Danny Pflughoeft Sep 24 '13 at 19:48
up vote 5 down vote accepted

This happens when you refresh a page that is the result of a POST request (as opposed to a GET request).

To avoid it, you can use the POST/redirect/GET pattern.

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I had this issue on a website I made. I ended up doing all of the backend work, then using this code:

header("Location: webpage.php", true, 303);

This clears out any post data and redirects the page so reloading will not cause that message anymore.

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where do I'm supposed to put this code? – Mohammad Faisal Sep 21 '13 at 9:31

This is happening when you refresh a page to which some POST data was sent (for example, when you have completed a form). This question is asking you if you want to re-send that data so, if you made a search the searched term will be sent again to the server. This is dangerous when you completed a form where you have ordering something, so refreshing the page and resending the data will make a new order in that site.

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Sounds like the request to the page was from a POST.

You should use the Post/Redirect/Get pattern.

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Changed the method request type from POST to GET in my search form and got rid of the confirmation box..

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replace the existing code "top.location.reload() " with code "top.location.href=top.location.href" https://support.mozilla.org/en-US/questions/695164

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The way Firefox is giving warning ; saying you're re-submitting form with post method.

below workaround worked for me.

<form id="yourDummyform" method="post" action="yourPostActionURL?var1=val1&var2=val2">

<!--or some hidden variables here -->

</form>

on Success of ajax call or some event do

$("#yourDummyform").submit();
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