0

Given a webapp with ajax navigation, you intend to make use of html5's history navigation.

But: binding onto the popstate event it is not triggered. Excep on page load, when it is:

If HTML5 available (it is detected correctly, demos do work as well in Chrome as FF):

// Callback
function historyChangeHandler(data) {
    console.log(data);
}

// Bind
$(window).bind('popstate', historyChangeHandler);


// Trigger
$("a").click(function(e) {
    var url = "/";
    // ...
    console.log("clicked");
    history.pushState({url: url}, "", url);
    return false;
});

What does not work:

  • The popstate callback historyChangeHandler() is NOT called when clicking on a link. That is, clicked is printed, but not the event.

What I tried:

  • Defer the pushState call with setTimeout.
  • e.preventDefault(); and return true instead of false
  • Also attach to div-s and return true

What does work:

  • historyChangeHandler() is called on page load.
  • historyChangeHandler() is called on pushing the back button.
  • historyChangeHandler() is called on pushing the forward button.
  • historyChangeHandler() if calling history.pushState({url: "/test"}, "", "/test") from the console!

Any clues I miss?

2

popstate isn't supposed to be called when you click the link. It's called when the user navigates with the back/forward button.

Everything is working the way it is supposed to.

2
  • See the code, pushState is called when clicking links, that' why I'm expecting it.
    – sibidiba
    Jun 1 '12 at 8:39
  • 2
    You call pushState, and you expect that to immediately trigger a popState? That makes no sense. Regardless of what you expect, and whether or not you like the answer, it's still working the way it's supposed to. Jun 2 '12 at 7:36
1

Why do you need the popstate event to fire? Why not just call your function?

$("a").click(function(e) {
    var url = "/";
    // ...
    console.log("clicked");
    history.pushState({url: url}, "", url);
    historyChangeHandler({url: url});
    return false;
});

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.