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I have a .load() function that I need to convert to .ajax(). I initially used .load() because of its ease of use but now I see that in order to achieve my desired result, I must use .ajax(). Here is my .load() function:

$("#rightframe").click(function(){
    $("#screen").load("form.html #contact");
  });

I want to convert that to .ajax() and add the following piece of code to set a minimum time an .ajax() call would take (this is because I have a loading GIF that looks weird if it doesn't run long enough)

So I found this piece of code when trying to figure out how I can set a minimum length of time the loading GIF would take.

var counter = 2;
function decrement() {
  if (--counter == 0) {
    $('#loader').hide();
  }
}
setTimeout(decrement, 1000);
$.ajax(..., complete: decrement);

Does anyone know how to alter the .load() function to .ajax() and add the decrement function to the .ajax() function?

Thank you,

Katie

share|improve this question
    
Part about decrement is not clear. –  Pit Digger Oct 19 '12 at 15:27
    
sorry for the confusion I have elaborated a bit - thank you for your quick response –  katie bekell Oct 19 '12 at 15:32

1 Answer 1

up vote 2 down vote accepted

I think you'd want something like this:

$("#rightframe").click(function () {
    $("#loader").show();
    setTimeout(function () {
        $.ajax({
            url: "form.html",
            complete: function () {
                $("#loader").hide();
            },
            success: function (data) {
                $("#screen").empty().append($(data).find("#contact"));
            },
            error: function () {
                // Handle an error occurring
            }
        });
    }, 2000);
});

I'm not sure why you are using/need the decrement function, but something like this code should take care of the loading image being shown long enough.

share|improve this answer
    
yea I think this is perfect - I found the decrement code while searching for a solution to my problem. I will give it a shot thanks a lot ianpgall –  katie bekell Oct 19 '12 at 15:36
    
@katiebekell No problem! Yeah, I try to stay away from .load, .post, .get, and the likes, because there's a lot of things assumed. I just like to use .ajax because I customize it almost completely to do exactly what I need. I've seen the syntax .load("form.html #contact") but was never sure what the "#contact" meant - I'm assuming it only grabs the element with the id "contact" from the response in data and loads that into "#screen". Is that right? If so, that's what I put in the success function to do. –  Ian Oct 19 '12 at 15:43
    
yea exactly it grabs the contact id from form thanks a lot –  katie bekell Oct 19 '12 at 18:31
    
hey ianpgall for some reason the code you have given me doesn't load the form into the div but it is certainly working perfectly other wise do you think you could check out the site and tell me what you think is happening? just click on the right picture frame thanks! –  katie bekell Oct 19 '12 at 18:47
1  
@Ian I'm pretty sure you're missing the trailing ) from line 2 after $("#loader". Correct me if I'm wrong. It's a nuance and obviously those using this code would correct that when writing it themselves, but just thought I'd bring it up. –  Michael Dec 30 '13 at 14:18

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