0

I've got two functions, one is called as soon as a button is triggered, the other one when the "process" triggered by the button is finished. I would like to to load the JSON data from the AJAX request in the calculatePrize() function to reduce loading time at the end of function Finish()

function calculatePrize() {
    // ...some code goes here
    // I would like to load the AJAX data already here and just parse it in the "finish Function"
}

function Finish() {
    // retrieve win
    $.getJSON("/generate").done(function(data){
        // console.log(data.state)
        // set the win amount
        amount_field.append( document.createTextNode(data.win_amount));
    });
}

How to do so in the best way?

3
  • Use Nested Ajax for this approach Jun 13 '16 at 7:08
  • It's hard to help you as you've not given enough code, but a general idea would be to do the work required in calculatePrize() and make the AJAX request, storing the result in a variable accessible to both functions, along with a flag to state the request has completed. Then you can use that data when the Finish() function is called. Jun 13 '16 at 7:15
  • I just need to load AJAX call in the first function and store result in a var. After this I just need to be able to call this var in the last function.
    – peke_peke
    Jun 13 '16 at 7:20
1

You can just call the calculatePrize function from the Ajax Done - and pass the data as parameter

function calculatePrize(responsData) {
     console.log(responseData);
}

function Finish() {
    // retrieve win
    $.getJSON("/generate").done(function(data){

       // Call the function - pass the data as parameter
       calculatePrize(data);

    });
}

OR

store the data in a global variable and access in the calculatePrize function

    var responseData = null;

    function calculatePrize() {
         console.log(responseData);
    }

    function Finish() {
        // retrieve win
        $.getJSON("/generate").done(function(data){

           responseData = data;

           // Call the function 
           calculatePrize();

        });
    }

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.