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I use ajaxSubmit.

form.ajaxSubmit(successCallback);

I need create wrapper for successCallback.

How to do this?

I tried

form.ajaxSubmit(wrapperCallBack(successCallback));

var wrapperCallBack = function (successCallback) {
        debugger;
        changeState(false);
        successCallback(this);
    };
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1  
@T.J.Crowder jquery.malsup.com/form –  gdoron Mar 29 '13 at 12:09
    
@gdoron: Thanks. I have to say, whoever downvoted your answer was being really harsh. I didn't see anything wrong with it (and was reaching to upvote when it disappeared), perfectly valid answer if Denis needed to do it as a one-off. –  T.J. Crowder Mar 29 '13 at 12:11

1 Answer 1

up vote 3 down vote accepted

You're pretty close:

form.ajaxSubmit(wrapperCallBack(successCallback));

var wrapperCallBack = function (successCallback) {
    return function() {
        changeState(false);
        return successCallback(this);
    };
};

Or as I would prefer to write it:

form.ajaxSubmit(wrapperCallBack(successCallback));

function wrapperCallBack(successCallback) {
    return function() {
        changeState(false);
        return successCallback(this);
    };
}

There, wrapperCallback creates a function to wrap around its argument (the successCallback argument) and returns that function.

Both of those assume you're going to use wrapperCallBack to create wrappers more than once. If you only need a one-off, then you can just use an inline anonymous function:

form.ajaxSubmit(function() {
    changeState(false);
    return successCallback(this);
});
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