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I have an input field. When the page is loaded, if input is pre-populated, then make AJAX call. Otherwise, wait until input field change to make AJAX call.

My AJAX call is quite complicated, so I want these two scenarios to share the same function.

Here is my implementation (pseudo code):

 function checkInput { $.ajax(... complex logic goes here ...); }

  $(document).ready(function() {
    if (!!$("#input").val()) {
      checkInput();    
    }
  });

  $("#input").change(checkInput());

Problem is, the function checkInput is invoked right away.

How can I avoid this problem?

Thank you.

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2 Answers 2

up vote 2 down vote accepted

Pass the function, don't invoke it

 $("#input").change(checkInput);

When you're doing checkInput() you are invoking the checkInput function. In JavaScript functions are first class objects, you can pass them around just like any other type.

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Thanks a lot, Ben. It explains a lot. I was scratching my head for couple hours now. –  AdamNYC Mar 19 '13 at 0:48
    
^^ @Benjamin G ++ –  Zak Mar 19 '13 at 0:49
    
@AdamNYC Glad I could help! Note, this is in-fact what you're already doing when you're doing $(document).ready in jQuery, you're passing a function to it (to execute when the DOM is ready, the only difference is that that function is anonymous. –  Benjamin Gruenbaum Mar 19 '13 at 0:50
    
Ah, I see. Thanks again. –  AdamNYC Mar 19 '13 at 1:09

The reason for the function being invoked immediately is that the expression is evaluated when reached here:

$("#input").change(checkInput());

Note that the callback function checkInput() executes in order to be evaluated. Another approach would be to do this:

$("#input").change(function(){checkInput();});

Which will allow the function to be run when called instead of when first wired up as an event.

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Thanks Travis. It makes a lot of sense too. –  AdamNYC Mar 19 '13 at 1:03

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