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This is very simple i am sure but i am new to jquery and am kinda stuck.

I wrote this code which works perfectly:

function engageMaps(){
  $(".destinations #cancun").hover(
    function () {
      $(".image_map #cancunPin").addClass("active");
    },
    function () {
      $(".image_map #cancunPin").removeClass("active");
    }
  );
};

Then I tried to break items out into variables to make it more flexible but can't get it to work. I wrote this:

function engageMaps(){
  var $destination = $(".destinations #cancun");
  var pin = $(".image_map #cancunPin");
  $destination.hover(
    function () {
      $pin.addClass("active");
    },
    function () {
      $pin.removeClass("active");
    }
};

This should be exactly the same as the first code block. Any help is much appreciated thanks

share|improve this question
    
What exactly is the error? –  asawyer May 25 '12 at 18:11
    
your variable is $pin in one place and pin in another. –  jbabey May 25 '12 at 18:12

3 Answers 3

up vote 6 down vote accepted

You are missing ); for .hover..

$destination.hover(
   function () {
     $pin.addClass("active");
   },
   function () {
     $pin.removeClass("active");
   }
);

Also you missed $. See below.

var $pin = $(".image_map #cancunPin");

Full code:

function engageMaps(){
  var $destination = $(".destinations #cancun");
  var $pin = $(".image_map #cancunPin"); //Added $ to pin var name as that is how it is referenced below

  $destination.hover(
    function () {
      $pin.addClass("active");
    },
    function () {
      $pin.removeClass("active");
    }
   ); //this was missing
} //removed semicolon as it is not necessary
share|improve this answer
    
Also, the variable pin doesn't have a dollar sign when it is initialized and does when called, they are different variables. –  Rob Lowe May 25 '12 at 18:12
    
@RobLowe Corrected. Thanks –  Vega May 25 '12 at 18:13
    v---------- You forgot this
var $pin = $(".image_map #cancunPin");

And also you are missing ); for .hover.

So, the final version of the code:

function engageMaps() {
    var $destination = $(".destinations #cancun");
    var $pin = $(".image_map #cancunPin");
    $destination.hover(
        function() {
            $pin.addClass("active");
        }, function() {
            $pin.removeClass("active");
        }
    );
};​
share|improve this answer
$destination.hover(
    function () {
      $pin.toggleClass("active");
    });

So complete code is:

function engageMaps(){
  var $destination = $(".destinations #cancun");
  var $pin = $(".image_map #cancunPin"); // you use pin instead of $pin
  $destination.hover(
    function () {
      $pin.toggleClass("active");
  });
};
share|improve this answer
    
I am curious to see how hover and toggleClass will work.. like mouseenter first time addClass.. mouseout nothing happens.. then mouseenter again and toggleClass will removeClass.. This is not a desired effect. I don't think toggleClass works as intended with hover. –  Vega May 25 '12 at 18:40
    
@Vega see this jsfiddle.net/QStkd/58 –  thecodeparadox May 25 '12 at 18:41
    
Nevermind.. not sure how it works.. seems to be working.. –  Vega May 25 '12 at 18:46
    
@Vega no, no, its ok. I'm here to learn and help. what's your think about this behavior of hover. –  thecodeparadox May 25 '12 at 18:49
    
My assumption was wrong.. hover with one function argument will be a handlerInOut(eventObject) - Which is a function to execute when the mouse pointer enters or leaves the element. So now it all makes sense. –  Vega May 25 '12 at 18:52

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