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Im sort of new to this, but I was wondering how I can grab the data (ie:shapeID) from this function and pass it on to other functions making it a global variable.

$('.shapes li').click(function(shapeId){
    var shapeId = $(this).find('a').attr('id');
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');
});

thanks

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5 Answers 5

up vote 2 down vote accepted

You can use a callback:

$('.shapes li').click(function(){
    var shapeId = $(this).find('a').attr('id');
    setShapeID(shapeID);
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');
});

function setShapeID(id){
   shapeID = id; //<<in global namespace
}

Then in any other function if you want to use it check if it is defined:

if(shapeID !== undefined){
    //use it!
}

The above is under assumption that you want to pollute the global namespace.

If you do not want to do that, then you can use an object to hold your id:

var IDs = {
    shape: null
}

$('.shapes li').click(function(){
    var shapeId = $(this).find('a').attr('id');
    IDs.shape = shapeID; //<<set the shapeID
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');
});

Then outside you can use the shapeID easily by doing IDs.shape

share|improve this answer
    
+1 for fixing it so it works :) –  Paulpro Aug 24 '11 at 18:37
    
@PaulPRO -- although mine did not have the same issue as the others :-P. mine was not doing the same thing, so mine always worked :-P –  Neal Aug 24 '11 at 18:38
    
lol good point, I didn't really look carefully to see what you were doing lol, just read that you fixed it below :) Still your answer works, and it probably is better to not store an Event object in a variable called shapeId haha –  Paulpro Aug 24 '11 at 18:40
    
@PaulPRO :-P ha –  Neal Aug 24 '11 at 18:41
    
@Neal this is so awesome. Exactly what I was looking for. Im trying to take the data from all my functions and merge them into a json array :D –  Robert Aug 24 '11 at 19:48

Just declare shapeId outside of the function:

var shapeId = null;

$('.shapes li').click(function(){
    shapeId = $(this).find('a').attr('id');
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');
});
share|improve this answer
    
-1 because someone upvoted it even though it doesn't work since you still create a local copy of shapeId in the function arguments. –  Paulpro Aug 24 '11 at 18:29
    
@PaulPRO -- no you don't, why do you think that? you are not re-declaring var shapeID –  Neal Aug 24 '11 at 18:31
    
@Neal, Try running this short code in a console: var x = 12; (function(x){ x = 10;})(); alert(x); It alerts 12. The inner function doesn't change the global x when it's declared locally. That's exactly what happens here. See my answer below... –  Paulpro Aug 24 '11 at 18:33
    
@PaulPro -- thats something completely different lol –  Neal Aug 24 '11 at 18:33
1  
Didn't notice the argument to the handler function. That's what I get for copy-pasting so haphazardly. –  FishBasketGordo Aug 24 '11 at 18:42

The other answers have it right except for it to work you also have to remove shapeId from your function arguments list. It doesn't make any sense there anyways since it just assigns an Event object to it and then you overwrite it write away.

Change:

$('.shapes li').click(function(shapeId){
    var shapeId = $(this).find('a').attr('id');

To:

var shapeId; // shapeId in outer scope
$('.shapes li').click(function(){
    shapeId = $(this).find('a').attr('id');
share|improve this answer
    
Thank you All! You all made my day. –  Robert Aug 24 '11 at 19:09
    
@Robert You are welcome :) –  Paulpro Aug 24 '11 at 19:14

If you want to access ShareId outside of your function just declare it outside of the function:

var shapeId;
$('.shapes li').click(function(shapeId){
    shapeId = $(this).find('a').attr('id');
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');
});

function whatever(){
   alert(shapeId);
}
share|improve this answer
    
shareID? don't you mean shapeID? –  Neal Aug 24 '11 at 18:29

Instead of making it a real global variable perhaps you can wrap it in an anonymous function?

(function($) {
  var shapeId;
  $('.shapes li').click(function(){
    shapeId = $(this).find('a').attr('id');
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');

    myfunction();
  });

  function myfunction()
  {
      console.log(shapeId);
  }
})(jQuery);

Or call the function from within the current function:

  $('.shapes li').click(function(){
    var shapeId = $(this).find('a').attr('id');
    var shapeImg = $(this).find('img');
    step2.find('div.wrapper').attr('id', shapeId);
    shapeImg.clone().appendTo('#step2 .model', '#results .model');
    step1.fadeOut('500',shownext);
    step2.find('.waist_box').show();
    step2.find('.hotspots #waist').addClass('active');

    myfunction(shapeId);
  });

  function myfunction(theId)
  {
    console.log(theId);
  }
share|improve this answer
1  
in that second one you are still creating the global variable! –  Neal Aug 24 '11 at 18:28
    
@Neal: no I'm not ;) thanks –  PeeHaa Aug 24 '11 at 18:30
1  
ha, edit monster! –  Neal Aug 24 '11 at 18:30

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