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from my main class i call to create a sprite and add it to the stage

private function addSwatch(evt:MouseEvent):void
 {
 if (stage.getObjectsUnderPoint(mousePoint()).length == 0)
  {
  var swatchSide:Number = 100;
  var newSwatch:Sprite = new Swatch(0 - swatchSide/2, 0 - swatchSide/2, swatchSide, swatchSide);
  newSwatch.x = mouseX;
  newSwatch.y = mouseY;
  addChild(newSwatch);
  }
 }

i've added a swatch sprite to the stage which, when dragged, is contained within set boundaries.

this.startDrag(false, swatchBounds());

...

private function swatchBounds():Rectangle
 {
 var stageBounds = new Rectangle ( 
         0 - defaultSwatchRect.x,
         0 - defaultSwatchRect.y,
         stage.stageWidth - defaultSwatchRect.width,
         stage.stageHeight - defaultSwatchRect.height
         );
 return stageBounds;
 }

if the square sprite is scaled, the following returned rectangle boundary works

private function swatchBounds():Rectangle
 {
 var stageBounds = new Rectangle ( 
         0 - defaultSwatchRect.x * swatchObject.scaleX,
         0 - defaultSwatchRect.y * swatchObject.scaleY,
         stage.stageWidth - defaultSwatchRect.width * swatchObject.scaleX,
         stage.stageHeight - defaultSwatchRect.height * swatchObject.scaleY
         );
 return stageBounds;
 }

now i'm trying to include the square sprites rotation into the mix. math certainly isn't my forté, but i feel i'm on the write track. however, i just can't seem to wrap my head around it to get it right

private function swatchBounds():Rectangle
 {
 var stageBounds = new Rectangle ( 
         0 - defaultSwatchRect.x * swatchObject.scaleX * Math.cos(defaultSwatchRect.x * swatchObject.rotation),
         0 - defaultSwatchRect.y * swatchObject.scaleY * Math.sin(defaultSwatchRect.y * swatchObject.rotation),
         stage.stageWidth - defaultSwatchRect.width * swatchObject.scaleX * Math.cos(defaultSwatchRect.width * swatchObject.rotation),
         stage.stageHeight - defaultSwatchRect.height * swatchObject.scaleY * Math.sin(defaultSwatchRect.height * swatchObject.rotation)
         );
 return stageBounds;
 }
share|improve this question
    
what is this defaultSwatchRect and what does it mean? –  jonathanasdf Apr 13 '10 at 3:17
    
oh, yeah that's confusing. sorry. it's the same as swatchObject (at this point). defaultSwatchRect are the passed in parameters for the site to create the swatchObject. i've edited my post so you can hopefully see what i mean –  TheDarkIn1978 Apr 13 '10 at 3:24
    
the edit did not really help clarify what defaultSwatchRect does... –  jonathanasdf Apr 13 '10 at 3:35
    
sorry about that. it's been a long day. defaultSwatchRect (x, y, width, and height) are the passed in arguments to the Swatch constructor, which are used to create the size of the swatchObject. there will be other objects and sprites added to the Swatch class' display list that rely on these passed in arguments. –  TheDarkIn1978 Apr 13 '10 at 3:56
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1 Answer 1

up vote 1 down vote accepted

My idea is that instead of using complicated trig, just get the bounding rect of swatchObject using swatchObject.getRect() and then create your stageBounds based on that. It should be more than good enough for your purposes.

If that is not what you want, I can help you figure out the math.

And sorry, I can't really give you a function until I figure out what defaultSwatchRect is - where its x and y is and what it's supposed to do.

Another thing you may want to keep in mind for the future: the Math functions (cos, sin) expect the angle in radians, whereas the .rotation property is in degrees, so you must convert before using.

share|improve this answer
    
ridiculous! lol. that is unbelievably way easier than what i've been trying to do all day. thanks a million! –  TheDarkIn1978 Apr 13 '10 at 3:40
    
the result is sometimes quite a lot simpler than you thought it'd be :) and in other cases quite a lot harder. –  jonathanasdf Apr 13 '10 at 3:45
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