Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to take one side of a rectangle and skew the side based on degree/angle.

enter image description here

share|improve this question
1  
How's your trig? That's a parallelogram, BTW. –  Cameron Jun 7 '12 at 3:03
add comment

3 Answers

up vote 4 down vote accepted

I whipped up some code for you
Any questions just ask.

import flash.geom.Matrix;

var temp_matrix = new Matrix();

var square:Sprite = new Sprite();
addChild(square);
square.graphics.lineStyle(3,0x000000);
square.graphics.drawRect(0,0,200,100);
square.graphics.endFill();

var angle:Number = -10; // the angle of degrees
temp_matrix.b = Math.PI * 2 * angle / 360;// y skew
//temp_matrix.c = Math.PI * 2 * angle / 360;// x skew

var sourceMatrix:Matrix = square.transform.matrix;// get existing matrix
sourceMatrix.concat(temp_matrix); // apply skew to existing matrix
square.transform.matrix = temp_matrix;// assign the new skew

square.x = 100
square.y = 100

[SECOND ROUND]

var trapezium:Sprite = new Sprite();
addChild(trapezium);
trapezium.x = 100;
trapezium.y = 100;

var dir:Boolean = true;
var side:Boolean = true;
var angle:Number = 0; // the angle of degrees
var w:Number = 300;
var h:Number = 80;


var timer:Timer = new Timer(16);
timer.addEventListener( TimerEvent.TIMER, tick );
timer.start();

function tick(e:TimerEvent):void{
    var radians:Number = Math.PI/180*angle;
    trapezium.graphics.clear();
    trapezium.graphics.beginFill(0x000000)
    if( side){
        // long side is right side
        trapezium.graphics.lineTo(w,0);
        trapezium.graphics.lineTo(w,radians*w+h);
        trapezium.graphics.lineTo(0,h);
        trapezium.graphics.lineTo(0,0);
    }else{
        trapezium.graphics.lineTo(w,0);
        trapezium.graphics.lineTo(w,h);
        trapezium.graphics.lineTo(0,radians*w+h);
        trapezium.graphics.lineTo(0,0);
    }
    trapezium.graphics.endFill();
    if(angle>=10){
        dir = false;
    }
    if(angle<=0){
        dir = true;
    }
    if(dir){
        angle = angle+.2;
    }else{
        angle = angle-.2;
    }
    if( Math.floor(angle*10) <= 0 ){
        side = !side;
    }
}
share|improve this answer
    
Hi this is a lot of help! Thanks so much. Unfortunately it must be my bed time because I was a bit unclear on what I originally wanted. I just edited the post so check it out. –  Tom Jun 7 '12 at 5:45
    
Lol that is very different then your original picture you posted. For that you can't use the matrix you have to draw it. Lets see if i can come up with something. –  The_asMan Jun 7 '12 at 6:06
    
Yeah, I wanted to get one part down and try to figure out the rest. I'm going to mark you as correct anyways, since you had what was originally called for. –  Tom Jun 7 '12 at 6:18
1  
I created something that mimics your posted gif again lol. The code is sloppy but you will at least get the usage. –  The_asMan Jun 7 '12 at 8:32
add comment

Take the tangent of the angle and multiply by the width of the rectangle to get the delta y for the bottom axis so you would have

[x1,y1] as the origin of the rectangle (which never changes)

[x1+length, y1+deltaY] as the right bottom corner

share|improve this answer
    
+1. I just want to clarify that the width as used here is the final left-to-right width of shape, not the length of the bottom segment (which is, in fact, longer). –  Cameron Jun 7 '12 at 3:55
    
Thanks for the help, I'm going to try this now! –  Tom Jun 7 '12 at 4:07
    
Hi this is a lot of help! Thanks so much. Unfortunately it must be my bed time because I was a bit unclear on what I originally wanted. I just edited the post so check it out. –  Tom Jun 7 '12 at 5:45
add comment

Don't know AS, but after editing this looks like filled polygon with vertices:

P0 =(X0, Y0)
P1 = (X1, Y0)
if Angle >= 0 then
  P2 = (X1, Y1)
  P3 = (X0, Y1 + (X1-X0) * Tan(Angle))
else
  P2 = (X1, Y1 - (X1-X0) * Tan(Angle))
  P3 = (X0, Y1)
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.