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How can i generate dynamically this array.

var posX:Array = [0,-20,20,-40,0,40,-60,-20,20,60,-80,-40,0,40,80,-100,-60,-20,20,60,100]

The numbers in the array refer to the x position of the object. I use it to place objects in triangular formation.

     0
   -20 20
  -40 0 40
-60 -20 20 60 etc

Thank you in advance

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up vote 1 down vote accepted
var d:Number = 20;
var a:Array = [];
for(var i:Number = 0; i < 6; i++)
{
    for(var j:Number = 0; j <= i; j++)
    {
    	a.push(d * (2 * j - i));
    }
}
trace(a.join());

The first number of each row is the negative of the zero-based-row-index times d : which is - i * d
Each subsequent number in a row exceeds the previous one by 2*d. Hence subsequent numbers = first-element + 2 * d * zero-based-index-within-the-row

Which is = - i * d + 2 * d * j = d * (2 * j - i)

share|improve this answer
    
var start is never used – jk. Nov 30 '09 at 12:34
    
I started with start = -i * d; and so on... Cleaned up the code and added a little explanation. – Amarghosh Nov 30 '09 at 12:48
    
Thank you!!! Thank you all!!! – chchrist Nov 30 '09 at 13:12
    
Can anyone rename the title of the question in order for others to find this solution easier. My am not fluent in english... – chchrist Nov 30 '09 at 13:14

This code outputs subsequent elements of your array for ten row of your triangular formation:

var x:int;
var y:int;
for (y = 0; y < 10; y++) {
	for (x = 0; x < y + 1; x++) {
		trace(20 * ( -y + 2 * x));
	}
}
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I don't know actionscript but pseudocode is like this:

for (row=0; ; row++)
{
   maxVal=20*row;
   for (val=-maxVal;val<=maxVal;val+=40)
    posX.append(val);
}
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The Code for each row in f# :

let StepN n = 
    let n = -(n*20)
    [
    for x in [n..40..-n] do
        yield x
    ]
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