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It is a bit hard to describe what a i want so i start with and example:

Index   ArrayPos
1       0,0
2       1,0
3       0,1
4       1,1
5       2,0
6       2,1
7       2,2
8       0,2
9       1,2
10      1,2
11      3,0
12      3,1

and so on. Basically i want to fill the array not row by row or column by column but always the closest free place to 0,0 .

Would be great if duration of the algo would always be the same no matter wether if i want to get the array position for index 3 or 4237882348.

I tried some stuff with modulo but never got it.

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Please reformat your example, it's even harder to understand without proper formatting. –  DarkDust Mar 10 '11 at 12:39
    
thanks jswolf19 for formatting ! –  TobiHeidi Mar 10 '11 at 12:41
    
Why do you have 0,2 after 2,1 and 2,2 (and 3,1 before 0,3)? Why is 1,2 in twice? –  jswolf19 Mar 10 '11 at 12:42
    
I'm not able to understand what you need yet, I don't understand the sequence of ArrayPos –  Trufa Mar 10 '11 at 12:43
2  
I find it hard to figure what "rule" you have in mind to generate the sequence. For instance, why should (1,0) come before (0,1), or (2,2) before (0,2)? –  Nicolas Le Thierry d'Ennequin Mar 10 '11 at 12:48

3 Answers 3

up vote 2 down vote accepted

If you don't care about the order of x, y and y, x, then this should work for you:

let x = ceiling(sqrt(Index)) - 1
let y = ceiling((Index - x^2)/2) - 1
if Index is odd, swap x and y

With this, though 4,4 comes before 5,0, so it depends on the order you want when getting into the larger numbers you don't have in your example...

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ill try that sound great –  TobiHeidi Mar 10 '11 at 13:10
    
tried it works perferct thanks ! –  TobiHeidi Mar 10 '11 at 13:17

If we take the p-norm where p=infinity (aka the maximum norm), which defines distance as the maximum co-ordinate, which looks like your example, then the following works in javascript (although the logic works in whatever language you please):

var i=1, L=0, n=15, x,y;
outer: while (true) {

  for (var j=1; j<=2*L+1; j++) {
    x = j<=L ? L : 2*L+1 - j;
    y = j<=L ? j-1 : L;
    document.write(x+" "+y+"<br/>");
    i++;
    if (i>n) {
      break outer;
    }
  }
  L++;
}

Note, that n is the number of elements you want to print, and you can change the document.write line to do whatever you want with it. So if you wanted to fill your 2d array with values from a single array:

n = oneDimArray.length;

And instead of document.write:

newArray[x][y] = oneDimArray[i];

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If algorithm can remember last position, it will be pretty easy.

You start with a rank number which is 0. For each rank r, there are 2r+1 positions free. So r=0 => one position available which is 0,0, For every rank you generate 2r+1 positions and store in an array. Values are generated by

for each r, loop and start creating positions r,0 - 0,r - r,1 - 1, r ... until r,r So with every new index, use one of the positions created until no free position. Then increment the rank and carry on.

It was not clear which distance measurement is in mind but this works according to the example.

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This would give (4,4) rank 4, before (5,0) rank 5. But (5,0) is closer to (0,0) with Euclidean distance measure. –  Ishtar Mar 10 '11 at 12:56
    
You are right. I will remove mentioning Euclidian but it works according to the example provided. –  Aliostad Mar 10 '11 at 12:58
    
The example does not make much sense, but I agree, this is probably what OP had in mind. –  Ishtar Mar 10 '11 at 13:02

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