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Final Edit: SUCCESS!

As previously stated in my comment below Michael's answer, I was not accounting for the fact I had multiplied the amount of rows by the width of my squares.

The full correct formula to size the canvas and arrange these squares is as follows:

var canvasWidth = squareWidth * Math.ceil(Math.sqrt(numberOfSquares));

var canvasHeight = squareHeight * Math.ceil(numberOfSquares / (Math.ceil(Math.sqrt(numberOfSquares))));

Original Post:

I used to know this and it's something simple that I'm overlooking but I've spent two hours on this one thing now and it's driving me nuts!

Say I have a canvas element in HTML5 and I have four images/squares (all the same size):

[ ][ ][ ][ ]

All I know at this point is their width/height and the amount of squares I have.

What is the formula to set my canvas to the size of these squares when I arrange them like this:

[ ][ ]

[ ][ ]

To be clear, I want to know how many columns there will be, how many rows there will be and the width/height of the canvas to wrap them.

Edit: I forgot to mention that I am trying to get them in powers of two. So, 2,4,8,16,24..etcetc I realise that there will be blank spaces, I don't care about them I simply want to size the canvas to accommodate equal rows on both sides

The equation I've forgotten sorts any number of squares, be it odd,even or just 1

I thought it was something like:

var canvasWidth = (squareWidth*howManySquares)/2;
var canvasHeight = (squareHeight*howManySquares)/2;

This works to an extent but the /2 will half a canvas with only 1 square. I think I tried ceil() at some point but I'm completely muddled up now.

Thank you in advance for any help you can provide.

Edit2:

Thanks to Michael Lawrie, I'm getting closer to the answer.

To be even more clear as to what I'm after (as I forgot there was more than one approach to this..) I want Michael Lawrie's second suggestion, where I find out how many times I can neatly split the squares to make a squre-ish rectangular canvas to try and remove as many empty slots as possible.

his answer was half- correct but he forgot to include the squares width like so:

 canvasWidth = squareWidth * Math.ceil(Math.sqrt(howManySquares));

This one works ( I think? I only tested small numbers so far.. correct me if I'm wrong please) but it's only the width.

I'm now having problems finding the height. copying the width version for boxHeight doesn't work (as expected) and my shoddy attempts at tweaking Michael Lawrie's version yielded no results either..

So I'm still stuck. Ihanks for the help so far, Almost got it!

share|improve this question
    
How would you arrange three images? Three columns and one row? Three rows and one column? Two columns and two rows, with a blank spot? How would you arrange seven images? – Kevin Jun 11 '13 at 15:43
    
Oh, right, I forgot to mention that I am trying to get them in powers of two. So, 2,4,8,16,24..etcetc I realise that there will be blank spaces, I don't care about them I simply want to size the canvas to accommodate equal rows on both sides – Partack Jun 11 '13 at 15:48
    
So seven images will be arranged in a 4x4 square? As in, the first row will have 4 images, the second will have 3, and the remaining two rows will be empty? – Kevin Jun 11 '13 at 15:49
    
@kevin I think Michael Lawrie had it. Looks like it at least.. I'll check later, I have to take a break, my head hurts. – Partack Jun 11 '13 at 15:52
up vote 3 down vote accepted

Assuming you always want a square, even if that square is not full, both the width and height should be Math.ceil(Math.sqrt(number_of_squares)). If you want a rectangle with unequal sides, it's slightly more complicated:

var long_side = Math.ceil(Math.sqrt(number_of_squares));
var short_side = Math.ceil(number_of_squares / long_side);

This gives you the size of your canvas in squares. Multiply by the pixel dimension of your squares to get the final size for your canvas.

share|improve this answer
    
It might just be me, but I think your Math for your second method is slightly wrong, the long side (width) works perfectly but the short side is off.. additionally you forgot to include the width/height of the boxes themselves so implementing this code would return a value of 0 every time as-is. I'll update my question with an update and my shoddy attempt at fixing it, thanks for your answer by the way =) – Partack Jun 11 '13 at 18:00
    
No problem. It shouldn't give you a value of zero unless you have 0 squares. It gives you the dimension of your box in square units; just multiply by your particular pixel width/height to get your canvas dimensions. Can you give me an example of a number of squares where the short side calculation is wrong? – Michael Lawrie Jun 11 '13 at 18:12
    
Certainly =) the Y of the canvas does not go down when there are 3 squares. The code I used is: var canvasHeight = squareHeight * Math.ceil(numberOfSquares / canvasWidth); – Partack Jun 11 '13 at 18:19
1  
Math.ceil(Math.sqrt(3)) == 2; Math.ceil(3/2) == 2. For 3 squares that gives you a 2x2 grid, no? – Michael Lawrie Jun 11 '13 at 18:53
    
A-Ha! That SHOULD give me that answer but i'm using variables not numbers. We both forgot yet again to take into account the width of the squares. The reason it wasn't working is because I was referencing canvasWidth AFTER having multiplied the boxWidth. So the correct line for the height should be: var canvasHeight = boxHeight * Math.ceil(numberOfSquares / (Math.ceil(Math.sqrt(numberOfSquares)))); Thank you very much for your help, I believe my problem is fixed =D – Partack Jun 11 '13 at 19:06

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