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 have N squares. I have a Rectangular box. I want all the squares to fit in the box. I want the squares to be as large as possible.

How do I calculate the largest size for the squares such that they all fit in the box?

This is for thumbnails in a thumbnail gallery.

int function thumbnailSize(
    iItems, // The number of items to fit.
    iWidth, // The width of the container.
    iHeight, // The height of the container.
    iMin // The smallest an item can be.
)
{
    // if there are no items we don't care how big they are!    
    if (iItems = 0) return 0;

    // Max size is whichever dimension is smaller, height or width.
    iDimension = (iWidth min iHeight);

    // Add .49 so that we always round up, even if the square root
    // is something like 1.2.  If the square root is whole (1, 4, etc..)
    // then it won't round up.
    iSquare = (round(sqrt(iItems) + 0.49));

    // If we arrange our items in a square pattern we have the same
    // number of rows and columns, so we can just divide by the number
    // iSquare, because iSquare = iRows = iColumns.
    iSize = (iDimension / iSquare);

    // Don't use a size smaller than the minimum.
    iSize = (iSize max iMin);

    return iSize;
 }

This code currently works OK. The idea behind it is to take the smallest dimension of the rectangular container, pretend the container is a square of that dimension, and then assume we have an equal number of rows and columns, just enough to fit iItems squares inside.

This function works great if the container is mostly squarish. If you have a long rectangle, though, the thumbnails come out smaller than they could be. For instance, if my rectangle is 100 x 300, and I have three thumbnails, it should return 100, but instead returns 33.

share|improve this question
    
What language is that? –  Jonathan Feinberg Oct 15 '09 at 23:09
    
Language shouldn't matter, looks more like a math question to me. I wish I had time to answer right now. –  Mark Ransom Oct 15 '09 at 23:14
    
The language I use is Visual Dataflex. However, it is not like anything you probably have ever seen, so I typed this out instead. I know it probably wouldn't compile or run in any language but was shooting for something close to PHP or C++/JS. Also, Visual Dataflex is VERY verbose, not well suited to posting short snippets. –  Jake Oct 15 '09 at 23:22
    
Once you know the width each thumbnail can be calculate the number of rows that you need and then stretch the height to fill the box. –  Brandon Haugen Oct 15 '09 at 23:27

5 Answers 5

up vote 2 down vote accepted

Probably not optimal (if it works which I haven't tried), but I think better than you current approach :

w: width of rectangle

h: height of rectangle

n: number of images

a = w*h : area of the rectangle.

ia = a/n max area of an image in the ideal case.

il = sqrt(ia) max length of an image in the ideal case.

nw = round_up(w/il): number of images you need to stack on top of each other.

nh = round_up(h/il): number of images you need to stack next to each other.

l = min(w/nw, w/nh) : length of the images to use.

share|improve this answer
    
A quick run through in my spreadsheet and I believe we have a winner! Give me one moment to put this in my program and test it out. –  Jake Oct 16 '09 at 0:20

you want something more like

n = number of thumbnails x = one side of a rect y = the other side l = length of a side of a thumbnail

l = sqrt( (x * y) / n )

share|improve this answer
    
Just tried a quick experiment: 900 x 900 rectangle with 8 items. Length = 318. 3 rows and 3 cols means you are at 954 pixels wide, which is bigger than the rectangle. –  Jake Oct 15 '09 at 23:53
    
ahhh, yes, just need to scale it to the min fitting scale as the poster below does –  Keith Nicholas Oct 16 '09 at 0:29

Here is my final code based off of unknown (google)'s reply: For the guy who wanted to know what language my first post is in, this is VisualDataflex:

Function ResizeThumbnails Integer iItems Integer iWidth Integer iHeight Returns Integer
    Integer iArea iIdealArea iIdealSize iRows iCols iSize  
    // If there are no items we don't care how big the thumbnails are!
    If (iItems = 0) Procedure_Return
    // Area of the container.
    Move (iWidth * iHeight) to iArea
    // Max area of an image in the ideal case (1 image).
    Move (iArea / iItems) to iIdealArea
    // Max size of an image in the ideal case.
    Move (sqrt(iIdealArea)) to iIdealSize
    // Number of rows.
    Move (round((iHeight / iIdealSize) + 0.50)) to iRows
    // Number of cols.
    Move (round((iWidth / iIdealSize) + 0.50)) to iCols
    // Optimal size of an image.
    Move ((iWidth / iCols) min (iHeight / iRows)) to iSize
    // Check to make sure it is at least the minimum.
    Move (iSize max iMinSize) to iSize
    // Return the size
    Function_Return iSize
End_Function
share|improve this answer

This should work. It is solved with an algorithm rather than an equation. The algorithm is as follows:

  • Span the entire short side of the rectangles with all of the squares
  • Decrease the number of squares in this span (as a result, increasing the size) until the depth of the squares exceeds the long side of the rectangle
  • Stop when the span reaches 1, because this is as good as we can get.

Here is the code, written in JavaScript:

function thumbnailSize(items, width, height, min) {

  var minSide = Math.min(width, height),
      maxSide = Math.max(width, height);

  // lets start by spanning the short side of the rectange
  // size: the size of the squares
  // span: the number of squares spanning the short side of the rectangle
  // stack: the number of rows of squares filling the rectangle
  // depth: the total depth of stack of squares
  var size = 0;
  for (var span = items, span > 0, span--) {
    var newSize = minSide / span;
    var stack = Math.ceil(items / span);
    var depth = stack * newSize; 
    if (depth < maxSide)
      size = newSize;
    else 
      break;
  }
  return Math.max(size, min);
}
share|improve this answer

In Objective C ... the length of a square side for the given count of items in a containing rectangle.

int count = 8;    // number of items in containing rectangle
int width = 90;   // width of containing rectangle
int height = 50;  // width of container
float sideLength = 0; //side length to use.


float containerArea = width * height;
float maxArea = containerArea/count;
float maxSideLength = sqrtf(maxArea);  
float rows = ceilf(height/maxSideLength);   //round up
float columns = ceilf(width/maxSideLength); //round up

float minSideLength = MIN((width/columns), (height/rows));
float maxSideLength = MAX((width/columns), (height/rows));

// Use max side length unless this causes overlap 
if (((rows * maxSideLength) > height) && (((rows-1) * columns) < count) ||
    (((columns * maxSideLength) > width) && (((columns-1) * rows) < count))) {
    sideLength = minSideLength;
}
else {
    sideLength = maxSideLength;
}
share|improve this answer

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.