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 need a way to calculate the width and height values of an image when resized to 1024px

The largest value of the image, height or width will be resized to 1024px and I need to figure out the remaining width or height value.

An image (3200 x 2400px) converts to (1024 x 768px) when resized.

This needs to be dynamic as some images will be portrait and some landscape.

Can anyone suggest how I'd work a solution into the following:

<msxsl:script language="C#" implements-prefix="emint">
    <![CDATA[public string GetExtension(string fileName)
      { 
      string[] terms = fileName.Split('.');
      if (terms.Length <= 0)
      {
      return string.Empty;
      }
      return terms[terms.Length -1];
      }

      public string GetFileName(string fileName)
      { 
      string[] terms = fileName.Split('/');
      if (terms.Length <= 0)
      {
      return string.Empty;
      }
      return terms[terms.Length -1];
      }

      public string GetFileSize(Decimal mbs)
      { 
      Decimal result = Decimal.Round(mbs, 2);
      if (result == 0)
      {
      result = mbs * 1024;
      return Decimal.Round(result, 2).ToString() + " KB";
      }
      return result.ToString() + " MB";
      } 

      public string GetCentimeters(Decimal pix)
      {
      Decimal formula  = (decimal)0.026458333;
      Decimal result = pix * formula;
      return Decimal.Round(result,0).ToString();
      }]]>
  </msxsl:script>
share|improve this question
    
possible duplicate of How to "smart resize" a displayed image to original aspect ratio –  PleaseStand Apr 19 '11 at 2:32

2 Answers 2

up vote 2 down vote accepted
          width = 1024;
          height = 768;

          ratio_orig = width_orig/height_orig;

          if (width/height > ratio_orig) {
             width = height*ratio_orig;
          } else {
             height = width/ratio_orig;
          }

The values of width and height at the end correspond to the width and height of the image. This maintains the aspect ratio.

share|improve this answer

Here's an algorithm in pseudocode. It will choose the largest possible size (less than 1024x1024px) that has the same width/height ratio as the original image.

target_width = 1024
target_height = 1024

target_ratio = target_width / target_height
orig_ratio = orig_width / orig_height

if orig_ratio < target_ratio
    # Limited by height
    target_width = round(target_height * orig_ratio)
else
    # Limited by width
    target_height = round(target_width / orig_ratio)
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.