27

I try to get all byte values from a Bitmap(System.Drawing.Bitmap). Therefore I lock the bytes and copy them:

public static byte[] GetPixels(Bitmap bitmap){
    if(bitmap-PixelFormat.Equals(PixelFormat.Format32.bppArgb)){
        var argbData = new byte[bitmap.Width*bitmap.Height*4];
        var bd = bitmap.LockBits(new Rectangle(0, 0, image.Width, image.Height), ImageLockMode.ReadOnly, bitmap.PixelFormat);
        System.Runtime.InteropServices.Marshal.Copy(bd.Scan0, argbData, 0, bitmap.Width * bitmap.Height * 4);
        bitmap.UnlockBits(bd);
    }
}

I tested this Image with a very simple 2x2 PNG image with pixels (red, green, blue, white) that I created in Photoshop. Because of the format, I expected the following values within the argbData:

255 255   0   0    255 0   255   0 
255 0     0 255    255 255 255 255 

But I got:

0     0 255 255     0 255   0 255
255   0   0 255   255 255 255 255

But this is a BGRA format. Does anybody know why the bytes seems swapped? By the way, when I use the image directly for a Image.Source as shown below, the Image is shown correctly. So what's my fault?

<Image Source="D:/tmp/test2.png"/>
47

Pixel data is ARGB, 1 byte for alpha, 1 for red, 1 for green, 1 for blue. Alpha is the most significant byte, blue is the least significant. On a little-endian machine, like yours and many others, the little end is stored first so the byte order is bb gg rr aa. So 0 0 255 255 equals blue = 0, green = 0, red = 255, alpha = 255. That's red.

This endian-ness order detail disappears when you cast bd.Scan0 to an int* (pointer-to-integer) since integers are stored little-endian as well.

| improve this answer | |
  • 5
    Excelent! I can only add that you can check the byte order ("endianness") in which data is stored in this computer architecture via the BitConverter.IsLittleEndian field. – DmitryG Nov 12 '11 at 13:02
  • 2
    That's a good point about BitConverter.IsLittleEndian, but I think @HansPassant's comment about endian-ness is really valuable - this is another place where the endian-ness should not be considered. Here's a great article about this topic.. – Jonno Aug 6 '15 at 12:07
3

In Bpp32Argb pixel format. You dont' need to byte-by-byte access.

Trun Scan0 to an Int32 pointer in unsafe context.

unsafe
{
    var ptr=(int*)bmData.Scan0;
}

You can do some bit operation like below To access color channels of first pixel.

And dont need to care byte-order.

var a=(ptr[0] & 0xFF000000)>>24;
var r=(ptr[0] & 0x00FF0000)>>16;
var g=(ptr[0] & 0x0000FF00)>>8;
var b=(ptr[0] & 0x000000FF);

BTW you can work with Color.ToArgb() returned int easily.

| improve this answer | |
  • 2
    The accepted answer already mention this, but unfortunately you can't use unsafe code in some circumstances. For instances, I worked for several companies that doesn't allow unsafe code at all. – 0xBADF00D Jan 11 '17 at 7:09
  • 1
    I'm just glad you mentioned the ToArgb() - saved me quite a bit of time. :) – Eric Nov 10 '18 at 2:58
1

AFAIK it is technically based on COLORREF (which is used in Windows GDI/GDI+ everywhere) and that is stored RGBA in memory... see http://msdn.microsoft.com/en-us/library/dd183449%28VS.85%29.aspx

| improve this answer | |
  • if I understand the page, that means every time I ready RGB, that is not real byteorder. It is always means BGR? Or is there a kind of flag indicating this? – 0xBADF00D Nov 12 '11 at 12:50

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