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 simply need a function which takes two colors and returns the mixed version of them. It should mix them in the same way that GDI does.

I figured that the alpha value you get when mixing two ARGB colors in GDI is calculated like this:

Private Function blend(alphaBelow As Single, alphaAbove As Single) As Single
    Return alphaBelow + (1.0 - alphaBelow) * alphaAbove
End Function

I also found this page where Microsoft says that the R, G and B values are calculated using this formula:

displayColor = sourceColor × alpha / 255 + backgroundColor × (255 – alpha) / 255

however, I can't get that to work:

Color1:          A=164, R=111, G=78, B=129
Color2:          A=241, R=152, G=22, B=48
Blended in GDI:  A=250, R=150, G=24, B=50

R:
150 = 152 * x / 255 + 111 * (255 - x) / 255
x = 9945/41 = 242.5609756097560975609756097561

G:
24 = 22 * x / 255 + 78 * (255 - x) / 255
x = 6885/28 = 245.89285714285714285714285714286

B:
50 = 48 * x / 255 + 129 * (255 - x) / 255
x = 6715/27 = 248.7037037037037037037037037037

As you can see, I get different alpha values for each of the R, G and B values. How is this number calculated?

EDIT:

Color1 and Color2 is just some random ARGB colors I want to mix together. "Blended in GDI" is what you get if you draw them on top of eachother in a bitmap.

The code which mixes the colors with GDI:

    Dim B As New Bitmap(Width, Height, Imaging.PixelFormat.Format32bppPArgb)
    Dim G = Graphics.FromImage(B)
    Dim w = B.Width - 1, h = B.Height - 1

    G.SmoothingMode = Drawing2D.SmoothingMode.AntiAlias

    Dim pth As New Drawing2D.GraphicsPath
    pth.AddRectangle(New Rectangle(0, 0, w, h))

    Dim c1 = RandomColor(), c2 = RandomColor()
    G.FillPath(New SolidBrush(c1), pth)
    G.FillPath(New SolidBrush(c2), pth)

    Dim resoult As Color = B.GetPixel(w / 2, h / 2)
share|improve this question
1  
Can you explain exactly how you obtained the numbers in the first table. –  David Heffernan Jun 9 '13 at 22:26
    
Color1 and Color2 is just some random ARGB colors I want to mix together. "Blended in GDI" is what you get if you draw them on top of eachother in a bitmap. –  BlackCap Jun 9 '13 at 22:28
    
How exactly did you "draw them on top of each other". Some code would ensure that we know exactly what you are talking about. –  David Heffernan Jun 9 '13 at 22:33
1  
You've got two alpha values to deal with, your formula only uses one. It also isn't clear if the sample RGB values you used are pre-multiplied, as would happen in a pixel format like 32bppPArgb. –  Hans Passant Jun 9 '13 at 22:43

1 Answer 1

up vote 2 down vote accepted

After hours of searching I solved my problem. I'm just gonna post it here in case anypony need it in the future.

Private Function MixColors(c1 As Color, c2 As Color) As Color
    Dim c1a = c1.A / 255, c2a = c2.A / 255, alp = AlphaBlend(c1a, c2a)

    Dim a = alp * 255
    Dim r = ColorBlend(c1.R, c1a, c2.R, c2a, alp)
    Dim g = ColorBlend(c1.G, c1a, c2.G, c2a, alp)
    Dim b = ColorBlend(c1.B, c1a, c2.B, c2a, alp)

    Return Color.FromArgb(CInt(a), CInt(r), CInt(g), CInt(b))
End Function

Private Function ColorBlend(c1r%, c1a#, c2r%, c2a#, alp#) As Single
    Return (c2r * c2a + c1r * c1a * (1 - c2a)) / alp
End Function

Private Function AlphaBlend(alphaBelow!, alphaAbove!) As Double
    Return alphaBelow + (1.0 - alphaBelow) * alphaAbove
End Function

Please note that I developed this function by myself and did not get it from Microsoft or anything, so I cannot prove that it calculates mixing of colors in the same way that GDI does. All tho I have not expirienced that the function missbehaves myself, I cannot guarantee that it will return the excact same resoult as GDI does, but it should be very very close.

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.