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I'm trying to make all white pixels transparent using the Python Image Library. (I'm a C hacker trying to learn python so be gentle) I've got the conversion working (at least the pixel values look correct) but I can't figure out how to convert the list into a buffer to re-create the image. Here's the code

img = Image.open('img.png')
imga = img.convert("RGBA")
datas = imga.getdata()

newData = list()
for item in datas:
    if item[0] == 255 and item[1] == 255 and item[2] == 255:
        newData.append([255, 255, 255, 0])
    else:
        newData.append(item)

imgb = Image.frombuffer("RGBA", imga.size, newData, "raw", "RGBA", 0, 1)
imgb.save("img2.png", "PNG")
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5 Answers 5

up vote 22 down vote accepted

You need to make the following changes:

  • append a tuple (255, 255, 255, 0) and not a list [255, 255, 255, 0]
  • use img.putdata(newData)

This is the working code:

from PIL import Image

img = Image.open('img.png')
img = img.convert("RGBA")
datas = img.getdata()

newData = []
for item in datas:
    if item[0] == 255 and item[1] == 255 and item[2] == 255:
        newData.append((255, 255, 255, 0))
    else:
        newData.append(item)

img.putdata(newData)
img.save("img2.png", "PNG")
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You can also use pixel access mode to modify the image in-place:

from PIL import Image

img = Image.open('img.png')
img = img.convert("RGBA")

pixdata = img.load()

for y in xrange(img.size[1]):
    for x in xrange(img.size[0]):
        if pixdata[x, y] == (255, 255, 255, 255):
            pixdata[x, y] = (255, 255, 255, 0)

img.save("img2.png", "PNG")
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isn't tuple a mutable type? –  DataGreed Dec 2 '09 at 13:56
    
it works! Not long enough? Well it really works! –  Fabien Apr 8 '10 at 14:09
    
As a point of reference on efficiency, the above loop takes about 0.05 seconds on a 256x256 image on my average machine. That's faster than I was expecting. –  M Katz Apr 8 '11 at 1:51
import Image
import ImageMath

def distance2(a, b):
    return (a[0] - b[0]) * (a[0] - b[0]) + (a[1] - b[1]) * (a[1] - b[1]) + (a[2] - b[2]) * (a[2] - b[2])

def makeColorTransparent(image, color, thresh2=0):
    image = image.convert("RGBA")
    red, green, blue, alpha = image.split()
    image.putalpha(ImageMath.eval("""convert(((((t - d(c, (r, g, b))) >> 31) + 1) ^ 1) * a, 'L')""",
        t=thresh2, d=distance2, c=color, r=red, g=green, b=blue, a=alpha))
    return image

if __name__ == '__main__':
    import sys
    makeColorTransparent(Image.open(sys.argv[1]), (255, 255, 255)).save(sys.argv[2]);
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Or if you'd just like to download pre-computed white/black pixels, grab this .zip: http://transparentpixelpack.prestonlee.com

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Here is a mailing list message that seems appropriate. The solution is much more complicated than those presented here, but possibly faster.

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The message deals with applying an affine transform to an image, which is not at all the same as replacing pixels of a given color by another. –  Fabien Apr 8 '10 at 13:49
    
And the link is broken. –  Brandon Rhodes Nov 3 '12 at 22:45
1  
Note: the link does not work anymore. –  physicalattraction Mar 25 at 7:24

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