Experiment: dither with only two colors per blend
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@@ -1,14 +1,19 @@
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import numpy as np
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from PIL import Image
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import scipy.spatial
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import PIL
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from PIL.Image import Image
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from tqdm import tqdm
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img = Image.open('peacock.jpg')
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img = PIL.Image.open('peacock.jpg')
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resized = img.resize((128,128))
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RGB = tuple[int, int, int]
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RGBLinear = tuple[float, float, float]
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# sRGB values for the PICO-8 palette.
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# The first 16 entries correspond with the default palette (0-15).
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# The last 16 entries correspond with the "secret" palette (128-143).
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PICO_RGB = [
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PICO_RGB: list[RGB] = [
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(0, 0, 0),
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(29, 43, 83),
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(126, 37, 83),
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@@ -43,19 +48,36 @@ PICO_RGB = [
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(255, 157, 129)
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]
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def component_to_linear(x):
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def component_to_linear(x: int) -> float:
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x /= 255
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if x <= 0.04045:
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return x/12.92
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else:
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return ((x + 0.055)/1.055)**2.4
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def rgb_to_linear(rgb):
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def component_to_gamma(x: float) -> int:
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if x <= 0.04045/12.92:
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result = x * 12.92
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else:
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result = (x**(1/2.4) * 1.055) - 0.055
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result *= 255
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return round(result)
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def rgb_to_linear(rgb: RGB) -> RGBLinear:
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return tuple(component_to_linear(c) for c in rgb)
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def linear_to_rgb(linear: RGBLinear) -> RGB:
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return tuple(component_to_gamma(c) for c in linear)
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PICO_RGB_LINEAR = [rgb_to_linear(x) for x in PICO_RGB]
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def make_bayer_matrix(size):
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def distance_sq(a: RGB, b: RGB) -> int:
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result = 0
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for i in range(3):
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result += (a[i] - b[i])**2
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return result
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def make_bayer_matrix(size: int) -> np.ndarray:
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assert size > 0
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assert size & (size - 1) == 0 # power of two
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m = np.array([[0]])
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@@ -104,7 +126,68 @@ def pattern_dither(img, palette, *, pat_size=4, amount=0.75):
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break
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# Convert palette indexes to an indexed image
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result = Image.new(mode='P', size=img.size)
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result = PIL.Image.new(mode='P', size=img.size)
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result.putpalette([c for rgb in old_palette for c in rgb])
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result.putdata([old_palette_indexes[i] for i in output_indexes])
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return result
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def luminance(rgb: RGB) -> int:
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return 3*rgb[0] + 6*rgb[1] + rgb[2]
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def pattern_dither_twotone(img: Image, palette: list[RGB]) -> Image:
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assert img.mode == 'RGB'
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bayer = make_bayer_matrix(4)
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# Sort palette indexes by luminance
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# Used to make sure blends consistently order their colors
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palette_indexes = list(range(len(palette)))
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palette_indexes.sort(key=lambda i: luminance(palette[i]))
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# Build lookup for all two-color blends
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linear_palette = [np.array(rgb_to_linear(c)) for c in palette]
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blends: list[RGB] = []
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recipes: list[tuple[int,int,int]] = [] # index 1, index 2, ratio/16
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def make_blend(a_idx: int, b_idx: int, ratio: int):
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if distance_sq(palette[a_idx], palette[b_idx]) > 3*128**2:
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return
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a = linear_palette[a_idx]
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b = linear_palette[b_idx]
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blend = (a*(16-ratio) + b*ratio)/16
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blend = linear_to_rgb(blend)
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blends.append(blend)
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recipes.append((a_idx, b_idx, ratio))
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for i in range(len(linear_palette)):
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make_blend(i, i, 0)
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for a_idx in range(len(linear_palette)):
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for b_idx in range(a_idx + 1, len(linear_palette)):
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for ratio in range(1, 16):
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make_blend(a_idx, b_idx, ratio)
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kd = scipy.spatial.KDTree(blends)
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print(len(blends), len(set(blends)))
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print(max(blends))
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print(min(blends))
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# Convert image pixels
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result_indexes = []
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for y in tqdm(range(img.height)):
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# row = [rgb_to_linear(img.getpixel((x,y))) for x in range(img.width)]
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# _, blends_indexes = kd.query(row)
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for x in range(img.width):
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color = img.getpixel((x, y))
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_dist, blends_idx = kd.query(color)
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recipe = recipes[blends_idx]
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thresh = bayer[y % 4][x % 4]
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if recipe[2] <= thresh:
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idx = recipe[0]
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else:
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idx = recipe[1]
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result_indexes.append(idx)
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# Output image
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result = PIL.Image.new(mode='P', size=img.size)
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result.putpalette([c for rgb in palette for c in rgb])
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result.putdata(result_indexes)
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return result
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