Use CIE2000 to determine color distances, compute gradients in Lab
Slow
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@ -8,6 +8,9 @@ import json
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from powerline.colorscheme import cterm_to_hex
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from itertools import groupby
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import argparse
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from colormath.color_objects import sRGBColor, LabColor
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from colormath.color_conversions import convert_color
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from colormath.color_diff import delta_e_cie2000
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try:
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from __builtin__ import unicode
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@ -22,15 +25,20 @@ def num2(s):
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return (False, [float(v) for v in s.partition(' ')[::2]])
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def rgbint_to_rgb(rgbint):
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return ((rgbint >> 16) & 0xFF, (rgbint >> 8) & 0xFF, rgbint & 0xFF)
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def rgbint_to_lab(rgbint):
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rgb = sRGBColor((rgbint >> 16) & 0xFF, (rgbint >> 8) & 0xFF, rgbint & 0xFF,
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is_upscaled=True)
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return convert_color(rgb, LabColor)
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cterm_to_lab = tuple((rgbint_to_lab(v) for v in cterm_to_hex))
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def color(s):
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if len(s) <= 3:
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return rgbint_to_rgb(cterm_to_hex[int(s)])
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return cterm_to_lab[int(s)]
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else:
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return rgbint_to_rgb(int(s, 16))
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return rgbint_to_lab(int(s, 16))
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def nums(s):
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@ -53,34 +61,42 @@ def linear_gradient(start_value, stop_value, start_offset, stop_offset, offset):
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return start_value + ((offset - start_offset) * (stop_value - start_value) / (stop_offset - start_offset))
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def gradient(DATA):
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def lab_gradient(slab, elab, soff, eoff, off):
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svals = slab.get_value_tuple()
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evals = elab.get_value_tuple()
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return LabColor(*[linear_gradient(start_value, end_value, soff, eoff, off)
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for start_value, end_value in zip(svals, evals)])
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def generate_gradient_function(DATA):
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def gradient_function(y):
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initial_offset = 0
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for offset, start, end in DATA:
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if y <= offset:
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return [linear_gradient(start[i], end[i], initial_offset, offset, y) for i in range(3)]
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return lab_gradient(start, end, initial_offset, offset, y)
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initial_offset = offset
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return gradient_function
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def get_rgb(*args):
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return "%02x%02x%02x" % args
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def get_upscaled_values(rgb):
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return [min(max(0, i), 255) for i in rgb.get_upscaled_value_tuple()]
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def col_distance(rgb1, rgb2):
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return sum(((rgb1[i] - rgb2[i]) ** 2 for i in range(3)))
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def get_rgb(lab):
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rgb = convert_color(lab, sRGBColor)
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rgb = sRGBColor(*get_upscaled_values(rgb), is_upscaled=True)
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return rgb.get_rgb_hex()[1:]
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def find_color(urgb, colors, ctrans):
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cur_distance = 3 * (255 ** 2 + 1)
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def find_color(ulab, colors, ctrans):
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cur_distance = float('inf')
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cur_color = None
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i = 0
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for crgbint in colors:
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crgb = rgbint_to_rgb(crgbint)
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dist = col_distance(urgb, crgb)
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for clab in colors:
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dist = delta_e_cie2000(ulab, clab)
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if dist < cur_distance:
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cur_distance = dist
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cur_color = (ctrans(i), crgb)
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cur_color = (ctrans(i), clab)
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i += 1
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return cur_color
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@ -89,7 +105,8 @@ def print_color(color):
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if type(color) is int:
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colstr = '5;' + str(color)
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else:
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colstr = '2;' + ';'.join((str(int(round(i))) for i in color))
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rgb = convert_color(color, sRGBColor)
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colstr = '2;' + ';'.join((str(i) for i in get_upscaled_values(rgb)))
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sys.stdout.write('\033[48;' + colstr + 'm ')
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@ -131,15 +148,15 @@ else:
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steps = [i * step for i in range(1, maxweight + 1)]
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data = [(weight, args.gradient[i - 1], args.gradient[i]) for weight, i in zip(steps, range(1, len(args.gradient)))]
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gr_func = gradient(data)
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gr_func = generate_gradient_function(data)
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gradient = [gr_func(y) for y in range(0, m)]
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palettes = {
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'16': (cterm_to_hex[:16], lambda c: c),
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'256': (cterm_to_hex, lambda c: c),
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None: (cterm_to_hex[16:], lambda c: c + 16),
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'16': (cterm_to_lab[:16], lambda c: c),
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'256': (cterm_to_lab, lambda c: c),
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None: (cterm_to_lab[16:], lambda c: c + 16),
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}
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r = [get_rgb(*col) for col in gradient]
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r2 = [find_color(col, *palettes[args.palette])[0] for col in gradient]
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r = [get_rgb(lab) for lab in gradient]
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r2 = [find_color(lab, *palettes[args.palette])[0] for lab in gradient]
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r3 = [i[0] for i in groupby(r2)]
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print(json.dumps(r))
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print(json.dumps(r2))
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