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			276 lines
		
	
	
		
			6.5 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			276 lines
		
	
	
		
			6.5 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
#
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# The Python Imaging Library.
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# $Id$
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#
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# standard filters
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#
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# History:
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# 1995-11-27 fl   Created
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# 2002-06-08 fl   Added rank and mode filters
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# 2003-09-15 fl   Fixed rank calculation in rank filter; added expand call
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#
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# Copyright (c) 1997-2003 by Secret Labs AB.
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# Copyright (c) 1995-2002 by Fredrik Lundh.
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#
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# See the README file for information on usage and redistribution.
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#
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import functools
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class Filter(object):
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    pass
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class Kernel(Filter):
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    """
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    Create a convolution kernel.  The current version only
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    supports 3x3 and 5x5 integer and floating point kernels.
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    In the current version, kernels can only be applied to
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    "L" and "RGB" images.
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    :param size: Kernel size, given as (width, height). In the current
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                    version, this must be (3,3) or (5,5).
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    :param kernel: A sequence containing kernel weights.
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    :param scale: Scale factor. If given, the result for each pixel is
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                    divided by this value.  the default is the sum of the
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                    kernel weights.
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    :param offset: Offset. If given, this value is added to the result,
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                    after it has been divided by the scale factor.
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    """
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    def __init__(self, size, kernel, scale=None, offset=0):
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        if scale is None:
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            # default scale is sum of kernel
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            scale = functools.reduce(lambda a, b: a+b, kernel)
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        if size[0] * size[1] != len(kernel):
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            raise ValueError("not enough coefficients in kernel")
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        self.filterargs = size, scale, offset, kernel
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    def filter(self, image):
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        if image.mode == "P":
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            raise ValueError("cannot filter palette images")
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        return image.filter(*self.filterargs)
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class BuiltinFilter(Kernel):
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    def __init__(self):
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        pass
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class RankFilter(Filter):
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    """
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    Create a rank filter.  The rank filter sorts all pixels in
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    a window of the given size, and returns the **rank**'th value.
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    :param size: The kernel size, in pixels.
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    :param rank: What pixel value to pick.  Use 0 for a min filter,
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                 ``size * size / 2`` for a median filter, ``size * size - 1``
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                 for a max filter, etc.
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    """
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    name = "Rank"
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    def __init__(self, size, rank):
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        self.size = size
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        self.rank = rank
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    def filter(self, image):
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        if image.mode == "P":
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            raise ValueError("cannot filter palette images")
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        image = image.expand(self.size//2, self.size//2)
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        return image.rankfilter(self.size, self.rank)
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class MedianFilter(RankFilter):
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    """
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    Create a median filter. Picks the median pixel value in a window with the
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    given size.
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    :param size: The kernel size, in pixels.
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    """
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    name = "Median"
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    def __init__(self, size=3):
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        self.size = size
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        self.rank = size*size//2
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class MinFilter(RankFilter):
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    """
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    Create a min filter.  Picks the lowest pixel value in a window with the
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    given size.
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    :param size: The kernel size, in pixels.
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    """
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    name = "Min"
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    def __init__(self, size=3):
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        self.size = size
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        self.rank = 0
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class MaxFilter(RankFilter):
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    """
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    Create a max filter.  Picks the largest pixel value in a window with the
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    given size.
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    :param size: The kernel size, in pixels.
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    """
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    name = "Max"
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    def __init__(self, size=3):
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        self.size = size
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        self.rank = size*size-1
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class ModeFilter(Filter):
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    """
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    Create a mode filter. Picks the most frequent pixel value in a box with the
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    given size.  Pixel values that occur only once or twice are ignored; if no
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    pixel value occurs more than twice, the original pixel value is preserved.
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    :param size: The kernel size, in pixels.
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    """
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    name = "Mode"
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    def __init__(self, size=3):
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        self.size = size
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    def filter(self, image):
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        return image.modefilter(self.size)
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class GaussianBlur(Filter):
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    """Gaussian blur filter.
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    :param radius: Blur radius.
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    """
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    name = "GaussianBlur"
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    def __init__(self, radius=2):
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        self.radius = radius
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    def filter(self, image):
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        return image.gaussian_blur(self.radius)
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class UnsharpMask(Filter):
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    """Unsharp mask filter.
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    See Wikipedia's entry on `digital unsharp masking`_ for an explanation of
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    the parameters.
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    :param radius: Blur Radius
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    :param percent: Unsharp strength, in percent
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    :param threshold: Threshold controls the minimum brightness change that
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      will be sharpened
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    .. _digital unsharp masking: https://en.wikipedia.org/wiki/Unsharp_masking#Digital_unsharp_masking
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    """
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    name = "UnsharpMask"
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    def __init__(self, radius=2, percent=150, threshold=3):
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        self.radius = radius
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        self.percent = percent
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        self.threshold = threshold
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    def filter(self, image):
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        return image.unsharp_mask(self.radius, self.percent, self.threshold)
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class BLUR(BuiltinFilter):
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    name = "Blur"
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    filterargs = (5, 5), 16, 0, (
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        1,  1,  1,  1,  1,
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        1,  0,  0,  0,  1,
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        1,  0,  0,  0,  1,
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        1,  0,  0,  0,  1,
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        1,  1,  1,  1,  1
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        )
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class CONTOUR(BuiltinFilter):
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    name = "Contour"
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    filterargs = (3, 3), 1, 255, (
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        -1, -1, -1,
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        -1,  8, -1,
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        -1, -1, -1
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        )
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class DETAIL(BuiltinFilter):
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    name = "Detail"
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    filterargs = (3, 3), 6, 0, (
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        0, -1,  0,
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        -1, 10, -1,
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        0, -1,  0
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        )
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class EDGE_ENHANCE(BuiltinFilter):
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    name = "Edge-enhance"
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    filterargs = (3, 3), 2, 0, (
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        -1, -1, -1,
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        -1, 10, -1,
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        -1, -1, -1
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        )
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class EDGE_ENHANCE_MORE(BuiltinFilter):
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    name = "Edge-enhance More"
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    filterargs = (3, 3), 1, 0, (
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        -1, -1, -1,
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        -1,  9, -1,
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        -1, -1, -1
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        )
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class EMBOSS(BuiltinFilter):
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    name = "Emboss"
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    filterargs = (3, 3), 1, 128, (
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        -1,  0,  0,
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        0,  1,  0,
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        0,  0,  0
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        )
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class FIND_EDGES(BuiltinFilter):
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    name = "Find Edges"
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    filterargs = (3, 3), 1, 0, (
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        -1, -1, -1,
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        -1,  8, -1,
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        -1, -1, -1
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        )
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class SMOOTH(BuiltinFilter):
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    name = "Smooth"
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    filterargs = (3, 3), 13, 0, (
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        1,  1,  1,
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        1,  5,  1,
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        1,  1,  1
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        )
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class SMOOTH_MORE(BuiltinFilter):
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    name = "Smooth More"
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    filterargs = (5, 5), 100, 0, (
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        1,  1,  1,  1,  1,
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        1,  5,  5,  5,  1,
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        1,  5, 44,  5,  1,
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        1,  5,  5,  5,  1,
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        1,  1,  1,  1,  1
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        )
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class SHARPEN(BuiltinFilter):
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    name = "Sharpen"
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    filterargs = (3, 3), 16, 0, (
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        -2, -2, -2,
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        -2, 32, -2,
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        -2, -2, -2
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        )
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