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Add a helper to copy a colormap and set its extreme colors.
See changelog. See also the number of explicit copies in the examples, which suggest that the old setter-based API is a bit of a footgun (as forgetting to copy seems easy).
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`.Colormap.set_extremes` and `.Colormap.with_extremes`
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``````````````````````````````````````````````````````
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Because the `.Colormap.set_bad`, `.Colormap.set_under` and `.Colormap.set_over`
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methods modify the colormap in place, the user must be careful to first make a
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copy of the colormap if setting the extreme colors e.g. for a builtin colormap.
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The new ``Colormap.with_extremes(bad=..., under=..., over=...)`` can be used to
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first copy the colormap and set the extreme colors on that copy.
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The new `.Colormap.set_extremes` method is provided for API symmetry with
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`.Colormap.with_extremes`, but note that it suffers from the same issue as the
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earlier individual setters.

examples/images_contours_and_fields/image_masked.py

Lines changed: 1 addition & 6 deletions
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@@ -8,7 +8,6 @@
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The second subplot illustrates the use of BoundaryNorm to
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get a filled contour effect.
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"""
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from copy import copy
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import numpy as np
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import matplotlib.pyplot as plt
@@ -25,11 +24,7 @@
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Z = (Z1 - Z2) * 2
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# Set up a colormap:
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# use copy so that we do not mutate the global colormap instance
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palette = copy(plt.cm.gray)
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palette.set_over('r', 1.0)
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palette.set_under('g', 1.0)
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palette.set_bad('b', 1.0)
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palette = plt.cm.gray.with_extremes(over='r', under='g', bad='b')
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# Alternatively, we could use
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# palette.set_bad(alpha = 0.0)
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# to make the bad region transparent. This is the default.

examples/images_contours_and_fields/quadmesh_demo.py

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@@ -9,8 +9,6 @@
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This demo illustrates a bug in quadmesh with masked data.
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"""
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import copy
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from matplotlib import cm, pyplot as plt
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import numpy as np
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@@ -30,10 +28,8 @@
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axs[0].pcolormesh(Qx, Qz, Z, shading='gouraud')
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axs[0].set_title('Without masked values')
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# You can control the color of the masked region. We copy the default colormap
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# before modifying it.
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cmap = copy.copy(cm.get_cmap(plt.rcParams['image.cmap']))
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cmap.set_bad('y', 1.0)
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# You can control the color of the masked region.
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cmap = cm.get_cmap(plt.rcParams['image.cmap']).with_extremes(bad='y')
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axs[1].pcolormesh(Qx, Qz, Zm, shading='gouraud', cmap=cmap)
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axs[1].set_title('With masked values')
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examples/specialty_plots/leftventricle_bulleye.py

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@@ -163,9 +163,8 @@ def bullseye_plot(ax, data, seg_bold=None, cmap=None, norm=None):
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# The second example illustrates the use of a ListedColormap, a
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# BoundaryNorm, and extended ends to show the "over" and "under"
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# value colors.
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cmap3 = mpl.colors.ListedColormap(['r', 'g', 'b', 'c'])
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cmap3.set_over('0.35')
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cmap3.set_under('0.75')
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cmap3 = (mpl.colors.ListedColormap(['r', 'g', 'b', 'c'])
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.with_extremes(over='0.35', under='0.75'))
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# If a ListedColormap is used, the length of the bounds array must be
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# one greater than the length of the color list. The bounds must be
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# monotonically increasing.

lib/matplotlib/colors.py

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"""
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from collections.abc import Sized
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import copy
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import functools
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import itertools
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from numbers import Number
@@ -623,6 +624,28 @@ def set_over(self, color='k', alpha=None):
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if self._isinit:
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self._set_extremes()
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def set_extremes(self, *, bad=None, under=None, over=None):
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"""
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Set the colors for masked (*bad*) values and, when ``norm.clip =
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False``, low (*under*) and high (*over*) out-of-range values.
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"""
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if bad is not None:
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self.set_bad(bad)
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if under is not None:
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self.set_under(under)
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if over is not None:
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self.set_over(over)
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def with_extremes(self, *, bad=None, under=None, over=None):
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"""
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Return a copy of the colormap, for which the colors for masked (*bad*)
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values and, when ``norm.clip = False``, low (*under*) and high (*over*)
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out-of-range values, have been set accordingly.
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"""
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new_cm = copy.copy(self)
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new_cm.set_extremes(bad=bad, under=under, over=over)
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return new_cm
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def _set_extremes(self):
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if self._rgba_under:
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self._lut[self._i_under] = self._rgba_under

lib/matplotlib/tests/test_image.py

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from contextlib import ExitStack
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from copy import copy
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import io
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import os
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from pathlib import Path
@@ -822,10 +821,7 @@ def test_mask_image_over_under():
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(2 * np.pi * 0.5 * 1.5))
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Z = 10*(Z2 - Z1) # difference of Gaussians
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palette = copy(plt.cm.gray)
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palette.set_over('r', 1.0)
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palette.set_under('g', 1.0)
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palette.set_bad('b', 1.0)
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palette = plt.cm.gray.with_extremes(over='r', under='g', bad='b')
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Zm = ma.masked_where(Z > 1.2, Z)
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fig, (ax1, ax2) = plt.subplots(1, 2)
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im = ax1.imshow(Zm, interpolation='bilinear',
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remove_text=True, style='mpl20')
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def test_imshow_masked_interpolation():
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cm = copy(plt.get_cmap('viridis'))
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cm.set_over('r')
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cm.set_under('b')
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cm.set_bad('k')
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cm = plt.get_cmap('viridis').with_extremes(over='r', under='b', bad='k')
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N = 20
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n = colors.Normalize(vmin=0, vmax=N*N-1)

tutorials/colors/colorbar_only.py

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@@ -63,9 +63,8 @@
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fig, ax = plt.subplots(figsize=(6, 1))
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fig.subplots_adjust(bottom=0.5)
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cmap = mpl.colors.ListedColormap(['red', 'green', 'blue', 'cyan'])
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cmap.set_over('0.25')
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cmap.set_under('0.75')
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cmap = (mpl.colors.ListedColormap(['red', 'green', 'blue', 'cyan'])
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.with_extremes(over='0.25', under='0.75'))
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bounds = [1, 2, 4, 7, 8]
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norm = mpl.colors.BoundaryNorm(bounds, cmap.N)
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fig, ax = plt.subplots(figsize=(6, 1))
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fig.subplots_adjust(bottom=0.5)
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cmap = mpl.colors.ListedColormap(['royalblue', 'cyan',
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'yellow', 'orange'])
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cmap.set_over('red')
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cmap.set_under('blue')
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cmap = (mpl.colors.ListedColormap(['royalblue', 'cyan', 'yellow', 'orange'])
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.with_extremes(over='red', under='blue'))
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bounds = [-1.0, -0.5, 0.0, 0.5, 1.0]
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norm = mpl.colors.BoundaryNorm(bounds, cmap.N)

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