480 lines
18 KiB
Python
480 lines
18 KiB
Python
from itertools import product
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import platform
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import matplotlib
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import matplotlib.pyplot as plt
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from matplotlib import cbook
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from matplotlib.cbook import MatplotlibDeprecationWarning
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from matplotlib.backend_bases import MouseEvent
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from matplotlib.colors import LogNorm
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from matplotlib.transforms import Bbox, TransformedBbox
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from matplotlib.testing.decorators import (
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image_comparison, remove_ticks_and_titles)
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from mpl_toolkits.axes_grid1 import (
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axes_size as Size, host_subplot, make_axes_locatable, AxesGrid, ImageGrid)
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from mpl_toolkits.axes_grid1.anchored_artists import (
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AnchoredSizeBar, AnchoredDirectionArrows)
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from mpl_toolkits.axes_grid1.axes_divider import HBoxDivider
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from mpl_toolkits.axes_grid1.inset_locator import (
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zoomed_inset_axes, mark_inset, inset_axes, BboxConnectorPatch)
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import mpl_toolkits.axes_grid1.mpl_axes
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import pytest
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import numpy as np
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from numpy.testing import assert_array_equal, assert_array_almost_equal
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def test_divider_append_axes():
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fig, ax = plt.subplots()
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divider = make_axes_locatable(ax)
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axs = {
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"main": ax,
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"top": divider.append_axes("top", 1.2, pad=0.1, sharex=ax),
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"bottom": divider.append_axes("bottom", 1.2, pad=0.1, sharex=ax),
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"left": divider.append_axes("left", 1.2, pad=0.1, sharey=ax),
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"right": divider.append_axes("right", 1.2, pad=0.1, sharey=ax),
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}
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fig.canvas.draw()
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renderer = fig.canvas.get_renderer()
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bboxes = {k: axs[k].get_window_extent() for k in axs}
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dpi = fig.dpi
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assert bboxes["top"].height == pytest.approx(1.2 * dpi)
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assert bboxes["bottom"].height == pytest.approx(1.2 * dpi)
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assert bboxes["left"].width == pytest.approx(1.2 * dpi)
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assert bboxes["right"].width == pytest.approx(1.2 * dpi)
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assert bboxes["top"].y0 - bboxes["main"].y1 == pytest.approx(0.1 * dpi)
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assert bboxes["main"].y0 - bboxes["bottom"].y1 == pytest.approx(0.1 * dpi)
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assert bboxes["main"].x0 - bboxes["left"].x1 == pytest.approx(0.1 * dpi)
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assert bboxes["right"].x0 - bboxes["main"].x1 == pytest.approx(0.1 * dpi)
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assert bboxes["left"].y0 == bboxes["main"].y0 == bboxes["right"].y0
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assert bboxes["left"].y1 == bboxes["main"].y1 == bboxes["right"].y1
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assert bboxes["top"].x0 == bboxes["main"].x0 == bboxes["bottom"].x0
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assert bboxes["top"].x1 == bboxes["main"].x1 == bboxes["bottom"].x1
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@image_comparison(['twin_axes_empty_and_removed'], extensions=["png"], tol=1)
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def test_twin_axes_empty_and_removed():
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# Purely cosmetic font changes (avoid overlap)
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matplotlib.rcParams.update({"font.size": 8})
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matplotlib.rcParams.update({"xtick.labelsize": 8})
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matplotlib.rcParams.update({"ytick.labelsize": 8})
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generators = ["twinx", "twiny", "twin"]
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modifiers = ["", "host invisible", "twin removed", "twin invisible",
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"twin removed\nhost invisible"]
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# Unmodified host subplot at the beginning for reference
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h = host_subplot(len(modifiers)+1, len(generators), 2)
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h.text(0.5, 0.5, "host_subplot",
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horizontalalignment="center", verticalalignment="center")
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# Host subplots with various modifications (twin*, visibility) applied
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for i, (mod, gen) in enumerate(product(modifiers, generators),
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len(generators) + 1):
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h = host_subplot(len(modifiers)+1, len(generators), i)
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t = getattr(h, gen)()
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if "twin invisible" in mod:
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t.axis[:].set_visible(False)
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if "twin removed" in mod:
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t.remove()
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if "host invisible" in mod:
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h.axis[:].set_visible(False)
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h.text(0.5, 0.5, gen + ("\n" + mod if mod else ""),
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horizontalalignment="center", verticalalignment="center")
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plt.subplots_adjust(wspace=0.5, hspace=1)
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@pytest.mark.parametrize("legacy_colorbar", [False, True])
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def test_axesgrid_colorbar_log_smoketest(legacy_colorbar):
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matplotlib.rcParams["mpl_toolkits.legacy_colorbar"] = legacy_colorbar
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fig = plt.figure()
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grid = AxesGrid(fig, 111, # modified to be only subplot
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nrows_ncols=(1, 1),
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ngrids=1,
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label_mode="L",
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cbar_location="top",
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cbar_mode="single",
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)
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Z = 10000 * np.random.rand(10, 10)
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im = grid[0].imshow(Z, interpolation="nearest", norm=LogNorm())
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if legacy_colorbar:
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with pytest.warns(MatplotlibDeprecationWarning):
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grid.cbar_axes[0].colorbar(im)
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else:
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grid.cbar_axes[0].colorbar(im)
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@image_comparison(['inset_locator.png'], style='default', remove_text=True)
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def test_inset_locator():
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fig, ax = plt.subplots(figsize=[5, 4])
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# prepare the demo image
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# Z is a 15x15 array
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Z = cbook.get_sample_data("axes_grid/bivariate_normal.npy", np_load=True)
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extent = (-3, 4, -4, 3)
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Z2 = np.zeros((150, 150))
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ny, nx = Z.shape
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Z2[30:30+ny, 30:30+nx] = Z
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# extent = [-3, 4, -4, 3]
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ax.imshow(Z2, extent=extent, interpolation="nearest",
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origin="lower")
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axins = zoomed_inset_axes(ax, zoom=6, loc='upper right')
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axins.imshow(Z2, extent=extent, interpolation="nearest",
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origin="lower")
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axins.yaxis.get_major_locator().set_params(nbins=7)
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axins.xaxis.get_major_locator().set_params(nbins=7)
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# sub region of the original image
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x1, x2, y1, y2 = -1.5, -0.9, -2.5, -1.9
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axins.set_xlim(x1, x2)
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axins.set_ylim(y1, y2)
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plt.xticks(visible=False)
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plt.yticks(visible=False)
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# draw a bbox of the region of the inset axes in the parent axes and
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# connecting lines between the bbox and the inset axes area
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mark_inset(ax, axins, loc1=2, loc2=4, fc="none", ec="0.5")
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asb = AnchoredSizeBar(ax.transData,
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0.5,
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'0.5',
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loc='lower center',
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pad=0.1, borderpad=0.5, sep=5,
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frameon=False)
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ax.add_artist(asb)
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@image_comparison(['inset_axes.png'], style='default', remove_text=True)
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def test_inset_axes():
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fig, ax = plt.subplots(figsize=[5, 4])
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# prepare the demo image
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# Z is a 15x15 array
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Z = cbook.get_sample_data("axes_grid/bivariate_normal.npy", np_load=True)
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extent = (-3, 4, -4, 3)
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Z2 = np.zeros((150, 150))
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ny, nx = Z.shape
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Z2[30:30+ny, 30:30+nx] = Z
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# extent = [-3, 4, -4, 3]
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ax.imshow(Z2, extent=extent, interpolation="nearest",
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origin="lower")
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# creating our inset axes with a bbox_transform parameter
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axins = inset_axes(ax, width=1., height=1., bbox_to_anchor=(1, 1),
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bbox_transform=ax.transAxes)
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axins.imshow(Z2, extent=extent, interpolation="nearest",
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origin="lower")
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axins.yaxis.get_major_locator().set_params(nbins=7)
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axins.xaxis.get_major_locator().set_params(nbins=7)
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# sub region of the original image
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x1, x2, y1, y2 = -1.5, -0.9, -2.5, -1.9
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axins.set_xlim(x1, x2)
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axins.set_ylim(y1, y2)
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plt.xticks(visible=False)
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plt.yticks(visible=False)
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# draw a bbox of the region of the inset axes in the parent axes and
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# connecting lines between the bbox and the inset axes area
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mark_inset(ax, axins, loc1=2, loc2=4, fc="none", ec="0.5")
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asb = AnchoredSizeBar(ax.transData,
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0.5,
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'0.5',
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loc='lower center',
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pad=0.1, borderpad=0.5, sep=5,
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frameon=False)
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ax.add_artist(asb)
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def test_inset_axes_complete():
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dpi = 100
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figsize = (6, 5)
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fig, ax = plt.subplots(figsize=figsize, dpi=dpi)
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fig.subplots_adjust(.1, .1, .9, .9)
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ins = inset_axes(ax, width=2., height=2., borderpad=0)
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fig.canvas.draw()
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assert_array_almost_equal(
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ins.get_position().extents,
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np.array(((0.9*figsize[0]-2.)/figsize[0],
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(0.9*figsize[1]-2.)/figsize[1], 0.9, 0.9)))
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ins = inset_axes(ax, width="40%", height="30%", borderpad=0)
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fig.canvas.draw()
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assert_array_almost_equal(
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ins.get_position().extents,
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np.array((.9-.8*.4, .9-.8*.3, 0.9, 0.9)))
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ins = inset_axes(ax, width=1., height=1.2, bbox_to_anchor=(200, 100),
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loc=3, borderpad=0)
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fig.canvas.draw()
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assert_array_almost_equal(
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ins.get_position().extents,
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np.array((200./dpi/figsize[0], 100./dpi/figsize[1],
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(200./dpi+1)/figsize[0], (100./dpi+1.2)/figsize[1])))
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ins1 = inset_axes(ax, width="35%", height="60%", loc=3, borderpad=1)
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ins2 = inset_axes(ax, width="100%", height="100%",
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bbox_to_anchor=(0, 0, .35, .60),
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bbox_transform=ax.transAxes, loc=3, borderpad=1)
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fig.canvas.draw()
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assert_array_equal(ins1.get_position().extents,
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ins2.get_position().extents)
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with pytest.raises(ValueError):
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ins = inset_axes(ax, width="40%", height="30%",
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bbox_to_anchor=(0.4, 0.5))
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with pytest.warns(UserWarning):
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ins = inset_axes(ax, width="40%", height="30%",
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bbox_transform=ax.transAxes)
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@image_comparison(['fill_facecolor.png'], remove_text=True, style='mpl20')
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def test_fill_facecolor():
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fig, ax = plt.subplots(1, 5)
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fig.set_size_inches(5, 5)
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for i in range(1, 4):
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ax[i].yaxis.set_visible(False)
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ax[4].yaxis.tick_right()
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bbox = Bbox.from_extents(0, 0.4, 1, 0.6)
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# fill with blue by setting 'fc' field
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bbox1 = TransformedBbox(bbox, ax[0].transData)
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bbox2 = TransformedBbox(bbox, ax[1].transData)
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# set color to BboxConnectorPatch
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p = BboxConnectorPatch(
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bbox1, bbox2, loc1a=1, loc2a=2, loc1b=4, loc2b=3,
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ec="r", fc="b")
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p.set_clip_on(False)
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ax[0].add_patch(p)
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# set color to marked area
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axins = zoomed_inset_axes(ax[0], 1, loc='upper right')
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axins.set_xlim(0, 0.2)
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axins.set_ylim(0, 0.2)
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plt.gca().axes.get_xaxis().set_ticks([])
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plt.gca().axes.get_yaxis().set_ticks([])
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mark_inset(ax[0], axins, loc1=2, loc2=4, fc="b", ec="0.5")
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# fill with yellow by setting 'facecolor' field
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bbox3 = TransformedBbox(bbox, ax[1].transData)
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bbox4 = TransformedBbox(bbox, ax[2].transData)
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# set color to BboxConnectorPatch
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p = BboxConnectorPatch(
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bbox3, bbox4, loc1a=1, loc2a=2, loc1b=4, loc2b=3,
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ec="r", facecolor="y")
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p.set_clip_on(False)
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ax[1].add_patch(p)
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# set color to marked area
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axins = zoomed_inset_axes(ax[1], 1, loc='upper right')
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axins.set_xlim(0, 0.2)
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axins.set_ylim(0, 0.2)
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plt.gca().axes.get_xaxis().set_ticks([])
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plt.gca().axes.get_yaxis().set_ticks([])
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mark_inset(ax[1], axins, loc1=2, loc2=4, facecolor="y", ec="0.5")
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# fill with green by setting 'color' field
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bbox5 = TransformedBbox(bbox, ax[2].transData)
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bbox6 = TransformedBbox(bbox, ax[3].transData)
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# set color to BboxConnectorPatch
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p = BboxConnectorPatch(
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bbox5, bbox6, loc1a=1, loc2a=2, loc1b=4, loc2b=3,
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ec="r", color="g")
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p.set_clip_on(False)
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ax[2].add_patch(p)
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# set color to marked area
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axins = zoomed_inset_axes(ax[2], 1, loc='upper right')
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axins.set_xlim(0, 0.2)
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axins.set_ylim(0, 0.2)
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plt.gca().axes.get_xaxis().set_ticks([])
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plt.gca().axes.get_yaxis().set_ticks([])
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mark_inset(ax[2], axins, loc1=2, loc2=4, color="g", ec="0.5")
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# fill with green but color won't show if set fill to False
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bbox7 = TransformedBbox(bbox, ax[3].transData)
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bbox8 = TransformedBbox(bbox, ax[4].transData)
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# BboxConnectorPatch won't show green
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p = BboxConnectorPatch(
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bbox7, bbox8, loc1a=1, loc2a=2, loc1b=4, loc2b=3,
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ec="r", fc="g", fill=False)
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p.set_clip_on(False)
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ax[3].add_patch(p)
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# marked area won't show green
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axins = zoomed_inset_axes(ax[3], 1, loc='upper right')
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axins.set_xlim(0, 0.2)
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axins.set_ylim(0, 0.2)
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axins.get_xaxis().set_ticks([])
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axins.get_yaxis().set_ticks([])
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mark_inset(ax[3], axins, loc1=2, loc2=4, fc="g", ec="0.5", fill=False)
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@image_comparison(['zoomed_axes.png', 'inverted_zoomed_axes.png'])
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def test_zooming_with_inverted_axes():
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fig, ax = plt.subplots()
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ax.plot([1, 2, 3], [1, 2, 3])
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ax.axis([1, 3, 1, 3])
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inset_ax = zoomed_inset_axes(ax, zoom=2.5, loc='lower right')
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inset_ax.axis([1.1, 1.4, 1.1, 1.4])
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fig, ax = plt.subplots()
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ax.plot([1, 2, 3], [1, 2, 3])
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ax.axis([3, 1, 3, 1])
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inset_ax = zoomed_inset_axes(ax, zoom=2.5, loc='lower right')
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inset_ax.axis([1.4, 1.1, 1.4, 1.1])
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@image_comparison(['anchored_direction_arrows.png'],
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tol=0 if platform.machine() == 'x86_64' else 0.01)
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def test_anchored_direction_arrows():
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fig, ax = plt.subplots()
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ax.imshow(np.zeros((10, 10)), interpolation='nearest')
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simple_arrow = AnchoredDirectionArrows(ax.transAxes, 'X', 'Y')
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ax.add_artist(simple_arrow)
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@image_comparison(['anchored_direction_arrows_many_args.png'])
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def test_anchored_direction_arrows_many_args():
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fig, ax = plt.subplots()
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ax.imshow(np.ones((10, 10)))
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direction_arrows = AnchoredDirectionArrows(
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ax.transAxes, 'A', 'B', loc='upper right', color='red',
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aspect_ratio=-0.5, pad=0.6, borderpad=2, frameon=True, alpha=0.7,
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sep_x=-0.06, sep_y=-0.08, back_length=0.1, head_width=9,
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head_length=10, tail_width=5)
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ax.add_artist(direction_arrows)
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def test_axes_locatable_position():
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fig, ax = plt.subplots()
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divider = make_axes_locatable(ax)
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cax = divider.append_axes('right', size='5%', pad='2%')
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fig.canvas.draw()
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assert np.isclose(cax.get_position(original=False).width,
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0.03621495327102808)
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@image_comparison(['image_grid.png'],
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remove_text=True, style='mpl20',
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savefig_kwarg={'bbox_inches': 'tight'})
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def test_image_grid():
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# test that image grid works with bbox_inches=tight.
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im = np.arange(100).reshape((10, 10))
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fig = plt.figure(1, (4, 4))
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grid = ImageGrid(fig, 111, nrows_ncols=(2, 2), axes_pad=0.1)
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for i in range(4):
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grid[i].imshow(im, interpolation='nearest')
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grid[i].set_title('test {0}{0}'.format(i))
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def test_gettightbbox():
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fig, ax = plt.subplots(figsize=(8, 6))
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l, = ax.plot([1, 2, 3], [0, 1, 0])
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ax_zoom = zoomed_inset_axes(ax, 4)
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ax_zoom.plot([1, 2, 3], [0, 1, 0])
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mark_inset(ax, ax_zoom, loc1=1, loc2=3, fc="none", ec='0.3')
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remove_ticks_and_titles(fig)
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bbox = fig.get_tightbbox(fig.canvas.get_renderer())
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np.testing.assert_array_almost_equal(bbox.extents,
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[-17.7, -13.9, 7.2, 5.4])
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@pytest.mark.parametrize("click_on", ["big", "small"])
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@pytest.mark.parametrize("big_on_axes,small_on_axes", [
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("gca", "gca"),
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("host", "host"),
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("host", "parasite"),
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("parasite", "host"),
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("parasite", "parasite")
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])
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def test_picking_callbacks_overlap(big_on_axes, small_on_axes, click_on):
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"""Test pick events on normal, host or parasite axes."""
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# Two rectangles are drawn and "clicked on", a small one and a big one
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# enclosing the small one. The axis on which they are drawn as well as the
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# rectangle that is clicked on are varied.
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# In each case we expect that both rectangles are picked if we click on the
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# small one and only the big one is picked if we click on the big one.
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# Also tests picking on normal axes ("gca") as a control.
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big = plt.Rectangle((0.25, 0.25), 0.5, 0.5, picker=5)
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small = plt.Rectangle((0.4, 0.4), 0.2, 0.2, facecolor="r", picker=5)
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# Machinery for "receiving" events
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received_events = []
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def on_pick(event):
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received_events.append(event)
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plt.gcf().canvas.mpl_connect('pick_event', on_pick)
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# Shortcut
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rectangles_on_axes = (big_on_axes, small_on_axes)
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# Axes setup
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axes = {"gca": None, "host": None, "parasite": None}
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if "gca" in rectangles_on_axes:
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axes["gca"] = plt.gca()
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if "host" in rectangles_on_axes or "parasite" in rectangles_on_axes:
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axes["host"] = host_subplot(111)
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axes["parasite"] = axes["host"].twin()
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# Add rectangles to axes
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axes[big_on_axes].add_patch(big)
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axes[small_on_axes].add_patch(small)
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# Simulate picking with click mouse event
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if click_on == "big":
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click_axes = axes[big_on_axes]
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axes_coords = (0.3, 0.3)
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else:
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click_axes = axes[small_on_axes]
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axes_coords = (0.5, 0.5)
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# In reality mouse events never happen on parasite axes, only host axes
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if click_axes is axes["parasite"]:
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click_axes = axes["host"]
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(x, y) = click_axes.transAxes.transform(axes_coords)
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m = MouseEvent("button_press_event", click_axes.figure.canvas, x, y,
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button=1)
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click_axes.pick(m)
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# Checks
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|
expected_n_events = 2 if click_on == "small" else 1
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assert len(received_events) == expected_n_events
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event_rects = [event.artist for event in received_events]
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|
assert big in event_rects
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|
if click_on == "small":
|
|
assert small in event_rects
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|
|
|
|
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def test_hbox_divider():
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arr1 = np.arange(20).reshape((4, 5))
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|
arr2 = np.arange(20).reshape((5, 4))
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|
|
|
fig, (ax1, ax2) = plt.subplots(1, 2)
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|
ax1.imshow(arr1)
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|
ax2.imshow(arr2)
|
|
|
|
pad = 0.5 # inches.
|
|
divider = HBoxDivider(
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|
fig, 111, # Position of combined axes.
|
|
horizontal=[Size.AxesX(ax1), Size.Fixed(pad), Size.AxesX(ax2)],
|
|
vertical=[Size.AxesY(ax1), Size.Scaled(1), Size.AxesY(ax2)])
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|
ax1.set_axes_locator(divider.new_locator(0))
|
|
ax2.set_axes_locator(divider.new_locator(2))
|
|
|
|
fig.canvas.draw()
|
|
p1 = ax1.get_position()
|
|
p2 = ax2.get_position()
|
|
assert p1.height == p2.height
|
|
assert p2.width / p1.width == pytest.approx((4 / 5) ** 2)
|
|
|
|
|
|
def test_axes_class_tuple():
|
|
fig = plt.figure()
|
|
axes_class = (mpl_toolkits.axes_grid1.mpl_axes.Axes, {})
|
|
gr = AxesGrid(fig, 111, nrows_ncols=(1, 1), axes_class=axes_class)
|