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Commit 556895d

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Add tests for grouped_bar()
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‎lib/matplotlib/tests/test_axes.py

Copy file name to clipboardExpand all lines: lib/matplotlib/tests/test_axes.py
+85Lines changed: 85 additions & 0 deletions
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@@ -2166,6 +2166,91 @@ def test_bar_datetime_start():
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assert isinstance(ax.xaxis.get_major_formatter(), mdates.AutoDateFormatter)
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@image_comparison(["grouped_bar.png"], style="mpl20")
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def test_grouped_bar():
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data = {
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'data1': [1, 2, 3],
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'data2': [1.2, 2.2, 3.2],
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'data3': [1.4, 2.4, 3.4],
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}
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fig, ax = plt.subplots()
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ax.grouped_bar(data, tick_labels=['A', 'B', 'C'],
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group_spacing=0.5, bar_spacing=0.1,
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colors=['#1f77b4', '#58a1cf', '#abd0e6'])
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ax.set_yticks([])
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@check_figures_equal(extensions=["png"])
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def test_grouped_bar_list_of_datasets(fig_test, fig_ref):
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categories = ['A', 'B']
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data1 = [1, 1.2]
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data2 = [2, 2.4]
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data3 = [3, 3.6]
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ax = fig_test.subplots()
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ax.grouped_bar([data1, data2, data3], tick_labels=categories,
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labels=["data1", "data2", "data3"])
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ax.legend()
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ax = fig_ref.subplots()
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label_pos = np.array([0, 1])
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bar_width = 1 / (3 + 1.5) # 3 bars + 1.5 group_spacing
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data_shift = -1 * bar_width + np.array([0, bar_width, 2 * bar_width])
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ax.bar(label_pos + data_shift[0], data1, width=bar_width, label="data1")
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ax.bar(label_pos + data_shift[1], data2, width=bar_width, label="data2")
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ax.bar(label_pos + data_shift[2], data3, width=bar_width, label="data3")
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ax.set_xticks(label_pos, categories)
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ax.legend()
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@check_figures_equal(extensions=["png"])
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def test_grouped_bar_dict_of_datasets(fig_test, fig_ref):
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categories = ['A', 'B']
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data_dict = dict(data1=[1, 1.2], data2=[2, 2.4], data3=[3, 3.6])
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ax = fig_test.subplots()
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ax.grouped_bar(data_dict, tick_labels=categories)
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ax.legend()
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ax = fig_ref.subplots()
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ax.grouped_bar(data_dict.values(), tick_labels=categories, labels=data_dict.keys())
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ax.legend()
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@check_figures_equal(extensions=["png"])
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def test_grouped_bar_array(fig_test, fig_ref):
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categories = ['A', 'B']
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array = np.array([[1, 2, 3], [1.2, 2.4, 3.6]])
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labels = ['data1', 'data2', 'data3']
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ax = fig_test.subplots()
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ax.grouped_bar(array, tick_labels=categories, labels=labels)
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ax.legend()
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ax = fig_ref.subplots()
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list_of_datasets = [column for column in array.T]
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ax.grouped_bar(list_of_datasets, tick_labels=categories, labels=labels)
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ax.legend()
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@check_figures_equal(extensions=["png"])
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def test_grouped_bar_dataframe(fig_test, fig_ref, pd):
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categories = ['A', 'B']
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labels = ['data1', 'data2', 'data3']
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df = pd.DataFrame([[1, 2, 3], [1.2, 2.4, 3.6]],
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index=categories, columns=labels)
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ax = fig_test.subplots()
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ax.grouped_bar(df)
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ax.legend()
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ax = fig_ref.subplots()
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list_of_datasets = [df[col].to_numpy() for col in df.columns]
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ax.grouped_bar(list_of_datasets, tick_labels=categories, labels=labels)
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ax.legend()
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def test_boxplot_dates_pandas(pd):
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# smoke test for boxplot and dates in pandas
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data = np.random.rand(5, 2)

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