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- DataArray.plot raises exception if contents are all NaN · 4 ✖
id | html_url | issue_url | node_id | user | created_at | updated_at ▲ | author_association | body | reactions | performed_via_github_app | issue |
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351825070 | https://github.com/pydata/xarray/issues/1780#issuecomment-351825070 | https://api.github.com/repos/pydata/xarray/issues/1780 | MDEyOklzc3VlQ29tbWVudDM1MTgyNTA3MA== | fmaussion 10050469 | 2017-12-14T20:21:18Z | 2017-12-14T20:21:18Z | MEMBER |
ups yes, I might have been confused by the warning, but it does work with latest mpl yes. The warning says: ``` In [1]: import numpy as np In [2]: import matplotlib.pyplot as plt In [3]: a = np.full((2, 2), np.NaN) In [4]: plt.imshow(a) In [5]: plt.show() /home/mowglie/.pyvirtualenvs/py3/lib/python3.5/site-packages/matplotlib/colors.py:897: UserWarning: Warning: converting a masked element to nan. dtype = np.min_scalar_type(value) /home/mowglie/.pyvirtualenvs/py3/lib/python3.5/site-packages/numpy/ma/core.py:748: UserWarning: Warning: converting a masked element to nan. data = np.array(a, copy=False, subok=subok) ``` |
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DataArray.plot raises exception if contents are all NaN 282000017 | |
351678963 | https://github.com/pydata/xarray/issues/1780#issuecomment-351678963 | https://api.github.com/repos/pydata/xarray/issues/1780 | MDEyOklzc3VlQ29tbWVudDM1MTY3ODk2Mw== | fmaussion 10050469 | 2017-12-14T11:01:04Z | 2017-12-14T12:15:34Z | MEMBER |
Yes, thanks! The best place to start would be to add a test to I investigated a bit and it seems that in the case of all nan data you would probably have to force |
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DataArray.plot raises exception if contents are all NaN 282000017 | |
351663421 | https://github.com/pydata/xarray/issues/1780#issuecomment-351663421 | https://api.github.com/repos/pydata/xarray/issues/1780 | MDEyOklzc3VlQ29tbWVudDM1MTY2MzQyMQ== | fmaussion 10050469 | 2017-12-14T09:57:51Z | 2017-12-14T09:57:51Z | MEMBER | Actually I changed my mind a little bit ;-). Matplotlib won't plot all NaNs images either: ```python import numpy as np import matplotlib.pyplot as plt a = np.full((2, 2), np.NaN)
plt.imshow(a) |
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DataArray.plot raises exception if contents are all NaN 282000017 | |
351661580 | https://github.com/pydata/xarray/issues/1780#issuecomment-351661580 | https://api.github.com/repos/pydata/xarray/issues/1780 | MDEyOklzc3VlQ29tbWVudDM1MTY2MTU4MA== | fmaussion 10050469 | 2017-12-14T09:51:01Z | 2017-12-14T09:51:01Z | MEMBER | Yes, I agree. We inherited the logic from seaborn, which also has this problem: ```python In [2]: import seaborn as sns In [3]: import numpy as np In [4]: a = np.zeros((2, 2)) * np.NaN In [6]: sns.heatmap(a) ValueError Traceback (most recent call last) <ipython-input-6-9ef15135ade2> in <module>() ----> 1 sns.heatmap(a) ~/.pyvirtualenvs/py3/lib/python3.5/site-packages/seaborn/matrix.py in heatmap(data, vmin, vmax, cmap, center, robust, annot, fmt, annot_kws, linewidths, linecolor, cbar, cbar_kws, cbar_ax, square, xticklabels, yticklabels, mask, ax, **kwargs) 515 plotter = _HeatMapper(data, vmin, vmax, cmap, center, robust, annot, fmt, 516 annot_kws, cbar, cbar_kws, xticklabels, --> 517 yticklabels, mask) 518 519 # Add the pcolormesh kwargs here ~/.pyvirtualenvs/py3/lib/python3.5/site-packages/seaborn/matrix.py in init(self, data, vmin, vmax, cmap, center, robust, annot, fmt, annot_kws, cbar, cbar_kws, xticklabels, yticklabels, mask) 166 # Determine good default values for the colormapping 167 self._determine_cmap_params(plot_data, vmin, vmax, --> 168 cmap, center, robust) 169 170 # Sort out the annotations ~/.pyvirtualenvs/py3/lib/python3.5/site-packages/seaborn/matrix.py in _determine_cmap_params(self, plot_data, vmin, vmax, cmap, center, robust) 205 calc_data = plot_data.data[~np.isnan(plot_data.data)] 206 if vmin is None: --> 207 vmin = np.percentile(calc_data, 2) if robust else calc_data.min() 208 if vmax is None: 209 vmax = np.percentile(calc_data, 98) if robust else calc_data.max() ~/.pyvirtualenvs/py3/lib/python3.5/site-packages/numpy/core/_methods.py in _amin(a, axis, out, keepdims) 27 28 def _amin(a, axis=None, out=None, keepdims=False): ---> 29 return umr_minimum(a, axis, None, out, keepdims) 30 31 def _sum(a, axis=None, dtype=None, out=None, keepdims=False): ValueError: zero-size array to reduction operation minimum which has no identity ``` Will try to submit a fix later today |
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DataArray.plot raises exception if contents are all NaN 282000017 |
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