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Missing examples for the map and map_dataarray methods of FacetGrid objects

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還沒有人認領這個 Issue。

評估

難度
3/5
預估耗時
1-2 天
新手友好度
45/100
Issue 類型
文件
描述清晰度
基本清楚
活躍度
停滯
技術堆疊
jupyter-notebook, matplotlib, numpy, pandas, python

研究方向

The issue names no target file; start by locating the official FacetGrid documentation and existing examples for map and map_dataarray. Adapt the proposed air-temperature example to show both methods, and consider how the boolean overlay is represented. Done means newcomers can follow documented examples for adding hatching or stippling to faceted plots.

由索引模型根據 Issue 內容生成。

描述

enhancement visualization

Faceted plots are a great feature of xarray, in my view, sometimes presented as a 'quick and dirty' way to plot data, while it could be instead the best way to produce high quality subplot panels without any tedious loop on matplotlib axes.
I have been struggling to understand how map and map_dataarray methods work to overlay, e.g. hatching or stippling to 2D faceted plots derived from xr.plot.pcolormesh or xr.plot.imshow . This is very useful to highlight values labelled as True after passing a statistical test for example.
I found a way to go with the map_dataarray method (Note that I have never succeeded in using the map method for datasets. I do not understand how it works).
Below, I propose an example based on the official documentation. Feel free to use it or adapt it to improve the Xarray documentation:

import numpy as np;
import pandas as pd;
import matplotlib.pyplot as plt;
import xarray as xr

airtemps = xr.tutorial.open_dataset("air_temperature")
air = airtemps.air - 273.15
t = air.isel(time=slice(0, 365 * 4, 250))
warm = t>15    #Suppose we want to hatch regions with temperature warmer than 15°C. Quite a dumb idea but this is just to illustrate
test = xr.concat([t,warm],dim='dummy')
g_simple = test.isel(dummy=0).plot(x="lon", y="lat", col="time", col_wrap=3)
g_simple.data = test.isel(dummy=1) #Here I just replace the temperature data of the FacetGrid object with the boolean data 
g_simple.map_dataarray(xr.plot.contourf,x='lon',y='lat', levels=3, hatches=[ '' , '////' ], alpha=0, add_colorbar=False)

plt.show()

Figure_1

主要語言
Jupyter Notebook
星號
204
分支
121
PR 合併指標
30 天內沒有已合併 PR

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