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from netCDF4 import Dataset |
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import matplotlib.pyplot as plt |
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from matplotlib.cm import get_cmap |
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import cartopy.crs as crs |
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from cartopy.feature import NaturalEarthFeature |
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from wrf import to_np, getvar, smooth2d, get_cartopy, cartopy_xlim, cartopy_ylim, latlon_coords |
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# Open the NetCDF file |
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ncfile = Dataset("/Users/ladwig/Documents/wrf_files/problem_files/cfrac_bug/wrfout_d02_1987-10-01_00:00:00") |
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# Get the sea level pressure |
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ctt = getvar(ncfile, "ctt") |
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# Get the latitude and longitude points |
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lats, lons = latlon_coords(ctt) |
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# Get the cartopy mapping object |
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cart_proj = get_cartopy(ctt) |
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# Create a figure |
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fig = plt.figure(figsize=(12,9)) |
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# Set the GeoAxes to the projection used by WRF |
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ax = plt.axes(projection=cart_proj) |
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# Download and add the states and coastlines |
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states = NaturalEarthFeature(category='cultural', scale='50m', facecolor='none', |
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name='admin_1_states_provinces_shp') |
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ax.add_feature(states, linewidth=.5) |
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ax.coastlines('50m', linewidth=0.8) |
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# Make the contour outlines and filled contours for the smoothed sea level pressure. |
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plt.contour(to_np(lons), to_np(lats), to_np(ctt), 10, colors="black", |
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transform=crs.PlateCarree()) |
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plt.contourf(to_np(lons), to_np(lats), to_np(ctt), 10, transform=crs.PlateCarree(), |
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cmap=get_cmap("jet")) |
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# Add a color bar |
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plt.colorbar(ax=ax, shrink=.62) |
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# Set the map limits. Not really necessary, but used for demonstration. |
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ax.set_xlim(cartopy_xlim(ctt)) |
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ax.set_ylim(cartopy_ylim(ctt)) |
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# Add the gridlines |
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ax.gridlines(color="black", linestyle="dotted") |
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plt.title("Cloud Top Temperature") |
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plt.show() |
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