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sismoiMapPics.py
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sismoiMapPics.py
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import os
import psycopg2
from PIL import Image
import struct
import matplotlib.pyplot as plt
import pandas as pd
import geopandas as gpd
from matplotlib.colors import ListedColormap
sqlvalues = '''
select a.geom,b.value,
case
when c.pessimist = 0 then
case
when b.value >= 0.0 and b.value <= 0.2 then '#F40000'
when b.value > 0.2 and b.value <= 0.4 then '#FF8300'
when b.value > 0.4 and b.value <= 0.6 then '#FFCD00'
when b.value > 0.6 and b.value <= 0.8 then '#A9DE00'
when b.value > 0.8 and b.value <= 1.0 then '#02C650'
else '#ffffff'
end
else
case
when b.value >= 0.0 and b.value <= 0.2 then '#02C650'
when b.value > 0.2 and b.value <= 0.4 then '#A9DE00'
when b.value > 0.4 and b.value <= 0.6 then '#FFCD00'
when b.value > 0.6 and b.value <= 0.8 then '#FF8300'
when b.value > 0.8 and b.value <= 1.0 then '#F40000'
else '#ffffff'
end
end as color
from county a
inner join value b
on a.id = b.county_id
inner join indicator c
on b.indicator_id = c.id
where b.indicator_id = {0}
and scenario_id is null
'''
conn = psycopg2.connect(dbname="impactaclima", user="postgres", password="ebaeba18")
dpi = 12.8214
sismoi_colormap = ListedColormap(['#00cc00', '#aecc23', '#ffcc33', '#f18c2b', '#d7191b'], name='sismoi')
def crop(image_path, coords, saved_location):
image_obj = Image.open(image_path)
cropped_image = image_obj.crop(coords)
cropped_image.save(saved_location)
def plotIndicadorSemiarido(indicator_id,title,pessimist):
f, ax = plt.subplots(1, figsize=(20, 20), frameon=False)
ax.set_axis_off()
plt.axis('off')
f.set_size_inches(160, 160)
values=gpd.read_postgis(sqlvalues.format(indicator_id), conn,
geom_col='geom',
coerce_float=False)
if len(values) == 0:
return
gpd.plotting.plot_polygon_collection(ax=ax, geoms=values['geom'], color=values['color'], linewidth=8.0,
edgecolor='#d7d7d7')
minx, miny, maxx, maxy = values.total_bounds
r = 1.5
# ax.set_title(title, fontsize=20)
# f.suptitle(title, fontsize=20)
dx = maxx - minx
dy = maxy - miny
ax.set_xlim(minx - dx / r, maxx + dx / r)
ax.set_ylim(miny - dy / r, maxy + dy / r)
# legenda = ax.get_legend()
# ax.legend(title='Legenda')
fname = r'd:\temp\sismoi\{2}-{0}_{1}.png'.format(title.replace(' ', '_').replace('/','_'),'1-verde' if pessimist == 0.0 else '1-vermelho',indicator_id)
f.savefig(fname, facecolor='#8fc8ff', pad_inches=0, bbox_inches='tight', dpi=dpi)
plt.close(f)
print('{0} salvo.'.format(fname))
crop(fname, (10, 225, 1500, 1175), fname)
if __name__ == '__main__':
indicators = pd.read_sql('select id,title,pessimist from indicator where id > 0 order by id',conn)
for index, row in indicators.iterrows():
plotIndicadorSemiarido(row['id'],row['title'],row['pessimist'])
print()
conn.close()
print('TheEnd')