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Estou querendo plotar vários mapas em uma mesma figura. Ate agora consegui plotar apenas uma. Gostaria que para cada produto a saída fosse uma unica figura com os 12 mapas correspondentes a cada mês.

Isso foi o que consegui fazer:

import os
import sys
import matplotlib as mpl
import numpy as np 
import pandas as pd
import netCDF4
from netCDF4 import Dataset
from random import randint
from struct import unpack
import matplotlib
import matplotlib.pyplot as plt
from mpl_toolkits.basemap import Basemap
from mpl_toolkits.basemap import addcyclic
import matplotlib.gridspec as gridspec
import matplotlib.colors as mc
from matplotlib.patches import Polygon
from astropy.time import Time 
import matplotlib.dates as mdates
import matplotlib.colors as colors
import datetime as dt
import glob
import calendar


def open_ARQ(file):
    fh = netCDF4.Dataset(FILE_NAME,'r')
    time = fh.variables['time'][:]
    lat  = fh.variables['lat'][:]
    lon  = fh.variables['lon'][:]
    prec = fh.variables['rain'][:,:,:]     # [tempo=1 a 366,lat,lon]
    mat_lat = np.zeros((len(lat),len(lon)))
    mat_lon = np.zeros((len(lat),len(lon)))
    for i in range(0,np.shape(mat_lon)[0],1): mat_lon[i,:] = lon
    for j in range(0,np.shape(mat_lat)[1],1): mat_lat[:,j] = lat
    fh.close()
    del(fh)
    return(time,mat_lat,mat_lon,prec)


#----------------------------------------------------------------------------
products=['a','b']
nprod = len(products)

for p in products:
    prod=p
    print(prod)

    month=['01','02','03','04','05','06','07','08','09','10','11','12']
    for m in month:
        mm=m
        print(mm)

        path = '/home/dados/*'+prod+'*/'
        pattern = '*'+prod+'*'+mm+'.nc'


        files = sorted(glob.glob(path + pattern))   # Esse comando lista todos os arquivos no diretorio

        for file in files:
            FILE_NAME = file
            print(FILE_NAME)
            (time,mat_lat,mat_lon,prec) = open_ARQ(FILE_NAME)

            mat_mean    = np.zeros([(np.shape(prec)[1]),(np.shape(prec)[2]),(nprod)]) # cria matrix zerada para ser usada no loop

            prec_unmask = prec.data
            nlat = np.shape(prec)[1]                          # pega o tamanho da matrix no indice 2
            nlon = np.shape(prec)[2]                          # pega o tamanho da matrix no indice 1 

            # loop para ler todos os tempos  em cada ponto de lat e lon
            inc = 0
            for ilat in np.arange(0,nlat,1):
                for ilon in np.arange(0,nlon,1):
                    for iprod in np.arange(0,nprod,1):
                        mat_mean[ilat,ilon,iprod]    = np.mean(prec_unmask[:,ilat,ilon])


        plt.pcolormesh(mat_mean[:,:,iprod])
        plt.savefig('/home/fig/TESTE.png', dpi=300, bbox_inches='tight')

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