Refatoração dos métodos de exibir e salvar gráfico
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@ -10,10 +10,8 @@ from mpl_toolkits.mplot3d import Axes3D
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#from sklearn.cross_validation import KFold
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#from sklearn.cross_validation import KFold
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from pyFTS.benchmarks import Measures
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from pyFTS.benchmarks import Measures
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from pyFTS.partitioners import Grid
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from pyFTS.partitioners import Grid
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from pyFTS.common import Membership, FuzzySet, FLR, Transformations
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from pyFTS.common import Membership, FuzzySet, FLR, Transformations, Util
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import time
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current_milli_time = lambda: int(round(time.time() * 1000))
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def getIntervalStatistics(original, models):
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def getIntervalStatistics(original, models):
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ret = "Model & RMSE & MAPE & Sharpness & Resolution & Coverage \\ \n"
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ret = "Model & RMSE & MAPE & Sharpness & Resolution & Coverage \\ \n"
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@ -37,15 +35,6 @@ def plotDistribution(dist):
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vmin=0, vmax=1, edgecolors=None)
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vmin=0, vmax=1, edgecolors=None)
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def uniquefilename(name):
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if '.' in name:
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tmp = name.split('.')
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return tmp[0] + str(current_milli_time()) + '.' + tmp[1]
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else:
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return name + str(current_milli_time())
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def plotComparedSeries(original, models, colors, typeonlegend=False, save=False, file=None,tam=[20, 5]):
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def plotComparedSeries(original, models, colors, typeonlegend=False, save=False, file=None,tam=[20, 5]):
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fig = plt.figure(figsize=tam)
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fig = plt.figure(figsize=tam)
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ax = fig.add_subplot(111)
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ax = fig.add_subplot(111)
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@ -89,10 +78,9 @@ def plotComparedSeries(original, models, colors, typeonlegend=False, save=False,
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ax.set_xlabel('T')
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ax.set_xlabel('T')
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ax.set_xlim([0, len(original)])
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ax.set_xlim([0, len(original)])
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if save:
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Util.showAndSaveImage(fig,file,save)
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plt.show()
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fig.savefig(uniquefilename(file))
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plt.close(fig)
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def plotComparedIntervalsAhead(original, models, colors, distributions, time_from, time_to,
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def plotComparedIntervalsAhead(original, models, colors, distributions, time_from, time_to,
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@ -158,10 +146,7 @@ def plotComparedIntervalsAhead(original, models, colors, distributions, time_fro
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ax.set_xlabel('T')
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ax.set_xlabel('T')
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ax.set_xlim([0, len(original)])
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ax.set_xlim([0, len(original)])
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if save:
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Util.showAndSaveImage(fig, file, save)
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plt.show()
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fig.savefig(uniquefilename(file))
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plt.close(fig)
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def plotCompared(original, forecasts, labels, title):
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def plotCompared(original, forecasts, labels, title):
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@ -17,3 +17,10 @@ def boxcox(original, plambda):
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else:
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else:
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modified = [math.log(original[t]) for t in np.arange(0, n)]
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modified = [math.log(original[t]) for t in np.arange(0, n)]
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return np.array(modified)
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return np.array(modified)
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def Z(original):
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mu = np.mean(original)
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sigma = np.std(original)
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z = [(k - mu)/sigma for k in original]
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return z
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20
common/Util.py
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20
common/Util.py
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@ -0,0 +1,20 @@
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import time
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import matplotlib.pyplot as plt
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current_milli_time = lambda: int(round(time.time() * 1000))
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def uniquefilename(name):
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if '.' in name:
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tmp = name.split('.')
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return tmp[0] + str(current_milli_time()) + '.' + tmp[1]
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else:
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return name + str(current_milli_time())
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def showAndSaveImage(fig,file,flag):
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if flag:
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plt.show()
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fig.savefig(uniquefilename(file))
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plt.close(fig)
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@ -4,12 +4,12 @@ import matplotlib as plt
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import matplotlib.colors as pltcolors
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import matplotlib.colors as pltcolors
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import matplotlib.pyplot as plt
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import matplotlib.pyplot as plt
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from mpl_toolkits.mplot3d import Axes3D
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from mpl_toolkits.mplot3d import Axes3D
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from pyFTS.common import Membership
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from pyFTS.common import Membership, Util
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def plotSets(data, sets, titles):
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def plotSets(data, sets, titles, tam=[12, 10], save=False, file=None):
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num = len(sets)
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num = len(sets)
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fig = plt.figure(figsize=[12, 10])
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fig = plt.figure(figsize=tam)
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maxx = max(data)
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maxx = max(data)
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minx = min(data)
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minx = min(data)
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h = 1/num
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h = 1/num
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@ -25,3 +25,5 @@ def plotSets(data, sets, titles):
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tmpx = [ kk for kk in np.arange(s.lower, s.upper)]
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tmpx = [ kk for kk in np.arange(s.lower, s.upper)]
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tmpy = [s.membership(kk) for kk in np.arange(s.lower, s.upper)]
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tmpy = [s.membership(kk) for kk in np.arange(s.lower, s.upper)]
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ax0.plot(tmpx, tmpy)
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ax0.plot(tmpx, tmpy)
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Util.showAndSaveImage(fig, file, save)
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