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test_redd.py
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# -*- coding: utf-8 -*-
import pandas as pd
from os.path import isfile
import NILM as nilm
import matplotlib.pyplot as plt
redd_file = '/Volumes/Stockage/DATA/DATA_REDD/RAW/low_freq/house_1/channel_1.dat'
assert isfile(redd_file)
col = pd.MultiIndex.from_tuples([('A', 'P')])
df = pd.read_csv(redd_file, names=col, header=None, index_col=0, sep=' ', nrows=50000)
df.index = pd.to_datetime(df.index, unit='s', utc=True)
hdf_filename = '/Volumes/Stockage/DATA/Meters/meter_redd_1.h5'
meter = nilm.Meter.from_dataframe(df, hdf_filename)
meter.load_measurements(sampling_period=10)
meter.detect_events(detection_type='simple_edge')
#meter.detect_events(detection_type='steady_states', edge_threshold=30, state_threshold=10)
measures = meter.measurements
events = meter.events
plt.plot(measures.index, measures.values)
plt.plot(events.timestamps.values, events.P.values, 'ro')
plt.show()
meter.cluster_events('DBSCAN', eps=30)
meter.model_appliances('simple', distance_threshold = 100)
meter.track_consumptions('simple')
print len(meter.events)
"""
# Plot appliances
for phase, appliance in meter.appliance_consumptions.columns:
print appliance
#meter.measurements[phase][meter.power_types[0]].plot()
#meter.appliance_consumptions[phase][appliance].plot(color='r')
df0 = meter.measurements[phase][meter.power_types[0]]
df = meter.appliance_consumptions[phase][appliance]
plt.plot(df0.index, df0.values)
plt.plot(df.index, df.values, 'r')
plt.show()
phases = meter.phases
for phase in phases:
print 'phase :', phase
#meter.measurements[phase][meter.power_types[0]].plot()
meter.appliance_consumptions[phase].sum(axis=1).plot(color='r')
plt.show()
"""