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fix: improvements to the doppelganger model
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""" | ||
DoppelGANger architecture example file | ||
""" | ||
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# Importing necessary libraries | ||
import pandas as pd | ||
from os import path | ||
import matplotlib.pyplot as plt | ||
from ydata_synthetic.synthesizers.timeseries import TimeSeriesSynthesizer | ||
from ydata_synthetic.synthesizers import ModelParameters, TrainParameters | ||
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# Read the data | ||
mba_data = pd.read_csv("../../data/fcc_mba.csv") | ||
numerical_cols = ["traffic_byte_counter", "ping_loss_rate"] | ||
categorical_cols = [col for col in mba_data.columns if col not in numerical_cols] | ||
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# Define model parameters | ||
model_args = ModelParameters(batch_size=100, | ||
lr=0.001, | ||
betas=(0.2, 0.9), | ||
latent_dim=20, | ||
gp_lambda=2, | ||
pac=1) | ||
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train_args = TrainParameters(epochs=400, sequence_length=56, | ||
sample_length=8, rounds=1, | ||
measurement_cols=["traffic_byte_counter", "ping_loss_rate"]) | ||
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# Training the DoppelGANger synthesizer | ||
if path.exists('doppelganger_mba'): | ||
model_dop_gan = TimeSeriesSynthesizer.load('doppelganger_mba') | ||
else: | ||
model_dop_gan = TimeSeriesSynthesizer(modelname='doppelganger', model_parameters=model_args) | ||
model_dop_gan.fit(mba_data, train_args, num_cols=numerical_cols, cat_cols=categorical_cols) | ||
model_dop_gan.save('doppelganger_mba') | ||
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# Generate synthetic data | ||
synth_data = model_dop_gan.sample(n_samples=600) | ||
synth_df = pd.concat(synth_data, axis=0) | ||
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# Create a plot for each measurement column | ||
plt.figure(figsize=(10, 6)) | ||
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plt.subplot(2, 1, 1) | ||
plt.plot(mba_data['traffic_byte_counter'].reset_index(drop=True), label='Real Traffic') | ||
plt.plot(synth_df['traffic_byte_counter'].reset_index(drop=True), label='Synthetic Traffic', alpha=0.7) | ||
plt.xlabel('Index') | ||
plt.ylabel('Value') | ||
plt.title('Traffic Comparison') | ||
plt.legend() | ||
plt.grid(True) | ||
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plt.subplot(2, 1, 2) | ||
plt.plot(mba_data['ping_loss_rate'].reset_index(drop=True), label='Real Ping') | ||
plt.plot(synth_df['ping_loss_rate'].reset_index(drop=True), label='Synthetic Ping', alpha=0.7) | ||
plt.xlabel('Index') | ||
plt.ylabel('Value') | ||
plt.title('Ping Comparison') | ||
plt.legend() | ||
plt.grid(True) | ||
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plt.tight_layout() | ||
plt.show() |
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