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celeste-ai/celeste/plot.py

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import torch
from pathlib import Path
import celeste_ai.plotting as plotting
from multiprocessing import Pool
m = Path("model_data/current")
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def plot_pred(src_model):
plotting.predicted_reward(
src_model,
m / f"plots/predicted/{src_model.stem}.png",
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device = torch.device("cpu")
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)
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def plot_best(src_model):
plotting.best_action(
src_model,
m / f"plots/best_action/{src_model.stem}.png",
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device = torch.device("cpu")
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)
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for k, v in {
#"prediction": plot_pred,
"best_action": plot_best,
}.items():
print(f"Making {k} plots...")
with Pool(5) as p:
p.map(
v,
list((m / "model_archive").iterdir())
)