indianakhil/engine-predictive-maintenance
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Binary classifier predicting engine health (Normal vs Faulty) from six sensor readings.
indianakhil/engine-predictive-maintenance (19,535 records){'learning_rate': 0.5, 'n_estimators': 50}| Metric | Score |
|---|---|
| Accuracy | 0.6644 |
| Precision | 0.6787 |
| Recall | 0.8883 |
| F1-Score | 0.7695 |
| ROC-AUC | 0.6960 |
| CV F1 (5-fold) | 0.7663 |
Engine_RPM, Lub_Oil_Pressure, Fuel_Pressure, Coolant_Pressure, Lub_Oil_Temperature, Coolant_Temperature
from huggingface_hub import hf_hub_download
import joblib, pandas as pd
model = joblib.load(hf_hub_download(
repo_id='indianakhil/engine-predictive-maintenance-model',
filename='best_model.pkl'))
pred = model.predict(X) # 0=Normal, 1=Faulty
prob = model.predict_proba(X)[:, 1] # Fault probability