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What Godly demonstrated
Built a leakage-aware gas-turbine TEY predictor end to end: selected the eight legitimate sensor features, excluded downstream CO/NOx emissions, and validated on a locked later-period test split. Compared a LinearRegression baseline with a RandomForest model and showed the forest improved held-out MAE from 2.90 to 1.53 MWh with R² rising to 0.983. Also authored a concise model card covering intended use, limitations, and drift monitoring.
- Leakage-Free Feature Selection
- Time-Based Model Validation
- Honest Held-Out Evaluation
- Model Risk Communication
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