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wastewater-treatment

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N2O Digital Twin for wastewater treatment — predicts N2O emissions up to 60 minutes ahead (6-step multi-horizon) using 10-minute interval time-series data. Built with XGBoost + LSTM ensemble model, FastAPI backend, and a static frontend dashboard for operational decision-making (e.g., DO control scenarios).

  • Updated Aug 8, 2026
  • Python

Reproducible deep-learning image-classification pipeline for industrial soft sensing. Originally built for sludge-cake quality monitoring at DC Water Blue Plains AWWTP. Six architectures (FastViT, EfficientNet, MobileNet, EfficientFormerV2, DeepTEN-ResNet, sparse-AE CNN) compared with multi-seed statistics on Modal cloud GPUs.

  • Updated May 10, 2026
  • Python

Python framework for kinetic and process-level assessment of advanced oxidation processes, including water-matrix effects, oxidant utilization, and engineering interpretation.

  • Updated Jul 29, 2026
  • Python

Code for "Machine Learning Anomaly Detection Under Climate-Driven Cross-Sectional Dependency in Wastewater Systems" (HIC 2026). Cross-sectional LSTM autoencoder and Gaussian copula detectors with rolling-origin validation, climate-regime (normal/hot/wet) stratification, and threshold robustness analysis.

  • Updated Sep 30, 2026
  • Python

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