COVID-19 monitoring data from wastewater.
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Updated
Jul 24, 2026 - HTML
COVID-19 monitoring data from wastewater.
A Unified Python Interface for Water Resource Data Acquisition
Supplementary files for "Integrated Design and Optimization of Water-Energy Nexus: Combining Wastewater Treatment and Energy System"
A knowledge graph of the wastewater treatment microbiome and its biological context
A Julia Modelingtoolkit.jl Implementation of Anaerobic Digestion Model No.1 (ADM1)
AI-driven predictive modeling for wastewater treatment optimization. Utilizing the UCI dataset to develop virtual soft-sensors for BOD/COD monitoring and operational sustainability.
Comparison of clustering methods for determining the operational states of a wastewater treatment plant (BSc project in Statistics) 🔧 🚰 🔄 ♻️ 💦
Data and code for LaMartina et al., 2021
Training stiff NODE in data-driven wastewater process modelling
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.
Official AQUALIS resources for stormwater, wastewater, and pond management; environmental compliance, maintenance, and best practices.
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).
Documentation for the PooPyLab Project
Multi-agent RL for wastewater treatment plant control (BSM2/Simulink) — MSc Thesis
A R-Shiny web application to access, visualize and analyze cw research data.
一款污水处理脱氮除磷相关计算软件。基于德国DWA、ATV协会的技术规范
An end-to-end MLOps pipeline that predicts wastewater aeration needs using BSM1 simulation data. Features time-series forecasting, model serving, and data drift monitoring.
Python framework for kinetic and process-level assessment of advanced oxidation processes, including water-matrix effects, oxidant utilization, and engineering interpretation.
Statistical Optimization of Multi-Factor Adsorption Processes Using Factorial ANOVA: A JASP-Based Methodology Demonstration | Synthetic dataset (n=2,304), Python data generation, JASP analysis workflow | Open Science
Jiangsu Kintep Environmental Protection Co., Ltd. (江苏康泰环保股份有限公司), founded in 2011 and headquartered in Taizhou, Jiangsu, China, is a national high-tech enterprise that designs, manufactures, sells, and services new-type environmental-protection equipment and complete turnkey solutions.
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