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Air Quality Prediction with Physics-Guided Dual Neural ODEs in Open Systems

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Air pollution significantly threatens human health and ecosystems, necessitating effective air quality prediction to inform public policy. Traditional approaches are generally categorized into physics-based and data-driven models. Physics-based models usually struggle with high computational demands and closed-system assumptions, while data-driven models may overlook essential physical dynamics, confusing the capturing of spatiotemporal correlations. Although some physics-guided approaches combine the strengths of both models, they often face a mismatch between explicit physical equations and implicit learned representations. To address these challenges, we propose Air-DualODE, a novel physics-guided approach that integrates dual branches of Neural ODEs for air quality prediction. The first branch applies open-system physical equations to capture spatiotemporal dependencies for learning physics dynamics, while the second branch identifies the dependencies not addressed by the first in a fully data-driven way. These dual representations are temporally aligned and fused to enhance prediction accuracy. Our experimental results demonstrate that Air-DualODE achieves state-of-the-art performance in predicting pollutant concentrations across various spatial scales, thereby offering a promising solution for real-world air quality challenges.

Jindong Tian, Yuxuan Liang, Ronghui Xu, Peng Chen, Chenjuan Guo, Aoying Zhou, Lujia Pan, Zhongwen Rao, Bin Yang• 2024

Related benchmarks

TaskDatasetResultRank
Air quality forecastingGlobal air quality dataset
MAE12.78
29
Air quality forecastingUSA regional air quality
MAE10.49
24
Air quality forecastingEurope regional air quality
MAE12.3
24
Air quality forecastingChina regional air quality subset
MAE8.25
24
Air pollution forecastingNanjing Mobile
MAE8.83
17
Air pollution forecastingChangshu Mobile
MAE10.52
17
Air pollution forecastingNanjing National
MAE9.73
17
Air pollution forecastingChangshu National
MAE11.07
17
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