Physics-Guided, Physics-Informed, and Physics-Encoded Neural Networks and Operators in Scientific Computing: Fluid and Solid Mechanics

被引:34
|
作者
Faroughi, Salah A. [1 ]
Pawar, Nikhil M. [1 ]
Fernandes, Celio [1 ,2 ]
Raissi, Maziar [3 ]
Das, Subasish [4 ]
Kalantari, Nima K. [5 ]
Kourosh Mahjour, Seyed [1 ]
机构
[1] Texas State Univ, Ingram Sch Engn, Geointelligence Lab, San Marcos, TX 78666 USA
[2] Univ Minho, Ctr Math CMAT, Campus Gualtar, P-4710057 Braga, Portugal
[3] Univ Colorado Boulder, Dept Appl Math, Boulder, CO 61010 USA
[4] Texas State Univ, Ingram Sch Engn, Artificial Intelligence Transportat Lab, San Marcos, TX 78666 USA
[5] Texas A&M Univ, Comp Sci & Engn Dept, College Stn, TX 77843 USA
基金
美国国家科学基金会;
关键词
physics-guided neural networks; physics-informed neural networks; physics-encoded neural networks; solid mechanics; fluid mechanics; machine learning; deep learning; scientific computing; artificial intelligence; data-driven engineering; machine learning for engineering applications; multiphysics modeling and simulation; physics-based simulations; FATIGUE LIFE PREDICTION; DEEP LEARNING FRAMEWORK; TOPOLOGY OPTIMIZATION; INVERSE PROBLEMS; UNIVERSAL APPROXIMATION; DAMAGE IDENTIFICATION; NONLINEAR OPERATORS; POROUS-MEDIA; MACHINE; FLOW;
D O I
10.1115/1.4064449
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Advancements in computing power have recently made it possible to utilize machine learning and deep learning to push scientific computing forward in a range of disciplines, such as fluid mechanics, solid mechanics, materials science, etc. The incorporation of neural networks is particularly crucial in this hybridization process. Due to their intrinsic architecture, conventional neural networks cannot be successfully trained and scoped when data are sparse, which is the case in many scientific and engineering domains. Nonetheless, neural networks provide a solid foundation to respect physics-driven or knowledge-based constraints during training. Generally speaking, there are three distinct neural network frameworks to enforce the underlying physics: (i) physics-guided neural networks (PgNNs), (ii) physics-informed neural networks (PiNNs), and (iii) physics-encoded neural networks (PeNNs). These methods provide distinct advantages for accelerating the numerical modeling of complex multiscale multiphysics phenomena. In addition, the recent developments in neural operators (NOs) add another dimension to these new simulation paradigms, especially when the real-time prediction of complex multiphysics systems is required. All these models also come with their own unique drawbacks and limitations that call for further fundamental research. This study aims to present a review of the four neural network frameworks (i.e., PgNNs, PiNNs, PeNNs, and NOs) used in scientific computing research. The state-of-the-art architectures and their applications are reviewed, limitations are discussed, and future research opportunities are presented in terms of improving algorithms, considering causalities, expanding applications, and coupling scientific and deep learning solvers.
引用
收藏
页数:31
相关论文
共 50 条
  • [31] Physics-Informed Neural Networks for shell structures
    Bastek, Jan-Hendrik
    Kochmann, Dennis M.
    EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2023, 97
  • [32] fPINNs: FRACTIONAL PHYSICS-INFORMED NEURAL NETWORKS
    Pang, Guofei
    Lu, Lu
    Karniadakis, George E. M.
    SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2019, 41 (04): : A2603 - A2626
  • [33] Spatiotemporal parallel physics-informed neural networks: A framework to solve inverse problems in fluid mechanics
    Xu, Shengfeng
    Yan, Chang
    Zhang, Guangtao
    Sun, Zhenxu
    Huang, Renfang
    Ju, Shengjun
    Guo, Dilong
    Yang, Guowei
    PHYSICS OF FLUIDS, 2023, 35 (06)
  • [34] Parametric extended physics-informed neural networks for solid mechanics with complex mixed boundary conditions
    Cao, Geyong
    Wang, Xiaojun
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2025, 194
  • [35] Automated machine learning exact dirichlet boundary physics-informed neural networks for solid mechanics
    Tian, Xiaoge
    Wang, Jiaji
    Kim, Chul-Woo
    Deng, Xiaowei
    Zhu, Yingjie
    ENGINEERING STRUCTURES, 2025, 330
  • [36] Physics-informed neural operator solver and super-resolution for solid mechanics
    Kaewnuratchadasorn, Chawit
    Wang, Jiaji
    Kim, Chul-Woo
    COMPUTER-AIDED CIVIL AND INFRASTRUCTURE ENGINEERING, 2024, 39 (22) : 3435 - 3451
  • [37] Exact Dirichlet boundary Physics-informed Neural Network EPINN for solid mechanics
    Wang, Jiaji
    Mo, Y. L.
    Izzuddin, Bassam
    Kim, Chul-Woo
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2023, 414
  • [38] Modeling System Dynamics with Physics-Informed Neural Networks Based on Lagrangian Mechanics
    Roehrl, Manuel A.
    Runkler, Thomas A.
    Brandtstetter, Veronika
    Tokic, Michel
    Obermayer, Stefan
    IFAC PAPERSONLINE, 2020, 53 (02): : 9195 - 9200
  • [39] Physics-guided Neural Networks for Hyperspectral Target Identification
    Klein, Natalie
    Carr, Adra
    Hampel-Arias, Zigfried
    Ziemann, Amanda
    Flynn, Eric
    APPLICATIONS OF MACHINE LEARNING 2023, 2023, 12675
  • [40] Fusing Physics to Fiber Nonlinearity Model for Optical Networks Based on Physics-Guided Neural Networks
    Liu, Xiaomin
    Fan, Yunyun
    Zhang, Yihao
    Cai, Meng
    Liu, Lei
    Yi, Lilin
    Hu, Weisheng
    Zhuge, Qunbi
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2022, 40 (17) : 5793 - 5802