数学科学研究所
Insitute of Mathematical Science

Applied Mathematical Seminar41: Deep adaptive densitay approximation for Fokker-Planck type equations

Seminar| Institute of Mathematical Sciences

Time: FridayNovember 10th, 2023 , 16:30-17:30
Location:IMS, RS408

Speaker: Li Zeng, Fuzhou University



AbstractIn recent years, deep learning algorithms based on deep neural networks have been widely applied to solving high-dimensional partial differential equations, which include physics-informed neural networks (PINNs), Deep Ritz method, and so on. In this talk, we start from Fokker-Planck equations and propose flow-based adaptive sampling strategies to improve the efficiency and accuracy of PINNs for solving partial differential equations whose solutions are probability density functions.


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