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  • Reinforcement Learning with Function Approximation: From Linear to Nonlinear

    Jihao Long, Jiequn Han
    2023-09-25
    56251 4764 Pages:161-193 Open-access
  • Bridging Traditional and Machine Learning-Based Algorithms for Solving PDEs: The Random Feature Method

    Jingrun Chen, Xurong Chi, Weinan E, Zhouwang Yang
    2022-09-22
    47392 4907 Pages:268-298 Open-access
  • Reinforcement Learning Algorithm for Mixed Mean Field Control Games

    Andrea Angiuli, Nils Detering, Jean-Pierre Fouque, Mathieu Laurière, Jimin Lin
    2023-06-06
    32416 4128 Pages:108-137 Open-access
  • Interpolating Between BSDEs and PINNs: Deep Learning for Elliptic and Parabolic Boundary Value Problems

    Nikolas Nüsken, Lorenz Richter
    2024-03-21
    36192 4647 Pages:31-64 Open-access
  • Stochastic Delay Differential Games: Financial Modeling and Machine Learning Algorithms

    Robert Balkin, Hector D. Ceniceros, Ruimeng Hu
    2024-03-21
    26248 2832 Pages:23-63 Open-access
  • Deep Reinforcement Learning for Infinite Horizon Mean Field Problems in Continuous Spaces

    Andrea Angiuli, Jean-Pierre Fouque, Ruimeng Hu, Alan Raydan
    2025-03-12
    11439 1190 Pages:11-47 Open-access
  • A Note on Continuous-Time Online Learning

    Lexing Ying
    2025-03-12
    11128 1041 Pages:1-10 Open-access
  • On the Existence of Global Minima and Convergence Analyses for Gradient Descent Methods in the Training of Deep Neural Networks

    Arnulf Jentzen, Adrian Riekert
    2022-07-06
    41548 4262 Pages:141-246 Open-access
  • DeePN$^2$: A Deep Learning-Based Non-Newtonian Hydrodynamic Model

    Lidong Fang, Pei Ge, Lei Zhang, Weinan E, Huan Lei
    2024-03-21
    81852 5616 Pages:114-140 Open-access
  • Perturbational Complexity by Distribution Mismatch: A Systematic Analysis of Reinforcement Learning in Reproducing Kernel Hilbert Space

    Jihao Long, Jiequn Han
    2024-03-21
    80296 4425 Pages:1-37 Open-access
  • A Multimodal PDE Foundation Model for Prediction and Scientific Text Descriptions

    Elisa Negrini, Yuxuan Liu, Liu Yang, Stanley J. Osher, Hayden Schaeffer
    2025-11-14
    23974 135 Pages:290-317
  • Progressive Optimal Path Sampling for Closed-Loop Optimal Control Design with Deep Neural Networks

    Xuanxi Zhang, Jihao Long, Wei Hu, Weinan E, Jiequn Han
    2025-10-31
    24413 191 Pages:223-263
  • A Brief Survey on the Approximation Theory for Sequence Modelling

    Haotian Jiang, Qianxiao Li, Zhong Li, Shida Wang
    2024-03-21
    67351 5354 Pages:1-30 Open-access
  • RNN-Attention Based Deep Learning for Solving Inverse Boundary Problems in Nonlinear Marshak Waves

    Di Zhao, Weiming Li, Wengu Chen, Peng Song, Han Wang
    2023-06-06
    32949 4209 Pages:83-107 Open-access
  • Stochastic Operator Network: A Stochastic Maximum Principle Based Approach to Operator Learning

    Ryan Bausback, Jingqiao Tang, Lu Lu, Feng Bao, Phuoc-Toan Huynh
    2026-01-28
    109 46
  • Spectral Neural Networks: Approximation Theory and Optimization Landscape

    Chenghui Li, Rishi Sonthalia, Nicolás García Trillos
    2026-01-06
    123 206
  • Variational Formulations of ODE-Net as a Mean-Field Optimal Control Problem and Existence Results

    Noboru Isobe, Mizuho Okumura
    2024-11-07
    17828 2123 Pages:413-444 Open-access
  • Enhancing Accuracy in Deep Learning Using Random Matrix Theory

    Leonid Berlyand, Etienne Sandier, Yitzchak Shmalo, Lei Zhang
    2024-11-07
    19023 2480 Pages:347-412 Open-access
  • A Mathematical Framework for Learning Probability Distributions

    Hongkang Yang
    2022-12-30
    36213 4455 Pages:373-431 Open-access
  • Mean-Field Neural Networks-Based Algorithms for McKean-Vlasov Control Problems

    Huyên Pham, Xavier Warin
    2024-06-27
    26342 2438 Pages:176-214 Open-access
  • Neural Stochastic Volterra Equations: Learning Path-Dependent Dynamics

    Martin Bergerhausen, David J. Prömel, David Scheffels
    2025-12-17
    23793 129 Pages:264-289
  • Convergence Analysis of Discrete Diffusion Model: Exact Implementation Through Uniformization

    Hongrui Chen, Lexing Ying
    2025-06-03
    8596 902 Pages:108-127 Open-access
  • Beyond the Quadratic Approximation: The Multiscale Structure of Neural Network Loss Landscapes

    Chao Ma, Daniel Kunin, Lei Wu, Lexing Ying
    2022-09-22
    39410 4502 Pages:247-267 Open-access
  • The Cost-Accuracy Trade-Off in Operator Learning with Neural Networks

    Maarten V. de Hoop, Daniel Zhengyu Huang, Elizabeth Qian, Andrew M. Stuart
    2022-09-22
    40641 4304 Pages:299-341 Open-access
  • A Local Convergence Theory for the Stochastic Gradient Descent Method in Non-Convex Optimization with Non-Isolated Local Minima

    Taehee Ko, Xiantao Li
    2023-06-06
    26266 2620 Pages:138-160 Open-access
  • Why Self-Attention Is Natural for Sequence-to-Sequence Problems? A Perspective from Symmetries

    Chao Ma, Lexing Ying
    2023-09-25
    26921 3276 Pages:194-210 Open-access
  • A Deep Uzawa-Lagrange Multiplier Approach for Boundary Conditions in PINNs and Deep Ritz Methods

    Charalambos G. Makridakis, Aaron Pim, Tristan Pryer
    2025-09-12
    44196 715 Pages:166-191 Open-access
1 - 27 of 32 items 1 2 > >> 
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