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Tangent-Space Regularization for Neural-Network Models of Dynamical Systems – Olive Cawiding

August 21 @ 10:00 am - 12:00 pm KST

https://www.ibs.re.kr, 55 Expo-ro Yuseong-gu
Daejeon, Korea, Republic of
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Speaker

Olive Cawiding
Graduate student at Dept. of Mathematical Sciences, KAIST

In this talk, we discuss the paper “Tangent-Space Regularization for Neural-Network Models of Dynamical Systems” by Fredrik B Carlson et al, arXiv (2026).

Abstract:

This work introduces the concept of tangent space regularization for neural-network models of dynamical systems. The tangent space to the dynamics function of many physical systems of interest in control applications exhibits useful properties, e.g., smoothness, motivating regularization of the model Jacobian along system trajectories using assumptions on the tangent space of the dynamics. Without assumptions, large amounts of training data are required for a neural network to learn the full non-linear dynamics without overfitting. We compare different network architectures on one-step prediction and simulation performance and investigate the propensity of different architectures to learn models with correct input-output Jacobian. Furthermore, the influence of L2 weight regularization on the learned Jacobian eigenvalue spectrum, and hence system stability, is investigated.

Details

  • Date: August 21
  • Time:
    10:00 am - 12:00 pm KST
  • Event Category:

Organizer

  • Jae Kyoung Kim
  • Email jaekkim@kaist.ac.kr

Venue

IBS 의생명수학그룹 Biomedical Mathematics Group
기초과학연구원 수리및계산과학연구단 의생명수학그룹
대전 유성구 엑스포로 55 (우) 34126
IBS Biomedical Mathematics Group (BIMAG)
Institute for Basic Science (IBS)
55 Expo-ro Yuseong-gu Daejeon 34126 South Korea
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