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Titel:

Stabilized neural differential equations for learning dynamics with explicit constraints

Dokumenttyp:
Konferenzbeitrag
Autor(en):
White, Alistair; Kilbertus, Niki; Gelbrecht, Maximilian; Boers, Niklas
Abstract:
Many successful methods to learn dynamical systems from data have recently been introduced. However, ensuring that the inferred dynamics preserve known constraints, such as conservation laws or restrictions on the allowed system states, remains challenging. We propose stabilized neural differential equations (SNDEs), a method to enforce arbitrary manifold constraints for neural differential equations. Our approach is based on a stabilization term that, when added to the original dynamics, render...     »
Kongress- / Buchtitel:
Proceedings of the 37th International Conference on Neural Information Processing Systems
Verlag / Institution:
Curran Associates Inc.
Verlagsort:
Red Hook, NY, USA
Jahr:
2024
Serientitel:
NIPS '23
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