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Deep Koopman Operator-Based Linear Quadratic Regulator for Quadrotor Pursuit-Evasion Game

  • Beijing Institute of Technology
  • Beijing Institute of Technology
  • Tsinghua University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

This paper proposes a deep Koopman operatorbased output regulation framework to address the pursuitevasion (PE) game problem of quadrotors with strongly nonlinear dynamics. First, for the nonlinear quadrotor dynamics, a deep neural network is trained to lift the physical states into a high-dimensional latent linear space. Then, an output matrix is introduced to map the lifted states to task-relevant outputs. Next, a discrete-time linear quadratic regulator (LQR) with an output-weighted quadratic cost is formulated to yield a Riccati-based controller for efficient regulation. In contrast to existing Koopman-based control schemes, the proposed approach improves the modeling fidelity for nonlinear flight dynamics. Finally, simulation demonstrates that the proposed controller outperforms the baseline controller and also provides a principled and computationally efficient alternative to purely reinforcement learning (RL)-based policies.

Original languageEnglish
Title of host publication2026 IEEE 20th International Conference on Control and Automation, ICCA 2026
PublisherIEEE Computer Society
Pages594-599
Number of pages6
ISBN (Electronic)9798331548537
DOIs
Publication statusPublished - 2026
Event20th IEEE International Conference on Control and Automation, ICCA 2026 - Almaty, Kazakhstan
Duration: 16 Jun 202619 Jun 2026

Publication series

NameIEEE International Conference on Control and Automation, ICCA
ISSN (Print)1948-3449
ISSN (Electronic)1948-3457

Conference

Conference20th IEEE International Conference on Control and Automation, ICCA 2026
Country/TerritoryKazakhstan
CityAlmaty
Period16/06/2619/06/26

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