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タイトル: ParNMPC – a parallel optimisation toolkit for real-time nonlinear model predictive control
著者: Deng, Haoyang
Ohtsuka, Toshiyuki  kyouindb  KAKEN_id  orcid https://orcid.org/0000-0003-3554-8933 (unconfirmed)
著者名の別形: 鄧, 昊洋
大塚, 敏之
キーワード: Nonlinear model predictive control
parallel computing
real-time optimization
発行日: Feb-2022
出版者: Taylor and Francis
誌名: International Journal of Control
巻: 95
号: 2
開始ページ: 390
終了ページ: 405
抄録: Real-time optimisation for nonlinear model predictive control (NMPC) has always been challenging, especially for fast-sampling and large-scale applications. This paper presents an efficient implementation of a highly parallelisable method for NMPC, called ParNMPC. The implementation details of ParNMPC are introduced, including a dedicated discretisation method suitable for parallelisation, a framework that unifies search direction calculation done using Newton's method and the parallel method, line search methods for guaranteeing convergence, and a warm start strategy for the interior-point method. To assess the performance of ParNMPC under different configurations, three experiments including a closed-loop simulation of a quadrotor, a real-world control example of a laboratory helicopter and a closed-loop simulation of a robot manipulator are shown. These experiments show the effectiveness and efficiency of ParNMPC both in serial and parallel.
著作権等: This is an Accepted Manuscript of an article published by Taylor & Francis in [International Journal of Control] on [27 Jul 2020], available at: https://doi.org/10.1080/00207179.2020.1798019.
The full-text file will be made open to the public on 27 Jul 2021 in accordance with publisher's 'Terms and Conditions for Self-Archiving'.
This is not the published version. Please cite only the published version. この論文は出版社版でありません。引用の際には出版社版をご確認ご利用ください。
URI: http://hdl.handle.net/2433/286316
DOI(出版社版): 10.1080/00207179.2020.1798019
出現コレクション:学術雑誌掲載論文等

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