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Adaptive Washout Filter Based on Fuzzy Logic for a Motion Simulation Platform With Consideration of Joints Limitations

Chalak Qazani, Mohammad Reza und Asadi, Houshyar und Bellmann, Tobias und Mohamed, Shady und Peng Lim, Chee und Nahavandi, Saeid (2020) Adaptive Washout Filter Based on Fuzzy Logic for a Motion Simulation Platform With Consideration of Joints Limitations. IEEE Transactions on Vehicular Technology, 69 (11), Seiten 12547-12558. IEEE - Institute of Electrical and Electronics Engineers. doi: 10.1109/TVT.2020.3023478. ISSN 0018-9545.

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Offizielle URL: https://ieeexplore.ieee.org/document/9195770

Kurzfassung

Motion simulation platforms (MSPs) are widely used to generate driving/flying motion sensations for the users. The MSPs have a restricted workspace area due to the dynamical and physical restrictions of the Motion Platforms active joints as well as the physical limitations of its passive joints. The motion cueing algorithm (MCA) is the reproduction of the motion signal including linear accelerations and angular velocities. It aims to simultaneously respect the MSP's workspace limitations and make the same motion feeling for the user as a real vehicle. The Classical washout filter (WF) is a well-known type of MCA. The classical WF is easy to set-up, offers a low computational burden and high functionality but has some major drawbacks such as fixed WF parameters tuned according to worst-case scenarios and no consideration of the human vestibular system. As a result, adaptive WFs were developed to consider the human vestibular system and enhance the efficiency of the method using time-varying filters. The existing adaptive WFs only cogitate the boundaries of the end-effector in the Cartesian coordinate space as a substitute for the active and passive joints limitations, which is MSP's main limiting factor. This conservative assumption reduces the available workspace area of the MSP and increases the motion sensation error for the MSPs user. In this study, a fuzzy logic-based WF is developed, to consider the dynamical and physical boundaries of the active joints as well as the physical boundaries of the passive joints. A genetic algorithm is used to select the membership functions values of the active and passive joints boundaries. The model is designed using MATLAB /Simulink and the outcomes demonstrate the efficiency of the proposed method versus existing adaptive WFs.

elib-URL des Eintrags:https://elib.dlr.de/138368/
Dokumentart:Zeitschriftenbeitrag
Titel:Adaptive Washout Filter Based on Fuzzy Logic for a Motion Simulation Platform With Consideration of Joints Limitations
Autoren:
AutorenInstitution oder E-Mail-AdresseAutoren-ORCID-iDORCID Put Code
Chalak Qazani, Mohammad RezaInstitute for Intelligent Systems Research and Innovation Deakin Universityhttps://orcid.org/0000-0003-1839-029XNICHT SPEZIFIZIERT
Asadi, HoushyarInstitute for Intelligent Systems Research and Innovation Deakin Universityhttps://orcid.org/0000-0002-3620-8693NICHT SPEZIFIZIERT
Bellmann, TobiasTobias.Bellmann (at) dlr.dehttps://orcid.org/0000-0002-5897-6191NICHT SPEZIFIZIERT
Mohamed, ShadyInstitute for Intelligent Systems Research and Innovation Deakin UniversityNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Peng Lim, CheeInstitute for Intelligent Systems Research and Innovation Deakin Universityhttps://orcid.org/0000-0003-4191-9083NICHT SPEZIFIZIERT
Nahavandi, SaeidNICHT SPEZIFIZIERThttps://orcid.org/0000-0002-0360-5270NICHT SPEZIFIZIERT
Datum:September 2020
Erschienen in:IEEE Transactions on Vehicular Technology
Referierte Publikation:Ja
Open Access:Ja
Gold Open Access:Nein
In SCOPUS:Ja
In ISI Web of Science:Ja
Band:69
DOI:10.1109/TVT.2020.3023478
Seitenbereich:Seiten 12547-12558
Verlag:IEEE - Institute of Electrical and Electronics Engineers
ISSN:0018-9545
Status:veröffentlicht
Stichwörter:Motion cueing algorithm, fuzzy logic,dynamical and physical limitations, hexapod platform, human sensation error, washout filter (WF), genetic algorithm
HGF - Forschungsbereich:Luftfahrt, Raumfahrt und Verkehr
HGF - Programm:Raumfahrt
HGF - Programmthema:Technik für Raumfahrtsysteme
DLR - Schwerpunkt:Raumfahrt
DLR - Forschungsgebiet:R SY - Technik für Raumfahrtsysteme
DLR - Teilgebiet (Projekt, Vorhaben):R - Terrestrische Assistenz-Robotik (alt)
Standort: Oberpfaffenhofen
Institute & Einrichtungen:Institut für Systemdynamik und Regelungstechnik > Raumfahrt-Systemdynamik
Hinterlegt von: Bellmann, Tobias
Hinterlegt am:03 Dez 2020 09:59
Letzte Änderung:08 Dez 2020 16:36

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