A Robust Lateral Control Architecture for Off-Road Vehicle Guidance on Deformable Soils

被引:0
|
作者
Vieira, David [1 ]
Vie, Antoine [2 ]
Orjuela, Rodolfo [1 ]
Spisser, Matthias [2 ]
Basset, Michel [1 ]
机构
[1] Inst Rech Informat Math Automat & Signal IRIMAS, UR 7499, 12 Rue Freres Lumiere, F-68093 Mulhouse, France
[2] Technol & Strategy Grp T&S, 4 Rue Dublin, F-67300 Schiltigheim, France
关键词
off-road vehicle; deformable soils; autonomous vehicle; robust control; control architecture; lateral guidance; real-time implementation; TIRE MODEL; TRACKING;
D O I
10.3390/electronics12112395
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper introduces a novel lateral guidance strategy for autonomous ground vehicles operating in deformable environments. The strategy combines a geometric algorithm with a dynamic controller to leverage the advantages of both methods. The geometric algorithm is based on a modified Pure Pursuit method, which calculates the lateral error by considering a dynamic parameter associated with the look-ahead distance. The controller takes model uncertainties and time-variant parameters into account in a grid-based LPV (Linear Parameter Varying) synthesis. To validate the proposed control architecture, a dedicated off-road vehicle simulator that accounted for deformable soils was used. The effectiveness and robustness of the proposed lateral guidance strategy were demonstrated by integrating and validating the control architecture on a vehicle prototype. The results indicate that the proposed approach effectively handled complex and uncertain deformable environments. Overall, this study presents a new lateral guidance strategy that enhances the performance and reliability of autonomous ground vehicles in challenging environments.
引用
收藏
页数:21
相关论文
共 50 条
  • [31] Analysing and Modelling Off-Road Vehicle Availability
    Chovanec, A.
    TRANSPORT MEANS 2012, 2012, : 54 - 57
  • [32] Physiological Demands of Off-Road Vehicle Riding
    Burr, Jamie F.
    Jamnik, Veronica K.
    Shaw, Jim A.
    Gledhill, Norman
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2010, 42 (07): : 1345 - 1354
  • [33] EFFECTS OF OFF-ROAD VEHICLE TRAFFIC ON SOILS AND VEGETATION IN DENALI HIGHWAY REGION OF ALASKA
    SPARROW, SD
    WOODING, FJ
    WHITING, EH
    JOURNAL OF SOIL AND WATER CONSERVATION, 1978, 33 (01) : 20 - 27
  • [34] Wireless telemetry system of an Off-Road vehicle
    Graba, M.
    Mamala, J.
    Praznowski, K.
    Kowalski, M.
    INTERNATIONAL AUTOMOTIVE CONFERENCE (KONMOT2018), 2018, 421
  • [35] Mathematical Model of the off-Road Vehicle Suspension
    Maloch, M.
    Cornak, S.
    TRANSPORT MEANS 2018, PTS I-III, 2018, : 495 - 500
  • [36] Off-Road Vehicle VW Iltis.
    Nedvidek, Hans
    ATZ Automobiltechnische Zeitschrift, 1979, 81 (7-8) : 303 - 314
  • [37] Dynamic Analysis Of An Off-Road Vehicle Frame
    Tabacu, Stefan
    Stanescu, Nicolae-Doru
    Tabacu, Ion
    MATHEMATICAL METHODS, SYSTEMS THEORY AND CONTROL, 2009, : 328 - +
  • [38] Simulation of electric transmission for off-road vehicle
    Noréus, O. (Olof.Noreus@baesystems.se), 1600, var.pagings (International Society for Terrain Vehicle Systems):
  • [39] PREDICTION OF OFF-ROAD VEHICLE SYSTEM MOBILITY
    BARTLETT, GE
    BELSDORF, MR
    DEUTSCHM.JN
    SMITH, RL
    SAE TRANSACTIONS, 1969, 78 : 89 - &
  • [40] Enforcement of Off-Road Vehicle Laws in Iowa
    Qin, Evelyn S.
    Denning, Gerene M.
    Jennissen, Charles A.
    SAFETY, 2019, 5 (02):