Swept path analyses using unmanned aerial system (UAS)

被引:0
|
作者
Bogdan, Kornelija [1 ]
Barisic, Ivana [2 ]
Moser, Vladimir [2 ]
Rajle, Damir [3 ]
机构
[1] RENCON Doo, Ribarska 1, Osijek 31000, Croatia
[2] Josip Juraj Strossmayer Univ Osijek, Fac Civil Engn & Architecture Osijek, Dept Geotech Transportat Engn & Geodesy, Vladimira Preloga 3, Osijek 31000, Croatia
[3] Vocat Sch Construct & Geodesy Osijek, Drinska 16a, Osijek 31000, Croatia
来源
关键词
UAS; swept path; traffic area design; vehicle trajectories;
D O I
10.13167/2022.25.3
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The aim of this study was the verification of unmanned aerial system (UAS) application in vehicle swept path analyses by analysing the advantages and disadvantages and comparing field test results with two software solutions. In this study, swept-path analyses were performed for two vehicle types and two turning angles. UAS images were used to extract the vehicle swept path and the results were compared with two commonly used swept-path analysis software. The results indicated larger deviations between the swept paths for an angle of 125 degrees for a light truck. For both analysed vehicles and turning angles, larger deviations were observed for the outermost point trajectory. Passenger cars occupy less space performing 125 degrees turns than software analysis predicts, indicating that they are on the safe side when designing vehicle manipulative surfaces. For the analysed light truck, a larger turning radius was observed than the predicted for a 125 degrees turning angle, which may be caused by the approaching and turning speeds under which the test was performed. Finally, while the UAS recording process is relatively simple and fast, data processing is demanding and time-consuming. To fulfil its full potential within swept path analyses, UAS needs to be complemented by proper data analysis software solutions for faster and more accurate swept path extraction, which would improve and rationalise the traffic area designing process.
引用
收藏
页码:24 / 31
页数:8
相关论文
共 50 条
  • [1] BIRD DETERRENCE IN A VINEYARD USING AN UNMANNED AERIAL SYSTEM (UAS)
    Bhusal, S.
    Khanal, K.
    Goel, S.
    Karkee, M.
    Taylor, M. E.
    TRANSACTIONS OF THE ASABE, 2019, 62 (02) : 560 - 568
  • [2] Phenotyping of sorghum panicles using Unmanned Aerial System (UAS) data
    Chang, A.
    Jung, J.
    Yeom, J.
    Maeda, M.
    Landivar, J.
    AUTONOMOUS AIR AND GROUND SENSING SYSTEMS FOR AGRICULTURAL OPTIMIZATION AND PHENOTYPING III, 2018, 10664
  • [3] Determining Subarctic Peatland Vegetation Using an Unmanned Aerial System (UAS)
    Palace, Michael
    Herrick, Christina
    DelGreco, Jessica
    Finnell, Daniel
    Garnello, Anthony John
    McCalley, Carmody
    McArthur, Kellen
    Sullivan, Franklin
    Varner, Ruth K.
    REMOTE SENSING, 2018, 10 (09)
  • [4] Unmanned Aircraft/Aerial System (UAS) Noise Compilation
    Rochat, Judy
    NOISE CONTROL ENGINEERING JOURNAL, 2023, 71 (06) : 398 - 398
  • [5] Three Dimensional Agricultural Land Modeling using Unmanned Aerial System (UAS)
    Mahmood, Faisal
    Abbas, Khizar
    Raza, Asif
    Khan, Muhammad Awais
    Khan, Prince Waqas
    INTERNATIONAL JOURNAL OF ADVANCED COMPUTER SCIENCE AND APPLICATIONS, 2019, 10 (01) : 443 - 449
  • [6] Thermal imaging of a sea turtle arribada using an Unmanned Aerial System (UAS)
    Evangelista, D.
    Edwards, C.
    Hall, M.
    Martin, W.
    Nemani, S.
    INTEGRATIVE AND COMPARATIVE BIOLOGY, 2020, 60 : E315 - E315
  • [7] Monitoring opencast mine restorations using Unmanned Aerial System (UAS) imagery
    Padro, Joan-Cristian
    Carabassa, Vicenc
    Balague, Jaume
    Brotons, Lluis
    Alcaniz, Josep M.
    Pons, Xavier
    SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 657 : 1602 - 1614
  • [8] Water Plume Temperature Measurements by an Unmanned Aerial System (UAS)
    DeMario, Anthony
    Lopez, Pete
    Plewka, Eli
    Wix, Ryan
    Xia, Hai
    Zamora, Emily
    Gessler, Dan
    Yalin, Azer P.
    SENSORS, 2017, 17 (02)
  • [9] UAS safety: Unmanned aerial collision avoidance system (UCAS)
    Asmat, Jose
    Rhodes, Brett
    Umansky, Jesica
    Villavicencio, Chris
    Yunas, Amir
    Donohue, George
    Lacher, Andrew
    2006 IEEE SYSTEMS AND INFORMATION ENGINEERING DESIGN SYMPOSIUM, 2006, : 43 - +
  • [10] Monitoring abundance of aggregated animals (Florida manatees) using an unmanned aerial system (UAS)
    Edwards, Holly H.
    Hostetler, Jeffrey A.
    Stith, Bradley M.
    Martin, Julien
    SCIENTIFIC REPORTS, 2021, 11 (01)