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动力两轮车骑行模式聚类研究,深入探讨弯道行驶习惯。

Powered Two-Wheeler Riding Profile Clustering for an In-Depth Study of Bend-Taking Practices.

机构信息

TS2-SIMU&MOTO, Université Gustave Eiffel, IFSTTAR, F-77447 Marne-la-Vallée, France.

COSYS-GRETTIA, Université Gustave Eiffel, IFSTTAR, F-77447 Marne-la-Vallée, France.

出版信息

Sensors (Basel). 2020 Nov 23;20(22):6696. doi: 10.3390/s20226696.

Abstract

The understanding of rider/vehicle interaction modalities remains an issue, specifically in the case of bend-taking. This difficulty results both from the lack of adequate instrumentation to conduct this type of study and from the variety of practices of this population of road users. Riders have numerous explanations of strategies for controlling their motorcycles when taking bends. The objective of this paper is to develop a data-driven methodology in order to identify typical riding behaviors in bends by using clustering methods. The real dataset used for the experiments is collected within the VIROLO++ collaborative project to improve the knowledge of actual PTW riding practices, especially during bend taking, by collecting real data on this riding situation, including data on PTW dynamics (velocity, normal acceleration, and jerk), position on the road (road curvature), and handlebar actions (handlebar steering angle). A detailed analysis of the results is provided for both the Anderson-Darling test and clustering steps. Moreover, the clustering results are compared with the subjective data of subjects to highlight and contextualize typical riding tendencies. Finally, we perform an in-depth analysis of the bend-taking practices of one subject to highlight the differences between different methods of controlling the motorcycle (steering handlebar vs. rider's lean) using the rider action measurements made by pressure sensors.

摘要

对骑手/车辆交互模式的理解仍然是一个问题,特别是在转弯时。这种困难既源于缺乏进行此类研究的适当仪器,也源于这一道路使用者群体的各种实践。骑手对控制摩托车转弯的策略有很多解释。本文的目的是开发一种数据驱动的方法,通过聚类方法来识别转弯时的典型骑行行为。实验中使用的真实数据集是在 VIROLO++ 合作项目中收集的,旨在通过收集关于这种骑行情况的真实数据,包括有关 PTW 动力学(速度、法向加速度和急动度)、道路位置(道路曲率)和车把动作(车把转向角)的真实数据,来提高对实际 PTW 骑行实践的认识,特别是在转弯时。对安德森-达林检验和聚类步骤都进行了详细的分析。此外,还将聚类结果与被试的主观数据进行了比较,以突出和上下文化典型的骑行倾向。最后,我们对一个被试的转弯实践进行了深入分析,以突出使用压力传感器测量的骑手动作来控制摩托车(转向车把与骑手倾斜)的不同方法之间的差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb1a/7700233/f9912f5e6a1e/sensors-20-06696-g001.jpg

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