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    Reliability of Vehicle-to-Micromobility Safety Communication

    Source: Journal of Transportation Engineering, Part A: Systems:;2022:;Volume ( 148 ):;issue: 011::page 04022102
    Author:
    Mohammad Baqer
    ,
    Michael Lowry
    ,
    Axel Krings
    DOI: 10.1061/JTEPBS.0000734
    Publisher: ASCE
    Abstract: This paper presents field tests of vehicle-to-micromobility communication, a type of connected vehicle communication. Micromobility includes any vehicle that is lightweight and operates at low speeds, such as bicycles, electric scooters, and electric skateboards. In recent years, micromobility has emerged as a popular form of transportation in large part due to the sudden surge of bicycle-share and scooter-share. The anticipated safety benefits from connected vehicle communication can be expected for micromobility users as well. At this point, it is not clear whether individuals will decide to invest in such technology for their own personal bicycles and scooters; however, it is likely that shared mobility companies that deploy thousands of bicycles and scooters will be incentivized to invest in such technology due to market competition. The field tests in this study focused on two collision scenarios that are particularly problematic for micromobility users: right hook collision and Right-Angle Collision. Furthermore, the tests were conducted under different environmental conditions to simulate potential degradation in communication signal due to natural causes or caused by intentional interference from a malicious source. The results suggest that vehicle-to-micromobility communication can improve safety by alerting the driver of a motor vehicle about an imminent collision with sufficient reaction time for safe stopping distance. Moreover, the results demonstrate that a modification to the communication algorithm can successfully overcome signal degradation due to natural causes or from malicious intent.
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      Reliability of Vehicle-to-Micromobility Safety Communication

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    contributor authorMohammad Baqer
    contributor authorMichael Lowry
    contributor authorAxel Krings
    date accessioned2023-04-07T00:39:47Z
    date available2023-04-07T00:39:47Z
    date issued2022/11/01
    identifier otherJTEPBS.0000734.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4289498
    description abstractThis paper presents field tests of vehicle-to-micromobility communication, a type of connected vehicle communication. Micromobility includes any vehicle that is lightweight and operates at low speeds, such as bicycles, electric scooters, and electric skateboards. In recent years, micromobility has emerged as a popular form of transportation in large part due to the sudden surge of bicycle-share and scooter-share. The anticipated safety benefits from connected vehicle communication can be expected for micromobility users as well. At this point, it is not clear whether individuals will decide to invest in such technology for their own personal bicycles and scooters; however, it is likely that shared mobility companies that deploy thousands of bicycles and scooters will be incentivized to invest in such technology due to market competition. The field tests in this study focused on two collision scenarios that are particularly problematic for micromobility users: right hook collision and Right-Angle Collision. Furthermore, the tests were conducted under different environmental conditions to simulate potential degradation in communication signal due to natural causes or caused by intentional interference from a malicious source. The results suggest that vehicle-to-micromobility communication can improve safety by alerting the driver of a motor vehicle about an imminent collision with sufficient reaction time for safe stopping distance. Moreover, the results demonstrate that a modification to the communication algorithm can successfully overcome signal degradation due to natural causes or from malicious intent.
    publisherASCE
    titleReliability of Vehicle-to-Micromobility Safety Communication
    typeJournal Article
    journal volume148
    journal issue11
    journal titleJournal of Transportation Engineering, Part A: Systems
    identifier doi10.1061/JTEPBS.0000734
    journal fristpage04022102
    journal lastpage04022102_8
    page8
    treeJournal of Transportation Engineering, Part A: Systems:;2022:;Volume ( 148 ):;issue: 011
    contenttypeFulltext
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