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Consideration of Automated Vehicle Benefits and Research Needs for Rural America

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  • Dowds, Jonathan
  • Sullivan, James
  • Rowangould, Gregory
  • Aultman-Hall, Lisa

Abstract

Safety, mobility, accessibility challenges, and dependence on personal vehicles have long plagued rural transportation systems. Benefits in these areas are widely touted by autonomous vehicle (AV) advocates. Seven mechanisms for AV-induced increases in vehicle miles traveled (VMT) are reviewed here, and five of these mechanisms are expected to have a disproportionately larger impact on rural VMT. There is an almost uniform expectation that AV-related VMT increases must be managed through car-sharing and ride-sharing systems. The landscape of origins and destinations and the total population of rural areas preclude reasonable sharing, and there is a risk of unintended consequences from pro-sharing policies that will limit rural AV adoption or increase unit costs leading to a failure to attain safety and mobility benefits. Designing policies for optimal AV deployment in rural areas requires modeling. This paper outlines five methods that have been used to study VMT changes: travel demand equalization; travel demand elasticity; travel demand models; and stated and revealed preference surveys. The first three suffer from a lack of rural-specific data. Revealed preference surveys are very expensive but may be worthwhile given the scope of the potential benefits to a large portion of the country and nearly 20% of its residents. Alternatively, the more cost-effective, albeit biased, stated preference survey might fill the rural AV data gap. Rural data are essential to inform policy design because rural areas will experience different AV benefits and impacts than are seen in urban areas. View the NCST Project Webpage

Suggested Citation

  • Dowds, Jonathan & Sullivan, James & Rowangould, Gregory & Aultman-Hall, Lisa, 2021. "Consideration of Automated Vehicle Benefits and Research Needs for Rural America," Institute of Transportation Studies, Working Paper Series qt4v25q5n9, Institute of Transportation Studies, UC Davis.
  • Handle: RePEc:cdl:itsdav:qt4v25q5n9
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    References listed on IDEAS

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    1. Meyer, Jonas & Becker, Henrik & Bösch, Patrick M. & Axhausen, Kay W., 2017. "Autonomous vehicles: The next jump in accessibilities?," Research in Transportation Economics, Elsevier, vol. 62(C), pages 80-91.
    2. Daniel J. Fagnant & Kara M. Kockelman, 2018. "Dynamic ride-sharing and fleet sizing for a system of shared autonomous vehicles in Austin, Texas," Transportation, Springer, vol. 45(1), pages 143-158, January.
    3. Taiebat, Morteza & Stolper, Samuel & Xu, Ming, 2019. "Forecasting the Impact of Connected and Automated Vehicles on Energy Use: A Microeconomic Study of Induced Travel and Energy Rebound," Applied Energy, Elsevier, vol. 247(C), pages 297-308.
    4. Taiebat, Morteza & Stolper, Samuel & Xu, Ming, 2019. "Forecasting the Impact of Connected and Automated Vehicles on Energy Use: A Microeconomic Study of Induced Travel and Energy Rebound," LawArXiv dk6qv, Center for Open Science.
    5. Morteza Taiebat & Samuel Stolper & Ming Xu, 2019. "Forecasting the Impact of Connected and Automated Vehicles on Energy Use A Microeconomic Study of Induced Travel and Energy Rebound," Papers 1902.00382, arXiv.org, revised May 2019.
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    Keywords

    Engineering; Social and Behavioral Sciences; Autonomous vehicles; Implementation; Rural areas; Surveys; Travel demand; Vehicle miles of travel;
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