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Assessment of delivery models for semi-flexible transit operation in low-demand conditions

Author

Listed:
  • Mishra, Sushreeta
  • Mehran, Babak
  • Sahu, Prasanta K.

Abstract

Semi-flexible transit (SFT) service pattern coupled with real-time dynamic scheduling of passenger requests and dynamic route assignment of vehicles is considered as a cost-effective alternative to serving public transportation users in low demand conditions. Transit agencies tend to provide SFT by delivering it in-house by public transit agencies or contracting-out to private operators like transportation network-, taxi- or microtransit companies. Past studies focussing on economic issues in implementing SFT delivery models mostly used rudimentary information provided by transit agencies to quantify the operating cost, including budgetary inputs such as average annual maintenance, fuel, and administrative costs. These aggregate costs imply a uniform cost for SFT operation per unit time; however, the cost is subjected to change through spatial and temporal variations in demand and service. This study developed analytical disaggregate operating cost models that could account for marginal variations in cost due to the change in demand and service characteristics. Such model can assist policymakers while evaluating the economic feasibility of SFT delivery models. Rigorous and approximate operating cost models are developed for two competing service patterns: commonly adopted fixed-route bus transit (FRBT) and proposed SFT. Assuming in-house delivery of FRBT, SFT operating cost Eq.s are derived for two service delivery models, namely Contract-Out Taxi, and In-House Transit. Subsequently, these cost models are used to identify the critical passenger demand, where service patterns or delivery models could replace one another to minimize the total cost of operation. Study models can be used as part of a decision support tool to establish contracting, planning, and operating policies to optimize SFT operation subjected to required service quality.

Suggested Citation

  • Mishra, Sushreeta & Mehran, Babak & Sahu, Prasanta K., 2020. "Assessment of delivery models for semi-flexible transit operation in low-demand conditions," Transport Policy, Elsevier, vol. 99(C), pages 275-287.
  • Handle: RePEc:eee:trapol:v:99:y:2020:i:c:p:275-287
    DOI: 10.1016/j.tranpol.2020.09.004
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    References listed on IDEAS

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    1. Jokinen, Jani-Pekka & Sihvola, Teemu & Mladenovic, Milos N., 2019. "Policy lessons from the flexible transport service pilot Kutsuplus in the Helsinki Capital Region," Transport Policy, Elsevier, vol. 76(C), pages 123-133.
    2. Boisjoly, Geneviève & Grisé, Emily & Maguire, Meadhbh & Veillette, Marie-Pier & Deboosere, Robbin & Berrebi, Emma & El-Geneidy, Ahmed, 2018. "Invest in the ride: A 14 year longitudinal analysis of the determinants of public transport ridership in 25 North American cities," Transportation Research Part A: Policy and Practice, Elsevier, vol. 116(C), pages 434-445.
    3. Rahimi, Mahour & Amirgholy, Mahyar & Gonzales, Eric J., 2018. "System modeling of demand responsive transportation services: Evaluating cost efficiency of service and coordinated taxi usage," Transportation Research Part E: Logistics and Transportation Review, Elsevier, vol. 112(C), pages 66-83.
    4. Babak Mehran & Yongzhe Yang & Sushreeta Mishra, 2020. "Analytical models for comparing operational costs of regular bus and semi-flexible transit services," Public Transport, Springer, vol. 12(1), pages 147-169, March.
    5. Shinya Kikuchi & Vukan R. Vuchic, 1982. "Transit Vehicle Stopping Regimes and Spacings," Transportation Science, INFORMS, vol. 16(3), pages 311-331, August.
    6. Rayle, Lisa & Dai, Danielle & Chan, Nelson & Cervero, Robert & Shaheen, Susan PhD, 2016. "Just A Better Taxi? A Survey-Based Comparison of Taxis, Transit, and Ridesourcing Services in San Francisco," Institute of Transportation Studies, Research Reports, Working Papers, Proceedings qt60v8r346, Institute of Transportation Studies, UC Berkeley.
    7. Qiu, Feng & Shen, Jinxing & Zhang, Xuechi & An, Chengchuan, 2015. "Demi-flexible operating policies to promote the performance of public transit in low-demand areas," Transportation Research Part A: Policy and Practice, Elsevier, vol. 80(C), pages 215-230.
    8. Rayle, Lisa & Dai, Danielle & Chan, Nelson & Cervero, Robert & Shaheen, Susan, 2016. "Just a better taxi? A survey-based comparison of taxis, transit, and ridesourcing services in San Francisco," Transport Policy, Elsevier, vol. 45(C), pages 168-178.
    9. Davison, Lisa & Enoch, Marcus & Ryley, Tim & Quddus, Mohammed & Wang, Chao, 2014. "A survey of Demand Responsive Transport in Great Britain," Transport Policy, Elsevier, vol. 31(C), pages 47-54.
    10. Quadrifoglio, Luca & Li, Xiugang, 2009. "A methodology to derive the critical demand density for designing and operating feeder transit services," Transportation Research Part B: Methodological, Elsevier, vol. 43(10), pages 922-935, December.
    11. Morsche, Wietse te & La Paix Puello, Lissy & Geurs, Karst T., 2019. "Potential uptake of adaptive transport services: An exploration of service attributes and attitudes," Transport Policy, Elsevier, vol. 84(C), pages 1-11.
    12. Tirachini, Alejandro, 2014. "The economics and engineering of bus stops: Spacing, design and congestion," Transportation Research Part A: Policy and Practice, Elsevier, vol. 59(C), pages 37-57.
    13. Brake, Jenny & Mulley, Corinne & Nelson, John D. & Wright, Steve, 2007. "Key lessons learned from recent experience with Flexible Transport Services," Transport Policy, Elsevier, vol. 14(6), pages 458-466, November.
    14. Cervero, Robert & Golub, Aaron, 2007. "Informal transport: A global perspective," Transport Policy, Elsevier, vol. 14(6), pages 445-457, November.
    15. Palmer, Kurt & Dessouky, Maged & Zhou, Zhiqiang, 2008. "Factors influencing productivity and operating cost of demand responsive transit," Transportation Research Part A: Policy and Practice, Elsevier, vol. 42(3), pages 503-523, March.
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    2. Prasanta K. Sahu & Babak Mehran & Surya P. Mahapatra & Satish Sharma, 2021. "Spatial data analysis approach for network-wide consolidation of bus stop locations," Public Transport, Springer, vol. 13(2), pages 375-394, June.

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