3.8 Article

Adaptive transit scheduling to reduce rider vulnerability during heatwaves

期刊

SUSTAINABLE AND RESILIENT INFRASTRUCTURE
卷 7, 期 6, 页码 744-755

出版社

TAYLOR & FRANCIS LTD
DOI: 10.1080/23789689.2022.2029324

关键词

Heat; public transit; agent-based model; optimization; public health

资金

  1. National Science Foundation [HDBE 1635490, CSSI 1931324, GCR 1934933, SRN 1444755]

向作者/读者索取更多资源

Extreme heat events induced by climate change pose a growing risk to the comfort and health of transit passengers. This study develops a schedule optimization model to minimize heat exposure and applies it to bus services in Phoenix, Arizona. Rerouting as little as 10% of the fleet can reduce network-wide exposure by up to 35%.
Extreme heat events induced by climate change present a growing risk to transit passenger comfort and health. To reduce exposure, agencies may consider changes to schedules that reduce headways on heavily trafficked bus routes serving vulnerable populations. This paper develops a schedule optimization model to minimize heat exposure and applies it to local bus services in Phoenix, Arizona, using agent-based simulation to inform travel demand and rider characteristics. Rerouting as little as 10% of a fleet is found to reduce network-wide exposure by as much as 35% when operating at maximum fleet capacity. Outcome improvements are notably characterized by diminishing returns, owing to skewed ridership and the inverse relationship between fleet size and passenger wait time. Access to spare vehicles can also ensure significant reductions in exposure, especially under the most extreme temperatures. Rerouting, therefore, presents a low-cost, adaptable resilience strategy to protect riders from extreme heat exposure.

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