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Designing for the Safety of Pedestrians, Cyclists, and Motorists in Urban Environments

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  • Eric Dumbaugh
  • Wenhao Li

Abstract

Problem: While design solutions aimed at enhancing the safety of pedestrians are viewed as being incompatible with those intended to improve the safety of motorists, there has been little meaningful evaluation of the issue. Instead, this disagreement is based largely on the theoretical assertion that traffic crashes are the result of random driver error, and that the only certain means for addressing safety is to design roadways to be forgiving of these errors when they occur. This perspective overlooks the possibility that crashes may instead be the product of systematic patterns of behavior associated with the characteristics of the built environment. Purpose: This study sought to discover whether urban crash incidence is the product of random error, or whether it may be influenced by characteristics of the built environment. Methods: We used negative binomial regression models to examine the relationship between several aspects of the built environment and the incidence of crashes involving motorists, pedestrians, and cyclists. We further subdivided motorist crashes into multiple-vehicle, fixed-object, and parked-car crashes to determine if these crash types had unique characteristics. Results and conclusions: We used vehicle miles of travel as a proxy for random error and found it to be positively, but weakly, associated with crashes involving motorists and pedestrians. We found stronger associations between crashes and characteristics of the built environment. We found miles of arterial roadways and numbers of four-leg intersections, strip commercial uses, and big box stores to be major crash risk factors, while pedestrian-scaled retail uses were associated with lower crash incidences. The results suggest that improvements to urban traffic safety require that designers balance the inherent tension between safety and traffic conflicts, rather than simply designing roadways to be forgiving. Takeaway for practice: Most of the ongoing debate between pedestrian advocates and traffic engineers has focused on the relative desirability of designing urban roadways to be forgiving to random driver error. Such debates have led both groups to ignore the more salient issue of systematic error. This study finds that the factors associated with a vehicle crashing into a pedestrian and cyclist are largely the same as those resulting in a crash with another vehicle. Designs that balance the inherent tension between vehicle speeds and traffic conflicts can be used to enhance the safety of pedestrians, cyclists, and motorists alike. Research support: This research was sponsored by the Southwest University Transportation Center.

Suggested Citation

  • Eric Dumbaugh & Wenhao Li, 2011. "Designing for the Safety of Pedestrians, Cyclists, and Motorists in Urban Environments," Journal of the American Planning Association, Taylor & Francis Journals, vol. 77(1), pages 69-88.
  • Handle: RePEc:taf:rjpaxx:v:77:y:2011:i:1:p:69-88
    DOI: 10.1080/01944363.2011.536101
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    Citations

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    Cited by:

    1. Soltani, Ali & Roohani Qadikolaei, Mohsen, 2024. "Space-time analysis of accident frequency and the role of built environment in mitigation," Transport Policy, Elsevier, vol. 150(C), pages 189-205.
    2. Tanja Congiu & Giovanni Sotgiu & Paolo Castiglia & Antonio Azara & Andrea Piana & Laura Saderi & Marco Dettori, 2019. "Built Environment Features and Pedestrian Accidents: An Italian Retrospective Study," Sustainability, MDPI, vol. 11(4), pages 1-14, February.
    3. Chia-Yuan Yu, 2015. "Built Environmental Designs in Promoting Pedestrian Safety," Sustainability, MDPI, vol. 7(7), pages 1-17, July.
    4. Boeing, Geoff, 2018. "Measuring the Complexity of Urban Form and Design," SocArXiv bxhrz, Center for Open Science.
    5. Rebekka E. Apardian & Oleg Smirnov, 2020. "An analysis of pedestrian crashes using a spatial count data model," Papers in Regional Science, Wiley Blackwell, vol. 99(5), pages 1317-1338, October.
    6. Boeing, Geoff, 2017. "Methods and Measures for Analyzing Complex Street Networks and Urban Form," SocArXiv 93h82, Center for Open Science.
    7. Kadali, B Raghuram & Vedagiri, P., 2015. "Evaluation of pedestrian crosswalk level of service (LOS) in perspective of type of land-use," Transportation Research Part A: Policy and Practice, Elsevier, vol. 73(C), pages 113-124.
    8. Chen, Li & Chen, Cynthia & Ewing, Reid, 2014. "The relative effectiveness of signal related pedestrian countermeasures at urban intersections—Lessons from a New York City case study," Transport Policy, Elsevier, vol. 32(C), pages 69-78.

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