An evaluation of the relative safety of pedestrian infrastructure using driver behavior and conflict as surrogates for crashes
A field study was performed at 40 uncontrolled midblock crosswalks and 26 signalized intersections on low-speed roadways selected from the areas surrounding three major urban college campuses across lower Michigan. An array of existing traffic control devices existed at the study sites, including various crosswalk marking strategies, along with additional treatments, such as pedestrian hybrid beacons (PHBs), rectangular rapid flashing beacons (RRFBs) and single in-street signs (R1-6). The sites also collectively included a diverse set of roadway and traffic characteristics, including crossing widths, number of lanes, and median presence, along with vehicular, pedestrian, and bicyclist volumes. Three initial evaluations were performed for the midblock segments and signalized intersection study sites, including: driver yielding compliance, vehicle-pedestrian conflicts, and non-motorized traffic crash data. Ultimately, only crash data and driver yielding compliance to pedestrians were included in the final analysis. The yielding compliance study found that the type of crosswalk treatment has a strong influence over driver yielding compliance. While yielding compliance improves substantially when crosswalk markings are utilized, the highest compliance rates are achieved when an additional enhancement device (i.e., RRFB, PHB, or R1-6 sign), is also provided. The primary limitation towards prediction of pedestrian crashes is the lack of a reliable exposure data to represent the amount of pedestrian activity on a given segment or intersection.
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- In Collections
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Electronic Theses & Dissertations
- Copyright Status
- In Copyright
- Material Type
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Theses
- Authors
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Stapleton, Steven York
- Thesis Advisors
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Gates, Timothy J.
- Committee Members
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Gates, Timothy J.
Zockaie, Ali
Ghamami, Mehrnaz
- Date
- 2017
- Subjects
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Signalized intersections
Pedestrian facilities design
Pedestrian crosswalks
Automobile driving in cities
Pedestrian accidents
Forecasting
- Program of Study
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Civil Engineering - Master of Science
- Degree Level
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Masters
- Language
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English
- Pages
- x, 91 pages
- ISBN
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9780355167573
0355167573
- Permalink
- https://doi.org/doi:10.25335/M5BS03