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Yaoyuan V. Tan

University of Michigan



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Michael R. Elliott

University of Michigan



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Carol A.C Flannagan

University of Michigan Transportation Research Institute



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172 – Advanced Statistical Models for Driving Risk and Driving Behavior

Development of a Real-Time Prediction Model of Driver Behavior at Intersections Using Kinematic Time Series Data

Sponsor: Transportation Statistics Interest Group
Keywords: Area under the receiver operating characteristic Curve, Bayesian Additive Regression Trees, Naturalistic Driving Data, Principal Components Analysis

Yaoyuan V. Tan

University of Michigan

Michael R. Elliott

University of Michigan

Carol A.C Flannagan

University of Michigan Transportation Research Institute

As autonomous vehicles enter the fleet, there will be a long period when these vehicles will have to interact with human drivers. One of the challenges for autonomous vehicles is that human drivers do not communicate their decisions well. However, the kinematic behavior of a human-driven vehicle may be a good predictor of driver intent within a short time frame. We analyzed the kinematic time series data (e.g., speed) for a set of drivers making left turns at intersections to predict whether the driver would stop before executing the turn or not. We used Principal Components Analysis (PCA) to generate independent dimensions that explain the variation in vehicle speed before a turn. These dimensions remained relatively consistent throughout the maneuver, allowing us to compute independent scores on these dimensions for different time windows throughout the approach to the intersection. We then linked these PCA scores to whether a driver would stop before executing a left turn using the Bayesian Additive Regression Trees (BART). Our model achieved an Area Under the receiver operating characteristic Curve (AUC) of more than 0.90 by -25m away from the center of an intersection.

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