A Traffic Anomaly Detection Method Using Traffic Flow Vectors During Heavy Rainfall
Kensuke Hirata,
Yosuke Kawasaki,
Takahiro Yoshida
Abstract:In torrential rain disasters, affected areas are identified through reporting and patrolling; however, traffic monitoring remains a challenge. This study establishes a traffic anomaly detection method during heavy rain disasters. Using probe trajectory data collected during such events, the proposed method captures traffic flow characteristics using directional vectors of road inflow and outflow. The effectiveness of the proposed method was evaluated through comparisons with previously proposed methods. The re… Show more
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