Dynamic total least squares estimation of intersection traffic flow patterns

Baibing Li, B. Moor
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Abstract

Total least squares (TLS) technique is introduced to dynamically identify intersection traffic flow patterns when both of the observations for entering and exiting vehicles have random measurement errors. An algorithm of dynamic TLS estimations of intersection traffic flow patterns is proposed. Simulation experiments show that it can improve estimation accuracy substantially in comparison with recursive ordinary least squares estimations. Hence, the dynamic TLS estimations provide a competitive alternative for identifications of intersection traffic flow patterns.
交叉口交通流模式的动态总最小二乘估计
引入总最小二乘(TLS)技术,在交叉口进出车辆观测值均存在随机误差的情况下动态识别交叉口交通流模式。提出了一种交叉口交通流模式动态TLS估计算法。仿真实验表明,与递推普通最小二乘估计相比,该方法能显著提高估计精度。因此,动态TLS估计为交叉口交通流模式的识别提供了一种有竞争力的替代方法。
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