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Learning transportation modes from raw GPS data

机译:从原始GPS数据中学习运输方式

摘要

Described is a technology by which raw GPS data is processed into segments of a trip, with a predicted mode of transportation (e.g., walking, car, bus, bicycling) determined for each segment. The determined transportation modes may be used to tag the GPS data with transportation mode information, and/or dynamically used. Segments are first characterized as walk segments or non-walk segments based on velocity and/or acceleration. Features corresponding to each of those walk segments or non-walk segments are extracted, and analyzed with an inference model to determine probabilities for the possible modes of transportation for each segment. Post-processing may be used to modify the probabilities based on transitioning considerations with respect to the transportation mode of an adjacent segment. The most probable transportation mode for each segment is selected.
机译:描述了一种技术,通过该技术将原始GPS数据处理为旅行的各个部分,并为每个部分确定了预测的运输方式(例如,步行,乘车,乘公共汽车,骑自行车)。所确定的运输模式可以被用来用运输模式信息来标记GPS数据,和/或被动态地使用。根据速度和/或加速度,首先将路段表征为步行路段或非步行路段。提取对应于那些步行路段或非步行路段中每个路段的特征,并使用推理模型进行分析,以确定每个路段可能的交通方式的概率。后处理可用于基于关于相邻段的运输模式的过渡考虑来修改概率。为每个路段选择最可能的运输方式。

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