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Real-Time Traffic Flow Forecasting Using Spectral Analysis

机译:基于频谱分析的实时交通流量预测

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摘要

An algorithm for the implementation of short-term prediction of traffic with real-time updating based on spectral analysis is described. The prediction is based on the characterization of the flow based on modal functions associated with a covariance matrix constructed from historical flow data. The number of these modal functions used for prediction depends on the local traffic characteristics. Although the method works well for the examples in this paper using the lower frequency modes, it can be adapted to include modes of higher frequency, as traffic conditions dictate. This paper describes the intended online implementation of the method that predicts within-day traffic flow using a forecasting horizon of 1 h 15 min with a 15-min step. Thus, every 15 min, the traffic flow for a further 1 h 15 min is predicted. As well as forecasting to this horizon, a second algorithm incorporating a weighted averaging technique is developed, which allows the prediction of one 15-min step ahead by using current and previous predictions of traffic flows at the given time instant while placing more weight on the more recent predictions. This technique combines the features of a time-series-based prediction with spectral analysis. The development of an algorithm for the real-time implementation is described, and results are presented for a number of different schemes.
机译:描述了一种基于频谱分析实时更新交通流量的短期预测算法。该预测基于与基于从历史流量数据构建的协方差矩阵关联的模态函数的流量特征。用于预测的这些模态函数的数量取决于本地交通特征。尽管该方法适用于本文中使用较低频率模式的示例,但可以根据交通情况的要求将其修改为包含较高频率的模式。本文介绍了该方法的预期在线实现,该方法使用1小时15分钟的预测范围(以15分钟为步长)来预测一天内的交通流量。因此,每15分钟将预测另外1小时15分钟的交通流量。除了预测这一范围外,还开发了第二种算法,该算法结合了加权平均技术,该算法允许通过使用给定时间点的当前和先前的交通流量预测,提前15分钟的步伐,同时对最近的预测。该技术将基于时间序列的预测与频谱分析相结合。描述了用于实时实现的算法的开发,并给出了许多不同方案的结果。

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