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Transportation Mode Recognition Algorithm Based on Bayesian Voting

机译:基于贝叶斯投票的运输模式识别算法

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Nowadays, accurate identification of people's ways of transportation plays a major role in understanding users' mobility, analyzing and predicting traffic conditions as well as exploring new patterns of social activity. With regard to low power consumption, complex environment and other challenges, we propose a traffic model based on Bayesian detection algorithm in this paper. To cope with these challenges, we propose a Bayesian-based traffic pattern detection algorithm. This algorithm leverages variety of sensors embedded on smartphones to analyze and explores the different characteristics of various sensors to identify different traffic patterns. The results of massive experiments show that the traffic pattern recognition algorithm based on Bayesian algorithm has better universality and accuracy, with accuracy rate being over 91.5%.
机译:如今,准确的人民交通方式的识别在了解用户的流动性,分析和预测交通状况以及探索新的社会活动模式方面发挥了重要作用。关于低功耗,复杂的环境和其他挑战,我们提出了一种基于本文的贝叶斯检测算法的交通模型。为了应对这些挑战,我们提出了一种基于贝叶斯的流量模式检测算法。该算法利用嵌入在智能手机上的各种传感器来分析和探索各种传感器的不同特征,以识别不同的流量模式。大规模实验的结果表明,基于贝叶斯算法的交通模式识别算法具有更好的普遍性和准确性,精度率超过91.5 %。

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