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Vehicular Movement Patterns: A Sequential Patterns Data Mining Approach Towards Vehicular Route Prediction.

机译:车辆运动模式:一种针对车辆路线预测的顺序模式数据挖掘方法。

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摘要

Behavioral patterns prediction in the context of Vehicular Ad hoc Networks (VANETs)has been receiving increasing attention due to enabling on-demand, intelligent traffic analysis and response to real-time traffic issues. One of these patterns, sequential patterns, are a type of behavioral patterns that describe the occurence of events in a timely-ordered fashion. In the context of VANETs, these events are defined as an ordered list of road segments traversed by vehicles during their trips from a starting point to their final intended destination, forming a vehicular path. Due to their predictable nature, undertaken vehicular paths can be exploited to extract the paths that are considered frequent. From the extracted frequent paths through data mining, the probability that a vehicular path will take a certain direction is obtained. However, in order to achieve this, samples of vehicular paths need to be initially collected over periods of time in order to be data-mined accordingly. In this thesis, a new set of formal definitions depicting vehicular paths as sequential patterns is described. Also, five novel communication schemes have been designed and implemented under a simulated environment to collect vehicular paths; such schemes are classified under two categories: Road Side Unit-Triggered (RSU-Triggered) and Vehicle-Triggered. After collection, extracted frequent paths are obtained through data mining, and the probability of these frequent paths is measured. In order to evaluate the e ciency and e ectiveness of the proposed schemes, extensive experimental analysis has been realized. From the results, two of the Vehicle-Triggered schemes, VTB-FP and VTRD-FP, have improved the vehicular path collection operation in terms of communication cost and latency over others. In terms of reliability, the Vehicle-Triggered schemes achieved a higher success rate than the RSU-Triggered scheme. Finally, frequent vehicular movement patterns have been effectively extracted from the collected vehicular paths according to a user-de ned threshold and the confidence of generated movement rules have been measured. From the analysis, it was clear that the user-de ned threshold needs to be set accordingly in order to not discard important vehicular movement patterns.
机译:由于启用了按需,智能流量分析和对实时流量问题的响应,车载自组织网络(VANET)的行为模式预测已受到越来越多的关注。这些模式之一(顺序模式)是一种行为模式,以及时有序的方式描述事件的发生。在VANET的上下文中,这些事件被定义为车辆在从起点到最终预定目的地的行程中经过的路段的有序列表,形成了一条车辆路径。由于其可预测的性质,可以利用承担的车辆路径来提取被认为是频繁的路径。从通过数据挖掘提取的频繁路径中,获得车辆路径将沿某个方向行驶的概率。然而,为了实现这一点,需要在一段时间内最初收集车辆路径的样本,以便相应地进行数据挖掘。在本文中,描述了一组新的形式定义,将车辆路径描述为顺序模式。另外,在模拟环境下已经设计并实现了五种新颖的通信方案,以收集车辆路径。此类方案分为两类:路边单位触发(RSU触发)和车辆触发。收集后,通过数据挖掘获得提取的常用路径,并测量这些常用路径的概率。为了评估所提方案的效率和有效性,已经进行了广泛的实验分析。从结果来看,两种车辆触发方案,即VTB-FP和VTRD-FP,在通信成本和延迟方面都比其他方法有所改善。在可靠性方面,“车辆触发”方案比“ RSU触发”方案获得了更高的成功率。最后,已经根据用户定义的阈值从收集的车辆路径中有效地提取了频繁的车辆运动模式,并且已经测量了所产生的运动规则的置信度。通过分析,很明显,需要相应地设置用户定义的阈值,以便不丢弃重要的车辆运动模式。

著录项

  • 作者

    Merah, Amar Farouk.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Automotive.;Computer Science.;Engineering Electronics and Electrical.
  • 学位 M.A.Sc.
  • 年度 2012
  • 页码 78 p.
  • 总页数 78
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:45

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