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Privacy Protection Method for Vehicle Trajectory Based on VLPR Data

机译:基于VLPR数据的车辆轨迹的隐私保护方法

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With the rapid development of data acquisition technology, data acquisition departments can collect increasingly more data. Various data from government agencies are gradually becoming available to the public, including license plate recognition (VLPR) data. As a result, privacy protection is becoming increasingly significant. In this paper, an adversary model based on passing time, color, type, and brand of VLPR data is proposed. Through experimental analysis, the tracking probability of a vehicle’s trajectory can be more than 94% if utilizing the original data. To decrease the tracking probability, a novel approach called the (m, n)-bucket model based on time series is proposed since previous works, such as those using generalization and bucketization models, cannot deal with data with multiple sensitive attributes (SAs) or data with time correlations. Meanwhile, a mathematical model is established to expound the privacy protection principle of the (m, n)-bucket model. By comparing the average calculated linking probability of all individuals and the actual linking probability, it is shown that the mathematical model that is proposed can well expound the privacy protection principle of the (m, n)-bucket model. Extensive experiments confirm that our technique can effectively prevent trajectory privacy disclosures.
机译:随着数据采集技术的快速发展,数据采集部门可以收集越来越多的数据。来自政府机构的各种数据逐渐向公众提供,包括车牌识别(VLPR)数据。因此,隐私保护变得越来越重要。本文提出了一种基于传递时间,颜色,类型和品牌的VLPR数据的对手模型。通过实验分析,如果利用原始数据,车辆轨迹的跟踪概率可以超过94%。为了减少跟踪概率,提出了一种新的方法,因为之前的作品(例如使用泛化和铲斗化模型),因为之前的作品(例如那些)无法处理具有多个敏感属性(SAS)的数据的(如那些)数据相关的数据。同时,建立了数学模型来阐述(M,N)-Bucket模型的隐私保护原理。通过比较所有个人的平均计算链接概率和实际连接概率,表明所提出的数学模型可以很好地阐述(M,N)-Bucket模型的隐私保护原理。广泛的实验证实,我们的技术可以有效地防止轨迹隐私披露。

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