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首页> 外文期刊>International Journal of Health Geographics >Street masking: a network-based geographic mask for easily protecting geoprivacy
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Street masking: a network-based geographic mask for easily protecting geoprivacy

机译:街头掩蔽:一种基于网络的地理面罩,可轻松保护地形造物

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BACKGROUND:Geographic masks are techniques used to protect individual privacy in published maps but are highly under-utilized in research. This leads to continual violations of individual privacy, as sensitive health records are put at risk in unmasked maps. New approaches to geographic masking are required that foster accessibility and ease of use, such that they become more widely adopted. This article describes a new geographic masking method, called street masking, that reduces the burden on users of finding supplemental population data by instead automatically retrieving OpenStreetMap data and using the road network as a basis for masking. We compare it to donut geomasking, both with and without population density taken into account, to evaluate its efficacy against geographic masks that require slightly less and slightly more supplemental data. Our analysis is performed on synthetic data in three different Canadian cities.RESULTS:Street masking performs similarly to population-based donut geomasking with regard to privacy protection, achieving comparable k-anonymity values at similar median displacement distances. As expected, distance-based donut geomasking performs worst at privacy protection. Street masking also performs very well regarding information loss, achieving far better cluster preservation and landcover agreement than population-based donut geomasking. Distance-based donut geomasking performs similarly to street masking, though at the cost of reduced privacy protection.CONCLUSION:Street masking competes with, if not out-performs population-based donut geomasking and does so without requiring any supplemental data from users. Moreover, unlike most other geographic masks, it significantly minimizes the risk of false attribution and inherently takes many geographic barriers into account. It is easily accessible for Python users and provides the foundation for interfaces to be built for non-coding users, such that privacy can be better protected in sensitive geospatial research.
机译:背景:地理面具是用于保护公布地图中个人隐私的技术,但在研究中高度利用。这导致持续违反个别隐私,因为敏感的健康记录在揭露地图上造成风险。需要新的地理掩模方法,以促进可访问性和易用性,使得它们变得更广泛地采用。本文介绍了一种名为Street Masting的新地理屏蔽方法,可通过改为自动检索OpenStreetMAP数据并使用道路网络作为掩蔽的基础来降低对查找补充群体数据的用户的负担。我们将其与甜甜圈Geomasking进行比较,无论是在没有考虑的人口密度,都会评估其针对需要略低且稍微更多的补充数据的地理面部掩模的功效。我们的分析是对三个不同的CANADIAN城市的合成数据进行的。结果:街道掩蔽与基于人口的甜甜圈地理位置相似,关于隐私保护,实​​现了类似中值距离的可比k-匿名值。正如预期的那样,距离为基础的甜甜圈地理位置优势在隐私保护中表现最差。街道掩蔽也对信息损失进行了很好的表现,比基于人口的甜甜圈地理位置优势更好地实现了更好的聚类保存和地利计划署。基于距离的甜甜圈Geomasking与街道掩蔽类似,但在街道掩蔽中,仍然是缩小隐私保护的成本。结论:街道屏蔽与基于人口的甜甜圈地理位置合并,如果没有要求用户的任何补充数据,则竞争。此外,与大多数其他地理面具不同,它显着最大限度地减少了虚假归因的风险,并且本身都考虑了许多地理障碍。 Python用户可以轻松访问,为非编码用户提供建立接口的基础,从而可以更好地保护隐私在敏感的地理空间研究中。

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