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Information Relevance Model of Customized Privacy for IoT

机译:物联网定制隐私的信息关联模型

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摘要

Motivated by advances in mass customization in business practice, explosion in the number of internet of things devices, and the lack of published research on privacy differentiation and customization, we propose a contextual information relevance model of privacy. We acknowledge the existence of individual differences with respect to unique security and privacy protection needs. We observe and argue that it is unfair and socially inefficient to treat privacy in a uniform (or less differentiated) manner whereby a large proportion of the population remain unsatisfied by a common policy. Our research results provide quantifiable means to measure and evaluate the customized privacy. We show that with privacy differentiation, the social planner will observe increases in demand and overall social welfare. Our results also show that business practitioners could profit from privacy customization.
机译:由于商业实践中大规模定制的进步,物联网设备数量的激增以及缺乏针对隐私区分和定制的已发表研究的推动,我们提出了隐私的上下文信息相关性模型。我们承认在独特的安全性和隐私保护需求方面存在个体差异。我们观察到并争辩说,以统一的(或差异较小的)方式来处理隐私是不公平的,并且在社会上效率低下,从而使很大比例的人口仍然对通用政策不满意。我们的研究结果提供了量化和评估定制隐私的手段。我们表明,随着隐私的差异化,社会计划者将观察到需求和整体社会福利的增长。我们的结果还表明,从业人员可以从隐私定制中受益。

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