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Privacy-Enhancing Queries in Personalized Search with Untrusted Service Providers

机译:与不受信任的服务提供商的个性化搜索中的增强隐私的查询

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摘要

For personalized search, a user must provide her personal information. However, this sometimes includes the user's sensitive information about individuals such as health condition and private lifestyle. It is not sufficient just to protect the communication channel between user and service provider. Unfortunately, the collected personal data can potentially be misused for the service providers' commercial advantage (e.g. for advertising methods to target potential consumers). Our aim here is to protect user privacy by filtering out the sensitive information exposed from a user's query input at the system level. We propose a framework by introducing the concept of query generalizer. Query genemlizer is a middleware that takes a query for personalized search, modifies the query to hide user's sensitive personal information adaptively depending on the user's privacy policy, and then forwards the modified query to the service provider. Our experimental results show that the best-performing query generalization method is capable of achieving a low traffic overhead within a reasonable range of user privacy. The increased traffic overhead varied from 1.0 to 3.3 times compared to the original query.
机译:对于个性化搜索,用户必须提供她的个人信息。但是,这有时包括用户的有关个人的敏感信息,例如健康状况和私人生活方式。仅保护用户和服务提供商之间的通信通道是不够的。不幸的是,收集到的个人数据可能会被滥用以获取服务提供商的商业利益(例如,针对潜在消费者的广告方法)。我们的目标是通过在系统级别过滤掉从用户查询输入中暴露的敏感信息来保护用户隐私。通过引入查询综合器的概念,我们提出了一个框架。查询生成器是一种中间件,它接受查询以进行个性化搜索,修改查询以根据用户的隐私策略自适应地隐藏用户的敏感个人信息,然后将修改后的查询转发给服务提供商。我们的实验结果表明,性能最佳的查询泛化方法能够在合理的用户隐私范围内实现较低的流量开销。与原始查询相比,增加的流量开销从1.0到3.3倍不等。

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