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SlopPy: Slope One with Privacy

机译:Sloppy:具有隐私的斜坡

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In order to contribute to solve the personalization/privacy paradox, we propose a privacy-preserving architecture for one of stateof- the-art recommendation algorithm, Slope One. More precisely, we describe SlopPy (for Slope One with Privacy), a privacy-preserving version of Slope One in which a user never releases directly his personal information (i.e, his ratings). Rather, each user first perturbs locally his information by applying a Randomized Response Technique before sending this perturbed data to a semi-trusted entity responsible for storing it. While there is a trade-off to set between the desired privacy level and the utility of the resulting recommendation, our preliminary experiments clearly demonstrate that SlopPy is able to provide a high level of privacy at the cost of a small decrease of utility.
机译:为了解决个性化/隐私悖论,我们提出了一种隐私保留架构,用于一个国家的推荐算法之一,斜率1。更准确地说,我们描述了邋palt(对于隐私的斜率),一个隐私版本的斜率版本,其中用户永远不会直接发布他的个人信息(即他的评分)。相反,每个用户首​​先通过应用随机响应技术在将这种扰动的数据发送到负责存储它的半值得信赖的实体之前,通过应用随机响应技术来覆盖他的信息。虽然在所需的隐私层面和所产生的建议的效用之间存在权衡,但我们的初步实验清楚地表明,邋ild的储蓄效用的成本能够提供高水平的隐私。

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