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Default Privacy Setting Prediction by Grouping User's Attributes and Settings Preferences

机译:通过对用户的属性和设置首选项进行分组的默认隐私设置预测

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摘要

While user-centric privacy settings are important to protect the privacy of users, often users have difficulty changing the default ones. This is partly due to lack of awareness and partly attributed to the tediousness and complexities involved in understanding and changing privacy settings. In previous works, we proposed a mechanism for helping users set their default privacy settings at the time of registration to Internet services, by providing personalised privacy-by-default settings. This paper evolves and evaluates our privacy setting prediction engine, by taking into consideration users' settings preferences and personal attributes (e.g. gender, age, and type of mobile phone). Results show that while models built on users' privacy preferences have improved the accuracy of our scheme; grouping users by attributes does not make an impact in the accuracy. As a result, services potentially using our prediction engine, could minimize the collection of user attributes and based the prediction only on users' privacy preferences.
机译:尽管以用户为中心的隐私设置对于保护用户的隐私很重要,但用户通常很难更改默认设置。部分原因是缺乏认识,部分原因是理解和更改隐私设置所涉及的乏味和复杂性。在以前的工作中,我们提出了一种机制,该机制通过提供个性化的默认默认隐私设置来帮助用户在注册Internet服务时设置其默认隐私设置。本文通过考虑用户的设置偏好和个人属性(例如性别,年龄和手机类型)来发展和评估我们的隐私设置预测引擎。结果表明,虽然建立在用户隐私偏好上的模型提高了我们方案的准确性;按属性对用户进行分组不会影响准确性。结果,可能使用我们的预测引擎的服务可能会最小化用户属性的收集,并且仅基于用户的隐私偏好来进行预测。

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