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A3P: Adaptive Policy Prediction for Shared Images over Popular Content Sharing Sites

机译:A3P:流行内容共享站点上共享图像的自适应策略预测

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More and more people go online today and share their personal images using popular web services like Picasa. While enjoying the convenience brought by advanced technology, people also become aware of the privacy issues of data being shared. Recent studies have highlighted that people expect more tools to allow them to regain control over their privacy. In this work, we propose an Adaptive Privacy Policy Prediction (A3P) system to help users compose privacy settings for their images. In particular, we examine the role of image content and metadata as possible indicators of users' privacy preferences. We propose a two-level image classification framework to obtain image categories which may be associated with similar policies. Then, we develop a policy prediction algorithm to automatically generate a policy for each newly uploaded image. Most importantly, the generated policy will follow the trend of the user's privacy concerns evolved with time. We have conducted an extensive user study and the results demonstrate effectiveness of our system with the prediction accuracy around 90%.
机译:越来越多的人今天上网,使用像Picasa这样的流行Web服务分享他们的个人图像。虽然享受先进技术所带来的便利性,但人们也意识到正在共享数据的隐私问题。最近的研究突出显示人们希望更多的工具允许他们重新控制他们的隐私。在这项工作中,我们提出了一个自适应隐私策略预测(A3P)系统,帮助用户为其图像构成隐私设置。特别是,我们将图像内容和元数据视为用户隐私偏好的可能指标的角色。我们提出了一个两级图像分类框架,以获取可能与类似策略相关联的图像类别。然后,我们开发策略预测算法,以自动为每个新上载的图像生成策略。最重要的是,生成的政策将遵循用户的隐私问题随着时间的推移而发展的趋势。我们进行了广泛的用户学习,结果表明了我们系统的有效性,预测精度约为90%。

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