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Automatic Detection of Vague Words and Sentences in Privacy Policies

机译:自动检测隐私政策中含糊不清的单词和句子

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Website privacy policies represent the single most important source of information for users to gauge how their personal data are collected, used and shared by companies. However, privacy policies are often vague and people struggle to understand the content. Their opaqueness poses a significant challenge to both users and policy regulators. In this paper, we seek to identify vague content in privacy policies. We construct the first corpus of human-annotated vague words and sentences and present empirical studies on automatic vagueness detection. In particular, we investigate context-aware and context-agnostic models for predicting vague words, and explore auxiliary-classifier generative adversarial networks for characterizing sentence vagueness. Our experimental results demonstrate the effectiveness of proposed approaches. Finally, we provide suggestions for resolving vagueness and improving the usability of privacy policies.
机译:网站隐私政策是用户评估其如何收集,使用和共享其个人数据的最重要的单一信息来源。但是,隐私政策通常含糊不清,人们难以理解其内容。它们的不透明性对用户和政策监管者都构成了重大挑战。在本文中,我们试图确定隐私政策中含糊不清的内容。我们构建了人类注释的模糊单词和句子的第一个语料库,并提供了关于自动模糊性检测的实证研究。特别是,我们研究了用于预测模糊词的上下文感知和上下文不可知模型,并探索了辅助分类器生成对抗性网络来描述句子的模糊性。我们的实验结果证明了所提出方法的有效性。最后,我们提供了解决模糊性和改善隐私策略可用性的建议。

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