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An efficient privacy protection scheme for data security in video surveillance

机译:一种有效的隐私保护方案,用于视频监控中的数据安全

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The advancement in video surveillance has raised significant concerns about privacy protection. The existing methods focus on identifying the sensitive region and preserving the behavior of the target, however, they ignore the recoverability of private content. In this paper, we propose a novel and efficient privacy protection scheme for data security in video surveillance, which jointly addresses several key challenges, including de-identification, behavior preservation, recoverability, and compressibility in one unified system. Our method constructs a public stream and a private residual error stream by blurring the private sensitive region. With our scheme, ordinary users could recognize the behaviors in the public identity-protected video stream for surveillance purpose, while authorized users are able to access the recovered private content (e.g., for law investigations). Moreover, the compressed privacy protected region and residual error could be able to save the costs associated with transmission and storage. The extensive experiments on two standard surveillance datasets and a user study demonstrate the effectiveness of our privacy protection system. (C) 2019 Elsevier Inc. All rights reserved.
机译:视频监控的进步引起了人们对隐私保护的极大关注。现有方法着重于识别敏感区域并保留目标的行为,但是,它们忽略了私有内容的可恢复性。在本文中,我们提出了一种新颖,高效的视频监控数据安全隐私保护方案,该方案共同解决了几个关键挑战,包括在一个统一系统中的身份识别,行为保留,可恢复性和可压缩性。我们的方法通过模糊私有敏感区域来构造公共流和私有残留错误流。使用我们的方案,普通用户可以出于监视目的识别受公共身份保护的视频流中的行为,而授权用户可以访问恢复的私有内容(例如,用于法律调查)。此外,压缩的隐私保护区域和残留错误可以节省与传输和存储相关的成本。在两个标准监视数据集上进行的广泛实验和一项用户研究证明了我们的隐私保护系统的有效性。 (C)2019 Elsevier Inc.保留所有权利。

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