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Foreground and scene structure preserved visual privacy protection using depth information

机译:前景和场景结构使用深度信息保留了视觉隐私保护

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In this paper, we propose the use of depth-information to protect privacy in person-aware visual systems while preserving important foreground subjects and scene structures. We aim to preserve the identity of foreground subjects while hiding superfluous details in the background that may contain sensitive information. We achieve this goal by using depth information and relevant human detection mechanisms provided by the Kinect sensor. In particular, for an input color and depth image pair, we first create a sensitivity map which favors background regions (where privacy should be preserved) and low depth-gradient pixels (which often relates a lot to scene structure but little to identity). We then combine this per-pixel sensitivity map with an inhomogeneous image obscuration process for privacy protection. We tested the proposed method using data involving different scenarios including various illumination conditions, various number of subjects, different context, etc. The experiments demonstrate the quality of preserving the identity of humans and edges obtained from the depth information while obscuring privacy-intrusive information in the background.
机译:在本文中,我们建议使用深度信息来保护个人感知视觉系统中的隐私,同时保留重要的前景主题和场景结构。我们旨在保留前景主体的身份,同时在背景中隐藏可能包含敏感信息的多余细节。我们通过使用Kinect传感器提供的深度信息和相关的人体检测机制来实现此目标。特别是,对于输入的彩色和深度图像对,我们首先创建一个灵敏度图,该图有利于背景区域(应保留隐私)和低深度梯度像素(通常与场景结构相关但与标识无关)。然后,我们将此像素灵敏度图与不均匀的图像遮盖过程相结合,以保护隐私。我们使用涉及不同场景的数据(包括各种照明条件,不同数量的被摄对象,不同背景等)测试了该方法的有效性。实验证明了保留人的身份和从深度信息中获得的边缘的质量,同时遮盖了隐私侵入性信息的质量。的背景。

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