增强现实系统中显著性感知隐私保护

Gautham Ramajayam, Tao Sun, C. C. Tan, Lannan Luo, Haibin Ling
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引用次数: 0

摘要

增强现实(AR)虚拟世界环境将物理世界和虚拟世界结合在一起。隐私是增强现实的一个主要问题,因为用于捕捉物理世界的相机也可以捕捉可能侵犯用户或旁观者隐私的其他图像。处理图像和视频的深度学习技术的进步加剧了这种隐私风险。本文提出了一种将视觉显著性思想与隐私敏感对象检测相结合的增强现实系统隐私保护新技术。我们表明,我们的技术能够为给定的图像提供额外的上下文,以更好地平衡隐私和系统的整体可用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Saliency-Aware Privacy Protection in Augmented Reality Systems
The augmented reality (AR) Metaverse environment combines the physical and virtual world together. Privacy is a major concern in AR since the cameras use to capture the physical world can also capture other images that may potentially violate user or by-stander privacy. Advances in deep learning to process images and videos have exacerbated such privacy risks. This paper presents a new technique to protect privacy in AR systems by combining the idea of visual saliency together with privacy-sensitive object detection. We show that our technique is able to provide additional context to a given image to better balance between privacy and overall usability of the system.
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