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Privacy protected recognition of activities of daily living in video

机译:隐私权保护的识别视频中的视频活动

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This paper proposes a new method to protect the privacy while retaining the ability to accurately recognise the activities of daily living for video-based monitoring in ambient assisted living applications. The proposed method obfuscates the human appearance by modelling the temporal saliency in the monitoring video sequences. It mimics the functionality of neuromorphic cameras and explores the temporal saliency to generate a mask to anonymise the human appearance. Since the anonymising masks encapsulate the temporal saliency with respect to motion in the sequence, they provide a good basis for further utilisation in activity recognition, which is achieved by representing the HOG features on privacy masks. The proposed method has resulted in excellent anonymising performances compared using the cross correlation measures. In terms of activity recognition, the proposed method has resulted in 5.6% and 5.4% improvements of accuracies over other anonymisation methods for Weizmann and DHA datasets, respectively.
机译:本文提出了一种保护隐私的新方法,同时保留了准确识别日常生活活动,以便在环境辅助生活应用中准确地识别日常生活的活动。所提出的方法通过对监测视频序列中的时间显着性建模来抵消人类外观。它模仿神经形态相机的功能,探讨了产生掩模的时间显着性,以匿名人类的外观。由于匿名掩模在序列中封装了对运动的时间显着性,因此它们为活动识别的进一步利用提供了良好的基础,这是通过代表隐私掩码的猪特征来实现的。使用交叉相关措施比较,所提出的方法使得匿名匿名的性能。在活动识别方面,拟议的方法分别导致Weizmann和DHA数据集的其他匿名方法的准确性提高了5.6%和5.4%。

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