基于超声波的运动感应,手势和上下文识别

Hiroki Watanabe, T. Terada, M. Tsukamoto
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引用次数: 28

摘要

我们提出了一种活动和上下文识别方法,用户在脖子上佩戴一个接收器,包括一个麦克风,手腕上的小扬声器可以产生超声波。该系统根据接收声音的音量和多普勒效应来识别手势。前者表示脖子和手腕之间的距离,后者表示动作的速度。因此,我们的方法用超声波代替了身体区域运动传感网络中通常需要的有线或无线通信。我们的系统还通过放置在房间和人身上的扬声器产生的ID信号来识别用户所在的位置和用户附近的人。该方法的优点在于,对于离线识别,可以使用简单的录音机作为接收器。我们在一个场景中对10个用户的9个手势/活动进行了评估。评价结果证实,在没有他人环境声音的情况下,识别率平均为87%。当有其他人发出的环境声时,我们比较了仅使用超声特征值的基于超声的方法识别与使用超声和环境声特征值的标准方法识别。建议方法的结果为65%,标准方法的结果为57%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrasound-based movement sensing, gesture-, and context-recognition
We propose an activity and context recognition method where the user carries a neck-worn receiver comprising a microphone, and small speakers on his wrists that generate ultrasounds. The system recognizes gestures on the basis of the volume of the received sound and the Doppler effect. The former indicates the distance between the neck and wrists, and the later indicates the speed of motions. Thus, our approach substitutes the wired or wireless communication typically required in body area motion sensing networks by ultrasounds. Our system also recognizes the place where the user is in and the people who are near the user by ID signals generated from speakers placed in rooms and on people. The strength of the approach is that, for offline recognition, a simple audio recorder can be used for the receiver. We evaluate the approach in one scenario on nine gestures/activities with 10 users. Evaluation results confirmed that when there was no environmental sound generated from other people, the recognition rate was 87% on average. When there was environmental sound generated from other people, we compare approach ultrasound-based recognition which uses only the feature value of ultrasound against standard approach, which uses feature value of ultrasound and environmental sound. Results for the proposed approach are 65%, for the standard approach are 57%.
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