No One Left Behind: Avoid Hot Car Deaths via WiFi Detection

Dian Shi, Jixiang Lu, Jie Wang, Lixin Li, Kaikai Liu, M. Pan
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引用次数: 3

Abstract

According to the safety organization Kids and Cars, in US, an average of 38 children die each year in hot cars, seemingly forgotten by a distracted parent. Existing car seat alarm designs either compromise people’s privacy (camera based designs), or fail to distinguish children sitting in the back from heavy stuff put on rear seats, and keep sending false alerts (pressure sensor based designs). In an effort to prevent such tragedies, we propose to utilize the fine-grained channel state information (CSI) from commercial off-the-shelf WiFi devices to detect if a child has been forgotten in rear seat of the car. Our child detection system only needs WiFi signal and applies both phase and amplitude measurement of the CSI. Based on this, our system can capture the movements of children, and effectively detect the children who are forgotten in rear seat and distinguish them from pets or other heavy stuff in rear seat with deep learning algorithms. In comparison with KNN based child detection method, the experiment results show that the performance of our deep learning based system increases dramatically, and the detection accuracy can reach more than 95%.
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不让任何人掉队:通过WiFi检测避免热车死亡
根据儿童与汽车安全组织的数据,在美国,平均每年有38名儿童死于炎热的汽车中,似乎被分心的父母遗忘了。现有的汽车座椅报警设计要么损害了人们的隐私(基于摄像头的设计),要么无法区分后排的儿童和后排座椅上的重物,并不断发出错误的警报(基于压力传感器的设计)。为了防止此类悲剧的发生,我们建议利用商用现成WiFi设备的细粒度通道状态信息(CSI)来检测孩子是否被遗忘在汽车后座上。我们的儿童检测系统只需要WiFi信号,同时使用CSI的相位和幅度测量。基于此,我们的系统可以捕捉到儿童的动作,并通过深度学习算法有效地检测出被遗忘在后座的儿童,并将其与宠物或后座上的其他重物区分开来。与基于KNN的儿童检测方法相比,实验结果表明,基于深度学习的系统性能显著提高,检测准确率可达到95%以上。
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