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首页> 外文期刊>Embedded Systems Letters, IEEE >Wearable Camera- and Accelerometer-Based Fall Detection on Portable Devices
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Wearable Camera- and Accelerometer-Based Fall Detection on Portable Devices

机译:便携式设备上基于可穿戴相机和加速度计的跌倒检测

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Robust and reliable detection of falls is crucial especially for elderly activity monitoring systems. In this letter, we present a fall detection system using wearable devices, e.g., smartphones, and tablets, equipped with cameras and accelerometers. Since the portable device is worn by the subject, monitoring is not limited to confined areas, and extends to wherever the subject may travel, as opposed to static sensors installed in certain rooms. Moreover, a camera provides an abundance of information, and the results presented here show that fusing camera and accelerometer data not only increases the detection rate, but also decreases the number of false alarms compared to only accelerometer-based or only camera-based systems. We employ histograms of edge orientations together with the gradient local binary patterns for the camera-based part of fall detection. We compared the performance of the proposed method with that of using original histograms of oriented gradients (HOG) as well as a modified version of HOG. Experimental results show that the proposed method outperforms using original HOG and modified HOG, and provides lower false positive rates for the camera-based detection. Moreover, we have employed an accelerometer-based fall detection method, and fused these two sensor modalities to have a robust fall detection system. Experimental results and trials with actual Samsung Galaxy phones show that the proposed method, combining two different sensor modalities, provides much higher sensitivity, and a significant decrease in the number of false positives during daily activities, compared to accelerometer-only and camera-only methods.
机译:稳健而可靠的跌倒检测至关重要,特别是对于老年人活动监测系统而言。在这封信中,我们介绍了一种跌落检测系统,该系统使用可穿戴设备(例如智能手机和平板电脑)配备了摄像头和加速度计。由于便携式设备是由受试者佩戴的,因此与某些房间中安装的静态传感器相反,监视不限于受限区域,并且可以延伸到受试者可能行进的任何地方。此外,摄像机提供了大量信息,此处显示的结果表明,与仅基于加速度计或仅基于摄像机的系统相比,融合摄像机和加速度计数据不仅提高了检测率,而且减少了误报的次数。我们将边缘方向的直方图与梯度局部二进制模式一起用于跌倒检测的基于相机的部分。我们将提出的方法的性能与使用原始的定向梯度直方图(HOG)以及HOG的改进版进行了比较。实验结果表明,所提出的方法优于原始HOG和改进的HOG,并为基于相机的检测提供了较低的假阳性率。此外,我们采用了基于加速度计的跌倒检测方法,并将这两种传感器模式融合在一起,从而获得了一个强大的跌倒检测系统。与实际的三星Galaxy手机进行的实验结果和试验表明,与仅使用加速度计和仅使用摄像头的方法相比,该方法结合了两种不同的传感器模式,可提供更高的灵敏度并显着减少日常活动中误报的次数。 。

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