Automatic WBAN area recognition using P2P signal strength in office environment

Joonyoung Jung, Dong-oh Kang, C. Bae
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引用次数: 2

Abstract

The distance estimation between mobile devices is a fundamental issue for a lot of applications of indoor wireless body area network (WBAN). The RSSI have been used to estimate the distance based on the received signal strength from another mobile device. Theoretically, the signal strength is inversely proportional to squared distance, and there is a known radio propagation model that is used to convert the signal strength into distance. However, in real environments, it is hard to measure distance using RSSI because of noises, obstacles, and the type of antenna. Distance estimation using RSSI in real-world applications is still questionable because of inaccuracy. However, RSSI could become the most used technology of distance estimation from the cost/precision viewpoint because of low cost. Mobile devices need to recognize each other in office environment automatically. However, distance estimation using the RSSI of Bluetooth is difficult because of large deviation of RSSI value. This paper provides the experimental results of RSSI measurement between mobile devices in office environment. And it applies the Low Pass Filter (LPF) to reduce the deviation of RSSI value. This paper shows that the distance estimation to recognize WBAN area is possible clearly when Bluetooth RSSI LPF data are used.
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在办公环境下利用P2P信号强度自动识别WBAN区域
移动设备之间的距离估计是室内无线体域网络(WBAN)应用的一个基本问题。RSSI已经被用来估计距离基于接收到的信号强度从另一个移动设备。从理论上讲,信号强度与距离的平方成反比,有一种已知的无线电传播模型用于将信号强度转换为距离。然而,在真实环境中,由于噪声、障碍物和天线的类型,很难使用RSSI测量距离。由于不准确,在实际应用中使用RSSI进行距离估计仍然存在问题。然而,从成本/精度的角度来看,RSSI由于成本低而可能成为最常用的距离估计技术。在办公环境中,移动设备需要自动识别彼此。然而,由于蓝牙的RSSI值偏差较大,使用蓝牙的RSSI值进行距离估计是困难的。本文给出了办公环境下移动设备间RSSI测量的实验结果。采用低通滤波器(LPF)减小RSSI值的偏差。本文表明,当使用蓝牙RSSI LPF数据时,可以通过距离估计清晰地识别WBAN区域。
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