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SSD: A Robust RF Location Fingerprint Addressing Mobile Devices' Heterogeneity

计算机科学 RSS 指纹(计算) 稳健性(进化) 蓝牙 指纹识别 信号强度 移动设备 无线 接收信号强度指示 节点(物理) 实时计算 计算机工程 人工智能 电信 生物化学 化学 结构工程 工程类 基因 操作系统
作者
A. K. M. Mahtab Hossain,Yunye Jin,Wee-Seng Soh,Hien Nguyen Van
出处
期刊:IEEE Transactions on Mobile Computing [IEEE Computer Society]
卷期号:12 (1): 65-77 被引量:231
标识
DOI:10.1109/tmc.2011.243
摘要

Fingerprint-based methods are widely adopted for indoor localization purpose because of their cost-effectiveness compared to other infrastructure-based positioning systems. However, the popular location fingerprint, Received Signal Strength (RSS), is observed to differ significantly across different devices' hardware even under the same wireless conditions. We derive analytically a robust location fingerprint definition, the Signal Strength Difference (SSD), and verify its performance experimentally using a number of different mobile devices with heterogeneous hardware. Our experiments have also considered both Wi-Fi and Bluetooth devices, as well as both Access-Point(AP)-based localization and Mobile-Node (MN)-assisted localization. We present the results of two well-known localization algorithms (K Nearest Neighbor and Bayesian Inference) when our proposed fingerprint is used, and demonstrate its robustness when the testing device differs from the training device. We also compare these SSD-based localization algorithms' performance against that of two other approaches in the literature that are designed to mitigate the effects of mobile node hardware variations, and show that SSD-based algorithms have better accuracy.

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