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Tilejunction: Mitigating Signal Noise for Fingerprint-Based Indoor Localization

机译:Tilejunction:为基于指纹的室内定位减轻信号噪声

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In indoor localization based on Wi-Fi fingerprinting, a target sends its received signal strength indicator (RSSI) of access points (APs) to a server to estimate its position. Traditionally, the server estimates the target position by matching the RSSI with the fingerprints stored in the database. Due to signal noise in fingerprint collection and target measurement, this often results in a geographically disperse set of reference points (RPs), leading to unsatisfactory estimation accuracy. To mitigate the noise problem, we propose a novel, efficient, and highly accurate localization scheme termed . Based on only the first two moments of the measured signal, Tilejunction maps the target RSSI of each AP to a convex hull termed signal “tile” where the target is likely within. Using a novel comparison metric for random signals, we formulate a linear programming (LP) problem to localize the target at the junction of the tiles. To further improve its computational efficiency, Tilejunction employs an information-theoretic measure to keep only those APs whose signals show sufficient differentiation in the site. It also partitions the site into multiple clusters to substantially reduce the search space in the LP optimization. We have implemented Tilejunction. Our extensive simulation and experimental measurements show that it outperforms other recent state-of-the-art approaches (e.g. RADAR, KL-divergence, etc.) with significantly lower localization error (often by more than percent).
机译:在基于Wi-Fi指纹的室内定位中,目标将其接入点(AP)的接收信号强度指示器(RSSI)发送到服务器以估计其位置。传统上,服务器通过将RSSI与存储在数据库中的指纹进行匹配来估计目标位置。由于指纹采集和目标测量中的信号噪声,这通常会导致地理上分散的参考点(RP)集,从而导致令人满意的估计准确性。为了减轻噪声问题,我们提出了一种新颖,高效,高精度的定位方案,称为。仅基于所测量信号的前两个时刻,Tilejunction将每个AP的目标RSSI映射到称为目标可能位于其中的信号“平铺”的凸包。使用针对随机信号的新颖比较度量,我们制定了线性规划(LP)问题以将目标定位在图块的交界处。为了进一步提高其计算效率,Tilejunction采用信息理论方法,仅保留那些信号在站点中表现出足够差异的AP。它还将站点划分为多个群集,从而在LP优化中大大减少了搜索空间。我们已经实现了Tilejunction。我们广泛的仿真和实验测量表明,它优于其他最新技术(例如RADAR,KL散度等),并且定位误差明显较低(通常超过百分之百)。

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