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A Fusion Approach of RSSI and LQI for Indoor Localization System Using Adaptive Smoothers

机译:基于自适应平滑器的室内定位系统中RSSI和LQI的融合方法

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Due to the ease of development and inexpensiveness, indoor localization systems are getting a significant attention but, with recent advancement in context and location aware technologies, the solutions for indoor tracking and localization had become more critical. Ranging methods play a basic role in the localization system, in which received signal strength indicator- (RSSI-) based ranging technique gets the most attraction. To predict the position of an unknown node, RSSI measurement is an easy and reliable method for distance estimation. In indoor environments, the accuracy of the RSSI-based localization method is affected by strong variation, specially often containing substantial amounts of metal and other such reflective materials that affect the propagation of radio-frequency signals in nontrivial ways, causing multipath effects, dead spots, noise, and interference. This paper proposes an adaptive smoother based location and tracking algorithm for indoor positioning by making fusion of RSSI and link quality indicator (LQI), which is particularly well suited to support context aware computing. The experimental results showed that the proposed mathematical method can reduce the average error around 25%, and it is always better than the other existing interference avoidance algorithms.
机译:由于易于开发和价格便宜,室内定位系统受到了广泛的关注,但是,随着上下文和位置感知技术的最新发展,室内跟踪和定位的解决方案变得越来越关键。测距方法在定位系统中起着基本作用,其中基于接收信号强度指示器(RSSI-)的测距技术获得了最大的吸引力。为了预测未知节点的位置,RSSI测量是一种简单而可靠的距离估计方法。在室内环境中,基于RSSI的定位方法的准确性会受到强烈变化的影响,特别是通常包含大量的金属和其他此类反射材料,这些材料会以非平凡的方式影响射频信号的传播,从而导致多径效应,死点,噪音和干扰。通过融合RSSI和链路质量指标(LQI),提出了一种基于自适应平滑器的室内定位定位和跟踪算法,特别适合支持上下文感知计算。实验结果表明,所提出的数学方法可以将平均误差降低25%左右,并且始终优于其他现有的避免干扰算法。

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