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Belief Condensation Filtering for RSSI-Based State Estimation in Indoor Localization

机译:室内定位中基于RSSI的状态估计的置信冷凝滤波

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Recent advancements in signal processing and communication systems have resulted in evolution of an intriguing concept referred to as Internet of Things (IoT). By embracing the IoT evolution, there has been a surge of recent interest in localization/tracking within indoor environments based on Bluetooth Low Energy (BLE) technology. The basic motive behind BLE-enabled IoT applications is to provide advanced residential and enterprise solutions in an energy efficient and reliable fashion. Although recently different state estimation (SE) methodologies, ranging from Kalman filters, Particle filters, to multiple-modal solutions, have been utilized for BLE-based indoor localization, there is a need for ever more accurate and real-time algorithms. The main challenge here is that multipath fading and drastic fluctuations in the indoor environment result in complex non-linear, non-Gaussian estimation problems. The paper focuses on an alternative solution to the existing filtering techniques and introduces/discusses incorporation of the Belief Condensation Filter (BCF) for localization via BLE-enabled beacons. The BCF is a member of the universal approximation family of densities with performance bound achieving accuracy and efficiency in sequential SE and Bayesian tracking. It is a resilient filter in harsh environments where nonlinearities and non-Gaussian noise profiles persist, as seen in such applications as Indoor Localization.
机译:信号处理和通信系统中的最新进步导致了引入物联网(物联网)的有趣概念的演变。通过拥抱IOT演变,基于蓝牙低能量(BLE)技术的室内环境中的本地化/跟踪近期存在兴趣。支持BLE的IOT应用背后的基本动机是以节能可靠的方式提供先进的住宅和企业解决方案。虽然最近不同的状态估计(SE)方法,从卡尔曼滤波器,粒子过滤器到多模态解决方案,但已经用于基于BLE的室内定位,需要更准确和实时算法。这里的主要挑战是室内环境中的多路径衰落和激烈波动导致复杂的非线性,非高斯估计问题。本文侧重于现有滤波技术的替代解决方案,并介绍/讨论信仰冷凝滤波器(BCF)的掺入,以通过启用BLE的信标的定位。 BCF是普遍近似密度系列的成员,具有序列SE和贝叶斯追踪的精度和效率。它是一种在恶劣环境中的弹性滤波器,其中非线性和非高斯噪声分布​​持续存在,如在这种应用中所见,如室内本地化。

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