Robustness of 3D indoor localization based on fingerprint technique in wireless sensor networks

Thanapong Chuenurajit, Sisongkham Phimmasean, P. Cherntanomwong
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引用次数: 15

Abstract

The simple approaches of an indoor localization have been continuously developed and extensively published. In order to achieve a challenge of the effective indoor localization, the expected localization system should be a high efficiency such as high accuracy, simple, robustness and effective system. For the indoor localization, the researches have been supported by the advancement of the sensor node technology. One application of this technology is wireless sensor networks-based indoor localization. The simple approaches of 2-dimensional (2D) indoor localization have been widely proposed. Since a realistic system includes complicated terrain and different environment, 3-dimensional (3D) consideration is more suitable to be applied in the real life. This paper proposes an approach of 3D indoor localization based on ZigBee standard. Fingerprint technique-based received signal strength indicator (RSSI) is employed. Due to fluctuating signals in indoor environment, robustness of fingerprint technique will be proposed in order to solve the propagation mechanisms. The k-Nearest Neighbor using Euclidean distance is utilized as the pattern matching algorithm. For the case study, 8 reference nodes and 1 target node are stationary placed on a bookshelf in clean and human body's effect environments. The expected errors of estimated target locations should not be more than 36 cm (each level height). From the results, we can acquire an acceptable accuracy. It shows that our system can be applied in the real application.
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无线传感器网络中基于指纹技术的室内三维定位鲁棒性研究
室内定位的简单方法一直在不断发展和广泛发表。为了实现有效的室内定位的挑战,期望的定位系统应该是一个高精度、简单、鲁棒和有效的系统。对于室内定位,传感器节点技术的进步为研究提供了支撑。该技术的一个应用是基于无线传感器网络的室内定位。室内二维定位的简单方法已被广泛提出。由于现实系统包含复杂的地形和不同的环境,因此三维(3D)考虑更适合应用于现实生活中。提出了一种基于ZigBee标准的室内三维定位方法。采用基于指纹技术的接收信号强度指示器(RSSI)。由于室内环境中信号波动较大,为了解决其传播机制,提出了指纹技术的鲁棒性。利用欧几里得距离的k近邻作为模式匹配算法。在案例研究中,8个参考节点和1个目标节点固定放置在书架上,处于清洁和人体效应环境中。估计目标位置的预期误差不应超过36厘米(每层高度)。从结果来看,我们可以获得一个可以接受的精度。结果表明,该系统可以在实际应用中得到应用。
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