In this paper we present a distributed positioning system for indoor environment based on a mesh of compact independent anchor nodes. Each node is built of low-cost component- off-the-shelves and operates as specialized access points capable of standard connectivity at 2.45GHz. The key technology for the localization strategy is the Switched Beam Antenna (SBA), which enables a Space Division Multiple Access paradigm. The coordinated operation of SBA-equipped anchor nodes constitutes a legacy unmodified IEEE 802.11 network which can exploit the multiplexing mechanism. The latter is the driving force of the estimation strategy, with the positional information obtained as the result of a maximum likelihood algorithm driven by the comparison of a real-time Received Signal Strength Indicator (RSSI) with the predicted signal level distribution, which can be estimated and stored without the need of lengthy offline measurement. The signal level prediction is based on a simple propagation model which is effective because benefits of both the elementary antenna radiation beams directivity and the circular polarization operation, two strong aids for the mitigation of the multi-path impairment. In turn, these feature make the estimation procedure tolerant to noisy power measurements, hence particularly suitable for cost-effective solutions based on RSSI. Experimental validations demonstrate the performance of a network composed of 4-anchors arranged in a 2.6×3.8m 2 mesh in a 6×7m^2 office room, and dealing with a single target node. The mean error inside the mesh area is 63cm while the mean error in the entire room is 1.1m. Focusing on the cumulative distribution of the error, the 90 th percentile value is 1m considering only the mesh and and 1.9m for the entire room.

A Distributed Positioning System Based on a Predictive Fingerprinting Method Enabling Sub-Metric Precision in IEEE 802.11 Networks / Maddio, Stefano; Passafiume, Marco; Cidronali, Alessandro; Manes, Gianfranco. - In: IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES. - ISSN 0018-9480. - ELETTRONICO. - 63:(2015), pp. 4567-4580. [10.1109/TMTT.2015.2496196]

A Distributed Positioning System Based on a Predictive Fingerprinting Method Enabling Sub-Metric Precision in IEEE 802.11 Networks

MADDIO, STEFANO;PASSAFIUME, MARCO;CIDRONALI, ALESSANDRO;MANES, GIANFRANCO
2015

Abstract

In this paper we present a distributed positioning system for indoor environment based on a mesh of compact independent anchor nodes. Each node is built of low-cost component- off-the-shelves and operates as specialized access points capable of standard connectivity at 2.45GHz. The key technology for the localization strategy is the Switched Beam Antenna (SBA), which enables a Space Division Multiple Access paradigm. The coordinated operation of SBA-equipped anchor nodes constitutes a legacy unmodified IEEE 802.11 network which can exploit the multiplexing mechanism. The latter is the driving force of the estimation strategy, with the positional information obtained as the result of a maximum likelihood algorithm driven by the comparison of a real-time Received Signal Strength Indicator (RSSI) with the predicted signal level distribution, which can be estimated and stored without the need of lengthy offline measurement. The signal level prediction is based on a simple propagation model which is effective because benefits of both the elementary antenna radiation beams directivity and the circular polarization operation, two strong aids for the mitigation of the multi-path impairment. In turn, these feature make the estimation procedure tolerant to noisy power measurements, hence particularly suitable for cost-effective solutions based on RSSI. Experimental validations demonstrate the performance of a network composed of 4-anchors arranged in a 2.6×3.8m 2 mesh in a 6×7m^2 office room, and dealing with a single target node. The mean error inside the mesh area is 63cm while the mean error in the entire room is 1.1m. Focusing on the cumulative distribution of the error, the 90 th percentile value is 1m considering only the mesh and and 1.9m for the entire room.
2015
63
4567
4580
Maddio, Stefano; Passafiume, Marco; Cidronali, Alessandro; Manes, Gianfranco
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1009042
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