Bluetooth indoor localization with multiple neural networks | IEEE Conference Publication | IEEE Xplore

Bluetooth indoor localization with multiple neural networks


Abstract:

Over the last years, many different methods have been proposed for indoor localization and navigation services based on Radio frequency (RF) technology and Radio Signal S...Show More

Abstract:

Over the last years, many different methods have been proposed for indoor localization and navigation services based on Radio frequency (RF) technology and Radio Signal Strength Indicator (RSSI). The accuracy achieved with such systems is typically low, mainly due to the variability of RSSI values, unsuitable for classic localization methods (e.g. triangulation). In this paper, we propose a novel approach based on multiple neural networks. We demonstrate with experimental results that by training and then activating different neural networks, tailored on the user orientation, high definition accuracy is achievable, allowing indoor navigation with a cost effective Bluetooth (BT) architecture.
Date of Conference: 05-07 May 2010
Date Added to IEEE Xplore: 14 June 2010
ISBN Information:
Conference Location: Modena, Italy

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