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Bluetooth Indoor Localization with Multiple Neural Networks

机译:蓝牙室内定位,具有多个神经网络

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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.
机译:在过去几年中,已经提出了许多不同的方法,用于基于射频(RF)技术和无线电信号强度指示器(RSSI)的室内定位和导航服务。 通过这种系统实现的精度通常是低的,主要是由于RSSI值的可变性,不适用于经典定位方法(例如三角测量)。 在本文中,我们提出了一种基于多个神经网络的新方法。 我们用实验结果展示通过训练然后激活不同的神经网络,根据用户方向定制,可实现高清晰度精度,允许使用具有成本效益的蓝牙(BT)架构的室内导航。

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