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Neural Network-Based Indoor Positioning Using Virtual Projective Invariants

机译:使用虚拟投影不变量的基于神经网络的室内定位

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摘要

Indoor positioning techniques has become a key research issue for future smart services because of the high market value in providing location-based services via smartphones and ondemand services. In image sensor communications (ISC) case, one of the main advantages of the indoor navigation system is that the LED itself can transmit its location information using visible light communication. In addition, the camera usually has an angle of arrival sensor that facilitates the precise determination of not only user position but also user orientation. However, because of the nonlinear and highly complicated relationship between 3D scenery and a pictured 2D image, the development of a complex mathematical model is needed to estimate user position using a camera. Neural network is a good approach for minimizing this complicated relationship. Hence, it is possible to develop a precise positioning technique without any complicated mathematical model between the 3D world and 2D image coordinates. This paper proposes a neural network-based novel positioning technique. The proposed method exploits the projective invariant properties of a line that is virtually constructed with the help of ISC. Then, a neural network scheme is used to extract the camera orientation information from that virtual line. Next, a simple mathematical equation is used to estimate user position. Simulation results show the proposed method has better performance than the previous methods.
机译:由于通过智能手机和按需服务提供基于位置的服务具有很高的市场价值,因此室内定位技术已成为未来智能服务的关键研究问题。在图像传感器通信(ISC)的情况下,室内导航系统的主要优点之一是LED本身可以使用可见光通信来传输其位置信息。另外,照相机通常具有到达角传感器,该到达角传感器不仅有助于精确确定用户位置而且有助于精确确定用户方位。但是,由于3D风景和所描绘的2D图像之间存在非线性且高度复杂的关系,因此需要开发复杂的数学模型来使用相机估算用户位置。神经网络是使这种复杂关系最小化的好方法。因此,有可能开发一种精确的定位技术,而无需在3D世界和2D图像坐标之间建立任何复杂的数学模型。本文提出了一种基于神经网络的新型定位技术。所提出的方法利用了在ISC的帮助下虚拟构建的直线的投影不变性质。然后,使用神经网络方案从该虚拟线提取摄像机方位信息。接下来,使用简单的数学方程式估算用户位置。仿真结果表明,该方法具有更好的性能。

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