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CellinDeep: Robust and Accurate Cellular-Based Indoor Localization via Deep Learning

机译:CellIndeep:通过深度学习稳健和准确的蜂窝间室内定位

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摘要

The demand for a ubiquitous and accurate indoor localization service is continuously growing. Current solutions for indoor localization usually depend on using the embedded sensors on high-end phones or provide coarse-grained accuracy. We present CellinDeep: a deep learning-based localization system that achieves fine-grained accuracy using the ubiquitous cellular technology. Specifically, CellinDeep captures the non-linear relation between the cellular signal heard by a mobile phone and its location. To do that, it leverages a deep network to model the inherent dependency between the signals of the different cell towers in the area of interest, allowing it achieve high localization accuracy. As part of the design of CellinDeep, we introduce modules to address a number of practical challenges such as handling the noise in the input wireless signal, reducing the amount of data required for the deep learning model, as avoiding over-training. Implementation of CellinDeep on different Android phones shows that it can achieve a median localization accuracy of 0.78m. This accuracy is better than the state-of-the-art indoor cellular-based systems by at least 350%. In addition, CellinDeep provides at least 93.45% savings in power compared to the WiFi-based techniques.
机译:对无处不在的和准确的室内定位服务的需求不断增长。室内定位的当前解决方案通常取决于使用高端电话上的嵌入式传感器或提供粗粒精度。我们呈现Cellindeep:一种基于深度学习的本地化系统,使用普遍存在的细胞技术实现细粒度的精度。具体地,CellIndeep通过移动电话及其位置捕获蜂窝信号之间的非线性关系。为此,它利用深度网络来模拟感兴趣区域中不同小区塔的信号之间的固有依赖性,允许它实现高的本地化精度。作为CellIndeep设计的一部分,我们引入模块以解决许多实际挑战,例如处理输入无线信号中的噪声,从而减少深度学习模型所需的数据量,避免过度训练。在不同的Android手机上的实施表明,它可以达到0.78米的中位数准确度。这种精度优于最先进的室内细胞基系统,至少350%。此外,与基于WiFi的技术相比,Cellindeep提供至少93.45%的功率。

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