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RSS Fingerprint Based Indoor Localization Using Sparse Representation with Spatio-Temporal Constraint

机译:时空约束的稀疏表示基于RSS指纹的室内定位

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摘要

The Received Signal Strength (RSS) fingerprint-based indoor localization is an important research topic in wireless network communications. Most current RSS fingerprint-based indoor localization methods do not explore and utilize the spatial or temporal correlation existing in fingerprint data and measurement data, which is helpful for improving localization accuracy. In this paper, we propose an RSS fingerprint-based indoor localization method by integrating the spatio-temporal constraints into the sparse representation model. The proposed model utilizes the inherent spatial correlation of fingerprint data in the fingerprint matching and uses the temporal continuity of the RSS measurement data in the localization phase. Experiments on the simulated data and the localization tests in the real scenes show that the proposed method improves the localization accuracy and stability effectively compared with state-of-the-art indoor localization methods.
机译:基于接收信号强度(RSS)指纹的室内定位是无线网络通信中的重要研究课题。当前大多数基于RSS指纹的室内定位方法都没有探索和利用指纹数据和测量数据中存在的空间或时间相关性,这有助于提高定位精度。在本文中,我们通过将时空约束整合到稀疏表示模型中,提出了一种基于RSS指纹的室内定位方法。所提出的模型在指纹匹配中利用了指纹数据的固有空间相关性,并在定位阶段利用了RSS测量数据的时间连续性。在真实场景中的模拟数据和定位测试实验表明,与现有的室内定位方法相比,该方法有效地提高了定位精度和稳定性。

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