An Indoor Localization System Using Residual Learning with Channel State Information
With the increasing demand of location-based services, neural network (NN)-based intelligent indoor localization has attracted great interest due to its high localization accuracy. However, deep NNs are usually affected by degradation and gradient vanishing. To fill this gap, we propose a novel indo...
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Veröffentlicht in: | Entropy (Basel, Switzerland) Switzerland), 2021-05, Vol.23 (5), p.574, Article 574 |
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Sprache: | eng |
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